AU3503599A - Simultaneous detection, identification and differentiation of eubacterial taxa using a hybridization assay - Google Patents

Simultaneous detection, identification and differentiation of eubacterial taxa using a hybridization assay Download PDF

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AU3503599A
AU3503599A AU35035/99A AU3503599A AU3503599A AU 3503599 A AU3503599 A AU 3503599A AU 35035/99 A AU35035/99 A AU 35035/99A AU 3503599 A AU3503599 A AU 3503599A AU 3503599 A AU3503599 A AU 3503599A
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probes
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strains
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Geert Jannes
Rudi Rossau
Hugo Van Heuverswyn
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Fujirebio Europe NV SA
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    • C12Q1/6876Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes
    • C12Q1/6888Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes for detection or identification of organisms
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    • C12Q1/6876Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes
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Description

-1-
AUSTRALIA
PATENTS ACT 1990 COMPLETE
SPECIFICATION
FOR A STANDARD
PATENT
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0 on
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9e 0 *000
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0000 *0r
ORIGINAL
Name of Applicant/s: Actual Inventor/s: Address for Service: Invention Title: Innogenetics N.V.
Geert Jannes and Rudi Rossau and Hugo Van Heuverswyn BALDWIN SHELSTON
WATERS
60 MARGARET
STREET
SYDNEY NSW 2000 'SIMULTANEOUS DETECTION, IDENTIFICATION
AND
DIFFERENTIATION OF EUBACTERIAL TAXA USING A HYBRIDIZATION
ASSAY'
Details of Original Application No. 29246/95 dated 23 JUN 1995 The following statement is a full description of this invention, including the best method of performing it known to me/us:- File: 22421.00 la SIMULTANEOUS DETECTION, IDENTIFICATION AND DIFFERENTIATION
OF
EUBACTERIAL TAXA USING A HYBRIDIZATION
ASSAY
The present invention relates to nucleic acid probes derived from the spacer region between the 16S and 23S ribosomal ribonucleic acid (rRNA) genes, to be used for the specific detection of eubacterial organisms in a biological sample by a hybridization procedure, as well as to nucleic acid primers to be used for the amplification of said spacer region of eubacterial organisms in a biological sample. The present invention also relates to new spacer region sequences from which said probes or primers may be derived.
Since the advent of the polymerase chain reaction and some other nucleic acid 10 amplification techniques the impact of DNA-probe technology in the diagnosis of microorganisms in biological samples of all sorts is increasing. Being often more specific and potentially more sensitive if an adequate amplification and/or detection system is used -the DNA probe approach may eventually replace the conventional identification techniques.
The reliability of nucleic acid based tests essentially depends on the sensitivity and specificaty of the probes and/or primers used. Thus the corner stone of this type of assay is the identification of nucleic acid sequences which are unique to the group of organisms of interest.
Most of the nucleic acid based tests either described in literature and/or commercially available aim at the detection of just one particular organism in a biological sample. Since most biological samples usually may contain a great variety of clinically relevant microorganisms, a multitude of separate assays have to be performed to detect all relevant S" organisms possibly present. This approach would be very expensive, laborious and timeconsuming. Consequently, the number of tests actually performed in most routine diagnostic labs on a particular sample is restricted to the detection of just a few of the most relevant organisms. Therefore it would be extremely convenient to have access to a system which enables the fast, easy and simultaneous detection of a multitud.e of different organisms. The more organisms that can be screened for in the same assay, the more cost-effective the procedure would be.
As put forward in earlier published documents, the spacer region situated between the 16S rRNA and the 23S rRNA gene, also referred to as the internal transcribed spacer (ITS), is an advantageous target region for probe development for detection of pathogens of bacterial origin (International application WO 91/16454: Rossau et al., 1992; EP-A-0 395 292).
One of its most appreciated advantages is that sequences unique to a great variety of bacterial taxa can be found in a very limited area of the bacterial genome. This characteristic allows for an advantageous design of "probe-panels" enabling the simultaneous detection of a set of organisms possibly present in a particular type of a biological sample. Moreover.
being flanked by quasi-universally conserved nucleotide sequences more particularly located in the 3'-part of the 16S rRNA gene and the 5'-part of the 23S rRNA gene respectively almost all spacers can be simultaneously amplified with a limited set of amplification 10 primers. Alternatively, specific primer sets can be derived from the spacer sequences themselves, thereby allowing species- or group-specific amplifications.
.o The 16S-23S rRNA spacer region is a relatively short (about 200 to 1000 base pairs) stretch of DNA present in one or multiple copies in the genome of almost all eubacterial organisms. If multiple copies are present in the genome of one bacterium these copies can either be identical (as is most probably the case in some Neisseria species) or may differ from each other (as is the case for E. coli). This difference can be limited to a few nucleotides but also deletions and insertions of considerable length may be present.
Uptil now, spacer probes are only described and made publicly available for a limited number of organisms many of which were disclosed in international application
WO
S 20 91/16454. As described above, it would be very advantageous to be able to detect simultaneously a panel of pathogens: e.g. a panel of pathogens possibly present in the same type of biological sample, or a panel of pathogens possibly causing the same type of disease symptoms, which are difficult to differentiate clinically and/or biochemically, or a panel of organisms belonging to the same taxon. In order to make the different panels as complete as possible, additional probes or sets of probes located in the spacer region and enabling the identification of at least the following bacterial groups or species are required Mvcobacterium species Listeria species Chlamydia species Acinetobacter species Mycoplasma species Streptococcus species Staphvlococcus species Salmonella species Brucella species Yersinia species Pseudomonas species These additional spacer probes need to be meticulously designed such that they can be used simultaneously with at least one other probe, under the same hybridization and wash conditions, allowing the detection of a particular panel of organisms.
It is thus the aim of the present invention to select probes or sets of probes, which 10 have as target the 16S-23S rRNA spacer region, and which allow the detection and identification of at least one, and preferably more than one. of the above mentioned micro- ~organisms. The probes or probe sets are selected in such a way that they can be used in combination with at least one other probe, preferably also originating from the 16S-23S .rRNA spacer region, under the same hybridisation and wash conditions, to allow possibly the simultaneous detection of several micro-organisms in a sample.
It is also an aim of the present invention to provide for a selection method for use in the selection of said spacer probes or probe sets.
It is also an aim of the present invention to provide a rapid and reliable hybridization method for detection and identification of at least one micro-organism in a sample, or for the simultaneous detection and identification of several micro-organisms in a sample.
It is more particularly an aim of the present invention to provide a hybridization method allowing simultaneous detection and identification of a set of micro-organisms, liable to be present in a particular type of sample.
It is more particularly an aim of the present invention to provide probes or sets of probes for the possible simultaneous detection of micro-organisms in a sample originating from respiratory tract.
It is another particular aim of the present invention to provide probes or sets of probes for the possible simultaneous detection of micro-organisms in a sample originating from cerebrospinal fluid.
It is still another particular aim of the present invention to provide probes or sets of probes for the possible simultaneous detection of micro-organisms in a sample originating from urogenital tract.
It is still another particular aim of the present invention to provide probes or sets of probes for the possible simultaneous detection of micro-organisms in a sample taken from the gastro-intestinal tract of a patient.
It is still another particular aim of the present invention to provide probes or sets of probes for the possible simultaneous detection of micro-organisms in a sample originating from food or environmental samples.
It is moreover an aim of the present invention to provide a method for detection and identification of a particular taxon in a sample, or a set of particular taxa, said taxon being either a complete genus, or a subgroup within a genus, a species or even subtypes within a 10 species (subspecies, serovars, sequevars, biovars...).
It is more particularly an aim of the present invention to provide probes or sets of Sprobes for the detection of M Yobacerium species and subspecies, more particularly for the detection of M. tuberculosis complex stains, Mcobacterium strains from the MAIScomplex, M. avium and M. aratuberculois, M. tracelluare and M. intracellulare-like strains, M. scrfulaeum, M. kansasii, M. helon odoae M. ulcerans
M.
g gnave se, M. xenopi, M. s i, M. f u, M. mimense M. celatum and M.
haemophilum.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Mycoplasma strains, more particularly of M. neumoniae and M. genitalium.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Pseudomonas strains, more particularly P. aeruinosa.
It is also an aim of the present invention to provide probes or sets of probes for detection of Staphylococcus species, more particularly S. aureus and S. eidermidis.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Acinetobacter strains, more particularly A. baumanii.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Listeria strains, more particularly Listeria monocvtogenes.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Brucella strains.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Salmonella strains.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Chlamvdia strains, more particularly C. trachomatis and C. siaci It is also an aim of the present invention to provide probes or sets of probes for the detection of Streptococcus strains.
It is also an aim of the present invention to provide probes or sets of probes for the detection of Yersinia enterolitica strains.
It is also an aim of the present invention to provide primers allowing specific amplification of the 16S-23S rRNA spacer region for certain organisms. More particular it is an aim of the present invention to provide primers for the specific amplification of the spacer region of Mycobacteriu Chamdia Listeria, Brucella and Yersinia enterolitica 10 strains.
S
It is also an aim of the present invention to provide new sequences of 16S-23S rRNA spacer regions from which useful spacer probes or primers can be derived.
:It is also an aim of the present invention to provide for kits for detection of at least one organism in a sample in which said probes and/or primers are used.
It is noted that for a few of the above-mentioned organisms spacer sequences have C already been published in literature or in publicly accessable data-banks.
However, it should be made clear that the spacer region sequences disclosed in the current invention (figs. 1-103) are new and, in case they originate from the same species as those of which a spacer sequence was already described in the prior art. they differ to some extent from the already described sequences.
Moreover, it is the principal aim of the present invention to select, from the compilation of sequence data on spacer regions, specific probes and sets of probes enabling the detection and identification of a particular panel of organisms, be it the organisms belonging to a common taxon, or the organisms possibly present in the same type of sample.
The selection procedure usually consists of a theoretical and an experimental part.
First of al, the different spacer sequences need to be aligned to those of the 'closest neighbours or to the spacer sequences of other micro-organisms liable to be present in the same sample. This requires of course the sequence determination of the spacer region, as described in the examples. From the alignment, regions of divergence can be defined, from which probes with desired hybridization characteristics are designed, according to guidelines known to the man skilled in the art and specified in more detail below.
Secondly. the designed probes need to be tested experimentally and evaluated for their usefulness under specific hybridization conditions and/or in combination with other probes.
Experimental testing can be done according to any hybridization method known in the art.
but a preferred assay for the simultaneous testing of different probes under the same conditions is the reverse hybridization assay. A specific format for reverse hybridization of different probes simultaneously used in the current invention is the LiPA (Line Probe Assay) as described below.
Upon experimental testing unexpected hybridization behaviour may show up when the probes are hybridized to the target nucleic acid, and specific probe adaptations rmay be required.
Moreover, specificity and sensitivity of the probes need to be tested with a large ~collection of strains, both belonging to the taxon to be detected and belonging to other taxa.
Due to genome heterogeneity in the spacer region, or the existence of multiple spacer regions with different sequences in the same organism, it is quite often necessary to sequence spacer '".regions of additional strains, or to sequence additional spacer regions in the same strain, and redesign the probes according to the new sequence data in order to obtain a better sensitivity and/or specificity (see e.g. example In some cases it may be necessary or preferable to use several probes for the same organism (see e.g. example 2 and Also, upon sequencing the spacer region, some organisms may show unexpected (un)relatedness, which may lead to a revision of strain classification contrary to classical taxonomic criteria (see e.g. examples 2 and 7).
In conclusion, the experimental part of the probe selection procedure is indispensable ~and complementary to the theoretical part. Probe design, especially under the fixed conditions of reverse hybridization (the same conditions for each probe) is not straightforward and probes have to be evaluated meticulously before they can be used in a reverse hybridization format. Therefor, probes cannot always be simply derived on a theoretical basis from a known gene sequence.
For designing probes with desired characteristics thile following useful guidelines may be followed.
Because the extent and specificity of hybridization reactions such as those described herein are affected by a number of factors, manipulation of one or more of those factors will determine the exact sensitivity and specificity of a particular probe, whether perfectly complementary to its target or not. The importance and effect of various assay conditions, explained further herein, are known to those skilled in the art.
First, the stability of the [probe target] nucleic acid hybrid should be chosen to be compatible with the assay conditions. This may be accomplished by avoiding long A and T rich sequences, by terminating the hybrids with G:C base pairs, and by designing the probe with an appropriate Tm. The beginning and end points of the probe should be chosen so that the length and %GC result in a Tm about 2-10°C higher than the temperature at which the final assay will be performed. The base composition of the probe is significant because G-C base pairs exhibit greater thermal stability as compared to A-T base pairs due to additional hydrogen bonding. Thus, hybridization involving complementary nucleic acids of higher G-C 10 content will be stable at higher temperatures.
Conditions such as ionic strength and incubation temperature under which a probe will be used should also be taken into account in constructing a probe. It is known tha[ hybridization will increase as the ionic strenght of the reaction mixture increases, and that the thermal stability of the hybrids will increase with increasing ionic strenght. On the other hand. chemical reagents, such as formamide, urea, DMSO and alcohols, which disrupt hydrogen bonds, will increase the stringency of hybridization. Destabilization of the hydrogen bonds by such reagents can greatly reduce the Tm. In general, optimal hybridization for synthetic oligonucleotide probes of about 10-50 bases in length occurs approximately below the melting temperature for a given duplex. Incubation at temperatures below the optimum may allow mismatched base sequences to hybridize and can therefore result in reduced specificity.
It is desirable to have probes which hybridize only under conditions of high stringency. Under high stringency conditions only highly complementary nucleic acid hybrids will form; hybrids without a sufficient degree of complementarity will not form.
Accordingly, the stringency of the assay conditions determines the amount of complementarity needed between two nucleic acid strands forming a hybrid. Stringency is chosen to maximize the difference in stability between the hybrid formed with the target and the nontarget nucleic acid. In some examples of the current invention, e.g. when highly related organisms need to be differentiated, it may be necessary to detect single base pair changes. In those cases, conditions of very high stringency are needed.
Second, probes should be positioned so as to minimize the stability of the [probe nontarget] nucleic acid hybrid. This may be accomplished by minimizing the length of perfect complementarity to non-target organisms, avoiding GC rich regions of homologv to nontarget sequences, and by positioning the probe to span as many destabilizing mismatches as possible. Whether a probe sequence is useful to detect only a specific type of organism depends largely on the thermal stability difference between fprobe:target] hybrids and [probe:nontarget] hybrids. In designing probes, the differences in these Tm values should be as large as possible at least 2°C and preferably The length of the target nucleic acid sequence and. accordingly, the length of the probe sequence can also be important. In some cases, there may be several sequences from a particular region, varying in location and length, which will yield probes with the desired hybridization characteristics. In other cases, one sequence may be significantly better than another which differs merely by a single base. While it is possible for nucleic acids that are not perfectly complementary to hybridize, the longest stretch ot pertectly complementary base sequence will normally primarily determine hybrid stability. While oligonucleotide probes of different lengths and base composition may be used, oligonucleotide probes preferred in this invention are between about 10 to 50 bases in length and are sufficiently homologous to the target nucleic acid.
Third, regions in the target DNA or RNA which are known to form strong internal structures inhibitory to hybridization are less preferred. Likewise, probes with extensive selfcomplementarity should be avoided. As explained above, hybridization is the association of C 20 two single strands of complementary nucleic acids to form a hydrogen bonded double strand.
U C It is implicit that if one of the two strands is wholly or partially involved in a hybrid that it will be less able to participate in formation of a new hybrid. There can be intramolecular and intermolecular hybrids formed within the molecules of one type of probe if there is sufficient self complementarity. Such structures can be avoided through careful probe design. By designing a probe so that a substantial portion of the sequence of interest is single stranded.
the rate and extent of hybridization may be greatly increased. Computer programs are available to search for this type of interaction. However, in certain instances, it may not be possible to avoid this type of interaction.
The probes of the present invention are designed for attaining optimal performance under the same hybridization conditions so that they can be used in sets for simultaneous hybridization; this highly increases the usability of these probes and results in a significant gain in time and labour. Evidently, when other hybridization conditions should be preferred, all probes should be adapted accordingly by adding or deleting a number of nucleotides at their extremities. It should be understood that these concommitant adaptations should give rise to essentially the same result, namely that the respective probes still hybridize specifically with the defined target. Such adaptations might also be necessary if the amplified material should be RNA in nature and not DNA as in the case for the NASBA system.
The hybridization conditions can be monitored relying upon several parameters, such as the nature and concentration of the components of the media, and the temperatures under which the hybrids are formed and washed.
The hybridization and wash temperature is limited in upper value depending on the sequence of the probe (its nucleic acid composition, kind and length). The maximum hybridization or wash temperature of the probes described in the present invention ranges from 40 0 C to 60 0 C, more preferably from 45*C to 55 0 C, in the specific hybridization and wash media as described in the Examples section. At higher temperatures duplexing formation of the hybrids) competes with the dissociation (or denaturation) of the hybrid S 15 formed between the probe and the target.
In a preferred hybridization medium of the invention, containing 3 x SSC and formamide, hybridization temperatures can range from 45°C to 550C, with a preferred hybridization temperature of 50C. A preferred wash medium contains 3 x SSC and formamide, and preferred wash temperatures are the same as the preferred hybridization a. 20 temperatures, i.e. preferably between 45C and 55C, and most preferably 50 0
C.
However, when modifications are introduced, be it either in the probes or in the media, the temperatures at which the probes can be used to obtain the required specificity should be changed according to known relationships, such as those described in the following reference: Hames B and Higgins S Nucleic acid hybridization. A practical approach, IRL Press, Oxford, 1985.
The selected nucleic acid probes derived from the 16S-23S rRNA spacer region and described by the present invention are listed in Table la (SEQ ID NO 1 to 64, 175 to 191.
193 to 201, and 210 to 212). As described in the examples section, some of these probes show a better sensitivity and/or specificity than others, and the better probes are therefore preferentially used in methods to detect the organism of interest in a biological sample.
However, it is possible that for certain applications epidemiology, substrain typing, a set of probes including the less specific and/or less sensitive probes may be very informative (see e.g. example 7).
The following definitions serve to illustrate the terms and expressions used in the different embodiments of the present invention as set out below.
The term "spacer" is an abbreviated term referring to the 16S-23S rRNA internal transcribed spacer region.
The term "probe" refers to single stranded sequence-specific oligonucleotides which have a sequence which is sufficiently complementary to hybridize to the target sequence to be detected.
The more specific term "spacer probe" refers to a probe as defined above having a sequence which is sufficiently complementary to hybridize to a target sequence which is located in the spacer region(s) of the organism (or group of organisms) to be detected 4 Preferably said probes are 70%, 80%, 90%, or more than 95% homologus to the .exact complement of the target sequence to be detected. These target sequences are either genomic DNA or precursor RNA, or amplified versions thereof.
Preferably, these probes are about 5 to 50 nucleotides long, more preferably from Sabout 10 to 25 nucleotides. The nucleotides as used in the present invention may be .ribonucleotides, deoxyribonucleotides and modified nucleotides such as inosine or nucleotides containing modified groups which do not essentially alter their hybridization characteristics.
Moreover, it is obvious to the man skilled in the art that any of the below-specified probes 20 can be used as such, or in their complementary form, or in their RNA form (wherein T is replaced by U).
The probes according to the invention can be formed by cloning of recombinant Splasmids containing inserts including the corresponding nucleotide sequences, if need be by cleaving the latter out from the cloned plasmids upon using the adequate nucleases and recovering them, e.g. by fractionation according to molecular weight. The probes according to the present invention can also be synthesized chemically, for instance by the conventional phospho-triester method.
The term "complementary" nucleic acids as used herein means that the nucleic acid sequences can form a perfect base-paired double helix with each other.
The term "homologous" as used in the current application is synonymous for identical: this means that polynucleic acids which are said to be e.g. 80% homologous show identical base pairs in the same position upon alignment of the sequences.
11 The term "polynucleic acid" corresponds to either double-standed or single-suanded cDNA or genomic DNA or RNA, containing at least 10, 20, 30, 40 or 50 contiguous nucleotides. A polynucleic acid which is smaller than 100 nucleotides in length is often also referred to as an oligonucleotide. Single stranded polynucleic acid sequences are always represented in the current invention from the 5' end to the 3' end.
The term 'closest neighbour' means the taxon which is known or expected to be most closely related in terms of DNA homology and which has to be differentiated from the organism of interest.
The expression 'desired hybridization characteristics' means that the probe only hybridizes to the DNA or RNA from organisms for which it was designed, and not to DNA Sor RNA from other organisms (closest neighbours or organisms liable to be present in the same sample). in practice, this means that the intensity of the hybrid; n sn i t et .o ree f r i s t son signal is at least two, three, four, five, ten or more times stronger with the target DNA or RNA from the organisms for which the probes were designed, compared to non-target These desired hybridization characteristics correspond to what is called later in the text "specific hybridization".
The pres si to e "n i The expression "taxon-specific hybridization" or "taxon-specific probe" means that the probe only hybridizes to the DNA or RNA from the taxon for which it was designed and *not to DNA or RNA from other taxa.
S2 0 The term taxon can refer to a complete genus or a sub-group within a genus, a species or even subtype within a species (subspecies, serovars, sequevars, biovars...).
The term "specific amplification" or "specific primers" refers to the fact that said primers only amplify the spacer region from these organisms for which they were designed, and not from other organisms.
The term "sensitivity" refers to the number of false negatives: i.e. if I of the 100 strains to be detected is missed out, the test shows a sensitivity of (100-iI00) 99%.
The term "specificity" refers to the number of false positives: i.e. if on 100 strains detected, 2 seem to belong to organisms for which the test is not designed, the specificity of the test is (100-2/100)% 98%.
The probes selected as being "preferential" show a sensitivity and specificity of more than 80%, preferably more than 90% and most preferably more than 95%.pecificity of more The term "primer" refers to a single stranded DNA oligonucleotide sequence capable 12 of acting as a point of initiation for synthesis of a primer extension product which is complementary to the nucleic acid strand to be copied. The length and the sequence of the primer must be such that they allow to prime the synthesis of the extension products.
Preferably the primer is about 5-50 nucleotides long. Specific length and sequence will depend on the complexity of the required DNA or RNA targets, as well as on the conditions Sof primer use such as temperature and ionic strenght. The fact that amplification primers do not have to match exactly with the corresponding template sequence to warrant proper amplification is amply documented in the literature (Kwok et al., 1990).
The amplification method used can be either polymerase chain reaction (PCR; Saiki 10 et al., 1988), ligase chain reaction (LCR; Landgren et al., 1988; Wu Wallace, 1989; Barany, 1991), nucleic acid sequence-based amplification (NASBA; Guatelli et al., 1990; Compton. 1991), transcription-based amplification system (TAS; Kwoh et 1 0 trand displacement amplification (SDA; Duck, 1990; Walker et al., 1992) or amplification by means of QB3 replicase (Lizardi et al., 1988; Lomeli et al., 1989) or any other suitable method to amplify nucleic acid molecules known in the art.
The oligonucleotides used as primers or probes may also comprise nucleotide analogues such as phosphorothioates (Matsukura et al., 1987), alkylphosphorothioates (Miller et a l 1979) or peptide nucleic acids (Nielsen et al., 1991; Nielsen et al., 1993) or may contain intercalating agents (Asseline et al., 1984).
As most other variations or modifications introduced into the original DNA sequences of the invention these variations will necessitate adaptions with respect to the conditions Sunder which the oligonucleotide should be used to obtain the required specificity and sensitivity. However the eventual results of hybridisation will be essentially the same as those obtained with the unmodified oligonucleotides.
The introduction of these modifications may be advantageous in order to positively influence characteristics such as hybridization kinetics, reversibility of the hybrid-formation, biological stability of the oligonucleotide molecules, etc.
The term "solid support" can refer to any substrate to which an oligonucleotide probe can be coupled, provided that it retains its hybridization characteristics and provided that the background level of hybridization remains low. Usually the solid substrate will be a microtiter plate, a membrane nylon or nitrocellulose) or a microsphere (bead). Prior to application to the membrane or fixation it may be convenient to modify the nucleic acid 13 probe in order to facilitate fixation or improve the hybridization efficiency. Such modifications may encompass homopolymer tailing, coupling with different reactive groups such as aliphatic groups, NH, groups, SH groups, carboxylic groups, or coupling with biotin, haptens or proteins.
The term "labelled" refers to the use of labelled nucleic acids. Labelling may be carried out by the use of. labelled nucleotides incorporated during the polymerase step of the amplification such as illustrated by Saiki et al. (1988) or Bej et al. (1990) or by the use of labelled primers, or by any other method known to the person skilled in the art. The nature of the label may be isotopic 3 3 S, etc.) or non-isotopic (biotin, digoxigenin, etc.).
The "sample" may be any biological material taken either directly from the infected human being (or animal), or after culturing (enrichment), or a sample taken from food or feed. Biological material may be e.g. expectorations of any k ind, broncheolavages, blood, skin tissue, biopsies, lymphocyte blood culture material, colonies, etc. Said samples may be prepared or extracted according to any of the techniques known in the art.
The "target" material in these samples may be either genomic DNA or precursor RNA of the organism to be detected target organism), or amplified versions thereof as set out above. More specifically, the nucleic acid sequence of the target material is localized in the spacer region of the target organism(s).
Detection and identification of the target material can be performed by using one of the many electrophoresis methods, hybridization methods or sequencing methods described in literature and currently known by men skilled in the art. However, a very convenient and advantageous technique for the simultaneous detection of nucleic acids possibly present in biological samples is the Line Probe Assay technique. The Line Probe Assay (LiPA) is a reverse hybridization format (Saiki et al., 1989) using membrane strips onto which several oligonucleotide probes (including negative or positive control oligonucleotides) can be conveniently applied as parallel lines.
The LiPA technique, as described by Stuyver et al. (1993) and in international application WO 94/12670, provides a very rapid and user-friendly hybridization test. Results can be read within 4 h. after the start of the amplification. After amplification during which usually a non-isotopic label is incorporated in the amplified product, and alkaline denaturation, the amplified product is contacted with the probes on the membrane and the hybridization is carried out for about 1 to 1,5 h. Consequently, the hybrids formed are detected by an enzymatic procedure resulting in a visual purple-brown precipitate. The LiPA format is completely compatible with commercially availabe scanning devices, thus rendering automatic interpretation of the results possible. All those advantages make the LiPA format liable for use in a routine setting.
The LiPA format is not only an advantageous tool for identification and detection of pathogens at the species level but also at higher or lower taxonomical levels. For instance, probe-configurations on LiPA strips can be selected in such a manner that they can detect a complete genus Neisseria, Listeria, etc.) or can identify subgroups within a genus (e.g.
subgroups in the Mvcobacterium avium-intracellulare-scrofulaceum complex) or can in some 10 cases even detect subtypes (subspecies, serovars, sequevars, biovars, etc. whatever is clinically relevant) within a species.
It should be stressed that the ability to simultaneously generate hyhridiz ion results .:with a number of probes is an outstanding benefit of the LiPA technology. In many cases the amount of information which can be obtained by a particular combination of probes greatly outnumbers the data obtained by using single probe assays. Therefor the selection of probes on the membrane strip is of utmost importance since an optimized set of probes will generate the maximum of information possible. This is more particularly exemplified further herein.
The fact that different probes can be combined on one strip also offers the possibility to conveniently cope with a lack of sensitivity due to sequence heterogenity in the target 20 region of the group of organisms to be detected. Due to this heterogenity, two or more probes may be required to positively identify all organisms of the particular group. These probes can be applied to membrane strips at different locations and the result is interpreted as positive if at least one of these probes is positive. Alternatively these probes can be applied as a mixture at the same location, hereby reducing the number of lines on a strip.
This reduction may be convenient in order to make the strip more concise or to be able to extend the total number of probes on one strip. Another alternative approach, in view of its practical benefits, is the synthesis of oligonucleotides harbouring the sequences of two (or more) different probes (=degenerate probes) which then can be further processed and applied to the strip as one oligonucleotide molecule. This approach would considerably simplify the manufacturing procedures of the LiPA-strips. For example, probes with nucleotide sequences A and B are both required to detect all strains of taxon X. In the latter alternative a probe can be synthesized having the nucleotide sequence AB. This probe will have the combined
II
characteristics of probes A and B.
By virtue of the above-mentioned properties the LiPA system can be considered as a preferential format for a hybridization method wherein several organisms need to be detected simultaneously in a sample. Moreover, as described in the examples section, the LiPA system is a preferred format for a selection method for the experimental evaluation and selection of theoretically designed probes.
However, it should be clear that any other hybridization assay, whereby different probes are used under the same hybridization and wash conditions can be used for the abovementioned detection and/or selection methods. For example, it may be possible to immobilize 10 the target nucleic acid to a solid support, and use mixtures of different probes, all differently labeled, resulting in a different detection signal for each of the probes hybridized to the o ta r g e t.
3As an example, the procedure to be followed for the detection of one or more organisms in a sample using the LiPA format is outlined below First, the nucleic acids of the organism(s) to be detected in the sample, is made available for amplification and/or hybridization.
Secondly, the nucleic acids, if present, are amplified with one or another target amplification system, as specified below. Usually, amplification is needed to enhance the subsequent hybridization signal. However for some samples or some organisms amplification might not be necessary. This might also be the case if, for the detection of the hybrids formed, highly sensitive signal-amplification systems are used.
Thirdly, eventually after a denaturation step, the nucleic acids present in the sample or the resulting amplified product are contacted with LiPA strips onto which one or more DNA-probes, allowing the detection of the organisms of interest, are immobilized, and hybridization is allowed to proceed.
Finally, eventually after having performed a wash step, the hybrids are detected using a convenient and compatible detection system. From the hybridization signals or patterns observed the presence or absence of one or several organisms screened for in that particular biological sample can be deduced.
The amplification system used may be more or less universal, depending on the specific application needed.
By using universal primers located in the conserved flanking regions (16S and 23S 311111 gene) of the rRNA spacer, the spacer region of most if not all organism of eubacteria origin will be amplified. The same result may be obtained by using a combition of different set i g ofprimers with reduced universality (multiplex amplification, i.e. an amplification procedure in which two or more primer sets are used simultaneously in one and the same reaction mixture).
For some applications it may be appropiate to amplify not all organism present in the sample but more specifically, beforehand defined taxa. This may be achieved using specific primers located either in less conserved parts of the flanking genes of the spacers MYCP1-5 for amplification of the spacer region of mycobacteria) or located in the 10 spacers themselves LIS-P1-P7 BRU-PI-4, CHTR-P1-2 and YEC-P-2 for specific amplification of the spacer region(s) of Listeia species, B ella species, a dia trachoniatis, and Yersinia enterocolitica respectively).
The present invention thus provides a method for detection and identification of at least one micro-organism, or for the simultaneous detection of several micro-organisms in a sample, comprising the steps of: if need be releasing, isolating and/or concentrating thepolynucleic acids from the S* micro-organism(s) to be detected in the sample; (ii) if need be amplifying the 16S-23S rRNA spacer reion, or a part of it, from the :micro-organism(s) to be detected, with at least one suitable primer pair; 20 (iii) hybridizing the polynucleic acids of step or (ii) with a set of probes comprising at least two probes, under the same hybridization and wash conditions, with said probes being selected from the sequences of table la or equivalents thereof and/or from taxon-specific probes derived from any of the spacer sequences represented in figs.
1-103, with said taxon-specific probe being selected such that it is capable of hybridizing under the same hybridization and wash conditions as at least one of the probes of table la; (iv) detecting the hybrids formed in step (iii); identification of the micro-organism(s) present in the sample from the differential hybridization signals obtained in step (iv).
The probes as mentioned in table la are all selected in such a way that they show the desired hybridization characteristics at a hybridization and wash temperature of 50C in a preferred hybridization and wash medium of 3X SSC and 20% formamide.
17 The term "equivalents" of a probe, also called "variants" or "homologues" or "obvious derivatives", refers to probes differing in sequence from any of the probes specified in table 1 either by addition to or removal from any of their respective extremities of one or several nucleotides, or by changing one or more nucleotides within said sequences, or a combination of both, provided that said equivalents still hybridize with the same RNA or DNA target as the corresponding unmodified probe sequence. Said equivalents share at least homology, preferably more than 80%, most preferably more than 85% homology with the corresponding unmodified probe sequence. It should be noted that, when using an equivalent of a probe, it may be necessary to modify the hybridization conditions to obtain the same specificity as the corresponding unmodified probe. As a consequence, since it is the aim of this invention to use a set of probes which work under the same hybridization and wash conditions, it will also be necessary to modify the sequence of he other probes, belonging to the same set as the original unmodified probe. These modifications can be done according to principles known in the art, e.g. such as hose described in Haies B 15 and Higgins S (Eds): Nucleic acid hybridization. Practical approach. IRL Press. Oxford,
UK,
1985.
The invention also provides for a method to select taxon-specific probes from the spacer region sequence(s) of said taxon, said probes being selected such that they show their desired hybridization characteristics under unified hybridization and wash conditions.
The term "unified" conditions means that these conditions are the same for the different probes enabling the detection of different taxa.
Preferentially, the present invention provides for a method as described above wherein at least 2 micro-organisms are detected simultaneously.
In a preferred embodiment, the set of probes as described in step (iii) is comprising at least two probes being selected from the sequences of table la, or equivalents thereof.
In another embodiment, the set of probes as described in step (iii) is comprising at least one probe being selected from the sequences of table la, or equivalents thereof, and at least one taxon-specific probe derived from any of the spacer sequences as represented in figs. 1-103.
In still another embodiment, the set of probes as described in step (iii) is comprising at least two taxon-specific probes derived from any of the spacer sequences as represented in figs. 1-103.
S
18 The present invention also provides for a method as described above, wherein the probes as specified in step (iii) are combined with at least one other probe, preferentially also from the 16S-23S rRNA spacer region, enabling the simultaneous detection of different pathogenic bacteria liable to be present in the same sample.
The organisms of clinical relevance present in biological samples may vary considerably depending on the origin of the sample. The most common pathogenic bacteria which may be found in sputum samples, or in samples originating from the respiratory tract, are Moraxella catarrhalis Streptococcius pneumomia Haemophilus influenzae Pseudomonas aeruginosa Mycoplasma pneumomiae Acinetobacter species 15 Mcobacterium species Staphylococcus aureus Leionella pneumophila A LiPA-strip harbouring spacer-probes enabling the detection of most if not all of these organisms would be extremely benificial for reasons explained above.
0 Evidently, this also applies for other biological samples, as there are cerebrospinal fluid, urogenital samples, gastrointestinal samples, blood, urine, food products, soil, etc. For example, a preferred panel for cerebrospinal fluid would contain probe combinations enabling the detection and differentiation of the following organisms Neisseria mniniti Streptococcus pnumoniae Streptococcus agalactiae Listeria monocytogene Mvcobacterium tuberculosis For some of the above mentioned organisms, spacer probes were already designed in a previous patent application (WO 91/16454). In order to be able to detect most pathogens possibly present in a sample in a single test, the probes of the present invention may be combined with at least one of the probes of WO 91/16454, or their obvious derivatives as specified in WO 91/16454. For clarity, these probes are listed hereafter: Neisseria ggnorrheoae: NGI I: CGATGCGTCGTTAFITCTACTTCGC NG12: TCGTACCTACCCGTFrGACTAGTAAGCAAAC Neisseria enntis:NMII:
GGTCAAGTGTGACGTCGCCCTG
NM12: GTITCTTGGTCAAGTGTGACGTC NMI3: GCGTrCGrTATAGCTATCTACTGTGC NM14: TGCGTTCGATA1TGCTATCTACTGTGCA
=FIGTTCTTGGTCAAGTGTGACGTCGCCCTGA
TGGATTCTG'ITCCAT7 NM16: TTGCCTAACATrCCG~H.GACTAGAACATCAGAC Haernophilus ducrevi HDI 1: TTATTATGCGCGAGGCATA~rG *Branhamella catharralis BC! 1: TTAAACATCTTnr--ACCAAG BC12: TIGATGM1AAACTFGCn'GGTGGA Bordetella pertussis BP1 1: CCACACCCATCCTCTGGACAGGC7 15 Haernophilus influenzae ElII1: ACGCATCAAATTfGACCGCACITT HI12: ACT GAAGTGAAjACTAAG trerntococcus mnLactiae SAIl: AATCGAAAGGTCAAA1Gn SA12: GGAAACCTGCCA1TGCGT~ SA13: TCCACGATCTAGAAATAGAn.GTAGA SA14: TCTAGT=AAAhGAAACTAGGTT Streptococcus pneumoniae SPI 1: GTGAGAGATCACCAAGTAATGCA 4*SP12: AGGAACTGCGCArGGTCT- SP13: GAGTTTATGACTGAAAGGTCAGA The invention thus provides for a method as described above, wherein said sample is originating from the respiratory tract, and wherein the set of probes as definied in step (iii) comprises at least one probe chosen from the following spacer probes: MYC-ICG-1 ACTGGATAGTGGITGCGAGCATTA (SEQ ID NO 1) MYC-ICG-22: CllCTGAATA GTGG'TGCGAGCATT (SEQ ID NO 2) MTB-ICG-1I: GGGTGCATGACAACAAAJGrI'GGCCA (SEQ ID NO 3) MTB-ICG-2: GAC'ITGITCCAGGTGTTGTCCCAC (SEQ ID NO 4) MTB-ICG-3: CGGCTAGCGGTGGCGTGTCT (SEQ ID NO MAI-ICG-1 CAACAGCAAATGA17GCCAGACACAC (SEQ ID NO 6)
C.
C.
C.
C
C C C.
*CC.
C..
C C
C
C
MIL-ICG- I1I MIL-ICG-22 MAC-ICG- I MAV-ICG- I MAV-ICG-22 MIN-ICG-1 M1N-ICG-2: MIN-ICG-.22: MIN-ICG-222 MIN-ICG-222: MAL-JCG-1 -IIEF-JCG- 1 MiAH-ICG-i: 15 MCO-ICG- I1I MTH-ICG- 1:I MT1J-1CG-2: MEF-ICG- 1: MKA-ICG- 1: MKA-ICG-2: MKA-ICG-3: MKA-ICGA4: MKA-ICG-6: MKA.-ICG-7: MKA-ICG-8: MKA-ICG-9: 3 0 MCH-ICG- I: MCH-ICG-2: MCH-ICG-3: 2 GAGGGG1TCCCGTCTGTAGTG (SEQ ID NO 7) TGAGGGG'ITCTCGTCTGTAGTG (SEQ ID NO 8) CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO GTGGCCGGCGTCATCGAA (SEQ ID NO 11) GCATAGTCC=AGGGCTGATGCG.IT (SEQ ID NO 12) GCTGATGCG'FrCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCG-FrCGTCGAAATGTGT (SEQ ID NO 14) TGATGCGTITCGTCGAAATGTGT (SEQ ID NO GGCTGATGCGTTCGTCGAAATGTGTAA (SEQ ID NO 16) ACTAGATGAACGCGTAGTCC17GT (SEQ ID NO 17) TGGACGAAAACCGGGTGCACA (SEQ*ID NO 18) GTGTAATTCTnITAACTCTTGTGTAAGTAT TGGCCGGCGTGyj'CATCGAAA GCACTrCAA7-1GGTGAAGTGCGAGCC GCc3TGGTCTrCATGGCCGG
ACCTGCCTGG
TCGGCTCGTTCTGAGTGGTGTC
GATGCGTITGCTACGGGTAGCGT
GATGCGTTGCCTACGGGTAGCGT
ATGCGITGCGCTACGGGTAGCGT
CGGGCTCTGTTCGAGAGTGTC
CCCTCAGGGA=CGGGTGTTG
GGACTCGTCCAAGAGTGTTGTCC
TCGGGC1TGGCCAGAGTGn
GGGTGCGCAACAGCAAGCGA
GATGCGflGCCCCTACGGG CCCTACGGGTAGCGTGy~'CT=G GGTGTGGAC=GAC~rCTGAATAG
CGGCAAAACGTCGGACTGTCA
GGGGTCrACfAGAA (SEQ ID NO 19) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ -ID NO 23) (SEQ ID NO 24) (SEQ ID NO (SEQ ID NO 26) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 29) (SEQ ID NO (SEQ ID NO 210) MGO-ICG-
I
MGO-ICG-2: MUJL-1CG
I:
MGV-ICG-1I MG V-IC-: MGV-ICG-3: MXE-ICG-
I
MSI-ICG-
I
MFO-ICC-
I
MFO-ICG-2: MML-ICG- 1: MML..ICG-2: MCE-ICG-1I 15 MflP-ICG-l PA-C
I:
PA-ICC 2: PA-ICG 3: PA-ICC 4: AACACCCTCGGGTGCTGTCC (SEQ ID NO 31) GTATGCGTTGTCG-n-.CGCGGC (SEQ 1ID NO 32) CGTGACGGGTCATCGTCTGTAG (SEQ ID NO 33) GlTFCGGGATG~rGTCCCACC (SEQ ID NO 175) CGACTGAGGTCGACGTGGTGT (SEQ ID NO 176) GGTGTCTAGCATGAATAGTGG.JlGC (SEQ ID NO 177) TCGGGCCGCGTGT1TCGTCAAA SQINO21 GTTGGGCAGCAGGCAGTAACC (SEQ ID NO 118) CCGACG~AGGr (SEQ ID NO 178) TCGrrGGATGCCCTCGCACCT (SEQ ID NO 179) ACTTGGCGTGGGATGCGGGAA (SEQ ID NO 180) CGGATCGA'flGAGTCIrTCCC (SEQ ID NO 181) TCTAAATGAJACGCACTCCCATGG (SEQ ID NO 189) TGAGGGAGCCCGTGCCTGTA (SEQ ID NO 190) CAGTG GTGGG (SEQ ID NO 191) TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) TGAATGTFCGTGGATGAACATGAT. (SEQ ID NO CACTGGTGATCATTCAAGTCAAG (SEQ ID NO 36)
TGAATGITCGT(G/A)(GAAGAC~GTICGT
S.
S
5555 5*
S
S.
S
S.
S
C. a d
S
CTCT1CACTGGTGATCA-1CAAGTCAAG (SEQ ID NO 3) PA-ICC 5:IDN 38 MPN-ICG 1: ATCCGTGGTAA-TACCCAAATCCCTGT (SEQ ID NO 49) MPN-ICG 2: CAG~rTAGACA-fCCGCTrCVTC (SEQ ID NO MGE-ICG 1: CACCCATAT1CGTGhrAAACCC (SEQ ID NO 51) MycoplasmaICG CAAAACTGAA&ACGACAATCTr.AfC S DN 2 STAU-ICG 1: TACCAACAAACCGAGTGATAAAGAGTI- (SEQ ID NO 53) STAU-ICG 2: CAGAAGATGCGGAATAACCTGAC (SEQ ID NO 54) STAU-ICC 3: AACGAAGCCGTATGTGAGCATnTGAC (SEQ ID NO STAU-ICC 4: GACTATCT'IACTTArA (SEQ ID NO 56) ACI-ICG 1 GCTrAAGTG3CACAGTGTCTAACTGA (SEQ ID NO 57) ACI-ICG 2: CACGGTAATAGTGTGATTGACGAG (SEQ ID NO 58) and more preferably from the following spacer probes:
S.
S
S
S
S. S
S
*5
U
MYC-ICG- 1: ACTGGATAGTGGTTGCGAGCATCTA MYC-ICG-22: CITCTGAATAGTGGTrGCGAGCATCT MTB-ICG- 1: GGGTGCATGACAACAAAGJTJGGCCA MTB-1CG-2:
GACTTGTTCCAGGTGTI'GTCCCAC
MTB-ICG-3:
CGGCTAGCGGTGGCGTGTCT
MAI-ICG-1: CAACAGCAAATGAT71GCCAGACACAC MIL-ICG-1 1: GAGGGGTTCCCGTCTGTAGTG MIL-ICG--22: TGAGGGGTrCTCGTCTGTAGTG MAC-IC-i
CACTCGGTCGATCCGTGTGGA
MIAV-ICG-1:
TCGGTCCGTCCGTGTGGAGTC
MAV-ICG-22:
GTGGCCGGCG'ITCATCGA&A
MIN-ICG- 1: GCAiAGTCCTTAGGGCTGATGCGTT MAL-ICG- 1: ACTAGATGAACGCGTAGTCCPFGT MCO-ICG- I I TGGCCGGCGTGFPCATCGIAA 15 MTH-ICG- 1: GCACIFCAATr1GGTGAAGTGCGACC MVTH-ICG-2:
GCGTGGTCTI'CATGGCCGG
MEF-ICG-1 1: ACGCGTGGTCCrI'CGTGG MSC-ICG-1: TCGGCTCGITrCTGAGTGGTGTC MKA-ICG-3: ATGCGTTrGCCCTACGGGTAGCGT 20 MKA-ICG4:
CGGGCTCTGTI'CGAGAGTTGTC
CCCTCAGGGAT!T1CTGGGTG7FG MKA-ICG-6: GGACTCGTCCAAGAGTGTh'GTCC MKA-ICG-7: TCGGGCTGGCCAGAGCTG77n MKA-ICG-8:
GGGTGCGCAACAGCAAGCGA
MKA-ICG-9:
GATGCG'TTGCCCCTACGGG
CCCTACGGGTAGCGTG'p'C7MT MCH-ICG- I: GGTGTGGACrTGAC'TCTGAATAG MCH-ICG2:
CGGCAAAACGTCGGACTGTCA
MCH-IICG-3: GGTGTGGTCCM GAC'n'ATGGATAG MGO-ICG-.5:
CGTGAGGGGTCATCGTCTGTAG
MUL-ICG- I GGTITCGGGATGTI'GTCCCACC MGV-ICG 1: CGACTGAGGTCGACGTGGTGT (SEQ ID NO 1) (SEQ ID NO 2) (SEQ ID NO 3) (SEQ ID NO 4) (SEQ ID NO (SEQ ID NO 6) (SEQ ID NO 7) (SEQ ID NO 8) (SEQ ID NO 9) (SEQ ID NO (SEQ ID NO 11) (SEQ ID NO 12) (SEQ ID NO 17) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ ID NO 23) (SEQ ID NO 24) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 29) (SEQ ID NO (SEQ ID NO 210) (SEQ ID NO 33) (SEQ ID NO 175) (SEQ ID NO 176) a.
a a MGV-ICG-2: MGV-ICG-3: MXE-ICG-1: MSI-ICG-1I MFO-ICG-1: MFO-ICG-2: MML-ICG-1: MML-ICG-2:
MCE-ICG-I:
MHP-ICG-1 PA-ICG 1: PA-ICG 4: PA-ICG 5: MPN-ICG
I:
MPN-ICG 2: MGE-ICG 1: Mycoplasma-ICC STAU-ICG 1: 20 STAU-ICG 2: STAU-ICG 3 STAU-ICG 4: ACI-ICG 1: ACI-ICG 2: or equivalents of
GGTGTITGAGCATGAATAGTGGTJI'GC
TCGGGCCGCGTGITCGTCAAA
G'TGGGCAGCAGGCAGTAACC
CCGGCAACGGTrACGTGTrC
TCG'TGGATGGCCTCGCACCT
ACTFGGCGTGGGATGCGGGAA
CGGATCGATTGAGTGCTTGTCCC
TCTAAATGAACGCACTGCCGATGG
TGAGGGAGCCCGTGCCTGTA
CATGTTGGGC'TGATCGGGTGC
(SEQ ID NO 177) (SEQ ID NO 211) (SEQ ID NO 178) (SEQ ID NO 179) (SEQ ID NO 180) (SEQ ID NO 181) (SEQ ID NO 188) (SEQ ID NO 189) (SEQ ID NO 190) (SEQ ID NO 191) TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34)
TGAATG
3 TCGT(G/A)(G/A)ATGAACA''GAIT7CTGGTC (SEQ ID NO 37) CTC1TTCACTGGTGATCAkTCAAGTCAAG (SEQ ID NO 38) ATCGGTGGTAAAITAAACCCAAATCCCTGT (SEQ ID NO 49) CAGTCTGAAAGAACAT'1rCCGCTTCT77C (SEQ ID NO CACCCATrAATT=CGGTGyIAAPACCC (SEQ ID NO 51) CAAAACTGAAAACGACAATCITICTAGTTCC (SEQ ID NO 52) TACCAAGCAAAACCGAGTGAATGAGT (SEQ ID NO 53) CAGAAGATGCGGAATAACGTGAC (SEQ ID NO 54) AACGAAGCCGTATGTGAGCATflGAC (SEQ ID NO GACGTATnGTAAC GGACTFAT (SEQ ID NO 56) GC'TFAAGTGCACAGTGCTCTAAACTGA (SEQ ID NO 57) CACGGTAArrAGTGTGATCTGACGAG (SEQ ID NO 58) said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 76 to 106, 157 to 174, 124, 125, 111 to 115, 139 to 144, or 126 to 130, and with said probes or equivalents being possibly used in combination with any probe detecting at least one of the following organisms: Haemopi infuenzae, Sinetococcus pneumoniae, Moraxella cjatarrhalis or Bordetella pertussis.
The above mentioned probes of the invention are designed for the detection of Mycobacterium species (SEQ ID NO 1 to 33 and 175 to 191), of Pseudomonas aeru.:inosa (SEQ ID NO 34 to 38), of Mycoplasma species (SEQ ID NO 49 to 52), of -S-t-ahlococcus aureus (SEQ ID NO 53 to 56) and of Acinetobacter b~aumanii (SEQ ID NO 57 and 58).
Preferentially, at least two, three, four, five, six, seven, eight or more of said probes are used simultaneously.
The invention also relates to a method as described above, wherein said sample is a sample taken from the cerebrospinal fluid, and wherein the set of probes as described in step 10 (iii) comprises at least one probe chosen from the following spacer probes: a a at a. 4 a MYC-ICG-1 MYC-ICG-22: MTB-ICG-i MTB-ICG-2: MTB-ICG-3: LIS-ICG I1 LMO-ICG 1: ACTGGATAGTGGnrGCGAGCATCTA (SEQ ID NO 1) ClfTCTGAATAGTGG'FGCGAGCATCT (SEQ ID NO 2) GGGTGCATGACAACAALAG'GGCCA (SEQ ID NO 3) GACTTGTCCAGGTGyI-GTCC~CA (SEQ ID NO 4) CGGCTAGCGGTGGCGTGyjTrjJ (SEQ ID NO CAGACGGACTTAATAT (SEQ ID NO 39)
AACACMATCTAAGAATGTA
LMO-ICG 2: TGAGAGG3AGTATCTCAGTATG.GT~c LMO-ICG 3: AGGCACTATGC'ITGAAGCATCGC LISP-ICG 1: CGII1CATAAGCGATCGCACGTT and preferably from the following spacer probes: MYC-ICG- 1 ACTGGATAGTGGITGCGAGCATCTA MYC-ICG-22:
CTITCTGAATAGTGGTTGCGAGCATCT
MTB-ICG-1 GGGTGCATGACAACAPAAGnTGGCCA MTB-ICG-2:
GACTTGTITCCAGGTGTTGTCCCAC
MTB-ICG-3: CGGCTAGCGGTGGCGTGpITCT LIS-ICG 1 CAAGTAACCGAGAATCATCTGAAAGTGAATC LMO-ICG 3: AGGCACTATGC~rGAAGCATCGC LISP-ICG 1: CG I1I1TlCATAAGCGATCGCACGTT or equivalents of said probes, (SEQ ID NO (SEQ ID NO 41) (SEQ ID NO 42) (SEQ ID NO 212) (SEQ ID NO 1) (SEQ ID NO 2) (SEQ ID NO 3) (SEQ ID NO 4) (SEQ ID NO (SEQ ID NO 39) (SEQ ID NO 42) (SEQ ID NO 212) and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 116, 118-121, or 213-215, and with said probes or equivalents being possibly used in combination with any probe detecting at least one of the' following organisms: Neisseria meningitidis, Haem hiu influenzae or Streptococcus pneumoniae.
The above mentioned probes of the invention are designed for the detection of Mvcobacterium species, and more particularly Mvcobactrium tuberculosis (SEQ ID NO 1 to and of Listeria species, more particularly Listeria monocvtoenes (SEQ ID NO 39 to S42).
Preferentially, at least two, three, four, five, six, seven, eight or more of said probes are used simultaneously.
The invention also relates to a method as described above, wherein said sample is a sample taken from the urogenital tract, and wherein the set of probes as described in step (iii) comprises at least one probe chosen from the following spacer probes: CHTR-ICG 1 GGAAGAAGCCTGAGAAGGTTTCTGAC (SEQ ID NO CHTR-ICG 2 GCATTATATGTAAGAGCAAGCATTCTATTCA (SEQ ID NO 46) CHTR-ICG 3 GAGTAGCGTGGTGAGGACGAGA (SEQ ID NO 47) CHTR-ICG 4: GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) CHPS-ICG 1: GGATAACTGTCTTAGGACGGTITGAC (SEQ ID NO 48) SMGE-ICG 1: CACCCATTAATIITr TCGGTGTTAAAACCC (SEQ ID NO 51) Mycoplasma-ICG CAAAACTGAAAACGACAATCTTTCTAGTTCC (SEQ ID NO 52) or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 122, 123, 197, 124 or 125, with said probes or equivalents being possibly used in combination with any probe detecting at least one of the following organisms: Neisseria onorrhoeae, Haemo us ducrevi or Streptcoccus aalactiae.
The above mentioned probes of the invention are designed for the detection of
S.
S.
S
3 Chiarnydia species (SEQ ID NO 45 to 48 and 201) and of MvcoplIasma species (SEQ ID NO 51 and 52).
Preferentially, at least two, three, four, five, six or seven of said probes are used simultaneously.
The invention also relates to a method as described above, wherein said sample is a sample taken from food, and wherein the set of probes as defined in step (iii) comprises at least one probe chosen from the following spacer probes: LIS-ICC I1: CAAGTAACCGAGAATCATTGAAAGTCAATC (SEQ ID NO 39) LMO-ICG 1: AACAC A'7GAAGAA7GTA (SEQ ID NO LMO-ICG 2: TGGG~ATC1CTATTT7,7 (SEQ ID NO 41) LMO-ICG 3: AGCCACTATCCTrCAAGCATCGC (SEQ ID NO 42) LWV-ICC 1: GTTAGCATAAATAGTAACTAmTATGACACAATC (SEQ ID NO 43) 15 LSE-ICG 1 :A~ACTATGGACA AGCCA (SEQ ID NO 44) LISP-ICC 1: CGT TCATAAGCGATCGCACG.r (SEQ ID NO 212) STAU-ICG 1 TACCAAGCAAAACCGAGTGAATAAGAG~r (SEQ ID NO 53) STAU-ICG 2: CAGAAGATGCGGAATAACGTGAC (SEQ ID NO 54) STAU-ICG 3 AACGAAGCCGTATGTGAGCAMFGAC (SEQ ID NO STAU-ICG 4: GACT~~CTTAC~FATA (SEQ ID NO 56) BRU-ICG 1 CGTGCCCCTCGICTCM (SEQ ID NO 59) BRU-ICG 2: 7rCGCC1TCGGGGTGGATCTGTG (SEQ ID NO BRU-ICG 3 GCGTAGTAGCG'JTTGCGTCGG (SEQ ID NO 193) BRU-ICG 4: CCCAAGAACCTTGCI'CAAGCC (SEQ ID NO 194) SALM-ICG 1 CAACGCrCGGCC~rA (SEQ ID NO 61) SALM-ICC 2: GAGAG~C~ATCCC (SEQ ID NO 62) STY-ICG 1 GTCAAACCTCCAGGGACGCC (SEQ ID NO 63) SED-ICG 1 CGTAATGTTGAAGCGTpiGCC (SEQ ID NO 64) YEC-ICG 1: GGAAAAGGTACTGCACGTGAC (SEQ ID NO 198) 0 YEC-ICG 2: GACAGCTGAAJyI'ATCCCTcC (SEQ ID NO 199) YEC-ICG 3: GCTACCTGTTCATGTAATGACTCAC (SEQ ID NO 200) and preferably from the following spacer probes: LIS-ICG 1 LMO-ICG 3: LISP-ICG 1: STAU-ICG I: STAU-ICG 2 STAU-ICG 3: STAU-ICG 4: B3RU-ICG 2: BRU-ICG 3: B3RU-ICG 4 SALM-ICG 1: YEC-ICG 1: YEC-ICG 2: YEC-ICG 3:
CAAGTAACCGAGAATCATCTGAAAGTGAATC
AGGCACTATGCTTGAAGCATCGC
CGTI=CATAAGCGATCGCACGfl TACCAAGCAPAACCGAGTGAATAAAGAG.J7
CAGAAGATGCGGAATAACGTGAC
AACGAAGCCGTATGTGAGCATTGAC
GACTA~CTTACTTATA
TTCGCTTCGGGGTGGATCTGTG
GCGTAGTAGCG M GCGTCGG
CGAGACTCCAC
CAAAACTGACT1'ACGAGTCACGTTGAG GGAAAAGGTACTC-CAm---T-
(ACTG
GACAGCTGAAACYPATCCCTCCG
GCTACCTGTrGATGTAATGAGTCAC (SEQ ID NO 39) (SEQ ID NO 42) (SEQ ID NO 212) (SEQ ID NO 53) (SEQ ID NO 54) (SEQ ID NO (SEQ ID NO 56) (SEQ ID NO (SEQ ID NO 193) (SEQ ID NO 194) (SEQ ID NO 61) (SEQ ID NO 198) (SEQ ID NO 199) or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived fom the spacer region sequence corresponding to one of the micro-orgais~ to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 116, 118-121, 213-215, 139-144, 131, 132, 154, 133-138, 195 or 196.
with said probes or equivalents being possibly used in combination with any probe detecting strains of Campylobacter species.
The above mentioned probes of the invention are designed for the detection of Listeria species (SEQ ID NO 39 to 44), of Stahylococcus species (SEQ ID NO 53 to 56), of Brucella species (SEQ ID NO 59, 60, 193 and 194), of Salmonella species (SEQ ID NO 61 to 64) and of Yersinia enterocolitica (SEQ ID NO 198 to 200).
Preferentially, at least two, three, four, five, six, seven, eight or more of said probes are used simultaneously.
The invention also relates to a method as described above, wherein said sample is a sample taken from the gastrointestinal tract of a patient, and wherein the set of probes as defined in step (iii) comprises at least one probe chosen from the following spacer probes: SALM-ICG 1: CAAAACTGACTTACGAGTCACGTrTGAG (SEQ ID NO 61) SALM-ICG 2: GATGTATGCTITCG'ITA'rCCACGCC (SEQ ID NO 62)
S
S
S
S.
S S
S
S S. .555
S
S.
S S
S
S
5**SS
S
28 STY-ICG I GGTCAAACCTCCAGGGACGCC (SEQ ID NO 63) SED-ICG 1I GCGGTAATGTGTGAAAGCGTTGCC (SEQ ID NO 64) YEC-ICG 1: GGAAAAGGTACTGCACGTGACTG (SEQ ID NO 198) YEC-ICG 2: GACAGCTGAAACTI'ATCCCTCCG (SEQ ID NO 199) YEC-ICG 3: -GCTACCTGTrGATGTAATGAGTCAC (SEQ ID NO 200) and preferably from the following spacer probes: SALM-ICG 1: CAAAACTGACTI'ACGAGTCACGMGAG (SEQ ID NO 61) YEC-ICG 1: GGAAAAGGTACTGCACGTGACTG (SEQ ID NO 198) YEC-ICG 2: GACAGCTGAAAC'ITATCCCTCCG (SEQ ID NO 199) YEC-ICG 3: GCTACC'GT'TGATGTAATGAGTCAC (SEQ ID NO 200) or equivalents of said probes, and/or wherein the set of probes comprises at least one =0xon -s-rec fic pro be derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 133-138 or 195-196, with said probes or equivalents being possibly used in combination with any probe detecting Campylobacter species.
The above mentioned probes of the invention are designed to detect Salmonella species (SEQ ID NO 61 to 64) and Yersinia nterocolitica (SEQ ID NO 198 to 200).
20 Preferentially, at least two, three, four, five, six or seven of said probes are used simultaneously.
The invention also relates to the use of the selected probes or their equivalents for the detection of specific bacterial taxa, said taxa being either a complete genus, or a subgroup within a genus, a species, or even a subtype within a species.
The invention thus provides for a method as described above to detect and identify one or more strains of Mvcobacterium species and subspecies in a sample, wherein step. (iii) comprises hybridizing to at least one of the following probes: MYC-ICc-l ACTGGATAGTGGrfGCGAGCATCTA (SEQ ID NO 1) MYC-ICG-22: CTJ'CTGAATAGTGG'TFGCGAGCATCT (SEQ ID NO 2) MTB-ICG-1 GGGTGCATGACAACAAxApG'pGGCCA (SEQ ID NO 3) MTB-ICG-2: GACflTTCCAGGTGTGTCCCAC (SEQ ID NO 4) MTB-ICG-3: CGGCTAGCGGTGGCGTG~I'CT (SEQ ID NO ft.
ft ft ft.. ft ft. ft ft ft ft...
ft ft...
ft.
ft ft ft.. a ft. ft.
ft ft ft ft ft ft. ft ft ft ft.
ft ft...
ft...
ft ft...
ft a ft ft MAI-ICG-1: MIL.-ICG- I1I MIL-ICG-22: MAC-ICG- 1 MiAV-ICG-1I MAV-ICG-22: MIN-ICG-1 MIN-JCG-2: MIN-ICG-22: 10 MIN-ICG-222: MIN-ICG-2222 MAL-ICG- 1: MHEF-ICG-1 MIAH-ICG-1I MCO-JCG- I1I: MTH-ICG.-11: MTH-ICG-2: MEF-ICG- 11: 20 MSC-ICG-1 MKA-ICG-1I MIKA-ICG-2: MKA-ICG-3: MKA-ICG-4: MIKA-ICG-5: MKA-ICG-6: MKA-ICG-.7: MKA-ICG-8: MKA-ICG-9: MKA-iCG-1O: MCH-ICG- I MCH-ICG-2: CAACAGCAAATGATTGCCAGACACAC (SEQ ID NO 6) GAGGGGTTCCCGTCTGTAGTG (SEQ ID NO 7) TGAGGGG'FFCTCGTCTGTAGTG (SEQ ID NO 8) CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO 'GTGGCCGGCGTTCATCGAAA (SEQ ID NO 1.1) GCATAGTCCTAGGGCTGATGCGYT' (SEQ ID NO 12) GCTGATGCGTTCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCG'IrCGTCGAAATGTGT (SEQ ID NO 14) TGATGCGTTCGTCGAAATGTGT (SEQ ID NO GGCTGATGCGTTCGTCGAAATGTGTAA (SEQ ID NO 16) A CTAGATGAA CGC G3TAC-TCrJF'G T (SEQ ID NO 17) TGGACGAAAACCGGGTGCACAA (SEQ ID NO 18) GTGTAATTC I nAACTCTI'GTGTGTAAGTAAGTG TGGCCGGCGTG'1TCATCGAAA
GCACTTCAATTGGTGAAGTGCGAGCC
GCGTGGTCTI'CATGGCCGG
ACGGGTGGTCCTFCGTGG
TCGGCTCG'ITCTGAGTGGTGTC
GATGCGTTGCTACGGGTAGCGT
GATGCG71'GCCTACGGGTAGCGT ATGCGTrGCCCTACGGGTAGCGT CGGGCTCTG'VrCGAGAGTTGTC CCCTCAGGGA1TICTGGGTGTrIG GGACTCGTCCAAGAGTGyr7GTCC TCGGGCTGGCCAGAGCTG'r
GGGTGCGCAACAGCAAGCGA
GATGCGTTGCCCCTACGGG
CCCTACGGGTAGCGTGTT111G GGTGTGGAC717rGACT'CTGAATAG
CGGCAAAACGTCGGACTGTCA
(SEQ ID NO 19) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ ID NO 23) (SEQ ID NO 24) (SEQ ID NO (SEQ ID NO 26) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 29) (SEQ ID NO MGO-ICG-1I: AACACCCTCGGGTGCTGTCC MGO-ICG-2: GTATGCGTFFGTCGcFFCGCGGC
CGTGAGGGGTCATCGTCTGTAG
MUL-ICG-1I GGMTCGGGATG'1rGTCCCAcC MGV-ICG- I CGACTGAGGTCGACGTGGTGT MGV-ICG-2: GGTGTfTGAGCATrGAATAGTGGTPGC MXE-ICG-1I GITrGGGCAGCAGGCAGTAACC MSI-ICG-I: CCGGCAACGGrACGTGyrC MFO-ICG-1I TCG'TTGGATGGCCTCGCACCT 10 MFO-ICG'-2: ACTTGGCGTGGGATGCGGGAA MML-ICG- I: CGGATCGA1TGAGTGC'ITGTCCC MML-.ICG-2: TCTAAATGAACGCACTGCCGA'iuGG MCE-ICG-1I TGAGGGAGCCCGTGCCTGTA MHP-.ICG-1I CATGTI'GGGCTTGATCGGGTGC (SEQ ID NO 31) (SEQ ID NO 32) (SEQ ID NO 33) (SEQ ID NO 175) (SEQ ID NO 176) (SEQ ID NO 177) (SEQ ID NO 178) (SEQ ID NO 179) (SEQ ID NO 180) (SEQ ID NO 181) (SEQ ID NO 188) (SEQ ID NO 189) (SEQ ID NO 190) (SEQ ID NO 191) @0 0 0 0 00 0.
0 0 @000 @000 *0 0 00* 0 9 0 0*99 0 *0 0 *0 *0 0 00 0 0 0009 *00* 0000 *0 p .00 0 0*0900 0 and more preferably to at least one probe of the following restricted group of spacer probes: MYC-ICG-1 MYC-ICG-22: MTB-ICG-1 MTB-ICG-2: 20 MTB-ICG-3: MIAI-ICG-1,: MIL-ICG-11: MIL-ICG-22: MAC-ICG- 1: MAV-ICG-1: MAV-ICG-22: MIN-ICG-1: MAL-ICG-1: MTH-ICG-11 MTH-ICG-2: MEF-ICG-1 1I
ACTGGATAGTGGTTGCGAGCATCTA
CTFFCTGAATAGTGGIFGCGAGCATCT
GGGTGCATGACAACAAAGTI'GGCCA
GAC'ITGTICCAGGTGTTGTCCCAC
CGGCTAGCGGTGGCGTGTTCT
CAACAGCAAATGArITGCCAGACACAC
GAGGGGTFCCCGTCTGTAGTG
TGAGGGGTFCTCGTCTGTAGTG
CACTCGGTCGATCCGTGTGGA
TCGGTCCGTCCGTGTGGAGTC
GTGGCCGGCGTrCATCGjAA GCATAGTCCTITAGGGCTGATGCGfl
ACTAGATGAACGCGTAGTCCTTGT
TGGCCGGCGTGTrCATCGAAA GCAC17CAATTGGTGAAGTGCGAGCC GCGTGGTCTrCATGGCCGG
ACGCGTGGTCCITCGTGG
(SEQ ID NO 1) (SEQ ID NO 2) (SEQ ID NO 3) (SEQ ID NO 4) (SEQ ID NO (SEQ ID NO 6) (SEQ ID NO 7) (SEQ ID NO 8) (SEQ ID NO 9) (SEQ ID NO (SEQ ID NO 11) (SEQ ID NO 12) (SEQ ID NO 17) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ ID NO 23) 0* SO 0.
*00 MSC-ICG-1 MiKA-ICG-3: MKA-ICG-4: M[KA-ICG-6: MvKA-ICG-7: MiKA-ICG-8: IvfA-ICG-9: MCH-ICG- 1: MCH-ICG-2: MCH-ICG-3: MUL-ICG-1: 15 MGV-ICG-1: MGV-ICG-2: MGV-ICG-3: MIXE-ICG-1: MSI-ICG-1 MFO-ICG-1: MFO-ICG-2: MML-ICG-1I MML-ICG-2: MCE-ICG-1I MHP-ICG-l1 TCGGCTCGTrCTGAGTGGTGTC ATGCGT1TGCCCTACGGGTAGCGT
CGGGCTCTGTI'CGAGAGTTGTC
CCCTCAGGGATTTCTGGGTG1TG
GGACTCGTCCAAGAGTGTITGTCC
TCGGGCTTGGCCAGAGCTG77
GGGTGCGCAACAGCAAGCGA
GATGCGITGCCCCTACGGG
CCCTACGGGTAGCGTGTTC IITITlG GGTGTGGACrF=TGA CTGAATAG
CGGCAAAACGTCGGACTGTCA
GGTGTGGTC=rAxC=-IXTGGATAG
CGTGAGGGGTCATCGTCTGTAG
GG MTCGGGATGTITGTCCCACC
CGACTGAGGTCGACGTGGTGT
GGTGMIIGAGCAITGAATAGTGG'ITGC
TCGGGCCGCGTGTrCGTCAAA
GTVTGGGCAGCAGGCAGTAACC
CCGGCAACGG1TACGTG~rC
TCGTI'GGATGGCCTCGCACCT
ACTFGGCGTGGGATGCGGGAA
CGGATCGATITGAGTGCTrGTCCC
TCTAAATGAACGCACTGCCGATGG
TGAGGGAGCCCGTGCGTGTA
CATGTrGGGCTI7GATCGGGTGC (SEQ ID NO 24) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 29) (SEQ ID NO (SEQ ID NO 210) (SEQ ID NO 33) (SEQ ID NO 175) (SEQ ID NO 176) (SEQ ID NO 177) (SEQ ID NO 211) (SEQ ID NO 178) (SEQ ID NO 179) (SEQ ID NO 180) (SEQ ID NO 18 1) (SEQ IDF NO 188) (SEQ ID NO 189) (SEQ ID NO 190) (SEQ ID NO 191) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 76-110, or 157-174 provided said probe hybridizes specifically to a Mycobacterium species., The sequences represented by SEQ ID NO 76-i110 and 157-174 are new.
Preferentially, at least two, three, four, five, six, seven, eight or more of said probes are used simultaneously.
As described above, the preferred restricted set of probes are those probes which showed a sensitivity and specificity of more than 80%, preferably more than 90%, most preferably more than 95 under the specific hybridization conditions as described in the examples section.
In one specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium tuberculosis complex strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MTB-ICG-l: GGGTGCATGACAACAAAGIIGGCCA (SEQ ID NO 3) MTB-ICG-2: GAC'flGTT'CCAGGTGTTGTCCCAC (SEQ ID NO 4) 1M-ICG-3: CGGCTAGCGGTGGCGTGTrCT (SEQ ID NO 10 or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 76 provided said probe hybridizes specifically to the M. tuberculosis complex. The M. tubercuiosis complex -:omprises M. tuberculosis, M. hqyis, M. hgyxisBCG, M. africanum and M. microti strains.
The sequence represented in SEQ ID NO 76 is new.
Preferentially, at least two, or three of said probes are used simultaneously.
In another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mvcobacterium strains from the MAIS-complex, wherein step (iii) comprises hybridizing to at least one of the following probes: S. 5
S
S.
S
IM"AI-ICG-l MIL-ICG-li1 MIL-ICG-22: MAC-ICG-i MAV-ICG-l: MAV-ICG-22: MIN-ICG-l: MIN-ICG-2: MIN-ICG-22: MIN-ICG-222: MIN-ICG-2222 MAL-ICG-l MHEF-ICG-l MAH-ICG-l CAACAGCAAATGfTrGCCAGACACAC (SEQ ID NO 6) GAGGGGTF7CCCGTCTGTAGTG (SEQ ID NO 7) TGAGGGG'17CTCGTCTGTAGTG (SEQ ID NO 8) CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO GTGGCCGGCGTTCATCGAAA (SEQ ID NO 11) GCATAGTCC7rAGGGCTGATGCG7 (SEQ ID NO 12) GCTGATGCGTTCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCGTI'CGTCGAAATGTGT (SEQ ID NO 14) TGATGCG'ITCGTCGAAATGTGT (SEQ ID NO *GGCTGATGCG77CGTCGAAATGTGTAAJ (SEQ ID NO 16) ACTAGATGAACGCGTAGTCCTGT (SEQ ID NO 17) TGGACGAAAACCGGGTGCACA (SEQ ID NO 18) GTTA CT ACCTTTTATAT (SEQ ID NO 19) MCO-ICG-11 TGGCCGGCGTGTTCATCGAAA (SEQ ID NO MTH-ICG-11 GCACTTCAATTGGTGAAGTGCGAGCC (SEQ ID NO 21) MTH-ICG-2 GCGTGGTCTTCATGGCCGG (SEQ ID NO 22) MEF-ICG-11 ACGCGTGGTCCTTCGTGG (SEQ ID NO 23) MSC-ICG-1 TCGGCTCGTTCTGAGTGGTGTC (SEQ ID NO 24) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 77-100 or 108-110, provided said probe hybridizes specifically to strains from the MAIS complex. The MAIS complex as defined in 10 this invention comprises all strains of M. avium, M. intracellulare and M. scrofulaceum and all strains closely related to the above mentioned species and not clearly belonging to another defined Mycobacterium species. The 1ntter group of strains are defined in this invention as "MIC strains" intracellulare complex).
Preferentially, at least two, three, four, five, six, seven, eight or more of said probes are used simultaneously.
In still another specific embodiment, the invention provides for a method as described above, to detect and identify one or more M. avium and M. paratuberculosis strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MAV-ICG-1 TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO MAV-ICG-22: GTGGCCGGCGTTCATCGAAA (SEQ ID NO 11) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 77 and 78 provided said probe hybridizes specifically to M. avium or M. paratuberculosis.
The sequences as represented in SEQ ID NO 77 and 78 are new.
Preferentially, this embodiment uses both probes in combination.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium intracellulare strains and MICstrains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MAI-ICG-1 CAACAGCAAATGATTGCCAGACACAC (SEQ ID NO 6) MIL-ICG-11 GAGGGGTTCCCGTCTGTAGTG (SEQ ID NO 7) MIL-ICG-22 TGAGGGGTTCTCGTCTGTAGTG (SEQ ID NO 8) M4AC-ICG-1: MIN-ICG- I MIN.-ICG-2: MIN-ICG--22: SMIN-ICG-222: MIN-ICG-2222 MAL-ICG-l MHEF-ICG.-1I M4AH-ICG-1: CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) GCATAGTCCTF7AGGGC1TGATGCGr (SEQ ID NO 12) GCTGATGCGT7CGTCGkAATGTGTA (SEQ ID NO 13) CTGATGCGT-rCGTCGAATGTGT (SEQ ID NO 14) TGATGCGTICGTCGAAATGTGT (SEQ ID NO GGCTGATGCGTn'CGTCGAAATGTGTAA (SEQ ID NO 16) ACTAGATGAACGCGTAGTCC~rGT (SEQ ID NO 17) TGGACGAAAJLCCGGGTGCACAA (SEQ ID NO 18) GTGTAATTCTM-MTAACTc~GTGTGTAAGTAAGTG (SEQ ID NO 19) TGGCCGGCGTGTTCATCGAAA (SEQ ID NO GCACTTCAATTGGTGAAGTGCGAGCC (SEQ ID NO 21) GCGTGGTC'TrCATGGCCGG (SEQ ID NO 22) ACGCGTGGTCCTh'CGTGG (SEO ID NO 23 *5
S
MTH-ICG-1 I MTI1-ICG-2: MEF-ICG- 1:I or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98 or 99 provided said probe hybridizes specifically to M.
intracellulare strains and MIC-strains.
The sequences as represented in SEQ ID NO 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 20 89, 90, 91, 92, 93, 94, 95, 96, 97, 98 or 99 are new.
Preferentially, at least two, three, four, five, six, seven, eight or more of said probes are used simultaneously.
In still another specific embodiment, the invention provides for a method as described above, to detect and identify one or more Mycobacterium inacellujare strains in a sample, wherein step (iii) comprises hybridizing to at least the following probes: MIN-ICG- I: GCATAGTCCTTAGGOCTGATGCG~r (SEQ ID NO 12) or to equivalents; of said probe, and/or to any probe derived from SEQ ID NO 89 provided said probe hybridizes specifically to M. intracellulare strains.
In still another specific embodiment, the invention provides for a method as described above, to detect and identify one or more M cobacterium crofulaceum strains in a sample, wherein step (iii) comprises hybrdizing to the following probe: MSC-ICG- 1: TCGGCTCG'ITCTGAGTGGTGTC (E DN 4 (SEQ ID NO 24) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 100 provided said probe hybridizes specifically to M. scrofulaceum.
The sequence as represented in SEQ ID NO 100 is new.
in still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium kansasii strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: a a a a *a a a a MIKA-ICG-1 10 MKA-ICG-2: MIKA-ICG-3: MKA-ICG-4: MKA-ICG-5: MKA-ICG-6: MKA-ICG-7: MKA-ICG-8: MKA-ICG-9: GATGCG=hGCTACGGGTAGCGT
GATGCGTFTGCCTACGGGTAGCGT
ATGCGTI'GCCCTACGGGTAGCGT
CGGGCTCTGITCMGAAGTTGTC
CCCTCAGGGA7TICTGGGTGTI'G
GGACTCGTCCAAGAGTGTTGTCC
TCGGG GGCCAGAGCTGTT
GGGTGCGCAACAGCAAGCGA
GATGCG77GCCCCTACGGG
CCCTACGGGTAGCGTGTITCTITG
(SEQ ID NO (SEQ ID NO 26) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) and more preferably to: MKA-ICG-3: ATGCGTI'GCCCTACGGGTAGCGT MKA-ICG-4: CGGGCTCTGT7CGAGAGTTGTC MKA-ICG-5 CCCTCAGGGATI1CTGGGTGT7G MKA-ICG-6: GGACTCGTCCAAGAGTG7ITGTCC MKA-ICG-7: TCGGGCTTGGCCAGAGCTGT MKA-ICG-8: GGGTGCGCAACAGCAAGCGA MKA-ICG-9: GATGCGT7GCCCC-TACGGG
CCCTACGGGTAGCGTGITC=GIX
or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 101, 167, 168 or 169 provided said probe hybridizes specifically to MA. kansasii.
The sequences as represented in SEQ ID NO 101, 167, 168 and 169 are new.
Preferentially, at least two, three or four of said probes are used simultaneously.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterum helon strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MCH-ICG-1 GGTGTGGACTTGACTTCTGAATAG (SEQ ID NO 29) MCH-ICG-2 CGGCAAAACGTCGGACTGTCA (SEQ ID NO MCH-ICG-3": GGTGTGGTCCTTGACTTATGGATAG (SEQ ID NO 210) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 102, 103 or 174 provided said probe hybridizes specifically to M. chelonae. According to another preferential embodiment, these three probes are used in combination.
The sequences as represented in SEQ ID NO 102, 103 and 174 are new.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium gordonae strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MGO-ICG-1: AACACCCTCGGGTGCTGTCC (SEQ ID NO 31) MGO-ICG-2: GTATGCGTTGTCGTTCGCGGC (SEQ ID NO 32) CGTGAGGGGTCATCGTCTGTAG (SEQ ID NO 33) and more preferably to: MGO-ICG-5 CGTGAGGGGTCATCGTCTGTAG (SEQ ID NO 33) 20 or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 104, 105 or 106 provided said probe hybridizes specifically to M. gordonae.
The sequences as represented in SEQ ID NO 104 to 106 are new.
Preferentially, at least two or three of said probes are used simultaneously.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium ulcerans strains or Mvcobacterium mainum strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MUL-ICG-1: GGTITCGGGATGTTGTCCCACC (SEQ ID NO 175) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 157 provided said probe hybridizes specifically to M. ulcerans and M. marinum.
The sequence as represented in SEQ ID NO 157 is new.
37 In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium genavense strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MGV-ICG-1 CGACTGAGGTCGACGTGGTGT (SEQ ID NO 176) MGV-ICG-2 GGTGTTGAGCATTGAATAGTGGTTGC (SEQ ID NO 177) MGV-ICG-3 TCGGGCCGCGTGTTCGTCAAA (SEQ ID NO 211) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 158, 159, 160, 161 or 162 provided said probe hybridizes specifically to M. genavense.
10 The sequences as represented in SEQ ID NO 158 to 162 are new.
As described in the examples, M. genavense includes M. genavense strains sensu strictu and a group of closely related strains called M. simiae-like. The former group of
S..T
strains can be detected specifically with probe MGV-ICG-1 while the latter group hybridizes S* specifically with probe MGV-ICG-3. Probe MGV-ICG-2 detects both groups.
15 In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterum xenoi strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MXE-ICG-1 GTTGGGCAGCAGGCAGTAACC (SEQ ID NO 178) (SEQ ID NO 178) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 163 provided said probe hybridizes specifically to M. xenopi.
The sequence as represented in SEQ ID NO 163 is new.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mcobacterium simiae strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MSI-ICG-1 CCGGCAACGGTTACGTGTTC (SEQ ID NO 179) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 164 or 165 provided said probe hybridizes specifically to M. simiae.
The sequence as represented in SEQ ID NO 164 or 165 is new.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mvcobacterium fortuitum strains in a sample, wherein step (iii) comprises hybridizing to at least one of the the following probes: MFO-ICG-1 TCGTTGGATGGCCTCGCACCT (SEQ ID NO 180) MFO-ICG-2: ACTFGGCGTGGGATGCGGGAA (SEQ ID NO 181) or to equivalents of said probes or to any probe derived from SEQ ID NO 166 provided said probe hybridizes specifically to M. fortuitum.
The sequence as represented in SEQ ID NO 166 is new.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium celatum strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MCE-ICG-1 TGAGGGAGCCCGTGCCTGTA (SEQ ID NO 190) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 170 provided said probe hybridizes specifically to M. celatum.
The sequence as represented in SEQ ID NO 170 is new.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mvcobacterium haemoehiln strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MHP-ICG-1: CATGTFGGGCTTGATCGGGTGC (SEQ ID NO 191) r to equivalents of said probe, and/or to any probe derived from SEQ ID NO 171, 172 or 173 provided said probe hybridizes specifically to M. haemophilum.
The sequences as represented in SEQ ID NO 171 to 173 are new.
SIn still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mycobacterium malmoense strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MML-ICG-1 CGGATCGATTGAGTGCTTGTCCC (SEQ ID NO 188) MML-ICG-2: TCTAAATGAACGCACTGCCGATGG (SEQ ID NO 189) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 107 provided said probe hybridizes specifically to M. malmoense.
The sequence as represented in SEQ ID NO 107 is new.
In still another specific embodiment, the invention provides for a method as described above to detect and identify one or more Mvcobacteritui strains in a sample, wherein step (iii) comprises hybridizing to at least one of the followiqg probes: MYC-ICG-1 ACTGGATAGTGGTTGCGAGCATCTA (SEQ ID NO 1) MYC-ICG-22 CTTCTGAATAGTGGTTGCGAGCATCT (SEQ ID NO 2) or to equivalents of said probes.
According to a preferred embodiment, both probes are used in combination.
The invention also provides for a method as described above to detect and identify one or more Mycoplasma strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MPN-ICG1: ATCGGTGGTAAATTAAACCCAAATCCCTGT (SEQ ID NO 49) MPN-ICG 2: CAGTTCTGAAAGAACATrTCCGCTTC-TC (SEQ ID NO MGE-ICG 1 CACCCATTAATTTTTICGGTGTTAAAACCC (SEQ ID NO 51) Mycoplasma-ICG CAAAACTGAAAACGACAATCTTTCTAGTTCC (SEQ ID NO 52) or to equivalents of said probes, 15 and/or to any probe derived from SEQ ID NO 124 or 125 provided said probe hybridizes specifically with Mvcoplasma species.
:'Preferentially, at least two, three or four of said probes are used simultaneously.
"More particularly, the invention provides for a method as described above to detect and identify one or more Mycoplasma pneumoniae strains in a sample, wherein step (iii) 20 comprises hybridizing to at least one of the following probes: MPN-ICG 1 ATCGGTGGTAAATTAAACCCAAATCCCTGT (SEQ ID NO 49) MPN-ICG 2 CAGTrCTGAAAGAACATTTCCGCTTCTI-C (SEQ ID NO or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 125 provided said probe hybridizes specifically to Mvcoplasma pneumoniae. According to a preferred embodiment, both these probes are used in combination.
The sequence as represented in SEQ ID NO 125 is new.
In another particular embodiment, the invention provides for a method as described above to detect and identify one or more Mvcoplasma enitalium strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MGE-ICG 1 CACCCATTAATTITTCGGTGTTAAAACCC (SEQ ID NO 51) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 124 provided said probe hybridizes specifically to Mycoplasma genitalium.
The sequence as represented in SEQ ID NO 124 is new.
The invention also provides for a method as described above to detect and identify one or more Pseudomnonas strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: PA-ICG 1 TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) PA-ICG 2: TGAATGTTfCGTGGATGAACA'1GATT (SEQ ID NO PA-ICG 3: CACTGGTGATCAfTCAAGTCAJAG (SEQ ID NO 36) PA-ICG 4: TGAATG'TCGT(G/A)(G/A)ATGAACAI1.7GAMnCTGGTC (SEQ ID NO 37) PA-ICG 5: CTCTI7CACTGGTGATCATTCAAGTCA AG (SEQ ID NO 38) or to equivalents of said probes, *and/or to any probe derived from SEQ ID NO 111, 112, 113, 114 or 115 provided said probe hybridizes specifically to Pseudomonas strains.
The sequneces as represented in SEQ ID NO I111 to 115 are new.
Preferentially, at least two, three or four of said probes are used simultaneously.
More particularly, the invention provides for a method as described above to detect 00 0 and identify one or more Pseudomonas aeruainosa strains in a sample, wherein step (iii) 000020 comprises hybridizing to at least one of the following probes: PA-ICG 1 TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) 00 0PA-ICO 2: TGAATGTCGTGGATGACATTGAyT (SEQ ID NO 0PA-ICG 3. CACTGGTGATCAT1'CAAGTCAJAG (SEQ ID NO 36) PA-ICG 4: TGAATG1TCGT(G/A)(GA)ATGAACAI.GA~P.CTGGTC (SEQ ID NO 37) PA-lCG 5: CTCIICACTGGTGATCA1TCAAGTCAAG (SEQ ID NO 38) and most preferably to at least one of the following probes: PA-ICG 1 TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) PA-ICG 4: TGAATG~rCGT(G/A)(G/A)ATGAACATTGA7PYJJGGTC (SEQ ID NO 37) PA-ICG 5: CT M ATGGTATAGCA (SEQ ID NO 38) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 111 provided said probe hybridizes specifically to Pseudomonas aeruginosa.
The sequence as represented in SEQ ID NO 111 is new.
Preferentially, at least two, three, four or five of said probes are used simultaneously.
The invention also provides for a method as described above to detect and identify one or more Staphylococcus species in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: STAU-ICG 1 TACCAAGCAAAACCGAGTGAATAAAGAGTT (SEQ ID NO 53) STAU-ICG 2 CAGAAGATGCGGAATAACGTGAC (SEQ ID NO 54) 10 STAU-ICG 3: AACGAAGCCGTATGTGAGCATTTGAC (SEQ ID NO STAU-ICG 4: GAACGTAACTTCATGTTAACGTTTGACTTAT (SEQ ID NO 56) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 139, 140, 141, 142 ,143 or 144 provided said probe hybridizes specifically to Staphlococcus species.
The sequences as represented in SEQ ID NO 139 to 144 are new.
Preferentially, at least two, three or four of said probes are used simultaneously.
S* More particularly, the invention provides for a method as described above to detect and identify one or more Staphviococcus aureus strains in a sample, wherein step (iii) comprises hybridizing to at least one, and preferably both of the following probes: STAU-ICG 3: AACGAAGCCGTATGTGAGCATTTGAC (SEQ ID NO STAU-ICG 4: GAACGTAACTTCATGTTAACGTTGACTTAT (SEQ ID NO 56) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 139, 140, 141, 142 or 143 provided said probe hybridizes specifically to Stahylococcus aureus. According to a preferred embodiment, both these probes are used in combination.
In another specific embodiment the invention provides for a method as described above to detect and identify one or more Stahlococcus eidermidis strains in a sample, wherein step (iii) comprises hybrdizing to any probe derived from SEQ ID NO 144 as long as this probe can be caused to hybridize specifically to Stahylococcus dermidis.
The invention also provides for a method as described above to detect and identify one or more Acinetobacter strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: 99 9 9 99 .9 9 9 9999 9 9 9999 9 .9 9 9 9 99 99 99 9 9 .9.9 9 99 99 9 9999 99 99 9 99 9 9 99..
9999 9 9 99 9 999 9 999999 9 ACI-ICG 1: GCTTAAGTGCACAGTGCTCTAAACTGA (SEQ ID NO 57) ACI-ICG 2: CACGGTAAYFAGTGTGATCTGACGAG (SEQ ID NO 58) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 126, 127, 128, 129 or 130 provided said probe hybridizes specifically to Acinetobacter sp.. According to a Preferred embodiment, both these probes are used in combination.
The sequences as represented in SEQ ID NO 126 to 130 are new.
More particularly, the invention provides for a Method as described above to detect and identify one or more Acinetobacter baunianii strains in a sample, wherein step (iii) 1o comprises hybridizing to at least one of the following probes: ACI-ICG 1 GCTTAAGTGCACAGTGCTCTAAACTGA (SEQ ID NO 57) ACI-ICG 2: CACGGTAA'FrAGTGTGATCTGACGAAG (SEQ ID NO 58) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 126 provided said probe hybridizes specifically to Acinetobacter baumanjH. According to a preferred embodiment, both these probes are used in combination.
The invention also provides for a method as described above, to detect and identify one or more Listeria strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: 20o LIS-ICG 1 CAAGTAACCGAGAATCATTGAAAGTGAATC (SEQ ID NO 39) LMO-ICc3 1: AAACAACCTAC7CGTAGAGTAAATGGThAG LMO-ICG 2: LMO-ICG 3: LIV-ICG 1 (SEQ ID NO TGAGAGGTAGTACCCAGTATGMIGTTC (SEQ ID NO 41) AGGCACTATGC'ITGAAGCATCGC (SEQ ID NO 42) G7ACTATGTATAIAGCCATA LSE-ICG 1: AGTrAGCATAGTAGTGTACTAT*TATGACACAAG LISP-ICG 1: CGlTITCATAAGCGATCGCACG~r
(SEC~
and most preferably to at least one of the following probes: 3 0 LIS-ICG 1: CAAGTAACCGAGAATCATCTGAAGTGATC
(SE
LMO-ICG 3: AGGCACTATGCTI'GAAGCATCGC (SEi LISP-ICG 1: CG I I ICATAAGCGATCGCACG7
(SEQ
ID NO 212) Q ID NO 39) Q ID NO 42) ID NO 212) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 116, 118, 119, 120, 121, 213, 214 or 215 provided said probe hybridizes specifically to Listeria species.
As described in the examples section, Listeria species encompass Listeria species sensu strictu, and a group of closely related organisms referred to as "Listeria-like organisms". The latter group can be specifically recognized by probe LISP-ICG 1.
The sequences as represented in SEQ ID NO 116, 118 to 121 and 213 to 215 are new.
Preferentially, at least two, three, four, five or six of said probes are used simultaneously.
o More particularly, the invention provides for a method as described above, to detect and identify one or more Listeria monocytogenes strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: LMO-ICG 1 :AAACAACCTTTACTTCGTAGAAGTAAATTGGTTAAG(SEQ ID NO LMO-ICG 2 TGAGAGGTTAGTACTTCTCAGTATGTTTGTTC (SEQ ID NO 41) LMO-ICG 3 AGGCACTATGCTTGAAGCATCGC (SEQ ID NO 42) and most preferably to the following probe: LMO-ICG 3 AGGCACTATGCTTGAAGCATCGC (SEQ ID NO 42) or to equivalents of said probes, 20 and/or to any probe derived from SEQ ID NO 120 provided said probe hybridizes specifically to Listeria monocytogenes.
Preferentially, at least two, or three of said probes are used simultaneously.
.The invention also provides for a method as described above to detect and identify one or more Brucella strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: BRU-ICG 1 CGTGCCGCCTTCGTTTCTCTT (SEQ ID NO 59) BRU-ICG 2 TTCGCTTCGGGGTGGATCTGTG (SEQ ID NO BRU-ICG 3 GCGTAGTAGCGTTTGCGTCGG (SEQ ID NO 193) BRU-ICG 4 CGCAAGAAGCTTGCTCAAGCC (SEQ ID NO 194) and most preferably to at least one of the following probes: BRU-ICG 2 TTCGCTTCGGGGTGGATCTGTG (SEQ ID NO BRU-ICG 3 GCGTAGTAGCGTTTGCGTCGG (SEQ ID NO 193) BRU-ICG 4 CGCAAGAAGCTTGCTCAAGCC (SEQ ID NO 194) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 131, 132 or 154 provided said probe hybridizes specifically to Brucella strains.
The sequences as represented in SEQ ID NO 131, 132 and 154 are new.
The invention also provides for a method as described above to detect and identify one or more Salmonella strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: SALM-ICG 1 CAAAACTGACTTACGAGTCACGTTTGAG (SEQ ID NO 61) SALM-ICG 2: GATGTATGCTTCGTTATTCCACGCC (SEQ ID NO 62) STY-ICG 1 GGTCAAACCTCCAGGGACGCC (SEQ ID NO 63) SED-ICG 1 GCGGTAATGTGTGAAAGCGTTGCC (SEQ ID NO 64) and most preferably to the following probe: SALM-ICG 1 CAAAACTGACTTACGAGTCACGTTTGAG (SEQ ID NO 61) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 133, 134, 135, 136, 137 or 138 provided said probe hybridizes specifically to Salmonella strains.
The sequences as represented in SEQ ID NO 133 to 138 are new.
Preferentially, at least two, three, or four of said probes are used simultaneously.
S. 20 The invention also relates to a method as described above to detect and identify one or more Chlamydia strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: CHTR-ICG 1 GGAAGAAGCCTGAGAAGGTITCTGAC (SEQ ID NO CHTR-ICG 2 GCATTTATATGTAAGAGCAAGCATTCTATTTCA (SEQ ID NO 46) CHTR-ICG 3: GAGTAGCGTGGTGAGGACGAGA (SEQ ID NO 47) CHTR-ICG 4 GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) CHPS-ICG 1 GGATAACTGTCTTAGGACGGTITGAC (SEQ ID NO 48) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 122, 123 or 197 provided that said probe hybridizes specifically to Chlamydia strains.
Preferentially, at least two, three, four or five of said probes are used simultaneously.
More particularly, the invention relates to a method as described above to detect and identify one or more Chlamydia trachomatis strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: CHTR-ICG 1 GGAAGAAGCCTGAGAAGGTTCTGAC (SEQ ID NO CHTR-ICG 2: GCATTTATATGTAAGAGCAAGCATTCTATITCA (SEQ ID NO 46) CHTR-ICG 3: GAGTAGCGTGGTGAGGACGAGA (SEQ ID NO 47) CHTR-ICG 4 GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 123 or 197 provided said probe hybridizes specifically to Chlamydia trachomatis.
The sequences as represented in SEQ ID NO 123 and 197 are new.
Preferentially, at least two, three or four of said probes are used simultaneously.
In another particular embodiment, the invention provides for a method as described above to detect and identify one or more Chlamydia psittaci strains in a sample, wherein step (iii) comprises hybridizing to at least the following probe: CHPS-ICG 1: GGATAACTGTCTTAGGACGGTTTGAC (SEQ ID NO 48) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 122 provided said probe hybridizes specifically to Chlamydia psittac.
The sequence of SEQ ID NO 122 is new.
20 The invention also provides for a method as described above, to detect one or more Streptococcus strains in a sample, wherein step (iii) comprises hybridizing to any probe derived from SEQ ID NO 145, 146, 147, 148, 149, 150, 151, 152 or 153 provided said probe hybridizes specifically to Streptococcus strains, or equivalents of these probes.
The sequences as represented in SEQ ID NO 145, 146, 147, 148, 149, 150, 151, 152 or 153 are new.
The invention also provides for a method as described above, to detect one or more Yersinia enterocolitica strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes YEC-ICG 1 GGAAAAGGTACTGCACGTGACTG (SEQ ID NO 198) YEC-ICG 2 GACAGCTGAAACTTATCCCTCCG (SEQ ID NO 199) YEC-ICG 3 GCTACCTGTTGATGTAATGAGTCAC (SEQ ID NO 200) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 195 or 196, provided said probe hybridizes specifically to Yersinia enterocolitica.
The sequences as represented in SEQ ID NO 195 and 196 are new.
In some cases it may be advantageous to amplify not all organisms present in a sample, but only more specific taxa, which are considered to be relevant. In these cases the invention provides for primers allowing the specific amplification of the spacer region for only those beforehand defined taxa.
The invention thus provides for a method as described above to detect and identify specifically Chlamvdia trachomatis in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or a part of it, using at least one of the following primers: CHTR-P1 AAGGTITCTGACTAGGTTGGGC (SEQ ID NO 69) CHTR-P2 GGTGAAGTGCTTGCATGGATCT (SEQ ID NO or equivalents of these primers, said equivalents differing in sequence from the above *mentioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region or part of it from Chlamydia trachomatis.
Preferably both primers are used.
The invention also provides for a method as described above to detect and identify specifically Listeria species in a sample, wherein step (ii) comprises amplification of the 16S- :23S rRNA spacer region or a part of it, using at least one of the following primers: LIS-P ACCTGTGAGTIT CGTTCTTCTC (SEQ ID NO 71) LIS-P2 CTATTTGTTCAGITT GAGAGGTT (SEQ ID NO 72) LIS-P3: ATIT'CCGTATCAGCGATGATAC (SEQ ID NO 73) LIS-P4: ACGAAGTAAAGGTGITITCT (SEQ ID NO 74) GAGAGGTFACTCTCTITTATGTCAG (SEQ ID NO LIS-P6 CTTTTATGTCAGATAAAGTATGCAA (SEQ ID NO 202) LIS-P7 CGTAAAAGGGTATGATTATTTG (SEQ ID NO 203) or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region or part of it from Listeria species.
The invention also relates to a method as described above to detect and identify specifically Mycobacterium species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or a part of it, using at least one of the following primers: 47 MYC-PI: TCCCTTGTGGCCTGTGTG (SEQ ID NO MYC-P2: TCCTCATCGGCTCTCGA (SEQ ID NO 66) MYC-P3: GATGCCAAGGCATCCACC (SEQ ID NO 67) MYC-P4: CCTCCCACGTCCTTCATCG (SEQ ID NO 68) MYC-P5: CCTGGGTITGACATGCACAG (SEQ ID NO 192) or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region or part of it from Mycobacterium species.
The invention also provides for a method as described above to detect and identify specifically Brucella species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or part of it, using at least one of the following primers BRU-P1 TCGAGAATTGGAAAGAGGTC (SEQ ID NO 204) BRU-P2 AAGAGGTCGGATITATCCG (SEQ ID NO 205) :BRU-P3 TTCGACTGCAAATGCTCG (SEQ ID NO 206) 15 BRU-P4 TCTTAAAGCCGCATTATGC (SEQ ID NO 207) or equivalents of these primers, said equivalents differing in sequence from the abovementioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region of part of it from Brucella species.
The invention also provides for a method as described above to detect and identify 20 specifically Yersinia enterocolitica species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or part of it, using at least one of the following primers YEC-P1 CCTAATGATATTGATTCGCG (SEQ ID NO 208) YEC-P2 ATGACAGGTTAATCCTTACCCC (SEQ ID NO 209) or equivalents of these primers, said equivalents differing in sequence from the abovementioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region of part of it from Yersinia enterocolitica species.
The invention also provides for a composition comprising at least one of the probes and/or primers as defined above.
Said composition may comprise any carrier, support, label or diluent known in the art for probes or primers, more particularly any of the labels or supports detailed in the definitions section.
48 The invention relates more partcularly to isolated probes and primers as defined above, more particularly any of the probes as specified in Table la or any of the primers as specified in Table lb.
According to another embodiment, the present invention relates also to new spacer region sequences as defined above and as set out in figures 1-103 (SEQ ID NO 76 to 154, SEQ ID NO 157 to 174, SEQ ID NO 195 to 197 and SEQ ID'NO 213 to 215).
In another embodiment the invention provides for a reverse hybridization method comprising any of the probes as defined above, wherein said probes are immobilized on a known location on a solid support, more preferably on a membrane strip.
In yet another embodiment the invention provides for a kit for the detection and identification of at least one micro-organism, or the simultaneous detection and identification of several micro-organisms in a sample, comprising the following components: S(i) when appropiate, at least one suitable primer pair to allow amplification of the intercistronic 16S-23S rRNA spacer region, or a part of it; 15 (ii) at least one of the probes as defined above; (iii) a buffer, or components necess'ry to produce the buffer, enabling a hybridization reaction between said probes and the polynucleic acids present in the sample, or the amplified products thereof; (iv) a solution, or components necessary to produce the solution, enabling washing of the hybrids formed under the appropiate wash conditions; when appropiate, a means for detecting the hybrids resulting from the preceding hybridization.
a a..
a a a a a FIGURE LEGENDS Fig I represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium tuberculosis strain H37RV ATCC 27294 (SEQ ID NO 76) Fig 2 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium avium ATCC 151.769 (ITG 499i; (SEQ iD NO 77) Fig 3 represents the DNA sequence of the 16S-23S rRNA spacer region r-onm Mvcobacterium paratuberculosis strains 316F and 2E (SEQ ID NO 78) Fig 4: represents the DNA sequence of the 16S-23S rRNA spacer region from Mycobacterium strain ITG 5513 (SEQ ID NO 79) 10 Fig 5 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium strain ITG 8695 (SEQ ID NO Fig 6: represents the DNA sequence of the 16S-23S rRNA spacer region from Mycobacterium strain ITG 8708 (SEQ ID NO 81) Fig 7 represents the DNA sequence of the 16S-23S rRNA spacer region trom 15 Mycobacterium strain ITG 8715 (SEQ ID NO 82) Fig 8: represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium strain ITG 8054 (SEQ ID NO 83) Fig 9: represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium strain ITG 8737 (SEQ ID NO 84) Fig 10 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium strain ITG 8743 (SEQ ID NO Fig II represents the DNA sequence of the 16S-23S rRNA spacer region from Mycobacterium strain ITG 8745 (SEQ ID NO 86) Fig 12 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacrerium strain ITG 8748 (SEQ ID NO 87) Fig 13 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium strain ITG 8752 (SEQ ID NO 88) Fig 14 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium intracellulare serovar 12 ITG 5915 (SEQ ID NO 89) a a Fig 15 represents the DNA sequence of the 16S-23S rRNA Mvcobacterium lufu ITG 4755 (SEQ ID NO Fig 16: represents the DNA sequence of the 16S-23S rRNA Mycobacterium strain ITG 5922 (SEQ ID NO 91) spacer region from spacer region from spacer region from spacer region from a a Fig 17 Fig 18: represents the DNA sequence of the 16S-23S rRNA Mvcobacterium strain ITG 1329 (SEQ ID NO 92) represents the DNA sequence of the 16S-23S rRNA Mycobacterium strain ITG 1812 (SEQ ID NO 93) Fig 19 represents the DNA sequence of the 16S-23S rRNA Mycobacterium strain ITG 5280 (SEQ ID NO 94) Fig 20 represents the DNA sequence of the 16S-23S rRNA Mvcobacterium strain ITG 5620 (SEQ ID NO spacer region from spacer region from spacer region from Fi 21: represents the DNA sequence of the 16S-23S rRNA Mvcobacterium strain ITG 5765 (SEQ ID NO 96) Fig 22 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium ITG 7395 (SEQ ID NO 97) Fig 23 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium ITG 8738 (SEQ ID NO 98) Fig 24 represents the DNA sequence of the 16S-23S rRNA spacer region from Mvcobacterium ITG 926 (SEQ ID NO 99) Fig 25 represents the DNA sequence of the 16S-23S spacer region from Mvcobacterium scrofulaceum ITG 4988 (SEQ ID NO 100) a Fig 26 represents the DNA sequence of the 16S-23S spacer region from Mvcobacterium kansasii ATCC 22478 (=ITG 4987) (SEQ ID NO 101) Fig 27: represents the DNA sequence of the 16S-23S spacer region from Mvcobacterium chelonae abcessus ITG 4975 (SEQ ID NO 102) Fig 28 represents the DNA sequence of the 16S-23S spacer region from Mycobacterium chelonae chelonae ITG 9855 (SEQ ID NO 103) 15 Fig 29 represents the DNA sequence of the 16S-23S spacer region from Mvcobacterium gordonae ITG 7703 (SEQ ID NO 104) Fig 30: represents the DNA sequence of the 16S-23S spacer region from Mvcobacterium gordonae'ITG 7836 (SEQ ID NO 105) Fig 31 represents the DNA sequence of the 16S-23S spacer region from Mycobacterium gordonae ITG 8059 (SEQ ID NO 106) Fig 32 represents the DNA sequence of the 16S-23S spacer region from Mvcobacterium malmoense ITG 4842 and ITG 4832 (SEQ ID NO 107) Fig 33: represents the DNA sequence of the 16S-23S spacer region from Mycobacterium strain 8757 (SEQ ID NO 108) Fig 34: represents the DNA sequence of the 16S-23S spacer region from Mycobacterium ITG 8723 (SEQ ID NO 109) Fig 35 represents the DNA sequence of the 16S-23S spacer region from Mycobacterium ITG 8724 (SEQ ID NO 110) Fig 36 represents the DNA sequence of the 16S-23S spacer region from Pseudomonas aeruginosa UZG 5669 (SEQ ID NO 111) Fig 37 represents the DNA sequence of the 16S-23S spacer region from Pseudomonas 10 pseudoalcaligenes LMG 1225 (SEQ ID NO 112)
S
Fi g 38 represents the DNA sequence of the 16S-23S spacer region from Pseudomonas stutzeri LMG 2333 (SEQ ID NO 113) Fig 39 represents the DNA sequence of the 16S-23S spacer region from Pseudomonas alcaligenes LMG 1224 (SEQ ID NO 114) 15 Fig 40 represents the DNA sequence of the 16S-23S spacer region from Pseudomonas uida LMG 2232 (SEQ ID NO 115) Fig 41 represents the DNA sequence of the small 16S-23S spacer region from Listeria ivanovii CIP 7842 (SEQ ID NO 116) Fig 42 represents the DNA sequence of the small 16S-23S spacer region from Listeria monocytogenes (SEQ ID NO 117) Fig 43 represents the DNA sequence of the small 16S-23S spacer region from Listeria seelieri serovar 4A nr. 4268 (SEQ ID NO 118) ft. ft ft...
ft. ft ft ft...
ft ft...
ft ft ft 53 Fig 44 represents the partial DNA sequence of the large 16S-23S spacer region from partial sequence of the long spacer region of Listeria ix'anovjj CIP 7842 (SEQ ID NO 119) Fig! 45 represents the DNA sequence of the large 16S-23S spacer region from Listeria monocytogenes THE serovar 4B (SEQ ID NO 120) Fi2 46 represents the DNA sequence or tile large 16S-2 3S spacer region from Lis~eria seeizeri serovar 4A nr. 4268 (SEQ ID NO 121) Fi2 47 represents the DNA sequence of thle 16S-23S spacer renion from Chlamvdia psittaci 613C (SEQ ID NO 122) 10 Fi2 48 represents the DNA sequence of thle 16S-23S spacer region from Chlamvdia trachomatis (SEQ ID NO 123) Ficn 49 represents the DNA sequence of the 16S-23S spacer region from Mycoplasma genitalium Gobel) (SEQ ID NO 124) Finy 50 represents the DNA sequence of the 16S-23S spacer region from MvcoplIasma pneumoniae ATCC 29432 (SEQ ID NO 125) Fi2 51: represents the DNA sequence of thle 16S-23S spacer .Acinetobacter baumnanii LMG 1041 (SEQ ID NO 126) Fig 52 represents' the DNA sequence of the 16S-23S spacer Acinetobacter calcoaceticus LMG 1046 (SEQ ID NO 127) Fig 53: represents the DNA sequence of the 16S-23S spacer Acinetobacter haemolyticus LMG 996 (SEQ ID NO 128) region or region I ror-a region from Fig, 54 represents the DNA sequence of thle 16S-23S spacer region from Acinetobacter !ohnsonii LMG 999 (SEQ ID NO 129) Fig 55 represents the DNA sequence of the 16S-23S spacer region from Acinetobacter iuii LMG 998 (SEQ ID NO 130) Fig 56 represents the DNA sequence of tile l6S-23S spacer region from Bruceija melitensis NIDO Biovar I (SEQ ID NO 131) Fig 57 represents the DNA sequence of the 16S-23S spacer region from B-yu~cIla suis NIDO Biovar I (SEQ ID NO 132)
S
S S Fig 58: 10 Fie 59: Fig 60 Fig 61: represents the DNA sequence of one of thle 16S-23S spacer region frorm Sal1monella 4d.lin (SEQ ID NO 133) represents the DNA sequence of one of the 16S-23S spacer region from Salmonella AgjLn (SEQ ID NO 134) represents the DNA sequence of one of the 16S-23S spacer region from Salmonella enceritidis (SEQ ID NO 135) represents the DNA sequence of one of thle 16S-23S spacer region from Salmonella enteritidis (SEQ ID NO 136) represents the DNA sequence of one of the 16S-23S spacer region from Salmonella tyahiMuriM (SEQ ID NO 137) represents the DNA sequence of one of the 16S-23S spacer region from Salmonella tyahimqLiuM (SEQ ID NO 138) represents the DNA sequence of one of the 16S-23S spacer region fromr Staphylococcus aureus strain UZG 5728 (SEQ ID NO 139) Fig 62 Fig 63 Fig 64: Fig 65 represents the DNA sequence of one of the 16S-23S spacer region from Staphylococcus aureus strain UZG 6289 (SEQ ID NO 140) Fig 66 represents the DNA sequence of one of the 16S-23S spacer region from Stahylococcus aureus strain UZG 6289 (SEQ ID NO 141) Fig 67 a a a a a.
a Fig 68 Fig 69 represents the DNA sequence of one of the 16S-23S spacer region from Staphylococcus aureus strain UZG 6289 (SEQ ID NO 142) represents the DNA sequence of one of the 16S-23S spacer region from Staphylococcus aureus strain UZG 6289 (SEQ ID NO 143) represents the DNA sequence of one of the 16S-23S spacer region from Staphylococcus epidermidis strain UZG CNS41 (SEQ ID NO 144) Fig 70 represents the DNA sequence of the 16S-23S spacer Streptococcus mitis UZG 2465 (SEQ ID NO 145) Fig 71 represents the DNA sequence of the 16S-23S spacer Streptococcus pvogenes UZG 3671 (SEQ ID NO 146) Fig 72: represents the DNA sequence of the 16S-23S spacer Streptococcus sanu UZG 1042 (SEQ ID NO 147) Fig 73: represents the DNA sequence of the 16S-23S spacer Streptococcus saprophyticus UZG CNS46 (SEQ ID NO 148) Fig 74 represents the DNA sequence of the 16S-23S spacer Streptococcus species UZG 536 (84) (SEQ ID NO 149) Fig 75 represents the DNA sequence of the 16S-23S spacer Streptococcus species UZG 4341 (SEQ ID NO 150) region from region from region from region from region from region from Flag 76 Fig 77 Fig 78: represents the DNA sequence of the I 6S-23S spacer region from Streptococcus species UZG 457 (44B) (SEQ I D NO 15 1) represents the DNA sequence of the 16S-23S spacer region from Streptococcus species UZG 97A (SEQ ID NO 152) represents the DNA sequence of the 16S-23S spacer region from Streptococcus species UZG 483 (76) (SEQ ID NO 153) represents the DNA sequence of the 16S-23S spacer region from Brucella abortus NIDO Tulya biovar 3 (SEQ ID NO 154) Fig 79: 9.
9 .99 9 .9 9.
9
S
S
*9*9 99 S 99* 9 9 9 99 .9 9999 9* 9* 9 9 995* 9999 9 .9* 9 99 9 9 999 9999..
S
Fig 80 represents the DNA sequence of the 16S-23S spacer region from Mycobacteriun -ulcerans ITG 1837 and Mycobacteriurn marinum. ITG 7732 (SEQ ID NO 157) Fig 81 Fiz 82: represents the DNA sequence of the 16S-23S spacer Mycobacterium. genavense ITG 8777 (SEQ ID NO 158) represents the DNA sequence of the 16S-'3S spacer Mycobacteriumn genave-nse JTG 92-742 (SEQ ID NO 159) represents the DNA sequence of the 16S-23S spacer Mycobacterium genavense ITG 9500 (SEQ ID NO 160) repr~sents the DNA sequence of the 16S-23S spacer Mycobacterium simiae-like ITO 7379 (SEQ ID NO 161) Fig, 83 region from region from region from region from region from Fig 84: Ei- 85 represents the DNA sequence of the 16S-23S spacer Mycobacterium siniiae-Iike ITG 9745 (SEQ ID NO 162) Fie 86 represents the DNA sequence of the 165.-23S spacer region fo from .*0 *0 a 0.
9* 57 Mycobacterium xenopi ITG 4986 (SEQ ID NO 163) Fig 87 represents the DNA sequence of the 16S-23S spacer region Mvcobacterium simiae A ITG 4485 (SEQ ID NO 164) Fig 88 represents the DNA sequence of the 16S-23S Sp' acer regRion Mvcobacterium -simiae B ITG 4484 (SEQ ID NO 165) Fig 89 represents the DNA sequence of the 16S-23S spacer region Mvcobacterium fortuitum ITG 4304 (SEQ ID NO 166) Fig 90 represents the DNA sequence of the I GS-23S spacer rtegion Mvcobacterium kansasii ITG 6328 (SEQ ID NO 167) Fig 91 represents the DNA sequence of the 16S-23S spacer region Mycobacterium kansasii ITG 8698 (SEQ ID NO 168) Fig 92 represents the DNA sequence of the 16S-23S spacer region Mycobacterium kansasii ITG 8973 (SEQ ID NO 169) Fig 93 represents the DNA sequence of the 16S-23S spacer regio Mycobacterium celatum ITG 94-123 (SEQ ID NO 170) Fig, 94 represents the DNA sequence of the 16S-23S spacer region Mycobacterium haemophiium ITG 776 (SEQ ID NO 171) Fig 95 represents the DNA sequence of the 16S-23S spacer region Mycobacterium haemophilum ITG 778 (SEQ ID NO 172) Fig 96 represents the DNA sequence of the 16S-23S spacer region Mycobacterium haemop~hilum ITG 3071 (SEQ ID NO 173) from from from fro from from from from from from 58 Fig 7 rpreentstheDNA sequence of the 16S-23S Spcrregion from Mycobacterium chelonae ITG 94-330 and ITG 94-379 (SEQ ID NO 174) Fig 98 represents the DNA sequence of a 16S-23S spacer region from Yerii enterocojitica strain P95 (SEQ ID NO 195) Fig 99 represents the DNA sequence of a 16S-23S spacer region from Yersjnja enterocolitica strain P95 (SEQ ID NO 196) Fig 100 represents the DNA sequence of the 16S-23S spacer region from Chlamvdia trachomatis strain SSDZ 94 M 1961 (SEQ ID NO 197) Fig 101 represents the DNA sequence of a 165Si23S spacer region from Lister a -like 0* Sisolate MB 405 (SEQ ID NO 213 *0 a ~---311111II TABLE LEGENDS Table la: List of all new probes originating from the 16S-23S rRNA spacer region Table lb: List of possible primers to be used for taxon-specific amplification of the spacer region or part of it.
Table 2: Hybridization results for Pseudomonas Table 3: Different probe patterns obtained for mycobacterial strain-types Table 4: Mycobacteria strains tested in LiPA Table 5: Hybridization results for Listeria (Probes LMOI, 2. LSEI. LIVI, LISI) Table 6: Hybridization results for Listeria (Probes LMO3, LIS1) 10 Table 7: Hybridization results for Chlamvdia Table 8: New mycobacterial probes and hybridization results Table 9: Hybridization results for Brucella Table 10: Hybridization results for Staphylococcus Table la
.PROBE
MYC-ICG-1 MYC-ICG-22 MTB-ICG-
I
MTB-ICG-2 MTB-ICG-3 MAI-ICG- 1 MIL-ICG-1 1 10 MIL-ICG-22 MAC-ICG- 1 MA V-leG-1 MAV-ICG-22 MIN-ICG-
I
MIN-ICG-2 MIN-ICG-22 MIN-ICG--222 MIN-ICG-2222 MAL-leG- 1 MHEF-ICG-1 MAH-ICG-1 MCO-ICG-i11 MTH-JCG- 11 MTH-ICG-2 MEF-JCG- I I MSC-ICG-1 MKA-ICG- 1 MKA-ICG-2 MKA-ICG-3 MKA-ICG-4 MCH-ICG- 1 MCH-ICG-2 SEQUENCE SQI
ACTGGATAGTGGTTGCGAGCATCTA
CTTCTGAATAGTGGTT1GCGAGCATCT GGGTGCATGACAACAAAGflGGCCA 3 GACTTG7TCCAGGTGT7JGTCCCAC CGGCTAGCGGTGGCC3GT-CT CACGAAGT7CAAAA 6 GAGGGGTTCcCGTCTGTAGTG TGAGGGGFFCTCGTCTGTAGTG 8 CACTCGGTCGATCCGTGTGGA
C
TCGGTCCGTCCGTGTGGAGTC 1 GTGGCCGGCG'ITCATCGAAA 1 GCATAGTCCTTAGGGCTGATGCG 12 GCTGATGCGTTCGTCGAAATGTGTA 13 CTGATGCGFI'CGTCGAAATGTGT 1 TGATGCG'ITCGTCGAAATGTGT 1 *GGCTGATGCGTrCGTCGAAATGTGTAA 16 *ACTAGATGAACGCGTAGTCC-rTGT 1 TGGACGAAAACCGGGTGCACAA 18 *GTGTAAT-FCTI-TMAACTCfJTGTGTGTAAGTAAGTG 19 *GCGCTT-CT A GCACTFCAAFFGGTGAAGTG3CGAGCC *GCGTGGTCTTCATGGCCGG 22 *ACGCGTGGTCCTFCGTGG 23 TCGGCTCGTTCTGAGTGGTGTC 24 *GATGCGT-17GCTACGGGTAGCGT *GATGCG'FFGCCTACGGGTAGCGT 26 ATGCG'FrGCCCTACGGGTAGCGT 27 *CGGGCTCTGF1'CGAGAGTT-JGTC 28 *GGTGTGGAC1TrGACTTCTGAATAG 29 *CGGCAAAACGTCGGACTJGTCA inl MCH-ICG-3 MGO-ICG- 1 MGO-ICG-2 ~MUL-ICG-
I
MGV-ICG- 1 MGV-ICG-2 MGV-ICG-3 MXE-ICG- 1 10 MSI-ICG-1 MFO-ICG- I MFO-ICG-2 MKA-ICG-5 MKA-ICG-6 15 MKA-ICG-7 MKA-ICG-8 MKA-ICG-9 MKA-ICG- 10 MMIL-ICG- 1 20 MML-ICG-2 MCE-ICG- 1 MHP-ICG- I PA-ICG 1 PA-ICG 2 PA-ICO 3 PA-ICG 4 PA-ICG 5 LIS-ICC I LMO-ICG 1 LMO-ICG 2 LMO-ICG 3 LIV-ICG 1 *GGTGTGGTCCTTGACT1TATGGATAG
*AACACCCTCGGGTGCTGTCC
*GTATGCG~rGTCC1TCCGCC
*CGTGAGGGGTCATCGTCTGTAG
GTT=CCGGGATGTTGTCCCACC
CCACTGAGGTCGACGTGGTGT
*GGTGnhTGAGCATTGAATAGTGGT-GC
*TCCGGCCGCCTGTTCGTCAAA
*GrFGGGCAGCAGGCAGTAACC
*CCGGCAACGGTTACTGTT-C
TCGTTGGATGGCCTCGCACCT
*ACTTGGCGTGGGATGCGGGAA
*CCCTCAGGGATTTTCTGGGTGyT'G *GGACTCGTCCAAGAGTC-fl-GTCC
*TCGGGCTTGGCCAGAGCTGT-
*GGGTGCGCAACAGCAAGCGA
*GATGCG'TTGCCCCTACGGG
*CCCTACGGGTACCTC7CMG
*CGGATCGAITGAGTGCTTGTCCC
TCTAAATGAACCCACTGCCCATCG
TGAGGGAGCCCGTCCCTGTA
*CATGTTGGGCTrGATCGGGTC
TGGTGTGCTGCGTGATCCGAT
*TGAATGTCGTGGATGAACATpCA.T- *CACTGGTGATCATnCAAGTCAAG TGAATGTTCGT(G/A)(G/A)ATGAACATGAT-r7CTGCTC
*CTCTTTCACTGGTGATCATTCAAGTCAAG
*CAAGTAACCGACAATCATCTGAAAGTGAATC
*AAACAACC=hACTTCGTAGAAGTAAAf7GGCrAAG *TGAGAGGTrAGTAC1TCTCAGTATG-1GTCC
*AGGCACTATGCTI'GAAGCATCC
G ClAGCATAAATAGGTAACTA-ml-ATG
ACACAAGTAAC
186 178 180 188 189 183 1984 185 186 137 188 189 190 41 a a.
a a LS E-ICG 1 AGTTAGCATAAGTAGTGTAACTFFA'G A CACAAG LISP-ICG I CGITT7TCATAAGCGATCGCACGTT CHTR-ICG I GGAAGAAGCCTGAGAAGG717CTGAC CHTR-ICG 2 GCATFATATGTAAGAGCAAGCATTCTAT-TTCA CHTR-ICG 3 GAGTAGCGTGGTGAGGACGAGA CHPS-ICG I GGATAACTGTCTFAGGACGGFFFTGAC MPN-ICG I ATCGGTGGTAAA7-fAAACCCAAATCCCTGT MPN-ICG 2 CAGTTCTGAAAGAACAFTrCCGCTTCmrTC MGE-ICG 1 CACCCANIATAKFFFICGGTGTTAAAACC 10 Mvcoplasma-ICG: CAAAACTGAAAACGACAATCTT-CTAGjCC STAll-ICC I TACCAAGCAAAACCGAGTGAATAAAGAGTT STAU-ICC 2 CAGAAGATGCGGAATAACGTGAC STAU-ICG 3 AACGAAGCCGTATGTGAGCATFFGAC STAll-ICC 4 GAACGTAACTTCATGTTAACGCTGACTTAT 15 ACT-ICC I GCTTAAGTGCACAGTGCTCTAAACTGA ACICC 2 CACGGTAA'FFAGTGTGATCTGACGAAG BRU-ICG I CGTGCCGCC'17CGFFICTCTTV BRU-1CG 2 TTCGCTTCGGGGTGGATCTGTG BRU-1CG 3 GCGTAGTAGCGTTTGCGTCGG 20 BRU-ICG 4 CGCAAGAAGCT7GCTCAAGCC SALM-ICG 1 CAAAACTGACTJ'ACGAGTCACGThPC
AG
S ALM-ICG 2 GATGTATGCTTCGT7ATTCCACGCC STY-ICC I GGTCAAACCTCCAGGGACGCC SED-ICG I GCGGTAATGTGTGAAAGCCTTCC YEC-ICG I GGAAAAGGTACTGCACCTGACTG YEC-ICC 2' GACAGCTGAAACT1TATCCCTCCG YEC-ICG 3 GCTACCTGTI'GATGTAATGAGTCAC C HTR-ICG 4 GAGTAGCGCGGTGAGGACGAGA 59 19f3 62 19S 199 2 al' 63 Table Ilb
PRIMERS
SEQUENCE
SEO ID NO e* a a a a a a.
a a a a
MYC-PI
MYC-P2 MYC-P3 MYC-P4 CHTR-P 1 CHTR-P2 10 LIS-PI LIS-P2 LIS-P3 LIS-P4 15 LIS-P6 LIS-P7 BRU-P I BRU-P2 BRU-P3 BRU-P4 YEC-P 1 YEC-P2
*TCCCTTGTGGCCTGTGTG
*TCCTTCATCGGCTCTCGA
GATGCCAAGGCATCCACC
*CCTCCCACGTCCTTCATCG
*CCTGGGTTF7GACATGCACAG
AAGGFFTCTGACTAGGTTGGGC
GGTGAAGTGCTr'GCATGGATCT *ACCTGTGAGTFITCGTTCTTCc *CTA717GTTCAGI
IIIGAGAGGT--
*ATTF7CCGTATCAGCGATGATAC *ACGAAGTAAAGG17GTTYFCT *GAGAGG1TACTCTCTTIATGTCAG *CT717ATGTCAGATAAAGTATGCAA *CGTAAAAGGGTATGATTATFfl- *TCGAGAA7rGGAAAGAGGTC
*AAGAGGTCGGAFFVATCCG
*TFCGACTGCAAATGCTCG
*TCTTAAAGCCGCATTATGC
*CCTAATGATAYI'GATrCGCG
*ATGACAGGTTAATCCTFACCCC
208 209 EXAMPLE 1 Pseudomonas aeruginosa Pseudomonas aeruginosa is a significant human pathogen, usually in the context o" serious underlying disease. It is also a major cause of nosocomial infections, which are characteristically prone to resistance to antimicrobial agents. This gram-negative. nonfermentative rod can be responsible for different clinical manifestations, like wounc infections, bacteremia, respiratory and urinary tract infections, and is also a major cause o: morbidity and mortality in patients with cystic fibrosis.
Pseudomonas species are currently differentiated based on growth characteristics and several biochemical features implying a time schedule of 2411 to 72h to get a correct identification of the pathogen.
Already the development of monoclonal or polyclonal antibodies significanti Improved the identification of Pseudomonas species. Recently however it has been shown thait is possible to detect organisms directly in clinical samples on a very sensitive and specific way using DNA probes with or without a prior amplification of the target DNA.
DNA probes to study Pseudomonas aeruginosa are already described and are mainil used for epidemiological typing (Ogle et al., 1987; Samadpour et al., 1988; Mclntosh et al..
1992). However, none of these probes have been derived from the 16S-23S spacer.
The 16S-23S rRNA gene spacer region and a part of the 23S rRNA gene was amplified with conserved primers (upper primer: TGGGGTGAAGTCGTAACAAGGTA SEQ ID NO 155; lower primer: CCTTTCCCTCACGGTACTGGT. SEQ ID NO 156) usinC the polymerase chain reaction for the following species Pseudomonas aeruginosa 5669 Pseudomonas alcaligenes LMG 1224
T
Pseudomonas fluorescens LMG 5167 Pseudomonas putida LMG 2232 Pseudomonas stutzeri LMG 2333' Pseudomonseudoalcaligenes LMG 1225
T
To facilitate cloning of the obtained amplicons a Nol recognition site was added to the lower primer. After purification and digestion of the fragment with Notl, the amplicor.
was cloned in a EcoRVINotl digested pBluescript SK' plasmid vector.
Sequencing of the 16S-23S rRNA gene spacer region was performed according the dideoxy-chain terminating chemistry either using double stranded plasmid DNA combined with primers located in the plasmid vector or directly on the PCR products after purification combined with internal PCR primers.
Fig. 36 to 40 represent the nucleotide sequence of the 16S-23S rRNA gene spacer regions from the different Pseudomonas species described above. For P. fluorescens only partial sequence information was obtained.
From the nucleic acid sequence of the spacer from P. aerumnosa strain 5669 five ohlgonucleotide-probes were chosen and chemically synthetized. The sequences of the oligonucleotides are the following 10 PAl PA-ICG 1 TGGTGTGCTGCGTGATCCGATA PA2 PA-ICG 2 TGAATGTTCGTGGATGAACATTGATT PA3 PA-ICG 3 CACTGGTGATCATTCAAGTCAAG Specificity and sensitivity testing of the oligonucleotide-probes was carried out usinm a reverse hybridization assay. Genomic DNA of the different bacteria tested was amplified 15 using biotinylated primers (idem primers as for cloning procedure, see above). The obtained amplicon, spanning the 16S-23S rRNA gene spacer region, was denatured and hybridized to a membrane-strip onto which the different oligonucleotide probes were immobilized in a linewise fashion (LiPA). Hybridization was carried out in a mixture of 3xSSC (IxSSC 0.15 M NaC1, 0.015 M sodium citrate, pH 7.0) and 20% formamide (FA) at a temperature of C for one hour. Washing was done in the same mixture at the same temperature for 15 min.
a Hybrids were detected using a streptavidine conjugate coupled to alkaline phosphatase and the probes were visualized through a precipitation reaction using NBT (nitrobluetetrazolium) and BCIP (bromo-chloro-indolylphosphate).
The hybridization results obtained with probes PAl, PA2 and PA3 are given in table 4 and show that probes PAl and PA3 were 100% specific for Pseudomonas aeruginosa and hybridized to all the strains tested. The hybridization signal with probe PA3 at 500 C was not optimal, so the oligonucleotide-probe was improved by adding some additional nucleotides to the specific probe. This newly designed probe is PA-ICG 5 CTCTTTCACTGGTGATCATTCAAGTCAAG Hybridization experiments with probe PA5 proved that this probe also shows a 100 specificity and 100% sensitivity for P. aeruginosa.
Oligonucleotide-probe PA2 hybridized only to 5 out of 17 P. aeruinosa strains tested.
Direct sequencing of the 16S-23S rRNA gene spacer region of thle strains whichl dic no: hybridize to these probes, showed some heterogeneity between different strains. Two mismatches were seen in comparison to the first developed PA2 probe. To overcome this heterogeneity between different strains in the region of probe lPA2- a ine probe PA-;wa This probe is degenerated at the Dosutior of the mismatches anid some adaiona.
nucleotides were added to improve the hybridization signal at 50' PA4 PA-ICG 4 :TGAAT&FFCGT(G'A) (G/A )ATGAACATFG KFFI7CTGGTC- A 100% specificity and 100% sensitivity was obtained with this degenerated orobt: as is shown by the hybridization results.
taxa tested PA2 'I PA3 PA4 a a a. a a a a a. a a a a..
a Pseudomonas ar ns Pseudomonas alcalizenes Pseudomonas fluorescens Pseudomonas putida Pseudomonas pseudoalcal j enes PEseudomonas stutzeri PseudoMonas cenacia Neisseria Ronorrhoeae Escherichia coli Bordetella perussis Bordetellaraetss fiordetella bronchiseptica Mycobacterium uberculosis Mycobacterium avium Moraxella tarrhalis Haemophilus influenzae Streptococcus neu oniae Acinetobacter calcoaceticus Staphvlococcus aurus 17/17 0/1 0/1 0/1 0/1 0/1 0/1 0/1 0/1 0/1 0/1 0/1 0/1 Oil 0/4 0/2 0/3 0/1 0/2 5/17 0/1 0/1 0/1 0/1 0/1 0/I 0/1 0/1 0/1 0/1 0/1 0/1 0/1 0/4 0/2 0/3 0/1 0/2 17117 0/1 Oil 0!/1 0/1 0/1 0/1 Oil 0/1 0/1 0/1 0/I 0/1 0/4 0/2 0/3 0/1 0/2 17/17 17/17 0/1 O Il 0/1 0/1 0/1 0.
0/1 0.
0/1 0:! ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND ND IND ND ND ND ND I I_ Table 2: Hybridization results for Pseudononas (n/rn: number of strains positive/number of strains tested) (ND: not done) 68 EXAMPLE 2: Mycobacterium A variety of mycobacterial species may be involved in serious human infectious disease. Notorious examples are Mycobacterium tuberculosis and Mvcobacterium leprae.
Recently other species such as M. avium. M. intracellulare and M. kansasii have beer: more frequently encountered as human pathogens especially in immunocompromised hosts.
Consequently, laboratory diagnosis of mycobacterial infections should not be restricted to the M. tuberculosis complex but should ideally include most other clinically relevant mycobacterial species.
10 The identification and differentiation of pathogenic mycobacteria at the species level by conventional laboratory techniques is, in general, difficult and time-consuming.
To overcome these problems DNA-techniques were implemented. The techniques described extended from straightforward DNA-probing to automated sequence analysis.
Several approaches have been recently reported (Jonas etal., 1993: Frothingham and Wilson.
15 1993; Tomioka et al., 1993; Saito et al., 1989; Vaneechoutte et al., 1993; Telenti et al..
1993; B6ddinghaus et al., 1990).
However, these methods all have their particular disadvantages, and most of them still rely on culture. Moreover, and most importantly, none of these techniques allows for a simultaneous detection of the different clinically relevant mycobacterial species in a single test run. Besides, the differentiation of particular groups within the Mvcobacterium aviumintracellulare complex is problematic and often even impossible.
To overcome the above-mentioned disadvantages, a LiPA-test was developed which allows for the simultaneous and reliable detection and differentiation of a number of Mycobacterium species and groups. The sets of probes used to achieve these goals were all derived from the 16S-23S rRNA spacer region. The methods used are analogous to those mentioned in example 1.
The 16S-23S rRNA spacer region, and part of the 16S and 23S rRNA flanking genes.
was amplified by PCR with primers conserved for the genus Mvcobacterium. At least one of the following primers located in the 16S gene were used as upper primers: MYC-P1: TCCCTTGTGGCCTGTGTG (SEQ ID NO CCTGGGTTTGACATGCACAG (SEQ ID NO 192) At least one of the following primers, located in the 23S gene. were used as lower primers 69 for the amplification: MYC-P2: TCCTTCATCGGCTCTCGA (SEQ ID NO 66) MYC-P3: GATGCCAAGGCATCCACC (SEQ ID NO 67 MYC-P4: CCTCCCACGTCCTTCATCG (SEQ ID NO 68 All the above mentioned primers amplified the spacer region of all Mvcobacterium strains tested, except primer MYC-P2 which was not functional for M. chelonae. In order to enhance the sensitivity of the detection, a nested PCR was sometimes carried out. usir and P4 as outer primers and PI and P3 as inner primers.
In order to be able to design and select the probes and probe combinations which f; 1 0 our purpose, the 16S-23S rRNA spacer region of a number of mncobacterial strains was sequenced. The obtained sequences were compared to each other and to those alreadv known from literature Frothingham et al., 1993. 1994: Kempsell et ai.. 1992: Suzuki et ai 988: EP-A-0395292; Van der Giessen et al.. 1994: or from publicly accessable data banks. The corresponding sequences are represented in fig. 1 to 35 (SEQ ID NO 76 to SEQ 15 ID NO 110).
The probes derived from these data were all adjusted in such a way that the desired hybridization-behaviour was obtained using unified hybridization and wash conditions (i.e.
3xSSC, 20% deionized formamide, 50°C). The set of adjusted probes used for hybridization to different mycobacterial strains is represented in table la, SEQ ID NO 1-33. Please note that the probe nomenclature used in this example is an abbreviated version of the one used in table la: i.e. the letters "ICG" have always been omitted. According to the specific %e "hybridization pattern obtained, the strains tested could be assigned to one of the followinm species or species groups: M. tuberculosis complex. M. avium, M. intracellulare or M.
intracellulare complex, M. kansasii, M. chelonae and M. gordonae. The strains tested which belong to each group are summarized in Table 4. All strains were obtained from the Institute of Tropical Medecine, Antwerp, Belgium. The different probe-patterns obtained for each group are illustrated in Table 3, and are discussed in more detail hereafter.
M. tuberculosis complex The M. tuberculosis complex harbours all strains belonging to M. tuberculosis.
M
bovis, M. africanum and M. microti. The probes Mtbl, Mtb2 and Mtb3 hybridize with DNA originating from all M. tuberculosis complex strains tested. None of the other strains tested hybridized with these probes at the conditions used.
In addition, M. tuberculosis complex strains. as is the case with all other mycobacterial strains tested, hybridize with either the mycl or the myc22 probe or both. The latter two probes are designed as general Mvcobacterium probes. either alone or in combination with each other.
M. aviumlM. paratuberculosis All M. a-c: n and M. paratuberculosis strai ic:_i nvbriaza::o: pattern with the set of probes. For this type of organisms positive hybridizarion signals are obtained with the probes mycl/myc22, mail, milll, mavl. mahl and ma v 22. The latter two probes hybridize exclusively with M. avium and M.
i 10 paratuberculosis strains, and can thus be used as species-specific probes. Since the 16S-23S spacer sequences of M. avium isolates and M. paarauberculosis isolates are identical or nearly identical these two taxa cannot be discriminated from each other.
This finding supports 16S rRNA sequencing data which indicate that M. avium and M. paratuberculosis should in fact be considered as belonging to one geno-species 15 (Rogal et al., 1990), M. avium ssp. avium and M. avium ssp. paratuberculosis.
MA. intracellulare and M. intracellulare complex (MIC) MIC strains are genotypically highly related organisms, which, according to sequence .o data of the 16S-23S rRNA spacer region, belong to a distinct cluster which is separate from other Mycobacterium species. M. avium and M. scrofulaceum are their closest relatives. Almost all strains tested which are generally referred to as M. avium to complex (MAC) strains (the former MAIS-complex) can be found in the MIC group.
Thus, the MIC group defined in the current invention encompasses the MAC-type strains described by Frothingham and Wilson (1993) with the exception of MAC-G which appears to be M. scrofulaceum. Also M. intracellulare strains sensu strcto (M.
intracellulare are part of this cluster.
Because this MIC group contains a quite large group of strains with, among them subgroups showing different hybridization characteristics to the set of probes. a further subdivision into MIC-types was envisaged.
Type MIC 1 harbours M. intracellulare together with some other MAC-strains.
All MIC I type isolates, without exception, hybridize to the following probes.
mycl/myc22, mail and mad. The following probes can be used to make furthe: subdivisions within the MIC 1 group milll, mini, min2 to 2222, mi122 and mhefl.
M. intracellulare sensu stricto strains (type MIC 1.l.a) can be distinguished rronr other subtypes in this group by virtue of probe mini which is posiuve oniv for this group of strains. All strains of type MIC 1. .a strains are positive when tested with the M. intracellulare probe of the Gen-Probe Rapid Diagnostic svstem for MAC.
Type MIC I.l.b and MIC 1.2 harbour strains which are highly related to t.
inrracellulare. They can be differentiated by using probes mill 1 and mi122 (see Tabhi Further subdivision within these groups was not attempted although this could be achieved by using the probes min2, min22. min222 and min2222. Further 10 subdivision might be of value for epidemiological reasons.
S. Only two of our collection of strains tested group as MIC 2 strains. One o: these strains is a "Mycobacterium lufu" strain (ITG 4755). The specific probe pattern generated by these strains is characterized by a positive hybridization signal with the following probes mycl/myc22, mail, mi122, mahl and mall. Variable 15 hybridization results are obtained with probes min2222, macl and mhefl. The other probes are negative. It is not unlikely that MIC 2 would eventually prove to be a heterogeneous group when more strains of this type are being identified. The variable probes may help in a further differentiation, if this would become relevant.
Type MIC 3 groups a fairly high number of MAC-strains which are rather remotei\ related to M. intracellulare s.s. strains and most other MAC-strains. This cluster should be regarded as distinct from M. avium and M. intracellulare on genotvpica! grounds. All MIC 3 subtypes hybridize to probes mycl/myc22, mail, mil22 and mcol. A positive signal with the latter probe (mcol) is characteristic for MIC 3 strains. Variable hybridization results are obtained with the following probes macl, mhefl and mahl. MIC 3 can be further subdivided into four subtypes by using three probes mthll, mth2 and mefll. Probe mth2 is specific for type MIC 3. i which encompasses a group of highly related MAC-strains isolated from immunocompromised human beings. Most MIC 3 strains are located in the MIC 3. I subtype.
Eventually species status may be assigned to this group of strains, as might also be the case for other groups of MAC strains, yet unnamed. In subtypes MIC 3.4. MIC 3.3 and MIC 3.2 only two, one and one strain are found respectively in our collection of strains tested.
Type MIC 4 is a collection of "MAIS" strains uncluding Al. nmalmoense) whic!n ar remotely related to M. intracellulare. The only probe of the above-described se: which hybridizes to MIC 4, apart from the general mvcl/mvc22 probes, is the mail probe. This probe shows a broad specificity, hybridizing also with M. aviuzn. AM intracellulare and other MIC strains and M. scrofulaceum.
M. scrofulaceum All M. scrofulaceum strains tested reveal an identical hvbrdizaton pattern v itn the set of probes. A positive signal with probe mscl is unique to Al. scrofulaceum strains. The only other probes with a positive signal for this species are evidenti t10 mycl/myc22 and also mail.
AM. kansasii Probes mka3 and mka4 are specific for M. kansasii: i.e. a distinct positive sitnal is obtained on the LiPA strip when amplified DNA from the M. kansasii strains is used S in the hybridization whilst with all other organisms tested the signal is absent.
Although the sequences of probes mkal and mka2 are not absolutely complementary to the target sequence (3 and 1 mismatches, respectively), these probes also proved to be useful since they hybridized exclusively to M. kansasii DNA and not to any other mycobacterial DNA tested under the conditions used (50 0 C. 3xSSC. formamide). This illustrates that probes not necessarilly have to match perfectly ti the target to be useful, and that modifications in sequence and length may be allowed up to a certain degree.
000 M. chelonae The species M. chelonae encompasses M. chelonae ssp. chelonae and M. chelonae ssp. abscessus strains. The spacer region was sequenced for one strain of each subspecies and small differences were noticed (SEQ ID NO 103 and SEQ ID NO 102). Probes mchl and mch2 hybridize to both strains. All other probes are negative for these 2 strains except for mycl/myc22.
Upon testing of probes mchl and mch2 with 2 additional M. chelonae strains no; mentioned in table 4, i.e. M. chelonae 94-379 and M. chelonae 94-330. both obtained from the Institute of Tropical Medecine in Antwerp. Belgium, it appeared that they did not hybridize to probe mchl. This was confirmed by sequencing the spacer region of these two strains (SEQ ID NO 184). Cluster analysis of the soacer region witr other mycobacteria revealed that M. chelonae strains can be subdivided ir rv.-w groups. A third probe mch3 was designed to specifically detect this second group or strains, to which 94-379 and 94-330 belong.
This illustrates that the use of DNA probes derived from the 16S-23S rRNA soacer i' region can be helpful in differentiating different groups ot strains, which belong to the same species according to the classical identification methods. and pr be used to detect and describe new species within the mvcobactera. In this case mch2 detects all M. chelonae strains, whereas mch and mch3 differentiate between different subgroups.
10 M. gordonae The five M. gordonae strains tested all hybridize to probe mgo5. Positive hybridization signals are also obtained with probes mvclimvc22. and some M gordonae strains also hybridize to probes mgol and mgo2.
other mycobacterial species 15 Strains belonging to other mycobacterial species than those mentioned above only hybridize to the general probes mycl/myc22. This indicates that these strains most probably belong to the genus Mycobacterium. but do not belong to one of the species or groups which can be specifically identified by using one or more of the other probes described.
In conclusion we can state that, according to the particular combinations of probes of S the invention used, DNA probe tests at different levels can be provided.
When all probes are used in one and the same LiPA-test, differentiation at the species level as well as subtyping of certain groups of mycobacteria can be achieved. However, the probe-assembly on one strip could be restricted to those probes which are species-specific: in that case identification is performed at the species level. A further reduction of the number of probes on the strip might lead to the specific detection of only one or just a few species.
Obviously, LiPA strips can be designed which solely attempt to subtype strains, e.g. those belonging to the M. intracellulare complex (MIC). Depending on the particular needs of the laboratoria performing diagnosis and/or typing of mycobacteria, all these different applications might be of value. However, it is clear that by using a combination of probes in a LiPA-format the amount of information obtained as to the identity of the organisms 74 present in the clinical sample, is considerably increased as compared to DNA probe tests using only a single probe. For some groups, or at least for further subdivision of some groups, a single probe uniquely hybridizing to this (sub)group could not be designed In tha" case only probe-patterns are able to provide the information needed. For these applicatnons the LiPA is an advantageous format.
ae a a a
R
0 0
S
S S S *5 *S St
S**
S S S. S S *5 S S S S. *S S 55 55 IaI1) 1e 3 :Different prob~e patterns obtained for mycobacterial (stib)species M'ycobacterium my c I mithl mail mnill I I maviI nii min222 rnin22 min2 min2222 1ndI22 3madi Jmyc22_ mtb2 ay22_JI____ J_ M. tuberculosis M. bovis M. avium M. para tuberculosis MICI1. La MIC I.ILb MIC 1.2 MIC 2 MIC 3A MIC 3.3 MIC 3.1 MIC 3.2 MIC 4 M.scrofuaceum M. kansasii M. cleloiiae M. gordonae Mycobacteri um sp. to to* to to* .o o to 9% oo to TIablIe 3: conitinuted %v w eak v :very wveak 0! variable according to the strain tested Table 4 Mvcobacteria strains tested in LiPA
I
species/group M. tuberculosis complex1 M. aviuml M. paratuberculosis 7602 8324 1101 5872 8180 strain numbers from Institute of Tropical Medecmne Antwerp (except those between parentheses) *8004. 8017. 8647. 8872. 9081, 9129. 9173, 9517. (ATCC7 272Q-' *8428 *1983, 2070, 2074. 4176. 4189, 4191, 4193. 4197, 4204. 4386. 4C.- I *5874, 5884. 5887. 5893. 5894. 5897. 5903. 5904. 5905. 59277 8750, (ATCC 25291). M. paratuh (316F), (2E) a.
a a M. intracellulare 14199, 4208. 5701, 5880. 5906. 5908. 5909. 5913. 5915. 5917. 5918. 59:.
(MIC 1.1La) 5 921, 5924, 5925. 5929. 8713. 8717. 8718. 8720. 87231. 8722, 8732. MIC I.1Lb 8694. 8745, 8754 8708 5513. 8743 8054, 8190 MIC 1.2 8710. 8711, 8712. 8714. 8715. 8716. 8725, 8729. 87,33. 873-7, 8746.8 '8752 5919 8695 8748 MIC 2 5922 4755 lufu) MIC 3.4 1815 8707 MIC 3.3 5620 N4IC 3.1 925, 926. 1329. 1788, 1794. 1812, 1818. 2069. 2073. 2076. 4541. 454- 5074. 5280. 5789. 7395. 8739 8753 MIC 3.2 5765 M. scrofulaceum 4979. 4988. 5907, 8706. 8726. 8727, 8735. (MI3022). (MB023). (MB024 M. kansagii 4987, (ATCC 22478) M.chelonae 4975, 9855 M. gordonae 7703, 7704, 7836, 7838, 8059 MIC 4 8723.,8724 8757 4842 malmoense) 7732 inarinum), 94-123 celatuni). 778 haemophilum). 8777 genavense). 4484 sinise). 4986 xenopi), 4304 fortuitun'' 1837 CM. ulceraiss) EXAMPLE 3: Listeria Listeria species are a group of Gram-positive rods widely spread in nature. Within this group it seems that only L. monocytogenes is pathogenic to humans and anima!s. L.
monocytogenes is the causative agent of listeriosis. giving rise to meningitis, abortions encephalitis and septicemia. Immunocompromised individuals, newborn infants and pregnan: women are high risk groups for this foodborn disease. Most cases have been caused consumption of food of animal origin, particularly soft cheeses. Therefore, the presence of monocytogenes should be excluded from food. For safety measurements. Ir some 1 0 countries, the absence of all Listeria species is required in food products.
o* The classical identification method for L. monocvtogenes in dairy products involves an enrichment culture for 48 h and subsequently colony forming on selective agar medium for 48 h followed by a whole set of biochemical and morphological assays (Farber and Peterkin. 1991). This procedure could be very much simplified by the use of gene probes.
Several DNA probes are already described for the identification ofL. monocvtogenes.
Some probes are derived from genes responsible for the pathogenicity of the organism, for instance the listeriolysin O gene (Datta et al., 1993) or the invasion-associated-protein (iap) (Bubert et al.. 1992).
"A commercially available identification system, based on a specific 16S rRNA orobe.
was introduced by GenProbe (Herman and De Ridder. 1993: Ninet et al.. 1992) These specific probes are used as confirmation assays on colonies obtained anter .enrichmnent and plating on selective agar medium.
Recently several publications reported on the use of the polymerase chain reaction to amplify the target region for the DNA probes, which can shorten the time of the assay without interfering with the specificity and the sensitivity of the assay. Different primer sets are described that can specifically amplify L monocvtogenes DNA. These primer sets were derived from the listeriolysin O gene (Golstein Thomas et al., 1991), and the ia_ gene (Jaton et al., 1992).
We used the 16S-23S rRNA gene spacer region as the target for the development of a genus-specific probe for Listeria and a probe specific for Listeria monocvtogenes.
Using conserved primers derived from the 3' end of the 16S rRNA and the 5 end of the 23S rRNA (sequences are given in example 1) the spacer region was amplified using the 79 polymerase chain reaction and subsequently cloned in a suitable plasmid vector following the same procedures as in example 3.
Two amplicons differing in length (800 bp and 1100 bp) were obtained. Both PCR fragments were cloned for the following Listera species ieltria monocvtogenes, serovar 4b. IHE (Instituut voor Hygiene en Epidemiologie, Belgium) Listeria ivanovii CIP 78.42 (Collection Nationale de Cultures de Microorganisms de I'Institut Pasteur, France) Listeria seeligeri serovar 4a, nr. 42.68 (Bacteriologisches Institut. Siadd.
Versuchs- und Forschungsanstalt fidr Milchwirtschaft Weihenstephan. Germany) The sequence of the spacer region between the 16S and 23S rRNA gene was determined using the cloned material originating from the 800 bp PCR fragment and this was *done for the three described Listeria species. Fig. 41 to 43 show the sequences of the different short spacer regions obtained. The sequence of this short spacer region of L.
monocvtogenes was also retrieved from the EMBL databank (LMRGSPCR).
Based on this sequence information, following oligonucleotides for species-specific detection were chosen and chemically synthesized: LMO-ICG-1 AAACAACCTTTACT1CGTAGAAGTAAATTGGTTAAG LMO-ICG-2: TGAGAGGTTAGTACTCTCAGTATGm=GTEC LSE-ICG-1
AGTAGCATAAGTAGTGTAACTATTATGACACAAG
LIV-ICG-1: GTAGCATAAATAGGTAACTATTTATGACACAAGTAAC Also, a genus specific probe for Listeria was designed: LIS-ICG-1: CAAGTAACCGAGAATCATCTGAAAGTGAATC The oligonucleotide-probes were immobilized on a membrane strip and following reverse hybridization with biotinylated PCR fragments, the hybrids were visualized using a precipitation reaction. The hybridization results of different Listeria species are summarized in table Table *r 10 Species n LIS1 LMO1 LMO2 LSEl LIV1 L. monocvtogenes 1 Lsee lieri 2 L. ivanovii 3 L. welshimeri 3 L innocua 2 These hybridization results show that probe LIS1 can detect all described Listeria species, but also that the species-specific probes cross-hybridize to each other. Hence. from this short spacer region probes with sufficient specificity could not be found.
For Listeria monocvtogenes the 16S-23S rRNA gene spacer was also determined originating from the 1100 bp fragment. Fig. 45 shows the sequence obtained for this species.
This sequence information was also obtained for L. seeligeri (see fig. 46) and partial sequence information of the large spacer region was obtained for L. ivaovii (see fig. 44).
Based on sequence alignment with L. seeligeri following oligonucleotide-probe was 20 chosen to specifically detect L. monocvtogenes.
LMO-ICG-3 AGGCACTATGCTTGAAGCATCGC Initial hybridization results (not shown) indicated that no cross-hybridization with other Listeria species was seen with this L. monocyto1gen probe LMO3. and that all Listeria strains used hybridized to the general probe LIS 1.
The oligonucleotide-probes, LIS1 for detection of all Listeria species and LMO3 for specific detection of L. monocvtogenes, were immobilized on a membrane strip and hybridized to labeled amplicons, containing the 16S-23S rRNA spacer region. derived from different organisms. The hybridization results are shown in the following table.
An excellent specificity and sensitivity were obtained for probes LMO3 and LISI respectively at the species and genus level.
Table 6 Taxa tested 4* Listeria monocytogene Listeria ivanovii Liste-ria seelizeri Listeria weshimeri Listeria innocua Listeria murravi Listeria gravi Brochotrix thrmosphact Br-ochotrix campestris Bacillus cereus Bacillus brevis Bacillusg coalqlans Bacillus p2urilis Bacillus macerans Bacillus lentu Bacillus firrnus Bacillus subtilis Bacillus rneeantum Enterococcus faecalis Enterococcus faecium Enteroco-ccus durns Lac-tococcus lactis LA91tococcus casei Escherichia coli Hafnia halvei AF~robacterium tumnefaiens My-coglasma dimorpha Clostridium robtyricum Clostridium Verfringens Clostridium sproenes CQlostridium acetobutyricuM Brucella abortus Brucella sIsJI Brucella melitensis Staphylococcus aurus Salmonella phinuri m Salmonella enteritidis Yersinia enterocol itica 44 10 11 16 23 3 2 3 2 2 2 3 2 LISi LMO3 1~ n. number o strains tes These two probes can be used for the detection of Listeria species and Listeri monocvtoeenes directly on food samples or after enrichment of the samples in liquid broth.
In both cases amplification problems can occur with the conserved primerset due to the enormous background flora in these samples.
To circumvent this problem, we designed several sets of primers derived from the 16S-23S rRNA spacer regions of Listeria species.
Primers LIS-PI and LIS-P2 are upper primers, whereas LIS-P3 and LIS-P4 are lower primers. These primersets amplify the smaller 16S-23S rRNA spacer region as well as the larger spacer of Listeria species (except L. grayi and L. murrayi). If needed these primers can be used in a nested PCR assay where LIS-P1/LIS-P4 are the outer primers and LIS- S* P2/LIS-P3 are the inner primers.
For the specific detection of Listeria monocvtogenes probe LMO-ICG-3 was designed and derived from the large 16S-23S rRNA spacer region. In order to specifically amplify S only this large spacer region for an improved detection of this pathogen directly in samples a set of primers was derived from the part of sequence information from the large 16S-23S rRNA spacer region that is not present in the smaller rRNA spacer. For this aim, primers and LIS-P6 are used as the upper primers and LIS-P7 is used as the lower primer.
LIS-P ACCTGTGAGTTTCGTTCTCTC 71 LIS-P2 CTATTTGTTCAGTTTTGAGAGGTT 7 **o LIS-P3 ATTTCCGTATCAGCGATGATAC 73 LIS-P4 :ACGAAGTAAAGGTTG'TI=TCT 74 LIS-P5 GAGAGGTTACTCTCITTATGTCAG LIS-P6 CTT'TTATGTCAGATAAAGTATGCAA 202 LIS-P7 CGTAAAAGGGTATGATTATTTG 203 During the evaluation of the probes for Listeria spp. an organism was isolated from cheese that resembled Listeria according to the classical determination methods. This isolate (MB 405) showed the following characteristics (similar to Listeria spp.) Gram positive.
growth on Oxford and Tryptic Soy Agar, catalase positive. The only difference with the Listeria spp. was the motility, which was negative.
Using the conserved primers as described in example 1 in order to amplify the 16S- 23S rRNA spacer region of this isolate MB 405. the same amplicon pattern was obtained with this strain as with Listeria spp. Hybridization of the amplicon showed that there was no 83 signal obtained with any of the probes for Listeria spp.
Sequencing of the 16S rRNA of isolate MB 405 and subsequent comparison with Lsteria spp. and relatives showed that the organism was more closely related to Listeria spp.
than to any other species described in the literature until now. Taxonomical studies will show if this isolate does or does not belong to the genus Listeria. This isolate, and subsequently isolated organisms from the same type. are referred to in this application as Listeria like organisms.
Isolate MB 405 seemed to contain at least 3 different i6S-23S rRNA spacer regions which were cloned and sequenced. Following alignment with Listeria spp. an oligonucleotide- 10 probe was chosen te specifically detect Listeria-like strains: LISP-ICG-1 CGTTITCATAAGCGATCGCACGTT Reverse hybridization reactions of this probe with the 16S-23S rRNA spacer regions of Listeria spp. showed that there was no cross-hybridization.
a° EXAMPLE 4: Chlamvdia trachomatis Chiamydia trachomatis is a small obligate intracellular gram-negative bacterium.
which has 15 serovars Ba, L1, L2, and L3) distinguished by the major outer membrane protein (MOMP) and contains a cryptic plasmid required for intracellular growth.
The A-K and Ba serovars constitute the trachoma biovar, while the L1. L2. and L3 serovars constitute the LGV biovar.
Serovars A, B, Ba, and C are commonly associated with trachoma, the leading cause of preventable blindness worldwide. The D-K serovars are found mainly in sexually transmitted infections and are the major cause of cervicitis and pelvic inflammatory disease in women, and urethritis and epididymitis in men. Serovars LI, L2 and L3 are involved in Slmphogranuloma venereum, a rare sexually transmitted disease.
ell culture is regarded as the benchmark method for laboratory diagnosis, although specimen viability is difficult to maintain during transport and laboratory techniques are timeconsuming and technically demanding. Therefore, a number of more rapid test kits were developed, such as an enzyme-linked immunosorbent assay, and direct fluorescent-antibody a* staining. However, none of these immunoassays have been shown to have high levels of sensitivity or specificity.
of:: A nonisotopic DNA probe assay (Gen-Probe PACE; Woods et al., 1990) that detects chlamydial rRNA is commercially available. Recently, the polymerase chain reaction (PCR) method has been used for detection of Chlamvdia infections. Detection was targeted at either the cryptic plasmid (Loeffelholz et al., 1992), or the ompl gene, which encodes for the major outer membrane protein (Taylor-Robinson et al., 1992). Compared with other techniques, PCR has higher sensitivity and specificity (Ossewaarde et al.. 1992).
None of these assays make use of DNA probes derived from the 16S-23S rRNA gene spacer region.
For a Chlamvdia trachomatis L2 and a Chlamydia psitaci 6BC strain, a part of the ribosomal RNA cistron, containing the 16S-23S rRNA spacer region was amplified using conserved primers (see example 1) and subsequently cloned in a plasmid vector. The 16S-23S rRNA spacer region was sequenced using the dideoxychain terminating chemistry.
The sequence of the spacer region of both Chlamydia species is shown in fig. 47 to Based on this sequence information, following oligonucleotide-probes were chemically synthetized: CHT-ICG- 1: GGAAGAAGCCTGAGAAGGFFF'CTGAC CHTR-ICG-2: GCA71ATATGTAAGAGCAAGCA~TPJAMCA CHTR-ICG-3: GAGTAGCGTGGTGAGGACGAGA CHPS-ICG- 1 :GGATAACTGTM~AGGACGGT"I'GAC The oligonucleotide-probes were immobilized in a line-wise fashion on a membrane strip and subsequently used in a reverse hybridization assay with biotinviated PCR products.
containing the I 6S-23S rRNA spacer region. as target.
to Hybridizations were done in a solution of 3xSSC and 20% formamide (FA) at a temperature of The hybridization results with the different probes are shown in the followinga table.
Table 7 a a a a. a a.
a 25 Strains tested CT3 P Chamydia trachomatis 12 Chlamydia psittaci 6BC Chlamydia psittaci CP Chlamydia psittaci TTi' Haemophilus ducrevi CIP 542 H-aemonhilus influenzae NCTC 8143 Neisseria gonorrhoeat NCTC 8375 Moraxella catarrhalis LMG 5128 Escherichia coli B Strepitococcus pneumonia 92-2 102 As shown in the table at a hybridization temperature of 50 0 C the probes CHTRI.
CI-TR2 and CHTR3 are specific for Chlarnydia trachomatis and probe CHPS I is specific fpr Chlam dia psittaci.
Several clinical isolates, obtained from the SSDZ, Delft, Netherlands. identified as ChlIamvdia trachomnatis using conventional methods were tested in a reverse hybridization assay with the different oligonucleotide-probes. All Chlamvdia trachomatis specific probes gave a positive hybridization signal and none of the isolates reacted with the Chlarnvdia 3j psittaci probe. For some clinical isolates the CHTR2 probe reacted significantly weaker than, 86 CHTR1 or CHTR3. The spacer region of one of these isolates (94 M 1961) was sequenced (SEQ ID NO 197) and the sequence revealed one mismatch with the spacer sequence of strain L2. An additional probe (CHTR4) was derived from this new spacer sequence CHTR-ICG-4 GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) This probe gives a stronger hybridization signal than CHTR2 with some clinical isolates from Chlamvdia trachomatis. It can be used alone, or in combination with the CHTR2 probe (e.g.
both probes applied in one LiPA-line).
In order to develop very sensitive assays for the detection of Chlamydia trachomatis directly in clinical specimens a specific primerset was derived from the 16S-23S rRNA spacer region, CHTR-P1 (upper primer) and CHTR-P2 (lower primer), amplifying specifically the spacer region of Chlamydia species.
CHTR-P1 AAGGTTTCTGACTAGGTTGGGC 69 CHTR-P2 GGTGAAGTGCTTGCATGGATCT 87 EXAMPLE 6: Mvcoplasma pneumoniae and Mvcoplasma genitalium Mycoplasmas are a group of the smallest prokaryotes known that are able to grow in cell-free media, lack a cell wall, and have very small genomes with a low G+C content.
More than 100 different species have been isolated from humans, animals. plants, and insects.
In humans, mycoplasmas have been recognized either as pathogenic organisms or as commensals. The best known pathogen is Mvcoplasma pneumoniae. the causative agent of primary atypical pneumonia, especially in children and young adults. The diagnosis of M.
pneumoniae has been based on the direct isolation by the culture method or on the detection of specific antibodies against M. pneumoniae in the patient's serum.
S Another pathogen, first isolated from urethral specimens from patients with nongonococcal urethritis, has been described as Mvcoplasma genitalium. This mycoplasma has several properties in common with M. pneumoniae. Both species are pathogenic, and both possess the capability to adhere to erythrocytes, various tissue cells, glass, and plastic surfaces. Furthermore, M. genitalium and M. pneumoniae share antigens, giving rise to extensive cross-reactions in serological tests. The observation that M. genitalium could also be found in respiratory tract specimens from patients with pneumonia and isolated from a S. mixture with M. pneumoniae has raised questions to the possible pathogenicity of M.
genitalium.
Since cultivation of both species is time-consuming and serology lacks specificity.
more rapid and more specific assays were developed to identify these mycoplasmas. The use of hybridization assays with DNA probes was described for these species. but despite good specificities these tests do not allow the detection of low levels of M. pneumoniae or M.
genitalium. So more recently, DNA hybridization techniques were developed using the polymerase chain reaction. M. pneumoniae-specific PCR assays have been reported using the PI adhesin gene (Buck et al., 1992) and the 16S rRNA gene (Kuppeveld et al., 1992).
Specific PCR assays for M. genitalium were described using sequences from the adhesin gene and the 16S rRNA gene.
The spacer sequences of clinical isolates of M. pneumoniae and M. genitalium (obtained from U. Gobel, University of Freiburg, Germany) were determined. They are shown in fig. 49 to 50. The sequences show some differences to those from other strains of 88 the same species deposited in the EMBL databank (MPMAC and MGG37 respectively).
Based on this information four probes were derived: one general Mycoplasma probe, two M.
pneumoniae specific, and one MA. genitalium specific probe: Mycoplasma-ICG: GAAAACTGAAAACGACAATCTTTCTAGTh-CC 1: ATCGGTGGTAAAFFAAACCCAAATCCCTGT MPN-ICG-2: CAG7rCTGAAAGAACTCCGCTCMC MGE-ICG-1: CACCCA~rAATITFCGGTGTrAAAACCC The probes were applied to LIPA strips and hybridized under standard conditions O3X SSC, 20% formamnide at 50 0 C) to amplified spacer material from four pneurnoniae strains, one M. eenitaliumn strain and twenty-two non-Mvcogplasma species strains. The general probe hybridized only to the five Mycopiasma strains tested. while the SoecifiC probes hybridized only to strains of the species for which they were designed.
89 EXAMPLE 7: Other mvcobacterial species With the steady improvement of laboratory techniques the information on the systematics and clinical significance of the so called "potentially pathogenic environmental 51 mycobacteria" increased rapidly. With the emergence of newly recognized diseases.
additional syndromes associated with different mycobacterial species have emerged and have assumed major importance.
In order to extend the LiPA test for the simultaneous detection of different mycobacterial species as described in example 2. a new set of DNA probes was designed to specifically identify the following species Mvcobacterium ulcerans. Mvcobacterium genavense, Mycobacterium xeno i, Mvcobacterium simiae. Mvcobacterium fortuitum.
"Mvcobacterium malmoense, Mycobacterium celatum and Mvcobacterium haemophilum.
These probes were derived from the 16S-23S rRNA spacer region sequence. For the above mentioned species this information was obtained through direct sequencing of PCR products or after cloning of the PCR-amplified spacer region. The sequences obtained are represented in fig. 80 to 97, and in fig. 38 for M. malmoense.
The sequences of the spacer region of the above-mentioned mycobacterial species were compared and aligned to those already described in example 2 or in publicly available sources. From the regions of divergence, species-specific DNA probes were designed. The 20 probes were selected and designed in such a way that the desired hybridization behaviour species-specific hybridization) was obtained under the same conditions as those specified for the other mycobacterial probes mentioned in example 2, i.e. 3X SSC, 20% deionized formamide, 50°C. This allows simultaneous detection of at least two, and possibly all. of the mycobacterial species described in the current invention.
The following oligonucleotide probes were designed from the spacer region sequence of respectively M. ulcerans, M. genavense, xenopi, M. simiae, M. fortuitum, M.
malmoense, M. celatum and M. haemophilum: MUL-ICG-1 GGTTTCGGGATGTTGTCCCACC MGV-ICG-1 CGACTGAGGTCGACGTGGTGT MGV-ICG-2 GGTGTTTGAGCATTGAATAGTGGTTGC MXE-ICG-1 GTTGGGCAGCAGGCAGTAACC MSI-ICG-1 GCCGGCAACGGTTACGTGTTC MFO-ICG-1
TCGTTGGATGGCCTCGCACCT
MFO-ICG-2
ACTTGGCGTGGGATGCGGGAA
MML-ICG-1:
CGGATCGATTGAGTGCTTGTCCC
MML-ICG-2:
TCTAAATGAACGCACTGCCGATGG
A MCE-ICG-1:
TGAGGGAGCCCGTGCCTGTA
MHP-ICG-1:
CATGTTGGGCTTGATCGGGTGC
The probes were immobilized on a LiPA strip and hybridized with amolified biotinylated material derived from a set of representative mycobacterial species as described in example 2. Amplification of the spacer region was carried out by PCR using a primer set as described in example 2. The different strains used for specificity testing are shown in table 8 together with the hybridization results obtained. The strains were obtained from the collection of the Institute for Tropical Medicine, Antwerp. Belgium.
The probes tested (MSI-ICG1, MXE-ICG-1, MFO-ICG-1, MFO-ICG-2.
MML-ICG-
1 I. MML-ICG-2, MCE-ICG-1 and MHP-ICG-1) specifically detected M.simiae M. xenoi.
M. fortuitum, M. maimoense, M. celatu and M. haemophilum respectively and showed no cross-hybridization with the other mycobacterial species tested. Thus, these probes allow a specific detection of mycobacterial species which were not further identifiable using the set of DNA probes described in example 2. M. malmoense was classified in example 2 as a "MIC 4 "-type, while the other species mentioned above were only hybridizing to the general 20 probes MYC1/MYC22 for the genus Mvcobacterium. and were thus classified in example 2 as "other mycobacterial species".
All tested M. genavense isolates reacted with MGV-ICG1 and MGV-ICG2. and not with MSI-ICG1 designed for M. simiae, closely related to M. genavense. A group of "intermediate" organisms, situated in between M. simiae and M. genavense, were received from the Tropical Institute of Medecine, Antwerp, where they were classified as simiae like" (strains 4358, 4824, 4833, 4844, 4849, 4857, 4859, 7375, 7379. 7730. 9745. 9-- 1228). These strains reacted only with probe MGV-ICG2 and not with probe MSI-ICG1 which specifically detects M. simiae strains sensu stricto. Sequencing of the 16S-23S rRNA spacer region of two of these simiae-like" isolates (strains 7379 and 9745) (see SEQ ID NO 161 and 162) confirmed that they were more closely related to M. genavense than to M.
simiae. A new probe MGV-ICG3 was designed to specifically detect this group of organisms.
which possibly belong to a new species.
MGV-ICG 3 TCGGGCCGCGTGTTCGTCAAA This illustrates again that the use of DNA probes derived from the 16S-23S spacer region can be helpful in differentiating different groups of strains, which are also found indeterminate by classical taxonomic criteria. The use of these DNA probes may possilby lead to the description of new (sub)species within mycobacteria. In this case, the MGV-1 probe would react only with M. genavense strains sensu stricto. MGV-3 probe woula react only with the intermediate simiae-like" strains, and MGV-2 probe would detect both types of strains.
The probe MUL-ICG-1 reacted with all M. ulcerans strains tested, but also showed cross-hybridization with M. marinum strain ITG 7732. Sequencing of the spacer region of this M. marinum strain indeed revealed an identical sequence to that of M. ulcerans strain 1837 (see fig. 80). Further differentiation between M. marinum and M. ulcerans can be done using a probe from the 16S-rRNA gene of M. ulcerans, part of which is co-amplified with the spacer region when primers MYC P1-P5 are used for amplification. A species-specific 16S rRNA probe for M. ulcerans, which can work under the same hybridization conditions as the spacer probes for mycobacterium species differentiation, is for example: S.TGGCCGGTGCAAAGGGCTG (SEQ ID NO 216) The above paragraph shows that, although it is preferable to use probes derived from the spacer region. it is also possible, and sometimes necessary. to combine the spacer probes with probes derived from other gene sequences, e.g. the 16S rRNA gene. Here again. these additional probes are selected such that they show the desired hybridization characteristics under the same hybridization and wash conditions as the spacer probes.
For M. kansasi, additional strains to the ones mentioned in example 2 have been tested with probes MKA-ICG-1, 2, 3 and 4 described in example 2. Since none of these probes was entirely satisfactory, additional probes were designed for M. kansasii detection.
Therefor, the spacer region of some of the additional M. kansasii strains ITG 6328, 8698 and 8973 was sequenced (see fig.90 to 92). These strains were also obtained from the Institute of Tropical Medecine in Antwerp, Belgium. Apparently, M. kansasii strains constitute a quite heterogeneous group, with remarkable differences in the spacer sequence between different strains. Additional probes MKA-ICG-5, 6, 7, 8, 9 and 10 were designed, all hybridizing again under the same conditions as those earlier described. i.e. 3X SSC, 20% deionized formamide, 50°C. The probes were tested with a collection of test strains obtained from the 92 Institute of Tropical Medicine, Antwerp, Belgium, and results are shown in table 8.
None of the M. kansasii probes hybridizes with a species other than M. kansasii. as far as tested. However, due to the heterogeneous character of this species. none of the M.
kansasii probes hybridizes with all M. kansasii strains. The different M. kansasii probes recognize different strains of M. kansasii. This differential hybridization may be of clinical significance. On the other hand, if detection of all M. kansasii strains is desirable, a combination of different M. kansasii probes can be envisaged.
*5 4*
S.
S.
S
S S *5 S S S S S S SS C S S S. *S S 55 55 Table 8: additional rwcobacterial probes species/type strain MUL I MGV ICG- MXE MFO MSI MML NICE MHP ICG-1 1 2 3 ICG-1 ICG-1 lCG- I ICG-1 ICG-1 1CG-1 ICG-2 M. tuberculosis 8004 M. avium 5887 M. intracellulare 5915 5913 MIC 3.1 strain 1812 MIC-4 strain 8724 M. scrophulaceum 4979 M. kansasii 4987 2795 6238 6362 8698 8973 8974 8971 M. ulcerans 1837 3129 5114 5115 M. inarinuin 7732 M. nialmoense 4832 4842 4 M. go dolle 7703 *e.
cc e be c
C
be S Ce ccc V cc ccc pc* C C
S
ccc cc cc C c Cc cc ccc ccc c ccc c~c cc cc cc cc c c c cc c Ccc c c 4 Ccc C cc cc cc cc Table 8 continued M. chelonae 4975 9855 94-330 94-379 M. gordonae 94-123 M. haemnophilum 778 3071 M. genavense 8777 and M. simiae-like 9745 92-742 A 7379 9500 M. siniiae 4484 4485 M. xenopi 4986 M. fortuitumn 4304 negative reaction, positive reaction, w weak reaction, variable reaction, blanc tion tested
S
*5 S 55 *5 S. S
S
*5
S*
T[able 8 conitinued species/t ype strain MKA M KA MICA MICA MICA MICA MICA MKA- ICG-3 ICG-4 ICG-5 ICcJ-6 ICG-7 ICG-8 ICG-9 M. tuberculosis 8004 MA. avium 5887 MA. intracellulare 5915 5913 MIC 3.1 strain 1812 MIC-4 strain 8724 MA. scropliulaceum 4979 M. kansasii 4987 2795 6238 6362 8698' w 8973 8974 8971 M. ulcerans 1837 3129 5114 5115 MA. marinuin 7732 M. inalmoense 4832 4842 M. gordlnnae 7703
S.
S S S S S S S S S SS S 55 S S S
S
S. 'T'hle 8 continiiiid M. clielonae 4975 9855 94-330 94-379 M. celatumn 94-123 M. haemnophilum 778 3071 M. genavense 8777 and M. simiiae-like 9745 92-742 7379 LM. simiae 4484 4485 M.xelopi 4986-- M. fortuitumn 4304 EXAMPLE 8: Brucella Brucellosis is a very widespread and economically important zoonosis which also affects humans.
For the identification of Brucella spp., mainly bacteriological and immunological detection techniques are being used. These tests are time-consuming and often give falsepositive results. Quick and reliable identification methods are being developed, mainly based on DNA amplification and hybridization.
Specific detection of Brucella spp. based on the amplification of a 43 kDa outer Smembrane protein (Fekete A. et al., 1990) or of a part of the 16S rRNA gene (Herman and 10 De Ridder, 1992) were already described.
In order to develop specific DNA probes and primers for the detection of Brucella spp. we analyzed the 16S-23S rRNA gene spacer region. Using conserved primers (sequences are given in example 1) the spacer region was amplified and subsequently cloned into the Bluescript SK+ vector following the same procedures as in example 1.
15 The obtained amplicon of about 1400 bp in length was cloned for the following Brucella species Brucella abortus NIDO Tulya biovar 3 (SEQ ID NO 154) Brucella melitensis NIDO biovar 1 (SEQ ID NO 131) Brucella suis NIDO biovar 1 (SEQ ID NO 132) "HindIII digestion of the constructs, followed by subcloning of the obtained fragments (n 3 facilitated the sequencing of the spacer region for the three described Brucella spp..
Fig. 56, 57 and 79 represent the sequences of the spacer regions obtained for the abovementioned strains of respectively Brucella melitensis, Brucella suis and Brucella abortus.
Due to the high homology of these spacer region sequences between different Brucella species, no species-specific DNA probes were deduced from this sequence information, and only genus-specific probes were designed.
For this purpose, the following probes were chemically synthesized: BRU-ICG 1 CGTGCCGCCTTCGTTTCTCTTT BRU-ICG 2 TTCGCTTCGGGGTGGATCTGTG BRU-ICG 3 GCGTAGTAGCGTTTGCGTCGG BRU-ICG 4 CGCAAGAAGCTTGCTCAAGCC The oligonucleotides were immobilized on a membrane strip and following reverse hybridization with biotinylated PCR fragments, the hybrids were visualized using a precipitation reaction. The hybridization results of the immobilized probes with different Brucella spp. and related organisms are represented in the table 9.
These hybridization results show that probes BRU-ICG 2, BRU-ICG 3 and BRU-ICG 1 4 are specific for Brucella spp. and can be used in a reverse hybridization assay for detection of these pathogens. Probe BRU-ICG 1 cross-hybridizes with Ochrobactrum antropi and Rhizobium loti strains, which are two taxonomically highly related organisms, but which are not expected to be present in the same sample material as used for Brucella detection.
As described in previous examples 3 and 4) also for Brucella specific primers 10 were chosen from the 16S-23S rRNA spacer region, in order to specifically amplify the spacer region from Brucella strains.
BRU-P 1 and BRU-P2 are used as upper primers, while BRU-P3 and BRU-P4 are used as lower primers. When used in a nested PCR assay the combination BRU-P1/BRU-4 is the outer primerset whereas the combination BRU-P2/BRU-P3 is the inner primerset.
BRU-P1 TCGAGAATTGGAAAGAGGTC 204 BRU-P2 AAGAGGTCGGATTTATCCG 205 BRU-P3 TTCGACTGCAAATGCTCG 206 BRU-P4 TCTTAAAGCCGCATTATGC 207 .0* 99 TABLE 9 TAXA TESTED n BRU-ICG 1 BRU-ICC 2BRU-ICG 3 13RU-ICG4 Brucella abortus 6 Brucella suis 3 Brucella melitensis 4 Brucella avis 2 Brucella canis 2 Bnicella neotomae 1I Phyllobactefium rubiaceariuni 1I NT NT Ochrobactnum anthroni 8 Aprobacterium tumefaciens 2 NT NT Agrobacterium rhizogenes I z NT N Rhizobium loti 1 Rhizobium meliloti 1 NT NT Rhizobium leguminosanim I NT NT *Bradvrhizobium iavomcum 1 NT NT Brochothrix thennosuhacta 1 NT NT .Brochothxix capsti 1 NT NT Bacillus cereus 3 NT NT Bacillus brevis 2 NT NT Bacillus coalmulans 1I NT NT Bacillus pnmilis I NT NT *.Bacillus macerans 1 NT NT Bacillus lentus 1 NT NT Bacillus fzigu 2 NT NT Bacillus subtilis 2 NT NT Bacillus mepatum I NT NT Enterococcus faccalis I NT NT Enterococcus faecium 1 NT NT Enteracaccus duam I NT NT .actobci~i lactis 3 NT NT Lactobacillus casel 1 NT NT Leuconostoc lactis I NT NT Escherichia coli 1 NT NT Hafnia halvei 1 NT N7 Clostridium tyrbt-iciui 1 NT NT Costridium perfringens 1 NT NT Cstridium sporozenes1
-NTT
Clostridiumn acetobutvxicurn 1 NT NT Staphylococcus aureus I NT NT Salmonella enteritidis I NT NT Yersinia enteracolitic I NT NT Listeria mnonvenes 1 NT NT Listeria ivanovii I NT NT Listeria seeligeri 1- NT NT isteria welshimeri I NT NT Listeria innocua 1 NT NT Listeria inurrai I -NT NT Listeria g 1 i NT NT NT Not tested n u umber at straIns testedl 100 EXAMPLE 9: Staphylococcus aureus Staphylococcus aureus is the staphylococcal species most commonly associated with human and animal infections. Staphylococcus aureus strains have been identified as important etiologic agents in both community-acquired and nosocomial infections. Recently nosocomial infection with methicillin-resistant S. aureus (MRSA) appear to be increasingly prevalent in many countries. The strains belonging to this species are also causative agents of food spoilage and poisoning.
In order to discriminate in a fast and specific way S. aureus strains from other staphylococci, the use of molecular techniques based on DNA probes and/or PCR were 10 already described in the literature. Examples of target genes used for the development of o ~these DNA based assays are the 16S rRNA gene (De Buyser at al., 1992; Geha et al, 1994).
the mecA gene (Ubukata et al., 1992; Shimaoka et al., 1994 and the nuc gene (Brakstad et al., 1992; Chesneau et al., 1993).
As a target for the development of specific DNA probes we chose the 16S-23S rRNA 15 gene spacer region. Amplification using conserved primers derived from the 16S and the 23S rRNA genes (sequences, see example 1) showed that the pattern obtained was not similar in all S. aureus strains tested. A lot of variation was seen in either the number of fragments *'obtained and in the size of these different fragments.
One spacer region from strain UZG 5728 and four spacer regions (differing in length) 20 from strain UZG 6289 were cloned into Bluescript SK+ vector and subsequently sequenced.
The sequences are represented in fig. 64 to fig. 68 (SEQ ID NO 139 to SEQ ID NO 143).
For the development of specific DNA probes these different spacer regions were compared to each other and to the spacer region derived from Staphylococcus epidermidis strain UZG CNS41 (SEQ ID NO 144).
The following probes were chemically synthesized STAU-ICG 1 TACCAAGCAAAACCGAGTGAATAAAGAGIT STAU-ICG 2 CAGAAGATGCGGAATAACGTGAC STAU-ICG 3 AACGAAGCCGTATGTGAGCATTTGAC STAU-ICG 4 GAACGTAACTTCATGTTAACGTITGACTTAT The oligonucleotides were immobilized on a membrane strip and following reverse hybridization with biotinylated PCR fragments, the hybrids were visualized using a 101 colorimetric precipitation reaction.
The hybridization results of the immobilized probes with different Staphylococcus spp.
and non-staphylococcal organisms are represented in Table These hybridization results show that only probes STAU-ICG 3 and STAU-ICG 4 are specific for Staphylococcus aureus strains. Probe STAU-ICG 1-reacts with all Staphylococcus spp. tested and probe STAU-ICG 2 cross-hybridizes with the S. lugdinensis strain.
Neither probe STAU-ICG 3 nor probe STAU-ICG 4 detects all S. aureus strains tested, but when both probes are used simultaneously in a LiPA assay, all S. aureus strains tested hybridize with one of these probes or with both.
*o *5
PS
S S S S S S S S S *5 S SS* *SS 555 S S S S S
S
SS 55 55 Table Stan Iete ISTAU-ICG I _STAU-ICG 2 _STAU-ICG 3 STAU-ICG 4 Staphylococcus aureus 13 Staphylococcus aureus 10 Staphylococcus aureus w staphylococcus aureus I Staphylococcus epidermidis 11+ Staphylococcus saprophyticus 1+ Staphylococcus haemolyticus Staphylococcus capitis I+ Staphylococcus lugdinensis 1+ Staphylococcus hominis
+I
Bordetella pertussis
I+
Bordetella parapertussisI- Bordetella bronchiseptica Mycobacteriumn tuberculosis1- Mycobacteriumn aviumI Moraxella catarrhalis 4- Haemophilus influenzae 2- Streptococcus pneumnoniae 3- Pseudomonas cepacia I- Pseudomonas aeruginosa 3- Acinetobacter calcoaceticus I 103
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Claims (39)

1. Method for the detection and identification of at least one micro-organism, or for the simultaneous detection of several micro-organisms in a sample, comprising the steps of: if need be releasing, isolating and/or concentrating the polynucleic acids from the micro-organism(s) to be detected in the sample; (ii) if need be amplifying the 16S-23S rRNA spacer region, or a part of it, from the micro-organism(s) to be detected, with at least one suitable primer pair; (iii) hybridizing the polynucleic acids of step or (ii) with a set of probes comprising at least two probes under the same hybridization and wash conditions, with said probes being selected from the sequences of table la or equivalents thereof, and/or from taxon-specific probes derived from any of the spacer sequences as represented in figures 1-103, with said taxon-specific probe being selected such that it is capable of hybridizing under the same hybridization and wash conditions as at least one of the probes of table la (iv) detecting the hybrids formed in step (iii); identification of the micro-organism(s) present in the sample from the differential hybridization signals obtained in step (iv).
2. Method according to claim 1, wher'ei said sample is originating from the respiratory tract and wherein wherein the set of probes as defined in step (iii) comprises at least one probe chosen from the following spacer probes: MYC-ICG-1 MYC-ICG-22 MTB-ICG-1 MTB-ICG-2 MTB-ICG-3: MAI-ICG-1: MIL-ICG-11 MIL-ICG-22 MAC-ICG-1 MAV-ICG-1 ACTGGATAGTGGTTGCGAGCATCTA CTTCTGAATAGTGGTTGCGAGCATCT GGGTGCATGACAACAAAGTTGGCCA GACTTGTTCCAGGTGTTGTCCCAC CGGCTAGCGGTGGCGTGTrCT CAACAGCAAATGATrGCCAGAACACAC GAGGGGTTCCCGTCTGTAGTG TGAGGGGTrCTCGTCTGTAGTG CACTCGGTCGATCCGTGTGGA TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO 1) (SEQ ID NO 2) (SEQ ID NO 3) (SEQ ID NO 4) (SEQ ID NO (SEQ ID NO 6) (SEQ ID NO 7) (SEQ ID NO 8) (SEQ ID NO 9) (SEQ ID NO 0* a. *5*a a S S a MAV-ICG-22: MIN-ICG-1 MIN-ICG-2: MIN-ICG-22: MIN-ICG-222: MIN-ICG-2222 MAL-ICG-1: MHEF-ICG-1 MAH-ICG-1: 10 MCO-ICG-1I1I: MTH-ICG-11 MTH-ICG-2: MEF-ICG-1 1: 15 MSC-ICG-1 MKA-ICG-1: MKA-ICG-2: MKA-ICG-3: MKA-ICG-4: M%,KA-4CG-5: MKA-ICG-6: MKA-ICG-7: MKA-ICG-8: MKA-ICG-9: MKA-ICG-10: MCH-ICG-1 MCH-ICG-2: MCH-ICG-3: MGO-ICG-1 MGO-ICG-2: MUL-ICG- I: GTGGCCGGCGTITCATCGAAA (SEQ ID NO 11) GCATAGTCCTTAGGGGTGATGCG'IT (SEQ ID NO 12) GCTGATGCcTTTCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCG'TrCGTCGAAATGTGT (SEQ ID NO 14) TGATGCG17CGTCGAAATGTGT (SEQ ID NO GGCTGATGCGTTCGTCGAAATGTGTAA (SEQ ID NO 16) ACTAGATGAACGCGTAGTCCITGT (SEQ ID NO 17) TGGACGAAAACCGGGTGCACAA (SEQ ID NO 18) GTGTAAM7=TrI'=AACTCTTGTGTGTAAGTAAGTG (SEQ ID NO 19) TGGCCGGCGTGTTCATCGAAA (SEQ ID NO GCAC7rCAA~rGGTGAAGTGCGAGCC (SEQ ID NO 21) GCGTGGTCTTCATGGCCGG (SEQ ID NO 22) ACGCGTGGTCCTI'CGTGG (SEQ ID NO 23) TCGGCTCGTITCTGAGTGGTGTC (SEQ ID NO 24) GATGCGF=TGCTACGGGTAGCGT (SEQ ID NO GATGCGTrGCCTACGGGTAGCGT (SEQ ID NO 26) ATGCG'ITGCCCTACGGGTAGCGT (SEQ ID NO 27) CGGGGTCTGTrCGAGAGrrGTC (SEQ ID NO 28) CCGTCAGGGATITCTGGGTG'TFG (SEQ ID NO 182) GGACTCGTCCAAGAGTGITGTCC (SEQ ID NO 183) TCGGGCTTGGCCAGAGCTG'Tr (SEQ ID NO 184) GGGTGCGCAACAGCAAGCGA (SEQ ID NO 185) GATGCG'TTGCCCCTACGGG (SEQ ID NO 186) CCCTACGGGTAGCGTGTTCTI'MG (SEQ ID NO 187) GGTGTGGAC=~GACTCTGAATAG (SEQ ID NO 29) CGGCAAAACGTCGGACTGTCA (SEQ ID NO GGTGTGGTCCITGAC1TATGGATAG (SEQ ID NO 210) AACACCCTCGGGTGCTGTCC (SEQ ID NO 31) GTATGCG'TGTCGTTCGCGGC (SEQ ID NO 32) CGTGAGGGGTCATCGTCTGTAG (SEQ ID NO 33) GG'VITCGGGATGTFGTCCCACC (SEQ ID NO 175) MGV-ICG-1: MGV-ICG-2: MGV-ICG-3: MXE-ICG-1: MSI-ICG-1: MFO-ICG-1: MFO-ICG-2: MML-ICG-1: MML-ICG-2: MCE-ICG-1: MHP-ICG-1I PA-ICG 1 PA-ICG 2: PA-ICG 3: PA-ICG 4: CGACTGAGGTCGACGTGGTGT (SEQ ID NO 176) GGTGI'rrGAGCAITGAATAGTGGrrGC (SEQ ID NO 177) TCGGGCCGCGTG1TCGTCAAA (SEQ ID NO 211) GTITGGGCAGCAGGCAGTAACC (SEQ ID NO 178) CCGGCAACGGTITACGTGTrC (SEQ ID NO 179) TCGTrGGATGGCCTCGCACCT (SEQ ID NO 180) ACTITGGCGTGGGATGCGGGAA (SEQ ID NO 181) CGGATCGA'TGAGTGC'TGTCCC (SEQ ID NO 188) TCTAAATGAACGCACTGCCGATGG (SEQ ID NO 189) TGAGGGAGCCCGTGCCTGTA (SEQ ID NO 190) CATGTGGGCFFGATCGGGTGC (SEQ ID NO 191) TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) TGAATGTTCGTGGATGAACATTGATT (SEQ ID NO CACTGGTGATCATTCAAGTCAAG (SEQ ID NO 36) TGAATGTTCGT(G/A)(G/A)ATGAACAITGATFFCTGGTC (SEQ ID NO 37) C, PA-ICG 5: CTCTICACTGGTGATCAITCAAGTCAAG MPN-ICG 1: ATCGGTGGTAAATTAAACCCAAATCCCTG MPN-ICG 2: CAGfTCTGAAAGAACAMLCCGC11CTITC MGE-ICG 1 CACCCA1TIAA7MTTICGGT'VFAAACCC Mycoplasma-ICG CAAAACTGAAAACGACAATC71TCTAGTI'CC STAU-ICG 1 TACCAAGCAAAACCGAGTGAATAAAGAGF STAU-ICG 2: CAGAAGATGCGGAATAACGTGAC STAU-ICG 3: AACGAAGCCGTATGTGAGCAT*TTGAC 2 5 STAU-ICG 4: GAACGTAACICATGTTAACGTITGACTTAT ACI-ICG 1 GCTTAAGTGCACAGTGCTCTAAACTGA ACI-IOG 2: CACGGTAATTAGTGTGATCTGACGAAG and more preferably from the following spacer probes: MYC-ICG- 1: ACTGGATAGTGGTTGCGAGCATCTA MYC-ICG-22: C'TrCTGAATAGTGGTTGCGAGCATCT MTB-ICG- 1 GGGTGCATGACAACAAAGITGGCCA MTB-ICG-2: GACTITGTTCCAGGTG'TGTCCCAC (SEQ ID NO 38) (SEQ ID NO 49) (SEQ ID NO (SEQ ID NO 51) (SEQ ID NO 52) (SEQ ID NO 53) (SEQ ID NO 54) (SEQ ID NO (SEQ ID NO 56) (SEQ ID NO 57) (SEQ ID NO 58) (SEQ ID NO 1) (SEQ ID NO 2) (SEQ ID NO 3) (SEQ ID NO 4) SW SW S S S S MTB-ICG-3: CGGCTAGCGGTGGCGTGITCT MiAI-ICG- 1: CAACAGCAAATGATTGCCAGACACAC MIL-ICG- 11: GAGGGGTT7CCCGTCTGTAGTG MIL-ICG-22: TGAGGGGTFICTCGTCTGTAGTG MAC-ICG--1 CACTCGGTCGATCCGTGTGGA MAV-ICG-1: TCGGTCCGTCCGTGTGGAGTC MAV-ICG-22: GTGGCCGGCGTrCATCGAAA MIN-ICG-1: GCATAGTCCTITAGGGCTGATGCGTF MAL-ICG-1I ACTAGATGAACGCGTAGTCC'ITGT 10 MCO-ICG-11I TGGCCGGCGTGTTCATCGAAA MTH-ICG- 1:I GCACTTCAKFI'GGTGAAGTGCGAGCC MTH-ICG-2: GCGTGGTCITCATGGCCGG MEF-ICG-1I1I ACGCGTGGTCC'ITCGTGG MSC-ICG-1: TCGGCTCG77TCTGAGTGGTGTC MKA-ICG-3: ATGCGTGCCCTACGGGTAGCGT MKA-ICG-4: CGGGCTCTGTITCGAGAGTTGTC CCCTCAGGGATIICTGGGTGTTG MKA-ICG-6: GGACTCGTCCAAGAGTGrI'GTCC MKA-ICG-7: TCGGGCTI7GGCCAGAGCTGTF -MYKA-1CG-8 GGGTGCGCAACAGCAAGCGA MKA-ICG-9: GATGCGITGCCCCTACGGG CCCTACGGGTAGCGTGTITCTIIG MCH-ICG-1I: GGTGTGGACTV17GAC7TCTGAATAG MCH-ICG-2: CGGCAAAACGTCGGACTGTCA MCH-ICG-.3: GGTGTGGTCC1TGACTI'ATGGATAG CGTGAGGGGTCATCGTCTGTAG MUL-ICG-1I GG=ICGGGATG'ITGTCCCACC MGV-LCG-1I CGACTGAGGTCGACGTGGTGT MGV-ICG-2: GGTG'ITGAGCATrGAATAGTGGFFGC MGV-ICG-3: TCGGGCCGCGTGTTCGTCAAA MXE-ICG-1I G1TGGGCAGCAGGCAGTAACC MSI-ICG- I CCGGCAACGG7TACGTGTTC (SEQ ID NO (SEQ ID NO 6) (SEQ ID NO 7) (SEQ ID NO 8) (SEQ ID NO 9) (SEQ ID NO (SEQ ID NO 11) (SEQ ID NO 12) (SEQ ID NO 17) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ ID NO -23) (SEQ ID NO 24) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183)/ (SEQ ID NO 184) (SEQ ID !NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 29) (SEQ ID NO (SEQ ID NO 210) (SEQ ID NO 33) (SEQ ID NO 175) (SEQ ID NO 176) (SEQ ID NO 177) (SEQ ID NO 211) (SEQ ID NO 178) (SEQ ID NO 179) MFO-ICG-1I: MFO-ICG-2: MML-ICG- 1: MML-ICG-2: MCE-ICG-1 MHP-ICG-l TCGTTGGATGGCCTCGCACCT ACTI'GGCGTGGGATGCGGGAA CGGATCGATTGAGTGCTFGTCCC TCTAAATGAACGCACTGCCGATGG TGAGGGAGCCCGTGCCTGTA CATGTI'GGGCTTGATCGGGTGC (SEQ ID NO 180) (SEQ ID NO 181) (SEQ ID NO 188) (SEQ ID NO 189) (SEQ ID NO 190) (SEQ ID NO 191) PA-ICG 1: PA-ICG 4: TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) TGAATGTTCGT(G/A)(G/A)ATGAACAT-FGAVFICTGGTC (SEQ ID NO 37) a a a a a a. a a a a a PA-ICG 5: CTCMTCACTGGTGATCATTCAAGTCAAG MPN-ICG 1: ATCGGTGGTAAATTAAACCCAAATCCCTGT MPN-ICG 2: CAG'1rCTGAAAGAACA'FIfCCGCTFCTTC MGE-ICG 1 CACCCA7ITAATTICGGTGTTAAAACCC Mycoplasma-ICG CAAAACTGAAAACGACAAT=CTcTAGyT'CC STAU-ICG 1 TACCAAGCAAAACCGAGTGAATAAAGAGT STAU-ICG 2: CAGAAGATGCGGAATAACGTGAC STAIJ-ICG 3: AACGAAGCCGTATGTGAGCAT*l'GAC STAU-ICG 4: GAACGTAAC~ffCATrrAACG'lGACrl'AT ACI-ICG 1: GCTTAAGTGCACAGTGCTCTAAACTGA ACI-ICG 2: CACGGTAATT7AGTGTGATCTGACGAAG (SEQ ID NO 38) (SEQ ID NO 49) (SEQ ID NO (SEQ ID NO 51) (SEQ ID NO 52) (SEQ ID NO 53) (SEQ ID NO 54) (SEQ ID NO (SEQ ID NO 56) (SEQ ID NO 57) (SEQ ID NO 58) or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 76 to 106, 157 to 174, 124, 125, 111 to 115, 139 to 144, or 126 to 130, and with said probes or equivalents being possibly used in combination with any probe detecting at least one of the following organisms: Haemophilus influenzae, Streptococcus pneumoniae, Moraxelia catarrhalis or Bordetella pertussis.
3. Method according to claim 1, wherein said sample is a sample taken from the cerebrospinal fluid, and wherein the set of probes as described in step (iii) comprises at least one probe chosen from the following spacer probes: *9 a. MYC-ICG- I: MYC-ICG-22: MTB-ICG-1 MTB-ICG-2: NM-ICG-3: LIS-ICG 1 LMO-ICG 1: LMO-ICG 2: 10 LMO-ICG 3: LISP-ICG 1: and preferably MYC-ICG-1 MYC-ICG-22: MTB-ICG-1 MTB-ICG-2: MTB-ICG-3: "TI-ICG I1: LMO-ICG 3: 20 LISP-ICG 1: TGAGAGGTTAGTAC'ITCTCAGTATG1TIGTFC AGGCACTATGCTTGAAGCATCGC CGTITCATAAGCGATCGCACGTr from the following spacer probes: ACTGGATAGTGGTflGCGAGCATCTA C'1rCTGAATAGTGGITGCGAGCATCT GGGTGCATGACAACAAAGTIGGCCA GAC'FTTCCAGGTGTrGTCCCAC CGGCTAGCGGTGGCGTGTFCT CAAGTAACCGAGAATCATCTGAAAGTGAATC AGGCACTATGCTTGAAGCATCGC CG=hICATAAGCGATCGCACGTr ACTGGATAGTGG1TGCGAGCATCTA (SEQ ID NO 1) CTTICTGAATAGTGGTTGCGAGCATCT (SEQ ID NO 2) GGGTGCATGACAACAAAGrGGCCA (SEQ ID NO 3) GAC'ITGTrCCAGGTG'FrGTCCCAC. (SEQ ID NO 4) CGGCTAGCGGTGGCGTGTFCT (SEQ ID NO CAAGTAACCGAGAATCATCTGAAAGTGAATC (SEQ ID NO 39) AAACAACC FACTI7CGTAGAAGTAAATTGGTTAAG (SEQ ID NO (SEQ ID NO 41) (SEQ ID NO 42) (SEQ ID NO 212) (SEQ ID NO 1) (SEQ ID NO 2) (SEQ ID NO 3) (SEQ ID NO 4) (SEQ ID NO '__QITD NO3) (SEQ ID NO 42) (SEQ ID NO 212) 9 *O 9 9 9 9 or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences; as represented by SEQ ID NO -116, 118-12 1, or 213-215, and with said probes or equivalents being possibly used in combination with any probe detecting at least one of the following organisms: Neisseria meniniltidis, H-aernophilus influenzae or Streptococcus pneumoniae. *5 Se S S S *5 5555 *555 S S
4. Method according to claim 1, wherein said sample is originating from the uro- genital tract, and wherein the set of probes as described in step (iii) comprises at least one probe chosen from thle following spacer probes: CHTR-ICG 1: GGAAGAAGCCTGAGAAGG17CTGAC (SEQ ID NO 'CHTR-ICG 2: GCATT7ATATGTAAGAGCAAGCA~fCTA737CA (SEQ ID NO 46) CHTR-I CG 3: GAGTAGCGTGGTGAGGACGAGA (SEQ ID NO 47) CHTR-ICG 4: GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) CHPS-ICG I: GGATAACTGTCITAGGACGG1GAC (SEQ ID NO 48) MGE-ICG 1 CACCCITrAACFT T'CGGTGTrAAAACCC (SEQ ID NO 5 1) 10 Mycoplasma-ICG CAAAACTGAAAACGACAAT =F1CTAG~FICC (SEQ ID NO 52) or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 122, 123, 197, 124 or 125, with said probes or equivalents being possibly used in combination with any probe detecting at least one of the following organisms: Neisseria gonorhoeae, H-aemohilus ducrevi or Streptococcus agalactiae. Method according to claim 1, wherein saidi sampnie is originating from food, and 20 wherein the set of probes as defined in step (iii) comprises at least one probe chosen from the following spacer probes: LIS-ICG 1: CAAGTAACCGAGAATCATCTGAAAGTGAATC (SEQ ID NO 39) LMO-ICG 1: AAACAACCTACTTCGTAGAAGTAAATGGThAG (SEQ ID NO LMO-ICG 2: TGAGAGGTrAGTACTTCTCAGTATGTGC (SEQ ID NO 41) LMO-ICG 3: AGGCACTATGCTTGAAGCATCGC (SEQ ID NO 42) LIV-ICG I: GTrAGCATAAATAGGTAACTATFI'ATGACACAAGTAAC (SEQ ID NO 43) LSE-ICG 1 :AGTfAGCATAAGTAGTGTAACTAMATGACACAAG (SEQ ID NO 44) LISP-ICG 1: CG~flTCATAAGCGATCGCACG'r (SEQ ID NO 212) STAU-ICG I1: TACCAAGCAAAACCGAGTGAATAAAGAGTY (SEQ ID NO 53) a a. a. a a a. a a. a a. a a STAU-ICG 2: STAU-ICG 3 STAU-ICG 4: BRU-ICG 1: BRU-ICG 2: BRU-ICG 3: BRU-ICG 4: SALM-TCG 1: SALM-ICG 2 10 STY-ICG 1 SED-ICG 1 YEC-ICG 1: YEC-ICG 2:- YEC-ICG 3: and preferably LIS-ICG 1 LMO4ICG 3: LISP-ICG 1: STAU-ICG 1 STAU-ICG 2 STAU-ICG 3 STAU-ICG 4 BRU-ICG 2: BRU-ICG 3: BRU-.ICG 4: SALM-ICG 1 YEC-ICG 1 YEC-ICG 2: YEC-ICG 3 CAGAAGATGCGGAATAACGTGAC AACGAAGCCGTATGTGAGCAMhIGAC GAACGTAAGVFCATGTFAACGTIGACrAT CGTGCCGCCTTCGTTTCTCTF 7rCGCTITCGGGGTGGATCTGTG GCGTAGTAGCG GCGTCGG CGCAAGAAGCTI'GCTCAAGCC CAAAACTGAC'TACGAGTCACGTGAG GATGTATGCTITCGIrATTCCACGCC GGTCAAACCTCCAGGGACGCC GCGGTAATGTGTGAAAGCGFFGCC GGAAAAGGTACTGCACGTGACTG GACAGCTGAAACTI7ATCCCTCCG GCTACCTGTTGATGTAATGAGTCAC from the following spacer probes: CAAGTAACCGAGAATCATCTGAAAGTGAATC AGGCACTATGC'ITGAAGCATCGC CGTT=CATAAGCGATCGCACGTT *TACCAAGCAAAACCGAGTGAATAAAGAGTT *CAGAAGATGCGGAATAACGTGAC *AACGAAGCCGTATGTGAGCATIGAC *GAACGTAACT17CATG~rAACG71TGACITAT TTCGCTTCGGGGTGGATCTGTG GCGTAGTAGCG GCGTCGG CGCAAGAAGC1TGCTCAAGCC *CAAAACTGACTITACGAGTCACGTFPGAG GGAAAAGGTACTGCACGTGACTG GACAGCTGAAACT1TATCCCTCCG GCTACCTG77GATGTAATGAGTCAC (SEQ ID NO 54) (SEQ ID NO (SEQ ID NO 56) (SEQ ID NO 59) (SEQ ID NO (SEQ ID NO 193) (SEQ ID NO 194) (SEQ ID NO 61) (SEQ ID NO 62) (SEQ ID NO 63) (SEQ ID NO 64) (SEQ ID NO 198) (SEQ ID NO 199) (SEQ ID NO 200) (SEQ ID NO 39) (SEQ ID NO 42) (SEQ ID NO 212) (SEQ ID NO 53) (SEQ ID NO 54) (SEQ ID NO (SEQ ID NO 56) (SEQ ID NO (SEQ ID NO 193) (SEQ ID NO 194) (SEQ ID NO 61) (SEQ ID NO 198) (SEQ ID NO 199) (SEQ ID NO 200) or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said 119 sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 116, 118-121, 213-215, 139-144, 131, 132, 154, 133-138, 195 or 196, with said probes or equivalents being possibly used in combination with any probe detecting strains of Campylobacter species.
6. Method according to claim 1, wherein said sample is originating from the gastro- intestinal tract of a patient, and wherein the set of probes as defined in step (iii) comprises at least one probe chosen from the following spacer probes: 9 S 0* 00 o* 9 9 S 9 9 9* 9 9 SALM-ICG 1 SALM-ICG 2 10 STY-ICG 1 SED-ICG 1 YEC-ICG 1 YEC-ICG 2 YEC-ICG 3 and preferably SALM-ICG 1 YEC-ICG 1 YEC-ICG 2 -YEC-ICG 3 CAAAACTGACTTACGAGTCACGTITGAG GATGTATGCTTCGTTATTCCACGCC GGTCAAACCTCCAGGGACGCC GCGGTAATGTGTGAAAGCGTTGCC GGAAAAGGTACTGCACGTGACTG GACAGCTGAAACTTATCCCTCCG GCTACCTGTTGATGTAATGAGTCAC from the following spacer probes: CAAAACTGACTTACGAGTCACGTTTGAG GGAAAAGGTACTGCACGTGACTG GACAGCTGAAACTTATCCCTCCG GCTACCTGTTGATGTAATGAGTCAC (SEQ ID NO 61) (SEQ ID NO 62) (SEQ ID NO 63) (SEQ ID NO 64) (SEQ ID NO 198) (SEQ ID NO 199) (SEQ ID NO 200) (SEQ ID NO 61) (SEQ ID NO 198) (SEQ ID NO 199) (SEQ ID NO 200) or equivalents of said probes, and/or wherein the set of probes comprises at least one taxon-specific probe derived from the spacer region sequence corresponding to one of the micro-organisms to be detected in said sample, said spacer region sequence being chosen from any of the sequences as represented by SEQ ID NO 133-138 or 195-196, with said probes or equivalents being possibly used in combination with any probe detecting Campvlobacter species.
7. Method according to claim 1 to detect and identify one or more strains of Mvcobacterium species and subspecies in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MYC-ICG-1 ACTGGATAGTGGTTGCGAGCATCTA (SEQ ID NO 1) MYC-ICG-22: CTTCTGAATAGTGGITGCGAGCATCT (SEQ ID NO 2) a MTB-ICG-1 MTB-ICG-2: MTB-ICG-3: M4AI-ICG- 1: MIL-ICG-1 1: MIL-ICG-22: MAC-ICG-i: MAV-ICG- 1 MAV-ICG-22: MIN-ICG.-1 MIN-ICG-2: MIN-ICG-22: MIN-ICG-222: MIN-ICG-2222 MAL-ICG-1 MHEF-ICG-1I MAH-ICG-1: MCO-ICG-1I: MTH-ICG- I1I MTH-ICG-2: MEF-ICG-1 1: MSC-ICG-1: MKA-ICG-1: MKA-ICG-2: MKA-ICG-3: MKA-ICG-4: MKA-ICG-6: MKA-ICG-7: MKA-ICG-8: GGGTGCATGACAACAAAGTrGGCCA (SEQ ID NO 3) GACTI'GTFCCAGGTGTrGTCCCAC (SEQ ID NO 4) CGGCTAGCGGTGGCGTGTTCT (SEQ ID NO CAACAGCAAATGATTGCCAGACACAC (SEQ ID NO 6) GAGGGGTTCCCGTCTGTAGTG (SEQ ID NO 7) TGAGGGGITrTCGTCTGTAGTG (SEQ ID NO 8) CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO GTGGCCGGCGTI'CATCGAAA (SEQ ID NO 11) GCATAGTCCTTAGGGCTGATGCGIr (SEQ ID NO 12) GCTGATGCGITCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCG77CGTCGAAATGTGT (SEQ ID NO 14) TGATGCGTTCGTCGAAATGTGT (SEQ ID NO *GGCTGATGCG7I'CGTGGAAATGTGTAA (SEQ ID NO 16) ACTAGATGAACGCGTAGTCCrI'GT (SEQ ID NO 17) TGGACGAAAACCGGGTGCACAA (SEQ ID NO 18) GTGTAATMrCTIIhTAACTCFrGTGTGTAAGTAAGTG TGGCCGGCGTGTTCATCGAAA GCACTITCAAWI'GGTGAAGTGCGAGCC GCGTGGTCTTCATGGCCGG ACGCGTGGTCCTTCGTGG TCGGGTCGTTCTGAGTGGTGTC GATGCG =T1GCTACGGGTAGCGT GATGCGTTGCCTACGGGTAGCGT ATGCG'ITGCCCTACGGGTAGCGT CGGGCTCTGTTCGAGAGT~rGTC CCCTCAGGGAWFTCTGGGTGTTG GGACTCGTCCAAGAGTGTTGTCC TCGGGCTTGGCCAGAGCTGTT GGGTGCGCAACAGCAAGCGA (SEQ ID NO 19) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ ID NO 23) (SEQ ID NO 24) (SEQ ID NO (SEQ ID NO 26) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) 121 MKA-ICG-9: GATGCG1TGCCCCTACGGG (SEQ ID NO 186) CCCTACGGGTAGCGTGTTCI TITG (SEQ ID No 187) MCH-ICG-1 GGTGTGGACM11GACITCTGAATAG (SEQ ID NO 29) MCH-ICG-2: CGGCAAAACGTCGGACTGTCA (SEQ ID NO MGO-ICG- I: AACACCCTCGGGTGCTGTCC (SEQ ID NO 31) MGO-ICG-2: GTATGCG'ITGTCGTT'CGCGGC (SEQ ID NO 32) CGTU'AGGG'GTCATCGTCTGTAG (SEQ ID NO 33) MUL-ICG-1: GGMFICGGGATGTTGTCCCACC (SEQ ID NO 175) MGV-ICG-1I CGACTGAGGTCGACGTGGTGT (SEQ ID NO 176) MGV-ICG-2: GGTG1GAGCAT7GAATAGTGGTI'GC (SEQ ID NO 177) MXE-ICG-1: GTTGGGCAGCAGGCAGTAACC (SEQ ID NO 178) MSI-ICG-1I CCGGCAACGGTTACGTGTTC (SEQ ID NO 179) ::MFO-ICG-1I TCGITGGATGGCCTCGCACCT (SEQ ID NO 180) *MFO-ICG-2: ACTTGGCGTGGGATGCGGGAA (SEQ ID NO 181) MML-ICG- I: CGGATCGA'ITGAGTGCTTGTCCC (SEQ ID NO 188) MML-ICG-2: TCTAAATGAACGCACTGCCGATGG (SEQ ID NO 189) MCE-ICG-1I TGAGGGAGCCCGTGCCTGTA (SEQ ID NO 190) *MHP-ICG- I CATGTrGGGCTTGATCGGGTGC (SEQ ID NO 191) and more preferably to at least one probe of the following restricted g-roup of spacer probes: M'YYC-ICG-1I: ACTGGATAGTGG'17GCGAGCATCTA (SEQ ID NO 1) MYC-ICG-22: CTTCTGAATAGTGG~rGCGAGCATCT (SEQ ID NO 2) MTB-ICG-1: GGGTGCATGACAACAAAGTITGGCCA (SEQ ID NO 3) MTB-ICG-2: GACITTCCAGGTG1TGTCCCAC (SEQ ID NO 4) MTB-ICG-3: CGGCTAGCGGTGGCGTGTTCT (SEQ ID NO MAI-ICG-1: CAACAGCAAATGATFGCCAGACACAC (SEQ ID NO 6) MIL-ICG--11 GAGGGGTICCCGTCTGTAGTG (SEQ ID NO 7) MIL-ICG-.22: TGAGGGGTrCTCGTCTGTAGTG (SEQ ID NO 8) MAC-ICG-1: CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) MAV-ICG-1: TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO MAV-ICG-22: GTGGCCGGCG'ITCATCGAAA (SEQ ID NO 11) MIN-ICG-l GCATAGTCC'TrAGGGCTGATGCG'IT (SEQ ID NO 12) MAL-ICG- I ACTAGATGAACGCGTAGTCC~rGT (SEQ ID NO 17) MCO-ICG-11: TGGCCGGCGTGITCATCGAAA MTH-ICG- 1: GCACTrCAATGGTGAAGTGCGAGCC MTH-ICG-2: GCGTGGTCITCATGGCCGG MEF-ICG-1I1I ACGCGTGGTCCTTCGTGG ,MSC-ICG-1: TCGGCTCGTI'CTGAGTGGTGTC MKA-ICG-3: ATGCG= GCCCTACGGGTAGCGT MKA-ICG-4: CGGGCTCTGTTCGAGAGTTGTC CCCTCAGGGKITICTGGGTGTTG MKA-ICG-6: GGACTCGTCCAAGAGTGTTGTCC MKA-ICG-7: TCGGGCTTGGCCAGAGCTG'I7 MKA-ICG-8: GGGTGCGCAACAGCAAGCGA MKA-ICG-9: GATGCG'TTGCCCCTACGGG CCCTACGGGTAGCGTGYIC=FIG MCH-ICG- 1: GGTGTGGAC7ITGACTr'CTGAATAG MCH-ICG-2: CGGCAAAACGTCGGACTGTCA MCH-ICG-3: GGTGTGGTCC-rFGA ATGGATAG CGTGAGGGGTCATCGTCTGTAG MUL-ICG-1I GG71CGGGATGITGTCCCACC MGV-ICG-1I CGACTGAGGTCGACGTGGTGT MGV-ICG-2: GGTGYIGAGCA'ITGAATAGTGGTTGC MGV-ICG-3: TCGGGCCGCGTGTTCGTCAAA hM-ICG-1: GTITGGGCAGCAGGCAGTAACC MSI-ICG-1I CCGGCAACGG'VITACGTG'ITC MFO-ICG- I TCGFI7GGATGGCCTCGCACCT MFO-ICG-2: ACTIGGCGTGGGATGCGGGAA MML-ICG-1I: CGGATCGATTGAGTGCT17GTCCC MML-ICG-2: TCTAAATGAACGCACTGCCGATGG MCE-ICG-1: TGAGGGAGCCCGTGCCTGTA MHP-ICG-1: CATGTF7GGGM1GATCGGGTGC or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 76-110, or 157-174 hybridizes specifically to a Mycobacterium species. (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) (SEQ ID NO 23) (SEQ ID NO 24) (SEQ ID NO 27) (SEQ ID NO 28) (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ ID NO 187) (SEQ ID NO 29) (SEQ ID NO (SEQ ID NO 210) (SEQ ID NO 33) (SEQ ID NO 175) (SEQ ID NO 176) (SEQ ID NO 177) (SEQ ID NO 211) (SEQ ID NO 178) (SEQ ID NO 179) (SEQ ID NO 180) (SEQ ID NO 181) (SEQ ID NO 188) (SEQ ID NO 189), (SEQ ID NO 190) (SEQ ID NO 191) provided said probe S S* 123
8. Method according to claim 7, to detect and identify one or more Mycobacterium tuberculosis complex strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MTB-ICG-1I: GGGTGCATGACAACAAAGTTGGCCA (SEQ ID NO 3) MTB-ICG-2: GAC'flGTICCAGGTGTIGTCCCAC (SEQ ID NO 4) MTB-ICG-3: CGGCTAGCGGTGGCGTG'1TCT (SEQ ID NO or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 76 provided said probe hybridizes specifically to the M. tuberculosis complex.
9. Method according to claim 7 to detect and identify one or more Mycobacterium strains from the MAIS-complex, wherein step (iii) comprises hybridizing to at least one of the following probes: MAI-ICG-1: MIL-ICG-1 MIL-ICG-22: MAC-ICG: MAV-ICG-1: MAV-ICG-22: MIN-ICG-1 MIN-ICG-2: MIN-ICG-22: MIN-ICG-222: MIN-ICG-2222 MIAL..ICGUl: MHEF-ICG-1: MAH-ICG-1: CAACAGCAAATGAITrGCCAGACACAC (SEQ ID NO 6) GAGGGGTTCCCGTCTGTAGTG (SEQ ID NO 7) TGAGGGG'TrCTCGTCTGTAGTG (SEQ ID NO 8) CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO GTGGCCGGCGTrCATCGAAA (SEQ ID NO 11) GCATAGTCCTTAGGGCTGATGC'"G'r (SEQ ID NO 12) GCTGATGCGTTCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCGWrCGTCGAAATGTGT (SEQ ID NO 14) TGATGCGTI'CGTCGAAATGTGT (SEQ ID NO GGCTGATGCGTTCGTCGAAATGTGTAA (SEQ ID NO 16) ACTAGATGAACGCGTAGTCCTrGT (SEQ ID NO 17) TGGACGAAAACCGGGTGCACAA (SEQ ID NO 18) GTGTAATITC-TTIAACTCITGTGTGTAAGTAAGTG MCO-ICG-1I1I MTH-ICG-1I1I MTH-ICG-2: TGGCCGGCGTGICATCGAAA GCACTTCAATGGTGAAGTGCGAGCC GCGTGGTC17CATGGCCGG (SEQ ID NO 19) (SEQ ID NO (SEQ ID NO 21) (SEQ ID NO 22) MEF-ICG-11: ACGCGTGGTCCTrCGTGG MSC-ICG-l: TCGGCTCGT-rCTGAGTGGTGTC or to equivalents of said probes, (SEQ ID NO 23) (SEQ ID NO 24) 9* 4 4 4 4* and/or to any probe derived from SEQ ID NO 77-100 or 108-110, provided said probe hybridizes specifically to strains from the MAIS complex. Method according to claim 9 to detect and identify one or more M. avium and M. paratuberculosis strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MAV-ICG-l: TCGGTCCGTCCGTGTGGAGTC (SEQ ID NO 10 MAV-ICG-22: GTGGCCGGCG'FFCATCGAAA (S EQ ID NO 11) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 77 and 78 provided said probe hybridizes specifically to M. avium or M. paratuberculosis.
11. Method according to claim 9 to detect and identify one or more M cobacterium jntracelluLre strains and MIC-strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: 4* 4 MAI-ICG-1: MIL-1CG-1? MIL-ICG-22: 20 MAC-ICG-1: MIN-ICG-1: MIN-ICG-2: MIN-ICG-22: MIN-ICG-222: MIN-ICG-2222 MAL-ICG-l MHEF-ICG-1: MAH-ICG-l: CAACAGCAAATGATTGCCAGACACAC (SEQ ID NO 6) GAGU%GTrCCCGTCTGTAGTG (SEQ Dh NO 7 TGAc3GGGTh'CTCGTCTGTAGTG (SEQ ID NO 8) CACTCGGTCGATCCGTGTGGA (SEQ ID NO 9) GCATAGTCCTTAGGGCTGATGCG1'T (SEQ ID NO 12) GCTGATGCGTTCGTCGAAATGTGTA (SEQ ID NO 13) CTGATGCG'FrCGTCGAAATGTGT (SEQ ID NO 14) TGATGCG'TTCGTCGAAATGTGT (SEQ ID NO GGCTGATGCGYFCGTCGAAATGTGTAAJ (SEQ ID NO 16) ACTAGATGAACGCGTAGTCCTrGT (SEQ ID NO 17) TGGACGAA-AACCGGGTGCACAA (SEQ ID NO 18) GTGTAATFICTFFFFIAACTC'ITGTGTGTAAGTAAGTG (SEQ ID NO 19) (SEQ ID NO MCO-ICG-l 1 TGGCCGGCGTGTTCATCGAAA 125 MTH-ICG-11 GCACTTCAATIGGTGAAGTGCGAGCC (SEQ ID NO 21) MTH-ICG-2 GCGTGGTCTTCATGGCCGG (SEQ ID NO 22) MEF-ICG-11 ACGCGTGGTCCTTCGTGG (SEQ ID NO 23), or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 91, 92, 93, 94, 95, 96, 97, 98 or 99 provided said probe hybridizes specifically to M. intracellulare strains and MIC-strains.
12. Method according to claim 9 to detect and identify one or more Mvcobacterium intracellulare strains in a sample, wherein step (iii) comprises hybrdizing to the following probe: MIN-ICG-1 GCATAGTCCTTAGGGCTGATGCGTT (SEQ ID NO 12), S.o. or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 89 provided said probe hybridizes specifically to M. intracellulare. 15 13. Method according to claim 9 to detect and identify one or more Mvcobacterium scrofulaceum strains in a sample, wherein step (iii) comprises hybrdizing to the following probe: MSC-ICG-1 TCGGCTCGTTCTGAGTGGTGTC (SEQ ID NO 24). or to equivalents of said probe, 20 and/or to any probe derived from SEQ ID NO 100 provided said probe hybridizes specifically to M. scrofulaceum.
14. Method according to claim 7 to detect and identify one or more Mvcobacterium kansasii strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MKA-ICG-1 GATGCGTITGCTACGGGTAGCGT (SEQ ID NO MKA-ICG-2 GATGCGTTGCCTACGGGTAGCGT (SEQ ID NO 26) MKA-ICG-3 ATGCGTTGCCCTACGGGTAGCGT (SEQ ID NO 27) MKA-ICG-4 CGGGCTCTGTTCGAGAGTIGTC (SEQ ID NO 28) CCCTCAGGGATT CTGGGTGTTG (SEQ ID NO 182) MKA-ICG-6: MKA-ICG-7: MKA-ICG-8: MKA-ICG-9: MKA-ICG--10: GGACTCGTCCAAGAGTGTFGTCC TCGGGC'ITGGCCAGAGCTG1T GGGTGCGCAACAGCAAGCGA GATGCG= GCCCCTACGGG CCCTACGGGTAGCGTGTTCTFFPG (SEQ ID NO (SEQ ID NO (SEQ ID NO (SEQ ID NO (SEQ ID NO 183) 184) 185) 186) 187) 9. S and more preferably to: MKA-ICG-3: ATGCGTTGCCCTACGGGTAGCGT MKA-ICG-.4: CGGGCTCTGTTCGAGAGTI'GTC CCCTCAGGGKITTCTGGGTG'ITG MKA-ICG-6: GGACTCGTCCAAGAGTGITGTCC MKA-ICG-7: TCGGGCTITGGCCAGAGCTG'I7 MKA.-ICG.-8: GGGTGCGCAACAGCAAGCGA MKA-ICG-9: GATGCG'TTGCCCCTACGGG CCCTACGGGTAGCGTGTI'C1IG or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 101, 167, hybridizes specifically to M. kansasii. (SEQ ID NO 27) (SEQ ID NO 28), (SEQ ID NO 182) (SEQ ID NO 183) (SEQ ID NO 184) (SEQ ID NO 185) (SEQ ID NO 186) (SEQ TD NO 187) 168, or 169 provided said probe
15. Method according to claim 7 to detect and identify one or more Mycobacterium chelonae s-.ains in a sample, wherein step (iii) comprises hybridizing to at least one- or tiip 20 following probes: MCH-ICG-1I: GGTGTGGACT17GACTITCTGAATAG (SEQ ID NO 29) MCH-ICG-2: CGGCAAAACGTCGGACTGTCA (SEQ ID NO MCH-ICG-3: GGTGTGGTCCTTGACTTATGGATAG (SEQ ID NO 210) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 102, 103 or 174 provided said probe hybridizes specifically to M. chelonae.
16. Method according to claim 7 to detect and identify one or more Mycobacteriumn Rordonae strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MGO-ICG-1: AACACCCTCGGGTGCTGTCC (SEQ ID NO 31) 127 MGO-ICG-2 GTATGCGTTGTCGTTCGCGGC (SEQ ID NO 32) CGTGAGGGGTCATCGTCTGTAG (SEQ ID NO 33) and more preferably to: CGTGAGGGGTCATCGTCTGTAG (SEQ ID NO 33), or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 10^, 105 or 106 provided said probe hybridizes specifically to M. gordonae.
17. Method according to claim 7 to detect and identify one or more Mycobacterium ulcerans strains or M. marinum strains in a sample, wherein step (iii) comprises hybridizing 10 to the following probe: MUL-ICG-1 GGTITCGGGATGTTGTCCCACC (SEQ ID NO 175) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 157 provided said probe hybridizes specifically to M. ulcerans and M. marinum. 15 18. Method according to claim 7 to detect and identify one or more Mycobacterium ,enavense strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MGV-ICG-1 CGACTGAGGTCGACGTGGTGT (SEQ ID NO 176) MGV-ICG-2 GGTGTITGAGCATTGAATAGTGGTTGC (SEQ ID NO 177) MGV-ICG-3 TCGGGCCGCGTGTTCGTCAAA (SEQ ID NO 211) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 158, 159, 160, 161 or 162 provided said probe hybridizes specifically to M. genavense.
19. Method according to claim 7 to detect and identify one or more Mvcobacterium xenopi strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MXE-ICG-1 GTTGGGCAGCAGGCAGTAACC (SEQ ID NO 178) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 163, provided said probe hybridizes specifically to M. xenopi. Method according to claim 7 to detect and identify one or more Mvcobacterium simiae strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MSI-ICG-1 CCGGCAACGGTTACGTGTTC (SEQ ID NO 179) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 164 or 165 provided said probe hybridizes specifically to M. simiae.
21. Method according to claim 7 to detect and identify one or more Mvcobacterium g. 10 fortuitum strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MFO-ICG-1 TCGTIGGATGGCCTCGCACCT (SEQ ID NO 180) SMFO-ICG-2 ACTTGGCGTGGGATGCGGGAA (SEQ ID NO 181) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 166, provided said probe hybridizes specifically to M. fortuitum.
22. Method according to claim 7 to detect and identify one or more Mvcobacterium celatum strains :i a sample, wherein step (iii) comprises hybridizing to the following probe: MCE-ICG-1 TGAGGGAGCCCGTGCCTGTA (SEQ ID NO 190) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 170, provided said probe hybridizes specifically to M. celatum.
23. Method according to claim 7 to detect and identify one or more Mycobacterium haemophilum strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MHP-ICG-1 CATGTTGGGCTTGATCGGGTGC (SEQ ID NO 191) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 171, 172 or 173, provided said probe hybridizes specifically to M. haemophilum, 129
24. Method according to claim 7 to detect and identify one or more Mycobacterium strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MYC-ICG-1 ACTGGATAGTGGTTGCGAGCATCTA (SEQ ID NO 1) MYC-ICG-22 CTTCTGAATAGTGGTTGCGAGCATCT (SEQ ID NO 2) or to equivalents of said probes. Method according to claim 1 to detect and identify one or more Mvcoplasma strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following "probes: 10 MPN-ICG 1 ATCGGTGGTAAATTAAACCCAAATCCCTGT (SEQ ID NO 49) MPN-ICG 2 CAGTTCTGAAAGAACATTTCCGCTTCTTTC (SEQ ID NO MGE-ICG 1 CACCCATTAATITITCGGTGTTAAAACCC (SEQ ID NO 51) Mycoplasma-ICG CAAAACTGAAAACGACAATCTTCTAGTTCC (SEQ ID NO 52) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 124 or 125 provided said probe hybridizes specifically with Mvcoplasma species.
26. Method according to claim 25 to detect and identify one or more Mvcoplasma pneumoniae strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: MPN-ICG 1 ATCGGTGGTAAATTAAACCCAAATCCCTGT (SEQ ID NO 49) MPN-ICG 2 CAGTTCTGAAAGAACATITCCGCTTCTTTC (SEQ ID NO or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 125 provided said probe hybridizes specifically to Mvcoplasma pneumoniae.
27. Method according to claim 25 to detect and identify one or more Mvcoplasma genitalium strains in a sample, wherein step (iii) comprises hybridizing to the following probe: MGE-ICG 1: CACCCATTAATITTICGGTG-TAAAACCC (SEQ ID NO 51) or to equivalents of said probe, or to any probe derived from SEQ ID NO 124 provided said probe hybridizes specifically to Mvcoplasrna 2enitlium
28. Method according to claim i to detect and identify one or more Pseudomnonas strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: PA-ICO 1: TGGTGT0CTGCGTGATCCGAT (SEQ ID NO 34) PA-ICG 2: TGAATG'ITCGTGGATGAACATFGATT (SEQ ID NO 10 PA-ICG 3 CACTGGTGATCATTCAAGTCAAG (SEQ ID NO 36) PA-ICG 4: TGAATGTFCGT(G/A)(G/A)ATGAACA'ITGArICTGGTC 9* C9 C. C CC* S (SEQ ID NO 37) PA-ICG 5: CTC M CACTGGTGATCATTCAAGTCAAG (SEQ ID NO 38), or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 111, 112, 113, 114 or 115 provided said probe hybridizes specifically to Pseudo na strains.
29. Method according to claim 28 to detect and identify one or more Pseudomonas aeru~inosa strains iiu a sample, wherein step (iii) comprises hybridizing to at least one of .hic following probes: PA-ICG 1 TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) PA-ICG 2: TGAATGTTCGTGGATGAACATTGA'I7 (SEQ ID NO PA-ICG 3: CACTGGTGATCATITCAAGTCAAG (SEQ ID NO 36) PA-ICG 4: TGAATGTTCGT(G/A)(G/A)ATGAACATTIGA717CTGGTC (SEQ ID NO 37) PA-ICG 5: CTC M CACTGGTGATCATI7CAAGTCAAG (SEQ ID NO 38), and most preferably to at least one of the following probes: PA-ICG 1 TGGTGTGCTGCGTGATCCGAT (SEQ ID NO 34) PA-ICG 4: TGAATGTF7CGT(G/A)(G/A)ATGAACATFGATICTGGTC (SEQ ID NO 37) PA-TCfl 5 CTCTIMTCACTGGTGATCATTCAAGTCAAG (SEQ ID NO 38) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 111 provided said probe hybridizes specifically to Pseudomonas aeruginosa. Method according to claim 1 to detect and identify one or more Staphylococcus species in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: STAU-ICG 1 TACCAAGCAAAACCGAGTGAATAAAGAGTT STAU-ICG 2 CAGAAGATGCGGAATAACGTGAC STAU-ICG 3 AACGAAGCCGTATGTGAGCATITGAC 10 STAU-ICG 4 GAACGTAACTrCATGTTAACGTITGACTTAT or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 139, 140, 141, 142 ,143 or probe hybridizes specifically to Staphylococcus species. (SEQ ID NO 53) (SEQ ID NO 54) (SEQ ID NO (SEQ ID NO 56) 144 provided said
31. Method according to claim 30 to detect and identify one or more Staphylococcus 15 aureus strains, wherein step (iii) comprises hybridizing to at least one, and preferably both of the following probes: STAU-ICG 3 AACGAAGCCGTATGTGAGCATITGAC (SEQ ID NO STAU-ICG 4 GAACGTAACTTCATGTTAACGTITGACTTAT (SEQ ID NO 56), or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 139, 140, 141, 142 or 143 provided said probe hybridizes specifically to Staphylococcus aureus.
32. Method according to claim 30 to detect and identify one or more Staphylococcus epidermidis strains in a sample, wherein step (iii) comprises hybridizing to any probe derived from SEQ ID NO 144 provided said probe hybridizes specifically to Staphylococcus epidermidis.
33. Method according to claim 1 to detect and identify one or more Acinetobacter strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: ACI-ICG 1 ACI-ICG 2: GCTTrAAGTGCACAGTGCTCTAAACTGA CACGGTAATTAGTGTGATCTGACGAAG (SEQ ID NO 57) (SEQ ID NO 58), or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 126, 127, 128, 129 or 130 provided said probe hybridizes specifically to Acinetobacter sp..
34. Method according to claim 33 to detect and identify one or more Acinetobacter baumanii strains in a sample, wherein step (iii) comprises hybridizing to at least one of the ollowing probes: ACI-ICG 1 GCITAAGTGCACAGTGCTCTAAACTGA (SEQ ID NO 57) 10 ACI-ICG 2: CACGGTAA'TAGTGTGATCTGACGAAG (SEQ ID NO 58) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 126 provided said probe hybridizes specifically to Acinetobacter baumanii. Method according to claim 1 to detect and identify one or more Listeria stran in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: LIS-ICG 1 CAAGTAACCGAGAATCATCTGAAAGTGAATC (SEQ ID NO 39) LMO-ICG 1: AAACAACCTI1TACTTCGTAGAAGTAAITfGG'ITAAG LMO-ICG 2: LMO-ICG 3: LrV-ICG 1 LSE-ICG 1: LISP-ICG 1: (SEQ ID NO TGAGAGGTTAGTACTTCTCAGTATG=hG-fTC (SEQ ID NO 41) AGGCACTATGCITGAAGCATCGC (SEQ ID NO 42) GTrAGCATAAATAGGTAACTA1TPATGACACAAGTAAC (SEQ ID NO 43) AGTTAGCATAAGTAGTGTAACTAFIATGACACAAG CG=1ICATAAGCGATCGCACGTI' (SEQ ID NO 212) and most preferably to at least one of the following probes: LIS-ICG 1 CAAGTAACCGAGAATCATCTGAAAGTGAATC LMO-ICG 3: AGGCACTATGCTTGAAGCATCGC LISP-ICG 1: CGT1TCATAAGCGATCGCACGTI' or to equivalents of said probes, (SEQ ID NO 39) (SEQ ID NO 42) (SEQ ID NO 212) 133 and/or to any probe derived from SEQ ID NO 116, 118, 119, 120, 121, 213, 214 or 215 provided said probe hybridizes specifically to Listeria species.
36. Method according to claim 35 to detect and identify one or more Listeria monocytoatnes strains in a sample, wherein step (iji) comprises hybridizing to at least one of the following probes: LMO-ICG 1 AAACAACCYfI'ACTFCGTAGAAGTAAATFGGTL'AAG a a a. .a a a. a a. 4 a a. a a a a LMO-ICG 2: TGAGAGG~h'AGTACFI'CTCAGTATGMTG'ITC LMO-ICG 3: AGGCACTATGCTrGAAGCATCGC and most preferably to the following probe: LMO-ICG 3: AGGCACTATGCTrGAAGCATCGC (SEQ ID NO (SEQ ID NO 41) (SEQ ID NO 42) (SEQ ID NO 42) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 118 or 120 provided said probe hybridizes specifically to Listeria monocytogenes.
37. Method according to claim 1 to detect and identify one or more Brucella strains 15 in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: BRU-ICG 1: CGTGCCGCCITCG'TI'CTCFF (SEQ ID NO 59) BRU-ICG 2: 'ITCGCTrCGGGGTGGATCTGTG (SEQ ID NO BRU-ICG 3: GCGTAGTAGCGTIGCGTCGG (SEQ ID NO 193) BRU-ICG 4: CGCAAGAAGC'1TGCTCAAGCC (SEQ ID NO 194) and most preferably to the following probe: BRU-ICG 2: T17CGCTI'CGGGGTGGATCTGTG (SEQ ID NO BRU-ICG 3: GCGTAGTAGCGTITGCGTCGG (SEQ ID NO 193) BRU-ICG 4: CGCAAGAAGCITGCTCAAGCC (SEQ ID NO 194) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 131, 132 or 154. provided said probe hybridizes specifically to Brucella strains.
38. Method according to claim 1 to detect and identify one or more Salmonella strains 134 in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: SALM-ICG 1 CAAAACTGACTTACGAGTCACG717GAG (SEQ ID NO 61) SALM-ICG 2: GATGTATGCTITCGYFTCCACGCC (SEQ ID NO 62) STY-ICG 1 :GGTCAAACCTCCAGGGACGCC (SEQ ID NO 63) SED-ICG 1 :GCGGTAATGTGTGAAAGCGTGCC (SEQ ID NO 64) and most preferably to the following probe: SALM.-ICG 1: CAAAACTGACTTACGAGTCACGMGAG (SEQ ID NO 61) or to equivalents of said probes, and/or to any probe derived from SEQ ID NO 133, 134, 135, 136, 137 or 138 provided said probe hybridizes specifically to -Salmonella strains. 0 *39. Method according to claim 1 to detect and identify one or more Chlamydia strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: CHTR-ICG 1: GGAAGAAGCCTrGAGAAGGMICTGAC (SEQ ID NO CHTR-.ICG 2: GCAT1TATATGTAAGAGCAGCATTCTAIT'CA (SEQ ID NO 46) CHTR-ICG 3: GAGTAGCGTGGTGAGGACGAGA (SEQ ID NO 47) 01. CHTR-ICG 4: GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) 0 oo0CIPS-ICG 1 GGATAACTGTCTTAGGACGGMFGAC (SEQ ID NO 48) or to equivalents of said probes, :and/or to any probe derived from SEQ ID NO 122, 123 or 197 provided that said probe hybridizes specifically to Chiamydia strains. Method according to claim 39 to detect and identify one or more Chlamnych trachomatis strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes: CHTR-ICG 1 GGAAGAAGCCTGAGAAGG'TICTGAC (SEQ ID NO CHTR-ICG 2: GCAM1ATATGTAAGAGCAAGCATTCTA71ITCA (SEQ ID NO 46) CHTR-ICG 3: GAGTAGCGTGGTGAGGACGAGA (SEQ ID NO 47) CHTR-ICG 4: GAGTAGCGCGGTGAGGACGAGA (SEQ ID NO 201) or to equivalents of said probes, 135 and/or to any probe derived from SEQ ID NO 123 or 197 provided said probe hybridizes specifically to Chlamvdia trachomatis.
41. Method according to claim 39 to detect and identify one or more Chlamvdia psittaci strains in a sample, wherein step (iii) comprises hybridizing to at least the following probe: CHPS-ICG 1 GGATAACTGTCTTAGGACGGTTTGAC (SEQ ID NO 48) or to equivalents of said probe, and/or to any probe derived from SEQ ID NO 122 provided said probe hybridizes specifically to Chlamydia psittaci. *see 10 42. Method according to claim 1 to detect one or more Streptococcus strains in a sample, wherein step (iii) comprises hybridizing to any probe derived from SEQ ID NO 145, 146, 147, 148, 149, 150, 151, 152 or 153 provided said probe hybridizes specifically to 0* 0 Streptococcus strains.
43. Method according to claim 1, to detect and identify specifically Chlamydia 15 trachomatis in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or a part of it, using at least one of the following primers: i: CHTR-PI: AAGGTITCTGACTAGGTTGGGC (SEQ ID NO 69) *.ooo CHTR-P2: GGTGAAGTGCTIGCATGGATCT (SEQ ID NO or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region or part of it of Chlamydia trachomatis..
44. Method according to claim 1, to detect and identify specifically Listeria species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or a part of it, using at least one of the following primers: LIS-P1 ACCTGTGAGTITICGTTCTTCTC (SEQ ID NO 71) LIS-P2: CTATITGTTCAGTIGTTGGAGAGTT (SEQ ID NO 72) LIS-P3 ATITTCCGTATCAGCGATGATAC (SEQ ID NO 73) 136 LIS-P4 ACGAAGTAAAGGTTGTTIT CT (SEQ ID NO 74) GAGAGGTTACTCTCTTTATGTCAG (SEQ ID NO LIS-P6 CTTT ATGTCAGATAAAGTATGCAA (SEQ ID NO 202) LIS-P7 CGTAAAAGGGTATGATTATTTG (SEQ ID NO 203) or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region or part of it of Listeria species. Method according to claim 1, to detect and identify specifically Mycobacterium species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer 0 region or a part of it, using at least one of the following primers: MYC-P1: TCCCTTGTGGCCTGTGTG (SEQ ID NO MYC-P2: TCCTTCATCGGCTCTCGA (SEQ ID NO 66) MYC-P3: GATGCCAAGGCATCCACC (SEQ ID NO 67) MYC-P4: CCTCCCACGTCCTTCATCG (SEQ ID NO 68) 15 MYC-P5: CCTGGGTTGACATGCACAG (SEQ ID NO 192) or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still S amplify specifically the spacer region or part of it of Mycobacterium species.
46. Composition comprising at least one of the probes or primers as defined in claims 20 1 to 45 and 51 to 53.
47. Probe as defined in any of claims 1 to 42 and 51.
48. Primer as defined in any of claims 43 to 45 and 52 to 53.
49. Reverse hybridization method comprising any of the probes as defined in claims 1 to 42 and 51 wherein said probes are immobilized on a known location on a solid support, more preferably on a membrane strip. Kit for the detection and identification of at least one micro-organism, or the simultaneous detection and identification of several micro-organisms in a sample, comprising the following components: when appropiate, at least one suitable primer pair to allow amplification of the 16S-23S rRNA spacer region, or a part of it; l (ii) at least one of the probes as defined in claims 1 to 42 and 51; (iii) a buffer, or components necessary to produce the buffer, enabling a hybridization reaction between said probes and the polynucleic acids present in the sample, or the amplified products thereof; (iv) a solution, or components necessary for producing the solution,. enabling 10 washing of the hybrids formed under the appropiate wash conditions; when appropiate, a means for detecting the hybrids resulting from the preceding hybridization. S51. Method according to claim 1 to detect and identify one or more Yersinia enterocolitica strains in a sample, wherein step (iii) comprises hybridizing to at least one of the following probes YEC-ICG 1 GGAAAAGGTACTGCACGTGACTG (SEQ ID NO 198) YEC-ICG 2 GACAGCTGAAACTTATCCCTCCG (SEQ ID NO 199) YEC-ICG 3 GCTACCTGTTGATGTAATGAGTCAC (SEQ ID NO 200) or to equivalents of said probes, 20 and/or to any probe derived from SEQ ID NO 195 or 196, provided said probe hybridizes specifically to Yersinia enterocolitica strains.
52. Method according to claim 1, to detect and identify specifically Brucella species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or a part of it, using at least one of the following primers BRU-PI TCGAGAATTGGAAAGAGGTC (SEQ ID NO 204) BRU-P2 AAGAGGTCGGATTATCCG (SEQ ID NO 205) BRU-P3 TTCGACTGCAAATGCTCG (SEQ ID NO 206) BRU-P4 TCTTAAAGCCGCATTATGC (SEQ ID NO 207) or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still 138 amplify specifically the spacer region or part of it of Brucella species.
53. Method according to claim 1, to detect and identify specifically Yersinia enterocolitica species in a sample, wherein step (ii) comprises amplification of the 16S-23S rRNA spacer region or a part of it, using at least one of the following primers YEC-P1 CCTAATGATATTGATTCGCG (SEQ ID NO 208) YEC-P2 ATGACAGGTTAATCCTTACCCC (SEQ ID NO 209) or equivalents of these primers, said equivalents differing in sequence from the above mentioned primers by changing one or more nucleotides, provided that said equivalents still amplify specifically the spacer region or part of it of Yersinia enterocolitica species. DATED this 15th Day of June, 1999 INNOGENETICS N.V. Attorney: IVAN A. RAJKOVIC Fellow Institute of Patent and Trade Mark Attorneys of Australia of BALDWIN SHELSTON WATERS a go*
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