BAHD 和 SCP/SCPL 基因家族的系统进化和同源分析揭示了它们在植物特化代谢中的进化历史。

IF 5.4 2区 生物学 Q1 BIOLOGY Philosophical Transactions of the Royal Society B: Biological Sciences Pub Date : 2024-11-18 Epub Date: 2024-09-30 DOI:10.1098/rstb.2023.0349
Thomas Naake, John C D'Auria, Alisdair R Fernie, Federico Scossa
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引用次数: 0

摘要

植物化学多样性在很大程度上归功于一些酶,它们催化的反应涉及主要类别植物特殊代谢物核心结构的组装和随后的化学修饰。酰化反应就是其中之一。有鉴于此,为了研究 BAHD 和丝氨酸羧肽酶样(SCPL)酰基转移酶基因的深层进化历史,我们在对拟南芥、番茄(Solanum lycopersicum)和玉米(Zea mays)等 126 个物种的全基因组序列中的同源物进行大规模推断分析的基础上,组建了系统发生组同源物网络。因此,本研究将基因组位置研究与基因序列变化研究相结合。我们的分析表明,丝氨酸羧肽酶(SCP)/丝氨酸羧肽酶样(SCPL)基因的进化起源比 BAHD 基因更深,后者在向陆地过渡时随着维管系统的发展而大量扩增。此外,这两个基因家族在不同系统发育过程中显示出截然不同的拷贝数变异模式以及跨系统发育的同源网络成分差异。在揭示上述观察结果的过程中,我们的分析展示了现代系统发生组(同源)网络所提供的可能性,但也凸显了其目前的局限性,如系统发生学方法无法将真正的 SCPL 乙酰转移酶从标准的 SCP 肽水解酶中分离出来。
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Phylogenomic and synteny analysis of BAHD and SCP/SCPL gene families reveal their evolutionary histories in plant specialized metabolism.

Plant chemical diversity is largely owing to a number of enzymes which catalyse reactions involved in the assembly, and in the subsequent chemical modifications, of the core structures of major classes of plant specialized metabolites. One such reaction is acylation. With this in mind, to study the deep evolutionary history of BAHD and the serine-carboxypeptidase-like (SCPL) acyltransferase genes, we assembled phylogenomic synteny networks based on a large-scale inference analysis of orthologues across whole-genome sequences of 126 species spanning Stramenopiles and Archaeplastida, including Arabidopsis thaliana, tomato (Solanum lycopersicum) and maize (Zea mays). As such, this study combined the study of genomic location with changes in gene sequences. Our analyses revealed that serine-carboxypeptidase (SCP)/serine-carboxypeptidase-like (SCPL) genes had a deeper evolutionary origin than BAHD genes, which expanded massively on the transition to land and with the development of the vascular system. The two gene families additionally display quite distinct patterns of copy number variation across phylogenies as well as differences in cross-phylogenetic syntenic network components. In unlocking the above observations, our analyses demonstrate the possibilities afforded by modern phylogenomic (syntenic) networks, but also highlight their current limitations, as demonstrated by the inability of phylogenetic methods to separate authentic SCPL acyltransferases from standard SCP peptide hydrolases.This article is part of the theme issue 'The evolution of plant metabolism'.

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CiteScore
11.80
自引率
1.60%
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365
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