在完整斑马鱼的肌肉形成过程中,双孔通道2的活性是缓慢的肌肉细胞产生的Ca(2+)信号所必需的。

Jeffrey J. Kelu, Hayley Chan, S. Webb, Arthur H. Cheng, M. Ruas, J. Parrington, A. Galione, A. Miller
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引用次数: 27

摘要

我们最近对完整斑马鱼胚胎中慢肌细胞(SMCs)分化过程中产生的必需肌醇1,4,5-三磷酸受体(IP 3R)和红嘌呤受体(RyR)介导的Ca(2+)信号进行了表征。在这里,我们发现溶酶体双孔通道2 (TPC2)在产生和触发这些必需的Ca(2+)信号方面也起着至关重要的作用,从而有助于骨骼肌肌生成的调节。我们使用斑马鱼转基因系,在完整胚胎和分离的SMCs中表达生物发光Ca(2+)报告基因aequorin,特别是在骨骼肌中,结合基于morpholino (MO)和药理抑制TPC2。mo敲除TPC2导致Ca(2+)信号的显著衰减,而TPCN2- mo和TPCN2 mRNA的引入部分恢复了Ca(2+)信号特征。胚胎分别用反式-19或巴菲霉素A1(一种特异性NAADP受体抑制剂和液泡型H(+) atp酶抑制剂)处理,也显示出类似的SMC Ca(2+)信号的破坏。免疫组织化学和共聚焦激光扫描显微镜显示,TPC2和溶酶体定位于SMCs的核周和纹状细胞质区域,与ip3r和RyR的表达模式一致。这些数据共同表明,tpc2介导的溶酶体Ca(2+)释放作用于RyR-和IP 3r介导的Ca(2+)释放的上游,表明前者可能作为一个敏感的触发器,启动sr介导的Ca(2+)诱导的Ca(2+)释放,这是SMC肌生成和功能所必需的。
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Two-Pore Channel 2 activity is required for slow muscle cell-generated Ca(2+) signaling during myogenesis in intact zebrafish.
We have recently characterized essential inositol 1,4,5-trisphosphate receptor (IP 3R) and ryanodine receptor (RyR)-mediated Ca(2+) signals generated during the differentiation of slow muscle cells (SMCs) in intact zebrafish embryos. Here, we show that the lysosomal two-pore channel 2 (TPC2) also plays a crucial role in generating, and perhaps triggering, these essential Ca(2+) signals, and thus contributes to the regulation of skeletal muscle myogenesis. We used a transgenic line of zebrafish that expresses the bioluminescent Ca(2+) reporter, aequorin, specifically in skeletal muscle, in conjunction with morpholino (MO)-based and pharmacological inhibition of TPC2, in both intact embryos and isolated SMCs. MO-based knock-down of TPC2 resulted in a dramatic attenuation of the Ca(2+) signals, whereas the introduction of TPCN2-MO and TPCN2 mRNA together partially rescued the Ca(2+) signaling signature. Embryos treated with trans-ned-19 or bafilomycin A1, a specific NAADP receptor inhibitor and vacuolar-type H(+)ATPase inhibitor, respectively, also displayed a similar disruption of SMC Ca(2+) signaling. TPC2 and lysosomes were shown via immunohistochemistry and confocal laser scanning microscopy to be localized in perinuclear and striated cytoplasmic domains of SMCs, coincident with patterns of IP 3R and RyR expression. These data together imply that TPC2-mediated Ca(2+) release from lysosomes acts upstream from RyR- and IP 3R-mediated Ca(2+) release, suggesting that the former might act as a sensitive trigger to initiate the SR-mediated Ca(2+)-induced-Ca(2+)-release essential for SMC myogenesis and function.
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