Berrisford John M, Akerboom Jasper, Turnbull Andrew P, de Geus Daniel, Sedelnikova Svetlana E, Staton Ian, McLeod Cameron W, Verhees Corne H, van der Oost John, Rice David W, Baker Patrick J
Department of Molecular Biology and Biotechnology, Krebs Institute for Biomolecular Research, University of Sheffield, Firth Court, Western Bank, Sheffield S10 2TN, United Kingdom.
J Biol Chem. 2003 Aug 29;278(35):33290-7. doi: 10.1074/jbc.M305170200. Epub 2003 Jun 9.
Phosphoglucose isomerase (PGI) catalyzes the reversible isomerization between d-fructose 6-phosphate and d-glucose 6-phosphate as part of the glycolytic pathway. PGI from the Archaea Pyrococcus furiosus (Pfu) was crystallized, and its structure was determined by x-ray diffraction to a 2-A resolution. Structural comparison of this archaeal PGI with the previously solved structures of bacterial and eukaryotic PGIs reveals a completely different structure. Each subunit of the homodimeric Pfu PGI consists of a cupin domain, for which the overall structure is similar to other cupin domain-containing proteins, and includes a conserved transition metal-binding site. Biochemical data on the recombinant enzyme suggests that Fe2+ is bound to Pfu PGI. However, as catalytic activity is not strongly influenced either by the replacement of Fe2+ by a range of transition metals or by the presence or absence of the bound metal ion, we suggest that the metal may not be directly involved in catalysis but rather may be implicated in substrate recognition.
磷酸葡萄糖异构酶(PGI)催化D-果糖6-磷酸和D-葡萄糖6-磷酸之间的可逆异构化反应,这是糖酵解途径的一部分。来自嗜热栖热菌(Pfu)的古菌PGI被结晶出来,并通过X射线衍射确定其结构,分辨率达到2埃。将这种古菌PGI与先前解析的细菌和真核生物PGI结构进行比较,发现结构完全不同。同二聚体Pfu PGI的每个亚基都由一个“铜蛋白”结构域组成,其整体结构与其他含“铜蛋白”结构域的蛋白质相似,并且包含一个保守的过渡金属结合位点。关于重组酶的生化数据表明,Fe2+与Pfu PGI结合。然而,由于一系列过渡金属取代Fe2+或结合金属离子的存在与否对催化活性的影响都不强烈,我们认为该金属可能不直接参与催化作用,而是可能与底物识别有关。