论文标题

螺旋小管的多态性自组装受动力学控制

Polymorphic self-assembly of helical tubules is kinetically controlled

论文作者

Fang, Huang, Tyukodi, Botond, Rogers, W. Benjamin, Hagan, Michael F.

论文摘要

与大多数自我组装的合成材料相比,经历无限生长的合成材料,许多生物学自组装过程都是自限制的。也就是说,组装结构具有一个或多个有限尺寸,比单个单体的尺寸尺度大得多。在许多这样的情况下,有限尺寸是通过单体的首选曲率选择的,从而导致组装自闭合。在本文中,我们研究了一个自闭合组件的示例类别:从三角形单体组装的圆柱小管。通过组合动力学蒙特卡洛模拟,自由能计算和简单的理论模型,我们表明,可以通过控制单体首选曲率及其相互作用强度之间的复杂平衡来针对一系列可编程尺寸尺度。但是,它们的组装受动力学控制 - 闭合后不久,小管形态是固定的,导致小管宽的分布比平衡分布明显宽。我们基于该观察结果和组装小管的基本自由能景观开发了一个简单的动力学模型,该模型定量描述了分布。我们的结果与最近对三角形DNA折纸单体小管组件的实验观察一致。建模框架阐明了设计原理,用于从合成组件中组装自限制的结构,例如具有所需宽度和手性的人工微管。

In contrast to most self-assembling synthetic materials, which undergo unbounded growth, many biological self-assembly processes are self-limited. That is, the assembled structures have one or more finite dimensions that are much larger than the size scale of the individual monomers. In many such cases, the finite dimension is selected by a preferred curvature of the monomers, which leads to self-closure of the assembly. In this article, we study an example class of self-closing assemblies: cylindrical tubules that assemble from triangular monomers. By combining kinetic Monte Carlo simulations, free energy calculations, and simple theoretical models, we show that a range of programmable size scales can be targeted by controlling the intricate balance between the preferred curvature of the monomers and their interaction strengths. However, their assembly is kinetically controlled - the tubule morphology is essentially fixed shortly after closure, resulting in a distribution of tubule widths that is significantly broader than the equilibrium distribution. We develop a simple kinetic model based on this observation and the underlying free-energy landscape of assembling tubules that quantitatively describes the distributions. Our results are consistent with recent experimental observations of tubule assembly from triangular DNA origami monomers. The modeling framework elucidates design principles for assembling self-limited structures from synthetic components, such as artificial microtubules that have a desired width and chirality.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源