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首页> 外文期刊>Protein Science: A Publication of the Protein Society >Differential backbone dynamics of companion helices in the extended helical coiled-coil domain of a bacterial chemoreceptor
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Differential backbone dynamics of companion helices in the extended helical coiled-coil domain of a bacterial chemoreceptor

机译:细菌化学聚乙烯延伸螺旋螺旋芯片域的辅助骨干动力学

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Cytoplasmic domains of transmembrane bacterial chemoreceptors are largely extended four-helix coiled coils. Previous observations suggested the domain was structurally dynamic. We probed directly backbone dynamics of this domain of the transmembrane chemoreceptor Tar from Escherichia coli using site-directed spin labeling and electron paramagnetic resonance (EPR) spectroscopy. Spin labels were positioned on solvent-exposed helical faces because EPR spectra for such positions reflect primarily polypeptide backbone movements. We acquired spectra for spin-labeled, intact receptor homodimers solubilized in detergent or inserted into native E. coli lipid bilayers in Nanodiscs, characterizing 16 positions distributed throughout the cytoplasmic domain and on both helices of its helical hairpins, one amino terminal to the membrane-distal tight turn (N-helix), and the other carboxyl terminal (C-helix). Detergent solubilization increased backbone dynamics for much of the domain, suggesting that loss of receptor activities upon solubilization reflects wide-spread destabilization. For receptors in either condition, we observed an unanticipated difference between the N- and C-helices. For bilayer-inserted receptors, EPR spectra from sites in the membrane-distal protein-interaction region and throughout the C-helix were typical of well-structured helices. In contrast, for approximately two-thirds of the N-helix, from its origin as the AS-2 helix of the membrane-proximal HAMP domain to the beginning of the membrane-distal protein-interaction region, spectra had a significantly mobile component, estimated by spectral deconvolution to average approximately 15%. Differential helical dynamics suggests a four-helix bundle organization with a pair of core scaffold helices and two more dynamic partner helices. This newly observed feature of chemoreceptor structure could be involved in receptor function.
机译:跨膜细菌化学感受器的细胞质结构域在很大程度上延伸了四螺旋盘绕线圈。以前的观察结果表明域在结构上是动态的。我们使用位向的旋转标记和电子顺磁共振(EPR)光谱从大肠杆菌中直接突出跨膜化学感受器焦油的跨膜化学感受器焦油的骨干动力学。定位在溶剂暴露的螺旋面上,因为这种位置的EPR光谱主要反映了多肽骨架运动。我们获得了旋转标记的完整受体同源过二聚体的光谱,或者插入纳米DISC的天然大肠杆菌脂双层,其特征在于在整个细胞质结构域中分布的16个位置,并在其螺旋发夹的两个螺旋上,一个氨基末端到膜 - 远端紧旋转(N-HELIX)和其他羧基末端(C-HELIX)。洗涤剂溶解增加了大部分领域的骨干动力学,表明溶解对受体活性的丧失反映了广泛的破坏性。对于任何一种条件的受体,我们观察到N-和C螺旋之间的意外差异。对于双层插入的受体,来自膜 - 远端蛋白 - 相互作用区域和整个C螺旋的位点的EPR光谱是典型的结构良好的螺旋。相反,对于大约三分之二的N-螺旋,从其原点作为膜 - 近端跳域的AS-2螺旋到膜 - 远端蛋白相互作用区域的开始,光谱具有显着的移动部件,估计光谱碎屑率平均约15%。差分螺旋动态表明,一个四螺旋捆绑组织,一对核心脚手架螺旋和两个更具动态的伴侣螺旋。这种新观察到的化学聚类结构特征可以参与受体功能。

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