Evolution of aromatic amino acid metabolism in plants: a key driving force behind plant chemical diversity in aromatic natural products.

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.2023.0352
Ryo Yokoyama
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Abstract

A diverse array of plant aromatic compounds contributes to the tremendous chemical diversity in the plant kingdom that cannot be seen in microbes or animals. Such chemodiversity of aromatic natural products has emerged, occasionally in a lineage-specific manner, to adopt to challenging environmental niches, as various aromatic specialized metabolites play indispensable roles in plant development and stress responses (e.g. lignin, phytohormones, pigments and defence compounds). These aromatic natural products are synthesized from aromatic amino acids (AAAs), l-tyrosine, l-phenylalanine and l-tryptophan. While amino acid metabolism is generally assumed to be conserved between animals, microbes and plants, recent phylogenomic, biochemical and metabolomic studies have revealed the diversity of the AAA metabolism that supports efficient carbon allocation to downstream biosynthetic pathways of AAA-derived metabolites in plants. This review showcases the intra- and inter-kingdom diversification and origin of committed enzymes involved in plant AAA biosynthesis and catabolism and their potential application as genetic tools for plant metabolic engineering. I also discuss evolutionary trends in the diversification of plant AAA metabolism that expands the chemical diversity of AAA-derived aromatic natural products in plants. This article is part of the theme issue 'The evolution of plant metabolism'.

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植物芳香族氨基酸代谢的进化:芳香族天然产品中植物化学多样性背后的关键驱动力。
植物芳香化合物种类繁多,造就了植物界巨大的化学多样性,这是微生物或动物所不具备的。由于各种芳香专化代谢物在植物生长发育和胁迫响应中发挥着不可或缺的作用(如木质素、植物激素、色素和防御化合物),因此出现了这种芳香天然产物的化学多样性,有时是以特定品系的方式出现,以适应具有挑战性的环境壁龛。这些芳香族天然产物是由芳香族氨基酸(AAA)、l-酪氨酸、l-苯丙氨酸和 l-色氨酸合成的。虽然氨基酸代谢通常被认为在动物、微生物和植物之间是保守的,但最近的系统发生组学、生物化学和代谢组学研究揭示了 AAA 代谢的多样性,它支持植物 AAA 衍生代谢物下游生物合成途径的有效碳分配。这篇综述展示了参与植物 AAA 生物合成和分解的承诺酶在植物界内和植物界间的多样性和起源,以及它们作为植物代谢工程遗传工具的潜在应用。我还讨论了植物 AAA 代谢多样化的进化趋势,这扩大了植物 AAA 衍生芳香天然产物的化学多样性。本文是主题 "植物代谢的进化 "的一部分。
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来源期刊
CiteScore
11.80
自引率
1.60%
发文量
365
审稿时长
3 months
期刊介绍: The journal publishes topics across the life sciences. As long as the core subject lies within the biological sciences, some issues may also include content crossing into other areas such as the physical sciences, social sciences, biophysics, policy, economics etc. Issues generally sit within four broad areas (although many issues sit across these areas): Organismal, environmental and evolutionary biology Neuroscience and cognition Cellular, molecular and developmental biology Health and disease.
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