Mittal C K, Braughler J M, Ichihara K, Murad F
Biochim Biophys Acta. 1979 Jul 4;585(3):333-42. doi: 10.1016/0304-4165(79)90078-3.
The 105 000 X g gupernatant fractions from homogenates of various rat tissues catalyzed the formation of both cyclic GMP and cyclic AMP from GTP and ATP, respectively. Generally cyclic AMP formation with crude or purified preparations of soluble guanylate cyclase was only observed when enzyme activity was increased with sodium azide, sodium nitroprusside, N-methyl-N'-nitro-N-nitrosoguanidine, sodium nitrite, nitric oxide gas, hydroxyl radical and sodium arachidonate. Sodium fluoride did not alter the formation of either cyclic nucleotide. After chromatography of supernatant preparations on Sephadex G-200 columns or polyacrylamide gel electrophoresis, the formation of cyclic AMP and cyclic GMP was catalyzed by similar fractions. These studies indicate that the properties of guanylate cyclase are altered with activation. Since the synthesis of cyclic AMP and cyclic GMP reported in this study appears to be catalyzed by the same protein, one of the properties of activated guanylate cyclase is its ability to catalyze the formation of cyclic AMP from ATP. The properties of this newly described pathway for cyclic AMP formation are quite different from those previously described for adenylate cyclase preparations. The physiological significance of this pathway for cyclic AMP formation is not known. However, these studies suggest that the effects of some agents and processes to increase cyclic AMP accumulation in tissue could result from the activation of either adenylate cyclase or guanylate cyclase.
来自各种大鼠组织匀浆的105000×g上清液组分分别催化由GTP和ATP形成环鸟苷酸(cGMP)和环腺苷酸(cAMP)。通常,只有当用叠氮化钠、硝普钠、N-甲基-N'-硝基-N-亚硝基胍、亚硝酸钠、一氧化氮气体、羟基自由基和花生四烯酸钠提高酶活性时,才会观察到用粗制或纯化的可溶性鸟苷酸环化酶制剂形成cAMP。氟化钠不会改变任何一种环核苷酸的形成。在上清液制剂在葡聚糖G-200柱上进行色谱分析或聚丙烯酰胺凝胶电泳后,cAMP和cGMP的形成由相似的组分催化。这些研究表明鸟苷酸环化酶的性质随激活而改变。由于本研究中报道的cAMP和cGMP的合成似乎由同一种蛋白质催化,激活的鸟苷酸环化酶的性质之一是其催化由ATP形成cAMP的能力。这种新描述的cAMP形成途径的性质与先前描述的腺苷酸环化酶制剂的性质有很大不同。这种cAMP形成途径的生理意义尚不清楚。然而,这些研究表明,某些试剂和过程增加组织中cAMP积累的作用可能是由腺苷酸环化酶或鸟苷酸环化酶的激活引起的。