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连接蛋白43基因水平降低的新生心肌细胞合成链中的冲动传播

Impulse propagation in synthetic strands of neonatal cardiac myocytes with genetically reduced levels of connexin43.

作者信息

Thomas Stuart P, Kucera Jan P, Bircher-Lehmann Lilly, Rudy Yoram, Saffitz Jeffrey E, Kléber André G

机构信息

Department of Physiology, University of Bern, Bühlplatz5, CH-3012 Bern, Switzerland.

出版信息

Circ Res. 2003 Jun 13;92(11):1209-16. doi: 10.1161/01.RES.0000074916.41221.EA. Epub 2003 May 1.

DOI:10.1161/01.RES.0000074916.41221.EA
PMID:12730095
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2242733/
Abstract

Connexin43 (Cx43) is a major determinant of the electrical properties of the myocardium. Closure of gap junctions causes rapid slowing of propagation velocity (theta), but the precise effect of a reduction in Cx43 levels due to genetic manipulation has only partially been clarified. In this study, morphological and electrical properties of synthetic strands of cultured neonatal ventricular myocytes from Cx43+/+ (wild type, WT) and Cx+/- (heterozygote, HZ) mice were compared. Quantitative immunofluorescence analysis of Cx43 demonstrated a 43% reduction of Cx43 expression in the HZ versus WT mice. Cell dimensions, connectivity, and alignment were independent of genotype. Measurement of electrical properties by microelectrodes and optical mapping showed no differences in action potential amplitude or minimum diastolic potential between WT and HZ. However, maximal upstroke velocity of the transmembrane action potential, dV/dtmax, was increased and action potential duration was reduced in HZ versus WT. theta was similar in the two genotypes. Computer simulation of propagation and dV/dtmax showed a relatively small dependence of theta on gap junction coupling, thus explaining the lack of observed differences in theta between WT and HZ. Importantly, the simulations suggested that the difference in dV/dtmax is due to an upregulation of INa in HZ versus WT. Thus, heterozygote-null mutation of Cx43 produces a complex electrical phenotype in synthetic strands that is characterized by both changes in ion channel function and cell-to-cell coupling. The lack of changes in theta in this tissue is explained by the dominating role of myoplasmic resistance and the compensatory increase of dV/dtmax.

摘要

连接蛋白43(Cx43)是心肌电特性的主要决定因素。缝隙连接的关闭会导致传播速度(θ)迅速减慢,但由于基因操作导致Cx43水平降低的确切影响仅得到部分阐明。在本研究中,比较了来自Cx43+/+(野生型,WT)和Cx+/-(杂合子,HZ)小鼠的培养新生心室肌细胞合成链的形态和电特性。对Cx43的定量免疫荧光分析表明,与WT小鼠相比,HZ小鼠中Cx43表达降低了43%。细胞尺寸、连通性和排列与基因型无关。通过微电极和光学映射测量电特性表明,WT和HZ之间的动作电位幅度或最小舒张电位没有差异。然而,与WT相比,HZ中跨膜动作电位的最大上升速度dV/dtmax增加,动作电位持续时间缩短。两种基因型的θ相似。传播和dV/dtmax的计算机模拟表明,θ对缝隙连接耦合的依赖性相对较小,从而解释了在WT和HZ之间未观察到θ差异的原因。重要的是,模拟结果表明,dV/dtmax的差异是由于HZ中与WT相比INa上调所致。因此,Cx43的杂合子无效突变在合成链中产生了复杂的电表型,其特征是离子通道功能和细胞间耦合都发生了变化。该组织中θ缺乏变化是由肌浆电阻的主导作用和dV/dtmax的代偿性增加所解释的。

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