Creutz C E, Pazoles C J, Pollard H B
J Biol Chem. 1979 Jan 25;254(2):553-8.
It has been proposed (Creutz, C. E., Pazoles, C. J., and Pollard, H. B. (1978) J. Biol. Chem. 253, 2858-2866) that synexin, an adrenal medullary protein that causes Ca2+-dependent aggregation of isolated chromaffin granules, might be the intracellular receptor for Ca2+ in the process of exocytosis. We now report that Ca2+ interacts directly with isolated synexin, inducing rapid self-association. Mg2+ or Sr2+ cannot substitute for Ca2+, and Ba2+ is only weakly effective at stimulating self-association. We have analyzed 90 degree light scattering data to determine a titration curve for the activation of synexin by Ca2+ in the self-association reaction. The curve has a Hill coefficient of 2.3 and is half-maximal at 200 micron Ca2+, which correlates exactly with the Ca2+ titration curve for the aggregation of chromaffin granules by synexin. Electron microscopy of negatively stained samples reveals that synexin monomers associate to form 50 A by 150 A rods which in turn associate side to side and end to end to form bundles of parallel rods. We suggest that synexin exists as a soluble monomer in the cytoplasm of the resting chromaffin cell and that when the cell is stimulated to secrete, the increase in the intracellular concentrations of Ca2+ causes synexin to form rods, similar to those formed in vitro, which bind to chromaffin granule and plasma membranes, joining them together to form the "pentalaminar" fusion complexes characteristic of the first step in exocytosis.
有人提出(Creutz, C. E., Pazoles, C. J., and Pollard, H. B. (1978) J. Biol. Chem. 253, 2858 - 2866),联会蛋白是一种肾上腺髓质蛋白,可引起分离的嗜铬颗粒的钙依赖性聚集,它可能是胞吐过程中钙离子的细胞内受体。我们现在报告,钙离子直接与分离的联会蛋白相互作用,诱导快速自我缔合。镁离子或锶离子不能替代钙离子,钡离子在刺激自我缔合方面效果微弱。我们分析了90度光散射数据,以确定在自我缔合反应中钙离子激活联会蛋白的滴定曲线。该曲线的希尔系数为2.3,在200微摩尔钙离子时达到半最大活性,这与联会蛋白诱导嗜铬颗粒聚集的钙离子滴定曲线完全相关。对负染样品的电子显微镜观察显示,联会蛋白单体缔合形成50埃×150埃的杆状结构,这些杆状结构又并排和首尾相连形成平行杆束。我们认为,联会蛋白在静息嗜铬细胞的细胞质中以可溶性单体形式存在,当细胞受到刺激分泌时,细胞内钙离子浓度的增加会使联会蛋白形成杆状结构,类似于体外形成的结构,这些杆状结构与嗜铬颗粒和质膜结合,将它们连接在一起形成胞吐第一步特有的“五片层”融合复合物。