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首页> 外文期刊>Journal of Molecular Biology >Threonine phosphorylation of modulator protein RsbR governs its ability to regulate a serine kinase in the environmental stress signaling pathway of Bacillus subtilis.
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Threonine phosphorylation of modulator protein RsbR governs its ability to regulate a serine kinase in the environmental stress signaling pathway of Bacillus subtilis.

机译:调节蛋白RsbR的苏氨酸磷酸化决定了其在枯草芽孢杆菌环境胁迫信号通路中调节丝氨酸激酶的能力。

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The sigmaB transcription factor of the bacterium Bacillus subtilis controls the synthesis of over 100 general stress proteins that are induced by growth-limiting conditions. Genetic evidence suggests that RsbR modulates the phosphorylation state of the RsbS antagonist in the signaling pathway that regulates sigmaB activity in response to environmental stresses that limit growth. According to the current model, the phosphorylated RsbS antagonist is unable to complex RsbT, which is then released to initiate a signaling cascade that ultimately activates sigmaB. Here, we show that the RsbR protein itself has no kinase activity but instead stimulates RsbS phosphorylation by the RsbT serine kinase in vitro. We further show that in addition to its previously known serine kinase activity directed toward the RsbS antagonist, purified RsbT also possesses a threonine kinase activity directed toward residues 171 and 205 of the RsbR modulator. Threonine residues 171 and 205 were each found to be important for RsbR function in vivo, and phosphorylation of these residues abolished the ability of RsbR to stimulate RsbT kinase activity in vitro. These results are consistent with a model in which RsbR modulates the kinase activity of RsbT directed toward its RsbS antagonist in vivo, either specifically in response to environmental signals or as part of a feedback mechanism to prevent continued signaling. Copyright 1999 Academic Press.
机译:枯草芽孢杆菌的sigmaB转录因子控制着100多种受生长限制条件诱导的一般应激蛋白的合成。遗传证据表明,RsbR调节信号转导途径中RsbS拮抗剂的磷酸化状态,从而调节sigmaB活性以响应限制生长的环境胁迫。根据当前模型,磷酸化的RsbS拮抗剂无法复合RsbT,然后释放该RsbT以引发最终激活sigmaB的信号级联反应。在这里,我们显示RsbR蛋白本身没有激酶活性,而是在体外刺激RsbT丝氨酸激酶使RsbS磷酸化。我们进一步显示,除其先前已知的针对RsbS拮抗剂的丝氨酸激酶活性外,纯化的RsbT还具有针对RsbR调节剂的残基171和205的苏氨酸激酶活性。发现苏氨酸残基171和205各自对于体内RsbR功能很重要,并且这些残基的磷酸化消除了RsbR在体外刺激RsbT激酶活性的能力。这些结果与其中RsbR调节RsbT在体内针对其RsbS拮抗剂的RsbT激酶活性的模型相符,该模型特别是响应于环境信号或作为防止持续信号传递的反馈机制的一部分。版权所有1999,学术出版社。

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