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毒力因子调节蛋白和群体感应调节I-F型CRISPR-Cas介导的水平基因转移。

The virulence factor regulator and quorum sensing regulate the type I-F CRISPR-Cas mediated horizontal gene transfer in .

作者信息

Dela Ahator Stephen, Liu Yang, Wang Jianhe, Zhang Lian-Hui

机构信息

Guangdong Province Key Laboratory of Microbial Signals and Disease Control, Integrative Microbiology Research Center, South China Agricultural University, Guangzhou, China.

Research Group for Host Microbe Interactions, Department of Medical Biology, Faculty of Health Sciences, UiT The Arctic University of Norway, Tromsø, Norway.

出版信息

Front Microbiol. 2022 Sep 30;13:987656. doi: 10.3389/fmicb.2022.987656. eCollection 2022.

Abstract

is capable of thriving in diverse environments due to its network of regulatory components for effective response to stress factors. The survival of the bacteria is also dependent on the ability to discriminate between the acquisition of beneficial and non-beneficial genetic materials horizontal gene transfer (HGT). Thus, bacteria have evolved the CRISPR-Cas adaptive immune system for defense against the deleterious effect of phage infection and HGT. By using the transposon mutagenesis approach, we identified the virulence factor regulator (Vfr) as a key regulator of the type I-F CRISPR-Cas system in . We showed that Vfr influences the expression of the CRISPR-Cas system through two signaling pathways in response to changes in calcium levels. Under calcium-rich conditions, Vfr indirectly regulates the CRISPR-Cas system modulation of the AHL-QS gene expression, which could be vital for defense against phage infection at high cell density. When encountering calcium deficiency, however, Vfr can directly regulate the CRISPR-Cas system a cAMP-dependent pathway. Furthermore, we provide evidence that mutation of reduces the CRISPR-Cas spacer acquisition and interference of HGT. The results from this study add to the regulatory network of factors controlling the CRISPR-Cas system in response to abiotic factors in the environment. The findings may facilitate the design of effective and reliable phage therapies against infections, as targeting Vfr could prevent the development of the CRISPR-Cas mediated phage resistance.

摘要

由于其具有能有效应对压力因素的调控元件网络,所以能够在多样的环境中茁壮成长。细菌的生存还取决于其区分有益和非有益遗传物质水平基因转移(HGT)的能力。因此,细菌进化出了CRISPR-Cas适应性免疫系统,以抵御噬菌体感染和HGT的有害影响。通过转座子诱变方法,我们确定毒力因子调节蛋白(Vfr)是[具体物种]中I-F型CRISPR-Cas系统的关键调节因子。我们发现,Vfr通过两条信号通路响应钙水平变化来影响CRISPR-Cas系统的表达。在富含钙的条件下,Vfr通过调节AHL-QS基因表达间接调控CRISPR-Cas系统,这对于在高细胞密度下抵御噬菌体感染可能至关重要。然而,当遇到钙缺乏时,Vfr可通过cAMP依赖途径直接调控CRISPR-Cas系统。此外,我们提供证据表明[具体基因]的突变会减少CRISPR-Cas间隔序列的获取和对HGT的干扰。本研究结果丰富了响应环境中非生物因素控制CRISPR-Cas系统的因子调控网络。这些发现可能有助于设计针对[具体感染类型]感染的有效且可靠的噬菌体疗法,因为靶向Vfr可防止CRISPR-Cas介导的噬菌体抗性的产生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0677/9563714/e07267227c78/fmicb-13-987656-g001.jpg

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