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Correlated motion and the effect of distal mutations in dihydrofolate reductase

机译:二氢叶酸还原酶的相关运动和远侧突变的影响

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Dihydrofolate reductase (DHFR) catalyzes the reduction of dihydrofolate to tetrahydrofolate. The catalytic rate in this system has been found to be significantly affected by mutations far from the site of chemical activity in the enzyme [Rajagopalan, P. T. R, Lutz, S., and Benkovic, S. J. (2002) Biochemistry 41, 12618-12628]. On the basis of extensive computer simulations for wild-type DHIFIR from Escherichia coli and four mutants (G121S, G121V, M42F, and M42F/G121S), we show that key parameters for catalysis are changed. The parameters we study are relative populations of different conformations sampled and hydrogen bonds. We find that the mutations result in long-range structural perturbations, rationalizing the effects that the mutations have on the kinetics of the enzyme. Such perturbations also provide a rationalization for the reported nonadditivity effect for double mutations. We finally examine the role a structural perturbation will have on the hydride transfer step. On the basis of our new findings, we discuss the role of coupled motions between distant regions in the enzyme, which previously was reported by Radkiewicz and Brooks. [References: 27]
机译:二氢叶酸还原酶(DHFR)催化二氢叶酸还原为四氢叶酸。已经发现该系统中的催化速率受远离酶中化学活性位点的突变的显着影响[Rajagopalan,PT R,Lutz,S.,and Benkovic,SJ(2002)Biochemistry 41,12618-12628]。 。在对来自大肠杆菌和四个突变体(G121S,G121V,M42F和M42F / G121S)的野生型DHIFIR的广泛计算机模拟的基础上,我们表明催化的关键参数已改变。我们研究的参数是采样的不同构型和氢键的相对种群。我们发现,突变会导致远程结构扰动,使突变对酶动力学的影响合理化。这样的扰动也为所报道的双突变的非加和效应提供了合理的依据。我们最终研究了结构扰动对氢化物转移步骤的作用。基于我们的新发现,我们讨论了酶中远距离区域之间的耦合运动的作用,该作用先前由Radkiewicz和Brooks报道。 [参考:27]

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