Malmendal A, Evenäs J, Forsén S, Akke M
Physical Chemistry 2, Lund University, Lund, S-221 00, Sweden.
J Mol Biol. 1999 Nov 5;293(4):883-99. doi: 10.1006/jmbi.1999.3188.
Calmodulin undergoes Ca2+-induced structural rearrangements that are intimately coupled to the regulation of numerous cellular processes. The C-terminal domain of calmodulin has previously been observed to exhibit conformational exchange in the absence of Ca2+. Here, we characterize further the conformational dynamics in the presence of low concentrations of Ca2+ using 15N spin relaxation experiments. The analysis included 1H-15N dipolar/15N chemical shift anisotropy interference cross-correlation relaxation rates to improve the description of the exchange processes, as well as the picosecond to nanosecond dynamics. Conformational transitions on microsecond to millisecond time scales were revealed by exchange contributions to the transverse auto-relaxation rates. In order to separate the effects of Ca2+ exchange from intramolecular conformational exchange processes in the apo state, transverse auto-relaxation rates were measured at different concentrations of free Ca2+. The results reveal a Ca2+-dependent contribution due mainly to exchange between the apo and (Ca2+)1 states with an apparent Ca2+ off-rate of approximately 5115 s(-1), as well as Ca2+-independent contributions due to conformational exchange within the apo state. 15N chemical shift differences estimated from the exchange data suggest that the first Ca2+ binds preferentially to loop IV. Thus, characterization of chemical exchange as a function of Ca2+ concentration has enabled the extraction of unique information on the rapidly exchanging and weakly populated (<10 %) (Ca2+)1 state that is otherwise inaccessible to direct study due to strongly cooperative Ca2+ binding. The conformational exchange within the apo state appears to involve transitions between a predominantly populated closed conformation and a smaller population of more open conformations. The picosecond to nanosecond dynamics of the apo state are typical of a well-folded protein, with reduced amplitudes of motions in the helical segments, but with significant flexibility in the Ca2+-binding loops. Comparisons with order parameters for skeletal troponin C and calbindin D9k reveal key structural and dynamical differences that correlate with the different Ca2+-binding properties of these proteins.
钙调蛋白会经历钙离子诱导的结构重排,这种重排与众多细胞过程的调节密切相关。此前观察到钙调蛋白的C端结构域在没有钙离子的情况下会发生构象交换。在这里,我们使用15N自旋弛豫实验进一步表征了低浓度钙离子存在时的构象动力学。分析包括1H-15N偶极/15N化学位移各向异性干扰交叉相关弛豫率,以改进对交换过程以及皮秒到纳秒动力学的描述。微秒到毫秒时间尺度上的构象转变通过对横向自弛豫率的交换贡献得以揭示。为了将钙离子交换的影响与脱辅基状态下的分子内构象交换过程区分开来,在不同游离钙离子浓度下测量了横向自弛豫率。结果显示,主要由于脱辅基状态和(Ca2+)1状态之间的交换而产生的钙离子依赖性贡献,其表观钙离子解离速率约为5115 s(-1),以及由于脱辅基状态内的构象交换而产生的钙离子非依赖性贡献。根据交换数据估计的15N化学位移差异表明,第一个钙离子优先结合到环IV上。因此,将化学交换表征为钙离子浓度的函数,使得能够提取关于快速交换且低丰度(<10%)的(Ca2+)1状态的独特信息,否则由于钙离子的强协同结合,该状态无法直接进行研究。脱辅基状态下的构象交换似乎涉及主要占据的封闭构象与较少数量的更开放构象之间的转变。脱辅基状态的皮秒到纳秒动力学是折叠良好的蛋白质的典型特征,螺旋段的运动幅度减小,但钙离子结合环具有显著的灵活性。与骨骼肌肌钙蛋白C和钙结合蛋白D9k的序参量比较揭示了关键的结构和动力学差异,这些差异与这些蛋白质不同的钙离子结合特性相关。