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Cooperation of two distinct coupling proteins creates chemosensory network connections

机译:两种不同的偶联蛋白的合作建立了化学感应网络连接

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摘要

Although it is appreciated that bacterial chemotaxis systems rely on coupling, also called scaffold, proteins to both connect input receptors with output kinases and build interkinase connections that allow signal amplification, it is not yet clear why many systems use more than one coupling protein. We examined the distinct functions for multiple coupling proteins in the bacterial chemotaxis system of Helicobacter pylori, which requires two nonredundant coupling proteins for chemotaxis: CheW and CheV1, a hybrid of a CheW and a phosphorylatable receiver domain. We report that CheV1 and CheW have largely redundant abilities to interact with chemoreceptors and the CheA kinase, and both similarly activated CheA’s kinase activity. We discovered, however, that they are not redundant for formation of the higher order chemoreceptor arrays that are known to form via CheA–CheW interactions. In support of this possibility, we found that CheW and CheV1 interact with each other and with CheA independent of the chemoreceptors. Therefore, it seems that some microbes have modified array formation to require CheW and CheV1. Our data suggest that multiple coupling proteins may be used to provide flexibility in the chemoreceptor array formation.
机译:尽管人们认识到细菌趋化系统依赖于偶联蛋白(也称为支架蛋白)将输入受体与输出激酶连接并建立激酶间连接以允许信号放大,但尚不清楚为什么许多系统使用多个偶联蛋白。我们检查了幽门螺杆菌细菌趋化系统中多种偶联蛋白的独特功能,该系统需要两种非冗余的趋化性偶联蛋白:CheW和CheV1,CheW和可磷酸化受体结构域的混合体。我们报道,CheV1和CheW在与化学感受器和CheA激酶相互作用方面具有很大的冗余能力,并且都类似地激活了CheA的激酶活性。但是,我们发现,对于通过CheA-CheW相互作用形成的更高阶化学感受器阵列的形成,它们并不是多余的。为了支持这种可能性,我们发现CheW和CheV1彼此相互作用,并且与CheA相互作用而独立于化学感受器。因此,似乎某些微生物已经改变了阵列的形成以需要CheW和CheV1。我们的数据表明,多种偶联蛋白可用于在化学感受器阵列形成中提供灵活性。

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