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受限在通道和腔体内的半柔性大分子的形状转变。

Shape transition of semi-flexible macromolecules confined in channel and cavity.

作者信息

Cifra P, Bleha T

机构信息

Polymer Institute, Slovak Academy of Sciences, 842 36, Bratislava, Slovakia.

出版信息

Eur Phys J E Soft Matter. 2010 Jul;32(3):273-9. doi: 10.1140/epje/i2010-10626-y. Epub 2010 Jul 27.

Abstract

Stiff macromolecules entrapped in channels or in spherical cavities undergo a shape transition on increasing confinement as shown by our investigation using molecular simulations. In channels this weak-to-strong confinement transition leads to extended conformations without the hairpin-like back-folding. In cavities, on decrease of cavity radius, the semi-flexible chain in a disordered state starts to self-organize into the torus. As a common rule for both types of confinement the transition to the ordered structures is observed when the radius of cavity and cylindrical channel reaches the lower bound of macromolecular flexibility given by the average typical radius of curvature of the chain, which is approximately equal to the persistence length of the macromolecular chain. This simple geometric rule finds its application in various confinement situations of stiff bio-macromolecules either in micro-channel experiments or in real biophysical situation, such as DNA in viral capsid.

摘要

正如我们使用分子模拟进行的研究所表明的那样,被困在通道或球形腔中的刚性大分子在限制增加时会发生形状转变。在通道中,这种从弱限制到强限制的转变会导致伸展构象,而不会出现发夹状的反向折叠。在腔中,随着腔半径的减小,处于无序状态的半柔性链开始自组装成环面。对于这两种限制类型的一个共同规律是,当腔和圆柱形通道的半径达到由链的平均典型曲率半径给出的大分子柔性下限(其大致等于大分子链的持久长度)时,就会观察到向有序结构的转变。这个简单的几何规律在刚性生物大分子的各种限制情况中都有应用,无论是在微通道实验中还是在实际生物物理情况中,比如病毒衣壳中的DNA。

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