Foor F, Brown G M
J Biol Chem. 1975 May 10;250(9):3545-51.
An enzyme that uses GTP as substrate for the formation in stoichiometric quantities of formate, inorganic pyrophosphate, and 2,5-diamino-6-hydroxy-4-(ribosylamino)pyrimidine-5'-phosphate has been purified 2200-fold from extracts of Escherichia coli B. This enzyme is named GTP cyclohydrolase II to distinguish it from a previously studied E. coli enzyme, named GTP cyclohydrolase (and called GTP cyclohydrolase I in this paper), that catalyzes the first of a series of enzymatic reactions leading to the biosynthesis of the pteridine portion of folic acid (Burg, A. W., and Brown, G. M. (1968) J. Biol. Chem. 243, 2349-2358). Some of the properties of GTP cyclohydrolase II are: (a) divalent cations are required for activity (Mg2+ is most effective); (b) its molecular weight, estimated by filtration on Sephadex G-200, is 44,000; (c) the K-m for GTP is 41 mum; (d) its pH optimum is 8.5; and (e) its activity is inhibited by inorganic pyrophosphate, one of the products of the reaction. Compounds not used as substrate are: GDP, GMP, guanosine, dGTP, ATP, ITP, and XTP. Properties a, b, c, and e (above), as well as the nature of the products, distinguish this enzyme from GTP cyclohydrolase I. Since GTP cyclohydrolase II apparently is not concerned with the biosynthesis of folic acid, the possible physiological role of this enzyme in the biosynthesis of riboflavin is considered in the light of the present investigations and the previously published work on riboflavin biosynthesis by other investigators.
一种以鸟苷三磷酸(GTP)为底物,按化学计量生成甲酸、无机焦磷酸和2,5 - 二氨基 - 6 - 羟基 - 4 -(核糖氨基)嘧啶 - 5'- 磷酸的酶,已从大肠杆菌B提取物中纯化了2200倍。这种酶被命名为GTP环水解酶II,以区别于先前研究的一种大肠杆菌酶,即GTP环水解酶(在本文中称为GTP环水解酶I),后者催化一系列导致叶酸蝶啶部分生物合成的酶促反应中的第一步(伯格,A. W.,和布朗,G. M.(1968年)《生物化学杂志》243,2349 - 2358)。GTP环水解酶II的一些特性如下:(a)活性需要二价阳离子(Mg2+最有效);(b)通过在Sephadex G - 200上过滤估计其分子量为44,000;(c)对GTP的米氏常数(Km)为41 μM;(d)最适pH为8.5;(e)其活性受到反应产物之一无机焦磷酸的抑制。未用作底物的化合物有:鸟苷二磷酸(GDP)、鸟苷一磷酸(GMP)、鸟苷、脱氧鸟苷三磷酸(dGTP)、三磷酸腺苷(ATP)、肌苷三磷酸(ITP)和黄苷三磷酸(XTP)。上述特性a、b、c和e以及产物的性质将这种酶与GTP环水解酶I区分开来。由于GTP环水解酶II显然与叶酸的生物合成无关,根据目前的研究以及其他研究者先前发表的关于核黄素生物合成的工作,考虑了这种酶在核黄素生物合成中可能的生理作用。