Physiology Group, Department of Basic and Applied Medical Sciences, Ghent University, Ghent, Belgium.
Laboratory of Experimental Cardiology, Department of Cardiovascular Sciences, and.
J Clin Invest. 2023 Mar 15;133(6):e168117. doi: 10.1172/JCI168117.
Connexins are crucial cardiac proteins that form hemichannels and gap junctions. Gap junctions are responsible for the propagation of electrical and chemical signals between myocardial cells and cells of the specialized conduction system in order to synchronize the cardiac cycle and steer cardiac pump function. Gap junctions are normally open, while hemichannels are closed, but pathological circumstances may close gap junctions and open hemichannels, thereby perturbing cardiac function and homeostasis. Current evidence demonstrates an emerging role of hemichannels in myocardial ischemia and arrhythmia, and tools are now available to selectively inhibit hemichannels without inhibiting gap junctions as well as to stimulate hemichannel incorporation into gap junctions. We review available experimental evidence for hemichannel contributions to cellular pro-arrhythmic events in ventricular and atrial cardiomyocytes, and link these to insights at the level of molecular control of connexin-43-based hemichannel opening. We conclude that a double-edged approach of both preventing hemichannel opening and preserving gap junctional function will be key for further research and development of new connexin-based experimental approaches for treating heart disease.
连接蛋白是心脏的重要蛋白,可形成半通道和缝隙连接。缝隙连接负责在心肌细胞和特殊传导系统细胞之间传播电和化学信号,以同步心脏周期并指导心脏泵功能。缝隙连接通常是开放的,而半通道是关闭的,但病理情况下可能会关闭缝隙连接并打开半通道,从而扰乱心脏功能和内稳态。目前的证据表明半通道在心肌缺血和心律失常中具有新的作用,并且现在有工具可选择性地抑制半通道而不抑制缝隙连接,以及刺激半通道掺入缝隙连接。我们回顾了现有的实验证据,证明半通道对心室和心房肌细胞中细胞促心律失常事件的贡献,并将这些与连接蛋白 43 基半通道开放的分子控制水平的见解联系起来。我们得出结论,既要防止半通道开放,又要保持缝隙连接功能,这将是进一步研究和开发基于连接蛋白的治疗心脏病的新实验方法的关键。