Bifurcate evolution of quinone synthetases in basidiomycetes.

Q1 Agricultural and Biological Sciences Fungal Biology and Biotechnology Pub Date : 2023-07-03 DOI:10.1186/s40694-023-00162-1
Paula Sophie Seibold, Stefanie Lawrinowitz, Ihar Raztsou, Markus Gressler, Hans-Dieter Arndt, Pierre Stallforth, Dirk Hoffmeister
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Abstract

Background: The terphenylquinones represent an ecologically remarkable class of basidiomycete natural products as they serve as central precursors of pigments and compounds that impact on microbial consortia by modulating bacterial biofilms and motility. This study addressed the phylogenetic origin of the quinone synthetases that assemble the key terphenylquinones polyporic acid and atromentin.

Results: The activity of the Hapalopilus rutilans synthetases HapA1, HapA2 and of Psilocybe cubensis PpaA1 were reconstituted in Aspergilli. Liquid chromatography and mass spectrometry of the culture extracts identified all three enzymes as polyporic acid synthetases. PpaA1 is unique in that it features a C-terminal, yet catalytically inactive dioxygenase domain. Combined with bioinformatics to reconstruct the phylogeny, our results demonstrate that basidiomycete polyporic acid and atromentin synthetases evolved independently, although they share an identical catalytic mechanism and release structurally very closely related products. A targeted amino acid replacement in the substrate binding pocket of the adenylation domains resulted in bifunctional synthetases producing both polyporic acid and atromentin.

Conclusions: Our results imply that quinone synthetases evolved twice independently in basidiomycetes, depending on the aromatic α-keto acid substrate. Furthermore, key amino acid residues for substrate specificity were identified and changed which led to a relaxed substrate profile. Therefore, our work lays the foundation for future targeted enzyme engineering.

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基枝菌中醌合成酶的分叉进化。
背景:三联苯醌类化合物是基枝菌中具有生态学意义的一类天然产物,它们是色素和化合物的核心前体,通过调节细菌的生物膜和运动性对微生物联合体产生影响。本研究探讨了醌合成酶的系统发育起源,该酶组装了关键的三苯基醌类化合物多孔菌酸和阿托门汀:结果:在曲霉菌中重组了 Hapalopilus rutilans 合成酶 HapA1、HapA2 和 Psilocybe cubensis PpaA1 的活性。培养物提取物的液相色谱法和质谱法鉴定出这三种酶都是多孔菌酸合成酶。PpaA1 的独特之处在于它有一个 C-末端但无催化活性的二氧化酶结构域。结合生物信息学重建系统发育,我们的研究结果表明,基枝菌多孔菌酸合成酶和阿托菌素合成酶是独立进化的,尽管它们具有相同的催化机制,并释放出结构上非常接近的产物。在腺苷酸化结构域的底物结合袋中进行有针对性的氨基酸置换,可产生同时产生多孔菌酸和阿托菌素的双功能合成酶:我们的研究结果表明,醌合成酶在基枝菌中根据芳香族α-酮酸底物的不同独立进化了两次。此外,我们还发现了底物特异性的关键氨基酸残基,这些氨基酸残基的改变导致了底物特征的放宽。因此,我们的工作为未来有针对性的酶工程奠定了基础。
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来源期刊
Fungal Biology and Biotechnology
Fungal Biology and Biotechnology Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
10.20
自引率
0.00%
发文量
17
审稿时长
9 weeks
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