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聚两性电解质和内在无序蛋白质的易位

Translocation of polyampholytes and intrinsically disordered proteins.

作者信息

Johner A, Joanny J F

机构信息

Institut Charles Sadron CNRS-Unistra, 6 rue Boussingault, 67083, Strasbourg Cedex, France.

ESPCI Paris, PSL University, 10 rue Vauquelin, 75005, Paris, France.

出版信息

Eur Phys J E Soft Matter. 2018 Jun 21;41(6):78. doi: 10.1140/epje/i2018-11686-7.

Abstract

Polyampholytes are polymers carrying electrical charges of both signs along their backbone. We consider synthetic polyampholytes with a quenched random charge sequence and intrinsically disordered proteins, which have a well-defined charge sequence and behave like polyampholytes in the denaturated state. We study their translocation driven by an electric field through a pore. The role of disorder along the charge sequence of synthetic polyampholytes is analyzed. We show how disorder slows down the translocation dynamics. For intrinsically disordered proteins, the translocation vs. rejection rates by the pore depends on which end is engaged in the translocation channel. We discuss the rejection time, the blockade time distributions and the translocation speed for the charge sequence of two specific intrinsically disordered proteins differing in length and structure.

摘要

聚两性电解质是一类在其主链上带有两种相反电荷的聚合物。我们研究了具有淬灭随机电荷序列的合成聚两性电解质以及内在无序蛋白质,后者具有明确的电荷序列,并且在变性状态下表现得像聚两性电解质。我们研究了它们在电场驱动下通过孔道的转运过程。分析了合成聚两性电解质电荷序列上无序性的作用。我们展示了无序性如何减缓转运动力学。对于内在无序蛋白质,孔道对其转运与排斥速率取决于哪一端进入转运通道。我们讨论了两种长度和结构不同的特定内在无序蛋白质电荷序列的排斥时间、阻断时间分布以及转运速度。

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