Okuda K, Urabe I, Okada H
Eur J Biochem. 1985 Mar 1;147(2):249-53. doi: 10.1111/j.1432-1033.1985.tb08744.x.
Coenzymic activities of the following NADP derivatives were investigated: 2'-O-(2-carboxyethyl)phosphono-NAD (I), N6-(2-carboxyethyl)-NADP (II), 2'-O-(2-carboxyethyl)phosphono-N6-(2-carboxyethyl)-NAD (III), 2'-O-[N-(2-aminoethyl)carbamoylethyl]phosphono-NAD (IV), N6-[N-(2-aminoethyl)carbamoylethyl]-NADP (Va), 2',3'-cyclic NADP, and 3'-NADP. Derivatives I and IV show the effects of modification at the 2'-phosphate group, and derivatives II and Va show those at the 6-amino group of NADP. As for enzymes, alcohol, isocitrate, 6-phosphogluconate, glucose, glucose-6-phosphate, and glutamate dehydrogenases were used. These enzymes were grouped on the basis of the ratio of the activities for NAD and NADP into NADP-specific enzymes (ratio less than 0.01), NAD(P)-specific enzymes (0.01 less than ratio less than 100), and NAD-specific enzymes (ratio greater than 100). For NADP-specific enzymes, modifications at the 2'-phosphate group of NADP caused great loss of cofactor activity. The relative cofactor activities (NADP = 100%) of derivatives I and IV for these enzymes were 0.5-20 and 0.01-0.5%, respectively. On the other hand, NAD(P)-specific enzymes showed several types of responses to the NADP derivatives. The relative cofactor activities of I and IV for Leuconostoc mesenteroides and Bacillus stearothermophilus glucose-6-phosphate dehydrogenases and beef liver glutamate dehydrogenase were 60-200%; whereas, for B. megaterium glucose dehydrogenase and L. mesenteroides alcohol dehydrogenase, the values were 0.8-8%. For NAD-specific enzymes, these values were 20-50%. The relative cofactor activities of 2',3'-cyclic NADP and 3'-NADP were very low (less than 0.2%) except for beef liver glutamate dehydrogenase, B. stearothermophilus glucose-6-phosphate dehydrogenase, and horse liver alcohol dehydrogenase. Kinetic studies showed that the losses of the cofactor activity of NADP by these modifications were mainly due to the increase of the Km value. The mechanisms of coenzyme specificity of dehydrogenases are discussed. Unlike the 2'-phosphate group, the 6-amino group is common to NAD and NADP, and the effects of modification at the 6-amino group were independent of the coenzyme specificity of enzymes used for the assay. Derivatives II and Va had high relative cofactor activities (65-130%) for most of the enzymes except for isocitrate and glucose dehydrogenases (less than 1%) and L. mesenteroides alcohol dehydrogenase (20-60%). The cofactor activity of derivative III was generally lower than those of I and II.
对以下NADP衍生物的辅酶活性进行了研究:2'-O-(2-羧乙基)膦酰基-NAD(I)、N6-(2-羧乙基)-NADP(II)、2'-O-(2-羧乙基)膦酰基-N6-(2-羧乙基)-NAD(III)、2'-O-[N-(2-氨基乙基)氨甲酰基乙基]膦酰基-NAD(IV)、N6-[N-(2-氨基乙基)氨甲酰基乙基]-NADP(Va)、2',3'-环NADP和3'-NADP。衍生物I和IV显示了NADP 2'-磷酸基团修饰的影响,衍生物II和Va显示了NADP 6-氨基基团修饰的影响。至于酶,使用了乙醇脱氢酶、异柠檬酸脱氢酶、6-磷酸葡萄糖酸脱氢酶、葡萄糖脱氢酶、葡萄糖-6-磷酸脱氢酶和谷氨酸脱氢酶。这些酶根据对NAD和NADP的活性比分为NADP特异性酶(比值小于0.01)、NAD(P)特异性酶(0.01小于比值小于100)和NAD特异性酶(比值大于100)。对于NADP特异性酶,NADP 2'-磷酸基团的修饰导致辅因子活性大幅丧失。衍生物I和IV对这些酶的相对辅因子活性(NADP = 100%)分别为0.5 - 20%和0.01 - 0.5%。另一方面,NAD(P)特异性酶对NADP衍生物表现出几种类型的反应。I和IV对嗜温明串珠菌和嗜热脂肪芽孢杆菌葡萄糖-6-磷酸脱氢酶以及牛肝谷氨酸脱氢酶的相对辅因子活性为60 - 200%;而对于巨大芽孢杆菌葡萄糖脱氢酶和嗜温明串珠菌乙醇脱氢酶,该值为0.8 - 8%。对于NAD特异性酶,这些值为20 - 50%。除了牛肝谷氨酸脱氢酶、嗜热脂肪芽孢杆菌葡萄糖-6-磷酸脱氢酶和马肝乙醇脱氢酶外,2',3'-环NADP和3'-NADP的相对辅因子活性非常低(小于0.2%)。动力学研究表明,这些修饰导致NADP辅因子活性丧失主要是由于Km值的增加。讨论了脱氢酶辅酶特异性的机制。与2'-磷酸基团不同,6-氨基基团是NAD和NADP共有的,6-氨基基团修饰的影响与用于测定的酶的辅酶特异性无关。衍生物II和Va对大多数酶具有较高的相对辅因子活性(65 - 130%),异柠檬酸脱氢酶和葡萄糖脱氢酶(小于1%)以及嗜温明串珠菌乙醇脱氢酶(20 - 60%)除外。衍生物III的辅因子活性通常低于I和II。