Department of Biosciences, University of Milan, Milan, Italy.
Department of Biology, TU-Darmstadt, Darmstadt, Germany.
Mol Cell. 2021 Jul 15;81(14):2929-2943.e6. doi: 10.1016/j.molcel.2021.05.033. Epub 2021 Jun 23.
The HCN1-4 channel family is responsible for the hyperpolarization-activated cation current I/I that controls automaticity in cardiac and neuronal pacemaker cells. We present cryoelectron microscopy (cryo-EM) structures of HCN4 in the presence or absence of bound cAMP, displaying the pore domain in closed and open conformations. Analysis of cAMP-bound and -unbound structures sheds light on how ligand-induced transitions in the channel cytosolic portion mediate the effect of cAMP on channel gating and highlights the regulatory role of a Mg coordination site formed between the C-linker and the S4-S5 linker. Comparison of open/closed pore states shows that the cytosolic gate opens through concerted movements of the S5 and S6 transmembrane helices. Furthermore, in combination with molecular dynamics analyses, the open pore structures provide insights into the mechanisms of K/Na permeation. Our results contribute mechanistic understanding on HCN channel gating, cyclic nucleotide-dependent modulation, and ion permeation.
HCN1-4 通道家族负责超极化激活阳离子电流 I/I,该电流控制着心脏和神经元起搏细胞的自动性。我们展示了存在或不存在结合的 cAMP 时 HCN4 的冷冻电镜 (cryo-EM) 结构,显示了处于关闭和开放构象的孔域。对 cAMP 结合和非结合结构的分析阐明了通道胞质部分的配体诱导转变如何介导 cAMP 对通道门控的影响,并强调了由 C 连接子和 S4-S5 连接子之间形成的 Mg 配位位点的调节作用。开放/关闭孔状态的比较表明,胞质门通过 S5 和 S6 跨膜螺旋的协同运动打开。此外,结合分子动力学分析,开放孔结构提供了对 K/Na 渗透机制的深入了解。我们的结果有助于理解 HCN 通道门控、环核苷酸依赖性调节和离子渗透的机制。