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无规卷曲蛋白在蛋白-蛋白相互作用中具有高特异性吗?

Do intrinsically disordered proteins possess high specificity in protein-protein interactions?

机构信息

College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, PR China.

出版信息

Chemistry. 2013 Apr 2;19(14):4462-7. doi: 10.1002/chem.201203100. Epub 2013 Feb 21.

Abstract

Specific protein-protein interactions are critical to cellular function. Structural flexibility and disorder-to-order transitions upon binding enable intrinsically disordered proteins (IDPs) to overcome steric restrictions and form complementary binding interfaces, and thus, IDPs are widely considered to have high specificity and low affinity for molecular recognition. However, flexibility may also enable IDPs to form complementary binding interfaces with misbinding partners, resulting in a great number of nonspecific interactions. Consequently, it is questionable whether IDPs really possess high specificity. In this work, we investigated this question from a thermodynamic viewpoint. We collected mutant thermodynamic data for 35 ordered protein complexes and 43 disordered protein complexes. We found that the enthalpy-entropy compensation for disordered protein complexes was more complete than that for ordered protein complexes. We further simulated the binding processes of ordered and disordered protein complexes under mutations. Simulation data confirmed the observation of experimental data analyses and further revealed that disordered protein complexes possessed smaller changes in binding free energy than ordered protein complexes under the same mutation perturbations. Therefore, interactions of IDPs are more malleable than those of ordered proteins due to their structural flexibility in the complex. Our results provide new clues for exploring the relationship between protein flexibility, adaptability, and specificity.

摘要

特定的蛋白质-蛋白质相互作用对细胞功能至关重要。结构的灵活性和结合时的无序到有序的转变使无规卷曲蛋白质(IDPs)能够克服空间限制并形成互补的结合界面,因此,IDPs 被广泛认为具有高特异性和低亲和力的分子识别。然而,灵活性也可能使 IDPs 与错误结合的伴侣形成互补的结合界面,从而导致大量的非特异性相互作用。因此,IDPs 是否真的具有高特异性是值得怀疑的。在这项工作中,我们从热力学的角度研究了这个问题。我们收集了 35 个有序蛋白复合物和 43 个无序蛋白复合物的突变热力学数据。我们发现无序蛋白复合物的焓熵补偿比有序蛋白复合物更完整。我们进一步模拟了在突变下有序和无序蛋白复合物的结合过程。模拟数据证实了实验数据分析的观察结果,并进一步表明,在相同的突变扰动下,无序蛋白复合物的结合自由能变化小于有序蛋白复合物。因此,由于其在复合物中的结构灵活性,IDPs 的相互作用比有序蛋白质的相互作用更具可塑性。我们的研究结果为探索蛋白质灵活性、适应性和特异性之间的关系提供了新的线索。

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