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DNA 硫结合结构域对细胞生长和活力的结合亲和力依赖性抑制作用。

The binding affinity-dependent inhibition of cell growth and viability by DNA sulfur-binding domains.

机构信息

State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic & Developmental Sciences, School of Life Sciences & Biotechnology, Shanghai Jiao Tong University, Shanghai, People's Republic of China.

出版信息

Mol Microbiol. 2024 May;121(5):971-983. doi: 10.1111/mmi.15249. Epub 2024 Mar 13.

DOI:10.1111/mmi.15249
PMID:38480679
Abstract

Increasing evidence suggests that DNA phosphorothioate (PT) modification serves several purposes in the bacterial host, and some restriction enzymes specifically target PT-DNA. PT-dependent restriction enzymes (PDREs) bind PT-DNA through their DNA sulfur binding domain (SBD) with dissociation constants (K) of 5 nM~1 μM. Here, we report that SprMcrA, a PDRE, failed to dissociate from PT-DNA after cleavage due to high binding affinity, resulting in low DNA cleavage efficiency. Expression of SBDs in Escherichia coli cells with PT modification induced a drastic loss of cell viability at 25°C when both DNA strands of a PT site were bound, with one SBD on each DNA strand. However, at this temperature, SBD binding to only one PT DNA strand elicited a severe growth lag rather than lethality. This cell growth inhibition phenotype was alleviated by raising the growth temperature. An in vitro assay mimicking DNA replication and RNA transcription demonstrated that the bound SBD hindered the synthesis of new DNA and RNA when using PT-DNA as the template. Our findings suggest that DNA modification-targeting proteins might regulate cellular processes involved in DNA metabolism in addition to being components of restriction-modification systems and epigenetic readers.

摘要

越来越多的证据表明,DNA 硫代磷酸酯(PT)修饰在细菌宿主中具有多种用途,并且一些限制酶专门针对 PT-DNA。依赖 PT 的限制酶(PDRE)通过其 DNA 硫结合域(SBD)与解离常数(K)为 5 nM~1 μM 的 PT-DNA 结合。在这里,我们报告说,SprMcrA 是一种 PDRE,由于结合亲和力高,在切割后无法从 PT-DNA 上解离,导致 DNA 切割效率低。在含有 PT 修饰的大肠杆菌细胞中表达 SBD 时,如果 PT 位点的两条 DNA 链都被结合,每条 DNA 链上有一个 SBD,则会在 25°C 时导致细胞活力急剧丧失。然而,在这个温度下,只有一条 PT DNA 链上的 SBD 结合会引起严重的生长滞后,而不是致死。提高生长温度可以缓解这种细胞生长抑制表型。体外模拟 DNA 复制和 RNA 转录的实验表明,当使用 PT-DNA 作为模板时,结合的 SBD 会阻碍新 DNA 和 RNA 的合成。我们的发现表明,除了作为限制修饰系统和表观遗传读取器的组成部分外,DNA 修饰靶向蛋白还可能调节涉及 DNA 代谢的细胞过程。

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