Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou 325001, China.
Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, Cambridge 02139, U.K.
J Phys Chem Lett. 2021 Mar 25;12(11):2900-2904. doi: 10.1021/acs.jpclett.1c00438. Epub 2021 Mar 16.
The cooperativity of a monomeric enzyme arises from dynamic correlation instead of spatial correlation and is a consequence of nonequilibrium conformation fluctuations. We investigate the conformation-modulated kinetics of human glucokinase, a monomeric enzyme with important physiological functions, using a five-state kinetic model. We derive the non-Michealis-Menten (MM) correction term of the activity (i.e., turnover rate), predict its relationship to cooperativity, and reveal the violation of conformational detailed balance. Most importantly, we reproduce and explain the observed resonance effect in human glucokinase (i.e., maximal cooperativity when the conformational fluctuation rate is comparable to the catalytic rate). With the realistic parameters, our theoretical results are in quantitative agreement with the reported measurement by Miller and co-workers. The analysis can be extended to a general chemical network beyond the five-state model, suggesting the generality of kinetic cooperativity and resonance.
单体酶的协同作用源于动态相关而非空间相关,是不平衡构象波动的结果。我们使用五态动力学模型研究了具有重要生理功能的单体酶——人葡萄糖激酶的构象调节动力学。我们推导出了活性(即周转率)的非米氏修正项,预测了它与协同作用的关系,并揭示了构象详细平衡的违反。最重要的是,我们再现并解释了人葡萄糖激酶中观察到的共振效应(即当构象波动速率与催化速率相当时,协同作用最大)。对于Miller 及其同事报道的测量值,我们的理论结果与实际参数具有定量一致性。该分析可以扩展到超越五态模型的一般化学网络,表明动力学协同作用和共振的普遍性。