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Geometry of the nuclear envelope determines its flexural stiffness

机译:核信封的几何形状决定了其弯曲刚度

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During closed mitosis in fission yeast, growing microtubules push onto the nuclear envelope to deform it which results in fission into two daughter nuclei. The resistance of the envelope to bending, quantified by the flexural stiffness, helps determine the microtubule-dependent nuclear shape transformations. Computational models of envelope mechanics have assumed values of the flexural stiffness of the envelope based on simple scaling arguments. The validity of these estimates is in doubt, however, owing to the complex structure of the nuclear envelope. Here, we performed computational analysis of the bending of the nuclear envelope under applied force using a model which accounts for envelope geometry. Our calculations show that the effective bending modulus of the nuclear envelope is an order of magnitude larger than a single membrane and approximately five times more than the nuclear lamina. This large bending modulus is in part due to the 45 nm separation between the two membranes which supports larger bending moments in the structure. Further, the effective bending modulus is highly sensitive to the geometry of the nuclear envelope ranging from two-fold to an order magnitude larger than the corresponding single membrane. These results suggest that spatial variations in geometry and mechanical environment of the envelope may cause a spatial distribution of flexural stiffness in the same nucleus. Overall, our calculations support the possibility that the nuclear envelope may balance significant mechanical stresses in yeast and in cells from higher organisms.
机译:在裂变酵母中的闭合分膜期间,越来越多的微管推动核包膜,以使其变形,导致裂变成两个女儿核。通过弯曲刚度量化的包膜对弯曲的电阻有助于确定微管依赖性的核形状变换。信封力学的计算模型基于简单缩放参数假设信封弯曲刚度的值。然而,由于核信封的复杂结构,这些估计的有效性有疑问。这里,我们使用占包络几何形状的模型来执行对施力的核封弯曲的计算分析。我们的计算表明,核包封的有效弯曲模量比单个膜大的数量级,比核薄片大约五倍。这种大的弯曲模量部分是由于两个膜之间的45nm分离,该膜在结构中较大的弯曲力矩。此外,有效的弯曲模量对核包封的几何形状高度敏感,该核包络的几何形状范围为大于相应的单膜的顺序幅度。这些结果表明,包络的几何形状和机械环境的空间变化可能导致相同核中的弯曲刚度的空间分布。总体而言,我们的计算支持核包封可能在酵母和来自较高生物的细胞中平衡显着的机械应力的可能性。

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