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传统的体外策略,用于可持续生产生物活性化合物,并操纵药用、芳香和观赏植物的代谢组学特征。

Traditional in vitro strategies for sustainable production of bioactive compounds and manipulation of metabolomic profile in medicinal, aromatic and ornamental plants.

机构信息

Field and Horticultural Crops Research Department, Kurdistan Agricultural and Natural Resources Research and Education Center, Agricultural Research, Education and Extension Organization (AREEO), Jam-e Jam Cross Way, P. O. Box 741, Sanandaj, Iran.

Department of Horticulture, Michigan State University, Plant and Soil Sciences Building, East Lansing, MI, 48824, USA.

出版信息

Planta. 2021 Oct 30;254(6):111. doi: 10.1007/s00425-021-03771-5.

Abstract

Precursor feeding, elicitation and culture medium parameters are traditional in vitro strategies to enhance bioactive compounds of medicinal, aromatic, and ornamental plants (MAOPs). Machine learning can help researchers find the best combination of these strategies to increase the secondary metabolites content of MAOPs. Many requirements for human life, from food, pharmaceuticals and cosmetics to clothes, fuel and building materials depend on plant-derived natural products. Essential oils, methanolic and ethanolic extracts of in vitro undifferentiated callus and organogenic cultures of medicinal, aromatic, and ornamental plants (MAOPs) contain bioactive compounds that have several applications for various industries, including food and pharmaceutical. In vitro culture systems provide opportunities to manipulate the metabolomic profile of MAOPs. Precursors feeding, elicitation and culture media optimization are the traditional strategies to enhance in vitro accumulation of favorable bioactive compounds. The stimulation of plant defense mechanisms through biotic and abiotic elicitors is a simple way to increase the production of secondary metabolites in different in vitro culture systems. Different elicitors have been applied to stimulate defense machinery and change the metabolomic profile of MAOPs in in vitro cultures. Plant growth regulators (PGRs), stress hormones, chitosan, microbial extracts and physical stresses are the most applied elicitors in this regard. Many other chemical tolerance-enhancer additives, such as melatonin and proline, have been applied along with stress response-inducing elicitors. The use of stress-inducing materials such as PEG and NaCl activates stress tolerance elicitors with the potential of increasing secondary metabolites content of MAOPs. The present study reviewed the state-of-the-art traditional in vitro strategies to manipulate bioactive compounds of MAOPs. The objective is to provide insights to researchers involved in in vitro production of plant-derived natural compounds. The present review provided a wide range of traditional strategies to increase the accumulation of valuable bioactive compounds of MAOPs in different in vitro systems. Traditional strategies are faster, simpler, and cost-effective than other biotechnology-based breeding methods such as genetic transformation, genome editing, metabolic pathways engineering, and synthetic biology. The integrate application of precursors and elicitors along with culture media optimization and the interpretation of their interactions through machine learning algorithms could provide an excellent opportunity for large-scale in vitro production of pharmaceutical bioactive compounds.

摘要

前体喂养、诱导和培养基参数是提高药用、芳香和观赏植物(MAOPs)生物活性化合物的传统体外策略。机器学习可以帮助研究人员找到这些策略的最佳组合,以增加 MAOPs 的次生代谢产物含量。许多人类生活的需求,从食物、药品和化妆品到衣服、燃料和建筑材料,都依赖于植物来源的天然产品。精油、药用、芳香和观赏植物(MAOPs)的体外未分化愈伤组织和器官发生培养物的甲醇和乙醇提取物中含有生物活性化合物,这些化合物在包括食品和制药在内的多个行业中有多种应用。体外培养系统为操纵 MAOPs 的代谢组学特征提供了机会。前体喂养、诱导和培养基优化是提高体外有利生物活性化合物积累的传统策略。通过生物和非生物诱导剂刺激植物防御机制是增加不同体外培养系统中次生代谢产物产量的一种简单方法。不同的诱导剂已被应用于刺激防御机制并改变 MAOPs 的代谢组学特征。植物生长调节剂(PGRs)、应激激素、壳聚糖、微生物提取物和物理胁迫是这方面最常用的诱导剂。许多其他化学耐受性增强剂添加剂,如褪黑素和脯氨酸,已与应激诱导诱导剂一起应用。使用聚乙二醇(PEG)和氯化钠等应激诱导材料激活应激耐受诱导剂,有可能增加 MAOPs 的次生代谢产物含量。本研究综述了操纵 MAOPs 生物活性化合物的传统体外策略。目的是为参与植物源天然化合物体外生产的研究人员提供见解。本综述提供了一系列增加不同体外系统中 MAOPs 有价值生物活性化合物积累的传统策略。与遗传转化、基因组编辑、代谢途径工程和合成生物学等其他基于生物技术的育种方法相比,传统策略更快、更简单、更具成本效益。通过机器学习算法解释前体和诱导剂的联合应用以及培养基的优化及其相互作用,可以为大规模的体外生产药物生物活性化合物提供极好的机会。

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