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通过结构和分子动力学模拟深入了解放线菌粪卟啉脱羧酶中结构域连接环的灵活性。

Insights into the flexibility of the domain-linking loop in actinobacterial coproheme decarboxylase through structures and molecular dynamics simulations.

作者信息

Patil Gaurav, Alonso de Armiño Diego Javier, Guo Yirui, Furtmüller Paul G, Borek Dominika, Estrin Dario A, Hofbauer Stefan

机构信息

Department of Chemistry, Institute of Biochemistry, BOKU University, Vienna, Austria.

Instituto de Química, Física de los Materiales, Medio Ambiente y Energía (INQUIMAE), CONICET-Universidad de Buenos Aires, Buenos Aires, Argentina.

出版信息

Protein Sci. 2025 Feb;34(2):e70027. doi: 10.1002/pro.70027.

Abstract

Prokaryotic heme biosynthesis in Gram-positive bacteria follows the coproporphyrin-dependent heme biosynthesis pathway. The last step in this pathway is catalyzed by the enzyme coproheme decarboxylase, which oxidatively transforms two propionate groups into vinyl groups yielding heme b. The catalytic reaction cycle of coproheme decarboxylases exhibits four different states: the apo-form, the substrate (coproheme)-bound form, a transient three-propionate intermediate form (monovinyl, monopropionate deuteroheme; MMD), and the product (heme b)-bound form. In this study, we used cryogenic electron microscopy single-particle reconstruction (cryo-EM SPR) to characterize structurally the apo and heme b-bound forms of actinobacterial coproheme decarboxylase from Corynebacterium diphtheriae. The flexible loop that connects the N-terminal and the C-terminal ferredoxin domains of coproheme decarboxylases plays an important role in interactions between the enzyme and porphyrin molecule. To understand the role of this flexible loop, we performed molecular dynamics simulations on the apo and heme b coproheme decarboxylase from Corynebacterium diphtheriae. Our results are discussed in the context of the published structural information on coproheme-bound and MMD-bound coproheme decarboxylase and with respect to the reaction mechanism. Having structural information of all four enzymatically relevant states helps in understanding structural restraints with a functional impact.

摘要

革兰氏阳性菌中的原核血红素生物合成遵循粪卟啉依赖性血红素生物合成途径。该途径的最后一步由粪卟啉脱羧酶催化,该酶将两个丙酸基团氧化转化为乙烯基,生成血红素b。粪卟啉脱羧酶的催化反应循环呈现出四种不同状态:脱辅基形式、底物(粪卟啉)结合形式、瞬态三丙酸中间体形式(单乙烯基、单丙酸氘血红素;MMD)和产物(血红素b)结合形式。在本研究中,我们使用低温电子显微镜单颗粒重建(cryo-EM SPR)对来自白喉棒状杆菌的放线菌粪卟啉脱羧酶的脱辅基形式和血红素b结合形式进行结构表征。连接粪卟啉脱羧酶N端和C端铁氧化还原蛋白结构域的柔性环在酶与卟啉分子的相互作用中起重要作用。为了了解这个柔性环的作用,我们对白喉棒状杆菌的脱辅基和血红素b粪卟啉脱羧酶进行了分子动力学模拟。我们的结果将结合已发表的关于粪卟啉结合和MMD结合的粪卟啉脱羧酶的结构信息以及反应机制进行讨论。拥有所有四种与酶相关状态的结构信息有助于理解具有功能影响的结构限制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0292/11761711/b6e86ffb6e3d/PRO-34-e70027-g008.jpg

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