Zhang Tianji, Yu Mingjia, Li Honglian, Maccarana Marco, Zhang Wei, Shi Deling, Kan Ying, Zhang Xiao, Chi Lianli, Lindahl Ulf, Li Hongmei, Li Jin-Ping, Tan Tianwei
Division of Chemistry and Analytical Science, National Institute of Metrology, Beijing, China; College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, China; Key Laboratory of Chemical Metrology and Applications on Nutrition and Health for State Market Regulation, China.
School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, China; Beijing Advanced Innovation Centre for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, China.
Carbohydr Polym. 2023 Jan 1;299:120191. doi: 10.1016/j.carbpol.2022.120191. Epub 2022 Oct 7.
Glucuronyl 5-epimerase (Hsepi) converts D-glucuronic acid (GlcA) into L-iduronic acid (IdoA) units, through a mechanism involving reversible abstraction of a proton at C5 of hexuronic acid residues. Incubations of a [4GlcAβ1-4GlcNSOα1-] precursor substrate with recombinant enzymes in a DO/HO medium enabled an isotope exchange approach to the assessment of functional interactions of Hsepi with hexuronyl 2-O-sulfotransferase (Hs2st) and glucosaminyl 6-O-sulfotransferase (Hs6st), both involved in the final polymer-modification steps. Enzyme complexes were supported by computational modeling and homogeneous time resolved fluorescence. GlcA and IdoA D/H ratios related to product composition revealed kinetic isotope effects that were interpreted in terms of efficiency of the coupled epimerase and sulfotransferase reactions. Evidence for a functional Hsepi/Hs6st complex was provided by selective incorporation of D atoms into GlcA units adjacent to 6-O-sulfated glucosamine residues. The inability to achieve simultaneous 2-O- and 6-O-sulfation in vitro supported topologically separated reactions in the cell. These findings provide novel insight into the roles of enzyme interactions in heparan sulfate biosynthesis.
葡萄糖醛酸5-表异构酶(Hsepi)通过一种涉及己糖醛酸残基C5位质子可逆提取的机制,将D-葡萄糖醛酸(GlcA)转化为L-艾杜糖醛酸(IdoA)单元。在DO/HO培养基中,将[4GlcAβ1-4GlcNSOα1-]前体底物与重组酶一起孵育,采用同位素交换方法来评估Hsepi与己糖醛酸2-O-磺基转移酶(Hs2st)和氨基葡萄糖6-O-磺基转移酶(Hs6st)的功能相互作用,这两种酶都参与最终的聚合物修饰步骤。酶复合物通过计算建模和均相时间分辨荧光得到支持。与产物组成相关的GlcA和IdoA的D/H比揭示了动力学同位素效应,根据偶联的表异构酶和磺基转移酶反应的效率对其进行了解释。通过将D原子选择性掺入与6-O-硫酸化氨基葡萄糖残基相邻的GlcA单元中,提供了功能性Hsepi/Hs6st复合物的证据。在体外无法实现同时进行2-O-和6-O-硫酸化,这支持了细胞中拓扑上分离的反应。这些发现为酶相互作用在硫酸乙酰肝素生物合成中的作用提供了新的见解。