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首页> 外文期刊>MBio >Allosteric Activation of Bacterial Response Regulators: the Role of the Cognate Histidine Kinase Beyond Phosphorylation
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Allosteric Activation of Bacterial Response Regulators: the Role of the Cognate Histidine Kinase Beyond Phosphorylation

机译:细菌反应调节剂的变构活化:除磷酸化以外的同源组氨酸激酶的作用

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Response regulators are proteins that undergo transient phosphorylation, connecting specific signals to adaptive responses. Remarkably, the molecular mechanism of response regulator activation remains elusive, largely because of the scarcity of structural data on multidomain response regulators and histidine kinase/response regulator complexes. We now address this question by using a combination of crystallographic data and functional analyses in vitro and in vivo, studying DesR and its cognate sensor kinase DesK, a two-component system that controls membrane fluidity in Bacillus subtilis. We establish that phosphorylation of the receiver domain of DesR is allosterically coupled to two distinct exposed surfaces of the protein, controlling noncanonical dimerization/tetramerization, cooperative activation, and DesK binding. One of these surfaces is critical for both homodimerization- and kinase-triggered allosteric activations. Moreover, DesK induces a phosphorylation-independent activation of DesR in vivo, uncovering a novel and stringent level of specificity among kinases and regulators. Our results support a model that helps to explain how response regulators restrict phosphorylation by small-molecule phosphoryl donors, as well as cross talk with noncognate sensors. >IMPORTANCE The ability to sense and respond to environmental variations is an essential property for cell survival. Two-component systems mediate key signaling pathways that allow bacteria to integrate extra- or intracellular signals. Here we focus on the DesK/DesR system, which acts as a molecular thermometer in B. subtilis, regulating the cell membrane’s fluidity. Using a combination of complementary approaches, including determination of the crystal structures of active and inactive forms of the response regulator DesR, we unveil novel molecular mechanisms of DesR’s activation switch. In particular, we show that the association of the cognate histidine kinase DesK triggers DesR activation beyond the transfer of the phosphoryl group. On the basis of sequence and structural analyses of other two-component systems, this activation mechanism appears to be used in a wide range of sensory systems, contributing a further level of specificity control among different signaling pathways.
机译:响应调节剂是经过短暂磷酸化的蛋白,将特定信号连接至适应性响应。值得注意的是,响应调节剂激活的分子机制仍然难以捉摸,这主要是由于缺乏多域响应调节剂和组氨酸激酶/响应调节剂复合物上的结构数据。现在,我们通过结合晶体学数据和体外 体内的功能分析来解决这个问题,研究DesR及其关联的传感器激酶DesK,这是一个由两部分组成的系统控制枯草芽孢杆菌的膜流动性。我们建立,DesR的受体域的磷酸化变构耦合到蛋白质的两个不同的暴露的表面,控制非规范的二聚/四聚化,协同激活和DesK绑定。这些表面之一对于均二聚化和激酶触发的变构活化都是至关重要的。此外,DesK在体内诱导DesR 的磷酸化非依赖性活化,从而揭示了激酶和调节剂之间特异性的新颖而严格的水平。我们的结果支持一个模型,该模型有助于解释响应调节剂如何限制小分子磷酰基供体的磷酸化,以及与非同源传感器的串扰。 >重要:感知和响应环境变化的能力是细胞存活的重要属性。两组分系统介导关键信号传导途径,使细菌能够整合细胞外或细胞内信号。在这里,我们重点介绍DesK / DesR系统,该系统在 B中充当分子温度计。枯草,调节细胞膜的流动性。通过使用互补方法的组合,包括确定响应调节器DesR的活性和非活性形式的晶体结构,我们揭示了DesR激活开关的新型分子机制。尤其是,我们表明同源组氨酸激酶DesK的缔合触发了DesR激活,而不是磷酸基团的转移。根据其他两组分系统的序列和结构分析,这种激活机制似乎已在广泛的感觉系统中使用,从而进一步提高了不同信号途径之间的特异性控制水平。

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