Articles | Volume 16, issue 3
https://doi.org/10.5194/bg-16-811-2019
https://doi.org/10.5194/bg-16-811-2019
Research article
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13 Feb 2019
Research article | Highlight paper |  | 13 Feb 2019

Mineral formation induced by cable bacteria performing long-distance electron transport in marine sediments

Nicole M. J. Geerlings, Eva-Maria Zetsche, Silvia Hidalgo-Martinez, Jack J. Middelburg, and Filip J. R. Meysman

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Cited articles

Bassim, N. D., De Gregorio, B. T., Kilcoyne, A. L. D., Scott, K., Chou, T., Wirick, S., Cody, G., and Stroud, R. M.: Minimizing damage during FIB sample preparation of soft materials, J. Microsc., 245, 288–301, https://doi.org/10.1111/j.1365-2818.2011.03570.x, 2012. 
Benzerara, K., Menguy, N., Guyot, F., Skouri, F., de Luca, G., Barakat, M., and Heulin, T.: Biologically controlled precipitation of calcium phosphate by Ramlibacter tataouinensis, Earth Planet. Sc. Lett., 228, 439–449, https://doi.org/10.1016/j.epsl.2004.09.030, 2004. 
Benzerara, K., Morin, G., Yoon, T. H., Miot, J., Tyliszczak, T., Casiot, C., Bruneel, O., Farges, F., and Brown, G. E.: Nanoscale study of As biomineralization in an acid mine drainage system, Geochim. Cosmochim. Ac., 72, 3949–3963, https://doi.org/10.1016/j.gca.2008.05.046, 2008. 
Benzerara, K., Miot, J., Morin, G., Ona-Nguema, G., Skouri-Panet, F., and Férard, C.: Significance, mechanisms and environmental implications of microbial biomineralization, C.R. Geosci., 343, 160–167, https://doi.org/10.1016/j.crte.2010.09.002, 2011. 
Beveridge, T. J.: Structures of gram-negative cell walls and their derived membrane vesicles, J. Bacteriol., 181, 4725–4733, 1999. 
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Short summary
Multicellular cable bacteria form long filaments that can reach lengths of several centimeters. They affect the chemistry and mineralogy of their surroundings and vice versa. How the surroundings affect the cable bacteria is investigated. They show three different types of biomineral formation: (1) a polymer containing phosphorus in their cells, (2) a sheath of clay surrounding the surface of the filament and (3) the encrustation of a filament via a solid phase containing iron and phosphorus.
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