Birnbaumer L, Boulay G, Brown D, Jiang M, Dietrich A, Mikoshiba K, Zhu X, Qin N
Department of Anesthesiology University of California, Los Angeles 90095, USA.
Recent Prog Horm Res. 2000;55:127-61; discussion 161-2.
Activation of cells by agents that stimulate inositol trisphoshate (IP3) formation causes, via IP3 receptor (IP3R) activation, the release of Ca2+ from internal stores and also the entry of Ca2+ via plasma membrane cation channels, referred to as capacitative Ca2+ entry or CCE channels. Trp proteins have been proposed to be the unitary subunits forming CCE channels; however, there is no definitive proof for this hypothesis. We have now identified amino acid sequences of a Trp and of an IP3R that interact to form stable complexes. These complexes appear to form in vivo, as evidenced by co-immunoprecipitation of Trp with IP3R and by the fact that expression of the respective interacting sequences modulates development of CCE brought about by store depletion. The finding that a Trp-interacting sequence of IP3R interferes with natural CCE leads us to conclude that Trp proteins are, indeed, structural members of CCE channels. We conclude further that direct coupling of IP3R to Trp is a physiological mechanism by which cells trigger CCE in response to signals that stimulate phosphoinositide hydrolysis and IP3 formation. Pros and cons of various CCE activation models are discussed.
通过刺激肌醇三磷酸(IP3)形成的因子激活细胞,会经由IP3受体(IP3R)的激活,导致Ca2+从细胞内储存库释放,同时Ca2+通过质膜阳离子通道进入细胞,该通道被称为容量性Ca2+内流通道或CCE通道。已有人提出瞬时受体电位(Trp)蛋白是构成CCE通道的单一亚基;然而,这一假说尚无确凿证据。我们现已鉴定出一种Trp蛋白与一种IP3R的氨基酸序列,它们相互作用形成稳定复合物。这些复合物似乎在体内形成,这可通过Trp与IP3R的共免疫沉淀以及各自相互作用序列的表达调节由储存库耗竭引起的CCE的发展得到证明。IP3R的Trp相互作用序列干扰天然CCE这一发现使我们得出结论,Trp蛋白确实是CCE通道的结构成员。我们进一步得出结论,IP3R与Trp的直接偶联是一种生理机制,通过该机制细胞响应刺激磷酸肌醇水解和IP3形成的信号而触发CCE。本文讨论了各种CCE激活模型的优缺点。