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园艺树木中复杂三萜生物合成途径解析的最新趋势。

Recent trends in the elucidation of complex triterpene biosynthetic pathways in horticultural trees.

作者信息

Dinday Sandeep

机构信息

Metabolic engineering and Synthetic Biology Laboratory, Department of Natural Products, National Institute of Pharmaceutical Education and Research, S.A.S Nagar 160062, Punjab, India.

出版信息

Hortic Res. 2024 Oct 8;12(1):uhae254. doi: 10.1093/hr/uhae254. eCollection 2025 Jan.

Abstract

Triterpene (C30 isoprene compounds) represents the most structurally diverse class of natural products and has been extensively exploited in the food, medicine, and industrial sectors. Decades of research on medicinal triterpene biosynthetic pathways have revealed their roles in stress tolerance and shaping microbiota. However, the biological function and mechanism of triterpenes are not fully identified. Even this scientific window narrows down for horticultural trees. The lack of knowledge and a scalable production system limits the discovery of triterpene pathways. Recent synthetic biology research revealed several important biosynthetic pathways that define their roles and address many societal sustainability challenges. Here, I review the chemical diversity and biosynthetic enzymes involved in triterpene biosynthesis of horticultural trees. This review also outlines the integrated Design-Build-Test-Learn (DBTL) pipelines for the discovery, characterization, and optimization of triterpene biosynthetic pathways. Further, these DBTL components share many fundamental and technical difficulties, highlighting opportunities for interdisciplinary collaboration between researchers worldwide. This advancement opens up unprecedented opportunities for the bioengineering of triterpene compounds toward development and scaleup processes.

摘要

三萜(C30异戊二烯化合物)是结构最为多样的一类天然产物,已在食品、医药和工业领域得到广泛应用。数十年来对药用三萜生物合成途径的研究揭示了它们在胁迫耐受性和塑造微生物群方面的作用。然而,三萜的生物学功能和机制尚未完全明确。即便对于园艺树木而言,这一科学领域也较为狭窄。知识的匮乏和可扩展的生产系统限制了三萜途径的发现。近期的合成生物学研究揭示了几条重要的生物合成途径,明确了它们的作用,并应对了许多社会可持续发展挑战。在此,我综述了园艺树木三萜生物合成中涉及的化学多样性和生物合成酶。本综述还概述了用于三萜生物合成途径发现、表征和优化的集成设计-构建-测试-学习(DBTL)流程。此外,这些DBTL组件存在许多共同的基本和技术难题,凸显了全球研究人员进行跨学科合作的机会。这一进展为三萜化合物的生物工程开发和扩大生产过程带来了前所未有的机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ef3/11718399/4fe507e09e2b/uhae254f1.jpg

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