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Rsd 通过在碳源减少时刺激 SpoT 的水解酶活性来平衡 (p)ppGpp 水平。

Rsd balances (p)ppGpp level by stimulating the hydrolase activity of SpoT during carbon source downshift in .

机构信息

Department of Biophysics and Chemical Biology, Seoul National University, Seoul 08826, Republic of Korea.

School of Biological Sciences and Institute of Microbiology, Seoul National University, Seoul 08826, Republic of Korea.

出版信息

Proc Natl Acad Sci U S A. 2018 Jul 17;115(29):E6845-E6854. doi: 10.1073/pnas.1722514115. Epub 2018 Jun 18.

Abstract

Bacteria respond to nutritional stresses by changing the cellular concentration of the alarmone (p)ppGpp. This control mechanism, called the stringent response, depends on two enzymes, the (p)ppGpp synthetase RelA and the bifunctional (p)ppGpp synthetase/hydrolase SpoT in and related bacteria. Because SpoT is the only enzyme responsible for (p)ppGpp hydrolysis in these bacteria, SpoT activity needs to be tightly regulated to prevent the uncontrolled accumulation of (p)ppGpp, which is lethal. To date, however, no such regulation of SpoT (p)ppGpp hydrolase activity has been documented in In this study, we show that Rsd directly interacts with SpoT and stimulates its (p)ppGpp hydrolase activity. Dephosphorylated HPr, but not phosphorylated HPr, of the phosphoenolpyruvate-dependent sugar phosphotransferase system could antagonize the stimulatory effect of Rsd on SpoT (p)ppGpp hydrolase activity. Thus, we suggest that Rsd is a carbon source-dependent regulator of the stringent response in .

摘要

细菌通过改变警报素 (p)ppGpp 的细胞浓度来应对营养压力。这种称为严谨反应的控制机制依赖于两种酶,即在 和相关细菌中,(p)ppGpp 合酶 RelA 和双功能 (p)ppGpp 合酶/水解酶 SpoT。由于 SpoT 是这些细菌中唯一负责 (p)ppGpp 水解的酶,因此需要对 SpoT 活性进行严格调节,以防止 (p)ppGpp 的无控制积累,这是致命的。然而,到目前为止,在 中尚未记录到对 SpoT (p)ppGpp 水解酶活性的这种调节。在这项研究中,我们表明 Rsd 直接与 SpoT 相互作用并刺激其 (p)ppGpp 水解酶活性。磷酸烯醇丙酮酸依赖性糖磷酸转移酶系统的去磷酸化 HPr,而不是磷酸化 HPr,可以拮抗 Rsd 对 SpoT (p)ppGpp 水解酶活性的刺激作用。因此,我们认为 Rsd 是 中严谨反应的碳源依赖性调节剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/88d3/6055147/dd5d5b473498/pnas.1722514115fig01.jpg

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