Department of Physiology and Biophysics, University of Miami, Miami, FL, 33136, USA.
Nat Commun. 2020 Mar 17;11(1):1419. doi: 10.1038/s41467-020-15233-9.
Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels are essential for rhythmic activity in the heart and brain, and mutations in HCN channels are linked to heart arrhythmia and epilepsy. HCN channels belong to the family of voltage-gated K (Kv) channels. However, why HCN channels are activated by hyperpolarization whereas Kv channels are activated by depolarization is not clear. Here we reverse the voltage dependence of HCN channels by mutating only two residues located at the interface between the voltage sensor and the pore domain such that the channels now open upon depolarization instead of hyperpolarization. Our data indicate that what determines whether HCN channels open by hyperpolarizations or depolarizations are small differences in the energies of the closed and open states, due to different interactions between the voltage sensor and the pore in the different channels.
超极化激活环核苷酸门控(HCN)通道对于心脏和大脑的节律性活动至关重要,HCN 通道的突变与心律失常和癫痫有关。HCN 通道属于电压门控 K(Kv)通道家族。然而,为什么 HCN 通道被超极化激活,而 Kv 通道被去极化激活还不清楚。在这里,我们通过突变仅位于电压传感器和孔域之间界面的两个残基来逆转 HCN 通道的电压依赖性,使得通道现在在去极化而不是超极化时打开。我们的数据表明,决定 HCN 通道是通过超极化还是去极化打开的因素是由于不同通道中电压传感器和孔之间的不同相互作用,导致闭态和开态的能量存在微小差异。