Jiao Ze-Xi, Li Xue-Gong, Zhang Wei-Jia, Zhang Guan-Yuan, Bai Shi-Jie, Fu Ling, Wu Long-Fei
Laboratory of Deep-Sea Microbial Cell Biology, Institute of Deep-Sea Science and Engineering, Chinese Academy of Sciences, Sanya, China.
College of Marine Sciences, University of Chinese Academy of Sciences, Beijing, China.
Front Microbiol. 2025 Aug 18;16:1643593. doi: 10.3389/fmicb.2025.1643593. eCollection 2025.
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.
这些物种广泛分布于浅海和深海热液喷口生态系统。元素硫(S°)还原在它们的能量代谢中起着关键作用。虽然在浅水模式菌株中已经对MBS和MBH途径及其依赖SurR的调控网络进行了广泛的表征,但对于这些途径在深海谱系中的高静水压力(HHP)和硫响应调控的了解仍然有限。在本研究中,我们研究了HHP对深海SY113菌株生长和S°还原的影响,以及其对 和 表达的调控作用。我们的结果表明,HHP增强了SY113菌株的S°还原和生长,且不依赖于通用调节因子SurR。 在HHP条件下的基因破坏显著损害了HS的产生和生长,确立了S°还原在HHP适应中的重要作用。此外,破坏 基因证实单个MBS复合物足以维持压力刺激的生长。基因表达分析表明, 基因的表达主要由S°促进,而 基因的表达由HHP诱导。此外,这些基因的表达呈现相关性。另外,我们发现SY113菌株中 基因、 基因和 基因的表达不仅受SurR调控,HHP也在调节这些基因的表达中发挥作用。总体而言,SY113菌株中基因表达的硫响应调控与浅水模式菌株不同,这意味着 物种适应深海热液喷口环境的一种策略。