Drake R R, Zimniak P, Haley B E, Lester R, Elbein A D, Radominska A
Department of Biochemistry and Molecular Biology, University of Arkansas for Medical Sciences, Little Rock 72205.
J Biol Chem. 1991 Dec 5;266(34):23257-60.
A new active site-directed photoaffinity analogue, [beta-32P]5-azido-UDP-glucuronic acid (UDP-GlcA), was enzymatically synthesized from [beta-32P]5-N3UDP-Glc using UDP-glucose dehydrogenase. The product was characterized by its mobility on ion exchange and two thin-layer chromatographic systems, by its UV absorbance at 288 nm, and the loss of this absorbance after UV irradiation of the compound. Photoincorporation of [beta-32P]5-N3UDP-GlcA into bovine liver UDP-Glc dehydrogenase (EC 1.1.1.22) was saturable with an apparent Kd of 12.5 microM, and was inhibited by the known active-site effectors UDP-GlcA, UDP-Glc, and UDP-xylose. When human liver microsomes with known UDP-glucuronosyltransferase (EC 2.4.1.17) activities were photolabeled with [beta-32P]5-N3UDP-GlcA, major photolabeled bands of 35-37 and 50-54 kDa were detected. When rat liver microsomes from phenobarbital-injected rats were photolabeled with [beta-32P]5-N3UDP-GlcA, there was a marked increase in photoincorporation of a 51-kDa protein as compared with control animals. Evidence is presented which suggests that the photolabeled 51-54-kDa proteins in the liver microsomes from both tissues are UDP-glucuronosyltransferase and that [beta-32P]5-N3UDP-GlcA represents a new alternative approach in the study of UDP-glucuronosyltransferase and other UDP-GlcA-utilizing enzymes.
一种新的活性位点导向的光亲和类似物,[β-32P]5-叠氮基-UDP-葡糖醛酸(UDP-GlcA),由[β-32P]5-N3UDP-Glc使用UDP-葡萄糖脱氢酶酶促合成。通过其在离子交换和两种薄层色谱系统上的迁移率、在288nm处的紫外吸光度以及该化合物紫外照射后吸光度的丧失对产物进行了表征。[β-32P]5-N3UDP-GlcA向牛肝UDP-Glc脱氢酶(EC 1.1.1.22)中的光掺入是可饱和的,表观解离常数Kd为12.5μM,并且受到已知的活性位点效应物UDP-GlcA、UDP-Glc和UDP-木糖的抑制。当用[β-32P]5-N3UDP-GlcA对具有已知UDP-葡糖醛酸基转移酶(EC 2.4.1.17)活性的人肝微粒体进行光标记时,检测到35 - 37kDa和50 - 54kDa的主要光标记条带。当用[β-32P]5-N3UDP-GlcA对来自苯巴比妥注射大鼠的大鼠肝微粒体进行光标记时,与对照动物相比,51kDa蛋白质的光掺入有显著增加。提出的证据表明,来自两种组织的肝微粒体中光标记的51 - 54kDa蛋白质是UDP-葡糖醛酸基转移酶,并且[β-32P]5-N3UDP-GlcA代表了研究UDP-葡糖醛酸基转移酶和其他利用UDP-GlcA的酶的一种新的替代方法。