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首页> 外文期刊>The Journal of biological chemistry >Free energy landscape remodeling of the cardiac pacemaker channel explains the molecular basis of familial sinus bradycardia
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Free energy landscape remodeling of the cardiac pacemaker channel explains the molecular basis of familial sinus bradycardia

机译:心脏起搏器通道的自由能景观重塑解释了家族性窦性心动过缓的分子基础

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The hyperpolarization-activated and cyclic nucleotide-modulated ion channel (HCN) drives the pacemaker activity in the heart, and its malfunction can result in heart disorders. One such disorder, familial sinus bradycardia, is caused by the S672R mutation in HCN, whose electrophysiological phenotypes include a negative shift in the channel activation voltage and an accelerated HCN deactivation. The outcomes of these changes are abnormally low resting heart rates. However, the molecular mechanism underlying these electrophysiological changes is currently not fully understood. Crystallographic investigations indicate that the S672R mutation causes limited changes in the structure of the HCN intracellular gating tetramer, but its effects on protein dynamics are unknown. Here, we utilize comparative S672R versus WT NMR analyses to show that the S672R mutation results in extensive perturbations of the dynamics in both apo- and holo-forms of the HCN4 isoform, reflecting how S672R remodels the free energy landscape for the modulation of HCN4 by cAMP, i.e. the primary cyclic nucleotide modulator of HCN channels. We show that the S672R mutation results in a constitutive shift of the dynamic auto-inhibitory equilibrium toward inactive states of HCN4 and broadens the free-energy well of the apo-form, enhancing the millisecond to microsecond dynamics of the holo-form at sites critical for gating cAMP binding. These S672R-induced variations in dynamics provide a molecular basis for the electrophysiological phenotypes of this mutation and demonstrate that the pathogenic effects of the S672R mutation can be rationalized primarily in terms of modulations of protein dynamics.
机译:超极化激活和环状核苷酸调节的离子通道(HCN)驱动心脏中的起搏器活动,其故障可能导致心脏疾病。一种这样的疾病,家族性窦性心动过缓,是由HCN中的S672R突变引起的,其电生理表型包括通道激活电压的负移和HCN失活的加速。这些变化的结果是静息心率异常低。然而,目前尚不完全了解这些电生理变化的分子机制。晶体学研究表明,S672R突变引起HCN细胞内门控四聚体结构的有限变化,但其对蛋白质动力学的影响尚不清楚。在这里,我们利用比较S672R与WT NMR分析来表明S672R突变导致HCN4亚型的脱辅基和全异构形式的动力学发生广泛扰动,反映出S672R如何重塑自由能态以通过HCN4的调制cAMP,即HCN通道的主要环状核苷酸调节剂。我们表明,S672R突变导致动态自抑制平衡向非活性状态的HCN4的组成性转变,并扩大了载脂蛋白形式的自由能阱,从而增强了关键位点上完整形式的毫秒级至微秒级动力学用于门控cAMP结合。这些S672R诱导的动力学变化为该突变的电生理表型提供了分子基础,并证明S672R突变的致病作用可以主要通过蛋白质动力学的调节来合理化。

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