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首页> 外文期刊>Food Biotechnology >Phenolic antioxidant biosynthesis in plants for functional food application: Integration of systems biology and biotechnological approaches [Review]
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Phenolic antioxidant biosynthesis in plants for functional food application: Integration of systems biology and biotechnological approaches [Review]

机译:功能性食品中植物中酚类抗氧化剂的生物合成:系统生物学和生物技术方法的整合[综述]

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摘要

We are applying a dynamic systems biology approach to the development of several phenolic phytochemicals in food-grade plants as ingredients for functional food applications. Phenolic antioxidant phytochemicals from food-grade plants will be an important part of a healthy diet in a global population that is projected to reach 9 billion in the next 50 years. Such phytochemicals are being targeted for designing conventional foods with added health benefits (functional foods). Such value-added foods are needed for dietary support to manage major oxidation-linked diseases, such as diabetes, cardiovascular disease, arthritis, cognition diseases and cancer. Plants produce phenolic metabolites as a part of growth, developmental and stress-adaptation response. These stress and developmental-modulated phenolic phytochemicals can be targeted for the design of functional foods. In order to design consistent food-grade phytochemical profiles for safety and clinical relevancy, novel tissue culture and bioprocessing technologies have been developed. The strategy for designing these phenolic phytochemicals is based on the model that phenolic metabolites in plants are efficiently produced through an alternative mode of metabolism that links proline synthesis to activity of the pentose-phosphate pathway. Using the proline-linked pentose-phosphate pathway model, techniques have been developed to isolate high phenolic clonal lines of food-grade plants from single heterozygous seeds. Further, using the same model, elicitation concepts and techniques have been applied to over-produce phenolic metabolites in seeds and sprouts. In both clonal and seed sprout systems, exogenous treatment of phenolic phytochemicals from a non-target species elicited endogenous stimulation of phenolic synthesis and, potentially, an antioxidant response. From these investigations, a hypothetical model has been proposed in which the proline-linked pentose-phosphate pathway is critical for modulating protective antioxidant response pathways in diverse biological systems, including humans. This model, when confirmed precisely, may provide a mechanism for understanding the mode of action of phenolic phytochemicals in modulating antioxidant pathways in relation to human health. An understanding of the interconnection of the proline-linked pentose-phosphate pathway and antioxidant response pathway can provide dietary and nutritional mechanisms as well as new strategies to manage oxidation-linked diseases through improvement of host physiological response. In this review we have focused on clonal herbs, fava bean sprouts and cranberry bioprocessing as 3 model systems for understanding biosynthesis of phenolic metabolites for functional food application.
机译:我们正在将动态系统生物学方法应用于食品级植物中几种酚类植物化学物质的开发,以此作为功能性食品应用的成分。食品级植物中的酚类抗氧化剂植物化学物质将成为健康饮食的重要组成部分,预计在未来50年内,全球人口将达到90亿。这类植物化学物质的目标是设计具有额外健康益处的传统食品(功能食品)。饮食需要这种增值食品来管理主要的氧化相关疾病,例如糖尿病,心血管疾病,关节炎,认知疾病和癌症。植物产生酚类代谢产物作为生长,发育和逆境适应反应的一部分。这些压力和发育调节酚类植物化学物质可用于功能食品的设计。为了设计用于安全性和临床相关性的一致的食品级植物化学特征,已经开发了新颖的组织培养和生物加工技术。设计这些酚类植物化学物质的策略基于这样的模型:通过将脯氨酸合成与戊糖-磷酸途径的活性联系起来的另一种代谢模式,可以有效地产生植物中的酚代谢物。使用脯氨酸连接的戊糖磷酸途径模型,已经开发了从单一杂合子中分离食品级植物的高酚类克隆系的技术。此外,使用相同的模型,启发概念和技术已应用于在种子和新芽中过量生产酚类代谢物。在克隆和种子发芽系统中,来自非目标物种的酚类植物化学物质的外源处理均会引起内源性刺激酚类合成,并可能产生抗氧化剂反应。通过这些研究,提出了一种假设模型,其中脯氨酸连接的戊糖-磷酸途径对于调节包括​​人类在内的多种生物系统中的保护性抗氧化反应途径至关重要。当精确地证实该模型时,可以提供一种机制来理解酚类植物化学物质调节与人类健康相关的抗氧化剂途径的作用方式。对脯氨酸连接的戊糖磷酸途径和抗氧化剂反应途径的相互联系的理解可以提供饮食和营养机制,以及通过改善宿主生理反应来管理氧化相关疾病的新策略。在这篇综述中,我们重点研究了无性系草药,蚕豆芽和蔓越莓的生物加工作为3个模型系统,以了解功能性食品应用中酚类代谢物的生物合成。

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