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首页> 外文期刊>The Journal of biological chemistry >Caveolin-1 Facilitates the Direct Coupling between Large Conductance Ca2+-activated K+ (BKCa) and Cav1.2 Ca2+ Channels and Their Clustering to Regulate Membrane Excitability in Vascular Myocytes
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Caveolin-1 Facilitates the Direct Coupling between Large Conductance Ca2+-activated K+ (BKCa) and Cav1.2 Ca2+ Channels and Their Clustering to Regulate Membrane Excitability in Vascular Myocytes

机译:Caveolin-1促进大导电Ca2 + - 活化的K +(BKCA)和Cav1.2 Ca2 +通道之间的直接耦合及其聚类以调节血管肌细胞中的膜兴奋性

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L-type voltage-dependent Ca2+ channels (LVDCC) and large conductance Ca2+-activated K+ channels (BKCa) are the major factors defining membrane excitability in vascular smooth muscle cells (VSMCs). The Ca2+ release from sarcoplasmic reticulum through ryanodine receptor significantly contributes to BKCa activation in VSMCs. In this study direct coupling between LVDCC (Cav1.2) and BKCa and the role of caveoline-1 on their interaction in mouse mesenteric artery SMCs were examined. The direct activation of BKCa by Ca2+ influx through coupling LVDCC was demonstrated by patch clamp recordings in freshly isolated VSMCs. Using total internal reflection fluorescence microscopy, it was found that a large part of yellow fluorescent protein-tagged BKCa co-localized with the cyan fluorescent protein-tagged Cav1.2 expressed in the plasma membrane of primary cultured mouse VSMCs and that the two molecules often exhibited FRET. It is notable that each BKα subunit of a tetramer in BKCa can directly interact with Cav1.2 and promotes Cav1.2 cluster in the molecular complex. Furthermore, caveolin-1 deficiency in knock-out (KO) mice significantly reduced not only the direct coupling between BKCa and Cav1.2 but also the functional coupling between BKCa and ryanodine receptor in VSMCs. The measurement of single cell shortening by 40 mm K+ revealed enhanced contractility in VSMCs from KO mice than wild type. Taken together, caveolin-1 facilitates the accumulation/clustering of BKCa-LVDCC complex in caveolae, which effectively regulates spatiotemporal Ca2+ dynamics including the negative feedback, to control the arterial excitability and contractility.
机译:L型电压依赖性CA2 +通道(LVDCC)和大电导CA2 + - 活化的K +通道(BKCA)是定义血管平滑肌细胞(VSMC)中膜兴奋性的主要因素。通过ryanodine受体从Sarcoplasmic网状物中的Ca2 +释放显着导致VSMC中的BKCA活化。在这项研究中,研究了LVDCC(Cav1.2)和BKCA之间的直接耦合以及Caveoline-1对其在小鼠肠系膜中动脉SMC中相互作用的作用。通过耦合LVDCC的CA2 +流入的BKCA通过耦合LVDCC的直接激活BKCA通过跳闸夹具进行了演示。使用全内反射荧光显微镜检查,发现大部分黄色荧光蛋白标记的BKCA与在原代培养的小鼠VSMCS的质膜中表达的青色荧光蛋白标记的CAV1.2,并且两种分子经常展示褶皱。值得注意的是,BKCA中的四聚体的每个BKα亚基可以直接与Cav1.2相互作用,并在分子复合物中促进Cav1.2簇。此外,敲除(KO)小鼠的Caveolin-1缺乏不仅显着降低了Bkca和Cav1.2之间的直接耦合,而且显着降低了BKCA和ryanodine受体在VSMC中的功能耦合。测量单细胞缩短40mm k +的速度,显露于KO小鼠的VSMC中的增强的收缩性而不是野生型。 Caveolin-1携带在一起,促进Caveolae中BkCa-LVDCC复合物的积累/聚类,从而有效调节包括负反馈的时空CA2 +动态,以控制动脉兴奋性和收缩性。

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