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首页> 外文期刊>European Biophysics Journal >Structure prediction of the dimeric neu/ErbB-2 transmembrane domain from multi-nanosecond molecular dynamics simulations
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Structure prediction of the dimeric neu/ErbB-2 transmembrane domain from multi-nanosecond molecular dynamics simulations

机译:多纳秒分子动力学模拟的二聚体neu / ErbB-2跨膜结构域的结构预测

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Dimerization of the neu/ErbB-2 receptor tyrosine kinase is a necessary but not a sufficient step for signaling. Despite the efforts expended to identify the molecular interactions responsible for receptor-receptor contacts and particularly those involving the transmembrane domain, structural details are still unknown. In this work. molecular dynamics simulations of the helical transmembrane domain (TM) of neu and ErbB-2 receptors are used to predict their dimer structure both in the wild and oncogenic forms. A global conformational search method, applied to define the best orientations of parallel helices. showed an energetically favorable configuration with the specific mutation site within the interface, common for both the nontransforming and the transforming neu/ErbB-2 TM dimers. Starting from this configuration, a total of 10 simulations, about 1.4 ns each, performed in vacuum, without any constraints, show that the two helices preferentially wrap in left-handed interactions with a packing angle at about 20 degrees. The resulting structures are nonsymmetric and the hydrogen bond network analysis shows that helices experience pi local distortions that facilitate inter-helix hydrogen bond interactions and may result in a change in the helix packing, leading to a symmetric interface. For the mutated sequences, we show that the Glu side chain interacts directly with its cognate or with carbonyl groups of the facing backbone. We show that the connectivity between interfacial residues conforms to the knobs-into-holes packing mode of transmembrane helices. The dimeric interface described in our models is discussed with respect to mutagenesis studies. [References: 67]
机译:neu / ErbB-2受体酪氨酸激酶的二聚化是信号传导的必要步骤,但不是足够的步骤。尽管已花费大量努力来鉴定负责受体-受体接触的分子相互作用,尤其是涉及跨膜结构域的分子相互作用,但结构细节仍是未知的。在这项工作中。 neu和ErbB-2受体的螺旋跨膜结构域(TM)的分子动力学模拟可用于预测其野生和致癌形式的二聚体结构。一种全局构象搜索方法,用于定义平行螺旋的最佳方向。展示了在界面内具有特定突变位点的能量有利构型,这对于非转化和转化neu / ErbB-2 TM二聚体都是共同的。从此配置开始,在真空中无限制地进行了总共10次仿真,每个仿真约1.4 ns,这表明两个螺旋优先包裹在左旋交互中,堆积角约为20度。产生的结构是非对称的,氢键网络分析表明,螺旋经历pi局部扭曲,从而促进螺旋间氢键相互作用,并可能导致螺旋堆积变化,从而导致对称界面。对于突变的序列,我们表明,Glu侧链与其同源物或面对主链的羰基直接相互作用。我们表明,界面残基之间的连通性符合跨膜螺旋的旋钮入孔堆积模式。我们针对诱变研究讨论了我们模型中描述的二聚体界面。 [参考:67]

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