Effect of Chromate Stress on Escherichia coli K-12
暂无分享,去创建一个
A. Matin | S. Lynch | Y. Barak | J. Curtin | D. Ackerley | D. F. Ackerley | Y. Barak | S. V. Lynch | J. Curtin | A. Matin | Susan V. Lynch | Abdul Matin
[1] T. Nyström,et al. ppGpp: a global regulator in Escherichia coli. , 2005, Trends in microbiology.
[2] M. Kadiiska,et al. In vivo free radical generation by chromium(VI): an electron spin resonance spin-trapping investigation. , 1994, Chemical research in toxicology.
[3] H. Xiao,et al. Residual guanosine 3',5'-bispyrophosphate synthetic activity of relA null mutants can be eliminated by spoT null mutations. , 1991, The Journal of biological chemistry.
[4] T. Kavanagh,et al. The role of glutathione in chronic adaptation to oxidative stress: studies in a normal rat kidney epithelial (NRK52E) cell model of sustained upregulation of glutathione biosynthesis. , 1999, Toxicology and applied pharmacology.
[5] D. Goodgame,et al. Relatively long-lived chromium(V) species are produced by the action of glutathione on carcinogenic chromium(VI). , 1986, Journal of inorganic biochemistry.
[6] A. Matin,et al. EmrR is a negative regulator of the Escherichia coli multidrug resistance pump EmrAB , 1995, Journal of bacteriology.
[7] Yi-Tin Wang. Microbial Reduction of Chromate , 2000 .
[8] Eoin L. Brodie,et al. Role and Regulation of σs in General Resistance Conferred by Low-Shear Simulated Microgravity in Escherichia coli , 2004, Journal of bacteriology.
[9] Xianglin Shi,et al. NADPH‐dependent flavoenzymes catalyze one electron reduction of metal ions and molecular oxygen and generate hydroxyl radicals , 1990, FEBS letters.
[10] T. Hidaka,et al. Effects of vitamin E, vitamin B2 and selenite on DNA single strand breaks induced by sodium chromate (VI). , 1987, Cancer letters.
[11] P. O’Farrell. High resolution two-dimensional electrophoresis of proteins. , 1975, The Journal of biological chemistry.
[12] Gabriel Bitton,et al. Encyclopedia of environmental microbiology , 2002 .
[13] G. Drapeau,et al. Regulation and SOS induction of division inhibition in Escherichia coli K12 , 2004, Molecular and General Genetics MGG.
[14] J. Fee,et al. Control of Escherichia coli superoxide dismutase (sodA and sodB) genes by the ferric uptake regulation (fur) locus , 1990, Journal of bacteriology.
[15] A. Matin,et al. Chromate-Reducing Properties of Soluble Flavoproteins from Pseudomonas putida and Escherichia coli , 2004, Applied and Environmental Microbiology.
[16] L. Ljungdahl,et al. Cytochrome bd Oxidase, Oxidative Stress, and Dioxygen Tolerance of the Strictly Anaerobic Bacterium Moorella thermoacetica , 2005, Journal of bacteriology.
[17] S. Linn,et al. Mutagenesis and stress responses induced in Escherichia coli by hydrogen peroxide , 1987, Journal of bacteriology.
[18] Anne-Marie Hansen,et al. SspA is required for acid resistance in stationary phase by downregulation of H‐NS in Escherichia coli , 2005, Molecular microbiology.
[19] A. Matin. Stress Response in Bacteria , 2003 .
[20] S. Long,et al. The Sinorhizobium meliloti stringent response affects multiple aspects of symbiosis , 2002, Molecular microbiology.
[21] A. Matin,et al. Biomolecular Strategy To Decrease ChromateToxicity To Remediating Bacteria , 2005 .
[22] Ying Wang. The function of OmpA in Escherichia coli. , 2002, Biochemical and biophysical research communications.
[23] A. Zhitkovich,et al. Cr(III)-mediated crosslinks of glutathione or amino acids to the DNA phosphate backbone are mutagenic in human cells. , 1998, Nucleic acids research.
[24] R. Moreno-Sánchez,et al. Interactions of chromium with microorganisms and plants. , 2001, FEMS microbiology reviews.
[25] D. Lovley. Environmental Microbe-Metal Interactions , 2000 .
[26] R. Radhakrishnan,et al. Remediation of Contaminated Sediments , 1997 .
[27] A. Matin,et al. Targets of improvement in bacterial chromate bioremediation. , 2003 .
[28] C. Wacher,et al. Survival to different acid challenges and outer membrane protein profiles of pathogenic Escherichia coli strains isolated from pozol, a Mexican typical maize fermented food. , 2005, International journal of food microbiology.
[29] A. Matin,et al. ChrR, a Soluble Quinone Reductase of Pseudomonas putida That Defends against H2O2* , 2005, Journal of Biological Chemistry.
[30] D. E. Pritchard,et al. Chromium-induced genotoxicity and apoptosis: relationship to chromium carcinogenesis (review). , 1998, Oncology reports.
[31] C. A. Brebbia,et al. Water Resources Management III , 2005 .
[32] T. Leyh,et al. The Mycobacterium tuberculosis cysD and cysNC genes form a stress-induced operon that encodes a tri-functional sulfate-activating complex. , 2004, Microbiology.
[33] Y. Rojanasakul,et al. Role of Reactive Oxygen Species and p53 in Chromium(VI)-induced Apoptosis* , 1999, The Journal of Biological Chemistry.
[34] M. Quadroni,et al. Short- and long-term changes in proteome composition and kinetic properties in a culture of Escherichia coli during transition from glucose-excess to glucose-limited growth conditions in continuous culture and vice versa. , 2001, Environmental microbiology.
[35] T. Leisinger,et al. Characterization of a Two-component Alkanesulfonate Monooxygenase from Escherichia coli* , 1999, The Journal of Biological Chemistry.
[36] Stanley N Cohen,et al. SOS Response Induction by ß-Lactams and Bacterial Defense Against Antibiotic Lethality , 2004, Science.
[37] X. Shi,et al. On the mechanism of the chromate reduction by glutathione: ESR evidence for the glutathionyl radical and an isolable Cr(V) intermediate. , 1988, Biochemical and biophysical research communications.
[38] M. Radmacher,et al. pH Regulates Genes for Flagellar Motility, Catabolism, and Oxidative Stress in Escherichia coli K-12 , 2005, Journal of bacteriology.
[39] A. Matin,et al. Mechanism of chromate reduction by the Escherichia coli protein, NfsA, and the role of different chromate reductases in minimizing oxidative stress during chromate reduction. , 2004, Environmental microbiology.
[40] T. Silhavy,et al. Escherichia coli Starvation Diets: Essential Nutrients Weigh in Distinctly , 2005, Journal of bacteriology.
[41] A. Bourg,et al. Aqueous geochemistry of chromium: A review , 1991 .
[42] O. Carmel-Harel,et al. Roles of the glutathione- and thioredoxin-dependent reduction systems in the Escherichia coli and saccharomyces cerevisiae responses to oxidative stress. , 2000, Annual review of microbiology.
[43] T. Raivio. Faculty Opinions recommendation of SOS response induction by beta-lactams and bacterial defense against antibiotic lethality. , 2004 .
[44] R. Guerrero,et al. Induction of SOS genes of Escherichia coli by chromium compounds. , 1986, Environmental mutagenesis.
[45] George M Church,et al. A microarray-based antibiotic screen identifies a regulatory role for supercoiling in the osmotic stress response of Escherichia coli. , 2003, Genome research.
[46] B. Ames,et al. Mutagenicity of inorganic compounds in Salmonella typhimurium: arsenic, chromium and selenium , 1978 .
[47] Á. Leitão,et al. Hydrogen peroxide effects in Escherichia coli cells. , 1998, Acta biochimica Polonica.