Wang Lijun, Li Chaofeng, Luo Keming
School of Life Science and Engineering, Southwest University of Science and Technology, Mianyang, China.
Maize Research Institute, Southwest University, Chongqing, China.
Front Plant Sci. 2024 Jun 25;15:1384091. doi: 10.3389/fpls.2024.1384091. eCollection 2024.
Isoflavonoids, the major secondary metabolites within the flavonoid biosynthetic pathway, play important roles in plant defense and exhibit free radical scavenging properties in mammals. Recent advancements in understanding the synthesis, transport, and regulation of isoflavonoids have identified their biosynthetic pathways as promising targets for metabolic engineering, offering potential benefits such as enhanced plant resistance, improved biomass, and restoration of soil fertility. This review provides an overview of recent breakthroughs in isoflavonoid biosynthesis, encompassing key enzymes in the biosynthetic pathway, transporters influencing their subcellular localization, molecular mechanisms regulating the metabolic pathway (including transcriptional and post-transcriptional regulation, as well as epigenetic modifications). Metabolic engineering strategies aimed at boosting isoflavonoid content in both leguminous and non-leguminous plants. Additionally, we discuss emerging technologies and resources for precise isoflavonoid regulation. This comprehensive review primarily focuses on model plants and crops, offering insights for more effective and sustainable metabolic engineering approaches to enhance nutritional quality and stress tolerance.
异黄酮是类黄酮生物合成途径中的主要次生代谢产物,在植物防御中发挥重要作用,并在哺乳动物中表现出自由基清除特性。在理解异黄酮的合成、运输和调控方面的最新进展已将其生物合成途径确定为代谢工程的有前景目标,具有增强植物抗性、提高生物量和恢复土壤肥力等潜在益处。本综述概述了异黄酮生物合成的最新突破,包括生物合成途径中的关键酶、影响其亚细胞定位的转运蛋白、调节代谢途径的分子机制(包括转录和转录后调控以及表观遗传修饰)。旨在提高豆科和非豆科植物中异黄酮含量的代谢工程策略。此外,我们讨论了用于精确调控异黄酮的新兴技术和资源。这篇全面的综述主要聚焦于模式植物和作物,为更有效和可持续的代谢工程方法提供见解,以提高营养品质和胁迫耐受性。