Elfström Lisa T, Widersten Mikael
Department of Biochemistry, Biomedical Center, Uppsala University, Box 576, SE-751 23 Uppsala, Sweden.
Biochem J. 2005 Sep 1;390(Pt 2):633-40. doi: 10.1042/BJ20050526.
The kinetic mechanism of epoxide hydrolase (EC 3.3.2.3) from potato, StEH1 (Solanum tuberosum epoxide hydrolase 1), was studied by presteady-state and steady-state kinetics as well as by pH dependence of activity. The specific activities towards the different enantiomers of TSO (trans-stilbene oxide) as substrate were 43 and 3 micromol x min(-1) x mg(-1) with the R,R- or S,S-isomers respectively. The enzyme was, however, enantioselective in favour of the S,S enantiomer due to a lower K(m) value. The pH dependences of kcat with R,R or S,S-TSO were also distinct and supposedly reflecting the pH dependences of the individual kinetic rates during substrate conversion. The rate-limiting step for TSO and cis- and trans-epoxystearate was shown by rapid kinetic measurements to be the hydrolysis of the alkylenzyme intermediate. Functional characterization of point mutants verified residues Asp105, Tyr154, Tyr235 and His300 as crucial for catalytic activity. All mutants displayed drastically decreased enzymatic activities during steady state. Presteady-state measurements revealed the base-deficient H300N (His300-->Asn) mutant to possess greatly reduced efficiencies in catalysis of both chemical steps (alkylation and hydrolysis).
通过预稳态和稳态动力学以及活性的pH依赖性,研究了马铃薯环氧化物水解酶(EC 3.3.2.3)StEH1(马铃薯环氧化物水解酶1)的动力学机制。以反式二苯乙烯氧化物(TSO)的不同对映体为底物时,对R,R-或S,S-异构体的比活性分别为43和3微摩尔·分钟⁻¹·毫克⁻¹。然而,由于较低的Kₘ值,该酶对S,S对映体具有对映选择性。kcat对R,R或S,S-TSO的pH依赖性也不同,推测反映了底物转化过程中各个动力学速率的pH依赖性。通过快速动力学测量表明,TSO以及顺式和反式环氧硬脂酸酯的限速步骤是烯基酶中间体的水解。点突变体的功能表征证实,Asp105、Tyr154、Tyr235和His300残基对催化活性至关重要。所有突变体在稳态期间均表现出酶活性大幅下降。预稳态测量表明,碱基缺陷型H300N(His300→Asn)突变体在催化两个化学步骤(烷基化和水解)时效率大大降低。