Suppr超能文献

开放的超极化激活的环核苷酸门控(HCN)起搏器通道孔中的离子结合:塑造“慢”通道的快速机制。

Ion binding in the open HCN pacemaker channel pore: fast mechanisms to shape "slow" channels.

作者信息

Lyashchenko Alex K, Tibbs Gareth R

机构信息

Department of Anesthesiology, Columbia University, New York, NY 10032, USA.

出版信息

J Gen Physiol. 2008 Mar;131(3):227-43. doi: 10.1085/jgp.200709868. Epub 2008 Feb 11.

Abstract

I(H) pacemaker channels carry a mixed monovalent cation current that, under physiological ion gradients, reverses at approximately -34 mV, reflecting a 4:1 selectivity for K over Na. However, I(H) channels display anomalous behavior with respect to permeant ions such that (a) open channels do not exhibit the outward rectification anticipated assuming independence; (b) gating and selectivity are sensitive to the identity and concentrations of externally presented permeant ions; (c) the channels' ability to carry an inward Na current requires the presence of external K even though K is a minor charge carrier at negative voltages. Here we show that open HCN channels (the hyperpolarization-activated, cyclic nucleotide sensitive pore forming subunits of I(H)) undergo a fast, voltage-dependent block by intracellular Mg in a manner that suggests the ion binds close to, or within, the selectivity filter. Eliminating internal divalent ion block reveals that (a) the K dependence of conduction is mediated via K occupancy of site(s) within the pore and that asymmetrical occupancy and/or coupling of these sites to flux further shapes ion flow, and (b) the kinetics of equilibration between K-vacant and K-occupied states of the pore (10-20 micros or faster) is close to the ion transit time when the pore is occupied by K alone ( approximately 0.5-3 micros), a finding that indicates that either ion:ion repulsion involving Na is adequate to support flux (albeit at a rate below our detection threshold) and/or the pore undergoes rapid, permeant ion-sensitive equilibration between nonconducting and conducting configurations. Biophysically, further exploration of the Mg site and of interactions of Na and K within the pore will tell us much about the architecture and operation of this unusual pore. Physiologically, these results suggest ways in which "slow" pacemaker channels may contribute dynamically to the shaping of fast processes such as Na-K or Ca action potentials.

摘要

I(H) 起搏通道携带一种混合单价阳离子电流,在生理离子梯度下,该电流在约 -34 mV 时反转,这反映出对 K 的选择性是对 Na 的 4:1。然而,I(H) 通道在通透离子方面表现出异常行为,即 (a) 开放通道未表现出假设独立时预期的外向整流;(b) 门控和选择性对外界存在的通透离子的种类和浓度敏感;(c) 通道携带内向 Na 电流的能力需要外部 K 的存在,尽管在负电压下 K 是次要的电荷载体。在此我们表明,开放的 HCN 通道(I(H) 的超极化激活、环核苷酸敏感的孔形成亚基)会受到细胞内 Mg 的快速、电压依赖性阻断,其方式表明该离子结合在选择性过滤器附近或内部。消除内部二价离子阻断表明,(a) 传导对 K 的依赖性是通过孔内位点对 K 的占据介导的,这些位点的不对称占据和/或与通量的耦合进一步塑造了离子流,并且 (b) 孔的 K 空态和 K 占据态之间的平衡动力学(10 - 20 微秒或更快)接近孔仅被 K 占据时的离子转运时间(约 0.5 - 3 微秒),这一发现表明,要么涉及 Na 的离子:离子排斥足以支持通量(尽管速率低于我们的检测阈值),要么孔在非传导和传导构型之间经历快速的、通透离子敏感的平衡。从生物物理学角度来看,对 Mg 位点以及孔内 Na 和 K 的相互作用的进一步探索将让我们更多地了解这个不寻常孔的结构和运作。从生理学角度来看,这些结果提示了 “缓慢” 的起搏通道可能以何种方式动态地参与快速过程的形成,如 Na - K 或 Ca 动作电位。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5612/2248720/6b33fe8042df/jgp1310227f01.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验