Medlock Amy E, Dailey Tamara A, Ross Teresa A, Dailey Harry A, Lanzilotta William N
Biomedical and Health Sciences Institute, Department of Biochemistry and Molecular Biology, University of Georgia, Athens, GA 30602, USA.
J Mol Biol. 2007 Nov 2;373(4):1006-16. doi: 10.1016/j.jmb.2007.08.040. Epub 2007 Aug 23.
Ferrochelatase (protoheme ferrolyase, EC 4.99.1.1) is the terminal enzyme in heme biosynthesis and catalyzes the insertion of ferrous iron into protoporphyrin IX to form protoheme IX (heme). Due to the many critical roles of heme, synthesis of heme is required by the vast majority of organisms. Despite significant investigation of both the microbial and eukaryotic enzyme, details of metal chelation remain unidentified. Here we present the first structure of the wild-type human enzyme, a lead-inhibited intermediate of the wild-type enzyme with bound metallated porphyrin macrocycle, the product bound form of the enzyme, and a higher resolution model for the substrate-bound form of the E343K variant. These data paint a picture of an enzyme that undergoes significant changes in secondary structure during the catalytic cycle. The role that these structural alterations play in overall catalysis and potential protein-protein interactions with other proteins, as well as the possible molecular basis for these changes, is discussed. The atomic details and structural rearrangements presented herein significantly advance our understanding of the substrate binding mode of ferrochelatase and reveal new conformational changes in a structurally conserved pi-helix that is predicted to have a central role in product release.
亚铁螯合酶(原血红素亚铁裂解酶,EC 4.99.1.1)是血红素生物合成中的末端酶,催化亚铁插入原卟啉IX中形成原血红素IX(血红素)。由于血红素具有许多关键作用,绝大多数生物体都需要合成血红素。尽管对微生物和真核生物的该酶都进行了大量研究,但金属螯合的细节仍不清楚。在此,我们展示了野生型人源酶的首个结构、结合金属化卟啉大环的野生型酶的铅抑制中间体、酶的产物结合形式以及E343K变体底物结合形式的更高分辨率模型。这些数据描绘了一种在催化循环中二级结构发生显著变化的酶。讨论了这些结构改变在整体催化中的作用以及与其他蛋白质潜在的蛋白质 - 蛋白质相互作用,以及这些变化可能的分子基础。本文呈现的原子细节和结构重排显著推进了我们对亚铁螯合酶底物结合模式的理解,并揭示了在结构保守的π - 螺旋中预计在产物释放中起核心作用的新构象变化。