Matsui Toshitaka, Furukawa Momoko, Unno Masaki, Tomita Takeshi, Ikeda-Saito Masao
Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, Katahira, Aoba, Sendai 980-8577, Japan.
J Biol Chem. 2005 Jan 28;280(4):2981-9. doi: 10.1074/jbc.M410263200. Epub 2004 Nov 4.
Heme oxygenases found in mammals, plants, and bacteria catalyze degradation of heme using the same mechanism. Roles of distal Asp (Asp-136) residue in HmuO, a heme oxygenase of Corynebacterium diphtheriae, have been investigated by site-directed mutagenesis, enzyme kinetics, resonance Raman spectroscopy, and x-ray crystallography. Replacements of the Asp-136 by Ala and Phe resulted in reduced heme degradation activity due to the formation of ferryl heme, showing that the distal Asp is critical in HmuO heme oxygenase activity. D136N HmuO catalyzed heme degradation at a similar efficiency to wild type and D136E HmuO, implying that the carboxylate moiety is not required for the heme catabolism by HmuO. Resonance Raman results suggest that the inactive ferryl heme formation in the HmuO mutants is induced by disruption of the interaction between a reactive Fe-OOH species and an adjacent distal pocket water molecule. Crystal structural analysis of the HmuO mutants confirms partial disappearance of this nearby water in D136A HmuO. Our results provide the first experimental evidence for the catalytic importance of the nearby water molecule that can be universally critical in heme oxygenase catalysis and propose that the distal Asp helps in positioning the key water molecule at a position suitable for efficient activation of the Fe-OOH species.
在哺乳动物、植物和细菌中发现的血红素加氧酶使用相同的机制催化血红素的降解。通过定点诱变、酶动力学、共振拉曼光谱和X射线晶体学研究了白喉棒状杆菌的血红素加氧酶HmuO中远端天冬氨酸(Asp-136)残基的作用。用丙氨酸和苯丙氨酸取代Asp-136导致由于高铁血红素的形成而使血红素降解活性降低,表明远端天冬氨酸对HmuO血红素加氧酶活性至关重要。D136N HmuO催化血红素降解的效率与野生型和D136E HmuO相似,这意味着羧基部分对于HmuO的血红素分解代谢不是必需的。共振拉曼结果表明,HmuO突变体中无活性的高铁血红素形成是由反应性Fe-OOH物种与相邻远端口袋水分子之间的相互作用中断引起的。HmuO突变体的晶体结构分析证实了D136A HmuO中附近这种水的部分消失。我们的结果为附近水分子在血红素加氧酶催化中普遍至关重要的催化重要性提供了首个实验证据,并提出远端天冬氨酸有助于将关键水分子定位在适合有效激活Fe-OOH物种的位置。