WO2010068802A1 - RATIOMETRIC PRE-rRNA ANALYSIS - Google Patents
RATIOMETRIC PRE-rRNA ANALYSIS Download PDFInfo
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q1/00—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
- C12Q1/68—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving nucleic acids
- C12Q1/6876—Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes
- C12Q1/6888—Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes for detection or identification of organisms
- C12Q1/689—Nucleic acid products used in the analysis of nucleic acids, e.g. primers or probes for detection or identification of organisms for bacteria
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q1/00—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
- C12Q1/02—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving viable microorganisms
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Definitions
- compositions and methods disclosed herein were developed under STAR Research Assistance Agreements #FP91698201 -0 and #R833011 awarded by the Environmental Protection Agency. As such, the government may have certain rights in the invention.
- the invention relates to detecting and determining the presence of viable cells in a sample. More specifically, the invention relates to detecting viable cells present in very small numbers in a sample. Included are compositions and methods for detecting hbosomal RNA precursors (pre-rRNA) as dynamic indicators of viable microorganisms in a sample.
- pre-rRNA hbosomal RNA precursors
- Microorganisms such as bacterial pathogens can be difficult to cultivate from complex clinical and environmental samples. They may be present in small numbers or in injured and aged physiological states with poor plating efficiency. Samples often have competing microbial flora that overgrow pathogens on non-selective media, while selective media can reduce yield and select against some strains. Most culture-based detection methods require 1 -3 days to yield results, too slow for many circumstances, especially life-threatening ones.
- NAAT nucleic acid amplification testing
- PCR polymerase chain reaction
- a limitation of PCR is its inability to distinguish viable pathogen cells from non-viable cells, from free nucleic acids in samples, and from contaminating nucleic acids introduced during the testing process.
- PCR is also mechanistically complex and susceptible to inhibition by substances in samples.
- RNA is considered less stable than DNA in solution and in dead cells.
- Species-specific probes for hbosomal RNA (rRNA) or messenger RNA (mRNA) are known.
- rRNA hbosomal RNA
- mRNA messenger RNA
- microbial mRNA is difficult to detect due to its instability and low abundance (Gedalanga and Olson. 2009. Development of a quantitative PCR method to differentiate between viable and nonviable bacteria in environmental water samples. Appl Microbiol Biotechnol. 82:587-596).
- mature rRNA is fairly stable and can persist within dead bacterial cells for long periods of time.
- Pre-rRNA microbial rRNA precursors
- Pre-rRNAs are intermediates in rRNA synthesis generated by rapid nucleolytic cleavage of the polycistronic rrs-rrl-rrf operon transcript. Leader and tail fragments are subsequently removed in slower reactions tied to ribosome assembly, yielding the mature rRNA subunits.
- pre-rRNAs account for a large fraction of total rRNA.
- Pre-rRNAs are significantly more abundant and easier to detect than even the most strongly- expressed mRNA molecules in bacteria.
- NAATs have been developed that detect species-specific pre-rRNA molecules.
- Pre-rRNAs are intermediates in the synthesis of mature rRNA. They are abundant cellular components with highly species-specific nucleotide sequences. This makes them good targets for detecting microbial pathogens in complex samples.
- Pre-rRNA copy number increases by orders of magnitude when microbial cells undergo nutritional stimulation. This response is very rapid ( ⁇ 1 generation time) and easy to detect due to pre-rRNA abundance in stimulated cells.
- Quantitative PCR measurement of pre-rRNA in stimulated and control samples yields numerical ratios. If positive, these ratios confirm the presence of intact, viable pathogen cells in samples.
- Figure 1 shows pre-16S rRNA and mature 16S rRNA pools during outgrowth from stationary phase on LB broth.
- Figure 2 shows pre-16S rRNA pool upon nutritional stimulation of stationary phase M. bovis BCG.
- Figure 3 shows the timecourse of nutritional stimulation of pre-rRNA in water- starved A. hydrophila (A) and M. avium strain 104 (B) cells.
- Figure 4 shows the correlation between the presence of viable A. hydrophila cells and pre-rRNA stimulation ratio (A) or genomic DNA quantified by qPCR (B) in hypochlorite treated laboratory suspensions.
- Figure 5 shows the results of multiple RT-qPCR reactions conducted on paired stimulated and control aliquots derived from a single fresh water lake sample.
- Figure 6 lists example genera and species of target microorganisms that may be targeted by the methods of RPA disclosed herein.
- Figure 7 shows examples of qPCR primers, including alternative forward, reverse, and reverse transcriptase primers for the referenced organisms.
- compositions, and components that can be used for, can be used in conjunction with, can be used in preparation for, or are products of the disclosed compositions and methods.
- materials are disclosed herein, and it is understood that when combinations, subsets, interactions, groups, etc. of these materials are disclosed that, while specific reference of each various individual and collective combinations and permutation of these compounds may not be explicitly disclosed, each is specifically contemplated and described herein.
- pre-rRNA replenishment as the basis for NAATs specific to viable microbial cells.
- pre-rRNA synthesis decreases but its processing continues, resulting in active and substantial drainage of pre-rRNA pools.
- Pre-rRNA pools are rapidly replenished when growth -limited cells are given fresh nutrients. Such fluctuations occur consistently in intact, viable microbial cells. They are not seen in dead cells, with free nucleic acids, or with other types of background assay "noise”.
- Pre-rRNA sequences have specificity comparable to the most hypervariable regions of mature rRNA. Therefore, viable microbial cells of a given species can be distinguished from other species by pre-rRNA detection. Moreover, viable microbial cells can be distinguished from dead cells of the same species by measuring their pre-rRNA in samples that have been briefly stimulated with nutrients. The level of pre-rRNA present in the stimulated sample is compared to a non-stimulated control sample, and when species-specific pre-rRNA in the stimulated sample exceeds that of the control sample, the presence of viable cells is indicated. This ratiomethc approach is referred to herein as Ratiomethc Pre-rRNA Analysis (RPA).
- RPA Ratiomethc Pre-rRNA Analysis
- RPA may be conducted by dividing a sample into two or more aliquots wherein at least one aliquot is nutritionally stimulated and at least one aliquot is treated as a non-stimulated control.
- the pre-rRNA levels in the nutritionally stimulated sample are compared with the pre-rRNA levels in the control sample wherein, the replenishment of pre-rRNA in the stimulated sample is indicative of viable cells in the sample.
- RPA may include the use of two equal aliquots of a sample, wherein one aliquot is nutritionally stimulated while the other is held in a non-nuthtionally stimulated control. After nutritional stimulation for ⁇ 1 generation time, species-specific pre-rRNA is quantified ratiomethcally to determine the pre- rRNA stimulation ratio values. In one embodiment, nutritional stimulation may last for a period of ⁇ 1 generation, ⁇ 1/2 generation, ⁇ 1/3 generation, ⁇ 1/4 generation, and ⁇ 1/8 generation time of a target microorganism. The nutritional stimulation step is not of sufficient duration for even modest amplification of microbial numbers. As such, RPA is not a culture enrichment.
- pre-rRNA stimulation ratio values are the ratios of pre-rRNA levels in stimulated samples relative to control samples.
- pre-rRNA stimulation values are used to determine the presence of viable microbial of cells in a sample. For example, the presence of viable microorganisms is indicated when the pre-rRNA values in a nutritionally stimulated aliquot are greater than the pre-rRNA values in a non-stimulated control aliquot.
- RPA may be used to detect viable target microorganisms that are substantially outnumbered by inactivated or dead microorganisms of the same species.
- RPA may be conducted to detect viable microorganisms in a sample wherein approximately 0.01 % to 99% of the target microorganisms are viable microorganisms.
- RPA may be used to detect the presence of viable target microorganisms that are present in a sample at a level of approximately 0.01 %, 0.02%, 0.03%, 0.04%, 0.05%, 0.1 %, 0.5%, 1.0%, 2.0%, 3.0% 4.0%, 5.0%, 10%, 15, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, and 95% of the total population of target microorganisms (live + dead).
- the percentage of viable target microorganisms in a sample is the number of viable target microorganisms relative to the total number of target microorganisms, both viable and inactivated.
- the sample as used herein can be a sample collected from any desired source or location that may potentially comprise cells of interest.
- the sample may be taken from a liquid, a solid, a gas, a composite, a tissue, or any other desired substrate.
- the sample may be taken from an outdoor environment or an indoor environment, or in other embodiments, the sample may be a tissue, fluid, or swab sample taken from a subject.
- a tissue sample may be a blood, saliva, sputum, stool, urine, hair, skin, or any other sample taken from the body of a subject.
- a sample for analysis using the RPA methods described herein may be collected from a natural environment, industrial environment, health care environment, residential environment, agricultural environment, water distribution environment, wastewater treatment environment, food production or distribution environment, recreational environment, or any desired environment or combinations thereof.
- a sample may comprise inorganic and/or organic materials, and may be collected from a marine environment or fresh water environment, and may comprise dirt, rocks, soil, vegetation, air, and combinations thereof.
- a sample suitable for RPA as described herein may include a cell of interest, which can be a prokaryotic cell or a eukaryotic cell.
- the microorganism may be a gram negative bacterium, a gram positive bacterium, or another type of bacterium. Therefore, the methods for RPA described herein may be applied for the detection of one or more microorganisms that have significance in one or more contexts including human and veterinary clinical settings. For instance, in one embodiment the methods of RPA as described herein may be used for the detection of foodborne and waterborne microorganisms. In another embodiment, RPA as disclosed herein may be used for biodefense and the detection of microorganisms used for bioweapons. In another embodiment, the methods of RPA as described herein may be used for infectious disease diagnosis or treatment monitoring.
- the methods of RPA as described herein may be used for quality assurance of manufacturing processes including but not limited to food, drinks, or medical devices. In another embodiment, the methods of RPA as described herein may be used for assuring the effective sterilization, or maintenance of sterility, of devices and materials used in health care.
- RPA may be conducted with samples containing one or more microorganisms of interest including many species of microorganisms from many different genera.
- the methods of RPA disclosed herein are suited to the detection of species-specific pre-rRNAs, and in specific embodiments, RPA as disclosed herein may detect species-specific pre-rRNAs of microorganisms from one or more genera selected from Acinetobacter, Actinobacillus, Aeromonas, Arcobacter, Bacteroides, Bordetella, Borrelia, Brucella, Burkholderia, Campylobacter, Citrobacter, Cronobacter, Edwardsiella, Enterobacter, Escherichia, Eubacterium, Francisella, Fusobacterium, Haemophilus, Helicobacter, Klebsiella, Legionella, Leptospira, Moraxella, Morganella, Neisseria, Pasteurella, Plesiomonas, Porphyromonas, Prevotella, Pro
- the methods for RPA comprise dividing a sample into two or more aliquots wherein at least one aliquot is nutritionally stimulated and at least one aliquot is treated as a non-stimulated control.
- the material present in the nutritionally stimulated aliquot is pelleted, washed, and placed under desired microbial culture conditions.
- Microbial culture conditions as disclosed herein are the environmental and nutrient conditions generally known by those of skill in the art appropriate for a desired growth of a target organism.
- optimized microbial culture conditions may include nutrient media, temperature, humidity, oxygen tension, the presence of specific micro- or macro-nutrients, absence of inhibitors, and pressure, appropriate for a target microorganism.
- the nutritionally stimulated aliquot is incubated or cultured for a desired period of time under conditions wherein the aliquot is supplemented with culture media appropriate for a target microorganism.
- a target microorganism for example, where the target organism is a gram negative bacillus Aeromonas hydrophila the sample may be incubated with a culture media comprising a nutrient broth culture media.
- the target organism is Mycobacterium avium and the microbial culture conditions may include incubating the sample with Middlebrook 7H9 medium.
- the target organism is an anaerobe and the nutritional stimulation conditions may include low oxygen tension.
- the target organism is pathogen such as Listeria that lives in an intracellular environment with limited iron availability
- the nutritional stimulation conditions may include the provision of iron.
- the non-nutritionally stimulated control aliquot is incubated under control conditions designed to maintain the status of a target microorganism.
- the control aliquot is incubated in water or buffer.
- the control aliquot is maintained in an unfavorable atmosphere, such as atmospheric oxygen concentration in the case of anaerobe detection.
- the methods of RPA described herein typically include the quantification of one or more pre-rRNA molecules that have been isolated from target microorganisms in a sample.
- pre-rRNA are isolated from a sample according to nucleic acid extraction techniques know by those of skill in the art.
- the cells in the sample may be lysed and the nucleic acids extracted according to standard methods such as a phenol-chloroform extraction method.
- Exemplary methods of nucleic acid extraction, including pre-rRNA extraction and quantification, are disclosed in U.S. Patent 5,712,095, Cangelosi et al. 1997, and Cangelosi et al. 1996 (Cangelosi, G. A. and W. H. Brabant. 1997. Depletion of pre-16S rRNA in starved Escherichia coli cells. J.Bacteriol. 179:4457- 4463; Cangelosi, G.
- the quantification of pre-rRNA molecules includes the use of nucleic acid amplification technologies.
- the nucleic acid amplification technology may be a PCR-based technology.
- nucleic acids may be amplified by a non-PCR based method such as an isothermal amplification method such as, for example, Nucleic Acid Sequence Based Amplification (NASBA).
- NASBA Nucleic Acid Sequence Based Amplification
- examples of methods of nucleic acid amplification are disclosed by Gill and Ghaemi, 2008 (Pooria Gill and Amir Ghaemi. 2008. Nucleic acid isothermal amplification technologies — a review. Nucleosides, Nucleotides, and Nucleic Acids. 27:224-243), incorporated by reference herein.
- RT-qPCR may be used to quantify species-specific pre-rRNA from a sample to determine the pre-rRNA stimulation values.
- RT-qPCR uses reverse transcriptase to convert RNA to cDNA, which is then measured by standard quantitative PCR (qPCR).
- the methods of RPA disclosed herein may use oligonucleotide primers designed to target pre-rRNA sequences of a target microorganism, and primers for use with RPA may target any mature rRNA sequence or any pre-rRNA sequence.
- primers may target the 5' pre-rRNA leader regions.
- primers for methods of RPA disclosed herein may target the sequences immediately upstream of the mature 5' 16S rRNA terminus because these promoter-proximal regions would be abundant in cells that are actively transcribing pre-rRNA.
- primers for use with RPA may target a spacer sequence downstream of the 16S rRNA gene.
- primer pairs may straddle the 5' or 3' mature rRNA terminus, such that amplification requires intact pre-rRNA as templates.
- Reverse primers for use in the methods for RPA described herein may be designed to recognize semi- conserved regions within the mature rRNA, and forward primers may be designed to recognize species-specific sequences within the pre-rRNA.
- reverse primers for use in the methods for RPA described herein may be designed to recognize species-specific sequences within the pre-rRNA, and forward primers may be designed to recognize semi-conserved regions within the mature rRNA. Length and composition of primers are not important to the invention, as long as they are designed to specifically amplify pre-rRNA and not mature rRNA or DNA.
- primers may be designed to quantify pre-rRNA molecules of M. avium.
- forward and reverse primers can be designed to generate an amplification product that straddles the 5' mature 16S rRNA terminus, such that successful amplification requires intact pre-16S rRNA as a template.
- the cDNA synthesis for RT-qPCR may be primed by the mature rRNA sequence 5'- GCCCGCACGCTCACAGTTAAG -3' (SEQ ID NO: 3).
- Forward and reverse PCR primers may be ⁇ '-TTGGCCATACCTAGCACTCC-S' (SEQ ID NO: 1 ) and 5'- GATTGCCCACGTGTTACTCA-3' (SEQ ID NO: 2), respectively.
- the reverse primer may be within the mature rRNA sequence, whereas the forward primer may recognize a site in external transcribed spacer-1 (ETS-1 ). Examples of primers for use with the methods of RPA are shown in FIG. 7 including sets of forward, reverse, and reverse transcriptase primers, and alternative primers, which may be used with the referenced target microorganisms.
- the pre-rRNA stimulation ratio values are the ratios of pre-rRNA levels in stimulated samples relative to pre-rRNA levels in control samples.
- methods of RPA disclosed herein include the step of ratiometrically quantifying species-specific pre-rRNA in a sample.
- species-specific pre-rRNA is quantified ratiometrically to determine the pre-rRNA stimulation ratio values.
- pre- rRNA stimulation ratio values are the ratios of pre-rRNA levels in a nutritionally stimulated sample relative to a non-nuthtionally stimulated control sample, and the pre-rRNA stimulation values are used to determine the presence of viable target cells in a sample.
- the presence of viable cells is indicated when the pre-rRNA stimulation ratio value is approximately equal to, or greater than, a viability threshold value.
- the viability of targeted cells is indicated by a viability threshold value when the pre-rRNA levels in a nutritionally stimulated aliquot are greater than the pre-rRNA values in non-stimulated control aliquot.
- viability threshold value is the calculated ratio of pre-rRNA levels in stimulated samples relative to pre-rRNA levels in control samples that indicates the presences of viable cells in a sample.
- the viability threshold value for a given sample may depend on the target organism, the type of sample, the resolving power of the NAAT, and other conditions that may affect the quantification of pre-rRNA in the sample.
- the viability threshold value for a sample may range from approximately 1 to 100.
- the choice of a threshold value might depend upon specific assay requirements. For example, a test that requires the highest possible sensitivity for the presence of a pathogen (such as medical device quality control) might use a threshold value of 1. Alternatively, a test that requires specificity for viable cells but not a high degree of analytical sensitivity, such as wastewater treatment monitoring, might use a higher threshold value to minimize the frequency of costly false-positive results.
- RPA may be conducted on samples derived from natural or in vivo sources.
- the methods for RPA described herein may be conducted on samples derived from tissues or bodily fluids.
- a sample may be collected from the tissue, blood or sputum of a human or animal subject.
- blood and sputum may be nutrient-rich environments.
- Microorganisms in such natural samples may replicate actively and maintain large pre-rRNA pools.
- the balanced and optimized nutritional conditions of laboratory media are very rare in nature. In natural environments microbial growth is usually limited by the availability of specific nutrients. For example, humans have innate immune mechanisms that limit iron availability in tissues.
- microorganisms may divide poorly, if at all, in natural samples such as sputum or whole blood. In this sense natural environments are similar to spent culture media, which contain large amounts of some nutrients but are depleted for others (usually carbon or nitrogen).
- samples collected for RPA as disclosed herein may include natural samples comprising spatial variations with regard to nutrient availability and the presence of growth inhibitors and host defenses.
- tuberculosis bacilli in freshly infected macrophages may replicate at top speed, while growth is likely to be slow in the extracellular matrix or in host cells with very large bacillary burdens.
- target microorganisms in natural samples can be expected to synthesize pre- rRNA and show pre-rRNA upshift when incubated under nutritional stimulation conditions.
- methods of RPA as disclosed herein may comprise collecting a natural sample comprising a target microorganism living in a nutrient limited environment.
- the methods of RPA as described herein may include determining the limiting nutrient in the natural sample and then nutritionally stimulating an aliquot of the natural sample with an enriched nutrient media comprising the limiting nutrient. Accordingly, the enriched nutrient media may cause an upshift in the pre-rRNA levels in the target microorganism by providing the limiting nutrient to the target microorganism.
- RPA may be conducted for a target organism such as M. tuberculosis in a sample derived from a human or animal subject.
- sputum may be collected from a subject suspected of being infected with M. tuberculosis or undergoing treatment for M. tuberculosis.
- the sputum samples may be divided into 2 aliquots, one of which may be nutritionally stimulated with enrichment media, such as Middlebrook 7H9 broth, while the other can be held in PBS or water as a control.
- nutritional stimulation may proceed for approximately 3-5 hours at 37°C.
- the bacteria in the stimulated and control aliquots may then be lysed and RT-qPCR may be used to quantify pre- rRNA and calculate pre-rRNA stimulation ratio values.
- Pre-rRNA stimulation values may be used to determine the presence of viable M. tuberculosis in the natural sample. In one such embodiment, the presence of viable M. tuberculosis cells is indicated when the pre-rRNA values in the nutritionally stimulated aliquot are greater than the pre-rRNA values in the non-stimulated control aliquot.
- intracellular pathogens of the genera Chlamydia, Listeria, Legionella, or others may be detected by RPA using nutritional stimulation with limiting nutrients. Target pathogens do not need to be "culturable" in vitro.
- an obligate intracellular pathogen such as Chlamydia trachomatis can be detected in a vaginal swab by using RPA in which a specific nutrient is provided that was limiting in its natural intracellular environment.
- the pathogen may not be able to replicate under these conditions, but it can sense the presence of the limiting nutrient and synthesize pre-rRNA in an abortive attempt to replicate, because pre-rRNA synthesis is a very early step in cell growth. Such synthesis would be detectable by RPA.
- Well-known manual or automated methods for nucleic acid extraction and quantification may be applied in carrying out the methods of RPA as disclosed herein.
- RPA may include nucleic acid extraction and/or quantification that uses one or more technologies such as nucleic acid chip technology, microarrays, multiplex technology, lab-on-a-chip, lab-on-a-card, microfluidic devices, and other nucleic acid extraction and quantification technologies known by those of skill in the art.
- microfluidic device is a device that may be used to conduct RPA and may include nucleic acid chip technology, microarrays, multiplex technology, lab-on-a-chip, lab-on-a-card, and related technologies.
- methods of nucleic acid extraction and analysis are disclosed in U.S. Patent 7,608,399 and U.S.
- the methods of RPA disclosed herein may include using a Nucleic Acid Card for RNA extraction and amplification, followed by ratiomethc analysis.
- An aliquot taken from a sample is nutritionally stimulated while a control aliquot is held in buffer (step A).
- the cells are lysed (step B) and then loaded onto paired Nucleic Acid Cards.
- eluates are subjected to qPCR.
- the total process including nutritional stimulation may take from 6 to 24 hours. Comparatively, Mycobacterium culture requires 5-14 days.
- RPA as disclosed herein may include nucleic acid extraction and quantification using a flat-glass or composite card capable of quickly, easily, and reliably isolating DNA and RNA from blood and a variety of other biological samples.
- RPA as disclosed herein may be conducted using a device that combines cellular lysis, nucleic acid extraction and purification, and measurement of extracted nucleic acids.
- the device may be a vessel for receiving and processing a biological sample as described herein.
- the methods of RPA disclosed herein may comprise the use of a flow-through glass walled nucleic acid card for extraction of nucleic acids from a sample.
- the card may be used for nucleic acid quantification, DNA or RNA extraction and concentration determination.
- the extraction and/or quantification of nucleic acids may be done manually by using pipettes inserted into loading and elution ports located on a nucleic acid card.
- the extraction and/or quantification of nucleic acids as disclosed herein may be automated by using a fluid handling device or other appropriate devices known by those of skill in the art.
- the methods of RPA as disclosed herein may include a pre-screening process, such as an immunoseparation or immunoscreening process, to improve the specificity of RPA.
- RPA may comprise a step in which one or more target microorganisms of interest may be identified or captured on beads or other particles that are coated with antibodies or other probes or peptides that bind specifically to the target microorganisms.
- target microorganisms identified by antibodies or probes may be subjected to RPA as disclosed herein.
- target microorganisms identified by a preliminary immunoseparation process may be divided into two or more separate aliquots wherein one aliquot is nutritionally stimulated and another aliquot is reserved as a non-nutritionally stimulated control aliquot. Pre-rRNA replenishment in nutritionally stimulated samples relative to control samples can then be quantified as described herein.
- an immunoseparation process as described herein may be used to isolate a specific strain or population of a target microorganism.
- a method of RPA as disclosed herein may comprise an immunoseparation step wherein a specific strain or isolate within a population of target microorganisms may be identified.
- a method of RPA as disclosed herein may comprise an immunoseparation step wherein a specific E. coli strain such as E. coli 0157 is separated from other microorganisms of the same species.
- RPA as disclosed herein may be used to improve the sensitivity of detection of target microorganisms.
- RPA may be used to confirm the presence of viable target microorganisms in conjunction with another test.
- RPA as disclosed herein offers greater confidence in borderline signals than does static DNA detection. This may improve the overall sensitivity, reliability, and robustness of nucleic acid amplification tests for microorganisms in a sample.
- the improved biological sensitivity stems from the dynamic nature of RPA. An analogy would be the observation of animals in a forest, in that a moving animal is much easier to spot than a stationary one.
- the pre-rRNA synthesis seen in RPA is a type of bacterial "movement" that is reliably induced by nutritional stimulation.
- RPA has additional advantages over traditional NAATs.
- Most reverse transcriptase quantitative-PCR (RT-qPCR) protocols have 3 steps: DNAse digestion to remove genomic DNA that might interfere with RNA quantification; reverse transcriptase (RT) to convert RNA to cDNA; and finally qPCR to quantify the cDNA.
- RT-qPCR reverse transcriptase quantitative-PCR
- the DNAse digestion step is not necessary, because genomic DNA in bacterial cells is outnumbered by pre-rRNA by 1 -3 orders of magnitude. Genomic DNA is also expected to be found in similar quantities in stimulated and control aliquots. As a result, genomic DNA causes very little background signal and does not interfere with the ratiomethc analysis.
- RPA may be used to improve the confidence in the results of a primary analysis when the primary analysis gives results that are inconclusive, borderline, or difficult to interpret.
- RT-qPCR with cycle threshold (Ct) values of ⁇ 30 i.e. positive results after fewer than -30 amplification cycles
- Ct values >30 are borderline and can be difficult to interpret. Such signals can result from sample contamination or even from background noise.
- RPA may be used to confirm the results of a RT-qPCR test for the presence of microbial cells when Ct values are >30.
- RPA can significantly improve the functional sensitivity of NAAT for microbial cells.
- Other examples of NAATs may include non-ratiomethc rRNA amplification (mature or precursor) and non-ratiometric rRNA detection by direct hybridization.
- RPA quantitative or semi-quantitative NAAT test read-outs
- examples include gel electrophoresis results, fluorescent or colohmethc signals, thermal read-outs, melt curves, and nucleic acid probe hybridization-based read-outs such as line probe assays or nucleic acid lateral flow (NALF).
- NALF nucleic acid lateral flow
- RPA can improve specificity for viable cells as well as functional sensitivity for detection of microbial cells present in small numbers.
- RPA may be used to increase the sensitivity of a primary NAAT, such as a DNA detection assay designed to identify the presence of microorganisms in a sample.
- a genomic DNA detection assay of a sample may be performed concurrently with RPA, or followed by RPA, for the same sample to detect the presence of viable target microorganisms.
- RPA may be used to overcome background noise or environmental DNA contamination that may make it difficult to interpret borderline results generated by methods for detecting target microorganisms.
- compositions and methods described herein are not limited to the particular methodologies, protocols, and reagents described herein. In each instance, unless otherwise specified, standard materials and methods were used in carrying out the work described in the Examples provided. All patent and literature references cited in the present specification are hereby incorporated by reference in their entirety.
- the practice of the present invention employs, unless otherwise indicated, conventional techniques of chemistry, molecular biology, microbiology, recombinant DNA, genetics, immunology, cell biology, cell culture and transgenic biology, which are within the skill of the art.
- conventional techniques of chemistry, molecular biology, microbiology, recombinant DNA, genetics, immunology, cell biology, cell culture and transgenic biology which are within the skill of the art.
- FIG. 2 illustrates this in an experiment conducted on M. bovis BCG in which a slot blot hybridization assay was used to detect pre-rRNA (closed circles).
- stationary phase M. bovis BCG cells were diluted into fresh 7H10 broth at the time indicated by the arrow.
- Pre-rRNA copy number and cell density were tracked before and after nutritional stimulation. Closed circles show the pre-rRNA to genomic DNA ratio.
- Example 2 Ratiometric Pre-rRNA Analysis
- RPA tests were developed for two bacterial pathogens suspected of causing human disease acquired from drinking water. The model species were the rapidly growing gram negative bacillus Aeromonas hydrophila and the slowly growing actinomycete Mycobacterium avium.
- 5' pre-rRNA leader regions (the sequences immediately upstream of the mature 5' 16S rRNA terminus) were targeted on the assumption that these promoter-proximal regions would be abundant in cells that are actively transcribing pre-rRNA.
- Primer pairs straddled the 5' mature rRNA terminus, such that amplification required intact pre-rRNA as templates.
- Reverse primers recognized semi-conserved regions within the mature rRNA.
- Forward primers recognized species-specific sequences within the 5' leader.
- avium forward and reverse primers were designed to generate a predicted 237 bp amplification product that straddled the 5' mature 16S rRNA terminus, such that successful amplification required intact pre-16S rRNA as a template.
- the cDNA synthesis was primed by the mature rRNA sequence 5'- GCCCGCACGCTCACAGTTAAG -3' (SEQ ID NO: 3).
- Forward and reverse PCR primers were ⁇ '-TTGGCCATACCTAGCACTCC-S' (SEQ ID NO: 1 ) and 5'- GATTGCCCACGTGTTACTCA-3' (SEQ ID NO: 2), respectively.
- the reverse primer was within the mature rRNA sequence, whereas the forward primer recognized a site in ETS-1.
- PCR with gel electrophoresis consistently yielded products of the expected sizes when applied to nucleic acid from 15 clinical isolates of M. avium and 4 clinical isolates of M. intracellular. These two closely-related species comprise the clinically relevant grouping known as the M. avium complex (MAC). No products were observed when the reactions were applied to M. tuberculosis, M. smegmatis, M. terrae, M. gastri, M. nonchromogenicum, M. phlei, and M. vaccae (data not shown). These observations illustrate the useful phylogenetic specificity of pre-rRNA analysis.
- M. avium complex MAC
- a hydrophila forward and reverse primers generated a predicted 189 bp amplification product.
- the cDNA synthesis was primed by the mature rRNA sequence 5'- CTACAAGACTCTAGCTGGACAGT -3' (SEQ ID NO: 6).
- Forward and reverse PCR primers were 5'- ATTGAGCCGCCTTAACAGG-3' (SEQ ID NO: 4) and 5'- AACTGTTATCCCCCTCGAC-3' (SEQ ID NO: 5), respectively.
- BLAST analysis conducted against the NCBI non-redundant database found no matches with the forward primer other than A. hydrophilia. The closely related species A. salmonicida A449 did not have a homologous sequence.
- FIG. 3 shows the timecourse of nutritional stimulation of pre-rRNA in water- starved A. hydrophila (A) and M. avium strain 104 (B) cells.
- Pre-rRNA stimulation ratio values are the ratios of pre-rRNA in stimulated samples relative to control samples, measured by RT-qPCR. Values are means and SD of >2 experiments per time point.
- cDNA complementary DNA
- Amplification of cDNA was performed using the Applied Biosystems (ABI) Power SYBR Green mix (Applied Biosystems Inc., Foster City, CA). Reactions were conducted in triplicate at two different dilutions to assure quantitative read-outs. Amplifications were run in 96-well plates on an ABI Prism RT-7500 as follows: 10 minutes 95°C, 40 cycles of (15s 95°C, 30s 60 0 C, 30s 72°C) using '9600 emulation.' ABI's SDS software was used to set Ct threshold values.
- Table 1 shows results of two experiments in which genomic DNA as well as pre-rRNA were measured.
- samples with percent viabilities of 96.3%, 26.9%, and 0.02% exhibited pre-rRNA stimulation ratios values of >3 ⁇ 1 SD.
- Samples with no detectable viable cells (0% viability) exhibited pre-rRNA stimulation ratios that were not statistically greater than 1.0. Therefore, RPA showed significant pre-rRNA stimulation ration values in a sample where up to approximately 99.98% of the target microorganisms were dead. In contrast, qPCR detection of A.
- pre-rRNA stimulation ratio A or genomic DNA quantified by qPCR (B) in hypochlorite treated laboratory suspensions.
- Pre-rRNA stimulation ratio values A are the ratios of pre-rRNA in stimulated samples relative to control samples, measured by RT-qPCR. Values are means of 3 measurements per sample.
- Genomic DNA copies B were quantified by qPCR normalized to a genomic DNA standard curve. DNA was measured in nutritionally stimulated samples (open squares) as well as non-stimulated samples (open triangles).
- A. hydrophila was a convenient model for field testing RPA. Samples were collected from fresh and salt water sites in Seattle, WA. A portion of each sample was autoclaved to generate an inactivated control. Autoclaved and non-autoclaved samples (300 ml_ each) were concentrated by filtration. After re-suspension, aliquots were diluted two-fold in 2X nutrient broth (stimulated sample) or water (control). After 1 hour of incubation, bacteria and particulates were concentrated by centrifugation and then A. hydrophila pre-rRNA in the pellets was measured by RT-qPCR. Viable counts of A. hydrophila in the samples were determined by viable plating following standard methods.
- the results support the use of RPA as a means to specifically detect viable microorganisms in environmental samples.
- the RPA methods may be used to eliminate false positive results seen in samples containing only dead bacterial cells and DNA.
- the use of RPA can also reduce false positives caused by laboratory contamination of samples or PCR reagents.
- RPA is robust and built upon a physiological feature of all bacteria and is useful in food and water safety analysis, either by itself or as an adjunct to other tools.
- RPA may be used to improve assay sensitivity relative to genomic DNA detection.
- FIG. 5 shows the results of multiple RT-qPCR reactions conducted on paired stimulated and control aliquots derived from a single fresh water lake sample (sample A2 from Table 2) that contained 280 cfu/mL viable A. hydrophila.
- a sample from Lake Union, Seattle, WA was divided into two aliquots, one of which was stimulated with nutrient broth (dark bars) and the other resuspended in ATW (light bars) as a control.
- the results shown in FIG. 5 are expressed as approximate pre-rRNA copies per ml_ of sample calculated by comparing cycle threshold (Ct) values to a genomic DNA standard curve. In each of these technical replicates, pre-rRNA signals in stimulated samples exceeded those of control samples by substantial margins.
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| Application Number | Priority Date | Filing Date | Title |
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| JP2011540904A JP5768282B2 (en) | 2008-12-10 | 2009-12-10 | Ratiometric analysis of rRNA precursors |
| EP09832566.5A EP2376657B1 (en) | 2008-12-10 | 2009-12-10 | Ratiometric pre-rrna analysis |
| ES09832566.5T ES2616235T3 (en) | 2008-12-10 | 2009-12-10 | Ratiometric analysis of pre-rRNA |
| CA2783562A CA2783562A1 (en) | 2008-12-10 | 2009-12-10 | Ratiometric pre-rrna analysis for identifying viable microorganisms |
| CN200980155682.0A CN102301004B (en) | 2008-12-10 | 2009-12-10 | PRE-rRNA ratio measure is analyzed |
| AU2009324605A AU2009324605B2 (en) | 2008-12-10 | 2009-12-10 | Ratiometric pre-rRNA analysis |
| US13/133,889 US9115407B2 (en) | 2008-12-10 | 2009-12-10 | Ratiometric pre-rRNA analysis |
| US14/800,501 US20150315632A1 (en) | 2008-12-10 | 2015-07-15 | RATIOMETRIC PRE-rRNA ANALYSIS |
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| US13/133,889 A-371-Of-International US9115407B2 (en) | 2008-12-10 | 2009-12-10 | Ratiometric pre-rRNA analysis |
| US14/800,501 Continuation US20150315632A1 (en) | 2008-12-10 | 2015-07-15 | RATIOMETRIC PRE-rRNA ANALYSIS |
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Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2013049437A2 (en) | 2011-09-28 | 2013-04-04 | Lonza Walkersville Inc. | Molecular targets and methods for formulation screening and preservative efficacy testing |
| US9115407B2 (en) | 2008-12-10 | 2015-08-25 | University Of Washington | Ratiometric pre-rRNA analysis |
| CN113817716A (en) * | 2020-06-19 | 2021-12-21 | 三菱重工业株式会社 | Method for extracting nucleic acid from living body and water treatment system |
| WO2024052738A1 (en) * | 2022-09-10 | 2024-03-14 | Venkata Satya Suresh Attili | Multi-parametric method for identification, quantification and in-vivo response assessment of viable microbial organism from biological specimens |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| AU2014286889B2 (en) | 2013-07-03 | 2019-05-23 | Qvella Corporation | Methods of targeted antibiotic susceptibility testing |
| US10400291B2 (en) * | 2014-06-27 | 2019-09-03 | The Regents Of The University Of Michigan | Method for bacterial species identification and strain typing |
| JPWO2018199279A1 (en) * | 2017-04-27 | 2020-03-19 | 国立大学法人 東京医科歯科大学 | Microbial viability determination method using ribosomal RNA precursor |
| WO2019046439A1 (en) * | 2017-08-30 | 2019-03-07 | Monsanto Technology Llc | METHOD OF DETECTING MICROBES |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| US9115407B2 (en) | 2008-12-10 | 2015-08-25 | University Of Washington | Ratiometric pre-rRNA analysis |
| WO2013049437A2 (en) | 2011-09-28 | 2013-04-04 | Lonza Walkersville Inc. | Molecular targets and methods for formulation screening and preservative efficacy testing |
| WO2013049437A3 (en) * | 2011-09-28 | 2013-08-15 | Lonza Walkersville Inc. | Molecular targets and methods for formulation screening and preservative efficacy testing |
| US20140272977A1 (en) * | 2011-09-28 | 2014-09-18 | Lonza Walkersville Inc. | Molecular targets and methods for formulation screening and preservative efficacy testing |
| US9512474B2 (en) | 2011-09-28 | 2016-12-06 | Lonza Walkersville, Inc. | Molecular targets and methods for formulation screening and preservative efficacy testing |
| CN113817716A (en) * | 2020-06-19 | 2021-12-21 | 三菱重工业株式会社 | Method for extracting nucleic acid from living body and water treatment system |
| WO2024052738A1 (en) * | 2022-09-10 | 2024-03-14 | Venkata Satya Suresh Attili | Multi-parametric method for identification, quantification and in-vivo response assessment of viable microbial organism from biological specimens |
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| AU2009324605A1 (en) | 2011-07-07 |
| US9115407B2 (en) | 2015-08-25 |
| CA2783562A1 (en) | 2010-06-17 |
| CN102301004B (en) | 2016-08-31 |
| US20150315632A1 (en) | 2015-11-05 |
| US20120094285A1 (en) | 2012-04-19 |
| JP5768282B2 (en) | 2015-08-26 |
| EP2376657A4 (en) | 2013-01-02 |
| CN102301004A (en) | 2011-12-28 |
| AU2009324605B2 (en) | 2014-09-18 |
| JP2012511331A (en) | 2012-05-24 |
| EP2376657B1 (en) | 2017-01-25 |
| EP2376657A1 (en) | 2011-10-19 |
| ES2616235T3 (en) | 2017-06-12 |
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