β 2-肾上腺素能受体调节心脏l型Ca2+通道在成纤维细胞系中的共表达。

Receptor Pub Date : 1995-01-01
H Masaki, S A Green, J A Heiny, A Yatani
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引用次数: 0

摘要

为了表征β 2- ar与心脏Ca2+通道在单一受体亚型系统中的功能偶联,我们将缺乏β 2- ar和Ca2+通道的中国仓鼠成纤维细胞(CHW)细胞系与兔心脏Ca2+通道α 1和β 2亚基以及人β 2- ar cdna稳定共转染。利用全细胞膜片钳技术检测β 2-AR刺激对Ca2+通道电流表达的影响。转染Ca2+通道亚基的CHW细胞显示电压依赖的内向电流,具有天然心脏l型Ca2+通道的典型特性。表达电流通过磷酸化依赖机制增加。与Ca2+通道亚单位和β 2-AR共转染的CHW细胞以剂量依赖性的方式对异丙肾上腺素(Iso)有反应。Iso (10 microM)使Ca2+通道峰值电流增加到控制幅度的172 +/- 5% (n = 17),表明表达的Ca2+通道与β 2-AR功能耦合。结果明确表明β 2- ar可以调节心脏Ca2+通道的活性,独立于β 1- ar。这些结果也证明了CHW异源表达系统的有效性,该系统首次重建了β 2-AR对l型Ca2+通道的生理调节,用于研究受体亚型特异性调节Ca2+通道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Beta 2-adrenergic receptor regulation of the cardiac L-type Ca2+ channel coexpressed in a fibroblast cell line.

To characterize the functional coupling of the beta 2-AR to the cardiac Ca2+ channel in a system with a single receptor subtype, we stably cotransfected a Chinese hamster fibroblast (CHW) cell line, which lacks beta 2-ARs and Ca2+ channels, with the rabbit cardiac Ca2+ channel alpha 1 and beta 2 subunits and the human beta 2-AR cDNAs. The effects of beta 2-AR stimulation on the expressed Ca2+ channel current were examined using the whole-cell patch-clamp technique. CHW cells transfected with the Ca2+ channel subunits displayed a voltage-dependent inward current having properties typical of native cardiac L-type Ca2+ channels. The expressed current was increased by a phosphorylation-dependent mechanism. CHW cells cotransfected with the Ca2+ channel subunits and the beta 2-AR were responsive to isoproterenol (Iso) in a dose-dependent manner. Iso (10 microM) increased peak Ca2+ channel current to 172 +/- 5% (n = 17) of control amplitude, indicating that the expressed Ca2+ channels are functionally coupled to the beta 2-AR. The results demonstrate unequivocally that beta 2-ARs can modulate the activity of cardiac Ca2+ channels, independent of beta 1-ARs. The results also demonstrate the usefulness of the CHW heterologous expression system, the first to reconstitute physiological modulation of an L-type Ca2+ channel by the beta 2-AR, for studying receptor subtype-specific regulation of the Ca2+ channel.

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