Hydrated Cable Bacteria Exhibit Protonic Conductivity Over Long Distances

Fuente: arXiv
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Main Authors: Lusk, Bradley G., Morgan, Sheba, Mulvaney, Shawn P., Blue, Brandon, LaGasse, Samuel W., Cress, Cory D., Bjerg, Jesper T., Lee, Woo K., Eddie, Brian J., Robinson, Jeremy T.
Format: Preprint
Published: 2025
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author Lusk, Bradley G.
Morgan, Sheba
Mulvaney, Shawn P.
Blue, Brandon
LaGasse, Samuel W.
Cress, Cory D.
Bjerg, Jesper T.
Lee, Woo K.
Eddie, Brian J.
Robinson, Jeremy T.
author_facet Lusk, Bradley G.
Morgan, Sheba
Mulvaney, Shawn P.
Blue, Brandon
LaGasse, Samuel W.
Cress, Cory D.
Bjerg, Jesper T.
Lee, Woo K.
Eddie, Brian J.
Robinson, Jeremy T.
contents This study presents the direct measurement of proton transport along filamentous Desulfobulbaceae, or cable bacteria. Cable bacteria are filamentous multicellular microorganisms that have garnered much interest due to their ability to serve as electrical conduits, transferring electrons over several millimeters. Our results indicate that cable bacteria can also function as protonic conduits because they contain proton wires that transport protons at distances greater than 100 um. We find that protonic conductivity (σP) along cable bacteria varies between samples and is measured as high as 114 +/- 28 uS cm^-1 at 25-degrees C and 70-percent relative humidity (RH). For cable bacteria, the protonic conductance (GP) and σP are dependent upon the RH, increasing by as much as 26-fold between 60-percent and 80-percent RH. This observation implies that proton transport occurs via the Grotthuss mechanism along water associated with cable bacteria, forming proton wires. In order to determine σP and GP along cable bacteria, we implemented a protocol using a modified transfer-printing technique to deposit either palladium interdigitated protodes (IDP), palladium transfer length method (TLM) protodes, or gold interdigitated electrodes(IDE) on top of cable bacteria. Due to the relatively mild nature of the transfer-printing technique, this method should be applicable to a broad array of biological samples and curved materials. The observation of protonic conductivity in cable bacteria presents possibilities for investigating the importance of long-distance proton transport in microbial ecosystems and to potentially build biotic or biomimetic scaffolds to interface with materials via proton-mediated gateways or channels.
format Preprint
id arxiv_https___arxiv_org_abs_2501_18651
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Hydrated Cable Bacteria Exhibit Protonic Conductivity Over Long Distances
Lusk, Bradley G.
Morgan, Sheba
Mulvaney, Shawn P.
Blue, Brandon
LaGasse, Samuel W.
Cress, Cory D.
Bjerg, Jesper T.
Lee, Woo K.
Eddie, Brian J.
Robinson, Jeremy T.
Biological Physics
Materials Science
Soft Condensed Matter
Biomolecules
This study presents the direct measurement of proton transport along filamentous Desulfobulbaceae, or cable bacteria. Cable bacteria are filamentous multicellular microorganisms that have garnered much interest due to their ability to serve as electrical conduits, transferring electrons over several millimeters. Our results indicate that cable bacteria can also function as protonic conduits because they contain proton wires that transport protons at distances greater than 100 um. We find that protonic conductivity (σP) along cable bacteria varies between samples and is measured as high as 114 +/- 28 uS cm^-1 at 25-degrees C and 70-percent relative humidity (RH). For cable bacteria, the protonic conductance (GP) and σP are dependent upon the RH, increasing by as much as 26-fold between 60-percent and 80-percent RH. This observation implies that proton transport occurs via the Grotthuss mechanism along water associated with cable bacteria, forming proton wires. In order to determine σP and GP along cable bacteria, we implemented a protocol using a modified transfer-printing technique to deposit either palladium interdigitated protodes (IDP), palladium transfer length method (TLM) protodes, or gold interdigitated electrodes(IDE) on top of cable bacteria. Due to the relatively mild nature of the transfer-printing technique, this method should be applicable to a broad array of biological samples and curved materials. The observation of protonic conductivity in cable bacteria presents possibilities for investigating the importance of long-distance proton transport in microbial ecosystems and to potentially build biotic or biomimetic scaffolds to interface with materials via proton-mediated gateways or channels.
title Hydrated Cable Bacteria Exhibit Protonic Conductivity Over Long Distances
topic Biological Physics
Materials Science
Soft Condensed Matter
Biomolecules
url https://arxiv.org/abs/2501.18651