Connecting polymer collapse and the onset of jamming

IF 2.4 3区 物理与天体物理 Q1 Mathematics
Alex T. Grigas, Aliza Fisher, Mark D. Shattuck, Corey S. O'Hern
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Abstract

Previous studies have shown that the interiors of proteins are densely packed, reaching packing fractions that are as large as those found for static packings of individual amino-acid-shaped particles. How can the interiors of proteins take on such high packing fractions given that amino acids are connected by peptide bonds and many amino acids are hydrophobic with attractive interactions? We investigate this question by comparing the structural and mechanical properties of collapsed attractive disk-shaped bead-spring polymers to those of three reference systems: static packings of repulsive disks, of attractive disks, and of repulsive disk-shaped bead-spring polymers. We show that the attractive systems quenched to temperatures below the glass transition TTg and static packings of both repulsive disks and bead-spring polymers possess similar interior packing fractions. Previous studies have shown that static packings of repulsive disks are isostatic at jamming onset, i.e., the number of interparticle contacts Nc matches the number of degrees of freedom, which strongly influences their mechanical properties. We find that repulsive polymer packings are hypostatic at jamming onset (i.e., with fewer contacts than degrees of freedom) but are effectively isostatic when including stabilizing quartic modes, which give rise to quartic scaling of the potential energy with displacements along these modes. While attractive disk and polymer packings are often considered hyperstatic with excess contacts over the isostatic number, we identify a definition for interparticle contacts for which they can also be considered as effectively isostatic. As a result, we show that the mechanical properties (e.g., scaling of the potential energy with excess contact number and low-frequency contribution to the density of vibrational modes) of weakly attractive disk and polymer packings are similar to those of isostatic repulsive disk and polymer packings. Our results demonstrate that static packings generated via attractive collapse or compression of repulsive particles possess similar structural and mechanical properties.

Abstract Image

连接聚合物塌缩和开始堵塞
以往的研究表明,蛋白质内部的堆积非常密集,其堆积分数与单个氨基酸形颗粒的静态堆积分数一样大。既然氨基酸是通过肽键连接的,而且许多氨基酸是疏水的,具有吸引力相互作用,那么蛋白质内部怎么会有如此高的堆积密度呢?我们通过比较坍缩的吸引力盘状珠链聚合物与三种参考系统(斥力盘、吸引力盘和斥力盘状珠链聚合物的静态堆积)的结构和机械特性来研究这个问题。我们的研究表明,淬火温度低于玻璃转化温度 T≪Tg 的吸引力系统与斥力盘和珠弹簧聚合物的静态堆积具有相似的内部堆积分数。先前的研究表明,斥力盘的静态填料在卡塞开始时是等静态的,即粒子间接触数 Nc 与自由度数相匹配,这对其机械性能有很大影响。我们发现,斥性聚合物填料在干扰开始时是次静态的(即接触数少于自由度数),但当包括稳定的四元模式时,它们实际上是等静态的,这导致势能与沿这些模式的位移成四元比例关系。虽然有吸引力的圆盘和聚合物填料通常被认为是超静定的,其接触数超过等静压数,但我们确定了粒子间接触的定义,它们也可被视为有效等静压。因此,我们证明了弱吸引力圆盘和聚合物填料的机械特性(例如,势能与过量接触数的比例以及振动模式密度的低频贡献)与等静压斥力圆盘和聚合物填料相似。我们的研究结果表明,通过吸引力塌缩或斥力粒子压缩产生的静态填料具有相似的结构和机械特性。
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来源期刊
Physical review. E
Physical review. E 物理-物理:流体与等离子体
CiteScore
4.60
自引率
16.70%
发文量
0
审稿时长
3.3 months
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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