On the evolution and physiology of cable bacteria
Creators
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Kjeldsen, Kasper Urup1
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Schreiber, Lars2, 3, 1
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Thorup, Casper1
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Boesen, Thomas1
- Bjerg, Jesper Tataru1
- Yang, Tingting1, 4
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Dueholm, Morten Simonsen5
- Larsen, Steffen1
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Risgaard-Petersen, Nils1
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Nierychlo, Marta5
- Schmid, Markus6
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Bøggild, Andreas1
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van de Vossenberg, Jack7
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Geelhoed, Jeanine S.8
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Meysman, Filip J. R.8, 9
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Wagner, Michael6, 5
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Nielsen, Per Halkjær5
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Nielsen, Lars Peter1
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Schramm, Andreas1
- and 9 more
- 1. Aarhus University
- 2. National Research Council
- 3. Consiglio Nazionale delle Ricerche
- 4. Leibniz Institute for Baltic Sea Research
- 5. Aalborg University
- 6. University of Vienna
- 7. UNESCO-IHE Institute for Water Education
- 8. University of Antwerp
- 9. Delft University of Technology
Description
Cable bacteria of the family Desulfobulbaceae form centimeter-long filaments comprising thousands of cells. They occur worldwide in the surface of aquatic sediments, where they connect sulfide oxidation with oxygen or nitrate reduction via long-distance electron transport. In the absence of pure cultures, we used single-filament genomics and metagenomics to retrieve draft genomes of 3 marine Candidatus Electrothrix and 1 freshwater Ca. Electronema species. These genomes contain >50% unknown genes but still share their core genomic makeup with sulfate-reducing and sulfur-disproportionating Desulfobulbaceae, with few core genes lost and 212 unique genes (from 197 gene families) conserved among cable bacteria. Last common ancestor analysis indicates gene divergence and lateral gene transfer as equally important origins of these unique genes. With support from metaproteomics of a Ca. Electronema enrichment, the genomes suggest that cable bacteria oxidize sulfide by reversing the canonical sulfate reduction pathway and fix CO2 using the Wood-Ljungdahl pathway. Cable bacteria show limited organotrophic potential, may assimilate smaller organic acids and alcohols, fix N2, and synthesize polyphosphates and polyglucose as storage compounds; several of these traits were confirmed by cell-level experimental analyses. We propose a model for electron flow from sulfide to oxygen that involves periplasmic cytochromes, yet-unidentified conductive periplasmic fibers, and periplasmic oxygen reduction. This model proposes that an active cable bacterium gains energy in the anodic, sulfide-oxidizing cells, whereas cells in the oxic zone flare off electrons through intense cathodic oxygen respiration without energy conservation; this peculiar form of multicellularity seems unparalleled in the microbial world.
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Publication Details
Journal article
Journal:
Proceedings of the National Academy of Sciences of the United States of America
ISSN:
10916490
Volume:
116
Pages:
19116-19125
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Funding
References
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