Sohn Soo-In, Pandian Subramani, Rakkammal Kasinathan, Largia Muthiah Joe Virgin, Thamilarasan Senthil Kumar, Balaji Sekaran, Zoclanclounon Yedomon Ange Bovys, Shilpha Jayabalan, Ramesh Manikandan
Department of Agricultural Biotechnology, National Institute of Agricultural Sciences, Rural Development Administration, Jeonju, South Korea.
Department of Biotechnology, Alagappa University, Karaikudi, Tamil Nadu, India.
Front Plant Sci. 2022 Aug 15;13:942789. doi: 10.3389/fpls.2022.942789. eCollection 2022.
Secondary metabolites are incontestably key specialized molecules with proven health-promoting effects on human beings. Naturally synthesized secondary metabolites are considered an important source of pharmaceuticals, food additives, cosmetics, flavors, etc., Therefore, enhancing the biosynthesis of these relevant metabolites by maintaining natural authenticity is getting more attention. The application of exogenous jasmonates (JAs) is well recognized for its ability to trigger plant growth and development. JAs have a large spectrum of action that covers seed germination, hypocotyl growth regulation, root elongation, petal expansion, and apical hook growth. This hormone is considered as one of the key regulators of the plant's growth and development when the plant is under biotic or abiotic stress. The JAs regulate signal transduction through cross-talking with other genes in plants and thereby deploy an appropriate metabolism in the normal or stressed conditions. It has also been found to be an effective chemical elicitor for the synthesis of naturally occurring secondary metabolites. This review discusses the significance of JAs in the growth and development of plants and the successful outcomes of jasmonate-driven elicitation of secondary metabolites including flavonoids, anthraquinones, anthocyanin, xanthonoid, and more from various plant species. However, as the enhancement of these metabolites is essentially measured cell culture or foliar spray, the large-scale production is significantly limited. Recent advancements in the plant cell culture technology lay the possibilities for the large-scale manufacturing of plant-derived secondary metabolites. With the insights about the genetic background of the metabolite biosynthetic pathway, synthetic biology also appears to be a potential avenue for accelerating their production. This review, therefore, also discussed the potential manoeuvres that can be deployed to synthesis plant secondary metabolites at the large-scale using plant cell, tissue, and organ cultures.
次生代谢产物无疑是对人类具有已证实的健康促进作用的关键特殊分子。天然合成的次生代谢产物被认为是药物、食品添加剂、化妆品、香料等的重要来源。因此,通过保持天然特性来增强这些相关代谢产物的生物合成越来越受到关注。外源茉莉酸(JAs)的应用因其触发植物生长和发育的能力而广为人知。JAs具有广泛的作用范围,涵盖种子萌发、下胚轴生长调节、根伸长、花瓣扩展和顶端弯钩生长。当植物受到生物或非生物胁迫时,这种激素被认为是植物生长和发育的关键调节因子之一。JAs通过与植物中的其他基因相互作用来调节信号转导,从而在正常或胁迫条件下进行适当的代谢。它也被发现是天然次生代谢产物合成的有效化学诱导剂。本综述讨论了JAs在植物生长和发育中的重要性,以及茉莉酸驱动诱导包括黄酮类、蒽醌类、花青素、呫吨酮类等多种植物次生代谢产物的成功成果。然而,由于这些代谢产物的增强基本上是通过细胞培养或叶面喷施来测定的,大规模生产受到显著限制。植物细胞培养技术的最新进展为大规模生产植物源次生代谢产物提供了可能性。随着对代谢产物生物合成途径遗传背景的深入了解,合成生物学似乎也是加速其生产的潜在途径。因此,本综述还讨论了可以利用植物细胞、组织和器官培养大规模合成植物次生代谢产物的潜在策略。