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Folding funnels, binding funnels, and protein function.

机译:折叠漏斗,结合漏斗和蛋白质功能。

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摘要

Folding funnels have been the focus of considerable attention during the last few years. These have mostly been discussed in the general context of the theory of protein folding. Here we extend the utility of the concept of folding funnels, relating them to biological mechanisms and function. In particular, here we describe the shape of the funnels in light of protein synthesis and folding; flexibility, conformational diversity, and binding mechanisms; and the associated binding funnels, illustrating the multiple routes and the range of complexed conformers. Specifically, the walls of the folding funnels, their crevices, and bumps are related to the complexity of protein folding, and hence to sequential vs. nonsequential folding. Whereas the former is more frequently observed in eukaryotic proteins, where the rate of protein synthesis is slower, the latter is more frequent in prokaryotes, with faster translation rates. The bottoms of the funnels reflect the extent of the flexibility of the proteins. Rugged floors imply a range of conformational isomers, which may be close on the energy landscape. Rather than undergoing an induced fit binding mechanism, the conformational ensembles around the rugged bottoms argue that the conformers, which are most complementary to the ligand, will bind to it with the equilibrium shifting in their favor. Furthermore, depending on the extent of the ruggedness, or of the smoothness with only a few minima, we may infer nonspecific, broad range vs. specific binding. In particular, folding and binding are similar processes, with similar underlying principles. Hence, the shape of the folding funnel of the monomer enables making reasonable guesses regarding the shape of the corresponding binding funnel. Proteins having a broad range of binding, such as proteolytic enzymes or relatively nonspecific endonucleases, may be expected to have not only rugged floors in their folding funnels, but their binding funnels will also behave similarly, with a range of complexed conformations. Hence, knowledge of the shape of the folding funnels is biologically very useful. The converse also holds: If kinetic and thermodynamic data are available, hints regarding the role of the protein and its binding selectivity may be obtained. Thus, the utility of the concept of the funnel carries over to the origin of the protein and to its function.
机译:在过去的几年中,折叠漏斗一直是人们关注的焦点。这些主要是在蛋白质折叠理论的一般背景下讨论的。在这里,我们扩展了折叠漏斗概念的实用性,将它们与生物学机制和功能相关联。特别是,这里我们根据蛋白质的合成和折叠来描述漏斗的形状。灵活性,构象多样性和绑定机制;以及相关的结合漏斗,说明了多种途径和复杂构象异构体的范围。具体而言,折叠漏斗的壁,其缝隙和隆起与蛋白质折叠的复杂性有关,因此与顺序折叠与非顺序折叠有关。前者在真核蛋白质中更常见,蛋白质的合成速度较慢,而后者在原核生物中更常见,翻译速度更快。漏斗的底部反映了蛋白质柔韧性的程度。坚固的地板意味着一系列构象异构体,这些异构体在能源领域可能很接近。崎undergo的底部周围的构象集合体没有经历诱导的拟合结合机制,而是认为与配体最互补的构象体将以其有利的平衡移动与其结合。此外,根据坚固性的程度或仅有几个极小值的光滑度,我们可以推断出非特异性,宽范围与特异性结合。特别地,折叠和装订是相似的过程,具有相似的基本原理。因此,单体的折叠漏斗的形状能够对相应的结合漏斗的形状做出合理的猜测。可以预期具有广泛结合的蛋白质,例如蛋白水解酶或相对非特异性的核酸内切酶,不仅在折叠漏斗中具有粗糙的底面,而且结合漏斗的行为也类似,具有一系列复杂的构象。因此,了解折叠漏斗的形状在生物学上非常有用。反之亦成立:如果可获得动力学和热力学数据,则可能获得有关蛋白质作用及其结合选择性的提示。因此,漏斗概念的实用性继承了蛋白质的起源及其功能。

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