Dux L, Green H J, Pette D
Fakultät für Biologie, Universität Konstanz, Federal Republic of Germany.
Eur J Biochem. 1990 Aug 28;192(1):95-100. doi: 10.1111/j.1432-1033.1990.tb19200.x.
Persistently increased contractile activity as induced by low-frequency stimulation in fast-twitch rabbit muscle elicits a partial inactivation of the sarcoplasmic reticulum Ca2(+)-ATPase function with regard to Ca2+ transport and ATP hydrolysis. Electron microscopy showed no differences in the frequency and structure of the two-dimensional Ca2(+)-ATPase crystals between microsomal fractions from normal and stimulated muscles. However, differences existed between the tryptic digestion of the Ca2(+)-ATPase in both the membrane-bound and solubilized enzyme at the first tryptic cleavage site, named T1 (Arg505). This followed from a delayed appearance of the A and B fragments of the Ca2(+)-ATPase in the electrostimulated muscle. No differences existed with regard to the second tryptic cleavage site, named T2 (Arg198). Confirming previous results, fluorescein isothiocyanate (FITC) binding to the enzyme of the chronically stimulated muscle was markedly reduced. The FITC-labeled fraction of the enzyme from both the normal and the stimulated muscle followed similar time courses of tryptic cleavage. The fraction of Ca2(+)-ATPase that did not bind TITC was identified by immunoblot analysis as the trypsin-resistant form. In view of the vicinity of T1, the FITC- and the ATP-binding sties, these results point to a modification of the enzyme in that region leading to an inactivation of about 50% of the sarcoplasmic reticulum Ca2(+)-ATPase molecules.
在快速收缩的兔肌肉中,低频刺激诱导的持续性收缩活动增加会引发肌浆网Ca2+ -ATP酶在Ca2+ 转运和ATP水解方面的部分失活。电子显微镜显示,正常肌肉和受刺激肌肉微粒体部分的二维Ca2+ -ATP酶晶体在频率和结构上没有差异。然而,在第一个胰蛋白酶切割位点(称为T1,Arg505),膜结合型和可溶型Ca2+ -ATP酶在胰蛋白酶消化方面存在差异。这表现为电刺激肌肉中Ca2+ -ATP酶的A和B片段出现延迟。在第二个胰蛋白酶切割位点(称为T2,Arg198)方面没有差异。荧光素异硫氰酸酯(FITC)与长期受刺激肌肉的酶结合显著减少,这证实了先前的结果。正常肌肉和受刺激肌肉的酶的FITC标记部分在胰蛋白酶切割方面遵循相似的时间进程。通过免疫印迹分析确定未结合FITC的Ca2+ -ATP酶部分为抗胰蛋白酶形式。鉴于T1、FITC和ATP结合位点相邻,这些结果表明该区域的酶发生了修饰,导致约50%的肌浆网Ca2+ -ATP酶分子失活。