Flagella act as Geobacter biofilm scaffolds to stabilize biofilm and facilitate extracellular electron transfer.
暂无分享,去创建一个
[1] D. Lovley,et al. A pilin chaperone required for the expression of electrically conductive Geobacter sulfurreducens pili. , 2019, Environmental microbiology.
[2] E. Egelman,et al. Structure of Microbial Nanowires Reveals Stacked Hemes that Transport Electrons over Micrometers , 2019, Cell.
[3] Shungui Zhou,et al. Two Modes of Riboflavin-Mediated Extracellular Electron Transfer in Geobacter uraniireducens , 2018, Front. Microbiol..
[4] C. Rensing,et al. Syntrophic growth with direct interspecies electron transfer between pili-free Geobacter species , 2018, The ISME Journal.
[5] Zhen He,et al. Enhancing sludge methanogenesis with improved redox activity of extracellular polymeric substances by hematite in red mud. , 2018, Water research.
[6] J. Chae,et al. Microbial activity influences electrical conductivity of biofilm anode. , 2017, Water research.
[7] Kelly P. Nevin,et al. Expressing the Geobacter metallireducens PilA in Geobacter sulfurreducens Yields Pili with Exceptional Conductivity , 2017, mBio.
[8] A. Torriero,et al. Microbial Nanowires: An Electrifying Tale. , 2016, Microbiology.
[9] G. Reguera,et al. Mechanistic stratification in electroactive biofilms of Geobacter sulfurreducens mediated by pilus nanowires , 2016, Nature Communications.
[10] G. Chadwick,et al. Single cell activity reveals direct electron transfer in methanotrophic consortia , 2015, Nature.
[11] K. Cen,et al. Temporal-spatial changes in viabilities and electrochemical properties of anode biofilms. , 2015, Environmental science & technology.
[12] S. Brantley,et al. Abundance of the Multiheme c-Type Cytochrome OmcB Increases in Outer Biofilm Layers of Electrode-Grown Geobacter sulfurreducens , 2014, PloS one.
[13] Kelly P. Nevin,et al. A Geobacter sulfurreducens Strain Expressing Pseudomonas aeruginosa Type IV Pili Localizes OmcS on Pili but Is Deficient in Fe(III) Oxide Reduction and Current Production , 2013, Applied and Environmental Microbiology.
[14] Sarah B. Guttenplan,et al. Regulation of flagellar motility during biofilm formation. , 2013, FEMS microbiology reviews.
[15] H. Beyenal,et al. METABOLIC SPATIAL VARIABILITY IN ELECTRODE-RESPIRING GEOBACTER SULFURREDUCENS BIOFILMS. , 2013, Energy & environmental science.
[16] Derek R. Lovley,et al. Engineering Geobacter sulfurreducens to produce a highly cohesive conductive matrix with enhanced capacity for current production , 2013 .
[17] Kelly P. Nevin,et al. Aromatic Amino Acids Required for Pili Conductivity and Long-Range Extracellular Electron Transport in Geobacter sulfurreducens , 2013, mBio.
[18] J. Busalmen,et al. Limitations for current production in Geobacter sulfurreducens biofilms. , 2013, ChemSusChem.
[19] Regine Hengge,et al. Microanatomy at Cellular Resolution and Spatial Order of Physiological Differentiation in a Bacterial Biofilm , 2013, mBio.
[20] Derek R. Lovley,et al. Aromatic Amino Acids Required for Pili Conductivity and Long-Range Extracellular Electron Transport in Geobacter sulfurreducens , 2013, mBio.
[21] J. P. Tomba,et al. Spectroscopic slicing to reveal internal redox gradients in electricity-producing biofilms. , 2013, Angewandte Chemie.
[22] Hanqing Yu,et al. A novel integrated approach to quantitatively evaluate the efficiency of extracellular polymeric substances (EPS) extraction process , 2012, Applied Microbiology and Biotechnology.
[23] H. Nguyen,et al. pH, redox potential and local biofilm potential microenvironments within Geobacter sulfurreducens biofilms and their roles in electron transfer , 2012, Biotechnology and bioengineering.
[24] Leonard M. Tender,et al. Long-range electron transport in Geobacter sulfurreducens biofilms is redox gradient-driven , 2012, Proceedings of the National Academy of Sciences.
[25] Leonard M Tender,et al. On electron transport through Geobacter biofilms. , 2012, ChemSusChem.
[26] Derek R Lovley,et al. Real-time spatial gene expression analysis within current-producing biofilms. , 2012, ChemSusChem.
[27] V. O’Flaherty,et al. Charge transport through Geobacter sulfurreducens biofilms grown on graphite rods. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[28] Germán David Schrott,et al. Charge accumulation and electron transfer kinetics in Geobacter sulfurreducens biofilms , 2012 .
[29] C. Leang,et al. Identification of Multicomponent Histidine-Aspartate Phosphorelay System Controlling Flagellar and Motility Gene Expression in Geobacter Species* , 2012, The Journal of Biological Chemistry.
[30] Derek R. Lovley,et al. Biofilm conductivity is a decisive variable for high-current-density Geobacter sulfurreducens microbial fuel cells , 2012 .
[31] Anthony Guiseppi-Elie,et al. On the electrical conductivity of microbial nanowires and biofilms , 2011 .
[32] Byoung-Chan Kim,et al. Tunable metallic-like conductivity in microbial nanowire networks. , 2011, Nature nanotechnology.
[33] Ching Leang,et al. Specific localization of the c-type cytochrome OmcZ at the anode surface in current-producing biofilms of Geobacter sulfurreducens. , 2011, Environmental microbiology reports.
[34] Derek R. Lovley,et al. Application of cyclic voltammetry to investigate enhanced catalytic current generation by biofilm-modified anodes of Geobacter sulfurreducens strain DL1 vs. variant strain KN400 , 2011 .
[35] Daniel R. Bond,et al. Identification of an Extracellular Polysaccharide Network Essential for Cytochrome Anchoring and Biofilm Formation in Geobacter sulfurreducens , 2010, Journal of bacteriology.
[36] Rhonda R. Franklin,et al. Gold line array electrodes increase substrate affinity and current density of electricity-producing G. sulfurreducens biofilms , 2010 .
[37] B. Haznedaroglu,et al. Identifying the role of flagella in the transport of motile and nonmotile Salmonella enterica serovars. , 2010, Environmental science & technology.
[38] Jian Sun,et al. Voltammetry and Growth Physiology of Geobacter sulfurreducens Biofilms as a Function of Growth Stage and Imposed Electrode Potential , 2010 .
[39] S. Aymerich,et al. Involvement of motility and flagella in Bacillus cereus biofilm formation. , 2010, Microbiology.
[40] Derek R Lovley,et al. Microtoming coupled to microarray analysis to evaluate the spatial metabolic status of Geobacter sulfurreducens biofilms , 2010, The ISME Journal.
[41] Prathap Parameswaran,et al. Selecting anode-respiring bacteria based on anode potential: phylogenetic, electrochemical, and microscopic characterization. , 2009, Environmental science & technology.
[42] Byoung-Chan Kim,et al. Selection of a variant of Geobacter sulfurreducens with enhanced capacity for current production in microbial fuel cells. , 2009, Biosensors & bioelectronics.
[43] Byoung-Chan Kim,et al. Anode Biofilm Transcriptomics Reveals Outer Surface Components Essential for High Density Current Production in Geobacter sulfurreducens Fuel Cells , 2009, PloS one.
[44] Derek R. Lovley,et al. Cyclic voltammetry of biofilms of wild type and mutant Geobacter sulfurreducens on fuel cell anodes indicates possible roles of OmcB, OmcZ, type IV pili, and protons in extracellular electron transfer , 2009 .
[45] B. Logan. Exoelectrogenic bacteria that power microbial fuel cells , 2009, Nature Reviews Microbiology.
[46] B. Giese,et al. Electron transfer in peptides and proteins. , 2009, Chemical Society reviews.
[47] K. Hashimoto,et al. Electronic absorption spectra and redox properties of C type cytochromes in living microbes. , 2009, Angewandte Chemie.
[48] Hyung-Sool Lee,et al. Carbonate species as OH- carriers for decreasing the pH gradient between cathode and anode in biological fuel cells. , 2008, Environmental science & technology.
[49] Sean F. Covalla,et al. Power output and columbic efficiencies from biofilms of Geobacter sulfurreducens comparable to mixed community microbial fuel cells. , 2008, Environmental microbiology.
[50] Uwe Schröder,et al. On the use of cyclic voltammetry for the study of anodic electron transfer in microbial fuel cells , 2008 .
[51] M. Elimelech,et al. Bacterial swimming motility enhances cell deposition and surface coverage. , 2008, Environmental science & technology.
[52] Sokhee P. Jung,et al. Comparison of anode bacterial communities and performance in microbial fuel cells with different electron donors , 2007, Applied Microbiology and Biotechnology.
[53] D. Lovley,et al. Possible Nonconductive Role of Geobacter sulfurreducens Pilus Nanowires in Biofilm Formation , 2006, Journal of bacteriology.
[54] Bruce E Logan,et al. Microbial fuel cells--challenges and applications. , 2006, Environmental science & technology.
[55] Derek R. Lovley,et al. Biofilm and Nanowire Production Leads to Increased Current in Geobacter sulfurreducens Fuel Cells , 2006, Applied and Environmental Microbiology.
[56] Derek R. Lovley,et al. Geobacter metallireducens accesses insoluble Fe(iii) oxide by chemotaxis , 2002, Nature.
[57] C. Leang,et al. Development of a Genetic System forGeobacter sulfurreducens , 2001, Applied and Environmental Microbiology.
[58] C. Holliger,et al. Localization and Solubilization of the Iron(III) Reductase of Geobacter sulfurreducens , 1998, Applied and Environmental Microbiology.
[59] Ralf Cord-Ruwisch,et al. A Periplasmic and Extracellular c-Type Cytochrome ofGeobacter sulfurreducens Acts as a Ferric Iron Reductase and as an Electron Carrier to Other Acceptors or to Partner Bacteria , 1998, Journal of bacteriology.
[60] P. Thomas,et al. An improved staining procedure for the detection of the peroxidase activity of cytochrome P-450 on sodium dodecyl sulfate polyacrylamide gels. , 1976, Analytical biochemistry.
[61] Roland Cusick,et al. Anode microbial communities produced by changing from microbial fuel cell to microbial electrolysis cell operation using two different wastewaters. , 2011, Bioresource technology.