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在拥挤条件下,球形囊泡的刚性会使被包裹颗粒的位置在内部和外部区域之间切换:细胞结构的简单模型。

Rigidity of a spherical capsule switches the localization of encapsulated particles between inner and peripheral regions under crowding condition: simple model on cellular architecture.

机构信息

Department of Chemistry, College of Staten Island, City University of New York, 2800 Victory Boulevard, Staten Island, New York 10314, USA.

Faculty of Life and Medical Sciences, Doshisha University, Kyoto 610-0394, Japan.

出版信息

J Chem Phys. 2014 Jan 14;140(2):024907. doi: 10.1063/1.4859835.

Abstract

We have investigated the inhomogeneous interior of confined spherical cavities as capsules containing encapsulated binary hard sphere mixtures for different compositions and cavity wall rigidity. Such a greatly simplified model manifests the effects of macromolecular crowding arising from excluded volume interactions in a tiny cell or a cellular nucleus. By fixing the number of large particles, the level of crowding is adjusted by changing the amount of small hard spheres in the cavity. For a rigid cavity, large spheres tend to pack in liquid-like order apart from the surface to the center of the cavity as the crowding level is increased. Whereas, for a soft cavity, larger spheres tend to blend with small spheres in the peripheral region at near the boundary of the cavity, and are susceptible to be depleted from the interior of the cavity as the cavity becomes more crowded. These results may help future elucidation of the thermodynamic pathways to stabilize the inhomogeneous structure of mixtures confined in cavities, such as the derepression of genome materials around the interior rim of the nucleus in a cancerous cell.

摘要

我们研究了受限的球形腔体内的非均匀内部,这些腔体内含有封装的二元硬球混合物,其组成和腔壁刚性不同。这种极大简化的模型表现出了由排除体积相互作用引起的大分子拥挤在微小细胞或细胞核中产生的效果。通过固定大颗粒的数量,可以通过改变腔体内小硬球的数量来调整拥挤程度。对于刚性腔,随着拥挤程度的增加,大球倾向于在远离表面到腔中心的位置以类似液体的方式堆积。相比之下,对于软腔,较大的球体会在腔的边界附近的外围区域与小球混合,并且随着腔变得更加拥挤,它们容易从腔的内部耗尽。这些结果可能有助于阐明稳定受限在腔体内的混合物的不均匀结构的热力学途径,例如在癌细胞中,基因组物质在核的内部边缘周围的去抑制。

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