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动力学协同作用解决了核孔复合体中的双向堵塞。

Kinetic cooperativity resolves bidirectional clogging within the nuclear pore complex.

机构信息

Department of Physics, University of Toronto, Toronto, ON, Canada.

Department of Physics, University of Toronto, Toronto, ON, Canada.

出版信息

Biophys J. 2024 May 7;123(9):1085-1097. doi: 10.1016/j.bpj.2024.03.027. Epub 2024 Apr 18.

Abstract

As the main gatekeeper of the nucleocytoplasmic transport in eukaryotic cells, the nuclear pore complex (NPC) faces the daunting task of facilitating the bidirectional transport of a high volume of macromolecular cargoes while ensuring the selectivity, speed, and efficiency of this process. The competition between opposing nuclear import and export fluxes passing through the same channel is expected to pose a major challenge to transport efficiency. It has been suggested that phase separation-like radial segregation of import and export fluxes within the assembly of intrinsically disordered proteins that line the NPC pore could be a mechanism for ensuring efficient bidirectional transport. We examine the impact of radial segregation on the efficiency of bidirectional transport through the NPC using a coarse-grained computational model of the NPC. We find little evidence that radial segregation improves transport efficiency. By contrast, surprisingly, we find that NTR crowding may enhance rather than impair the efficiency of bidirectional transport although it decreases the available space in the pore. We identify mechanisms of this novel crowding-induced transport cooperativity through the self-regulation of cargo density and flux in the pore. These findings explain how the functional architecture of the NPC resolves the problem of efficient bidirectional transport, and provide inspiration for the alleviation of clogging in artificial selective nanopores.

摘要

作为真核细胞核质转运的主要门户,核孔复合体(NPC)面临着艰巨的任务,既要促进大量大分子货物的双向转运,又要确保转运过程的选择性、速度和效率。穿过同一通道的核输入和输出通量之间的竞争预计将对转运效率构成重大挑战。有人提出,在排列在 NPC 孔内的固有无序蛋白的组装中,类似于相分离的输入和输出通量的径向分离可能是确保高效双向转运的一种机制。我们使用 NPC 的粗粒计算模型来研究径向分离对 NPC 双向转运效率的影响。我们几乎没有发现证据表明径向分离可以提高转运效率。相比之下,令人惊讶的是,我们发现尽管 NTR 拥挤会减少孔中的可用空间,但它可能会增强而不是削弱双向转运的效率。我们通过孔内货物密度和通量的自我调节来确定这种新型拥挤诱导转运协同作用的机制。这些发现解释了 NPC 的功能结构如何解决高效双向转运的问题,并为缓解人工选择性纳米孔中的堵塞提供了启示。

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