Electrochemical Gating of Tricarboxylic Acid Cycle in Electricity-Producing Bacterial Cells of Shewanella
暂无分享,去创建一个
[1] A. Okamoto,et al. Rate enhancement of bacterial extracellular electron transport involves bound flavin semiquinones , 2013, Proceedings of the National Academy of Sciences.
[2] Shoichi Matsuda,et al. Feedback stabilization involving redox states of c-type cytochromes in living bacteria. , 2011, Chemical communications.
[3] Shoichi Matsuda,et al. Redox-responsive switching in bacterial respiratory pathways involving extracellular electron transfer. , 2010, ChemSusChem.
[4] Jing-Yuan Wang,et al. Electrode potential regulates cytochrome accumulation on Shewanella oneidensis cell surface and the consequence to bioelectrocatalytic current generation. , 2010, Biosensors & bioelectronics.
[5] Kazuya Watanabe,et al. Disruption of the Putative Cell Surface Polysaccharide Biosynthesis Gene SO3177 in Shewanella oneidensis MR-1 Enhances Adhesion to Electrodes and Current Generation in Microbial Fuel Cells , 2010, Applied and Environmental Microbiology.
[6] K. A. Hunt,et al. Substrate-Level Phosphorylation Is the Primary Source of Energy Conservation during Anaerobic Respiration of Shewanella oneidensis Strain MR-1 , 2010, Journal of bacteriology.
[7] K. Hashimoto,et al. Electronic absorption spectra and redox properties of C type cytochromes in living microbes. , 2009, Angewandte Chemie.
[8] Grigoriy E. Pinchuk,et al. Towards environmental systems biology of Shewanella , 2008, Nature Reviews Microbiology.
[9] Yinjie J. Tang,et al. Anaerobic Central Metabolic Pathways in Shewanella oneidensis MR-1 Reinterpreted in the Light of Isotopic Metabolite Labeling , 2006, Journal of bacteriology.
[10] Jeffrey Green,et al. Bacterial redox sensors , 2004, Nature Reviews Microbiology.
[11] E. Lin,et al. Quinones as the Redox Signal for the Arc Two-Component System of Bacteria , 2001, Science.
[12] S. Kaplan,et al. Redox signaling: globalization of gene expression , 2000, The EMBO journal.
[13] F. Armstrong,et al. Voltammetric studies of bidirectional catalytic electron transport in Escherichia coli succinate dehydrogenase: comparison with the enzyme from beef heart mitochondria. , 1999, Biochimica et biophysica acta.
[14] A. S. Lynch,et al. In vitro phosphorylation study of the arc two-component signal transduction system of Escherichia coli , 1997, Journal of bacteriology.
[15] F. Armstrong,et al. Electrocatalytic Voltammetry of Succinate Dehydrogenase: Direct Quantification of the Catalytic Properties of a Complex Electron-Transport Enzyme , 1996 .
[16] F. Armstrong,et al. Classification of fumarate reductases and succinate dehydrogenases based upon their contrasting behaviour in the reduced benzylviologen/fumarate assay , 1993, FEBS letters.
[17] F. Armstrong,et al. Diode-like behaviour of a mitochondrial electron-transport enzyme , 1992, Nature.
[18] K. Nealson,et al. Microbial reduction of manganese and iron: new approaches to carbon cycling , 1992, Applied and environmental microbiology.
[19] E. Lin,et al. arcA (dye), a global regulatory gene in Escherichia coli mediating repression of enzymes in aerobic pathways. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[20] T. Bird,et al. Mechanisms for redox control of gene expression. , 1999, Annual Review of Microbiology.
[21] S. Iuchi,et al. arcA(dye),大腸菌において好気経路の酵素を抑える働きをする全体的な制御遺伝子 , 1988 .