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5-氨基酮戊酸合酶催化:血红素生物合成中的捕手。

5-Aminolevulinate synthase catalysis: The catcher in heme biosynthesis.

机构信息

Department of Molecular Medicine, Morsani College of Medicine, University of South Florida, Tampa, FL 33612, USA.

Department of Molecular Medicine, Morsani College of Medicine, University of South Florida, Tampa, FL 33612, USA.

出版信息

Mol Genet Metab. 2019 Nov;128(3):178-189. doi: 10.1016/j.ymgme.2019.06.003. Epub 2019 Jun 13.

Abstract

5-Aminolevulinate (ALA) synthase (ALAS), a homodimeric pyridoxal-5'-phosphate (PLP)-dependent enzyme, catalyzes the first step of heme biosynthesis in metazoa, fungi and α-proteobacteria. In this review, we focus on the advances made in unraveling the mechanism of the ALAS-catalyzed reaction during the past decade. The interplay between the PLP cofactor and the protein moiety determines and modulates the multi-intermediate reaction cycle of ALAS, which involves the decarboxylative condensation of two substrates, glycine and succinyl-CoA. Substrate binding and catalysis are rapid, and product (ALA) release dominates the overall ALAS kinetic mechanism. Interconversion between a catalytically incompetent, open conformation and a catalytically competent, closed conformation is linked to ALAS catalysis. Reversion to the open conformation, coincident with ALA dissociation, defines the slowest step of the reaction cycle. These findings were further substantiated by introducing seven mutations in the16-amino acid loop that gates the active site, yielding an ALAS variant with a greatly increased rate of catalytic turnover and heightened specificity constants for both substrates. Recently, molecular dynamics (MD) simulation analysis of various dimeric ALAS forms revealed that the seven active site loop mutations caused the proteins to adopt different conformations. In particular, the emergence of a β-strand in the mutated loop, which interacted with two preexisting β-strands to form an anti-parallel three-stranded β-sheet, conferred the murine heptavariant with a more stable open conformation and prompted faster product release than wild-type mALAS2. Moreover, the dynamics of the mALAS2 active site loop anti-correlated with that of the 35 amino acid C-terminal sequence. This led us to propose that this C-terminal extension, which is absent in prokaryotic ALASs, finely tunes mammalian ALAS activity. Based on the above results, we extend our previous proposal to include that discovery of a ligand inducing the mammalian C-terminal extension to fold offers a good prospect for the development of a new drug for X-linked protoporphyria and/or other porphyrias associated with enhanced ALAS activity and/or porphyrin accumulation.

摘要

5-氨基酮戊酸合酶(ALAS)是一种同二聚体吡哆醛-5'-磷酸(PLP)依赖性酶,催化动物、真菌和α-变形菌中血红素生物合成的第一步。在这篇综述中,我们重点介绍了在过去十年中阐明 ALAS 催化反应机制方面的进展。PLP 辅因子和蛋白质部分之间的相互作用决定并调节 ALAS 的多中间反应循环,其中涉及两个底物甘氨酸和琥珀酰辅酶 A 的脱羧缩合。底物结合和催化是快速的,产物(ALA)释放主导着整个 ALAS 动力学机制。催化无效的开放构象和催化有效的封闭构象之间的转换与 ALAS 催化有关。与 ALA 分离一致的向开放构象的回复定义了反应循环的最慢步骤。通过在门控活性位点的 16 个氨基酸环中引入七个突变,进一步证实了这些发现,得到了一种 ALAS 变体,其催化周转率大大提高,对两种底物的特异性常数也更高。最近,对各种二聚体 ALAS 形式的分子动力学(MD)模拟分析表明,七个活性位点环突变导致蛋白质采用不同的构象。特别是,突变环中出现的β-链与两个预先存在的β-链相互作用形成反平行的三链β-折叠,赋予鼠类七变体更稳定的开放构象,并促使产物释放速度比野生型 mALAS2 更快。此外,mALAS2 活性位点环的动力学与 35 个氨基酸 C 末端序列的动力学呈反相关。这使我们提出,该 C 末端延伸在原核 ALAS 中不存在,精细地调节哺乳动物 ALAS 的活性。基于上述结果,我们扩展了之前的提议,包括发现诱导哺乳动物 C 末端延伸折叠的配体为开发用于 X 连锁原卟啉症和/或其他与增强的 ALAS 活性和/或卟啉积累相关的卟啉症的新药提供了良好的前景。

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