Vinogradov A D, Kotlyar A B, Burov V I, Belikova Y O
Department of Biochemistry, School of Biology, Moscow State University, U.S.S.R.
Adv Enzyme Regul. 1989;28:271-80. doi: 10.1016/0065-2571(89)90076-9.
Highly purified succinate-ubiquinone reductase catalyzes the oxidation of L- or D-malate with a Km and initial Vmax equal to approximately 10(-3) M and approximately 100 nmol/min/mg of protein, respectively. The malate dehydrogenase activity of succinate dehydrogenase rapidly decreases regardless of the presence of glutamate plus glutamate-oxaloacetate transaminase. The inhibitor trapping system, however, prevents the inactivation of succinate dehydrogenase under the conditions when the rate of tautomeric oxaloacetate enol in equilibrium oxaloacetate ketone interconversion is high. These results suggest that enol oxaloacetate is an immediate product of malate oxidation at the succinate dehydrogenase active site. Two proteins (Mr 37 and 80 kD) which catalyze the oxaloacetate tautomerase reaction were isolated from the mitochondrial matrix. Some physico-chemical and kinetic properties of these enzymes were characterized. The larger protein was identified as inactive aconitase. The system containing succinate dehydrogenase, L-malate, glutamate plus transaminase and oxaloacetate tautomerase was reconstituted. Such a system is capable of oxidizing malate to aspartate without rapid inactivation of succinate dehydrogenase. Taken together, the data obtained emphasize a significant role of enzymatic oxaloacetate tautomerization in the control of the succinate dehydrogenase activity in the mitochondrial matrix.
高度纯化的琥珀酸 - 泛醌还原酶催化L - 苹果酸或D - 苹果酸的氧化反应,其Km值和初始Vmax值分别约为10⁻³ M和约100 nmol/min/mg蛋白质。无论是否存在谷氨酸加谷氨酸 - 草酰乙酸转氨酶,琥珀酸脱氢酶的苹果酸脱氢酶活性都会迅速降低。然而,抑制剂捕获系统可防止在平衡态草酰乙酸酮互变异构中互变异构体草酰乙酸烯醇的速率较高的条件下琥珀酸脱氢酶失活。这些结果表明草酰乙酸烯醇是琥珀酸脱氢酶活性位点处苹果酸氧化的直接产物。从线粒体基质中分离出两种催化草酰乙酸互变异构酶反应的蛋白质(分子量分别为37 kD和80 kD)。对这些酶的一些物理化学和动力学性质进行了表征。较大的蛋白质被鉴定为无活性的乌头酸酶。重建了包含琥珀酸脱氢酶、L - 苹果酸、谷氨酸加转氨酶和草酰乙酸互变异构酶的系统。这样的系统能够将苹果酸氧化为天冬氨酸,而不会使琥珀酸脱氢酶迅速失活。综上所述,所获得的数据强调了酶促草酰乙酸互变异构在控制线粒体基质中琥珀酸脱氢酶活性方面的重要作用。