Molecular Structure Division, National Institute for Medical Research, MRC, The Ridgeway, Mill Hill, London NW71AA, UK.
Biochemistry. 2010 Mar 2;49(8):1719-26. doi: 10.1021/bi902094w.
Muscle contraction is activated by two distinct mechanisms. One depends on the calcium influx, and the other is calcium-independent and activated by mechanical stress. A prototypical example of stretch activation is observed in insect muscles. In Lethocerus, a model system ideally suited for studying stretch activation, the two mechanisms seem to be under the control of different isoforms of troponin C (TnC), F1 and F2, which are responsible for stretch and calcium-dependent regulation, respectively. We have previously shown that F1 TnC is a typical collapsed dumbbell EF-hand protein that accommodates one calcium ion in its fourth EF-hand. When calcium loaded, the C-terminal domain of F1 TnC is in an open conformation which allows binding to troponin I. We have determined the solution structure of the isolated F1 TnC C-terminal domain in the absence of calcium and have compared it together with its dynamical properties with those of the calcium-loaded form. The domain is folded also in the absence of calcium and is in a closed conformation. Binding of a single calcium is sufficient to induce a modest but clear closed-to-open conformational transition and releases the conformational entropy observed in the calcium-free form. These results provide the first example of a TnC domain in which the presence of only one calcium ion is sufficient to induce a closed-to-open transition and clarify the role of calcium in stretch activation.
肌肉收缩是通过两种不同的机制激活的。一种依赖于钙离子内流,另一种则是钙离子非依赖性的,由机械应力激活。拉伸激活的典型例子发生在昆虫肌肉中。在 Lethocerus 中,一种非常适合研究拉伸激活的模型系统,这两种机制似乎受到不同肌钙蛋白 C(TnC)同工型的控制,F1 和 F2,它们分别负责拉伸和钙依赖性调节。我们之前已经表明,F1 TnC 是一种典型的折叠哑铃 EF 手蛋白,可容纳其第四个 EF 手的一个钙离子。当钙离子负载时,F1 TnC 的 C 端结构域处于开放构象,允许与肌钙蛋白 I 结合。我们已经确定了无钙状态下分离的 F1 TnC C 端结构域的溶液结构,并将其与钙负载形式的动力学特性进行了比较。该结构域在没有钙离子的情况下也会折叠,并处于封闭构象。结合一个钙离子足以诱导适度但明显的封闭到开放构象转变,并释放无钙形式下观察到的构象熵。这些结果提供了第一个 TnC 结构域的例子,其中仅存在一个钙离子足以诱导封闭到开放的转变,并阐明了钙离子在拉伸激活中的作用。