High hydrostatic pressure enhanced the growth of deep-sea by promoting the reduction of elemental sulfur.

Fuente: PubMed
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Jiao, Ze-Xi, Li, Xue-Gong, Zhang, Wei-Jia, Zhang, Guan-Yuan, Bai, Shi-Jie, Fu, Ling, Wu, Long-Fei
Format: Artículo científico
Langue:en
Publié: Frontiers in microbiology 2025
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1868266157475102721
author Jiao, Ze-Xi
Li, Xue-Gong
Zhang, Wei-Jia
Zhang, Guan-Yuan
Bai, Shi-Jie
Fu, Ling
Wu, Long-Fei
author_facet Jiao, Ze-Xi
Li, Xue-Gong
Zhang, Wei-Jia
Zhang, Guan-Yuan
Bai, Shi-Jie
Fu, Ling
Wu, Long-Fei
Jiao, Ze-Xi
Li, Xue-Gong
Zhang, Wei-Jia
Zhang, Guan-Yuan
Bai, Shi-Jie
Fu, Ling
Wu, Long-Fei
collection PubMed - marine biology
contents High hydrostatic pressure enhanced the growth of deep-sea by promoting the reduction of elemental sulfur. Jiao, Ze-Xi Li, Xue-Gong Zhang, Wei-Jia Zhang, Guan-Yuan Bai, Shi-Jie Fu, Ling Wu, Long-Fei species are ubiquitously distributed across both shallow and deep-sea hydrothermal vent ecosystems. Elemental sulfur (S°) reduction plays a pivotal role in their energy metabolism. While extensive characterization of the MBS and MBH pathways, along with their SurR-dependent regulatory network, has been established in shallow-water model strains, understanding of the high hydrostatic pressure (HHP) and sulfur-responsive regulation of these pathways in deep-sea lineages remains limited. In this study, we investigated the effects of HHP on both growth and S° reduction in the deep-sea SY113 strain, as well as its regulatory impact on and expression. Our results demonstrate that HHP enhances both S° reduction and growth in SY113 strain, independent of the general regulator SurR. Genetic disruption of significantly impaired HS production and growth under HHP conditions, establishing the essential role of S° reduction in HHP adaptation. Furthermore, disrupted gene confirmed that a single MBS complex is sufficient to maintain pressure-stimulated growth. The gene expression analysis revealed that the expression of gene is primarily promoted by S°, while the expression of gene is induced by HHP. Moreover, the expression of these genes exhibits correlation. Additionally, we found that the expression of gene, gene, and gene in SY113 strain is not only regulated by SurR, and HHP also plays a role in modulating the expression of these genes. Overall, the sulfur responsive regulation of gene expression in SY113 strain distinguishes from that in the shallow model strains, which implies an adaptive strategy for species used to dwell in the deep-sea hydrothermal vent.
format Artículo científico
id pubmed_40901076
institution PubMed
language en
publishDate 2025
publisher Frontiers in microbiology
record_format pubmed
spellingShingle High hydrostatic pressure enhanced the growth of deep-sea by promoting the reduction of elemental sulfur.
Jiao, Ze-Xi
Li, Xue-Gong
Zhang, Wei-Jia
Zhang, Guan-Yuan
Bai, Shi-Jie
Fu, Ling
Wu, Long-Fei
High hydrostatic pressure enhanced the growth of deep-sea by promoting the reduction of elemental sulfur. Jiao, Ze-Xi Li, Xue-Gong Zhang, Wei-Jia Zhang, Guan-Yuan Bai, Shi-Jie Fu, Ling Wu, Long-Fei species are ubiquitously distributed across both shallow and deep-sea hydrothermal vent ecosystems. Elemental sulfur (S°) reduction plays a pivotal role in their energy metabolism. While extensive characterization of the MBS and MBH pathways, along with their SurR-dependent regulatory network, has been established in shallow-water model strains, understanding of the high hydrostatic pressure (HHP) and sulfur-responsive regulation of these pathways in deep-sea lineages remains limited. In this study, we investigated the effects of HHP on both growth and S° reduction in the deep-sea SY113 strain, as well as its regulatory impact on and expression. Our results demonstrate that HHP enhances both S° reduction and growth in SY113 strain, independent of the general regulator SurR. Genetic disruption of significantly impaired HS production and growth under HHP conditions, establishing the essential role of S° reduction in HHP adaptation. Furthermore, disrupted gene confirmed that a single MBS complex is sufficient to maintain pressure-stimulated growth. The gene expression analysis revealed that the expression of gene is primarily promoted by S°, while the expression of gene is induced by HHP. Moreover, the expression of these genes exhibits correlation. Additionally, we found that the expression of gene, gene, and gene in SY113 strain is not only regulated by SurR, and HHP also plays a role in modulating the expression of these genes. Overall, the sulfur responsive regulation of gene expression in SY113 strain distinguishes from that in the shallow model strains, which implies an adaptive strategy for species used to dwell in the deep-sea hydrothermal vent.
title High hydrostatic pressure enhanced the growth of deep-sea by promoting the reduction of elemental sulfur.
url https://pubmed.ncbi.nlm.nih.gov/40901076/