A small molecule that disrupts S. Typhimurium membrane voltage without cell lysis reduces bacterial colonization of mice
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T. A. Nagy | C. Detweiler | Toni A. Nagy | D. Gustafson | Jamie L. Dombach | Joaquin L. J. Quintana | Samual C. Allgood | Daniel L Gustafson
[1] C. Detweiler,et al. Staphylococcal Bacterial Persister Cells, Biofilms, and Intracellular Infection Are Disrupted by JD1, a Membrane-Damaging Small Molecule , 2021, mBio.
[2] K. Pogliano,et al. Bacterial Cytological Profiling Identifies Rhodanine-Containing PAINS Analogs as Specific Inhibitors of Escherichia coli Thymidylate Kinase In Vivo , 2021, Journal of bacteriology.
[3] R. Misra,et al. Mutational Activation of Antibiotic-Resistant Mechanisms in the Absence of Major Drug Efflux Systems of Escherichia coli , 2021, Journal of bacteriology.
[4] T. A. Nagy,et al. A small molecule that mitigates bacterial infection disrupts Gram-negative cell membranes and is inhibited by cholesterol and neutral lipids , 2020, PLoS pathogens.
[5] E. Yu,et al. Structural and Functional Diversity of Resistance-Nodulation-Cell Division Transporters. , 2020, Chemical reviews.
[6] Miriam Kutsch,et al. Human guanylate binding proteins: nanomachines orchestrating host defense , 2020, The FEBS journal.
[7] Ping-xiao Wu,et al. Quantitative proteomic analysis reveals the mechanisms of polymyxin B toxicity to Escherichia coli. , 2020, Chemosphere.
[8] C. Herrmann,et al. Direct binding of polymeric GBP1 to LPS disrupts bacterial cell envelope functions , 2020, The EMBO journal.
[9] Alexis A. Jourdain,et al. Distinct mitochondrial defects trigger the integrated stress response depending on the metabolic state of the cell , 2020, eLife.
[10] W. Vollmer,et al. Regulation of peptidoglycan synthesis and remodelling , 2020, Nature Reviews Microbiology.
[11] T. A. Nagy,et al. Clofazimine Reduces Survival of Salmonella enterica in Macrophages and Mice. , 2020, ACS infectious diseases.
[12] C. Detweiler. Infection-based chemical screens uncover host-pathogen interactions. , 2020, Current opinion in microbiology.
[13] N. V. van Sorge,et al. Outer membrane permeabilization by the membrane attack complex sensitizes Gram-negative bacteria to antimicrobial proteins in serum and phagocytes , 2020, bioRxiv.
[14] H. Zgurskaya,et al. Permeability barriers of Gram‐negative pathogens , 2020, Annals of the New York Academy of Sciences.
[15] John G Doench,et al. A Compendium of Genetic Modifiers of Mitochondrial Dysfunction Reveals Intra-organelle Buffering , 2019, Cell.
[16] T. A. Nagy,et al. Autophagy Induction by a Small Molecule Inhibits Salmonella Survival in Macrophages and Mice , 2019, Antimicrobial Agents and Chemotherapy.
[17] M. Trent,et al. Pushing the envelope: LPS modifications and their consequences , 2019, Nature Reviews Microbiology.
[18] Keara M. Lane,et al. Mechanically resolved imaging of bacteria using expansion microscopy , 2019, bioRxiv.
[19] R. Wubbolts,et al. Complement-dependent outer membrane perturbation sensitizes Gram-negative bacteria to Gram-positive specific antibiotics , 2019, Scientific Reports.
[20] S. French,et al. A macrophage-based screen identifies antibacterial compounds selective for intracellular Salmonella Typhimurium , 2018, Nature Communications.
[21] T. A. Nagy,et al. A cell-based infection assay identifies efflux pump modulators that reduce bacterial intracellular load , 2018, PLoS pathogens.
[22] J. Errington,et al. Lysozyme Counteracts β-Lactam Antibiotics by Promoting the Emergence of L-Form Bacteria , 2018, Cell.
[23] Samuel I. Miller,et al. The gram-negative bacterial periplasm: Size matters , 2018, PLoS biology.
[24] David C. Grainger. Structure and function of bacterial H-NS protein. , 2016, Biochemical Society transactions.
[25] V. Nizet,et al. Standard susceptibility testing overlooks potent azithromycin activity and cationic peptide synergy against MDR Stenotrophomonas maltophilia. , 2016, The Journal of antimicrobial chemotherapy.
[26] L. Hamoen,et al. Analysis of Antimicrobial-Triggered Membrane Depolarization Using Voltage Sensitive Dyes , 2016, Front. Cell Dev. Biol..
[27] Samuel I. Miller,et al. S. Typhimurium strategies to resist killing by cationic antimicrobial peptides. , 2015, Biochimica et biophysica acta.
[28] K. Hokamp,et al. RNA-seq Brings New Insights to the Intra-Macrophage Transcriptome of Salmonella Typhimurium , 2015, PLoS pathogens.
[29] Michael D. Burkart,et al. Azithromycin Synergizes with Cationic Antimicrobial Peptides to Exert Bactericidal and Therapeutic Activity Against Highly Multidrug-Resistant Gram-Negative Bacterial Pathogens , 2015, EBioMedicine.
[30] W. D. De Vos,et al. Sustained accumulation of prelamin A and depletion of lamin A/C both cause oxidative stress and mitochondrial dysfunction but induce different cell fates , 2015, Nucleus.
[31] Bethany J Wolf,et al. Quantitative analysis of mitochondrial morphology and membrane potential in living cells using high-content imaging, machine learning, and morphological binning. , 2015, Biochimica et biophysica acta.
[32] Frédéric Grenier,et al. Complete Genome Sequence of Escherichia coli BW25113 , 2014, Genome Announcements.
[33] Anne E Carpenter,et al. Identification of Host-Targeted Small Molecules That Restrict Intracellular Mycobacterium tuberculosis Growth , 2014, PLoS pathogens.
[34] J. Kus,et al. Bile Salts Induce Resistance to Polymyxin in Enterohemorrhagic Escherichia coliO157:H7 , 2011, Journal of bacteriology.
[35] M. Brand,et al. Assessing mitochondrial dysfunction in cells , 2011, The Biochemical journal.
[36] T. Silhavy,et al. The bacterial cell envelope. , 2010, Cold Spring Harbor perspectives in biology.
[37] L. Martínez-Martínez,et al. Klebsiella pneumoniae AcrAB Efflux Pump Contributes to Antimicrobial Resistance and Virulence , 2009, Antimicrobial Agents and Chemotherapy.
[38] R. Epand,et al. Domains in bacterial membranes and the action of antimicrobial agents. , 2009, Molecular bioSystems.
[39] D. Higgins,et al. A Small-Molecule Screen Identifies the Antipsychotic Drug Pimozide as an Inhibitor of Listeria monocytogenes Infection , 2008, Antimicrobial Agents and Chemotherapy.
[40] R. Dixon,et al. Role of the cell envelope in the antibacterial activities of polymyxin B and polymyxin B nonapeptide against Escherichia coli. , 2008, International journal of antimicrobial agents.
[41] John A Timbrell,et al. In vitro cytotoxicity assays: comparison of LDH, neutral red, MTT and protein assay in hepatoma cell lines following exposure to cadmium chloride. , 2006, Toxicology letters.
[42] T. Latifi,et al. Virulence and drug resistance roles of multidrug efflux systems of Salmonella enterica serovar Typhimurium , 2006, Molecular microbiology.
[43] D. Maskell,et al. Resistance to the Antimicrobial Peptide Polymyxin Requires Myristoylation of Escherichia coli and Salmonella typhimurium Lipid A* , 2005, Journal of Biological Chemistry.
[44] Claudia Rollenhagen,et al. Antigen selection based on expression levels during infection facilitates vaccine development for an intracellular pathogen. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[45] A. Yamaguchi,et al. Effects of Efflux Transporter Genes on Susceptibility of Escherichia coli to Tigecycline (GAR-936) , 2004, Antimicrobial Agents and Chemotherapy.
[46] G. Bertani,et al. Lysogeny at Mid-Twentieth Century: P1, P2, and Other Experimental Systems , 2004, Journal of bacteriology.
[47] Raz Jelinek,et al. Lipid binding and membrane penetration of polymyxin B derivatives studied in a biomimetic vesicle system. , 2003, Biochemical Journal.
[48] Stanley Falkow,et al. virK, somA and rcsC are important for systemic Salmonella enterica serovar Typhimurium infection and cationic peptide resistance , 2003, Molecular microbiology.
[49] Rita Tamayo,et al. Identification and Genetic Characterization of PmrA-Regulated Genes and Genes Involved in Polymyxin B Resistance in Salmonella enterica Serovar Typhimurium , 2002, Infection and Immunity.
[50] P. Matarrese,et al. Mitochondria hyperpolarization is an early event in oxidized low‐density lipoprotein‐induced apoptosis in Caco‐2 intestinal cells , 2002, FEBS letters.
[51] Samuel I. Miller,et al. A PhoP-Regulated Outer Membrane Protease of Salmonella enterica Serovar Typhimurium Promotes Resistance to Alpha-Helical Antimicrobial Peptides , 2000, Journal of bacteriology.
[52] S. Miller,et al. PmrA–PmrB‐regulated genes necessary for 4‐aminoarabinose lipid A modification and polymyxin resistance , 1998, Molecular microbiology.
[53] T. Mizuno,et al. Clarification of the dimerization domain and its functional significance for the Escherichia coli nucleoid protein H-NS. , 1997, Journal of molecular biology.
[54] S. Miller,et al. Regulation of lipid A modifications by Salmonella typhimurium virulence genes phoP-phoQ. , 1997, Science.
[55] H. Buc,et al. Probing the structure, function, and interactions of the Escherichia coli H-NS and StpA proteins by using dominant negative derivatives , 1996, Journal of bacteriology.
[56] A. L. Koch,et al. The permeability of the wall fabric of Escherichia coli and Bacillus subtilis , 1996, Journal of bacteriology.
[57] G. Dougan,et al. Role of hns in the virulence phenotype of pathogenic salmonellae , 1994, Molecular microbiology.
[58] E. Rubinstein,et al. Antibacterial synergism of polymyxin B nonapeptide and hydrophobic antibiotics in experimental gram-negative infections in mice , 1994, Antimicrobial Agents and Chemotherapy.
[59] F. Heffron,et al. Intracellular survival of wild-type Salmonella typhimurium and macrophage-sensitive mutants in diverse populations of macrophages , 1989, Infection and immunity.
[60] C. Korzeniewski,et al. An enzyme-release assay for natural cytotoxicity. , 1983, Journal of immunological methods.
[61] M. Vaara,et al. Sensitization of Gram-negative bacteria to antibiotics and complement by a nontoxic oligopeptide , 1983, Nature.
[62] B. Stocker,et al. Aromatic-dependent Salmonella typhimurium are non-virulent and effective as live vaccines , 1981, Nature.
[63] G. Bertani,et al. STUDIES ON LYSOGENESIS I , 1951, Journal of bacteriology.
[64] J. Mueller,et al. A Protein-Free Medium for Primary Isolation of the Gonococcus and Meningococcus , 1941 .