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嗜压表型取决于生长条件,并与深海嗜压细菌SS9中两组ATP酶的调控相关。

Piezophilic Phenotype Is Growth Condition Dependent and Correlated with the Regulation of Two Sets of ATPase in Deep-Sea Piezophilic Bacterium SS9.

作者信息

Li An-Qi, Zhang Wei-Jia, Li Xue-Gong, Bao Xu-Chong, Qi Xiao-Qing, Wu Long-Fei, Bartlett Douglas H

机构信息

Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China.

University of Chinese Academy of Sciences, Beijing 101408, China.

出版信息

Microorganisms. 2023 Mar 2;11(3):637. doi: 10.3390/microorganisms11030637.

Abstract

Alteration of respiratory components as a function of pressure is a common strategy developed in deep-sea microorganisms, presumably to adapt to high hydrostatic pressure (HHP). While the electron transport chain and terminal reductases have been extensively studied in deep-sea bacteria, little is known about their adaptations for ATP generation. In this study, we showed that the deep-sea bacterium SS9 exhibits a more pronounced piezophilic phenotype when grown in minimal medium supplemented with glucose (MG) than in the routinely used MB2216 complex medium. The intracellular ATP level varied with pressure, but with opposite trends in the two culture media. Between the two ATPase systems encoded in SS9, ATPase-I played a dominant role when cultivated in MB2216, whereas ATPase-II was more abundant in the MG medium, especially at elevated pressure when cells had the lowest ATP level among all conditions tested. Further analyses of the Δ, Δ1 and Δ2 mutants showed that disrupting ATPase-I induced expression of ATPase-II and that the two systems are functionally redundant in MB2216. Collectively, we provide the first examination of the differences and relationships between two ATPase systems in a piezophilic bacterium, and expanded our understanding of the involvement of energy metabolism in pressure adaptation.

摘要

作为压力函数的呼吸成分改变是深海微生物所采用的一种常见策略,大概是为了适应高静水压力(HHP)。虽然电子传递链和末端还原酶在深海细菌中已得到广泛研究,但对于它们在产生ATP方面的适应性却知之甚少。在本研究中,我们发现,与在常规使用的MB2216复合培养基中生长相比,深海细菌SS9在补充有葡萄糖的基础培养基(MG)中生长时表现出更明显的嗜压表型。细胞内ATP水平随压力而变化,但在两种培养基中呈现相反的趋势。在SS9编码的两个ATP酶系统中,当在MB2216中培养时,ATP酶-I起主导作用,而ATP酶-II在MG培养基中更为丰富,尤其是在压力升高时,此时细胞在所有测试条件下的ATP水平最低。对Δ、Δ1和Δ2突变体的进一步分析表明,破坏ATP酶-I会诱导ATP酶-II的表达,并且这两个系统在MB2216中功能冗余。总体而言,我们首次研究了嗜压细菌中两个ATP酶系统之间的差异和关系,并扩展了我们对能量代谢参与压力适应的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/deab/10054830/6a0903cd973e/microorganisms-11-00637-g001.jpg

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