Peptidoglycan and Teichoic Acid Levels and Alterations in Staphylococcus aureus by Cell-Wall and Whole-Cell Nuclear Magnetic Resonance.
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[1] T. Gullion,et al. Description of an rf field-strength controller for solid-state NMR experiments. , 2018, Solid state nuclear magnetic resonance.
[2] Timothy C. Meredith,et al. Salt-Induced Stress Stimulates a Lipoteichoic Acid-Specific Three-Component Glycosylation System in Staphylococcus aureus , 2018, Journal of bacteriology.
[3] S. Walker,et al. Substrate Preferences Establish the Order of Cell Wall Assembly in Staphylococcus aureus. , 2018, Journal of the American Chemical Society.
[4] J. Helmann,et al. Don’t let sleeping dogmas lie: new views of peptidoglycan synthesis and its regulation , 2017, Molecular microbiology.
[5] Manmilan Singh,et al. Characterization of the tertiary structure of the peptidoglycan of Enterococcus faecalis. , 2017, Biochimica et biophysica acta. Biomembranes.
[6] D. Rice,et al. Whole Ribosome NMR: Dipolar Couplings and Contributions to Whole Cells. , 2017, The journal of physical chemistry. B.
[7] M. Craighead,et al. Teixobactin and Its Analogues: A New Hope in Antibiotic Discovery. , 2017, ACS Infectious Diseases.
[8] T. Foster. Antibiotic resistance in Staphylococcus aureus. Current status and future prospects , 2017, FEMS microbiology reviews.
[9] H. Arimoto,et al. Deciphering the mode of action of cell wall-inhibiting antibiotics using metabolic labeling of growing peptidoglycan in Streptococcus pyogenes , 2017, Scientific Reports.
[10] S. Walker,et al. In vitro reconstitution demonstrates the cell wall ligase activity of LCP proteins. , 2017, Nature chemical biology.
[11] J. Hakulinen,et al. MraY-antibiotic complex reveals details of tunicamycin mode of action. , 2017, Nature chemical biology.
[12] S. Walker,et al. Lipid II overproduction allows direct assay of transpeptidase inhibition by β-lactams , 2017, Nature chemical biology.
[13] D. McLaren,et al. Quantitation of wall teichoic acid in Staphylococcus aureus by direct measurement of monomeric units using LC-MS/MS. , 2017, Analytical biochemistry.
[14] T. Roemer,et al. TarO-specific inhibitors of wall teichoic acid biosynthesis restore β-lactam efficacy against methicillin-resistant staphylococci , 2016, Science Translational Medicine.
[15] S. Gautam,et al. Wall teichoic acids prevent antibody binding to epitopes within the cell wall of Staphylococcus aureus. , 2016, ACS chemical biology.
[16] R. Müller,et al. The Mechanism of Action of Lysobactin. , 2016, Journal of the American Chemical Society.
[17] D. Rice,et al. Frequency-selective REDOR and spin-diffusion relays in uniformly labeled whole cells. , 2015, Solid state nuclear magnetic resonance.
[18] Marina Santiago,et al. A synthetic lethal approach for compound and target identification in Staphylococcus aureus , 2015, Nature chemical biology.
[19] L. Cegelski,et al. Bacterial cell wall composition and the influence of antibiotics by cell-wall and whole-cell NMR , 2015, Philosophical Transactions of the Royal Society B: Biological Sciences.
[20] E. Breukink,et al. Activities and regulation of peptidoglycan synthases , 2015, Philosophical Transactions of the Royal Society B: Biological Sciences.
[21] D. Rice,et al. Spectral snapshots of bacterial cell-wall composition and the influence of antibiotics by whole-cell NMR. , 2015, Biophysical journal.
[22] K. Lewis,et al. A new antibiotic kills pathogens without detectable resistance , 2015, Nature.
[23] T. Bernhardt,et al. Beta-Lactam Antibiotics Induce a Lethal Malfunctioning of the Bacterial Cell Wall Synthesis Machinery , 2014, Cell.
[24] Michael S. Gilmore,et al. Compound-gene interaction mapping reveals distinct roles for Staphylococcus aureus teichoic acids , 2014, Proceedings of the National Academy of Sciences.
[25] Lok-To Sham,et al. MurJ is the flippase of lipid-linked precursors for peptidoglycan biogenesis , 2014, Science.
[26] Manmilan Singh,et al. Cross-Link Formation and Peptidoglycan Lattice Assembly in the FemA Mutant of Staphylococcus aureus , 2014, Biochemistry.
[27] D. Missiakas,et al. Lipoteichoic Acids, Phosphate-Containing Polymers in the Envelope of Gram-Positive Bacteria , 2014, Journal of bacteriology.
[28] S. Walker,et al. Wall teichoic acids of gram-positive bacteria. , 2013, Annual review of microbiology.
[29] Nathalie T. Reichmann,et al. Revised mechanism of d-alanine incorporation into cell wall polymers in Gram-positive bacteria , 2013, Microbiology.
[30] C. Weidenmaier,et al. Increased Cell Wall Teichoic Acid Production and D-alanylation Are Common Phenotypes among Daptomycin-Resistant Methicillin-Resistant Staphylococcus aureus (MRSA) Clinical Isolates , 2013, PloS one.
[31] T. Roemer,et al. Discovery of wall teichoic acid inhibitors as potential anti-MRSA β-lactam combination agents. , 2013, Chemistry & biology.
[32] H. Sahl,et al. Mechanisms of daptomycin resistance in Staphylococcus aureus: role of the cell membrane and cell wall , 2013, Annals of the New York Academy of Sciences.
[33] Pamela J. B. Brown,et al. In Situ probing of newly synthesized peptidoglycan in live bacteria with fluorescent D-amino acids. , 2012, Angewandte Chemie.
[34] Timothy C. Meredith,et al. From the Cover: Methicillin resistance in Staphylococcusaureus requires glycosylated wall teichoic acids , 2012 .
[35] L. Cegelski,et al. Nutrient-dependent structural changes in S. aureus peptidoglycan revealed by solid-state NMR spectroscopy. , 2012, Biochemistry.
[36] N. Strynadka,et al. Structural perspective of peptidoglycan biosynthesis and assembly. , 2012, Annual review of biochemistry.
[37] A. Tomasz,et al. Isolation and analysis of cell wall components from Streptococcus pneumoniae. , 2012, Analytical biochemistry.
[38] A. Singh,et al. An Antibiotic That Inhibits a Late Step in Wall Teichoic Acid Biosynthesis Induces the Cell Wall Stress Stimulon in Staphylococcus aureus , 2012, Antimicrobial Agents and Chemotherapy.
[39] P. François,et al. Correlation of Daptomycin Resistance in a Clinical Staphylococcus aureus Strain with Increased Cell Wall Teichoic Acid Production and d-Alanylation , 2011, Antimicrobial Agents and Chemotherapy.
[40] S. Walker,et al. ABC transporters required for export of wall teichoic acids do not discriminate between different main chain polymers. , 2011, ACS chemical biology.
[41] A. Singh,et al. Synthetic lethal compound combinations reveal a fundamental connection between wall teichoic acid and peptidoglycan biosyntheses in Staphylococcus aureus. , 2011, ACS chemical biology.
[42] C. Bougault,et al. Dynamics characterization of fully hydrated bacterial cell walls by solid-state NMR: evidence for cooperative binding of metal ions. , 2010, Journal of the American Chemical Society.
[43] Jennifer Campbell,et al. Wall Teichoic Acid Function, Biosynthesis, and Inhibition , 2009, Chembiochem : a European journal of chemical biology.
[44] C. Weidenmaier,et al. Influence of Wall Teichoic Acid on Lysozyme Resistance in Staphylococcus aureus , 2006, Journal of bacteriology.
[45] M. Preobrazhenskaya,et al. Structures of Staphylococcus aureus cell-wall complexes with vancomycin, eremomycin, and chloroeremomycin derivatives by 13C{19F} and 15N{19F} rotational-echo double resonance. , 2006, Biochemistry.
[46] Daniel W. Kulp,et al. Conformational and quantitative characterization of oritavancin-peptidoglycan complexes in whole cells of Staphylococcus aureus by in vivo 13C and 15N labeling. , 2006, Journal of molecular biology.
[47] C. Walsh,et al. Glycopeptide and lipoglycopeptide antibiotics. , 2005, Chemical reviews.
[48] W. Vollmer,et al. Why are pathogenic staphylococci so lysozyme resistant? The peptidoglycan O‐acetyltransferase OatA is the major determinant for lysozyme resistance of Staphylococcus aureus , 2004, Molecular microbiology.
[49] B. Neumeister,et al. Role of teichoic acids in Staphylococcus aureus nasal colonization, a major risk factor in nosocomial infections , 2004, Nature Medicine.
[50] A. Mehta,et al. Rotational-echo double resonance characterization of the effects of vancomycin on cell wall synthesis in Staphylococcus aureus. , 2002, Biochemistry.
[51] E. R. Cohen,et al. Structural constraints on the ternary complex of 5-enolpyruvylshikimate-3-phosphate synthase from rotational-echo double-resonance NMR. , 1996, Journal of molecular biology.
[52] R. Marples. Antibiotic resistance in Staphylococcus aureus , 1989, The Medical journal of Australia.
[53] B. Glauner. Separation and quantification of muropeptides with high-performance liquid chromatography. , 1988, Analytical biochemistry.
[54] E. Stejskal,et al. Carbon-13 nuclear magnetic resonance of polymers spinning at the magic angle , 1976 .
[55] H. Kropp,et al. THE MECHANISM OF ACTION OF FOSFOMYCIN (PHOSPHONOMYCIN) , 1974, Annals of the New York Academy of Sciences.
[56] M. T. Parker,et al. Methicillin resistance in Staphylococcus aureus. , 1970, Lancet.
[57] N. Sharon. The bacterial cell wall. , 1969, Scientific American.
[58] B. Ames,et al. The role of polyamines in the neutralization of bacteriophage deoxyribonucleic acid. , 1960, The Journal of biological chemistry.
[59] P. S. Chen,et al. Microdetermination of Phosphorus , 1956 .
[60] D. Rhodes. Micro-determination of Phosphorus , 1955, Nature.
[61] Manmilan Singh,et al. Peptidoglycan architecture of Gram-positive bacteria by solid-state NMR. , 2015, Biochimica et biophysica acta.