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Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment

The artificial mineralization of a polyresistant bacterial strain isolated from an acidic, oligotrophic lake was carried out to better understand microbial (i) early mineralization and (ii) potential for further fossilisation. Mineralization was conducted in mineral matrixes commonly found on Mars a...

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Autores principales: Gaboyer, F., Le Milbeau, C., Bohmeier, M., Schwendner, P., Vannier, P., Beblo-Vranesevic, K., Rabbow, E., Foucher, F., Gautret, P., Guégan, R., Richard, A., Sauldubois, A., Richmann, P., Perras, A. K., Moissl-Eichinger, C., Cockell, C. S., Rettberg, P., Marteinsson, Monaghan, E., Ehrenfreund, P., Garcia-Descalzo, L., Gomez, F., Malki, M., Amils, R., Cabezas, P., Walter, N., Westall, F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5562696/
https://www.ncbi.nlm.nih.gov/pubmed/28821776
http://dx.doi.org/10.1038/s41598-017-08929-4
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author Gaboyer, F.
Le Milbeau, C.
Bohmeier, M.
Schwendner, P.
Vannier, P.
Beblo-Vranesevic, K.
Rabbow, E.
Foucher, F.
Gautret, P.
Guégan, R.
Richard, A.
Sauldubois, A.
Richmann, P.
Perras, A. K.
Moissl-Eichinger, C.
Cockell, C. S.
Rettberg, P.
Marteinsson
Monaghan, E.
Ehrenfreund, P.
Garcia-Descalzo, L.
Gomez, F.
Malki, M.
Amils, R.
Cabezas, P.
Walter, N.
Westall, F.
author_facet Gaboyer, F.
Le Milbeau, C.
Bohmeier, M.
Schwendner, P.
Vannier, P.
Beblo-Vranesevic, K.
Rabbow, E.
Foucher, F.
Gautret, P.
Guégan, R.
Richard, A.
Sauldubois, A.
Richmann, P.
Perras, A. K.
Moissl-Eichinger, C.
Cockell, C. S.
Rettberg, P.
Marteinsson
Monaghan, E.
Ehrenfreund, P.
Garcia-Descalzo, L.
Gomez, F.
Malki, M.
Amils, R.
Cabezas, P.
Walter, N.
Westall, F.
author_sort Gaboyer, F.
collection PubMed
description The artificial mineralization of a polyresistant bacterial strain isolated from an acidic, oligotrophic lake was carried out to better understand microbial (i) early mineralization and (ii) potential for further fossilisation. Mineralization was conducted in mineral matrixes commonly found on Mars and Early-Earth, silica and gypsum, for 6 months. Samples were analyzed using microbiological (survival rates), morphological (electron microscopy), biochemical (GC-MS, Microarray immunoassay, Rock-Eval) and spectroscopic (EDX, FTIR, RAMAN spectroscopy) methods. We also investigated the impact of physiological status on mineralization and long-term fossilisation by exposing cells or not to Mars-related stresses (desiccation and radiation). Bacterial populations remained viable after 6 months although the kinetics of mineralization and cell-mineral interactions depended on the nature of minerals. Detection of biosignatures strongly depended on analytical methods, successful with FTIR and EDX but not with RAMAN and immunoassays. Neither influence of stress exposure, nor qualitative and quantitative changes of detected molecules were observed as a function of mineralization time and matrix. Rock-Eval analysis suggests that potential for preservation on geological times may be possible only with moderate diagenetic and metamorphic conditions. The implications of our results for microfossil preservation in the geological record of Earth as well as on Mars are discussed.
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spelling pubmed-55626962017-08-21 Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment Gaboyer, F. Le Milbeau, C. Bohmeier, M. Schwendner, P. Vannier, P. Beblo-Vranesevic, K. Rabbow, E. Foucher, F. Gautret, P. Guégan, R. Richard, A. Sauldubois, A. Richmann, P. Perras, A. K. Moissl-Eichinger, C. Cockell, C. S. Rettberg, P. Marteinsson Monaghan, E. Ehrenfreund, P. Garcia-Descalzo, L. Gomez, F. Malki, M. Amils, R. Cabezas, P. Walter, N. Westall, F. Sci Rep Article The artificial mineralization of a polyresistant bacterial strain isolated from an acidic, oligotrophic lake was carried out to better understand microbial (i) early mineralization and (ii) potential for further fossilisation. Mineralization was conducted in mineral matrixes commonly found on Mars and Early-Earth, silica and gypsum, for 6 months. Samples were analyzed using microbiological (survival rates), morphological (electron microscopy), biochemical (GC-MS, Microarray immunoassay, Rock-Eval) and spectroscopic (EDX, FTIR, RAMAN spectroscopy) methods. We also investigated the impact of physiological status on mineralization and long-term fossilisation by exposing cells or not to Mars-related stresses (desiccation and radiation). Bacterial populations remained viable after 6 months although the kinetics of mineralization and cell-mineral interactions depended on the nature of minerals. Detection of biosignatures strongly depended on analytical methods, successful with FTIR and EDX but not with RAMAN and immunoassays. Neither influence of stress exposure, nor qualitative and quantitative changes of detected molecules were observed as a function of mineralization time and matrix. Rock-Eval analysis suggests that potential for preservation on geological times may be possible only with moderate diagenetic and metamorphic conditions. The implications of our results for microfossil preservation in the geological record of Earth as well as on Mars are discussed. Nature Publishing Group UK 2017-08-18 /pmc/articles/PMC5562696/ /pubmed/28821776 http://dx.doi.org/10.1038/s41598-017-08929-4 Text en © The Author(s) 2017 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Gaboyer, F.
Le Milbeau, C.
Bohmeier, M.
Schwendner, P.
Vannier, P.
Beblo-Vranesevic, K.
Rabbow, E.
Foucher, F.
Gautret, P.
Guégan, R.
Richard, A.
Sauldubois, A.
Richmann, P.
Perras, A. K.
Moissl-Eichinger, C.
Cockell, C. S.
Rettberg, P.
Marteinsson
Monaghan, E.
Ehrenfreund, P.
Garcia-Descalzo, L.
Gomez, F.
Malki, M.
Amils, R.
Cabezas, P.
Walter, N.
Westall, F.
Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment
title Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment
title_full Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment
title_fullStr Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment
title_full_unstemmed Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment
title_short Mineralization and Preservation of an extremotolerant Bacterium Isolated from an Early Mars Analog Environment
title_sort mineralization and preservation of an extremotolerant bacterium isolated from an early mars analog environment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5562696/
https://www.ncbi.nlm.nih.gov/pubmed/28821776
http://dx.doi.org/10.1038/s41598-017-08929-4
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