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通过空间梯度校对。

Proofreading through spatial gradients.

机构信息

Biochemistry and Molecular Biophysics Option, California Institute of Technology, Pasadena, United States.

Department of Physics and the James Franck Institute, University of Chicago, Chicago, United States.

出版信息

Elife. 2020 Dec 24;9:e60415. doi: 10.7554/eLife.60415.

Abstract

Key enzymatic processes use the nonequilibrium error correction mechanism called kinetic proofreading to enhance their specificity. The applicability of traditional proofreading schemes, however, is limited because they typically require dedicated structural features in the enzyme, such as a nucleotide hydrolysis site or multiple intermediate conformations. Here, we explore an alternative conceptual mechanism that achieves error correction by having substrate binding and subsequent product formation occur at distinct physical locations. The time taken by the enzyme-substrate complex to diffuse from one location to another is leveraged to discard wrong substrates. This mechanism does not have the typical structural requirements, making it easier to overlook in experiments. We discuss how the length scales of molecular gradients dictate proofreading performance, and quantify the limitations imposed by realistic diffusion and reaction rates. Our work broadens the applicability of kinetic proofreading and sets the stage for studying spatial gradients as a possible route to specificity.

摘要

关键的酶促过程利用称为动力学校对的非平衡误差校正机制来提高其特异性。然而,传统校对方案的适用性受到限制,因为它们通常需要酶中的专用结构特征,例如核苷酸水解位点或多个中间构象。在这里,我们探索了一种替代的概念机制,通过使底物结合和随后的产物形成发生在不同的物理位置来实现错误校正。酶-底物复合物从一个位置扩散到另一个位置所需的时间被用来丢弃错误的底物。这种机制没有典型的结构要求,因此在实验中更容易被忽视。我们讨论了分子梯度的长度尺度如何决定校对性能,并量化了实际扩散和反应速率带来的限制。我们的工作拓宽了动力学校对的适用性,并为研究空间梯度作为特异性的一种可能途径奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bc2/7813546/6c9c8fdbc24f/elife-60415-fig1.jpg

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