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Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt

The Iberian Pyrite Belt (IPB) is one of the largest deposits of sulphidic minerals on Earth. Río Tinto raises from its core, presenting low a pH and high metal concentration. Several drilling cores were extracted from the IPB’s subsurface, and strain T2.3D-1.1 was isolated from a core at 121.8 m dep...

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Autores principales: Mateos, Guillermo, Bonilla, Adrián Martínez, de Francisco de Polanco, Sofía, Martínez, José M., Escudero, Cristina, Rodríguez, Nuria, Sánchez-Andrea, Irene, Amils, Ricardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415397/
https://www.ncbi.nlm.nih.gov/pubmed/36014003
http://dx.doi.org/10.3390/microorganisms10081585
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author Mateos, Guillermo
Bonilla, Adrián Martínez
de Francisco de Polanco, Sofía
Martínez, José M.
Escudero, Cristina
Rodríguez, Nuria
Sánchez-Andrea, Irene
Amils, Ricardo
author_facet Mateos, Guillermo
Bonilla, Adrián Martínez
de Francisco de Polanco, Sofía
Martínez, José M.
Escudero, Cristina
Rodríguez, Nuria
Sánchez-Andrea, Irene
Amils, Ricardo
author_sort Mateos, Guillermo
collection PubMed
description The Iberian Pyrite Belt (IPB) is one of the largest deposits of sulphidic minerals on Earth. Río Tinto raises from its core, presenting low a pH and high metal concentration. Several drilling cores were extracted from the IPB’s subsurface, and strain T2.3D-1.1 was isolated from a core at 121.8 m depth. We aimed to characterize this subterranean microorganism, revealing its phylogenomic affiliation (Average Nucleotide Identity, digital DNA-DNA Hybridization) and inferring its physiology through genome annotation, backed with physiological experiments to explore its relationship with the Fe biogeochemical cycle. Results determined that the isolate belongs to the Shewanella putrefaciens (with ANI 99.25 with S. putrefaciens CN-32). Its genome harbours the necessary genes, including omcA mtrCAB, to perform the Extracellular Electron Transfer (EET) and reduce acceptors such as Fe(3+), napAB to reduce NO(3)(−) to NO(2)(−), hydAB to produce H(2) and genes sirA, phsABC and ttrABC to reduce SO(3)(2−), S(2)O(3)(2−) and S(4)O(6)(2−), respectively. A full CRISPR-Cas 1F type system was found as well. S. putrefaciens T2.3D-1.1 can reduce Fe(3+) and promote the oxidation of Fe(2+) in the presence of NO(3)(−) under anaerobic conditions. Production of H(2) has been observed under anaerobic conditions with lactate or pyruvate as the electron donor and fumarate as the electron acceptor. Besides Fe(3+) and NO(3)(−), the isolate also grows with Dimethyl Sulfoxide and Trimethyl N-oxide, S(4)O(6)(2−) and S(2)O(3)(2−) as electron acceptors. It tolerates different concentrations of heavy metals such as 7.5 mM of Pb, 5 mM of Cr and Cu and 1 mM of Cd, Co, Ni and Zn. This array of traits suggests that S. putrefaciens T2.3D-1.1 could have an important role within the Iberian Pyrite Belt subsurface participating in the iron cycle, through the dissolution of iron minerals and therefore contributing to generate the extreme conditions detected in the Río Tinto basin.
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spelling pubmed-94153972022-08-27 Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt Mateos, Guillermo Bonilla, Adrián Martínez de Francisco de Polanco, Sofía Martínez, José M. Escudero, Cristina Rodríguez, Nuria Sánchez-Andrea, Irene Amils, Ricardo Microorganisms Article The Iberian Pyrite Belt (IPB) is one of the largest deposits of sulphidic minerals on Earth. Río Tinto raises from its core, presenting low a pH and high metal concentration. Several drilling cores were extracted from the IPB’s subsurface, and strain T2.3D-1.1 was isolated from a core at 121.8 m depth. We aimed to characterize this subterranean microorganism, revealing its phylogenomic affiliation (Average Nucleotide Identity, digital DNA-DNA Hybridization) and inferring its physiology through genome annotation, backed with physiological experiments to explore its relationship with the Fe biogeochemical cycle. Results determined that the isolate belongs to the Shewanella putrefaciens (with ANI 99.25 with S. putrefaciens CN-32). Its genome harbours the necessary genes, including omcA mtrCAB, to perform the Extracellular Electron Transfer (EET) and reduce acceptors such as Fe(3+), napAB to reduce NO(3)(−) to NO(2)(−), hydAB to produce H(2) and genes sirA, phsABC and ttrABC to reduce SO(3)(2−), S(2)O(3)(2−) and S(4)O(6)(2−), respectively. A full CRISPR-Cas 1F type system was found as well. S. putrefaciens T2.3D-1.1 can reduce Fe(3+) and promote the oxidation of Fe(2+) in the presence of NO(3)(−) under anaerobic conditions. Production of H(2) has been observed under anaerobic conditions with lactate or pyruvate as the electron donor and fumarate as the electron acceptor. Besides Fe(3+) and NO(3)(−), the isolate also grows with Dimethyl Sulfoxide and Trimethyl N-oxide, S(4)O(6)(2−) and S(2)O(3)(2−) as electron acceptors. It tolerates different concentrations of heavy metals such as 7.5 mM of Pb, 5 mM of Cr and Cu and 1 mM of Cd, Co, Ni and Zn. This array of traits suggests that S. putrefaciens T2.3D-1.1 could have an important role within the Iberian Pyrite Belt subsurface participating in the iron cycle, through the dissolution of iron minerals and therefore contributing to generate the extreme conditions detected in the Río Tinto basin. MDPI 2022-08-06 /pmc/articles/PMC9415397/ /pubmed/36014003 http://dx.doi.org/10.3390/microorganisms10081585 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mateos, Guillermo
Bonilla, Adrián Martínez
de Francisco de Polanco, Sofía
Martínez, José M.
Escudero, Cristina
Rodríguez, Nuria
Sánchez-Andrea, Irene
Amils, Ricardo
Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt
title Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt
title_full Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt
title_fullStr Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt
title_full_unstemmed Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt
title_short Shewanella sp. T2.3D-1.1 a Novel Microorganism Sustaining the Iron Cycle in the Deep Subsurface of the Iberian Pyrite Belt
title_sort shewanella sp. t2.3d-1.1 a novel microorganism sustaining the iron cycle in the deep subsurface of the iberian pyrite belt
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415397/
https://www.ncbi.nlm.nih.gov/pubmed/36014003
http://dx.doi.org/10.3390/microorganisms10081585
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