Pearlstone J R, Chandra M, Sorenson M M, Smillie L B
Department of Biochemistry, University of Alberta, Edmonton, Alberta, Canada.
J Biol Chem. 2000 Nov 10;275(45):35106-15. doi: 10.1074/jbc.M001000200.
To investigate the roles of site I and II invariant Glu residues 41 and 77 in the functional properties and calcium-induced structural opening of skeletal muscle troponin C (TnC) regulatory domain, we have replaced them by Ala in intact F29W TnC and in wild-type and F29W N domains (TnC residues 1-90). Reconstitution of intact E41A/F29W and E77A/F29W mutants into TnC-depleted muscle skinned fibers showed that Ca(2+)-induced tension is greatly reduced compared with the F29W control. Circular dichroism measurements of wild-type N domain as a function of pCa (= -log[Ca(2+)]) demonstrated that approximately 90% of the total change in molar ellipticity at 222 nm ([theta](222 nm)) could be assigned to site II Ca(2+) binding. With E41A, E77A, and cardiac TnC N domains this [theta](222 nm) change attributable to site II was reduced to < or =40% of that seen with wild type, consistent with their structures remaining closed in +Ca(2+). Furthermore, the Ca(2+)-induced changes in fluorescence, near UV CD, and UV difference spectra observed with intact F29W are largely abolished with E41A/F29W and E77A/F29W TnCs. Taken together, the data indicate that the major structural change in N domain, including the closed to open transition, is triggered by site II Ca(2+) binding, an interpretation relevant to the energetics of the skeletal muscle TnC and cardiac TnC systems.
为了研究骨骼肌肌钙蛋白C(TnC)调节结构域中I位点和II位点不变的谷氨酸残基41和77在功能特性以及钙诱导的结构开放中的作用,我们在完整的F29W TnC以及野生型和F29W N结构域(TnC的1 - 90位残基)中将它们替换为丙氨酸。将完整的E41A/F29W和E77A/F29W突变体重构到TnC缺失的肌肉剥制纤维中,结果显示与F29W对照相比,钙诱导的张力大大降低。野生型N结构域的圆二色性测量作为pCa(= -log[Ca²⁺])的函数表明,在222 nm处摩尔椭圆率的总变化([θ](222 nm))中约90%可归因于II位点的钙结合。对于E41A、E77A和心脏TnC的N结构域,这种归因于II位点的[θ](222 nm)变化减少到野生型的≤40%,这与它们在+Ca²⁺时结构保持关闭一致。此外,完整的F29W所观察到的钙诱导的荧光、近紫外CD和紫外差光谱变化在E41A/F29W和E77A/F29W TnC中基本消失。综上所述,数据表明N结构域中的主要结构变化,包括从关闭到开放的转变,是由II位点的钙结合触发的,这一解释与骨骼肌TnC和心脏TnC系统的能量学相关。