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Membrane fluctuations destabilize clathrin protein lattice order

机译:膜波动使网格蛋白蛋白晶格顺序不稳定

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We develop a theoretical model of a clathrin protein lattice on a flexible cell membrane. The clathrin subunit is modeled as a three-legged pinwheel with elastic deformation modes and intersubunit binding interactions. The pinwheels are constrained to lie on the surface of an elastic sheet that opposes bending deformation and is subjected to tension. Through Monte Carlo simulations, we predict the equilibrium phase behavior of clathrin lattices at various levels of tension. High membrane tensions, which correspond to suppressed membrane fluctuations, tend to stabilize large, flat crystalline structures similar to plaques that have been observed in vivo on cell membranes that are adhered to rigid surfaces. Low tensions, on the other hand, give rise to disordered, defect-ridden lattices that behave in a fluidlike manner. The principles of two-dimensional melting theory are applied to our model system to further clarify how high tensions can stabilize crystalline order on flexible membranes. These results demonstrate the importance of environmental physical cues in dictating the collective behavior of self-assembled protein structures.
机译:我们开发了在柔性细胞膜上网格蛋白蛋白晶格的理论模型。网格蛋白亚基被建模为具有弹性变形模式和亚基间结合相互作用的三足风车。风车被约束成位于弹性片的表面上,该弹性片抵抗弯曲变形并受到张力。通过蒙特卡洛模拟,我们预测了网格蛋白晶格在不同张力水平下的平衡相行为。对应于抑制的膜波动的高膜张力趋于稳定大而平坦的晶体结构,类似于已在体内粘附于刚性表面的细胞膜上观察到的噬菌斑。另一方面,低张力会导致无序,缺陷缠结的晶格以流体状方式表现。二维熔融理论的原​​理被应用于我们的模型系统,以进一步阐明高张力如何稳定柔性膜上的晶体顺序。这些结果表明环境物理提示在决定自组装蛋白结构的集体行为中的重要性。

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