From the National Centre for Biological Sciences, Tata Institute of Fundamental Research, Bengaluru 560065.
the Biocon Bristol Myers Squibb Research Center, Bengaluru 560099, and.
J Biol Chem. 2018 Mar 23;293(12):4289-4303. doi: 10.1074/jbc.RA117.000432. Epub 2018 Jan 5.
Fluid movement within the heart generates substantial shear forces, but the effect of this mechanical stress on the electrical activity of the human heart has not been examined. The fast component of the delayed rectifier potassium currents responsible for repolarization of the cardiac action potential, Ikr, is encoded by the human ether-a-go-go related gene (hERG) channel. Here, we exposed hERG1a channel-expressing HEK293T cells to laminar shear stress (LSS) and observed that this mechanical stress increased the whole-cell current by 30-40%. LSS shifted the voltage dependence of steady-state activation of the hERG channel to the hyperpolarizing direction, accelerated the time course of activation and recovery from inactivation, slowed down deactivation, and shifted the steady-state inactivation to the positive direction, all of which favored the hERG open state. In contrast, the time course of inactivation was faster, favoring the closed state. Using specific inhibitors of focal adhesion kinase, a regulator of mechano-transduction via the integrin pathway, we also found that the LSS-induced modulation of the whole-cell current depended on the integrin pathway. The hERG1b channel variant, which lacks the Per-Arnt-Sim (PAS) domain, and long QT syndrome-associated variants having point mutations in the PAS domain were unaffected by LSS, suggesting that the PAS domain in hERG1a channel may be involved in sensing mechanical shear stress. We conclude that a mechano-electric feedback pathway modulates hERG channel activity through the integrin pathway, indicating that mechanical forces in the heart influence its electrical activity.
心脏内的液体流动会产生很大的切变力,但这种机械应力对人心电图活动的影响尚未被研究过。快速成分延迟整流钾电流(负责复极化心肌动作电位),Ikr,由人类醚-a--go-go 相关基因(hERG)通道编码。在这里,我们将 hERG1a 通道表达的 HEK293T 细胞暴露于层流剪切力(LSS)下,观察到这种机械应力使整个细胞电流增加了 30-40%。LSS 使 hERG 通道的稳态激活的电压依赖性向超极化方向移动,加速激活和失活恢复的时程,减慢失活的速度,并将稳态失活移向正方向,所有这些都有利于 hERG 开放状态。相比之下,失活的时程更快,有利于关闭状态。使用粘着斑激酶(FAK)的特异性抑制剂,粘着斑激酶是通过整合素途径进行机械转导的调节剂,我们还发现,LSS 诱导的整个细胞电流的调制取决于整合素途径。缺乏 Per-Arnt-Sim(PAS)结构域的 hERG1b 通道变体以及 PAS 结构域中存在点突变的长 QT 综合征相关变体不受 LSS 的影响,这表明 hERG1a 通道中的 PAS 结构域可能参与感受机械剪切力。我们得出结论,机械-电反馈途径通过整合素途径调节 hERG 通道活性,表明心脏中的机械力会影响其电活动。