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蛋白质折叠中的拓扑与纠结纠缠。

On topology and knotty entanglement in protein folding.

机构信息

Pacific Quantum Center, Far Eastern Federal University, Vladivostok, Russia.

Nordita, Stockholm University, Stockholm, Sweden.

出版信息

PLoS One. 2021 Jan 13;16(1):e0244547. doi: 10.1371/journal.pone.0244547. eCollection 2021.

Abstract

We investigate aspects of topology in protein folding. For this we numerically simulate the temperature driven folding and unfolding of the slipknotted archaeal virus protein AFV3-109. Due to knottiness the (un)folding is a topological process, it engages the entire backbone in a collective fashion. Accordingly we introduce a topological approach to model the process. Our simulations reveal that the (un)folding of AFV3-109 slipknot proceeds through a folding intermediate that has the topology of a trefoil knot. We observe that the final slipknot causes a slight swelling of the folded AFV3-109 structure. We disclose the relative stability of the strands and helices during both the folding and unfolding processes. We confirm results from previous studies that pointed out that it can be very demanding to simulate the formation of knotty self-entanglement, and we explain how the problems are circumvented: The slipknotted AFV3-109 protein is a very slow folder with a topologically demanding pathway, which needs to be properly accounted for in a simulation description. When we either increase the relative stiffness of bending, or when we decrease the speed of ambient cooling, the rate of slipknot formation rapidly increases.

摘要

我们研究了蛋白质折叠中的拓扑学方面。为此,我们通过数值模拟研究了 slipknotted 古菌病毒蛋白 AFV3-109 的温度驱动折叠和展开。由于扭结,(解)折叠是一个拓扑过程,它以集体的方式使整个骨架参与其中。因此,我们引入了一种拓扑方法来模拟这个过程。我们的模拟结果表明,AFV3-109 slipknot 的(解)折叠是通过一种具有三叶结拓扑结构的折叠中间体进行的。我们观察到,最终的 slipknot 会导致折叠的 AFV3-109 结构略有膨胀。我们揭示了在折叠和展开过程中,链和螺旋的相对稳定性。我们证实了先前研究的结果,这些结果指出模拟结状自缠结的形成可能非常具有挑战性,我们解释了如何规避这些问题: slipknotted AFV3-109 蛋白是一个非常缓慢的折叠体,其拓扑路径要求很高,这需要在模拟描述中得到妥善处理。当我们增加弯曲的相对刚性,或者当我们降低环境冷却的速度时, slipknot 的形成速度会迅速增加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68f8/7806123/d8f6f2b14256/pone.0244547.g001.jpg

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