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聚合物塌陷、蛋白质折叠与渗流阈值。

Polymer collapse, protein folding, and the percolation threshold.

作者信息

Meirovitch Hagai

机构信息

University of Pittsburgh, School of Medicine, Center for Computational Biology and Bioinformatics (CCBB), Pennsylvania 15213, USA.

出版信息

J Comput Chem. 2002 Jan 15;23(1):166-71. doi: 10.1002/jcc.1163.

DOI:10.1002/jcc.1163
PMID:11913383
Abstract

We study the transition of polymers in the dilute regime from a swollen shape at high temperatures to their low-temperature structures. The polymers are modeled by a single self-avoiding walk (SAW) on a lattice for which l of the monomers (the H monomers) are self-attracting, i.e., if two nonbonded H monomers become nearest neighbors on the lattice they gain energy of interaction (epsilon = -/epsilon/); the second type of monomers, denoted P, are neutral. This HP model was suggested by Lau and Dill (Macromolecules 1989, 22, 3986-3997) to study protein folding, where H and P are the hydrophobic and polar amino acid residues, respectively. The model is simulated on the square and simple cubic (SC) lattices using the scanning method. We show that the ground state and the sharpness of the transition depend on the lattice, the fraction g of the H monomers, as well as on their arrangement along the chain. In particular, if the H monomers are distributed at random and g is larger than the site percolation threshold of the lattice, a collapsed transition is very likely to occur. This conclusion, drawn for the lattice models, is also applicable to proteins where an effective lattice with coordination number between that of the SC lattice and the body centered cubic lattice is defined. Thus, the average fraction of hydrophobic amino acid residues in globular proteins is found to be close to the percolation threshold of the effective lattice.

摘要

我们研究了聚合物在稀溶液状态下从高温时的膨胀形态到低温结构的转变。聚合物由晶格上的单个自回避行走(SAW)来建模,其中l个单体(H单体)是自吸引的,即如果两个非键合的H单体在晶格上成为最近邻,它们会获得相互作用能(ε = -|ε|);第二种单体,记为P,是中性的。Lau和Dill(《大分子》1989年,22卷,3986 - 3997页)提出这个HP模型来研究蛋白质折叠,其中H和P分别代表疏水和极性氨基酸残基。该模型在正方形和简单立方(SC)晶格上使用扫描方法进行模拟。我们表明,基态和转变的尖锐程度取决于晶格、H单体的比例g以及它们沿链的排列。特别地,如果H单体随机分布且g大于晶格的位点渗流阈值,很可能会发生塌缩转变。从晶格模型得出的这个结论,也适用于蛋白质,其中定义了一个有效晶格,其配位数介于SC晶格和体心立方晶格的配位数之间。因此,发现球状蛋白质中疏水氨基酸残基的平均比例接近有效晶格的渗流阈值。

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