一个转录因子-sRNA介导的双负反循环赋予了病原体特异性的定数感应基因控制
Ameya A Mashruwala1,2,3, Kaitlin Decker1,2,4, Chenyi Fei1,2,5
1Department of Molecular Biology, Princeton University, Princeton, New Jersey 08544, USA.
bioRxiv : the preprint server for biology
|September 2, 2025
概括
细菌使用群体感应来进行交流. 在Vibrio cholerae中,LuxT抑制VqmR,后者反过来抑制LuxT,形成生物膜形成和宿主殖民化所必需的反循环.
科学领域:
- 微生物学
- 细菌的传播
- 基因调控
背景情况:
- 多数感应允许细菌通过信号分子协调行为.
- 在Vibrio cholerae中,VqmA激活了VqmR小调节性RNA的产生,影响了生物膜的形成.
研究的目的:
- 在Vibrio cholerae中确定DPO-VqmA-VqmR信号通路的抑制剂.
- 研究LuxT转录因子在该途径中的调节作用.
主要方法:
- 在vqmR转录中LuxT的作用的表征.
- 分析VqmR对luxT的转录后调节.
- 对于相互控制至关重要的LuxT的N端区域的识别.
- 定义LuxT控制的基因组.
主要成果:
- LuxT抑制了vqmR的转录,而VqmR则在转录后抑制了luxT的翻译,从而产生了双负反循环.
- 相互控制由LuxT的N-终端8氨基酸介导,它们也影响DNA结合.
- 这种调节回路适用于Vibrio cholerae和相关物种.
- 在Vibrio cholerae中促进生物膜的形成.
结论:
- 在Vibrio cholerae中,LuxT和VqmR之间的新反循环调节了定数感应.
- 这一电路依赖于LuxT的N终端区域,对于生物膜形成和宿主殖民至关重要.
- 已识别的调节机制在Vibrio属内受到进化限制.
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