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Theory of crosslinked bundles of helical filaments: Intrinsic torques in self-limiting biopolymer assemblies

机译:螺旋长丝交联束的理论:自限性生物聚合物组件中的内在扭矩

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Inspired by the complex influence of the globular crosslinking proteins on the formation of biofilament bundles in living organisms, we study and analyze a theoretical model for the structure and thermodynamics of bundles of helical filaments assembled in the presence of crosslinking molecules. The helical structure of filaments, a universal feature of biopolymers such as filamentous actin, is shown to generically frustrate the geometry of crosslinking between the grooves of two neighboring filaments. We develop a coarse-grained model to investigate the interplay between the geometry of binding and mechanics of both linker and filament distortion, and we show that crosslinking in parallel bundles of helical filaments generates intrinsic torques, of the type that tend to wind the bundle superhelically about its central axis. Crosslinking mediates a non-linear competition between the preference for bundle twist and the size-dependent mechanical cost of filament bending, which in turn gives rise to feedback between the global twist of self-assembled bundles and their lateral size. Finally, we demonstrate that above a critical density of bound crosslinkers, twisted bundles form with a thermodynamically preferred radius that, in turn, increases with a further increase in crosslinking bonds. We identify the stiffness of crosslinking bonds as a key parameter governing the sensitivity of bundle structure and assembly to the availability and affinity of crosslinkers.
机译:受球形交联蛋白对生物体中生物丝束形成的复杂影响的启发,我们研究和分析了在存在交联分子的情况下组装的螺旋丝束的结构和热力学的理论模型。长丝的螺旋结构是生物聚合物(如长丝肌动蛋白)的普遍特征,显示出通常会挫败两个相邻长丝凹槽之间交联的几何形状。我们开发了一个粗粒度模型来研究结合的几何形状以及接头和细丝变形的力学之间的相互作用,并且我们发现,平行丝束中的交联会产生固有扭矩,这种扭矩倾向于以超螺旋方式缠绕围绕其中心轴。交联介导了对束扭曲的偏爱与取决于尺寸的长丝弯曲机械成本之间的非线性竞争,这反过来引起了自组装束的整体扭曲与其横向尺寸之间的反馈。最后,我们证明,在键合交联剂的临界密度以上时,会形成具有热力学上优选半径的加捻束,该半径反过来会随着交联键的进一步增加而增加。我们将交联键的刚度确定为支配束结构和组装对交联剂的可用性和亲和力的敏感性的关键参数。

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