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Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability

We present the hypothesis that microorganisms can change the freezing/melting curve of cold salty solutions by protein expression, as it is known that proteins can affect the liquid-to-ice transition, an ability that could be of ecological advantage for organisms on Earth and on Mars. We tested our...

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Autores principales: Garcia-Descalzo, Laura, Gil-Lozano, Carolina, Muñoz-Iglesias, Victoria, Prieto-Ballesteros, Olga, Azua-Bustos, Armando, Fairén, Alberto G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Mary Ann Liebert, Inc., publishers 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116095/
https://www.ncbi.nlm.nih.gov/pubmed/32833498
http://dx.doi.org/10.1089/ast.2019.2094
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author Garcia-Descalzo, Laura
Gil-Lozano, Carolina
Muñoz-Iglesias, Victoria
Prieto-Ballesteros, Olga
Azua-Bustos, Armando
Fairén, Alberto G.
author_facet Garcia-Descalzo, Laura
Gil-Lozano, Carolina
Muñoz-Iglesias, Victoria
Prieto-Ballesteros, Olga
Azua-Bustos, Armando
Fairén, Alberto G.
author_sort Garcia-Descalzo, Laura
collection PubMed
description We present the hypothesis that microorganisms can change the freezing/melting curve of cold salty solutions by protein expression, as it is known that proteins can affect the liquid-to-ice transition, an ability that could be of ecological advantage for organisms on Earth and on Mars. We tested our hypothesis by identifying a suitable candidate, the well-known psycrophile and halotolerant bacteria Rhodococcus sp. JG3, and analyzing its response in culture conditions that included specific hygroscopic salts relevant to Mars—that is, highly concentrated magnesium perchlorate solutions of 20 wt % and 50 wt % Mg(ClO(4))(2) at both end members of the eutectic concentration (44 wt %)—and subfreezing temperatures (263 K and 253 K). Using a combination of techniques of molecular microbiology and aqueous geochemistry, we evaluated the potential roles of proteins over- or underexpressed as important players in different mechanisms for the adaptability of life to cold environments. We recorded the changes observed by micro-differential scanning calorimetry. Unfortunately, Rhodococcus sp. JG3 did not show our hypothesized effect on the melting characteristics of cold Mg-perchlorate solutions. However, the question remains as to whether our novel hypothesis that halophilic/psychrophilic bacteria or archaea can alter the freezing/melting curve of salt solutions could be validated. The null result obtained after analyzing just one case lays the foundation to continue the search for proteins produced by microorganisms that thrive in very cold, high-saline solutions, which would involve testing different microorganisms with different salt components. The immediate implications for the habitability of Mars are discussed.
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spelling pubmed-71160952020-09-17 Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability Garcia-Descalzo, Laura Gil-Lozano, Carolina Muñoz-Iglesias, Victoria Prieto-Ballesteros, Olga Azua-Bustos, Armando Fairén, Alberto G. Astrobiology Special Collection Articles We present the hypothesis that microorganisms can change the freezing/melting curve of cold salty solutions by protein expression, as it is known that proteins can affect the liquid-to-ice transition, an ability that could be of ecological advantage for organisms on Earth and on Mars. We tested our hypothesis by identifying a suitable candidate, the well-known psycrophile and halotolerant bacteria Rhodococcus sp. JG3, and analyzing its response in culture conditions that included specific hygroscopic salts relevant to Mars—that is, highly concentrated magnesium perchlorate solutions of 20 wt % and 50 wt % Mg(ClO(4))(2) at both end members of the eutectic concentration (44 wt %)—and subfreezing temperatures (263 K and 253 K). Using a combination of techniques of molecular microbiology and aqueous geochemistry, we evaluated the potential roles of proteins over- or underexpressed as important players in different mechanisms for the adaptability of life to cold environments. We recorded the changes observed by micro-differential scanning calorimetry. Unfortunately, Rhodococcus sp. JG3 did not show our hypothesized effect on the melting characteristics of cold Mg-perchlorate solutions. However, the question remains as to whether our novel hypothesis that halophilic/psychrophilic bacteria or archaea can alter the freezing/melting curve of salt solutions could be validated. The null result obtained after analyzing just one case lays the foundation to continue the search for proteins produced by microorganisms that thrive in very cold, high-saline solutions, which would involve testing different microorganisms with different salt components. The immediate implications for the habitability of Mars are discussed. Mary Ann Liebert, Inc., publishers 2020-09-01 2020-09-15 /pmc/articles/PMC7116095/ /pubmed/32833498 http://dx.doi.org/10.1089/ast.2019.2094 Text en © Laura Garcia-Descalzo et al., 2020; Published by Mary Ann Liebert, Inc. This Open Access article is distributed under the terms of the Creative Commons Attribution Noncommercial License (http://creativecommons.org/licenses/by-nc/4.0/) which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Special Collection Articles
Garcia-Descalzo, Laura
Gil-Lozano, Carolina
Muñoz-Iglesias, Victoria
Prieto-Ballesteros, Olga
Azua-Bustos, Armando
Fairén, Alberto G.
Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability
title Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability
title_full Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability
title_fullStr Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability
title_full_unstemmed Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability
title_short Can Halophilic and Psychrophilic Microorganisms Modify the Freezing/Melting Curve of Cold Salty Solutions? Implications for Mars Habitability
title_sort can halophilic and psychrophilic microorganisms modify the freezing/melting curve of cold salty solutions? implications for mars habitability
topic Special Collection Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116095/
https://www.ncbi.nlm.nih.gov/pubmed/32833498
http://dx.doi.org/10.1089/ast.2019.2094
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