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来自植原体的苹果酸酶的晶体结构揭示了苹果酸酶的最小结构决定因素。

The crystal structure of the malic enzyme from Candidatus Phytoplasma reveals the minimal structural determinants for a malic enzyme.

机构信息

CEFOBI, Suipacha 531, Rosario, S2000LRJ Santa Fe, Argentina.

Institute Pasteur, Mataojo 2020, Montevideo, Uruguay.

出版信息

Acta Crystallogr D Struct Biol. 2018 Apr 1;74(Pt 4):332-340. doi: 10.1107/S2059798318002759. Epub 2018 Apr 6.

DOI:10.1107/S2059798318002759
PMID:29652260
Abstract

Phytoplasmas are wall-less phytopathogenic bacteria that produce devastating effects in a wide variety of plants. Reductive evolution has shaped their genome, with the loss of many genes, limiting their metabolic capacities. Owing to the high concentration of C compounds in plants, and the presence of malic enzyme (ME) in all phytoplasma genomes so far sequenced, the oxidative decarboxylation of L-malate might represent an adaptation to generate energy. Aster yellows witches'-broom (Candidatus Phytoplasma) ME (AYWB-ME) is one of the smallest of all characterized MEs, yet retains full enzymatic activity. Here, the crystal structure of AYWB-ME is reported, revealing a unique fold that differs from those of `canonical' MEs. AYWB-ME is organized as a dimeric species formed by intertwining of the N-terminal domains of the protomers. As a consequence of such structural differences, key catalytic residues such as Tyr36 are positioned in the active site of each protomer but are provided by the other protomer of the dimer. A Tyr36Ala mutation abolishes the catalytic activity, indicating the key importance of this residue in the catalytic process but not in the dimeric assembly. Phylogenetic analyses suggest that larger MEs (large-subunit or chimeric MEs) might have evolved from this type of smaller scaffold by gaining small sequence cassettes or an entire functional domain. The Candidatus Phytoplasma AYWB-ME structure showcases a novel minimal structure design comprising a fully functional active site, making this enzyme an attractive starting point for rational genetic design.

摘要

植原体是无壁的植物病原细菌,它们会对多种植物造成严重的影响。还原进化塑造了它们的基因组,导致许多基因丢失,限制了它们的代谢能力。由于植物中 C 化合物的高浓度,以及迄今为止测序的所有植原体基因组中都存在苹果酸酶 (ME),L-苹果酸的氧化脱羧可能代表了一种产生能量的适应机制。黄杨斑驳类菌(Candidatus Phytoplasma)的 ME(AYWB-ME)是所有已鉴定的 ME 中最小的之一,但仍保留完整的酶活性。本文报道了 AYWB-ME 的晶体结构,揭示了一种独特的折叠方式,与“典型”ME 不同。AYWB-ME 组织为二聚体,由单体的 N 端结构域相互缠绕而成。由于这种结构差异,关键的催化残基,如 Tyr36,位于每个单体的活性部位,但由二聚体的另一个单体提供。Tyr36Ala 突变会使催化活性丧失,表明该残基在催化过程中至关重要,但在二聚体组装中并不重要。系统发育分析表明,较大的 ME(大亚基或嵌合 ME)可能是通过获得小的序列盒或整个功能域,从这种较小的支架进化而来的。AYWB-ME 的结构展示了一种新颖的最小结构设计,包含一个功能齐全的活性部位,使该酶成为合理遗传设计的有吸引力的起点。

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