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Study of protein structural deformations under external mechanical perturbations by a coarse-grained simulation method

机译:粗粒模拟法研究外部机械扰动下的蛋白质结构变形

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The mechanical properties of biomolecules play pivotal roles in regulating cellular functions. For instance, extracellular mechanical stimuli are converted to intracellular biochemical activities by membrane receptors and their downstream adaptor proteins during mechanotransduction. In general, proteins favor the conformation with the lowest free energy. External forces modify the energy landscape of proteins and drive them to unfolded or deformed conformations that are of functional relevance. Therefore, the study of the physical properties of proteins under external forces is of fundamental importance to understand their functions in cellular mechanics. Here, a coarse-grained computational model was developed to simulate the unfolding or deformation of proteins under mechanical perturbation. By applying this method to unfolding of previously studied proteins or protein fragments with external forces, we demonstrated that our results are quantitatively comparable to previous experimental or all-atom computational studies. The model was further extended to the problem of elastic deformation of large protein complexes formed between membrane receptors and their ligands. Our studies of binding between T cell receptor (TCR) and major histocompatibility complex (MHC) illustrated that stretching of MHC ligand initially lowers its binding energy with TCR, supporting the recent experimental report that TCR/MHC complex is formed through the catch-bond mechanism. Finally, the method was, for the first time, applied to pulling of an eight-cadherin cluster that was formed by their trans and cis binding interfaces. Our simulation results show that mechanical properties of adherens junctions are functionally important to cell adhesion.
机译:生物分子的机械性质在调节细胞功能中起关键作用。例如,在机械转导过程中,细胞外机械刺激被膜受体及其下游衔接蛋白转化为细胞内生化活性。通常,蛋白质倾向于具有最低自由能的构象。外力会改变蛋白质的能量构图,并促使它们形成具有功能相关性的未折叠或变形的构象。因此,研究蛋白质在外力作用下的物理性质对于理解其在细胞力学中的功能至关重要。在这里,开发了一种粗粒度计算模型来模拟蛋白质在机械扰动下的展开或变形。通过将这种方法应用于先前研究的蛋白质或具有外力的蛋白质片段的展开,我们证明了我们的结果在数量上可与先前的实验或全原子计算研究相比。该模型进一步扩展到膜受体及其配体之间形成的大蛋白复合物的弹性变形问题。我们对T细胞受体(TCR)与主要组织相容性复合物(MHC)之间结合的研究表明,MHC配体的拉伸最初会降低其与TCR的结合能,从而支持了最近的实验报告,即TCR / MHC复合物是通过捕获键机制形成的。最终,该方法首次应用于提取由其反式和顺式结合界面形成的八钙粘蛋白簇。我们的模拟结果表明,粘附连接的机械性能对细胞粘附在功能上很重要。

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