Steinbacher Stefan, Schiffmann Susanne, Richter Gerald, Huber Robert, Bacher Adelbert, Fischer Markus
Max-Planck-Institut für Biochemie, Abteilung für Strukturforschung, Am Klopferspitz 18a, D-82152 Martinsried, Germany.
J Biol Chem. 2003 Oct 24;278(43):42256-65. doi: 10.1074/jbc.M307301200. Epub 2003 Aug 6.
Skeletal rearrangements of carbohydrates are crucial for many biosynthetic pathways. In riboflavin biosynthesis ribulose 5-phosphate is converted into 3,4-dihydroxy-2-butanone 4-phosphate while its C4 atom is released as formate in a sequence of metal-dependent reactions. Here, we present the crystal structure of Methanococcus jannaschii 3,4-dihydroxy-2-butanone 4-phosphate synthase in complex with the substrate ribulose 5-phosphate at a dimetal center presumably consisting of non-catalytic zinc and calcium ions at 1.7-A resolution. The carbonyl group (O2) and two out of three free hydroxyl groups (OH3 and OH4) of the substrate are metal-coordinated. We correlate previous mutational studies on this enzyme with the present structural results. Residues of the first coordination sphere involved in metal binding are indispensable for catalytic activity. Only Glu-185 of the second coordination sphere cannot be replaced without complete loss of activity. It contacts the C3 hydrogen atom directly and probably initiates enediol formation in concert with both metal ions to start the reaction sequence. Mechanistic similarities to Rubisco acting on the similar substrate ribulose 1,5-diphosphate in carbon dioxide fixation as well as other carbohydrate (reducto-) isomerases are discussed.
碳水化合物的骨架重排对许多生物合成途径至关重要。在核黄素生物合成中,5-磷酸核糖被转化为4-磷酸-3,4-二羟基-2-丁酮,而其C4原子在一系列金属依赖性反应中以甲酸的形式释放。在此,我们展示了嗜压甲烷球菌4-磷酸-3,4-二羟基-2-丁酮合酶与底物5-磷酸核糖在一个可能由非催化性锌离子和钙离子组成的双金属中心结合时的晶体结构,分辨率为1.7埃。底物的羰基(O2)以及三个游离羟基中的两个(OH3和OH4)与金属配位。我们将先前对该酶的突变研究与当前的结构结果相关联。参与金属结合的第一配位层的残基对于催化活性是不可或缺的。只有第二配位层的Glu-185在不完全丧失活性的情况下不能被取代。它直接接触C3氢原子,可能与两个金属离子协同引发烯二醇的形成,从而启动反应序列。文中还讨论了与在二氧化碳固定中作用于类似底物1,5-二磷酸核酮糖的核酮糖-1,5-二磷酸羧化酶/加氧酶以及其他碳水化合物(还原)异构酶的机制相似性。