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Inclusion of persistence length-based secondary structure in replica field theoretic models of heteropolymer freezing

机译:基于持久性长度的二级结构包含在杂聚物冻结复制场理论模型中

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摘要

The protein folding problem has long represented a "holy grail" in statistical physics due to its physical complexity and its relevance to many human diseases. While past theoretical work has yielded apt descriptions of protein folding landscapes, recent large-scale simulations have provided insights into protein folding that were impractical to obtain from early theories. In particular, the role that non-native contacts play in protein folding, and their relation to the existence of misfolded, β-sheet rich trap states on folding landscapes, has emerged as a topic of interest in the field. In this paper, we present a modified model of heteropolymer freezing that includes explicit secondary structural characteristics which allow observations of "intramolecular amyloid" states to be probed from a theoretical perspective. We introduce a variable persistence length-based energy penalty to a model Hamiltonian, and we illustrate how this modification alters the phase transitions present in the theory. We find, in particular, that inclusion of this variable persistence length increases both generic freezing and folding temperatures in the model, allowing both folding and glass transitions to occur in a more highly optimized fashion. We go on to discuss how these changes might relate to protein evolution, misfolding, and the emergence of intramolecular amyloid states.
机译:蛋白质折叠问题由于其物理复杂性及其与许多人类疾病的关系,长期以来一直是统计物理学中的“圣杯”。尽管过去的理论工作已经对蛋白质折叠态势进行了恰当的描述,但最近的大规模模拟提供了对蛋白质折叠的见解,而从早期的理论中无法获得这些见解。特别地,非本地接触在蛋白质折叠中所起的作用,以及它们与折叠景观上错折叠的,富含β-折叠的陷阱状态的存在之间的关系,已成为该领域的关注话题。在本文中,我们提出了一种改进的杂聚物冻结模型,该模型包括显式的二级结构特征,可从理论角度探讨“分子内淀粉样蛋白”状态的观察结果。我们向模型哈密顿量引入了基于持久性长度的可变能量损失,并说明了这种修改如何改变理论中存在的相变。我们特别发现,包含此可变的持续时间会增加模型中的常规冻结和折叠温度,从而使折叠和玻璃化转变都可以以更高度优化的方式进行。我们继续讨论这些变化如何与蛋白质进化,错误折叠以及分子内淀粉样蛋白状态的出现有关。

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