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Using Metadynamics to Understand the Mechanism of Calmodulin/Target Recognition at Atomic Detail

机译:使用元动力学来了解钙调蛋白/靶标识别在原子细节上的机制

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摘要

The ability of calcium-bound calmodulin (CaM) to recognize most of its target peptides is caused by its binding to two hydrophobic residues (‘anchors’). In most of the CaM complexes, the anchors pack against the hydrophobic pockets of the CaM domains and are surrounded by fully conserved Met side chains. Here, by using metadynamics simulations, we investigate quantitatively the energetics of the final step of this process using the M13 peptide, which has a high affinity and spans the sequence of the skeletal myosin light chain kinase, an important natural CaM target. We established the accuracy of our calculations by a comparison between calculated and NMR-derived structural and dynamical properties. Our calculations provide novel insights into the mechanism of protein/peptide recognition: we show that the process is associated with a free energy gain similar to that experimentally measured for the CaM complex with the homologous smooth muscle MLCK peptide (Ehrhardt et al., 1995, Biochemistry 34, 2731). We suggest that binding is dominated by the entropic effect, in agreement with previous proposals. Furthermore, we explain the role of conserved methionines by showing that the large flexibility of these side chains is a key feature of the binding mechanism. Finally, we provide a rationale for the experimental observation that in all CaM complexes the C-terminal domain seems to be hierarchically more important in establishing the interaction.
机译:钙结合钙调蛋白(CaM)识别其大多数目标肽的能力是由于其与两个疏水残基(“锚”)的结合所致。在大多数CaM复合物中,锚紧靠CaM域的疏水口袋,并被完全保守的Met侧链包围。在这里,通过使用元动力学模拟,我们使用具有高亲和力并跨越骨骼肌肌球蛋白轻链激酶(一种重要的天然CaM靶标)的序列的M13肽,定量研究了该过程最后一步的能量学。通过比较计算得出的和NMR得出的结构和动力学性质,我们确定了计算的准确性。我们的计算为蛋白质/肽识别的机理提供了新颖的见解:我们证明该过程与自由能获得有关,类似于通过实验对具有同源平滑肌MLCK肽的CaM复合物进行的测量(Ehrhardt等,1995,生物化学34,2731)。我们建议,与以前的提议相一致,约束力受熵效应支配。此外,我们通过显示这些侧链的较大灵活性是结合机制的关键特征,来解释保守的蛋氨酸的作用。最后,我们为实验观察提供了理论基础,即在所有CaM配合物中,C末端域在建立相互作用中似乎在层次上更为重要。

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