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Multiple partial recognitions in dynamic equilibrium in the binding sites of proteins form the molecular basis of promiscuous recognition of structurally diverse ligands

机译:蛋白质结合位点中的动态平衡中的多个部分识别形成了结构多样配体混杂识别的分子基础

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摘要

Promiscuous recognition of ligands by proteins is as important as strict recognition in numerous biological processes. In living cells, many short, linear amino acid motifs function as targeting signals in proteins to specify the final destination of the protein transport. In general, the target signal is defined by a consensus sequence containing wild-characters, and hence represented by diverse amino acid sequences. The classical lock-and-key or induced-fit/conformational selection mechanism may not cover all aspects of the promiscuous recognition. On the basis of our crystallographic and NMR studies on the mitochondrial Tom20 protein–presequence interaction, we proposed a new hypothetical mechanism based on “a rapid equilibrium of multiple states with partial recognitions”. This dynamic, multiple recognition mode enables the Tom20 receptor to recognize diverse mitochondrial presequences with nearly equal affinities. The plant Tom20 is evolutionally unrelated to the animal Tom20 in our study, but is a functional homolog of the animal/fungal Tom20. NMR studies by another research group revealed that the presequence binding by the plant Tom20 was not fully explained by simple interaction modes, suggesting the presence of a similar dynamic, multiple recognition mode. Circumstantial evidence also suggested that similar dynamic mechanisms may be applicable to other promiscuous recognitions of signal peptides by the SRP54/Ffh and SecA proteins.
机译:在许多生物学过程中,蛋白质对配体的混杂识别与严格识别一样重要。在活细胞中,许多短而线性的氨基酸基序充当蛋白质中的靶向信号,以指定蛋白质转运的最终目的地。通常,靶信号由包含野生字符的共有序列定义,并因此由多种氨基酸序列表示。经典的锁钥或诱导拟合/构象选择机制可能不会涵盖混杂识别的所有方面。基于我们对线粒体Tom20蛋白与先序列相互作用的晶体学和NMR研究,我们基于“带有部分识别的多个状态的快速平衡”提出了一种新的假设机制。这种动态的多重识别模式使Tom20受体能够以接近相等的亲和力识别各种线粒体序列。在我们的研究中,植物Tom20在进化上与动物Tom20不相关,但它是动物/真菌Tom20的功能同源物。另一个研究小组的NMR研究表明,植物Tom20的先序列结合不能通过简单的相互作用模式充分解释,这表明存在相似的动态多重识别模式。间接证据还表明,类似的动力学机制可能适用于SRP54 / Ffh和SecA蛋白对信号肽的其他混杂识别。

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