WO2013159078A1 - Compositions for in situ labeling of bacterial cell walls with fluorophores and methods of use thereof - Google Patents
Compositions for in situ labeling of bacterial cell walls with fluorophores and methods of use thereof Download PDFInfo
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- WO2013159078A1 WO2013159078A1 PCT/US2013/037504 US2013037504W WO2013159078A1 WO 2013159078 A1 WO2013159078 A1 WO 2013159078A1 US 2013037504 W US2013037504 W US 2013037504W WO 2013159078 A1 WO2013159078 A1 WO 2013159078A1
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- 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
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- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C271/00—Derivatives of carbamic acids, i.e. compounds containing any of the groups, the nitrogen atom not being part of nitro or nitroso groups
- C07C271/06—Esters of carbamic acids
- C07C271/08—Esters of carbamic acids having oxygen atoms of carbamate groups bound to acyclic carbon atoms
- C07C271/10—Esters of carbamic acids having oxygen atoms of carbamate groups bound to acyclic carbon atoms with the nitrogen atoms of the carbamate groups bound to hydrogen atoms or to acyclic carbon atoms
- C07C271/20—Esters of carbamic acids having oxygen atoms of carbamate groups bound to acyclic carbon atoms with the nitrogen atoms of the carbamate groups bound to hydrogen atoms or to acyclic carbon atoms to carbon atoms of hydrocarbon radicals substituted by nitrogen atoms not being part of nitro or nitroso groups
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- C07D—HETEROCYCLIC COMPOUNDS
- C07D311/00—Heterocyclic compounds containing six-membered rings having one oxygen atom as the only hetero atom, condensed with other rings
- C07D311/02—Heterocyclic compounds containing six-membered rings having one oxygen atom as the only hetero atom, condensed with other rings ortho- or peri-condensed with carbocyclic rings or ring systems
- C07D311/74—Benzo[b]pyrans, hydrogenated in the carbocyclic ring
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- C07K—PEPTIDES
- C07K9/00—Peptides having up to 20 amino acids, containing saccharide radicals and having a fully defined sequence; Derivatives thereof
- C07K9/001—Peptides having up to 20 amino acids, containing saccharide radicals and having a fully defined sequence; Derivatives thereof the peptide sequence having less than 12 amino acids and not being part of a ring structure
- C07K9/003—Peptides being substituted by heterocyclic radicals, e.g. bleomycin, phleomycin
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- 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
- C12Q1/025—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving viable microorganisms for testing or evaluating the effect of chemical or biological compounds, e.g. drugs, cosmetics
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- 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
- C12Q1/18—Testing for antimicrobial activity of a material
Definitions
- the invention relates generally to microbiology, and more particularly to
- compositions and methods for assessing cell wall synthesis in bacteria, for identifying bacteria, and for screening for cell wall-actiiig/-disrupting agents are provided.
- PG domain-specific peptidoglycan
- DAA D-amino acid
- a modified amino acid that includes a D-amino acid covalently attached to a fluorescent label
- a muramylpentapeptide precursor unit that includes an N-acetyi muramic acid (NAM) moiety having a stem peptide of three to five amino acids.
- NAM N-acetyi muramic acid
- One or more of the amino acids in the stem peptide includes a modified amino acid that includes a D-amino acid covalently attached to a fluorescent label and optionally an additional modified amino acid.
- the additional modified amino acid includes a clickable D ⁇ amino acid.
- a peptidoglycan unit that includes a
- muramylpeniapeptide precursor unit as described above in the second respect thai is covalently linked to an N-acetyi glucosamine (NAG) moiety.
- NAG N-acetyi glucosamine
- a method of assessing bacterial ceil wall synthesis in real time includes the step of providing live bacteria with a first amount of at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label, and optionally a second amount of at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient for bacterial cell wall synthesis.
- the bacteria covalently incorporate the at least one modified amino acid and optionally the at least one additional modified amino acid into a stem peptide of
- a method of screening for a putative cell wall-acting agent includes the step of co-contacting bacteria with an effective amount of an agent and an amount of at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label, and optionally an amount at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient to permit ongoing peptidoglycan biosynthesis in a bacterial cell wall.
- the agent comprises a cell wall-acting agent if the agent interferes with ongoing peptidoglycan biosynthesis in the bacterial cell wail.
- a method of screening for a putative cell wall-disrupting agent includes the step contacting modified bacteria with an amount of an agent.
- the agent is a cel l wall -di srupting agent if the agent weakens integrity of
- the modified bacteria have a modified cell wail containing modified peptidoglycan having at least one stem peptide containing at least one modified amino acid comprising a D-amino acid cova!ently attached to a fluorescent label, and optionally at least one additional modified amino acid comprising a clickable D-amino acid,
- a method of identifying bacteria includes two steps.
- the first step includes contacting live bacteria with an amount of at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label, and optional ly an amount of at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient for ongoing bacterial cell wall synthesis.
- the bacteria covalently incorporate into peptidoglycan of a bacterial cell wall the at least one modified amino acid, and optionally the at least one additional modified amino acid.
- Each of the least one modified amino acid and optionally the at least one additional modified amino acid comprises a spectrally distinct fluorescent label.
- the second step includes visualizing the spectrally distinct fluorescent labels to determine an incorporation pattern of the at least one modified amino acid, and optional ly the at least one additional modified amino acid, wherein the incorporation pattern identifies the bacteria,
- kits for incorporating labeled D-amino acids into live bacteria includes at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label and a positive bacterial control.
- the kit can include an optional negative bacterial control.
- the positive bacterial control has at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label incorporated into a stem peptide of peptidoglycan of the bacterial cell wall.
- the optional negative bacterial control if included, does not have the modified amino acid comprising a D-amino acid co valently attached to a fluorescent label incorporated into a stem pepti de of peptidoglycan of the bacterial cell wall.
- FIG. 1 shows the three general stages of PG biosynthesis and general structures of the
- NAM and NAG units of PG are NAM and NAG units of PG .
- FIG. 2 shows exemplary D-Ala-based FDA As. D-NBD and D-HCC (based on
- FIG. 3 shows results of control experiments in which the cell walls of Agrobacterium tumefaciens (top row), Bacillus subtilis (middle row) and Escherichia coli (bottom row) were fluorescently labeled with fluorescent D-Ala (D-HCC) or fluorescent L-Ala (L-HCC).
- D-HCC fluorescent D-Ala
- L-HCC fluorescent L-Ala
- FIG. 4 shows results of a pulse chase experiment with a fluorescent D-Ala in B.
- subtilis top row
- A. tumefaciens bottom row
- FIG. 5 shows results of a short pulse experiment with fluorescent D-Ala in B. subtilis.
- FIG. 6 shows results of a fluorescent D-Ala derivative in a dual-labeling format.
- FIG. 7 shows exemplary structures for FDAAs, such as HCC-OH-labeled 3-amino-D- Aia ( I I A O A ). NBD-Cl-labeled 3-amino-D-Ala (NADA), F-labeled D-Lys (FDL) and
- TDL T-labeled D-Lys
- FIG. 8 shows that long labeling pulses with HADA uniformly label PG in live E. coli (left), B. subtilis (center) and A. tumefaciens (left).
- the FDAA fluorescence was retained in isolated sacculi, which also stained with a N AG-specific wheat germ agglutinin (WAG) lectin conjugated to Alexa Fluor® 594 (red). Scale bars, 2 ⁇ .
- WAG wheat germ agglutinin
- FIGS. 9A-D show FDAA incorporation into the stem peptide of the PG unit.
- FIG. 9 A shows a schematic representing the muramylpentapeptide precursor as incorporated into a nascent PG unit and a modified D-amino acid (FDAA).
- FIG. 9B shows HPLC detection of modified muropeptides in E. coli incubated with HAD A, HAL A and NAD A, or N ALA. Samples were monitored using a dual wavelength UV monitor set for general muropeptide detection and for FDAA-specific wavelengths. Peaks HEC-1 and NEC-1 correspond to the HAD A- or NADA-modified muropeptides in E. coli that were further characterized by electrospray ionization MS/MS (ESI-MS/MS).
- ESI-MS/MS electrospray ionization MS/MS
- FIG. 9C shows percentage of FDAA incorporation into the total muropeptides varies among bacteria as revealed by HPLC analysis.
- FIG. 9D show r s a schematic representing MS/MS analyses of FDAAs exclusively incorporated into the 4th position of muropeptides in E, coli and A. tumefaciens and the 5th position in B, subtilis.
- FIGS. IGA-F show FDAAs label diverse bacterial growth patterns. Arrows in the triple labeling panels indicate the sequence of labeling. White scale bars, 2 ⁇ , red scale bars, 1 ⁇ .
- FIG. 10A shows time-lapse microscopy of HADA-labeled E. coli and B. subtilis AdacA cells imaged during growth on LB agarose pads.
- FIG. lOB shows super-resolution microscopy of E. coli after short pulses with HAD A.
- FIG. IOC show super-resolution microscopy of A. tumefaciens after short pulses with HADA.
- FIG. 10D shows super-resolution microscopy of S. aureus after a short pulse with HADA. Auto fluorescence is shown in red.
- FIG. 10E shows triple labeling of A. tumefaciem with HADA (blue), EDA (clicked with red sulfo-Cy3-azide) and NAD A (green).
- FIG. 10F shows triple labeling of S. venezuelae with NAD A (green), TDL (red) and HADA (blue).
- FIG. 11 shows that short pulses of HADA label distinct modes of growth in diverse bacteria. Strains were labeled for ⁇ 2%-8% of the doubling time: E. con (30 seconds), A. tumefaciens (2 minutes), B. subtilis AdacA (30 seconds), S. aureus (2 minutes), L. lactis (2 minutes), S. pneumoniae (4 minutes), C. crescentus (5 minutes), Synechocystis sp. PCC 6803 (1 hour), S. venezuelae (2 minutes), B. conglomeration (8 minutes), B. phytofirmans (20 minutes), V. Spinosum (10 minutes). Scale bars, 2 ⁇ .
- FIG. 12 shows a schematic for sequentially incorporating distinct FDAAs, such as NAD A, TDL and HADA, into newly synthesized PG in live bacteria.
- distinct FDAAs such as NAD A, TDL and HADA
- “about” means within a statistically meaningful range of a value or values such as a stated concentration, length, molecular weight, H, sequence identity, time frame, temperature or volume. Such a value or range can be within an order of magnitude, typically within 20%, more typically within 10%, and even more typically within 5% of a given value or range. The allowable variation encompassed by “about” will depend upon the particular system under study, and can be readily appreciated by one of skill in the art.
- the work described herein demonstrates how to make derivatized DAA having a suitable label, such as an appropriate fluorophore and how such derivatized compounds can be visualized in live cells by fluorescence microscopy following the incorporation of the derivatized compounds into PG and thus the ceil wall.
- the incorporated FDAAs do not appear to be toxic to bacteria.
- the methods described herein do not appear to adverse!' affect cel l morphology.
- the methods described herein enable pulse-chase experiments that cannot be easily executed in the presence of fluoresceiitiy-modified cell wail active drugs. Because the disclosed derivatized compounds have low or minimal toxicity to live cells, they are ideal markers to evaluate and screen microbiostatic or microbiotoxic compounds that do adversely affect microorganism growth and viability, such as studies directed to development of novel antibiotics.
- compositions and methods are applicable to a wide array of Gram-positive and Gram-negative bacteria and provides significant utility for probing PG biosynthesis, cell wall morphogenesis and the response of the PG biosynthetic machinery to cell wall-active agents and/or cell wall-disrupting agents.
- present disclosure therefore provides compositions and methods for studying bacterial cell wall PG biosynthesis and for discovering bacterial cell wall-acting and/or cell wall- disrupting agents.
- compositions of the invention include labeled D-amino acids (DAAs), especially fluorescent D-amino acids (FDAAs).
- DAAs labeled D-amino acids
- FDAAs fluorescent D-amino acids
- amino acid or “amino acid residue” are used interchangeably to mean a molecule containing a first, or alpha, carbon attached to an amine group, a carboxylic acid group and a side-chain that is specific to each amino acid.
- a natural amino acid can include conventional elements such as carbon, hydrogen, oxygen, nitrogen and sulfur.
- An amino acid may be a naturally occumng amino acid or artificially- created unnaturally occurring amino acid.
- the amino acid is naturally occurring, and, unless otherwise limited, may encompass known analogues/synthetics of natural amino acids that can function in a similar manner as naturally occurring amino acids.
- the natural amino acids all contain at least one cbiral carbon atom.
- These amino acids therefore exist as pairs of stereoisomers (D- and L-isomers).
- D-isomers or D-amino acids particularly D-Ala, D-Asp, D-Cys, D-Glu and D-Lys, which are frequently found in the stem peptide of the PG unit.
- Threonine T
- D Aspartic acid
- E Glutamic acid
- Q Asparagine
- N Asparagine
- Q Glutamine
- R Argi ine
- Lysine ); 5) Isoleucine (I), Leucine (L), Methionine (M), and Valine (V); and 6) Phenylalanine (F), Tyrosine (Y) and Tryptophan (W).
- suitable labels for the DAAs include, but are not limited to, radiolabels, biotin (which may be detected by avidin or streptavidin conjugated to peroxidase), ianthanides, alkaline phosphatase and fluorescent labels (e.g., coumarins, fluoresceins, cyanines, bodipy dyes, green fluorescent protein, quantum dots rhodamine, especially the Alexa Fluor® fami ly of fluorescent dyes avai lable from Invitrogen/Molecular Probes).
- fluorescent labels e.g., coumarins, fluoresceins, cyanines, bodipy dyes, green fluorescent protein, quantum dots rhodamine, especially the Alexa Fluor® fami ly of fluorescent dyes avai lable from Invitrogen/Molecular Probes.
- Other labels amenable for use in the modified D-amino acids disclosed herein include metals and isotopic labels.
- Labeling of DAAs can be carried out by covalently attaching the label to a free amine group, such as free amine groups present on the side-chain that is specific to each amino acid. if the side chain lacks a free amine group, one of skill in the art understands how to add such groups, as is the case of adding such a group to D-Ala to obtain 3-amino-D-Ala.
- a free amine group such as free amine groups present on the side-chain that is specific to each amino acid.
- Some labels can be detected by using a labeled counter suitable for the detection of the label in question, in the Examples below, 7-hydroxycoumarin 3-carboxylic acid (HCC-OH), 7- mtrobenzofurazan (NBD), 4-chloro-7-mtrobenzofurazan (NBD-C1), fluorescein (F) and carboxytetrame ylrhodamine (T) were covalently attached to DAAs as labels.
- HCC-OH 7-hydroxycoumarin 3-carboxylic acid
- NBD 7- mtrobenzofurazan
- NBD-C1 4-chloro-7-mtrobenzofurazan
- F fluorescein
- T carboxytetrame ylrhodamine
- amino acids having functional groups other than an amine include a functional alcohol group (e.g., serine and tyrosine), thiol group (e.g., cysteine), or carbonyl. or carboxylase group (e.g., aspartate and glutaraate).
- a functional alcohol group e.g., serine and tyrosine
- thiol group e.g., cysteine
- carbonyl e.g., aspartate and glutaraate
- carboxylase group e.g., aspartate and glutaraate
- FDAA includes HAD A, which is a HCC-OH-labeled 3-amino-D- Ala.
- NAD A which is a NBD-Cl-labeled 3-amino-D- Ala
- FDL which is a F-labeled D-Lys.
- TDL which is a T-labeled D-Lys.
- HDL which is a HCC-OH-labeled D- Lys.
- NDL which is a NBD-Cl-labeled D-Lys.
- FADA which is a F-labeled 3-amino-D-Ala.
- TADA which is a T-labeled 3-amino-D-Ala.
- Other FDAAs can include a D-Glu having its side chain modified to include a free amine group linked to any of the fluorescent labels above (e.g., HADG, NADG, FADG and TADG). [058] See, e.g., FIG. 7, for other examples of preferred labels and modified FDAAs.
- Compositions of the invention also include clickable D-amino acids (CDAAs).
- the CDAAs have a DAA backbone that includes, for example, an alkyne or azide functional group present on the side-chain that is specific to each amino acid that can be captured in situ by a labeled, detecting agent carrying a conjugate functional group via click-chemistry.
- Functional groups in a DAA backbone that can be targeted by the labeled, detecting agent include, but are not limited to, primary amines, carboxyis, sulfhydryls, carbohydrates and carboxylic acids.
- Cross-linking and enrichment strategies for separating a cross-linking reaction from enrichment steps have been developed based on bioorthogonal chemistries including the azide-alkyne "click" cycloaddition and Staudinger ligation using alkyne- or azide-labeled cross-linking agents (e.g., fluorescent labels).
- alkyne- or azide-labeled cross-linking agents e.g., fluorescent labels.
- Azides and alkynes are not naturally found in proteins, peptides, nucleic acids or glycans; therefore, these moieties can be engineered onto the DAAs and labeled, detecting agent to generate azide-containing molecules and alkyne- containing molecules that are reactive with one another.
- click chemistry and “clickable” therefore mean a reaction between azide-containing molecules and alkyne- containing molecules to yield a covalent product-l ,5-disubstituted 1,2,3-triazole.
- the reaction can be a copper(I)-catalyzed alkyne azide cycloaddition (CuAAC) or, in cases where copper toxicity may be an issue, can be a copper(I)-free-catalyzed alkyne azide
- Examples of functional groups for use on azide-containing molecuies and alkyne- containing molecules include, but are not limited to, hexynyl groups, pentynyi groups, heptynyl groups, azido-propyl groups, azido-butyl groups and azido-pentyl groups.
- the functional group of alkyne-containing molecules e.g., DAAs
- the functional group of azide-containing molecules e.g., labeled, detecting agents
- the functional group of azide-containing molecules e.g., DAAs
- the functional group of alkyne-containing molecules e.g., labeled, detecting agents
- the correspondmg clickable alkynyl group e.g., labeled, detecting agents
- the detecting agents can be fluorophore-labeled.
- fluorophores include, but are not limited to, Alexa Fluor® dyes, BOD1PY® dyes, fluorescein, Oregon Green® 488 and Oregon Green® 514 dyes, Rhodamine Green and Rhodamine Green-X dyes, eosin, tetramethylrhodamine, Lissamine Rhodamine B and Rhodamine Red-X dyes, X- Rhodamine, Texas Red® and Texas Red® ⁇ X dyes, naphthofluorescein, Carboxyrhodamme 6G, QSY dyes fluorescence quenchers, nonfluorescent malachite green, coumarin derivatives, Pacific Orange dye, cascade blue and other pyrene derivatives, cascade yellow and other pyridyloxazoie derivatives, naphthalenes (e
- An example of a CDAA includes EDA.
- Another example of a CDAA includes ADA. See, e.g., FIG. 7.
- FMPUs Fluorescent Muram lpentapeptide Precursor Units
- Compositions of the invention also include fluorescent muramylpentapeptide precursor units (FMPUs) having an NAM moiety with a peptide chain of three to five amino acids in which one or more of the amino acids in the stem peptide are FDAAs and/or CDAAs as described herein. See, e.g., FIG. 9 A. and 9D.
- FMPUs fluorescent muramylpentapeptide precursor units
- Compositions of the invention also include fluorescent peptidog!ycan units (FPGUs).
- FPGUs have a FMPU as described herein linked to a NAG moiety. See, e.g., FIG. 9A and 9D.
- compositions of the invention also include live bacteria having FDAAs, CDAAs, FMPUs and/or FPGUs as described herein incorporated into PG in a ceil wall.
- Gram-positive bacteria tend to have a thicker PG layer, it is intended that the bacteria can be Gram-positive bacteria or Gram-negative bacteria.
- suitable Gram -positive bacteria include, but are not limited to, Actinomyces spp., Bacillus spp., Brachybacteriiim spp., Clostridium spp., Cory neb acteriuin spp., Diplococcus spp.,
- Enterococcus spp. Lactococcus spp., Listeria spp., Nocardia spp., Propionibacterium spp., Staphylococcus spp., Streptococcus spp. Streptomyces spp.
- live B. subtilis, B. conglomeratum, L. lactis, S. aureus, S. pneumoniae, S. venezuelae were grown in the presence of FDAAs and/or CDAAs.
- Suitable Gram-negative bacteria include, but are not limited to,
- Acinetobacter spp. Agrobacterium spp., Bordetella spp., Borrelia spp., Brucella spp., Burkholderia spp., Campylobacter spp., Caulohacter spp,, Chlamydia spp., Enterobacter spp., Escherichia spp., Helicobacter spp., Hemophilus spp., Klebsiella spp., Legionella spp., Neisseria spp., Proteus spp., Pseudomonas spp, Salmonella spp., Shigella spp., Synechocystis spp., Verrucomicrobia spp., Vibrio spp.
- live /4. tumefaciens, B, phytofirmans, C. crescentus, E. coli, Synechocystis sp. P 6803 and V. spinosum were grown in the presence of FDAAs and/or CDAAs.
- compositions of the invention also include .kits having one or more FDAA, CDAA, FMPU and/or FPGU as described herein and optionally one or more labeled detecting agents (if CDAAs are included in the kits) for use in in situ labeling/probing of PG during biosynthesis, as well as for screening for bacterial cell wail-acting and/or cell wall-disrupting agents.
- the kits also can include additional reagents such as unlabeled DAAs, unlabeled L-amino acids (LAAs) and/or labeled LAAs.
- the kits also can include positive and/or negative bacterial controls, where the controls have unlabeled DAAs, CDAAs and LAAs or labeled DAAs and LAAs incorporated into PG in a cell wall.
- kit means any manufacture (e.g., a package or a container) having, for example, at least one FDAA and/or CDAA and a positive and/or negative control.
- the kit may be promoted, distributed, or sold as a unit for performing any of the methods described herein.
- kits preferably include instructions, procedures and/or directions that guide users or ones skilled in the art how to use the agents, reagents, and/or other components for their intended purpose.
- kits can include a package insert describing procedures for carrying out any one of the methods described herein or analytical information for correlating the level of expression measured in live bacteria.
- the package insert c an include representative images of positive or negative samples w r ith low or high levels of incorporation as compared to an appropriate control .
- the kits can be promoted, distributed or sold as units for performing the methods described below.
- kits also can include a receptacle or other means for holding a sample to be evaluated for FDAA and/or CDAA incorporation, and means for determining the presence and/or quantity of FDAA and/or CDAA incorporation in live bacteria.
- kits also can include at least one buffer.
- buffers include, but are not limited to, cell isolation buffers, fixation buffers, lysis buffers, permeabilization buffers, soni.cati.on buffers, separation buffers, stabilization buffers and wash buffers.
- buffers include strong acids in combination with weak bases, strong bases in combination with weak acids, a combination of weak acids and bases, or even a small or low concentration (e.g., within the range from about 0.1 mM to about 10 mM) of an acid or base, in the absence of a conventional conjugate base or acid, respectively; typically, however another component of the mixture may provide such conjugate acid or base function.
- acids and bases both in terms of ionization/dissoeiation strength (i.e., strong or weak) and type (i.e., inorganic or organic), are well known in the art.
- kit components can be provided within containers that protect them from the external environment, such as in sealed containers.
- Methods include assessing bacterial cell wall biosynthesis (and PG recycling) in real time. As shown in FIG. 1, bacterial cell wall biosynthesis typically involves three steps: translocation, transglycosylation and transpeptidation. In the translocation and
- carbohydrate backbone is formed by polymerization via glycosidic bond formation between the C(4)-hydroxyl of a membrane -bound lipid II intermediate and the anomeric center of a membrane-bound glycan strand.
- Bacterial transpeptidases mediate crosslinking of the resulting elongated glycan strand.
- the cross-link is installed via attack of an amino group, either from the Lys residue itself or from a short peptide chain appended to the Lys residue, onto the penultimate D-Ala residue of an adjacent pentapeptide strand and results in cleavage of the terminal D-Ala residue.
- This rigid macromolecular structure essential to both Gram-negative and Gram-positive bacteria, enables bacterial cells to resist lysis and, subsequently, cell death resulting from high internal osmotic pressure.
- These methods typically begin by providing live Gram-positive or Gram-negative bacteria with FDAAs and/or CDAAs as described herein under conditions where the bacteria can covalently incorporate the FDAAs and/or CDAAs into PG of a bacterial cell wall.
- the FDAAs and/or CDAAs can be provided to organisms preferably within a given range of concentrations, for example, from about 0.1 ⁇ to about 1 mM, as well as in any whole integer or fractional integer concentration thereof within this preferred range.
- the FDAAs and/or CDAAs can also be provided to organisms at preferred concentrations, for example, at about 0.1 ⁇ . ⁇ and about 1 mM.
- a typical route to ascertaining the optimal concentrations and preferred ranges of the FDAAs and/or CDAAs described herein is to perform a dose response experiment, wherein the parallel populations of a given organism are contacted with different eoncen cations (or amounts) of a given FDAA and/or CDAA, and the extent of incorporation of the eompound(s) is assessed by biochemical assay (e.g., extent of compound labeling in PG fractions) and/or by visualization methods (e.g., fluorescence microscopy).
- biochemical assay e.g., extent of compound labeling in PG fractions
- visualization methods e.g., fluorescence microscopy
- the methods also can include detecting the FD AAs and/or CDAAs in the bacterial cell wall to verify that they have been incorporated.
- the FDAAs and/or CDAAs (after being clicked) can be detected via fluorescence microscopy and other methods, depending upon the type of label or reporter used.
- cell wall biosynthetic pathway is unique to bacterial cells; therefore, agents that inhibit steps within this pathway are anticipated to show selective toxicity toward bacterial cells.
- methods of the invention also can include screening for putative cell wall- acting or cell wall-disrupting agents.
- cell wall-acting means an ability of an agent to interfere with PG biosynthesis in a bacterial cell wall, especially at the
- transglycosylation step as this step takes place on the outer leaflet of the cell membrane so cellular penetration is not a prerequisite for the agent to manifest its biological activity.
- cell wall-disrupting means an ability of an agent to disrupt or weaken the integrity of PG in an existing bacterial ceil wall
- the methods can begin by contacting bacteria with a putative cell wall-acting agent or putative cell wall-disrupting agent, where the agent is cell wall-acting if the agent interferes with ongoing peptidoglycan biosynthesis in a bacterial cell wail or is ceil wall-disrupting if the agent weakens integrity of peptidoglycan in an existing bacterial cell wall.
- the bacteria can be co-contacted with FDAAs and/or CDAAs as described herein simultaneously with the putative agent.
- the bacteria can have FDAAs and/or CDAAs as described herein covalently incorporated into PG of the cell wail prior to being contacted with the putative agent.
- the methods also can include detecting whether the FDAAs and/or CDAAs have been incorporated in the bacterial cell wall or whether the FDAAs and/or CDAAs remain in the bacterial cell wall.
- the FDAAs and/or CDAAs (after being clicked) can be detected via fluorescence microscopy and other methods, depending upon the type of label or reporter used.
- the pattern and/or location of FDAAs and/or CDAAs incorporation can be used to identify the bacteria (see, e.g., FIGS. 10-12).
- the methods also can include comparing the results from the putative cell wall-acting agent or ceil wall-disrupting agent with a known ceil wall-acting agent or known cell wail- disrupting agent.
- the compounds of the present disclosure have utility for identifying bacteria. As demonstrated in the Examples set forth herein, certain bacteria! species display unique specificity for incorporating certain D-amino acids in PG and the bacteria cell wail. Thus, the use of the disclosed modified D-amino acids of the present disclosure enable identification of bacterial species by virtue of the pattern of labeling observed in the bacteria as a result of incorporation of the modified D-amino acids into PG of the bacterial ceil wall .
- subtilis is at the terminal posi tion of the peptide stem.
- tumefaciens provides supporting evidence for a mode of growth that involves budding as no signal dilution from the mother cell is observed as recently shown.
- HADA/HALA To a flame-dried flask, 7-hydroxycoumarin-3-carboxylic acid (HCC) was added in anhydrous DMF (14,5 mL, 0.1 M) under an atmosphere of argon.
- Carbonyldiimidazole (236 mg, 1.455 mmoi) was added in one portion and stirred at room temperature (RT) for 2 hours.
- Boc-D-2,3-diaminopropionic acid (for HAD A) or Boc-L-2,3-diaminopropionic acid (for HALA) (297 mg, 1.455 mmol) was added in one portion and the reaction mixture was allowed to stir at RT overnight (17 hours). The majority of the solvent was removed in vacuo, and the product was diluted with EtOAc (100 ml) and washed with 1 N HCl (50 ml) and water (100 ml). The water layers were combined and back-extracted with EtOAc (50 ml) to prevent loss of product due to an emulsion.
- NADA/NALA Boc-D-2,3-diaminopropionic acid (for NAD A) or Boc-L-2,3- diaminopropiomc acid (for NALA) (100 mg, 0.49 mmol) and sodium bicarbonate (123 mg, 1.47 mmol) were dissolved in water (1.8 ml) and heated to 55°C in water bath. A solution of 4-chloro-7-mtrobenzofurazan (NBD, 108 mg, 0.539 mmol) in methanol (8.5 ml) was added dropwise over 10 minutes. Care was taken at all times to avoid excessive exposure to light during the reaction and workup. The reaction was allowed to stir at 55°C for I hour.
- the solvent was removed in vacuo and acidified with 1 N HCi.
- the aqueous mixture was extracted with dichioromethane (50 ml per extraction x 3 extractions) and the organic extracts were washed with brine (50 ml), dried over Na2S04, filtered, and the solvent was removed in vacuo.
- the crude product was treated with 4 N HCl/dioxane (10 ml) for 1 hour at RT, and the solvent was removed in vacuo.
- the product was purified via reverse-phase HPLC with 20%-90% MeCN/ ' H20.
- FDL To a flame dried flask was added N -Boc-D-Lys-OH (19.3 mg, 0.078 mmol) and fluorescein isothiocyanate (25 mg, 0.065 mmol ) in dry DMF (0.65 ml). The reaction was stirred under argon at room temperature for 4 hours. The solvent was removed in vacuo. The residue was redissolved in ethyl acetate (10 ml), washed with 1 N HCI (10 ml) and brine (10 ml), and dried over anhydrous sodium sulfate.
- TDL To a flame dried flask was added a-Boc-D-Lys-OH (3.3 mg, 0.0134 mmol), 5 -(and 6-) carboxytetramethylrhodamine succinimidyl ester (5 mg, 0.0095 mmol), and diisopropylethylamine (2.5 ⁇ , 0.0143 mmol) in dry DMF (0.2 ml). The reaction was stirred under argon at room temperature overnight. The solvent was removed in vacuo, and the crude mixture was treated with trifluoroacetic acid/dichloromethane (1 : 1) for 0.5 hours. The reaction was dried in vacuo, and purified by reverse-phase HPLC with 20%-40%
- Excitation and emission spectra of FDAAs 500 ⁇ in 100 mM Tris pH 7.0 were determined in black 96-well polystyrene plates (Corning) using top-read function of a Spectra Max M2 plate reader. The excitation and emission spectra were measured in separate runs within a range of 200 ran and with increments of 1 nm.
- EDA and ELA, and Sulfo ⁇ Cy3-Azide were gifts from Boaopharma and Lumiprobe, respectively.
- AZA and "clickable" Alexa 488 Fluors were purchased from Iris Biotech GmbH and Invitrogen, respectively.
- the Cu(I) catalyzed click chemistry was performed using the chemicals supplied by Invitrogen following their standard protocol once the cells had been fixed with EtOH (70% v/v) and permeabilized with methanol (100% v/v).
- Table 2 Strains, their predicted PG chemotypes and conditions for growth and labeling.
- DMSO was added to the growth media to a final concentration of 1% to help solubilize the FDAAs and/or CDAAs. Presence of 1% DMSO did not affect labeling or growth in bacteria tested. When necessary, chloramphenicol or spectinomycin was added to the growth media at 5 or 100 ⁇ / , respectively. Strains were maintained on plates containing growth media with 1.5% agar.
- Phase and fluorescence microscopy was performed with a Nikon® 90i Fluorescence Microscope equipped with a Plan Apo lG0x/1.40 Oil Ph3 DM Objective and a Chroma 83700 triple filter cube with corresponding excitation and emission filters (DAPI for HAD A/HAL A; FITC for NAD 'NALA; and Aiexa Fluor® 488s and Texas Red® for Sulfo-Cy3 or WGA-594).
- Ail images were captured using NIS software from Nikon® and a Photometries Cascade IK cooled charge-coupled device camera, and were processed and analyzed using ImageJ. When a comparison was made, cultures were treated in exactl the same manner and the same parameters were applied for coll ecting and post processing of the microscopy data.
- Exponentially growing cells were diluted to QDgQO 0.05 in media containing half of the optimal FDAA concentration used for short iabeling pulses and were grown until late exponential phase.
- the cells were fixed, washed and then imaged using the Nikon® 90i as described previously.
- the cells were washed with media and mounted onto LB + 1 % (w/v) agarose pads on 25-mm by 75-mm glass slides, sealed with 1 : 1 : 1 mixture of vasoline, lanolin and paraffin and imaged with intervals of 4 minutes (B.
- subtilis AdacA 5 minutes (E, coli) or 10 minutes (A, tumefaciens) using a Nikon® Ti-E Inverted Fluorescence Microscope equipped with a Plan Apo 60 ⁇ /1.40 Oil Ph3 DM
- HADA 500 ⁇ . ⁇ + 1 % DMSO
- NADA 500 ⁇ + 1% DMSO
- E.coli cells were labeled with HADA in 0.1% DMSO. Cells were subsequently stained using the LIVE-DEAD BacLight Kit (Invitrogen) according to the manufacturer's standard protocol.
- Sacculi from cells were purified as described in Litzmger et al. (2010) J. Bacteriol. 192:3122-3143 with following modifications. Exponentially growing cells were diluted to ODgOO 0-05 in 10 ml LB containing half of the optimum FDAA concentration + 1% (v/v) DMSO and grown to late exponential phase. After aliquots were taken for whole cell imaging, cells were collected by centrifugation at 25,000 x g for 15 minutes at RT and resuspended in 0.8 ml water. The suspension was added to boiling sodium dodecyl sulfate (SDS, 5% w/v) drop-wise and incubated with stirring for 30 minutes.
- SDS sodium dodecyl sulfate
- SDS insoluble material was collected by uitracentrifugation at 39,000 x g for 10 minutes at 30° C. and was resuspended in 1 ml water and boiled again in SDS (4% w/v) with stirring for 30 minutes. Samples were then washed four times in 1.5 ml water and resuspended in 1 m! 10 mM Tris- HC1 pH 7.0 + 10 mM Nad + 0.32 M immidazole + a-amylase (100 ⁇ / ⁇ ) + DNase I (50 ⁇ »/ ⁇ 1) + MgS0 4 (1 mM) and incubated for 2 hours at 37°C.
- PG from FDAA labeled cells was purified by the boiling SDS extraction method and muramidase digestion treatment (Cellosyl) as previously described in Brown et al. (2012) Proc. Natl. Acad. Sci. USA. 109: 1697-1701. Solubilized muropeptide mixtures were then either directly injected into the HPLC system (native or non-reduced samples) or subjected to BH4 a reduction as described in Brown et al.
- Muropeptides were analyzed using a binary-pump Waters ⁇ HPLC System (Waters Corporation) fitted with a reverse phase RP18 Aeris® Peptide Column (250 mm x 4.6 mm; 3.6 ⁇ particle size) (Phenomenex) and a dual wavelength absorbance detector. Elution conditions were: flow rate I ml/min; temperature 35° C; 3 minutes isocratic elution in 50 mM sodium phosphate, pH 4.35 followed by a 57 minute linear gradient to 75 mM, sodium phosphate, pH 4.95 in 15% (w/v) methanol (90 mM sodium phosphate, pH 5.2 in 30%(v/v) methanol for B.
- subtilis indicated that FDAAs were exclusively incorporated in the fifth position of the stem peptide (FIG. 9D).
- the fraction of labeled muropeptides and the fluorescent signal were substantially higher than in wild-type B. subtilis, which is likely due to the D,D-carboxypeptidase activity of DacA.
- the detectable incorporation was solely at the fourth position in E. coli and A tumefaciens (FIG. 9D).
- FDAAs incorporate mainly through periplasmic exchange reactions with the muropeptides catalyzed either by D ⁇ -transpeptidases (e.g., in B. subtilis) or by L,D- transpeptidases (e.g., in E. coli and A. tumefaciens).
- D ⁇ -transpeptidases e.g., in B. subtilis
- L,D- transpeptidases e.g., in E. coli and A. tumefaciens.
- subtilis MacA with HADA resulted in preferential localization of the signal at the septal plane of predivisional cells and in punctate patterns on the lateral walls of elongating cells (FIG. 1 1).
- Super-resolution microscopy of E. coli revealed reticulated hoop-like patterns of HADA labeling around the lateral wall (FIG. 10B), supportive of bursts of PG incorporation in the side-walls.
- This ability of FDAAs to resolve insertion of new PG provides the first direct detection of zones of PG synthesis in a structured rather than a random pattern in E. coli, consistent with recent results fol lowing the movement of the cell wall elongation machinery. Short labeling times with A.
- tumefaciens whose growth occurs predominantly from a single pole and the site of cell division while the mother cell remains inert, resulted in polar and septal labeling.
- Super-resolution fluorescence microscopy of labeled cells further enhanced the spatial resolution of the site of active PG synthesis (FIG. IOC).
- FDAAs could specifically label the active site of PG synthesis across the entire bacterial domain.
- species representing diverse phyla and modes of growth were briefly incubated with FD AAs, we observed strong labeling at the sites of cell division in actively dividing cells (FIG, 11). This septal probe incorporation was the sole mode in Synechocystis sp.
- CD A As, namely ethynyl-D-alanine (EDA) or azido-D-alanine (ADA) (FIG. 7), that can be specifically captured by any molecule carrying the conjugate functional group via click-chemistry also were used. Similar to FDAAs, these bioorthogonal DAAs, but not the L-enantiomer control ELA, labeled both E. coli and B. subtilis when captured by
- custom DAAs containing different colored fluorophores can be used sequentially to enable "virtual time-lapse microscopy.” Since addition of each new probe indicates the location and extent of PG synthetic activity during the respective labeling periods, this approach pro vides a chronological account of shifts in PG synthesis of individual ceils over time. Examples of such serial labeling, including a combination with click chemistry, were performed in Gram-negative A, t mefaciens (FIG. 10E) and in Gram- positive 5'. venezuelae (FIG. 10F).
- compositions for and methods of covalently labeling PG in live bacterial cells This method works very efficiently in both
- Gram-positive and Gram-negative organisms represent a liability for approaches using fluorescently modified vancomycin/ramoplanin
- the probe substrates do not appear to be toxic to cells and show no adverse effects on cell morphology, even at concentrations as high as 1 mM.
- the probes rapidly label sites of active
- compositions and methods have been described herein for in situ labeling/probing of PG synthesis in bacteria with fluorescent D-aniino acids (FDAAs), as well as for screening for bacterial cell wall-acting and/or cell wall-disrupting agents.
- FDAAs fluorescent D-aniino acids
- the FDAAs are based upon D-amino acids (DAAs) derivatized to covalently include a small fluorophore.
- DAAs D-amino acids
- the FDAAs can be directly incorporated into bacterial cell walls during PG biosynthesis, as occurs at sites of cell division in actively dividing cells,
- compositions include FDAAs,
- FDAAs have a DAA covalently attached to a fluorophore such as 7-hydroxycoumarin 3-carboxylic acid (HCC-OH), 7- nitrobenzofurazan (NBD), 4-chloro-7-nitrobenzofurazan (NBD-C1), fluorescein (F) or
- the DAA can be any of the twenty known, standard amino acids, such as D-Ala, D-Asp, D-Cys, D-Glu or D-Lys.
- compositions also include clickable DAAs (CDAAs).
- CDAAs have a DAA backbone including an alkyne or azide functional group that can be captured by any labeled detecting agent earning a conjugate functional group via click-chemistry , where the label can be a fluorescent molecule.
- compositions also include fluorescent muramylpentapeptide precursor units (FMPUs),
- FMPUs have an N-acetyl muramic acid (NAM) moiety with a stem peptide of three to five amino acids in which one or more of the amino acids in the stern peptides are FDAAs and/or CDAAs as described herein.
- NAM N-acetyl muramic acid
- compositions also include fluorescent PG units (FPGUs).
- FPGUs have a FMPU as described herein linked to an N-acetyl glucosamine (NAG) moiety.
- NAG N-acetyl glucosamine
- compositions also include live bacteria having one or more FDAA, CDAA, FMPU and/or FPGU as described herein incorporated into PG in a cell wall,
- compositions also include kits having one or more FDAA, CDAA, FMPU and/or FPGU as described herein and optionally one or more labeled, detecting agents for use in in situ labeling/probing of PG synthesis, as well as for screening for bacterial cell wall-acting and/or cell wail-disrupting agents.
- kits also can include additional reagents such as unlabeled DAAs, unlabeled L-amino acids (LAAs), fluorescent LAAs (FLAAs) and/or clickable LAAs (CLAAs).
- kits also can include positive and/or negative bacterial controls, where the bacterial controls have unlabeled DAAs, CDAAs, LAAs and CLAAs and/or labeled DAAs, CDAAs, LAAs and CLAAs incorporated into PG in a cell wall.
- the methods have been disclosed herein that include assessing bacterial ceil wall synthesis in real time by providing live bacteria with one or more FDAA, CDAA, FMPU and/or FPGU as described herein, where the bacteria covalently incorporate the one or more FDAA, CDAA, FMPU and/or FPGU into PG of a bacterial cell wall.
- the one or more FDAA, CDAA, FMPU and/or FPGU can be provided to live bacteria together or sequentially during cell wall synthesis.
- the methods also include screening for putative cell wall-acting or cell wall- disrupting agents by contacting bacteria with a putative cell wall-acting agent or putative cell wail-disrupting agent, where the agent is cell wall-acting if the agent interferes with ongoing PG biosynthesis in a bacterial ceil wall or is cell wall-disrupting if the agent weakens integrity of PG in an existing bacterial ceil wall.
- the bacteria can be provided with one or more FD AA, CDAA., FM PU and/or FPGU as described herein simultaneously with the putative agent.
- the bacteria can have one or more FDAA, CDAA, FMPU and/or FPGLI as described herein covalently incorporated into PG of the cell wail prior to being contacted with the putative agent.
- the methods also include identifying a bacteria by providing live, unknown bacteria with one or more FDAA, CDAA, FMPU and/or FPGU as described herein under conditions sufficient for bacterial cell wail synthesis, where the bacteria covalently incorporate one or more FDAA, CDAA, FMPU and/or FPGU into a cell wall, and where each of the one or more FDAA, CDAA, FMPU and/or FPGU includes a distinct fluorophore.
- the methods also include observing an incorporation pattern of the one or more FDAA, CDAA, FMPU and/or FPGU, where the incorporation pattern identifies the bacteria. Such methods are amenable for use in screening platforms to identify novel compounds having bacteriostatic or bacteriotoxic properties.
- the bacteria can be Gram-positive or Gram-negative bacteria.
- the methods also include detecting one or more FDAA, CDAA, FMPU and/or FPGU as described herein that have been incorporated in the bacterial cell wall or that have been disrupted from the bacterial cell wall by, for example, fluorescence microscopy and other methods, depending upon the label used.
- the methods also can include comparing the results of the putative agent with a known cell wail-acting agent or with a known cell wall-disrupting agent,
- compositions and methods described herein therefore find use in the study of bacterial cel l wall biosynthesis and in the discover ⁇ ' of bacterial cell wail-acting and/or cel l wall-disrupting agents.
- the FDAAs, CDAAs, FMPUs and/or FPGUs as described herein simultaneously are non-toxic and can be tunable to label sites of active PG biosynthesis, enabling fine spatiotemporal tracking of cell wall dynamics in phylogenetically and morphologically diverse bacteria.
- Furchtgott et al (201 1) Mol. Microbiol. 81 :340-353.
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Description
COMPOSITIONS FOR IN SITU LABELING OF BACTERIAL CELL WALLS WITH FLUOROPHORES AND METHODS OF USE THEREOF
CROSS-REFERENCE TO RELATED APPLICATIONS
[01] This application claims benefit of priority under 35 U.S.C. 119 to U.S. provisional patent application serial number 61/636,640, filed April 21 , 2012, and entitled
"COMPOSITIONS FOR COVALENTLY LABELING BACTERIAL CELL WALLS WITH FLUOROPHORES AND METHODS OF USE," and U.S. provisional patent application serial number 61/718,048, filed October 24, 2012, and entitled "COM POSITIONS FOR IN SITU LABELING OF BACTERIAL CELL WALLS WITH FLUOROPHORES AND METHODS OF USE THEREOF," the contents of both which are herein incorporated by reference in their entireties.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[02] This invention was made with government support under AI059327 awarded by the National Institutes of Health. The United States Government has certain rights in the invention.
FIELD OF TH E INVENTION
[03] The invention relates generally to microbiology, and more particularly to
compositions and methods for assessing cell wall synthesis in bacteria, for identifying bacteria, and for screening for cell wall-actiiig/-disrupting agents.
BACKGROUND
[04] Bacterial growth is controlled by the domain- specific peptidoglycan (PG) cell wall, a
rigid and essential structure composed of glycan strands cross-linked by D-amino acid (DAA)-coiitainiiig short peptides, whose biosynthesis machinery is a target for antibiotics.
[05] Despite the importance of PG, knowledge of its dynamics has been severely- hampered by lack of a strategy for direct imaging of sites of PG biosynthesis in live ceils, Significant limitations of current labeling methods, such as toxic effects and poor membrane permeability of the probes, have limited their applicability to only a small set of bacterial species. Moreover, these methods are labor-intensive and their sensitivity suffers from their indirect and multiple-step nature.
[06] Methods relying on fluorescentiy labeled antibiotics to study bacterial cell wall synthesis and to discover new antibiotics to which bacteria remain susceptible have had a profound impact on the field. The current methods, however, have at least two inherent limitations. First, antibiotic concentration needs to be carefully controlled to avoid damage to the cell. Second, because these agents bind to specific sites on cell surfaces, they only will appear at sites of active PG biosynthesis.
[07] For the foregoing reasons, there is a need for additional compositions and methods for assessing PG biosynthesis in bacteria and for discovering bacterial ceil wall-acting/- disrupting agents that can be used to treat infections caused by multidrug-resistant bacteria,
BRIEF SUMMARY
[08] In a first respect, a modified amino acid is disclosed that includes a D-amino acid covalently attached to a fluorescent label,
[09] In a second respect, a muramylpentapeptide precursor unit is disclosed that includes an N-acetyi muramic acid (NAM) moiety having a stem peptide of three to five amino acids. One or more of the amino acids in the stem peptide includes a modified amino acid that includes a D-amino acid covalently attached to a fluorescent label and optionally an additional modified amino acid. The additional modified amino acid includes a clickable D~
amino acid.
[01Θ] In a third respect, a peptidoglycan unit is disclosed that includes a
muramylpeniapeptide precursor unit as described above in the second respect thai is covalently linked to an N-acetyi glucosamine (NAG) moiety.
[Oil] In a fourth respect, a method of assessing bacterial ceil wall synthesis in real time is described. The method includes the step of providing live bacteria with a first amount of at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label, and optionally a second amount of at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient for bacterial cell wall synthesis. The bacteria covalently incorporate the at least one modified amino acid and optionally the at least one additional modified amino acid into a stem peptide of
peptidoglycan of the bacterial cell wail.
[012] In a fifth respect, a method of screening for a putative cell wall-acting agent is disclosed. The method includes the step of co-contacting bacteria with an effective amount of an agent and an amount of at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label, and optionally an amount at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient to permit ongoing peptidoglycan biosynthesis in a bacterial cell wall. The agent comprises a cell wall-acting agent if the agent interferes with ongoing peptidoglycan biosynthesis in the bacterial cell wail.
[013] In a sixth respect, a method of screening for a putative cell wall-disrupting agent is disclosed. The method includes the step contacting modified bacteria with an amount of an agent. The agent is a cel l wall -di srupting agent if the agent weakens integrity of
peptidoglycan in an existing bacterial cell wall. In this method, the modified bacteria have a modified cell wail containing modified peptidoglycan having at least one stem peptide
containing at least one modified amino acid comprising a D-amino acid cova!ently attached to a fluorescent label, and optionally at least one additional modified amino acid comprising a clickable D-amino acid,
[014] In a seventh respect, a method of identifying bacteria is disclosed. The method includes two steps. The first step includes contacting live bacteria with an amount of at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label, and optional ly an amount of at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient for ongoing bacterial cell wall synthesis. The bacteria covalently incorporate into peptidoglycan of a bacterial cell wall the at least one modified amino acid, and optionally the at least one additional modified amino acid. Each of the least one modified amino acid and optionally the at least one additional modified amino acid comprises a spectrally distinct fluorescent label. The second step includes visualizing the spectrally distinct fluorescent labels to determine an incorporation pattern of the at least one modified amino acid, and optional ly the at least one additional modified amino acid, wherein the incorporation pattern identifies the bacteria,
[015] In an eighth respect, a kit for incorporating labeled D-amino acids into live bacteria is disclosed. The kit includes at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label and a positive bacterial control. The kit can include an optional negative bacterial control. The positive bacterial control has at least one modified amino acid comprising a D-amino acid covalently attached to a fluorescent label incorporated into a stem peptide of peptidoglycan of the bacterial cell wall. The optional negative bacterial control, if included, does not have the modified amino acid comprising a D-amino acid co valently attached to a fluorescent label incorporated into a stem pepti de of peptidoglycan of the bacterial cell wall.
[016] These and other features, objects and advantages of the present invention will become
better understood from the description that follows. In the description, reference is made to the accompanying drawings, which form a part hereof and in which there is shown by way of illustration, not limitation, embodiments of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS [017] The features, objects and advantages other than those set forth above will become more readily apparent when consideration is given to the detailed description below. Such detailed description makes reference to the following drawings.
[018] FIG. 1 shows the three general stages of PG biosynthesis and general structures of the
NAM and NAG units of PG .
[019] FIG. 2 shows exemplary D-Ala-based FDA As. D-NBD and D-HCC (based on
(R)-diaminopropionic acid) emit in the green and blue regions, respectively.
[02Θ] FIG. 3 shows results of control experiments in which the cell walls of Agrobacterium tumefaciens (top row), Bacillus subtilis (middle row) and Escherichia coli (bottom row) were fluorescently labeled with fluorescent D-Ala (D-HCC) or fluorescent L-Ala (L-HCC). An exemplary structure for D-Ala (D-HCC) also is shown in the bottom row.
[021] FIG. 4 shows results of a pulse chase experiment with a fluorescent D-Ala in B.
subtilis (top row) or A. tumefaciens (bottom row).
[022] FIG. 5 shows results of a short pulse experiment with fluorescent D-Ala in B. subtilis.
[023] FIG. 6 shows results of a fluorescent D-Ala derivative in a dual-labeling format.
[024] FIG. 7 shows exemplary structures for FDAAs, such as HCC-OH-labeled 3-amino-D- Aia ( I I A O A ). NBD-Cl-labeled 3-amino-D-Ala (NADA), F-labeled D-Lys (FDL) and
T-labeled D-Lys (TDL), as wel l as exemplar}' stnictures for CDAAs, such as EDA and ADA.
[025] FIG. 8 shows that long labeling pulses with HADA uniformly label PG in live E. coli (left), B. subtilis (center) and A. tumefaciens (left). The FDAA fluorescence was retained in isolated sacculi, which also stained with a N AG-specific wheat germ agglutinin (WAG)
lectin conjugated to Alexa Fluor® 594 (red). Scale bars, 2 μηι.
[026] FIGS. 9A-D show FDAA incorporation into the stem peptide of the PG unit.
[027] FIG. 9 A shows a schematic representing the muramylpentapeptide precursor as incorporated into a nascent PG unit and a modified D-amino acid (FDAA).
[028] FIG. 9B shows HPLC detection of modified muropeptides in E. coli incubated with HAD A, HAL A and NAD A, or N ALA. Samples were monitored using a dual wavelength UV monitor set for general muropeptide detection and for FDAA-specific wavelengths. Peaks HEC-1 and NEC-1 correspond to the HAD A- or NADA-modified muropeptides in E. coli that were further characterized by electrospray ionization MS/MS (ESI-MS/MS).
[029] FIG. 9C shows percentage of FDAA incorporation into the total muropeptides varies among bacteria as revealed by HPLC analysis.
[03Θ] FIG. 9D showrs a schematic representing MS/MS analyses of FDAAs exclusively incorporated into the 4th position of muropeptides in E, coli and A. tumefaciens and the 5th position in B, subtilis.
[031] FIGS. IGA-F show FDAAs label diverse bacterial growth patterns. Arrows in the triple labeling panels indicate the sequence of labeling. White scale bars, 2 μηι, red scale bars, 1 μιη.
[032] FIG. 10A shows time-lapse microscopy of HADA-labeled E. coli and B. subtilis AdacA cells imaged during growth on LB agarose pads.
[033] FIG. lOB shows super-resolution microscopy of E. coli after short pulses with HAD A.
[034] FIG. IOC show super-resolution microscopy of A. tumefaciens after short pulses with HADA.
[035] FIG. 10D shows super-resolution microscopy of S. aureus after a short pulse with HADA. Auto fluorescence is shown in red.
[036] FIG. 10E shows triple labeling of A. tumefaciem with HADA (blue), EDA (clicked with red sulfo-Cy3-azide) and NAD A (green).
[037] FIG. 10F shows triple labeling of S. venezuelae with NAD A (green), TDL (red) and HADA (blue).
[038 j FIG. 11 shows that short pulses of HADA label distinct modes of growth in diverse bacteria. Strains were labeled for ~2%-8% of the doubling time: E. con (30 seconds), A. tumefaciens (2 minutes), B. subtilis AdacA (30 seconds), S. aureus (2 minutes), L. lactis (2 minutes), S. pneumoniae (4 minutes), C. crescentus (5 minutes), Synechocystis sp. PCC 6803 (1 hour), S. venezuelae (2 minutes), B. conglomeration (8 minutes), B. phytofirmans (20 minutes), V. Spinosum (10 minutes). Scale bars, 2 μηι.
[039] FIG. 12 shows a schematic for sequentially incorporating distinct FDAAs, such as NAD A, TDL and HADA, into newly synthesized PG in live bacteria.
[040] While the present invention is amenable to various modifications and alternative forms, exemplary embodiments thereof are shown by way of example in the drawmgs and are herein described in detail. It should be understood, however, that the description of exemplary embodiments is not intended to limit the invention to the particular forms disclosed, but on the contrary, the intention is to cover all modifications, equivalents and alternatives falling within the spirit and scope of the invention as defined by the embodiments above and the claims below. Reference should therefore be made to the embodiments and claims herein for interpreting the scope of the invention.
DETAILED DESCRIPTION
[041 [ The compositions and methods now will be described more fully hereinafter with reference to the accompanying drawings, in which some, but not all permutations and variations of embodiments of the invention are shown. Indeed, the invention may be
embodied in many different forms and should not be construed as limited to the embodiments set forth herein. These embodiments are provided in sufficient written detail to describe and enable one skilled in the art to make and use the invention, along with disclosure of the best mode for practicing the invention, as defined by the claims and equivalents thereof.
[042] Likewise, many modifications and other embodiments of the compositions and methods described herein will come to mind to one of skill in the art to which the invention pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the invention is not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
[043] Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of skill in the art to which the mvention pertains. Although any methods and materials similar to or equivalent to those described herein can be used in the practice or testing of the present invention, the preferred methods and materials are described herein.
[044] Moreover, reference to an element by the indefinite article "a" or "an" does not exclude the possibility that more than one element is present, unless the context clearly requires that there be one and only one element. The indefinite article "a" or "an" thus usually means "at least one,"
[045] As used herein, "about" means within a statistically meaningful range of a value or values such as a stated concentration, length, molecular weight, H, sequence identity, time frame, temperature or volume. Such a value or range can be within an order of magnitude, typically within 20%, more typically within 10%, and even more typically within 5% of a
given value or range. The allowable variation encompassed by "about" will depend upon the particular system under study, and can be readily appreciated by one of skill in the art.
Overview
[046] Previous efforts to label PG in live bacteria principally have relied upon cell wall- active antibiotics (e.g., vancomycin, ramoplanin) modified with fluorophores or cell wall precursors/substrates covalently modified with fluorescent reporter groups. The compositions and methods described herein, however, take advantage of mechanisms for incorporating labeled DAAs into the stem peptides displayed on a bacterial cell wall surface.
[047] The work described herein demonstrates how to make derivatized DAA having a suitable label, such as an appropriate fluorophore and how such derivatized compounds can be visualized in live cells by fluorescence microscopy following the incorporation of the derivatized compounds into PG and thus the ceil wall. In the range of physiologically relevant concentrations, the incorporated FDAAs do not appear to be toxic to bacteria. Unlike previous methods that employ covalently modified cell wall precursors, the methods described herein do not appear to adverse!)' affect cel l morphology. In addition, the methods described herein enable pulse-chase experiments that cannot be easily executed in the presence of fluoresceiitiy-modified cell wail active drugs. Because the disclosed derivatized compounds have low or minimal toxicity to live cells, they are ideal markers to evaluate and screen microbiostatic or microbiotoxic compounds that do adversely affect microorganism growth and viability, such as studies directed to development of novel antibiotics.
[048] Studies disclosed herein demonstrate that the compositions and methods are applicable to a wide array of Gram-positive and Gram-negative bacteria and provides significant utility for probing PG biosynthesis, cell wall morphogenesis and the response of the PG biosynthetic machinery to cell wall-active agents and/or cell wall-disrupting agents. The present disclosure therefore provides compositions and methods for studying bacterial
cell wall PG biosynthesis and for discovering bacterial cell wall-acting and/or cell wall- disrupting agents.
Compositions
[049] Fluorescent D- Amino Acids (FDAAs)
[050 j Compositions of the invention include labeled D-amino acids (DAAs), especially fluorescent D-amino acids (FDAAs). As used herein, "amino acid" or "amino acid residue" are used interchangeably to mean a molecule containing a first, or alpha, carbon attached to an amine group, a carboxylic acid group and a side-chain that is specific to each amino acid. A natural amino acid can include conventional elements such as carbon, hydrogen, oxygen, nitrogen and sulfur. An amino acid may be a naturally occumng amino acid or artificially- created unnaturally occurring amino acid. Preferably, the amino acid is naturally occurring, and, unless otherwise limited, may encompass known analogues/synthetics of natural amino acids that can function in a similar manner as naturally occurring amino acids. With the exception of glycine, the natural amino acids all contain at least one cbiral carbon atom. These amino acids therefore exist as pairs of stereoisomers (D- and L-isomers). Of particular interest herein are D-isomers or D-amino acids, particularly D-Ala, D-Asp, D-Cys, D-Glu and D-Lys, which are frequently found in the stem peptide of the PG unit.
[051] It is well known in the art that amino acids within the same conservative group typically can substitute for one another without substantial!)' affecting the function of a protein. For the purpose of the present disclosure, such conservative groups are set forth in Table 1 and are based preferably on shared properties, as readily appreciated to those skilled in the art. See also, Alberts et ai, "Small molecules, energy, and biosynthesis" 56-57 In: Molecular Biology of the Cell (Garland Publishing Inc. 3'd ed. 1994).
[052] Table I . Amino Acids and Their Conservative Substitutions.
Preferred
S de Chain Side Chain Hydropathy Conservative
Residue Polarity pH Index Substitutions
Ala (A) Non-polar Neutral 1.8 Ser
Arg (R) Polar Basic (strongly) -4.5 Lys, Gin
Asn (N) Polar Neutral -3.5 Gin, His
Asp C D) Polar Acidic -3.5 Glu
Cys (C) Non-polar Neutral 2.5 Ser
Gin (Q) Polar Neutral -3.5 Asn, Lys
Glu (E) Polar Acidic -3.5 Asp
Gly (G) Non-polar Neutral -0.4 Pro
His (H) Polar Basic (weakly) -J .Z Asn, Gin
He (I) Non-polar Neutral 4.5 Leu, Val
Leu (I.) Non-polar Neutral 3.8 He, Val
Lys (K) Polar Basic -3.9 Arg, Gin
Met (M ) Non-polar Neutral 1.9 Leu, He
Phe (F) Non-polar Neutral 2.8 Met, Leu, Tyr
Pro (P) Non-polar Neutral -1.6 Gly
Ser (S) Polar Neutral -0.8 Thr
Thr (T) Polar Neutral -0.7 Ser
Trp (W) Non-polar Neutral -0.9 Tyr
Tyr (Y) Polar Neutral -1.3 Trp, Phe
Val (V) Non-polar Neutral 4.2 He, Leu
[053] The following six groups each contain amino acids that are typical but not necessarily exclusive conservative substitutions for one another: I) Alanine (A), Serine (S) and
Threonine (T); 2) Aspartic acid (D) and Glutamic acid (E); 3) Asparagine (N) and Glutamine (Q); 4) Argi ine (R) and Lysine ( ); 5) Isoleucine (I), Leucine (L), Methionine (M), and Valine (V); and 6) Phenylalanine (F), Tyrosine (Y) and Tryptophan (W). [054] Examples of suitable labels for the DAAs include, but are not limited to, radiolabels, biotin (which may be detected by avidin or streptavidin conjugated to peroxidase), ianthanides, alkaline phosphatase and fluorescent labels (e.g., coumarins, fluoresceins, cyanines, bodipy dyes, green fluorescent protein, quantum dots rhodamine, especially the Alexa Fluor® fami ly of fluorescent dyes avai lable from Invitrogen/Molecular Probes). Other
labels amenable for use in the modified D-amino acids disclosed herein include metals and isotopic labels.
[055] Labeling of DAAs can be carried out by covalently attaching the label to a free amine group, such as free amine groups present on the side-chain that is specific to each amino acid. if the side chain lacks a free amine group, one of skill in the art understands how to add such groups, as is the case of adding such a group to D-Ala to obtain 3-amino-D-Ala. Some labels can be detected by using a labeled counter suitable for the detection of the label in question, in the Examples below, 7-hydroxycoumarin 3-carboxylic acid (HCC-OH), 7- mtrobenzofurazan (NBD), 4-chloro-7-mtrobenzofurazan (NBD-C1), fluorescein (F) and carboxytetrame ylrhodamine (T) were covalently attached to DAAs as labels.
1056] Other coupling chemistries are known in the art that can be used for introducing labels into amino acids having functional groups other than an amine. Such amino acids include a functional alcohol group (e.g., serine and tyrosine), thiol group (e.g., cysteine), or carbonyl. or carboxylase group (e.g., aspartate and glutaraate). Such functional groups can be derivatized or reacted with suitably modified, activated coupling agents having labels of the types disclosed herein.
[057] An example of a FDAA includes HAD A, which is a HCC-OH-labeled 3-amino-D- Ala. Another example of a FDAA includes NAD A, which is a NBD-Cl-labeled 3-amino-D- Ala. Another example includes FDL, which is a F-labeled D-Lys. Another example is TDL, which is a T-labeled D-Lys. Another example includes HDL, which is a HCC-OH-labeled D- Lys. Another example includes NDL, which is a NBD-Cl-labeled D-Lys. Another example includes FADA, which is a F-labeled 3-amino-D-Ala. Another example includes TADA, which is a T-labeled 3-amino-D-Ala. Other FDAAs can include a D-Glu having its side chain modified to include a free amine group linked to any of the fluorescent labels above (e.g., HADG, NADG, FADG and TADG).
[058] See, e.g., FIG. 7, for other examples of preferred labels and modified FDAAs.
[059] Methods of fluorescently labeling and detecting amino acids are well known in the art. See, Braun & Dittrich (2010) Beiistein J. Org. Chem. 6:69; Katritzky & Narindoshvili (2009) Org. Biomol. Chem. 7:627-634; Merkel et ai. (2010) Chembiochem. 1 1 :305-314; Cava et al, (2011) Ceil Mo!. Life Sci. 68:817-831; Lam et ai. (2009) Science 325: 1552-1555; Cava et al. (2011) EMBO J. 30:3442-3453; and Lupoli et al (2011) J. Am. Chem. Soc.
133: 10748-10751.
[060] Clickable D-Amino Acids (CDAA '$)
[061] Compositions of the invention also include clickable D-amino acids (CDAAs). The CDAAs have a DAA backbone that includes, for example, an alkyne or azide functional group present on the side-chain that is specific to each amino acid that can be captured in situ by a labeled, detecting agent carrying a conjugate functional group via click-chemistry. Functional groups in a DAA backbone that can be targeted by the labeled, detecting agent include, but are not limited to, primary amines, carboxyis, sulfhydryls, carbohydrates and carboxylic acids.
[062] One of skill in the art is familiar with "click" chemistry, which utilizes chemical cross-linking agents to add functional groups to molecules. See, Kolb et al. (2001) Angew. Chem. Int. Ed. 40:2004-2021 ; and Evans (2007) Aust. i. Chem. 60:384-395.
[063] Cross-linking and enrichment strategies for separating a cross-linking reaction from enrichment steps have been developed based on bioorthogonal chemistries including the azide-alkyne "click" cycloaddition and Staudinger ligation using alkyne- or azide-labeled cross-linking agents (e.g., fluorescent labels). Azides and alkynes are not naturally found in proteins, peptides, nucleic acids or glycans; therefore, these moieties can be engineered onto the DAAs and labeled, detecting agent to generate azide-containing molecules and alkyne- containing molecules that are reactive with one another. As such, the orthogonality of azides
and alkynes to biological processes (e.g., competing reactions) is a significant advantage of these methods. Moreover, "click" cycloadditions can be performed under aqueous conditions, allowing enrichment by conjugation of an appropriate affinity or labeling tag. See, general!}', Rostovtsev et al. (2002) Angew. { 'hem. Int. Ed. 41 :2596-2599; Toraoe et al. (2002) J. Org. Chem. 67:3057-3064; Baskin et al. (2007) Proc. Natl. Acad. Sci. USA 104: 16793- 16797; Saxon et al. (2000) Science 287:2007-2010; Chowdhury et al. (2009) Anal. Chem. 81 :5524- 5532; Tmka & Burlingame (2010) Mol. Ceil. Proteomics 9:2306-2317; Nessen et al. (2009) J. Proteome Res. 8:3702-371 1; Vellucci et al. (2010) J. Am. Soc. Mass Spectrom. 21 :1432- 1445; and Jewett & Bertozzi (2010) Chem. Soc. Rev. 39: 1272-1279. See also, Int'i Patent Application Publication No. WO 2012/006603. As used herein, "click chemistry" and "clickable" therefore mean a reaction between azide-containing molecules and alkyne- containing molecules to yield a covalent product-l ,5-disubstituted 1,2,3-triazole. The reaction can be a copper(I)-catalyzed alkyne azide cycloaddition (CuAAC) or, in cases where copper toxicity may be an issue, can be a copper(I)-free-catalyzed alkyne azide
cycloaddition.
[064] Examples of functional groups for use on azide-containing molecuies and alkyne- containing molecules include, but are not limited to, hexynyl groups, pentynyi groups, heptynyl groups, azido-propyl groups, azido-butyl groups and azido-pentyl groups. When the functional group of alkyne-containing molecules (e.g., DAAs) is an alkynyl group (e.g., hexynyl, pentynyi or heptynyl), the functional group of azide-containing molecules (e.g., labeled, detecting agents) has the corresponding clickable azido group. Likewise, when the functional group of azide-containing molecules (e.g., DAAs) is an azide group (e.g., azido- propyl, azido-butyl, or azido-pentyl), the functional group of alkyne-containing molecules (e.g., labeled, detecting agents) has the correspondmg clickable alkynyl group.
[065] As such, various labeling designs for detecting agents are known including, but not
limited to, biotinylated agents, isotope-coded agents, fluorophore-labeled agents, mass-tag- labeled agents and chromophore-labeied agents. It is also known that the addition of functional groups can cause the cross-linker to become very bulky or less cell-permeable, and thus not very effective for in vivo and/or in situ cross-linking. To reduce the total size of the cross-linker, separation of the cross-linking step from conjugation of affinity tags can be one effective strategy. See, Trester-Zedlitz et al. (2003) J. Am. Chem. Soc. 125:2416-2425; Tang et al. (2005) Anal. Chem. 77:31 1; Kang et al. (2009) Rapid Common. Mass Spectrom.
23: 1719-1726; Chu et al. (2006) J. Am. Chem. Soc. 128:10362-10636; Mulier et al, (2001) Anal. Chem. 73: 1927-1934; Collins et al. (2003) Bioorg. Med. Chem. Lett. 13:4023-4026; Petrotchenko et al. (2005) Mol. Cell. Proteomics 4: 1167-1179; Wine et al. (2002) Anal. Chem. 74: 1939-1945; Sinz et al. (2001) Biochemistry 40:7903-7913; and Sinz & Wang (2004) Anal. Biochem. 331 :27-32.
[066] In some instances, the detecting agents, whether having an aikynyl or azido functional group, can be fluorophore-labeled. Examples of fluorophores include, but are not limited to, Alexa Fluor® dyes, BOD1PY® dyes, fluorescein, Oregon Green® 488 and Oregon Green® 514 dyes, Rhodamine Green and Rhodamine Green-X dyes, eosin, tetramethylrhodamine, Lissamine Rhodamine B and Rhodamine Red-X dyes, X- Rhodamine, Texas Red® and Texas Red®~X dyes, naphthofluorescein, Carboxyrhodamme 6G, QSY dyes fluorescence quenchers, nonfluorescent malachite green, coumarin derivatives, Pacific Orange dye, cascade blue and other pyrene derivatives, cascade yellow and other pyridyloxazoie derivatives, naphthalenes (e.g., dansyi chloride), dapoxyl dye, bimaiie, 1 -dimethylamine-N(2- azido-ethyl) naphthalene-5-sulfonamide, 6-(6-amino-2-(2-azidoethyl)l ,3-dioxo-l H- benzo(de)-2(3 H)isoquinoline, 6-(6-amino-2-(2-propinyl)l,3-dioxo-lH-benzo(de)- 2(3 H)isoquino line, 8-(4-azidoethyloxyphenyi)-2,6-diethyl- 1 ,3 ,5 ,7-tetramethyl-4,4-difluoro-4- bora-3a,4a-diaza-s-indacene, 8-(4-propynyioxyphenyl)-2,6-diethyi- 1,3,5, 7-tetramethyl-4,4-
difluoro-4-bora-3a,4a-diaza-s-indacene, l-(3-azido-propoxy)-7-methylamino-phenoxazin-3- one, l-(2-propynyl)-7-methylamino-phenoxazm-3-one, N-(5-(3-azidopropylamino)-9H- benzo(a)- phenoxa2in-9-yIidene)-N-methyl-methanaminium chloride, N~(5-(3-propynyi- amino)-9H-benzo(a)-phenoxazin-9-y] ene)-N-methy[-methanaminiitrn chloride, (9-(3-azido- propoxy)-7-piperidin-l-yl-phenoxazin-3-ylidene)-dimethyl-ammonium perchlorate. See also, Kele et al. (2009) Org. Biomol. Chem. 7:3486-3490; Nagy et al. (2010) Chem. Asian J. 5:773-777; Filnov et al. (2011) Nat. Biotechnol. 29:757-761 ; Subach et al. (2011) Nature Methods 8:771-777; Yang et al. (2011) J. Am. Chem. Soc. 133:9964- 9967; Zin (201 1) Nature Methods 8:726-728; and "Fluorophores and their amine- reactive derivatives," Chapter 1 and "Click Chemistry and other functional group modifications," Chapter 3 in The Molecular Probes® Handbook (available on the World Wide Web at
invitrogen.com/site/us/eMiome/Ueferences/Molecular-Probes-The- Handbook html). A variety of clickable fluorophores are commercially available from, for example Sigma Aldrich, Active Motif Chromeon and Invifrogen/Molecular Probes. In the examples below, CD A As were clicked with red sulfo-Cy3-azide.
[067 j An example of a CDAA includes EDA. Another example of a CDAA includes ADA. See, e.g., FIG. 7.
[068] Fluorescent Muram lpentapeptide Precursor Units (FMPUs)
[069] Compositions of the invention also include fluorescent muramylpentapeptide precursor units (FMPUs) having an NAM moiety with a peptide chain of three to five amino acids in which one or more of the amino acids in the stem peptide are FDAAs and/or CDAAs as described herein. See, e.g., FIG. 9 A. and 9D.
[070 [ Fluorescent Peptidogly can Units (FPGUs)
[071 j Compositions of the invention also include fluorescent peptidog!ycan units (FPGUs). The FPGUs have a FMPU as described herein linked to a NAG moiety. See, e.g., FIG. 9A
and 9D.
[072] Bacterial Cells Having Fluorescent D-Amino Acids
[073] Compositions of the invention also include live bacteria having FDAAs, CDAAs, FMPUs and/or FPGUs as described herein incorporated into PG in a ceil wall.
[074] While Gram-positive bacteria tend to have a thicker PG layer, it is intended that the bacteria can be Gram-positive bacteria or Gram-negative bacteria. Examples of suitable Gram -positive bacteria include, but are not limited to, Actinomyces spp., Bacillus spp., Brachybacteriiim spp., Clostridium spp., Cory neb acteriuin spp., Diplococcus spp.,
Enterococcus spp., Lactococcus spp., Listeria spp., Nocardia spp., Propionibacterium spp., Staphylococcus spp., Streptococcus spp. Streptomyces spp. In the examples below, live B. subtilis, B. conglomeratum, L. lactis, S. aureus, S. pneumoniae, S. venezuelae, were grown in the presence of FDAAs and/or CDAAs.
[075] Examples of suitable Gram-negative bacteria include, but are not limited to,
Acinetobacter spp., Agrobacterium spp., Bordetella spp., Borrelia spp., Brucella spp., Burkholderia spp., Campylobacter spp., Caulohacter spp,, Chlamydia spp., Enterobacter spp., Escherichia spp., Helicobacter spp., Hemophilus spp., Klebsiella spp., Legionella spp., Neisseria spp., Proteus spp., Pseudomonas spp, Salmonella spp., Shigella spp., Synechocystis spp., Verrucomicrobia spp., Vibrio spp. and Yersina spp. In the examples below, live /4. tumefaciens, B, phytofirmans, C. crescentus, E. coli, Synechocystis sp. P 6803 and V. spinosum were grown in the presence of FDAAs and/or CDAAs.
Kits
[076] Compositions of the invention also include .kits having one or more FDAA, CDAA, FMPU and/or FPGU as described herein and optionally one or more labeled detecting agents (if CDAAs are included in the kits) for use in in situ labeling/probing of PG during biosynthesis, as well as for screening for bacterial cell wail-acting and/or cell wall-disrupting
agents. The kits also can include additional reagents such as unlabeled DAAs, unlabeled L-amino acids (LAAs) and/or labeled LAAs. The kits also can include positive and/or negative bacterial controls, where the controls have unlabeled DAAs, CDAAs and LAAs or labeled DAAs and LAAs incorporated into PG in a cell wall.
[077] As used herein, "kit" means any manufacture (e.g., a package or a container) having, for example, at least one FDAA and/or CDAA and a positive and/or negative control. The kit may be promoted, distributed, or sold as a unit for performing any of the methods described herein.
[078] Though not necessarily required, kits preferably include instructions, procedures and/or directions that guide users or ones skilled in the art how to use the agents, reagents, and/or other components for their intended purpose. For example, kits can include a package insert describing procedures for carrying out any one of the methods described herein or analytical information for correlating the level of expression measured in live bacteria.
Likewise, the package insert c an include representative images of positive or negative samples writh low or high levels of incorporation as compared to an appropriate control . The kits can be promoted, distributed or sold as units for performing the methods described below.
[079] The kits also can include a receptacle or other means for holding a sample to be evaluated for FDAA and/or CDAA incorporation, and means for determining the presence and/or quantity of FDAA and/or CDAA incorporation in live bacteria.
[080] The kits also can include at least one buffer. Examples of buffers include, but are not limited to, cell isolation buffers, fixation buffers, lysis buffers, permeabilization buffers, soni.cati.on buffers, separation buffers, stabilization buffers and wash buffers. Though not limited, buffers include strong acids in combination with weak bases, strong bases in combination with weak acids, a combination of weak acids and bases, or even a small or low
concentration (e.g., within the range from about 0.1 mM to about 10 mM) of an acid or base, in the absence of a conventional conjugate base or acid, respectively; typically, however another component of the mixture may provide such conjugate acid or base function.
Examples of acids and bases, both in terms of ionization/dissoeiation strength (i.e., strong or weak) and type (i.e., inorganic or organic), are well known in the art.
[081] Any or all of the kit components can be provided within containers that protect them from the external environment, such as in sealed containers.
Methods
[082] Methods include assessing bacterial cell wall biosynthesis (and PG recycling) in real time. As shown in FIG. 1, bacterial cell wall biosynthesis typically involves three steps: translocation, transglycosylation and transpeptidation. In the translocation and
transglycosylation steps, carbohydrate backbone is formed by polymerization via glycosidic bond formation between the C(4)-hydroxyl of a membrane -bound lipid II intermediate and the anomeric center of a membrane-bound glycan strand. Bacterial transpeptidases mediate crosslinking of the resulting elongated glycan strand. The cross-link is installed via attack of an amino group, either from the Lys residue itself or from a short peptide chain appended to the Lys residue, onto the penultimate D-Ala residue of an adjacent pentapeptide strand and results in cleavage of the terminal D-Ala residue. This rigid macromolecular structure, essential to both Gram-negative and Gram-positive bacteria, enables bacterial cells to resist lysis and, subsequently, cell death resulting from high internal osmotic pressure.
[083] These methods typically begin by providing live Gram-positive or Gram-negative bacteria with FDAAs and/or CDAAs as described herein under conditions where the bacteria can covalently incorporate the FDAAs and/or CDAAs into PG of a bacterial cell wall. The FDAAs and/or CDAAs can be provided to organisms preferably within a given range of concentrations, for example, from about 0.1 μΜ to about 1 mM, as well as in any whole
integer or fractional integer concentration thereof within this preferred range. The FDAAs and/or CDAAs can also be provided to organisms at preferred concentrations, for example, at about 0.1 μ.Μ and about 1 mM. Other ranges are also possible besides this preferred range and fall within the scope of this disclosure, the specific identification of which depends upon the particular biological oraganism or system under study, as well as upon the nature of the FDAAs and/or CDAAs used, their physiochemieal properties and uptake by the particular biological organism or system under study, as well as the experimental set-up and purpose of the study at hand, as one of skill in the art would understand.
[084] Determination of the optimal concentration (or amount) of FDAAs and/or CDAAs and the preferred ranges thereof for a particular organism is the subject of routine
experimentation well within the purview of those skil led in the art. A typical route to ascertaining the optimal concentrations and preferred ranges of the FDAAs and/or CDAAs described herein is to perform a dose response experiment, wherein the parallel populations of a given organism are contacted with different eoncen cations (or amounts) of a given FDAA and/or CDAA, and the extent of incorporation of the eompound(s) is assessed by biochemical assay (e.g., extent of compound labeling in PG fractions) and/or by visualization methods (e.g., fluorescence microscopy). Other approaches to selecting the optimal concentration (of amount) of FDAAs and/or CDAAs and the preferred ranges thereof for a particular organism are viable as well, as one skilled in the art would readily appreciate based upon this disclosure.
[085] The methods also can include detecting the FD AAs and/or CDAAs in the bacterial cell wall to verify that they have been incorporated. The FDAAs and/or CDAAs (after being clicked) can be detected via fluorescence microscopy and other methods, depending upon the type of label or reporter used.
Screening Methodologies
[086] The cell wall biosynthetic pathway is unique to bacterial cells; therefore, agents that inhibit steps within this pathway are anticipated to show selective toxicity toward bacterial cells. As such, methods of the invention also can include screening for putative cell wall- acting or cell wall-disrupting agents. As used herein, "cell wall-acting" means an ability of an agent to interfere with PG biosynthesis in a bacterial cell wall, especially at the
transglycosylation step, as this step takes place on the outer leaflet of the cell membrane so cellular penetration is not a prerequisite for the agent to manifest its biological activity. As used herein, "cell wall-disrupting" means an ability of an agent to disrupt or weaken the integrity of PG in an existing bacterial ceil wall,
[087] The methods can begin by contacting bacteria with a putative cell wall-acting agent or putative cell wall-disrupting agent, where the agent is cell wall-acting if the agent interferes with ongoing peptidoglycan biosynthesis in a bacterial cell wail or is ceil wall-disrupting if the agent weakens integrity of peptidoglycan in an existing bacterial cell wall. When screening for putative cell wall-acting agents, the bacteria can be co-contacted with FDAAs and/or CDAAs as described herein simultaneously with the putative agent. When screening for putative cell wail-disrupting agents, the bacteria can have FDAAs and/or CDAAs as described herein covalently incorporated into PG of the cell wail prior to being contacted with the putative agent.
1088] The methods also can include detecting whether the FDAAs and/or CDAAs have been incorporated in the bacterial cell wall or whether the FDAAs and/or CDAAs remain in the bacterial cell wall. As noted above, the FDAAs and/or CDAAs (after being clicked) can be detected via fluorescence microscopy and other methods, depending upon the type of label or reporter used. The pattern and/or location of FDAAs and/or CDAAs incorporation can be used to identify the bacteria (see, e.g., FIGS. 10-12).
[089] The methods also can include comparing the results from the putative cell wall-acting
agent or ceil wall-disrupting agent with a known ceil wall-acting agent or known cell wail- disrupting agent.
[090] The compounds of the present disclosure have utility for identifying bacteria. As demonstrated in the Examples set forth herein, certain bacteria! species display unique specificity for incorporating certain D-amino acids in PG and the bacteria cell wail. Thus, the use of the disclosed modified D-amino acids of the present disclosure enable identification of bacterial species by virtue of the pattern of labeling observed in the bacteria as a result of incorporation of the modified D-amino acids into PG of the bacterial ceil wall .
EXAMPLES
[091] The invention will be more fully understood upon consideration of the following non- limiting examples, which are offered for purposes of illustration, not limitation.
Example 1.
[092] Control experiments were carried out in A. tumefaciens, B. subtilis and E. coli with fluorescent D-Ala (D-HCC) and fluorescent L-Ala (L-HCC). For example, experiments in A. tumefaciens revealed that only D-HCC was incorporated into the cell wall. This observation was true for all strains tested. Likewise, experiments with B. subtilis revealed predominant labeling at the septum, a result consistent with this being the site of active cell wall synthesis. Subsequent isolation of peptidoglycan from these cells also revealed that isolated sacculi retained the fluorescent label (FIG. 3).
[093] In addition, experiments with a B. subtilis acA mutant (DacA is a
D,D-carboxypeptidase that cleaves the termmal D-Aia from the peptide stem) resulted in uniform labeling of the ceil wall, which suggested the dominant mode of labeling in B.
subtilis is at the terminal posi tion of the peptide stem.
[094] A series of pulse-chase experiments were performed in which exponentially growing ceils were diluted and treated with one of the D-Ala probes (250 μΜ - 500 μΜ), The cells
were incubated until saturation, washed, and placed on LB-containing agar pads and imaged at 5 -minute intervals for 12-18 hours (FIG. 4).
[095] An experiment in B. subtilis revealed that fluorescence persisted at the cell poles, an observation that is consistent with the notion that there is not active cell wall synthesis taking place in these regions (FIG. 4). Interestingly, the labeling pattern observed with A.
tumefaciens provides supporting evidence for a mode of growth that involves budding as no signal dilution from the mother cell is observed as recently shown.
[096] More significantly, short exposures to FDAA derivatives have proven to be optimal for imaging the sites of active cell wall biosynthesis. For example, when a culture of exponentially growing cells is contacted wit either D-NBD or D-HCC, and the cells were pulsed for 2%-8% of their usual generation time and immediately fixed, sites of active synthesis were clearly visible in evolutio arily distinct bacteria such as E. coli, B. subtilis, A. tumefaciens, L. lactis, M. conglomeratus, C. crescentus and S. aureus. Significantly, with experiments conducted in B. subtilis, these short, pulses result in a staining pattern that appears to be consistent with the helical pattern that has been observed with fluorescently modified vancomycin/ramopianin (FIG. 5).
[097] Finally, experiments were performed with the labeled D-Ala derivative in a dual- labeling format. For example, A. tumefaciens cells were incubated for a period of 4 minutes in 500 μΜ D-NBD, followed by washing and incubation for 4 minutes in 500 μΜ D-HCC. The excess dye was removed and the cells were pelleted and fixed. The fluorescence micrographs reveal distinct patterns of growth, in terms of polar growt and septal synthesis, based on the age of the daughter cell (FIG. 6).
Example 2.
[098] Methods
[099] Synthesis of Fluorescent D-Amino Amino Acids (FDAAs)
[0100] HADA/HALA: To a flame-dried flask, 7-hydroxycoumarin-3-carboxylic acid (HCC) was added in anhydrous DMF (14,5 mL, 0.1 M) under an atmosphere of argon.
Carbonyldiimidazole (236 mg, 1.455 mmoi) was added in one portion and stirred at room temperature (RT) for 2 hours.
[0101] Boc-D-2,3-diaminopropionic acid (for HAD A) or Boc-L-2,3-diaminopropionic acid (for HALA) (297 mg, 1.455 mmol) was added in one portion and the reaction mixture was allowed to stir at RT overnight (17 hours). The majority of the solvent was removed in vacuo, and the product was diluted with EtOAc (100 ml) and washed with 1 N HCl (50 ml) and water (100 ml). The water layers were combined and back-extracted with EtOAc (50 ml) to prevent loss of product due to an emulsion. The organic layers were combined, washed with brine (50 ml), dried over Na2SQ4, filtered, and the solvent was removed in vacuo. Without further purification the crude product was treated with trifluoroacetic acid/dichioromethane (50:50, 10 ml) for 30 minutes at RT, and the solvent was removed in vacuo. The product was purified via reverse-phase HPLC with 10%- 90% MeCN H20. The pure fractions were concentrated in vacuo, and the product was redissoived in 1 N HCl/MeCN and lyophilized to yield the desired product as a pale yellow solid (297 mg, 62% for HAD A and 277 mg, 58% for HALA). [a]20 D = -21.8° (c 2.2, DMSO- 6); HRMS-ESI-TOF m/z calc'd for Ci3Hf 206N2 ( { Vf H 1 ): 293.0774, Found 293.0774; HPLC: tR = 5.96 min (10-90% MeC\ I O over 10 minutes); 'H NMR (400 MHz, DMSO- 6) 5 = 2.46 (s, H I ). 3.69-3.77 (m, 1 H), 3.79-3.87 (m, 1H), 4.07 (t, J = 5.6 Hz, 1H), 6.85 (d, J = 2.0 Hz, IH), 6.89 (dd, J = 2.0, 8.4 Hz, IH), 7.89 (d, J = 8.8 Hz, IH), 8.43 (br s, 3H), 8.76 (s, IH), 8.86 (t, J = 6.2 Hz, IH), 11.34 (br s, IH); 13C NMR (100 MHz, D\1SO-</6): δ = 52.1, 102.3, 1 1 1 .3, 1 13.5, 115.0, 132.5, 148.8, 156.8, 161.2, 163.1, 164.6, 169.7; the signal for one carbon was overlapping with the solvent peak.
[0102] NADA/NALA: Boc-D-2,3-diaminopropionic acid (for NAD A) or Boc-L-2,3- diaminopropiomc acid (for NALA) (100 mg, 0.49 mmol) and sodium bicarbonate (123 mg,
1.47 mmol) were dissolved in water (1.8 ml) and heated to 55°C in water bath. A solution of 4-chloro-7-mtrobenzofurazan (NBD, 108 mg, 0.539 mmol) in methanol (8.5 ml) was added dropwise over 10 minutes. Care was taken at all times to avoid excessive exposure to light during the reaction and workup. The reaction was allowed to stir at 55°C for I hour. The solvent was removed in vacuo and acidified with 1 N HCi. The aqueous mixture was extracted with dichioromethane (50 ml per extraction x 3 extractions) and the organic extracts were washed with brine (50 ml), dried over Na2S04, filtered, and the solvent was removed in vacuo. Without further purification the crude product was treated with 4 N HCl/dioxane (10 ml) for 1 hour at RT, and the solvent was removed in vacuo. The product was purified via reverse-phase HPLC with 20%-90% MeCN/'H20. The pure fractions were concentrated in vacuo, and the product was redissolved in 1 N HCl/MeCN and Iyophiiized to yield the desired product as a bright orange solid (105 mg, 71 % for both NAD A and NALA). [a]20D = -32° (c 1.1, DMSO-i 6) HRMS-ESI-TOF m/z calc'd for ( \;l l.,0?V ([M+H]+):
268.0682, Found 268.0680; HPLC: tR = 5.02 minutes (20-90% MeC\ I O over 10 minutes), ' l l MR (400 MHz, DMSO-i 6): δ - 4.06 (m, 2H), 4.29 (m, I H), 6.61 (d, J = 8.0 Hz, IK), 8.56 (d, J = 8.0 Hz, IH), 8.66 (br s, 3H), 9.32 (br s, IK); 13C NMR (100 MHz, DMSO-i/6): δ = 43.4, 51.5, 100.5, 122.5, 138.1, 144.4, 144.9, 145.2, 169.2.
01Θ3] FDL: To a flame dried flask was added N -Boc-D-Lys-OH (19.3 mg, 0.078 mmol) and fluorescein isothiocyanate (25 mg, 0.065 mmol ) in dry DMF (0.65 ml). The reaction was stirred under argon at room temperature for 4 hours. The solvent was removed in vacuo. The residue was redissolved in ethyl acetate (10 ml), washed with 1 N HCI (10 ml) and brine (10 ml), and dried over anhydrous sodium sulfate. The solvent was again removed in vacuo, and the crude product was treated with trifluoroacetic acid/'dichloromethane (1 : 1) for 0.5 hours. The acid was removed in vacuo, and the product was purified by reverse phase HPLC with 30%-45% MeCN/L O. The pure fractions were Iyophiiized to yield the product as a dark
yellow solid (25.0 mg, 72%). [a] D = -7.1° (c 0.72, MeOEW4); HMRS-ESI-TOF m/z calc'd for ( .-H v.X .-O- S ([M+H]+): 536.1492, Found 536.1470; HPLC: tR = 5.08 min (30%-45% MeCN/H20 over 10 minutes); Ή NMR (400 MHz, MeOD-i/4): δ = 1 .50-1 .63 (m, 21 1 ), 1.78 (quintet, J = 7.0 Hz, 2H), 1.90-1.99 (m, IK), 2.00-2.10 (m, IK), 3.66 (br s, 2K), 4.00 (t, J = 6.3 Hz, 1H), 6.59 (dd, J = 8.8 Hz, 21 1 ). 6.73 (s, 2H), 6.74 (d, J = 8.90 Hz, 2H), 7.18 (d, J = 8.2 Hz, i l l ). 7.76 (d, J = 8.2 Hz, I I I ). 8.17 (s, I I I ). 33C NMR (100 MHz, MeOD-</4): 6 = 23.3, 29.5, 31.3, 45.0, 53.9, 103.5, 1 1 1.9, 1 14.1, 120.5, 126.1, 129.2, 130.5, 131.8, 142.5, 154.6, 162.1, 171.0, 171 .9, 182.9.
[0104] TDL: To a flame dried flask was added a-Boc-D-Lys-OH (3.3 mg, 0.0134 mmol), 5 -(and 6-) carboxytetramethylrhodamine succinimidyl ester (5 mg, 0.0095 mmol), and diisopropylethylamine (2.5 μΐ, 0.0143 mmol) in dry DMF (0.2 ml). The reaction was stirred under argon at room temperature overnight. The solvent was removed in vacuo, and the crude mixture was treated with trifluoroacetic acid/dichloromethane (1 : 1) for 0.5 hours. The reaction was dried in vacuo, and purified by reverse-phase HPLC with 20%-40%
MeCN/H20. The pure fractions were lyophilized to yield the product as a deep red solid (4.6 mg, 61 %). [ ]20D = -210° (c 0.20, Me()H-i/4); HRMS-ESI-TOF m/z calc'd for C, ,Ι Ι Ά, &Μ+ΚΫ): 599.2557, Found 599.2559; HPLC: tR = 7.86 and 9.06 minutes (2 isomers isolated results from mixed isomer starting material) (20%- 40% MeCN/H20 over 10 minutes); Ή
MeOD-<: 4): δ = 1.25-1.35 (m, 2H), 1.46-1.62 (m, 2H), L68 (quintet, J Hz, 2H), 1 .75-2.05 (m, 21 ! }. 3.41 (t, J = 7 Hz, 1 H), 3.92 (t, J = Hz, H i ). 7.01 id. J = 2 Hz,
2H), 7.05 (dd, J = 2.0 Hz, 9.4 Hz, 2H), 7.13 (d, J = 9.4 Hz, 2H), 7.81 (d, J = 1.5 Hz, 1H), 8.19 (dd, J = 1.5 Hz, 8.6 Hz, 1H), 8.39 (d, J = 8.6 Hz, 1H).
[0105] Spectra! Characteristics ofFDAAs
[0106] Excitation and emission spectra of FDAAs (500 μΜ in 100 mM Tris pH 7.0) were determined in black 96-well polystyrene plates (Corning) using top-read function of a Spectra
Max M2 plate reader. The excitation and emission spectra were measured in separate runs within a range of 200 ran and with increments of 1 nm.
[0107] Click Chemistry
[0108] EDA and ELA, and Sulfo~Cy3-Azide were gifts from Boaopharma and Lumiprobe, respectively. AZA and "clickable" Alexa 488 Fluors were purchased from Iris Biotech GmbH and Invitrogen, respectively. The Cu(I) catalyzed click chemistry was performed using the chemicals supplied by Invitrogen following their standard protocol once the cells had been fixed with EtOH (70% v/v) and permeabilized with methanol (100% v/v).
[0109] Growth Conditions
[0110] Strain characteristics and growth conditions are described in Table 2.
[0111] Table 2: Strains, their predicted PG chemotypes and conditions for growth and labeling.
Key: IUB = Indiana University Bloomington CU = Cornell University MU = McMaster University UCLA = University of California, Los Angeles LIW = University of Wyoming * Short pulse concentrations. By default, a normalized 1% (v/v) DMSO concentration was used for al l labeling experiments.
[0112] For any experiment involving FDAAs and/or CDAAs, DMSO was added to the growth media to a final concentration of 1% to help solubilize the FDAAs and/or CDAAs. Presence of 1% DMSO did not affect labeling or growth in bacteria tested. When necessary, chloramphenicol or spectinomycin was added to the growth media at 5
or 100 μ / , respectively. Strains were maintained on plates containing growth media with 1.5% agar.
[0113] Growth Curves
[0114] For growth curves, exponentially growing E. coli, A. tumefaciens and /! tumefaciens and B, subtilis AdacA were diluted to OD600 0-05 into wells of polystyrene 24-well plates (Falcon) containing 750 μ LB with 1% DMSO or 1% DMSO + FDAAs (250 μΜ - 1 mM). The absorbance at 600 nm was read every 5 minutes for 1 8 hours in a BIO-TEK Synergy HT Plate Reader (30°C, static).
[0115] Short Labeling Pulses and Fluorescence Microscopy
[0116] For short labeling pulses, exponentially growing cells were screened for the minimum concentration of FDAAs or CDAAs (250 μΜ - 1 mM) and minimum amount of exposure duration to identify the optimal conditions for each bacterium, as shown in FIG. 11 and Table 2. To image growth patterns in different species, exponentially growing cells (OD600 ~0.3) were labeled, fixed, washed, "clicked" if appropriate, and imaged.
[0117] For most strains, excess dye was removed by washing the cells three to four times with 1 ml 1 · PBS (Nad 8 g/L, KC1 0.2 g/L, \a2f U'04 -21 hi) 1.78 g/L, ! Pi)4 0.27 g/L, pH 7.4) and pelleting for 2-5 minutes at 10,000 - 16,000 x g in a microfuge. When required, cells were fixed with EtOH (70%, ice-cold, 20-minute incubation). Exceptions included S.
pneumoniae (1% gluteraldehyde, 20 minutes incubation) and B. subtilis (cold PBS treatment).
[0118] For dual labeling, the same procedure was fol lowed with the addition of a second round of a short iabeling puise using the second FDA A prior to fixation. Cells were washed before, between and after each FDAA treatment with pre-warmed medium in order ensure similar labeling conditions. For triple labeling, a third round of labeling involving CDAAs was added. For dual and triple labeling of A, tumefaciens, the incubation times with each label were 5 minutes and 7 minutes, respectively.
[0119] Phase and fluorescence microscopy was performed with a Nikon® 90i Fluorescence Microscope equipped with a Plan Apo lG0x/1.40 Oil Ph3 DM Objective and a Chroma 83700 triple filter cube with corresponding excitation and emission filters (DAPI for HAD A/HAL A; FITC for NAD 'NALA; and Aiexa Fluor® 488s and Texas Red® for Sulfo-Cy3 or WGA-594). Ail images were captured using NIS software from Nikon® and a Photometries Cascade IK cooled charge-coupled device camera, and were processed and analyzed using ImageJ. When a comparison was made, cultures were treated in exactl the same manner and the same parameters were applied for coll ecting and post processing of the microscopy data.
[0120] Long Labeling Pulses and Time-L,apse Microscopy
[0121] Exponentially growing cells were diluted to QDgQO 0.05 in media containing half of the optimal FDAA concentration used for short iabeling pulses and were grown until late exponential phase. The cells were fixed, washed and then imaged using the Nikon® 90i as described previously. For time-lapse microscopy the cells were washed with media and mounted onto LB + 1 % (w/v) agarose pads on 25-mm by 75-mm glass slides, sealed with 1 : 1 : 1 mixture of vasoline, lanolin and paraffin and imaged with intervals of 4 minutes (B. subtilis AdacA), 5 minutes (E, coli) or 10 minutes (A, tumefaciens) using a Nikon® Ti-E
Inverted Fluorescence Microscope equipped with a Plan Apo 60χ/1.40 Oil Ph3 DM
Objective and a CFP/YFP filter cube and an Andor DU885 EMCCD Camera using CFP settings for detection of HAD A ,
[0122] Super-resolution M icroscopy
[0123] Structured illumination microscopy was performed using a Delta Vision® OMX
Imaging System equipped with an Olympus® UPlanSApo 100x/1.40 Oil PSF Objective and a Photometries Cascade II EMCCD Camera, The samples were excited with a laser at 405 nm and the emission was detected through a 419-465 emission filter.
[0124] Environmental Samples
[0125] HADA (500 μ.Μ + 1 % DMSO) and/or NADA (500 μΜ + 1% DMSO) was added to either a 1 .5 mi saliva sample from a 26-year old male or to a 1.5 ml concentrated (-10 times) fresh water sample collected from Indiana University and incubated for 2 hours (HADA) at 37°C or for 2 hours (HADA) and 2 hours (NADA) at 26°C, respectively. The samples were then fixed, washed and maged.
[0126] Live-Dead Staining
[0127] E.coli cells were labeled with HADA in 0.1% DMSO. Cells were subsequently stained using the LIVE-DEAD BacLight Kit (Invitrogen) according to the manufacturer's standard protocol.
[0128] Sacculi Purification
[0129] Sacculi from cells were purified as described in Litzmger et al. (2010) J. Bacteriol. 192:3122-3143 with following modifications. Exponentially growing cells were diluted to ODgOO 0-05 in 10 ml LB containing half of the optimum FDAA concentration + 1% (v/v) DMSO and grown to late exponential phase. After aliquots were taken for whole cell imaging, cells were collected by centrifugation at 25,000 x g for 15 minutes at RT and resuspended in 0.8 ml water. The suspension was added to boiling sodium dodecyl sulfate
(SDS, 5% w/v) drop-wise and incubated with stirring for 30 minutes. SDS insoluble material was collected by uitracentrifugation at 39,000 x g for 10 minutes at 30° C. and was resuspended in 1 ml water and boiled again in SDS (4% w/v) with stirring for 30 minutes. Samples were then washed four times in 1.5 ml water and resuspended in 1 m! 10 mM Tris- HC1 pH 7.0 + 10 mM Nad + 0.32 M immidazole + a-amylase (100 μητ/ηιΐ) + DNase I (50 μ»/τη1) + MgS04 (1 mM) and incubated for 2 hours at 37°C. Samples were pelleted and resuspended in 0.05 M Tris-HCI pH 7.8 + 1.4 mg/ml pronase (type XXV from Streptomyces griseus) and incubated 2 hours at 60° C. Samples were again pelleted and resuspended in 1 ml water and boiled in SDS (1% w/v) with stirring for 30 min. The saceulus preparations were washed a final time and resuspended in a minimal amount of water. When needed, sacculi were further stained with Wheat Germ Agglutinin, Alexa Fluor© 594 Conjugate (WGA-594, 15 μ τύ).
[0130] HPLC analysis of PG ami Muropeptide Identification
[0131] PG from FDAA labeled cells was purified by the boiling SDS extraction method and muramidase digestion treatment (Cellosyl) as previously described in Brown et al. (2012) Proc. Natl. Acad. Sci. USA. 109: 1697-1701. Solubilized muropeptide mixtures were then either directly injected into the HPLC system (native or non-reduced samples) or subjected to BH4 a reduction as described in Brown et al. (20.12), supra, Muropeptides were analyzed using a binary-pump Waters© HPLC System (Waters Corporation) fitted with a reverse phase RP18 Aeris® Peptide Column (250 mm x 4.6 mm; 3.6 μηι particle size) (Phenomenex) and a dual wavelength absorbance detector. Elution conditions were: flow rate I ml/min; temperature 35° C; 3 minutes isocratic elution in 50 mM sodium phosphate, pH 4.35 followed by a 57 minute linear gradient to 75 mM, sodium phosphate, pH 4.95 in 15% (w/v) methanol (90 mM sodium phosphate, pH 5.2 in 30%(v/v) methanol for B. suhtilis analyses), and 10 minute isocratic elution under the gradient final conditions. Elution was monitored
setting one channel to 204 nm and the second to a wavelength appropriate for detection of corresponding FDAA, Muropeptides of interest were collected following HPLC separation; vacuum dried, and subjected to MALDI-mass spectrometry and electrospray ionization MS/MS as described in Brown et al. (2012), supra.
[0132] Results
[0133] Growth of the phylogenetically diverse model species E. coii, A. tumefaciens and B. subtilis in the presence of FDAAs for as little as one generation resulted in strong periph eral and septal labeling of entire cell populations (FIG. 8) without affecting growth rate. Neither of the FLAAs prepared from 3-amino-L-alanine resulted in significant labeling, indicating that labeling is specific to the D-enantiomers. The labeling was exclusive to viable cells treated with the FDAAs and was not the result of non-specific interaction of FDAAs with the PG. Additionally, incorporation did not occur into teichoic acids for B. subtilis as indicated by identical labeling of wild-type and a AditA mutant that does not D-alanylate its teichoic acids.
[0134] Retained fluorescence on the purified saccuii (FIG. 8) demonstrated that the labeling of PG by the FDAAs was covaient. HPLC analyses of muropeptides isolated from labeled cells (FIGS. 9B-C) revealed that 0.2 %-2.8 % of total muropeptides were modified (FIG 9C), which is sufficient for detection in various experiments while avoiding possible toxicity issues that could result from abundant incorporation. Significantly, the FDAA-specific peaks, which were absent in samples treated with FLAAs, could be distinguished from unlabeled muropeptides at FDAA-specific absorption wavelengths (FIG. 9B). MS/MS analyses of FDAA-modified muropeptides in B. subtilis indicated that FDAAs were exclusively incorporated in the fifth position of the stem peptide (FIG. 9D). Interestingly, in a AdacA mutant of B, subtilis, the fraction of labeled muropeptides and the fluorescent signal were substantially higher than in wild-type B. subtilis, which is likely due to the
D,D-carboxypeptidase activity of DacA. In contrast, the detectable incorporation was solely at the fourth position in E. coli and A tumefaciens (FIG. 9D). These results are in agreement with the known sites of incorporation of various natural DAAs in these species and suggest that, similar to DAAs, FDAAs incorporate mainly through periplasmic exchange reactions with the muropeptides catalyzed either by D ^-transpeptidases (e.g., in B. subtilis) or by L,D- transpeptidases (e.g., in E. coli and A. tumefaciens). This DAA-like behavior together with the ease of fluorescent detection make FDAAs a novel alternative to radioactive probes for studying in vitro and in vivo activities of PG synthesis enzymes.
[0135] Pulse-chase experiments with HADA allowed the real-time tracking of new PG incorporation during growth via time-lapse microscopy. In E. coli and B. subtilis MacA (FIG. 10A), the polar caps retained the HADA signal, but the signal from the lateral walls dispersed as the cells grew, in agreement with previous reports of cell wall growth along the length of the lateral wal ls.
[0136] Strikingly, short labeling times (2%-8% of doubling time) using E. coli and B.
subtilis MacA with HADA resulted in preferential localization of the signal at the septal plane of predivisional cells and in punctate patterns on the lateral walls of elongating cells (FIG. 1 1). Super-resolution microscopy of E. coli revealed reticulated hoop-like patterns of HADA labeling around the lateral wall (FIG. 10B), supportive of bursts of PG incorporation in the side-walls. This ability of FDAAs to resolve insertion of new PG provides the first direct detection of zones of PG synthesis in a structured rather than a random pattern in E. coli, consistent with recent results fol lowing the movement of the cell wall elongation machinery. Short labeling times with A. tumefaciens, whose growth occurs predominantly from a single pole and the site of cell division while the mother cell remains inert, resulted in polar and septal labeling. Super-resolution fluorescence microscopy of labeled cells further enhanced the spatial resolution of the site of active PG synthesis (FIG. IOC).
[0137] PG labeling in three evolutionarily distant species suggested that FDAAs could specifically label the active site of PG synthesis across the entire bacterial domain. When species representing diverse phyla and modes of growth were briefly incubated with FD AAs, we observed strong labeling at the sites of cell division in actively dividing cells (FIG, 11). This septal probe incorporation was the sole mode in Synechocystis sp. PCC 6803, L. lactis and S. aureus. Super-resolution microscopy of S. aureus further highlighted the different stages of these constricting septal rings (FIG . 10D). Labeling of S. pneumoniae occurred in single or split equatorial rings depending on the length of the cell, with peripheral labeling between the split rings (FIG. 11). Labeling of S. venezueiae was predominantly apical, with some weak labeling of vegetative septa and lateral wal ls suggestive of a low but continuous lateral PG synthesis (FIG. 11 ). In C. crescentus, labeling occurred at the sites of septal elongation, lateral elongation, and stalk synthesis (FIG. 1 1). B. phytqfirmans exhibited polar and mid-cell PG synthesis, B. conglomeratwn exhibited prominent peripheral PG synthesis in addition to seemingly alternating perpendicular division planes, and V. spinosum exhibited strong peripheral PG synthesis and asymmetric septal labeling (FIG. 1 1 ).
[0138] The efficient label incorporation in all the bacteria indicates that FDAAs, therefore DAAs, incorporation is common to the bacterial domain and that FDAAs can thus be used to analyze natural bacterial populations, providing a convenient and quick standard to measure bacterial activity and to probe the diversity of growth modes in complex microbiomes.
Indeed, labeling times with FDAAs as short as 2 hours revealed diverse modes of growth in saliva and freshwater samples in situ, but did not label dead cells as suggested by the strong correlation with Live-Dead staining.
[0139] Encouraged by the efficiency of FDAAs, additional and differently functionalized unnatural DAAs were prepared and used. Following a similar approach, a brighter and more versatile core fluorophore, fluorescein (emission maximum -515 run, green), and its
analogue, carboxytetramethylrhodamine (TAMRA, emission maximum -565 nm, red) were derivatized and linked with D-Lys to separate the bulky fluorophore from the DAA backbone, generating FDL and TDL (see, for example, structures in FIG. 7). Incubation of both E. coli and B. subtilis with FDL showed patterns similar to NADA, although labeling of B. subtilis was stronger than E. coli. In contrast, the larger TDL did not label E. coli cells, but labeling of B. subtilis was prominent and showed patterns similar to other FDAAs.
[0140] CD A As, namely ethynyl-D-alanine (EDA) or azido-D-alanine (ADA) (FIG. 7), that can be specifically captured by any molecule carrying the conjugate functional group via click-chemistry also were used. Similar to FDAAs, these bioorthogonal DAAs, but not the L-enantiomer control ELA, labeled both E. coli and B. subtilis when captured by
commercially available azido/alkyne fluorophores.
[0141] Furthermore, custom DAAs containing different colored fluorophores can be used sequentially to enable "virtual time-lapse microscopy." Since addition of each new probe indicates the location and extent of PG synthetic activity during the respective labeling periods, this approach pro vides a chronological account of shifts in PG synthesis of individual ceils over time. Examples of such serial labeling, including a combination with click chemistry, were performed in Gram-negative A, t mefaciens (FIG. 10E) and in Gram- positive 5'. venezuelae (FIG. 10F).
[0142] In view of the foregoing, disclosed herein are compositions for and methods of covalently labeling PG in live bacterial cells. This method works very efficiently in both
Gram-positive and Gram-negative organisms (Gram-negative organisms represent a liability for approaches using fluorescently modified vancomycin/ramoplanin), and the probe substrates do not appear to be toxic to cells and show no adverse effects on cell morphology, even at concentrations as high as 1 mM. The probes rapidly label sites of active
peptidogiycan biosynthesis and can be used in time-lapse and dual labeling experiments.
[0143] Thus, compositions and methods have been described herein for in situ labeling/probing of PG synthesis in bacteria with fluorescent D-aniino acids (FDAAs), as well as for screening for bacterial cell wall-acting and/or cell wall-disrupting agents. The FDAAs are based upon D-amino acids (DAAs) derivatized to covalently include a small fluorophore. As such, the FDAAs can be directly incorporated into bacterial cell walls during PG biosynthesis, as occurs at sites of cell division in actively dividing cells,
[0144] The compositions include FDAAs, The FDAAs have a DAA covalently attached to a fluorophore such as 7-hydroxycoumarin 3-carboxylic acid (HCC-OH), 7- nitrobenzofurazan (NBD), 4-chloro-7-nitrobenzofurazan (NBD-C1), fluorescein (F) or
carboxytetramethylrhodamine (T). The DAA can be any of the twenty known, standard amino acids, such as D-Ala, D-Asp, D-Cys, D-Glu or D-Lys.
[0145] The compositions also include clickable DAAs (CDAAs). The CDAAs have a DAA backbone including an alkyne or azide functional group that can be captured by any labeled detecting agent earning a conjugate functional group via click-chemistry , where the label can be a fluorescent molecule.
[0146] The compositions also include fluorescent muramylpentapeptide precursor units (FMPUs), The FMPUs have an N-acetyl muramic acid (NAM) moiety with a stem peptide of three to five amino acids in which one or more of the amino acids in the stern peptides are FDAAs and/or CDAAs as described herein.
[0147] The compositions also include fluorescent PG units (FPGUs). The FPGUs have a FMPU as described herein linked to an N-acetyl glucosamine (NAG) moiety.
[0148] The compositions also include live bacteria having one or more FDAA, CDAA, FMPU and/or FPGU as described herein incorporated into PG in a cell wall,
[0149] The compositions also include kits having one or more FDAA, CDAA, FMPU and/or FPGU as described herein and optionally one or more labeled, detecting agents for use in in
situ labeling/probing of PG synthesis, as well as for screening for bacterial cell wall-acting and/or cell wail-disrupting agents. The kits also can include additional reagents such as unlabeled DAAs, unlabeled L-amino acids (LAAs), fluorescent LAAs (FLAAs) and/or clickable LAAs (CLAAs). The kits also can include positive and/or negative bacterial controls, where the bacterial controls have unlabeled DAAs, CDAAs, LAAs and CLAAs and/or labeled DAAs, CDAAs, LAAs and CLAAs incorporated into PG in a cell wall.
[0150] In view of the foregoing, the methods have been disclosed herein that include assessing bacterial ceil wall synthesis in real time by providing live bacteria with one or more FDAA, CDAA, FMPU and/or FPGU as described herein, where the bacteria covalently incorporate the one or more FDAA, CDAA, FMPU and/or FPGU into PG of a bacterial cell wall. The one or more FDAA, CDAA, FMPU and/or FPGU can be provided to live bacteria together or sequentially during cell wall synthesis.
[0151] The methods also include screening for putative cell wall-acting or cell wall- disrupting agents by contacting bacteria with a putative cell wall-acting agent or putative cell wail-disrupting agent, where the agent is cell wall-acting if the agent interferes with ongoing PG biosynthesis in a bacterial ceil wall or is cell wall-disrupting if the agent weakens integrity of PG in an existing bacterial ceil wall. When screening for putative ceil wall- acting agents, the bacteria can be provided with one or more FD AA, CDAA., FM PU and/or FPGU as described herein simultaneously with the putative agent. When screening for putative eel 1 wall-disrupting agents, the bacteria can have one or more FDAA, CDAA, FMPU and/or FPGLI as described herein covalently incorporated into PG of the cell wail prior to being contacted with the putative agent.
[0152] The methods also include identifying a bacteria by providing live, unknown bacteria with one or more FDAA, CDAA, FMPU and/or FPGU as described herein under conditions sufficient for bacterial cell wail synthesis, where the bacteria covalently incorporate one or
more FDAA, CDAA, FMPU and/or FPGU into a cell wall, and where each of the one or more FDAA, CDAA, FMPU and/or FPGU includes a distinct fluorophore. The methods also include observing an incorporation pattern of the one or more FDAA, CDAA, FMPU and/or FPGU, where the incorporation pattern identifies the bacteria. Such methods are amenable for use in screening platforms to identify novel compounds having bacteriostatic or bacteriotoxic properties.
[0153] In the methods, the bacteria can be Gram-positive or Gram-negative bacteria.
[0154] The methods also include detecting one or more FDAA, CDAA, FMPU and/or FPGU as described herein that have been incorporated in the bacterial cell wall or that have been disrupted from the bacterial cell wall by, for example, fluorescence microscopy and other methods, depending upon the label used.
[0155] The methods also can include comparing the results of the putative agent with a known cell wail-acting agent or with a known cell wall-disrupting agent,
[0156] The compositions and methods described herein therefore find use in the study of bacterial cel l wall biosynthesis and in the discover}' of bacterial cell wail-acting and/or cel l wall-disrupting agents. Advantageously, the FDAAs, CDAAs, FMPUs and/or FPGUs as described herein simultaneously are non-toxic and can be tunable to label sites of active PG biosynthesis, enabling fine spatiotemporal tracking of cell wall dynamics in phylogenetically and morphologically diverse bacteria.
[0157] All of the patents, patent applications, patent application publications and other publications recited herein are hereby incorporated by reference as if set forth in their entirety.
[0158] The present invention has been described in connection with what are presently considered to be the most practical and preferred embodiments. However, the invention has been presented by way of illustration and is not intended to be limited to the disclosed
embodiments. Accordingly, one of skill in the art will realize that the invention is intended to encompass all modifications and alternative arrangements within the spirit and scope of the invention as set forth in the appended claims.
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Claims
1. A modified amino acid comprising a D-amino acid covalently attached to a fluorescent label,
2. The modified amino acid of claim 1, wherein the fluorescent label is 7-hydroxycoumarin 3-carboxyiic acid (HCC-OH), 7-nitrobenzofurazan (NBD), 4~ehloro~7-nitrobenzofurazan (ΝΒί.)·ί Ί ). ADA, Cy3BADA, Λ!·(. ΓΛί . AF35oADA, BADA, FADA, HAD A, NAD A, TAD A, YADA, FDL, HDL, NDL, TDL, AHA, EDA, LTD A, fluorescein (F) or
carboxytetramethylrhodamine (T).
3. The modified amino acid of claims 1 or 2, wherein the D-amino acid is selected from the group consisting of 3-amino-D-Ala, D-Aia, D-Asp, D-Cys, D-Glu and D-Lys.
4. A muramylpentapeptide precursor unit comprising an N-acetyf muramic acid (NAM) moiety having a stem peptide of three to five amino acids, wherein one or more of the amino acids in the stem peptide comprises a modified amino acid of any one of the preceding claims and optionally an additional modified amino acid, wherein the additional modified amino acid comprises a clickable D-amino acid.
5. A peptidoglycan unit comprising the muramylpentapeptide precursor unit of claim 4 covalently linked to an N-acetyl glucosamine (NAG) moiety.
6. A live bacterial organism comprising a bacterium having a modified cell wall comprising modified peptidoglycan containing at least one modified amino acid according to any one of claims 1 to 3, and optionally at least one additional modified amino acid, wherein the at least one additional amino acid comprises a clickable D-amino acid.
7. A method of assessing bacterial ceil wal l synthesis in real time, the method comprising: providing live bacteria with a first amount of at least one modified amino acid of any one of claims 1 to 3, and optionally a second amount of at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient for bacteria] cell wall synthesis, wherein the bacteria covalently incorporate the at least one modified amino acid and optionally the at least one additional modified amino acid into a stem peptide of peptidoglycan of the bacteria] cell wall .
8. The method of claim 7, wherein the first amount and second amount comprise a first concentration and a second concentration, respectively, wherein the first and second concentrations range from about and including 0.10 μ.Μ to about and including 1 mM .
9. The method of claims 7 or 8, further comprising detecting the at least one modified amino acid, and optionally the at least one additional modified amino acid incorporated into the stem peptide.
10. The method of any one of Claims 7 to 9, wherein the bacteria are Gram-positive bacteria or Gram-negative bacteria.
11. A method of screening for a putative cell wall-acting agent, the method comprising: co-contacting bacteria with an effective amount of an agent and an amount of at least one modified amino acid of any one of Cl aims 1 to 3, and optionally an amount at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient to permit ongoing peptidogiycan biosynthesis in a bacterial cell wall, wherein the agent comprises a ceil wall-acting agent if the agent interferes with ongoing peptidogiycan biosynthesis in the bacterial cel l wall.
12. The method of claims 11, further comprising: detecting one or more D-amino acids incorporated in the bacterial cell wall.
13. The method of claim 12, further comprising: comparing the amount and/or identity of incorporated D-amino acids in the bacterial cell wall resulting from contacting the bacteria with the agent with the corresponding amount and/or identity of incorporated D-amino acids in a bacterial cell wall resulting from contacting the bacteria with a known cell wall-acting agent.
14. A method of screening for a putative cell wall-disrupting agent, the method comprising: contacting modified bacteria with an amount of an agent, wherein the agent comprises a cell wall-disrupting agent if the agent weakens integrity of peptidogiycan in an existing bacterial cell wall, and wherein the modified bacteria have a modified cell wall containing modified peptidogiycan having at least one stem peptide containing at least one modified amino acid of any one of claims 1 to 3, and optionally at least one additional modified amino acid comprising a clickable D-amino acid.
15. The method of claims 14, further comprising: detecting one or more D-amino acids disrupted in the bacterial cell wail.
16. The method of claim 15, further comprising: comparing the amount and/or identity of disrupted D-amino acids in the bacterial cell wail resulting from contacting the bacteria with the agent with the corresponding amount and/or identity of disrupted D-amino acids in a bacterial cell wall resulting from contacting the bacteria with a known cell wall -disrupting agent.
17. The method of any one of Claims 11 to 16, wherein the bacteria are Gram-positive bacteria or Gram-negative bacteria.
18. A method of identifying bacteria, the method comprising:
contacting live bacteria with an amount of at least one modified amino acid of any one of claims 1 to 3, and optionally an amount of at least one additional modified amino acid comprising a clickable D-amino acid, under conditions sufficient for ongoing bacterial ceil wall synthesis, wherein the bacteria covalently incorporate into peptidoglycan of a bacterial cell wall the at least one modified amino acid, and optionally the at least one additional modified amino acid, wherein each of the least one modified amino acid and optionally the at least one additional modified amino acid comprises spectrally distinct fluorescent label; and visualizing the spectrally distinct fluorescent labels to determine an incorporation pattern of the at least one modified amino acid, and optionally the at least one additional modified amino acid, wherein the incorporation pattern identifies the bacteria,
19. A kit for incorporating labeled D-amino acids into live bacteria, the kit comprising: at least one modified amino acid of any one of claims 1 to 3; and
a positive bacterial control and optionally a negative bacterial control, wherein the positive bacterial control has at least one modified amino acid of any one of claims 1 to 3 incorporated into a stem peptide of peptidoglycan of the bacterial cell wall , wherein the optional negative bacterial control, if included, does not have the modified amino acid of any one of claims 1 to 3 incorporated into a stem peptide of peptidoglycan of the bacterial cell wall.
20. The kit of Claim 17, further comprising at least one clickable D-amino acid.
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| US16/048,000 US10544444B2 (en) | 2012-04-21 | 2018-07-27 | Compositions for in situ labeling of bacterial cell walls with fluorophores and methods of use thereof |
| US16/706,592 US20200109430A1 (en) | 2012-04-21 | 2019-12-06 | Compositions for in situ labeling of bacterial cell walls with fluorophores and methods of use thereof |
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| US16/048,000 Continuation US10544444B2 (en) | 2012-04-21 | 2018-07-27 | Compositions for in situ labeling of bacterial cell walls with fluorophores and methods of use thereof |
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Cited By (5)
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| WO2015038764A1 (en) * | 2013-09-11 | 2015-03-19 | Indiana University Research And Technology Corporation | D-ala-d-ala-based dipeptides as tools for imaging peptidoglycan biosynthesis |
| CN106279125A (en) * | 2015-06-03 | 2017-01-04 | 首都医科大学 | Coumarin derivative and preparation method thereof |
| CN107106707A (en) * | 2014-11-13 | 2017-08-29 | 爱丁堡大学董事会 | The molecular probe of gramnegative bacterium is detected in vitro and in vivo |
| WO2019157233A1 (en) * | 2018-02-07 | 2019-08-15 | Indiana University Research And Technology Corporation | Molecular rotor-based d-amino acids as tools for imaging peptidoglycan biosynthesis |
| CN119330951A (en) * | 2024-08-09 | 2025-01-21 | 华东理工大学 | A near-infrared fluorescent probe targeting Gram-positive bacteria based on bacterial wall peptidoglycan synthesis and its preparation method and application |
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|---|---|---|---|---|
| US11285490B2 (en) | 2015-06-26 | 2022-03-29 | Ancera, Llc | Background defocusing and clearing in ferrofluid-based capture assays |
| US11371941B2 (en) * | 2016-07-04 | 2022-06-28 | Celltool Gmbh | Device and method for the determination of transfection |
| CN111458313A (en) * | 2020-04-07 | 2020-07-28 | 上海交通大学医学院附属仁济医院 | Antibacterial drug sensitivity test detection method based on fluorescent D-type amino acid metabolism marker |
| CN111733102B (en) * | 2020-06-30 | 2023-08-18 | 东南大学 | Tyrosinase catalysis-based gram-positive bacterium surface modification method and application thereof |
| CN115372341B (en) * | 2022-05-14 | 2025-04-25 | 西北工业大学深圳研究院 | Bioluminescent detection system of bacterial cell wall nascent peptidoglycan constructed by D-lysine derivatives and its application method |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2015038764A1 (en) * | 2013-09-11 | 2015-03-19 | Indiana University Research And Technology Corporation | D-ala-d-ala-based dipeptides as tools for imaging peptidoglycan biosynthesis |
| CN107106707A (en) * | 2014-11-13 | 2017-08-29 | 爱丁堡大学董事会 | The molecular probe of gramnegative bacterium is detected in vitro and in vivo |
| CN106279125A (en) * | 2015-06-03 | 2017-01-04 | 首都医科大学 | Coumarin derivative and preparation method thereof |
| WO2019157233A1 (en) * | 2018-02-07 | 2019-08-15 | Indiana University Research And Technology Corporation | Molecular rotor-based d-amino acids as tools for imaging peptidoglycan biosynthesis |
| US11168077B2 (en) | 2018-02-07 | 2021-11-09 | Indiana University Research And Technology Corporation | Molecular rotor-based D-amino acids as tools for imaging peptidoglycan biosynthesis |
| CN119330951A (en) * | 2024-08-09 | 2025-01-21 | 华东理工大学 | A near-infrared fluorescent probe targeting Gram-positive bacteria based on bacterial wall peptidoglycan synthesis and its preparation method and application |
Also Published As
| Publication number | Publication date |
|---|---|
| US20150191763A1 (en) | 2015-07-09 |
| US20190024135A1 (en) | 2019-01-24 |
| US20200109430A1 (en) | 2020-04-09 |
| US10544444B2 (en) | 2020-01-28 |
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