Recent insights on tea metabolites, their biosynthesis and chemo-preventing effects: A review.

Ramkumar Samynathan, Muthu Thiruvengadam, Shivraj Hariram Nile, Mohammad Ali Shariati, Maksim Rebezov, Raghvendra Kumar Mishra, Baskar Venkidasamy, Sureshkumar Periyasamy, Ill-Min Chung, Mirian Pateiro, José M Lorenzo

Journal: Critical reviews in food science and nutrition 2023;63(18):3130-3149

PMID: 34606382

Abstract

Tea manufactured from the cultivated shoots of (L.) O. Kuntze is the most commonly consumed nonalcoholic drink around the world. Tea is an agro-based, environmentally sustainable, labor-intensive, job-generating, and export-oriented industry in many countries. Tea includes phenolic compounds, flavonoids, alkaloids, vitamins, enzymes, crude fibers, protein, lipids, and carbohydrates, among other biochemical constituents. This review described the nature of tea metabolites, their biosynthesis and accumulation with response to various factors. The therapeutic application of various metabolites of tea against microbial diseases, cancer, neurological, and other metabolic disorders was also discussed in detail. The seasonal variation, cultivation practices and genetic variability influence tea metabolite synthesis. Tea biochemical constituents, especially polyphenols and its integral part catechin metabolites, are broadly focused on potential applicability for their action against various diseases. In addition to this, tea also contains bioactive flavonoids that possess health-beneficial effects. The catechin fractions, epigallocatechin 3-gallate and epicatechin 3-gallate, are the main components of tea that has strong antioxidant and medicinal properties. The synergistic function of natural tea metabolites with synthetic drugs provides effective protection against various diseases. Furthermore, the application of nanotechnologies enhanced bioavailability, enhancing the therapeutic potential of natural metabolites against numerous diseases and pathogens.

Address: R&D Division Alchem Diagnostics, Coimbatore, Tamil Nadu, India.; Department of Crop Science, College of Sanghuh Life Science, Konkuk University, Seoul, Republic of Korea.; Laboratory of Medicinal Plant Biotechnology, College of Pharmacy, Zhejiang Chinese Medical University, Hangzhou, Zhejiang, China.; Department of Technology of Food Products, K.G. Razumovsky Moscow State University of Technologies and Management (The First Cossack University), Moscow, Russian Federation.; Liaocheng University, Liaocheng, Shandong, China.; V. M. Gorbatov Federal Research Center for Food Systems of Russian Academy of Sciences, Moscow, Russian Federation.; Amity Institute of Biotechnology, Amity University Madhya Pradesh, Gwalior, Madhya Pradesh, India.; Department of Biotechnology, Sri Shakthi Institute of Engineering and Technology, Coimbatore, Tamil Nadu, India.; Department of Biotechnology, Bharathidasan University Campus (BIT Campus), Anna University, Tiruchirappalli, Tamil Nadu, India.; Centro Tecnológico de la Carne de Galicia, Ourense, Spain.; Área de Tecnología de los Alimentos, Facultad de Ciencias de Ourense, Universidad de Vigo, Ourense, Spain.

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