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Ferrochelatase π-Helix: Implications from Examining the Role of the Conserved π-Helix Glutamates in Porphyrin Metalation and Product Release

机译:铁螯合酶π-螺旋:从审查保守的π-螺旋谷氨酸在卟啉金属化和产品释放中的作用的含义。

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摘要

Protoporphyrin ferrochelatase catalyzes the insertion of Fe2+ into protoporphyrin IX to form heme. To determine whether a conserved, active site π-helix contributes to the translocation of the metal ion substrate to the ferrochelatase-bound porphyrin substrate, the invariant π-helix glutamates were replaced with amino acids with non-negatively charged side chains, and the kinetic mechanisms of the generated variants were examined. Analysis of yeast wild-type ferrochelatase-, E314Q- and E318Q-catalyzed reactions, under multi- and single-turnover conditions, demonstrated that the mutations of the π-helix glutamates hindered both protoporphyrin metalation and release of the metalated porphyrin, by slowing each step by approximately 30–50%. Protoporphyrin metalation occurred with an apparent pKa of 7.3 ± 0.1, which was assigned to binding of Fe2+ by deprotonated Glu-314 and Glu-314-assisted Fe2+ insertion into the porphyrin ring. We propose that unwinding of the π-helix concomitant with the adoption of a protein open conformation positions the deprotonated Glu-314 to bind Fe2+ from the surface of the enzyme. Transition to the closed conformation, with π-helix winding, brings Glu-314-bound Fe2+ to the active site for incorporation into protoporphyrin.
机译:原卟啉铁螯合酶催化Fe 2 + 插入原卟啉IX中形成血红素。为了确定保守的活性位点π螺旋是否有助于金属离子底物向铁螯合酶结合的卟啉底物的转运,将不变的π螺旋谷氨酸盐替换为带有非负电荷侧链的氨基酸研究了产生的变体的机制。在多周转和单周转条件下,对酵母野生型铁螯合酶,E314Q和E318Q催化反应的分析表明,π-螺旋谷氨酸盐的突变既阻碍了原卟啉的金属化又阻止了金属化的卟啉的释放,使它们变慢了。大约增加30–50%。原卟啉发生金属化,表观pKa为7.3±0.1,这归因于去质子化的Glu-314和Glu-314辅助的Fe 2 + 插入与Fe 2 + 的结合进入卟啉环。我们认为,通过蛋白开放构象的解开,π-螺旋的解链可以使去质子化的Glu-314与酶表面的Fe 2 + 结合。过渡到具有π-螺旋缠绕的闭合构象,将Glu-314结合的Fe 2 + 带到活性位点以结合入原卟啉。

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