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碱金属阳离子调节 HCN4 选择性过滤器中不同结合位点的几何形状,以实现渗透或阻断。

Alkali metal cations modulate the geometry of different binding sites in HCN4 selectivity filter for permeation or block.

机构信息

Department of Biology, Technical University of Darmstadt, Darmstadt, Germany.

Department of Biosciences, University of Milan, Milan, Italy.

出版信息

J Gen Physiol. 2023 Oct 2;155(10). doi: 10.1085/jgp.202313364. Epub 2023 Jul 31.

Abstract

Hyperpolarization-activated cyclic-nucleotide gated (HCN) channels are important for timing biological processes like heartbeat and neuronal firing. Their weak cation selectivity is determined by a filter domain with only two binding sites for K+ and one for Na+. The latter acts as a weak blocker, which is released in combination with a dynamic widening of the filter by K+ ions, giving rise to a mixed K+/Na+ current. Here, we apply molecular dynamics simulations to systematically investigate the interactions of five alkali metal cations with the filter of the open HCN4 pore. Simulations recapitulate experimental data like a low Li+ permeability, considerable Rb+ conductance, a block by Cs+ as well as a punch through of Cs+ ions at high negative voltages. Differential binding of the cation species in specific filter sites is associated with structural adaptations of filter residues. This gives rise to ion coordination by a cation-characteristic number of oxygen atoms from the filter backbone and solvent. This ion/protein interplay prevents Li+, but not Na+, from entry into and further passage through the filter. The site equivalent to S3 in K+ channels emerges as a preferential binding and presumably blocking site for Cs+. Collectively, the data suggest that the weak cation selectivity of HCN channels and their block by Cs+ are determined by restrained cation-generated rearrangements of flexible filter residues.

摘要

超极化激活环核苷酸门控 (HCN) 通道对于心跳和神经元发射等生物过程的计时非常重要。它们对阳离子的弱选择性由一个仅具有两个结合 K+位点和一个结合 Na+位点的过滤器域决定。后者作为弱阻断剂起作用,在 K+离子的动态加宽与过滤器结合时被释放,从而产生混合的 K+/Na+电流。在这里,我们应用分子动力学模拟系统地研究了五种碱金属阳离子与开放 HCN4 孔过滤器的相互作用。模拟再现了实验数据,例如 Li+的低通透性、相当大的 Rb+电导率、Cs+的阻断以及在高负电压下 Cs+离子的穿孔。阳离子物种在特定过滤器位点的差异结合与过滤器残基的结构适应有关。这导致由过滤器骨架和溶剂中的氧原子的阳离子特征数进行离子配位。这种离子/蛋白质相互作用阻止 Li+进入并进一步通过过滤器,但不能阻止 Na+。类似于 K+通道中的 S3 位点的位置成为 Cs+的优先结合和可能的阻断位点。总的来说,这些数据表明 HCN 通道的弱阳离子选择性及其被 Cs+阻断是由受限制的阳离子引发的柔性过滤器残基的重排决定的。

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