来自达瓦昂链霉菌(Streptomyces davaonensis)的磷酸酶 RosC 用于玫瑰黄素的生物合成,其进化在很大程度上防止了重要辅助因子核黄素-5'-磷酸的去磷酸化。

IF 4.7 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
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引用次数: 0

摘要

抗生素玫瑰黄素是一种核黄素(维生素 B2)类似物。玫瑰黄素生物合成途径的一个步骤由磷酸酶 RosC 催化,它将 8-去甲基-8-氨基-核黄素-5'-磷酸(AFP)去磷酸化为 8-去甲基-8-氨基-核黄素(AF)。RosC 还能催化 AFP 类似物核黄素-5'-磷酸(又称 "黄素单核苷酸"(FMN))的去磷酸化,但其效率较低,可能对细胞造成损害。我们对来自 Davaonensis 链霉菌的 RosC 进行了 X 射线结构分析和诱变研究,以了解黄素底物的结合、AFP 和 FMN 的区别以及该酶的催化机理。这项研究首次对 AFP 磷酸酶进行了结构分析。RosC 二聚体的每个单体都由α/β-折叠核心组成,核心由三个特定的拉长链对螺旋段和一个特定的 N 端螺旋延伸而成。这些部分共同包裹着黄素,从而形成了一个新的黄素结合位点。我们认为,AFP 和 FMN 之间的区别是由底物引起的上述四个 RosC 特定补充片段的刚性化以及 AFP C8 氨基与 D166 的 β - 羧酸之间的相互作用实现的。这个关键氨基酸参与了 AFP 环系统的结合及其核糖醇磷酸部分的定位。因此,D166 的位点特异性交换扰乱了酶的活性位点几何结构,大大降低了催化活性。根据催化核心的结构,我们构建了一系列 RosC 变体,但并没有产生一种令人不安的 FMN 去磷酸化 "杀手酶"。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Phosphatase RosC from Streptomyces davaonensis is Used for Roseoflavin Biosynthesis and has Evolved to Largely Prevent Dephosphorylation of the Important Cofactor Riboflavin-5′-phosphate

The Phosphatase RosC from Streptomyces davaonensis is Used for Roseoflavin Biosynthesis and has Evolved to Largely Prevent Dephosphorylation of the Important Cofactor Riboflavin-5′-phosphate

The antibiotic roseoflavin is a riboflavin (vitamin B2) analog. One step of the roseoflavin biosynthetic pathway is catalyzed by the phosphatase RosC, which dephosphorylates 8-demethyl-8-amino-riboflavin-5′-phosphate (AFP) to 8-demethyl-8-amino-riboflavin (AF). RosC also catalyzes the potentially cell-damaging dephosphorylation of the AFP analog riboflavin-5′-phosphate also called “flavin mononucleotide” (FMN), however, with a lower efficiency. We performed X-ray structural analyses and mutagenesis studies on RosC from Streptomyces davaonensis to understand binding of the flavin substrates, the distinction between AFP and FMN and the catalytic mechanism of this enzyme. This work is the first structural analysis of an AFP phosphatase. Each monomer of the RosC dimer consists of an α/β-fold core, which is extended by three specific elongated strand-to-helix sections and a specific N-terminal helix. Altogether these segments envelope the flavin thereby forming a novel flavin-binding site. We propose that distinction between AFP and FMN is provided by substrate-induced rigidification of the four RosC specific supplementary segments mentioned above and by an interaction between the amino group at C8 of AFP and the β-carboxylate of D166. This key amino acid is involved in binding the ring system of AFP and positioning its ribitol phosphate part. Accordingly, site-specific exchanges at D166 disturbed the active site geometry of the enzyme and drastically reduced the catalytic activity. Based on the structure of the catalytic core we constructed a whole series of RosC variants but a disturbing, FMN dephosphorylating “killer enzyme”, was not generated.

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来源期刊
Journal of Molecular Biology
Journal of Molecular Biology 生物-生化与分子生物学
CiteScore
11.30
自引率
1.80%
发文量
412
审稿时长
28 days
期刊介绍: Journal of Molecular Biology (JMB) provides high quality, comprehensive and broad coverage in all areas of molecular biology. The journal publishes original scientific research papers that provide mechanistic and functional insights and report a significant advance to the field. The journal encourages the submission of multidisciplinary studies that use complementary experimental and computational approaches to address challenging biological questions. Research areas include but are not limited to: Biomolecular interactions, signaling networks, systems biology; Cell cycle, cell growth, cell differentiation; Cell death, autophagy; Cell signaling and regulation; Chemical biology; Computational biology, in combination with experimental studies; DNA replication, repair, and recombination; Development, regenerative biology, mechanistic and functional studies of stem cells; Epigenetics, chromatin structure and function; Gene expression; Membrane processes, cell surface proteins and cell-cell interactions; Methodological advances, both experimental and theoretical, including databases; Microbiology, virology, and interactions with the host or environment; Microbiota mechanistic and functional studies; Nuclear organization; Post-translational modifications, proteomics; Processing and function of biologically important macromolecules and complexes; Molecular basis of disease; RNA processing, structure and functions of non-coding RNAs, transcription; Sorting, spatiotemporal organization, trafficking; Structural biology; Synthetic biology; Translation, protein folding, chaperones, protein degradation and quality control.
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