Shaw J P, Schwager F, Harayama S
Department of Medical Biochemistry, University Medical Centre, Geneva, Switzerland.
Biochem J. 1992 May 1;283 ( Pt 3)(Pt 3):789-94. doi: 10.1042/bj2830789.
The substrate-specificities of benzyl alcohol dehydrogenase and benzaldehyde dehydrogenase, encoded by TOL plasmid pWW0 of Pseudomonas putida mt-2, were determined. The rates of benzyl alcohol dehydrogenase-catalysed oxidation of substituted benzyl alcohols and reduction of substituted benzaldehydes were independent of the electronic nature of the substituents at positions 3 and 4. Substitutions at position 2 of benzyl alcohol affected the reactivity of benzyl alcohol dehydrogenase: the velocity of the benzyl alcohol dehydrogenase-catalysed oxidation was lower for compounds possessing electron-withdrawing substitutions. In the reverse reaction of benzyl alcohol dehydrogenase, none of the substitutions tested influenced the apparent kcat. values. The rates of benzaldehyde dehydrogenase-catalysed oxidation of substituted benzaldehydes were influenced by the electronic nature of the substitutions: electron-withdrawing groups at positions 3 and 4 favoured the oxidation of benzaldehydes. Substitution at position 2 of benzaldehyde greatly diminished the benzaldehyde dehydrogenase-catalysed oxidation. Substitution at position 2 with electron-donating groups essentially abolished reactivity, and only substitutions that were strongly electron-withdrawing, such as nitro and fluoro groups, permitted enzyme-catalysed oxidation. The influence of the electronic nature and the position of substitutions on the aromatic ring of the substrate on the velocity of the catalysed reactions provided some indications concerning the transition state during the oxidation of the substrates, and on the rate-limiting steps of the enzymes. Pseudomonas putida mt-2 containing TOL plasmid pWW0 cannot grow on toluene derivatives substituted at position 2, nor can it grow on 2-substituted benzyl alcohols or aldehydes. One of the reasons for this may be the substrate-specificities of the benzyl alcohol dehydrogenase and benzaldehyde dehydrogenase.
测定了恶臭假单胞菌mt-2的TOL质粒pWW0编码的苄醇脱氢酶和苯甲醛脱氢酶的底物特异性。苄醇脱氢酶催化的取代苄醇氧化和取代苯甲醛还原的速率与3位和4位取代基的电子性质无关。苄醇2位的取代影响苄醇脱氢酶的反应活性:对于具有吸电子取代基的化合物,苄醇脱氢酶催化氧化的速度较低。在苄醇脱氢酶的逆反应中,所测试的取代均不影响表观kcat值。苯甲醛脱氢酶催化的取代苯甲醛氧化速率受取代基电子性质的影响:3位和4位的吸电子基团有利于苯甲醛的氧化。苯甲醛2位的取代大大降低了苯甲醛脱氢酶催化的氧化反应。2位用供电子基团取代基本上消除了反应活性,只有强吸电子取代基,如硝基和氟基,才能进行酶催化氧化。底物芳环上取代基的电子性质和位置对催化反应速度的影响为底物氧化过程中的过渡态以及酶的限速步骤提供了一些线索。含有TOL质粒pWW0的恶臭假单胞菌mt-2不能在2位被取代的甲苯衍生物上生长,也不能在2位被取代的苄醇或醛上生长。其原因之一可能是苄醇脱氢酶和苯甲醛脱氢酶的底物特异性。