AbstractThe recent discovery of electrically conductive bacterial appendages has significant physiological, ecological, and biotechnological implications, but the mechanism of electron transport in these nanostructures remains unclear. We here report quantitative measurements of transport across bacterial nanowires produced by the dissimilatory metal-reducing bacterium, Shewanella oneidensis MR-1, whose electron transport system is being investigated for renewable energy recovery in microbial fuel cells and bioremediation of heavy metals and radionuclides. The Shewanella nanowires display a surprising nonlinear electrical transport behavior, where the voltage dependence of the conductance reveals peaks indicating discrete energy levels with...
Long-range (>10 μm) transport of electrons along networks of Geobacter sulfurreducens protei...
Electromicrobiology has gained momentum in the last ten years with advances in microbial fuel cells ...
Extracellular electron transfer (EET) from microorganisms to inorganic electrodes is a unique abilit...
AbstractThe recent discovery of electrically conductive bacterial appendages has significant physiol...
The discovery of electrically conductive bacterial nanowires from a broad range of microbes provides...
Bacterial nanowires are extracellular appendages that have been suggested as pathways for electron t...
The electrogenic bacterium Geobacter synthesizes conductive extracellular nanowires to facilitate el...
Dissimilatory metal-reducing bacteria can extract free energy from their environment by performing e...
Electron transfer is central to cellular life, from photosynthesis to respiration. In the case of an...
2015-04-08In this thesis, we discuss three topics concerning extracellular electron transfer in the ...
ABSTRACT The discovery of bacterial conductive structures, termed nanowires, has intrigued scientist...
This research proposal seeks to describe the composition and function of electrically conductive app...
Bacterial nanowires have garnered recent interest as a proposed extracellular electron transfer (EET...
Conductivity of an individual proteinaceous filaments, called pili or microbial nanowires, produced ...
ABSTRACT The discovery of bacterial conductive structures, termed nanowires, has intrigued scientist...
Long-range (>10 μm) transport of electrons along networks of Geobacter sulfurreducens protei...
Electromicrobiology has gained momentum in the last ten years with advances in microbial fuel cells ...
Extracellular electron transfer (EET) from microorganisms to inorganic electrodes is a unique abilit...
AbstractThe recent discovery of electrically conductive bacterial appendages has significant physiol...
The discovery of electrically conductive bacterial nanowires from a broad range of microbes provides...
Bacterial nanowires are extracellular appendages that have been suggested as pathways for electron t...
The electrogenic bacterium Geobacter synthesizes conductive extracellular nanowires to facilitate el...
Dissimilatory metal-reducing bacteria can extract free energy from their environment by performing e...
Electron transfer is central to cellular life, from photosynthesis to respiration. In the case of an...
2015-04-08In this thesis, we discuss three topics concerning extracellular electron transfer in the ...
ABSTRACT The discovery of bacterial conductive structures, termed nanowires, has intrigued scientist...
This research proposal seeks to describe the composition and function of electrically conductive app...
Bacterial nanowires have garnered recent interest as a proposed extracellular electron transfer (EET...
Conductivity of an individual proteinaceous filaments, called pili or microbial nanowires, produced ...
ABSTRACT The discovery of bacterial conductive structures, termed nanowires, has intrigued scientist...
Long-range (>10 μm) transport of electrons along networks of Geobacter sulfurreducens protei...
Electromicrobiology has gained momentum in the last ten years with advances in microbial fuel cells ...
Extracellular electron transfer (EET) from microorganisms to inorganic electrodes is a unique abilit...