Kreuzberg Maria M, Schrickel Jan W, Ghanem Alexander, Kim Jung-Sun, Degen Joachim, Janssen-Bienhold Ulrike, Lewalter Thorsten, Tiemann Klaus, Willecke Klaus
Institut für Genetik, Abteilung Molekulargenetik, Universität Bonn, Römerstrasse 164, 53117 Bonn, Germany.
Proc Natl Acad Sci U S A. 2006 Apr 11;103(15):5959-64. doi: 10.1073/pnas.0508512103. Epub 2006 Mar 29.
In the mammalian heart, gap junction channels between electrically coupled cardiomyocytes are necessary for impulse propagation and coordinated contraction of atria and ventricles. Recently, mouse connexin30.2 (Cx30.2) was shown to be expressed in the cardiac conduction system, predominantly in sinoatrial and atrioventricular (AV) nodes. The corresponding gap junctional channels expressed in HeLa cells exhibit the lowest unitary conductance (9 pS) of all connexin channels. Here we report that Cx30.2 slows down the propagation of excitation through the AV node. Mice expressing a LacZ reporter gene instead of the Cx30.2 coding region (Cx30.2(LacZ/LacZ)) exhibit a PQ interval that is approximately 25% shorter than in WT littermates. By recording atrial, His, and ventricular signals with intracardiac electrodes, we show that this decrease is attributed to significantly accelerated conduction above the His bundle (atrial-His interval: 27.9 +/- 5.1 ms in Cx30.2(LacZ/LacZ) versus 37.1 +/- 4.1 ms in Cx30.2(+/+) mice), whereas HV conduction is unaltered. Atrial stimulation revealed an elevated AV-nodal conduction capacity and faster ventricular response rates during induced episodes of atrial fibrillation in Cx30.2(LacZ/LacZ) mice. Our results show that Cx30.2 contributes to the slowdown of impulse propagation in the AV node and additionally limits the maximum number of beats conducted from atria to ventricles. Thus, it is likely to be involved in coordination of atrial and ventricular contraction and to fulfill a protective role toward pathophysiological states such as atrial tachyarrhythmias (e.g., atrial fibrillation) by preventing rapid conduction to the ventricles potentially associated with hemodynamic deterioration.
在哺乳动物心脏中,电偶联心肌细胞之间的缝隙连接通道对于冲动传导以及心房和心室的协调收缩是必需的。最近研究表明,小鼠连接蛋白30.2(Cx30.2)在心脏传导系统中表达,主要存在于窦房结和房室(AV)结。在HeLa细胞中表达的相应缝隙连接通道展现出所有连接蛋白通道中最低的单位电导(9 pS)。在此我们报告,Cx30.2减缓了兴奋通过房室结的传导。表达LacZ报告基因而非Cx30.2编码区的小鼠(Cx30.2(LacZ/LacZ))的PQ间期比野生型同窝小鼠短约25%。通过心内电极记录心房、希氏束和心室信号,我们发现这种缩短归因于希氏束上方传导显著加速(Cx30.2(LacZ/LacZ)小鼠的心房 - 希氏束间期:27.9±5.1毫秒,而Cx30.2(+/+)小鼠为37.1±4.1毫秒),而希氏束 - 心室传导未改变。心房刺激显示,在Cx30.2(LacZ/LacZ)小鼠诱发心房颤动期间,房室结传导能力增强且心室反应率更快。我们的结果表明,Cx30.2有助于减缓房室结中的冲动传导,并额外限制从心房传导到心室的最大搏动次数。因此,它可能参与心房和心室收缩的协调,并通过防止可能与血流动力学恶化相关的快速传导至心室,对诸如房性快速心律失常(如心房颤动)等病理生理状态起到保护作用。