Howard Hughes Medical Institute and Department of Biochemistry, Brandeis University, 415 South Street, Waltham, MA, 02454, USA.
Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, San Francisco, CA, 94158, USA.
Nat Commun. 2018 Apr 3;9(1):1314. doi: 10.1038/s41467-018-03562-9.
Rational design and directed evolution have proved to be successful approaches to increase catalytic efficiencies of both natural and artificial enzymes. Protein dynamics is recognized as important, but due to the inherent flexibility of biological macromolecules it is often difficult to distinguish which conformational changes are directly related to function. Here, we use directed evolution on an impaired mutant of the proline isomerase CypA and identify two second-shell mutations that partially restore its catalytic activity. We show both kinetically, using NMR spectroscopy, and structurally, by room-temperature X-ray crystallography, how local perturbations propagate through a large allosteric network to facilitate conformational dynamics. The increased catalysis selected for in the evolutionary screen is correlated with an accelerated interconversion between the two catalytically essential conformational sub-states, which are both captured in the high-resolution X-ray ensembles. Our data provide a glimpse of an evolutionary trajectory and show how subtle changes can fine-tune enzyme function.
理性设计和定向进化已被证明是提高天然和人工酶催化效率的成功方法。蛋白质动力学被认为是重要的,但由于生物大分子固有的灵活性,通常很难区分哪些构象变化与功能直接相关。在这里,我们使用脯氨酰异构酶 CypA 的损伤突变体进行定向进化,并鉴定出两个第二壳层突变,它们部分恢复了其催化活性。我们通过 NMR 光谱从动力学上,通过室温 X 射线晶体学从结构上展示了局部扰动如何通过一个大的变构网络传播,以促进构象动力学。在进化筛选中选择的增加的催化作用与两种催化必需构象亚态之间的加速互变相关,这两种构象在高分辨率 X 射线集合中都被捕获。我们的数据提供了进化轨迹的一个 glimpse,并展示了细微的变化如何微调酶的功能。