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Vibrational dynamics of icosahedrally symmetric biomolecular assemblies compared with predictions based on continuum elasticity.

机译:二十面体对称生物分子组件的振动动力学与基于连续弹性的预测相比。

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Coarse-grained elastic network models elucidate the fluctuation dynamics of proteins around their native conformations. Low-frequency collective motions derived by simplified normal mode analysis are usually involved in biological function, and these motions often possess noteworthy symmetries related to the overall shape of the molecule. Here, insights into these motions and their frequencies are sought by considering continuum models with appropriate symmetry and boundary conditions to approximately represent the true atomistic molecular structure. We solve the elastic wave equations analytically for the case of spherical symmetry, yielding a symmetry-based classification of molecular motions together with explicit predictions for their vibrational frequencies. We address the case of icosahedral symmetry as a perturbation to the spherical case. Applications to lumazine synthase, satellite tobacco mosaic virus, and brome mosaic virus show that the spherical elastic model efficiently provides insights on collective motions that are otherwise obtained by detailed elastic network models. A major utility of the continuum models is the possibility of estimating macroscopic material properties such as the Young's modulus or Poisson's ratio for different types of viruses.
机译:粗粒度弹性网络模型阐明了蛋白质天然构象周围的波动动态。通过简化的正常模式分析得出的低频集体运动通常与生物学功能有关,这些运动通常具有与分子整体形状有关的显着对称性。在这里,通过考虑具有适当对称性和边界条件的连续谱模型来大致了解真实的原子分子结构,从而寻求对这些运动及其频率的了解。我们针对球形对称的情况解析地求解弹性波方程,从而得出基于分子运动的基于对称性的分类以及对其振动频率的明确预测。我们将二十面体对称的情况视为对球形情况的扰动。 lumazine合酶,卫星烟草花叶病毒和brome花叶病毒的应用表明,球形弹性模型可以有效地提供集体运动的见解,而集体运动可以通过详细的弹性网络模型获得。连续模型的主要用途是可以估计宏观材料的特性,例如不同类型病毒的杨氏模量或泊松比。

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