Joint Center for Single Cell Biology; Shanghai Collaborative Innovation Center of Agri-Seeds, School of Agriculture and Biology, Shanghai Jiao Tong University , Shanghai 200240, People's Republic of China.
Department of Biochemistry and Metabolism, John Innes Centre , Norwich NR4 7UH, UK.
Philos Trans R Soc Lond B Biol Sci. 2024 Nov 18;379(1914):20230359. doi: 10.1098/rstb.2023.0359. Epub 2024 Sep 30.
Plants are chemical engineers par excellence. Collectively they make a vast array of structurally diverse specialized metabolites. The raw materials for building new pathways (genes encoding biosynthetic enzymes) are commonly recruited directly or indirectly from primary metabolism. Little is known about how new metabolic pathways and networks evolve in plants, or what key nodes contribute to branches that lead to the biosynthesis of diverse chemicals. Here we review the molecular mechanisms underlying the generation of biosynthetic branchpoints. We also consider examples in which new metabolites are formed through the joining of precursor molecules arising from different biosynthetic routes, a scenario that greatly increases both the diversity and complexity of specialized metabolism. Given the emerging importance of metabolic gene clustering in helping to identify new enzymes and pathways, we further cover the significance of biosynthetic gene clusters in relation to metabolic networks and dedicated biosynthetic pathways. In conclusion, an improved understanding of the branchpoints between metabolic pathways will be key in order to be able to predict and illustrate the complex structure of metabolic networks and to better understand the plasticity of plant metabolism. This article is part of the theme issue 'The evolution of plant metabolism'.
植物是当之无愧的化学工程师。它们共同合成了大量结构多样的特殊代谢物。构建新途径(编码生物合成酶的基因)的原材料通常直接或间接地来自于初级代谢。人们对植物中新的代谢途径和网络如何进化,以及哪些关键节点有助于导致多种化学物质生物合成的分支知之甚少。在这里,我们回顾了生物合成分支点产生的分子机制。我们还考虑了通过来自不同生物合成途径的前体分子的结合来形成新代谢物的例子,这种情况极大地增加了特殊代谢物的多样性和复杂性。鉴于代谢基因聚类在帮助识别新酶和途径方面的重要性日益增加,我们进一步探讨了生物合成基因簇与代谢网络和专用生物合成途径的关系。总之,更好地理解代谢途径之间的分支点将是关键,以便能够预测和说明代谢网络的复杂结构,并更好地理解植物代谢的可塑性。本文是“植物代谢的进化”主题特刊的一部分。