离子调控在转基因小鼠心脏中Na+/Ca2+交换的功能作用

K Maxwell, J Scott, A Omelchenko, A Lukas, L Lu, Y Lu, M Hnatowich, K D Philipson, L V Hryshko
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引用次数: 25

摘要

Na+/Ca2+交换是舒张期心肌细胞Ca2+外排介导的主要机制,因此可以显著影响收缩力。除了运输Na+和Ca2+外,交换器还受这些离子的调节。虽然结构功能研究已经确定了交换器的蛋白质区域服务于这些调节过程,但其生理重要性尚不清楚。在这项研究中,我们在转基因小鼠中检测了犬心脏交换器NCX1.1和NCX1.1缺失突变体(Delta680-685)的心脏特异性过表达的电生理和机械后果,该突变体缺乏细胞内Na+ (Na+i)-和Ca2+ (Ca2+i)-依赖的调节特性。利用巨切膜片钳技术,观察到从过表达NCX1.1的对照和转基因小鼠分离的心肌细胞的膜斑块中存在正常的离子调节。相比之下,在过表达Delta680-685的小鼠中,离子调节几乎被取消,这表明天然调节过程可能被转基因的表达所淹没。为了解决Na+/Ca2+交换离子调节的生理后果,我们研究了NCX1.1和Delta680-685转基因小鼠乳头肌的应激后力发展。研究发现,与NCX1.1转基因小鼠相比,Delta680-685的应激后增强明显增强,这支持了离子调节Na+/Ca2+交换在心脏收缩特性中起重要功能作用的观点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Functional role of ionic regulation of Na+/Ca2+ exchange assessed in transgenic mouse hearts.

Na+/Ca2+ exchange is the primary mechanism mediating Ca2+ efflux from cardiac myocytes during diastole and, thus, can prominently influence contractile force. In addition to transporting Na+ and Ca2+, the exchanger is also regulated by these ions. Although structure-function studies have identified protein regions of the exchanger subserving these regulatory processes, their physiological importance is unknown. In this study, we examined the electrophysiological and mechanical consequences of cardiospecific overexpression of the canine cardiac exchanger NCX1.1 and a deletion mutant of NCX1.1 (Delta680-685), devoid of intracellular Na+ (Na+i)- and Ca2+ (Ca2+i)- dependent regulatory properties, in transgenic mice. Using the giant excised patch-clamp technique, normal ionic regulation was observed in membrane patches from cardiomyocytes isolated from control and transgenic mice overexpressing NCX1.1. In contrast, ionic regulation was nearly abolished in mice overexpressing Delta680-685, indicating that the native regulatory processes could be overwhelmed by expression of the transgene. To address the physiological consequences of ionic regulation of the Na+/Ca2+ exchanger, we examined postrest force development in papillary muscles from NCX1.1 and Delta680-685 transgenic mice. Postrest potentiation was found to be substantially greater in Delta680-685 than in NCX1.1 transgenic mice, supporting the notion that ionic regulation of Na+/Ca2+ exchange plays a significant functional role in cardiac contractile properties.

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