Publications

Export 176 results:
Filters: Keyword is Oxidation-Reduction  [Clear All Filters]
A B C D E F G H I J K L M N O P Q R S T U V W X Y Z 
M
Miletto M, Williams KH, N'Guessan AL, Lovley DR.  2011.  Molecular analysis of the metabolic rates of discrete subsurface populations of sulfate reducers.. Appl Environ Microbiol. 77(18):6502-9.
Franks AE, Nevin KP, Glaven RH, Lovley DR.  2010.  Microtoming coupled to microarray analysis to evaluate the spatial metabolic status of Geobacter sulfurreducens biofilms.. ISME J. 4(4):509-19.
Vargas M, Kashefi K, Blunt-Harris EL, Lovley DR.  1998.  Microbiological evidence for Fe(III) reduction on early Earth.. Nature. 395(6697):65-7.
Malvankar NS, Lovley DR.  2012.  Microbial nanowires: a new paradigm for biological electron transfer and bioelectronics.. ChemSusChem. 5(6):1039-46.
Liang Y, Van Nostrand JD, N'guessan LA, Peacock AD, Deng Y, Long PE, Resch TC, Wu L, He Z, Li G et al..  2012.  Microbial functional gene diversity with a shift of subsurface redox conditions during In Situ uranium reduction.. Appl Environ Microbiol. 78(8):2966-72.
Lekbach Y, Liu T, Li Y, Moradi M, Dou W, Xu D, Smith JA, Lovley DR.  2021.  Microbial corrosion of metals: The corrosion microbiome.. Adv Microb Physiol. 78:317-390.
Rooney-Varga JN, Anderson RT, Fraga JL, Ringelberg D, Lovley DR.  1999.  Microbial communities associated with anaerobic benzene degradation in a petroleum-contaminated aquifer.. Appl Environ Microbiol. 65(7):3056-63.
Deangelis KM, Silver WL, Thompson AW, Firestone MK.  2010.  Microbial communities acclimate to recurring changes in soil redox potential status.. Environ Microbiol. 12(12):3137-49.
Lovley DR.  2022.  Microbe Profile: : a model for novel physiologies of biogeochemical and technological significance.. Microbiology (Reading). 168(2)
Lovley DR.  2008.  The microbe electric: conversion of organic matter to electricity.. Curr Opin Biotechnol. 19(6):564-71.
Holmes DE, Chaudhuri SK, Nevin KP, Mehta T, Methé BA, Liu A, Ward JE, Woodard TL, Webster J, Lovley DR.  2006.  Microarray and genetic analysis of electron transfer to electrodes in Geobacter sulfurreducens.. Environ Microbiol. 8(10):1805-15.
Mackelprang R, Waldrop MP, Deangelis KM, David MM, Chavarria KL, Blazewicz SJ, Rubin EM, Jansson JK.  2011.  Metagenomic analysis of a permafrost microbial community reveals a rapid response to thaw.. Nature. 480(7377):368-71.
Tor JM, Amend JP, Lovley DR.  2003.  Metabolism of organic compounds in anaerobic, hydrothermal sulphate-reducing marine sediments.. Environ Microbiol. 5(7):583-91.
Yang T H, Coppi MV, Lovley DR, Sun J.  2010.  Metabolic response of Geobacter sulfurreducens towards electron donor/acceptor variation.. Microb Cell Fact. 9:90.
Holmes DE, Ueki T, Tang H-Y, Zhou J, Smith JA, Chaput G, Lovley DR.  2019.  A Membrane-Bound Cytochrome Enables To Conserve Energy from Extracellular Electron Transfer.. mBio. 10(4)
Nevin KP, Lovley DR.  2002.  Mechanisms for accessing insoluble Fe(III) oxide during dissimilatory Fe(III) reduction by Geothrix fermentans.. Appl Environ Microbiol. 68(5):2294-9.
T Lin J, Breves EA, Dyar MD, Eecke HCVer, Jamieson JW, Holden JF.  2014.  Magnetite formation from ferrihydrite by hyperthermophilic archaea from Endeavour Segment, Juan de Fuca Ridge hydrothermal vent chimneys.. Geobiology. 12(3):200-11.
Butler JE, Kaufmann F, Coppi MV, Núñez C, Lovley DR.  2004.  MacA, a diheme c-type cytochrome involved in Fe(III) reduction by Geobacter sulfurreducens.. J Bacteriol. 186(12):4042-5.

Pages