所长信箱   |    信息公开   |    内部办公   |    内部办公(旧)   |    ARP   |   图书馆   |    中国科学院   |    ENGLISH
深海科学与工程研究所
当前位置:首页 > 学术成果 > 2024 > 论文
论文库
  
论文题目  N-terminus GTPase domain of the cytoskeleton protein FtsZ plays a critical role in its adaptation to high hydrostatic pressure 
论文题目(英文) N-terminus GTPase domain of the cytoskeleton protein FtsZ plays a critical role in its adaptation to high hydrostatic pressure 
作者 崔雪花(1,2);Wei, Yu-Chen(1);李学恭(1,3);綦晓青(1,3);吴龙飞(1,3,4);张维佳(1,3) 
发表年度 2024-08-16 
15 
 
页码 13 
期刊名称 FRONTIERS IN MICROBIOLOGY 
摘要

Studies in model microorganisms showed that cell division is highly vulnerable to high hydrostatic pressure (HHP). Disassembly of FtsZ filaments induced by HHP results in the failure of cell division and formation of filamentous cells in E. coli. The specific characteristics of FtsZ that allow for functional cell division in the deep-sea environments, especially in obligate piezophiles that grow exclusively under HHP condition, remain enigmatic. In this study, by using a self-developed HHP in-situ fixation apparatus, we investigated the effect of HHP on FtsZ by examining the subcellular localization of GFP-tagged FtsZ in vivo and the stability of FtsZ filament in vitro. We compared the pressure tolerance of FtsZ proteins from pressure-sensitive strain Shewanella oneidensis MR-1 (FtsZSo) and obligately piezophilic strain Shewanella benthica DB21MT-2 (FtsZSb). Our findings showed that, unlike FtsZSo, HHP hardly affected the Z-ring formation of FtsZSb, and filaments composed of FtsZSb were more stable after incubation under 50 MPa. By constructing chimeric and single amino acid mutated FtsZ proteins, we identified five residues in the N-terminal GTPase domain of FtsZSb whose mutation would impair the Z-ring formation under HHP conditions. Overall, these results demonstrate that FtsZ from the obligately piezophilic strain exhibits superior pressure tolerance than its homologue from shallow water species, both in vivo and in vitro. Differences in pressure tolerance of FtsZ are largely attributed to the N-terminal GTPase domain. This represents the first in-depth study of the adaptation of microbial cytoskeleton protein FtsZ to high hydrostatic pressure, which may provide insights into understanding the complex bioprocess of cell division under extreme environments.

 
摘要_英文  

Copyright?中国科学院深海科学与工程研究所 备案证号:琼ICP备13001552号-1   琼公网安备 46020102000014号
地址: 三亚市鹿回头路28号 邮编:572000 网站维护:深海所办公室   邮箱:office@idsse.ac.cn