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The case for intrinsically disordered proteins playing contributory roles in molecular recognition without a stable 3D structure

机译:没有稳定的3D结构的内在无序蛋白在分子识别中起重要作用的情况

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The classical ‘lock-and-key’ and ‘induced-fit’ mechanisms for binding both originated in attempts to explain features of enzyme catalysis. For both of these mechanisms and for their recent refinements, enzyme catalysis requires exquisite spatial and electronic complementarity between the substrate and the catalyst. Thus, binding models derived from models originally based on catalysis will be highly biased towards mechanisms that utilize structural complementarity. If mere binding without catalysis is the endpoint, then the structural requirements for the interaction become much more relaxed. Recent observations on specific examples suggest that this relaxation can reach an extreme lack of specific 3D structure, leading to molecular recognition with biological consequences that depend not only upon structural and electrostatic complementarity between the binding partners but also upon kinetic, entropic, and generalized electrostatic effects. In addition to this discussion of binding without fixed structure, examples in which unstructured regions carry out important biological functions not involving molecular recognition will also be discussed. Finally, we discuss whether ‘intrinsically disordered protein’ (IDP) represents a useful new concept.
机译:结合的经典“锁和钥匙”和“诱导适合”机制均源于试图解释酶催化特征的尝试。对于这两种机理及其最近的改进,酶催化都要求底物和催化剂之间存在精妙的空间和电子互补性。因此,从最初基于催化的模型衍生的绑定模型将高度偏向于利用结构互补性的机制。如果仅结合而无催化是终点,则相互作用的结构要求变得更加宽松。最近对特定例子的观察表明,这种弛豫可能会完全缺乏特定的3D结构,从而导致分子识别,其生物学后果不仅取决于结合伙伴之间的结构和静电互补性,还取决于动力学,熵和广义静电效应。除了对没有固定结构的结合的讨论之外,还将讨论非结构化区域执行不涉及分子识别的重要生物学功能的例子。最后,我们讨论“内在失调蛋白”(IDP)是否代表一个有用的新概念。

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