Kopp J, Kopriva S, Süss K H, Schulz G E
Institut für Organische Chemie und Biochemie, Albertstr. 21, Freiburg im Breisgau, D-79104, Germany.
J Mol Biol. 1999 Apr 9;287(4):761-71. doi: 10.1006/jmbi.1999.2643.
Ribulose-5-phosphate 3-epimerase (EC 5.1.3.1) catalyzes the interconversion of ribulose-5-phosphate and xylulose-5-phosphate in the Calvin cycle and in the oxidative pentose phosphate pathway. The enzyme from potato chloroplasts was expressed in Escherichia coli, isolated and crystallized. The crystal structure was elucidated by multiple isomorphous replacement and refined at 2.3 A resolution. The enzyme is a homohexamer with D3 symmetry. The subunit chain fold is a (beta alpha)8-barrel. A sequence comparison with homologous epimerases outlined the active center and indicated that all members of this family are likely to share the same catalytic mechanism. The substrate could be modeled by putting its phosphate onto the observed sulfate position and its epimerized C3 atom between two carboxylates that participate in an extensive hydrogen bonding system. A mutation confirmed the crucial role of one of these carboxylates. The geometry together with the conservation pattern suggests that the negative charge of the putative cis-ene-diolate intermediate is stabilized by the transient induced dipoles of a methionine sulfur "cushion", which is proton-free and therefore prevents isomerization instead of epimerization.
核酮糖-5-磷酸3-差向异构酶(EC 5.1.3.1)在卡尔文循环和氧化戊糖磷酸途径中催化核酮糖-5-磷酸和木酮糖-5-磷酸的相互转化。来自马铃薯叶绿体的这种酶在大肠杆菌中表达、分离并结晶。其晶体结构通过多对同晶置换法解析,并在2.3埃分辨率下进行了精修。该酶是具有D3对称性的同型六聚体。亚基链折叠为(β-α)8桶状结构。与同源差向异构酶的序列比较确定了活性中心,并表明该家族所有成员可能具有相同的催化机制。通过将底物的磷酸基团置于观察到的硫酸根位置,并将其差向异构化的C3原子置于参与广泛氢键系统的两个羧酸盐之间,可对底物进行建模。一个突变证实了其中一个羧酸盐的关键作用。其几何结构与保守模式表明,假定的顺式烯二醇中间体的负电荷由一个无质子的甲硫氨酸硫“缓冲垫”的瞬时诱导偶极稳定,该缓冲垫可防止异构化而非差向异构化。