化学
核磁共振波谱
催化作用
过电位
顺磁性
光谱学
蛋白质动力学
红霉素
氢化酶
二维核磁共振波谱
共振(粒子物理)
半胱氨酸
质子核磁共振
活动站点
分子动力学
镍
化学物理
核磁共振
计算化学
蛋白质结构
基质(水族馆)
结晶学
质子
金属
电子效应
作者
Pathorn Teptarakulkarn,Regina E. Treviño,Alexandar L. Hansen,Joseph A. Laureanti,Garry W. Buchko,Wendy J. Shaw,Hannah S. Shafaat
摘要
Rational catalyst design remains a significant challenge, with electronic structure, steric, and electrostatic effects known to contribute to activity. Recently, dynamics has been recognized as another factor that impacts catalysis, though identifying and predicting these effects have remained out of reach. Nickel-substituted rubredoxin (NiRd), a protein-based mimic of a hydrogenase enzyme, serves as a model catalytic system in which dynamics can be systematically investigated with respect to activity. While over 30 secondary-sphere mutants of NiRd have been shown to be catalytically active, no significant correlation has been observed between the rates and catalytic overpotential or electronic structure, prompting questions about the protein-derived factors that modulate activity. In this work, NMR spectroscopy was used to investigate the roles of substrate accessibility, protein dynamics, and protein stability in controlling catalysis. Significant paramagnetic effects from the nickel center (S = 1) isolate the methylene proton resonances of the metal-coordinating cysteine residues. The sensitivity of resonance positions and line widths to local environment offers an opportunity to study dynamic molecular changes around the metal center with high resolution. Machine learning algorithms were employed to identify correlations between the catalytic activity and the paramagnetic NMR spectra. These analyses revealed spectroscopic features of specific cysteine protons that report on catalytic overpotential and increased turnover rates, which are further supported by the results obtained using high-field NMR techniques. Collectively, these studies indicate the potential for multifrequency NMR techniques to resolve key contributors to catalytic activity and highlight the importance of local and outer-sphere dynamics.
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