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Karyopherin-centric control of nuclear pores based on molecular occupancy and kinetic analysis of multivalent binding with FG nucleoporins

机译:基于分子占据的核分子的核分裂控制和与FG核孔蛋白的多价结合的动力学分析

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摘要

Intrinsically disordered Phe-Gly nucleoporins (FG Nups) within nuclear pore complexes exert multivalent interactions with transport receptors (Karyopherins (Kaps)) that orchestrate nucleocytoplasmic transport. Current FG-centric views reason that selective Kap translocation is promoted by alterations in the barrier-like FG Nup conformations. However, the strong binding of Kaps with the FG Nups due to avidity contradicts rapid Kap translocation in vivo. Here, using surface plasmon resonance, we innovate a means to correlate in situ mechanistic (molecular occupancy and conformational changes) with equilibrium (binding affinity) and kinetic (multivalent binding kinetics) aspects of Karyopherinβ1 (Kapβ1) binding to four different FG Nups. A general feature of the FxFG domains of Nup214, Nup62, and Nup153 is their capacity to extend and accommodate large numbers of Kapβ1 molecules at physiological Kapβ1 concentrations. A notable exception is the GLFG domain of Nup98, which forms a partially penetrable cohesive layer. Interestingly, we find that a slowly exchanging Kapβ1 phase forms an integral constituent within the FG Nups that coexists with a fast phase, which dominates transport kinetics due to limited binding with the pre-occupied FG Nups at physiological Kapβ1 concentrations. Altogether, our data reveal an emergent Kap-centric barrier mechanism that may underlie mechanistic and kinetic control in the nuclear pore complex.
机译:核孔复合物中的内在无序的Phe-Gly核孔蛋白(FG Nups)与协调核质运输的转运受体(核转运蛋白(Kaps))发生多价相互作用。当前以FG为中心的观点认为,选择性Kap易位是通过改变类似障碍的FG Nup构象来促进的。然而,由于亲合力,Kaps与FG Nups的牢固结合与体内Kap的快速移位相矛盾。在这里,我们使用表面等离振子共振,创新了一种将原位机制(分子占有率和构象变化)与核黄素β1(Kapβ1)与四个不同FG核素结合的平衡(结合亲和力)和动力学(多价结合动力学)方面相关的方法。 Nup214,Nup62和Nup153的FxFG域的一般特征是它们能够以生理Kapβ1浓度扩展并容纳大量Kapβ1分子。一个值得注意的例外是Nup98的GLFG域,它形成了部分可穿透的内聚层。有趣的是,我们发现,缓慢交换的Kapβ1相在FG Nups中形成不可或缺的组成部分,与快速相共存,由于在生理学Kapβ1浓度下与预先占据的FG Nups的结合有限,因此占主导地位的运输动力学。总的来说,我们的数据揭示了一种新兴的以Kap为中心的屏障机制,该机制可能是核孔复合物中机械和动力学控制的基础。

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