Mogi Tatsushi
Department of Biomedical Chemistry, Graduate School of Medicine, the University of Tokyo, Hongo, Tokyo, Japan.
J Biochem. 2009 May;145(5):669-75. doi: 10.1093/jb/mvp024. Epub 2009 Feb 9.
Biosynthesis of heme A from heme B is catalysed by two enzymes, heme O and heme A synthases, in the membrane. Heme O synthase in Bacillus subtilis (CtaB) has eight transmembrane helices and catalyses the transfer of a farnesyl group from farnesyl diphosphate to the 2-vinyl group on pyrrole ring A of ferrous heme B. In this study, we constructed the overproduction system for the B. subtilis CtaB in Escherichia coli. We isolated His(7)-CtaB by affinity chromatography and demonstrated the presence of the heme-binding site in heme O synthase. His(7)-CtaB binds substoichiometric amounts of heme B and O, substrate and unreleased product, respectively. Mutagenesis studies suggest that strictly conserved His199 present at the extra-cellular side of helix 5 would serve as the heme-binding site. We are hoping that the overproducing system for heme O synthase would help understanding of detailed mechanism on heme O biosynthesis and X-ray crystallographic studies.
血红素A由血红素B生物合成是由膜中的两种酶,即血红素O合酶和血红素A合酶催化的。枯草芽孢杆菌中的血红素O合酶(CtaB)有八个跨膜螺旋,催化法呢基从法呢基二磷酸转移到亚铁血红素B吡咯环A上的2-乙烯基。在本研究中,我们构建了大肠杆菌中枯草芽孢杆菌CtaB的过量表达系统。我们通过亲和层析分离出His(7)-CtaB,并证明了血红素O合酶中存在血红素结合位点。His(7)-CtaB分别结合亚化学计量的血红素B和O,即底物和未释放的产物。诱变研究表明,位于螺旋5细胞外侧的严格保守的His199将作为血红素结合位点。我们希望血红素O合酶的过量表达系统将有助于理解血红素O生物合成的详细机制以及X射线晶体学研究。