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HIV-1 Capsid Function is Regulated by Dynamics: Quantitative Atomic-Resolution Insights by Integrating Magic-Angle-Spinning NMR QM/MM and MD

机译:HIV-1衣壳功能受动力学调节:通过整合魔角旋转NMRQM / MM和MD的定量原子分辨见解

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摘要

HIV-1 CA capsid protein possesses intrinsic conformational flexibility, which is essential for its assembly into conical capsids and interactions with host factors. CA is dynamic in the assembled capsid, and residues in functionally important regions of the protein undergo motions spanning many decades of timescales. Chemical shift anisotropy (CSA) tensors, recorded in magic-angle-spinning NMR experiments, provide direct residue-specific probes of motions on nano- to microsecond timescales. We combined NMR, MD, and Density-Functional-Theory calculations, to gain quantitative understanding of internal backbone dynamics in CA assemblies, and found that the dynamically averaged 15N CSA tensors calculated by this joined protocol are in remarkable agreement with experiment. Thus, quantitative atomic-level understanding of the relationships between CSA tensors, local backbone structure and motions in CA assemblies is achieved, demonstrating the power of integrating NMR experimental data and theory for characterizing atomic-resolution dynamics in biological systems.
机译:HIV-1 CA衣壳蛋白具有固有的构象柔韧性,这对于将其组装成圆锥形衣壳以及与宿主因子相互作用至关重要。 CA在组装的衣壳中是动态的,并且蛋白质功能重要区域中的残基经历跨越数十年时间尺度的运动。在魔角旋转NMR实验中记录的化学位移各向异性(CSA)张量可在纳秒至微秒的时间尺度上提供运动的直接残基特异性探针。我们结合了NMR,MD和密度泛函理论计算,以定量了解CA组件中内部骨架的动力学,发现通过此连接协议计算出的动态平均 15 N CSA张量位于与实验取得了显着的一致。因此,获得了对CA组件中CSA张量,局部主干结构与运动之间关系的定量原子级理解,从而证明了整合NMR实验数据和表征生物系统中原子分辨率动力学的理论的力量。

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