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- Pandey KB, Rizvi SI. Plant polyphenols as dietary antioxidants in human health and disease. Oxid Med Cell Longev. 2009;2(5):270-278.
- Vilela A. Strategies to improve the potential functionality of fruit-based fermented beverages. Plants. 2021;10(11):2263.
- Batiha GE, et al. The pharmacological activity, biochemical properties, and pharmacokinetics of the major natural polyphenolic flavonoid: quercetin. Foods. 2020;9(3):374.
- Ozorowski M, et al. The effects of quercetin on vascular endothelium, inflammation, cardiovascular disease and lipid metabolism—a review. Nutrients. 2025;17(9):1579.
- Almatroodi SA, et al. Potential therapeutic targets of quercetin and its role in cancer therapy. Molecules. 2021;26(5):1315.
- Aghababaei F, Hadidi M. Recent advances in potential health benefits of quercetin. Pharmaceuticals (Basel). 2023;16(7):1020.
- Anand David AV, et al. Overviews of biological importance of quercetin: a bioactive flavonoid. Pharmacogn Rev. 2016;10(20):84-89.
- Dabeek WM, Marra MV. Dietary quercetin and kaempferol: bioavailability and potential cardiovascular-related bioactivity in humans. Nutrients. 2019;11(10):2288.
- Ferenczyova K, et al. Potential implications of quercetin and its derivatives in cardioprotection. Int J Mol Sci. 2020;21(5):1585.
- Zong L, et al. Recent advances of fermented fruits: a review on strains, fermentation strategies, and functional activities. Food Chem X. 2024; 22:101482.
- Lim SH, et al. Effects of fermentation on the bioactivity and composition of polyphenols in polyphenol-rich foods: a review. Molecules. 2023;28(17):6243.
- Xia EQ, et al. Biological activities of polyphenols from grapes. Int J Mol Sci. 2010;11(2):622-646.
- Koh WY, et al. Fermentation of fruit by-products as a tool for nutritional and environmental sustainability. Nutrients. 2025;17(9):1537.
- Gomez-Caravaca AM, et al. Phenolic compounds profile of Manilkara zapota fruit. J Agric Food Chem. 2013;61(16):3786-3793.
- Siddiqui AA, et al. Isolation of compounds from various parts of Manilkara zapota. J Asian Nat Prod Res. 2010;12(4):307-311.
- Kalra S, Bhardwaj R. A review on Manilkara zapota (Sapodilla). Int J Pharm Clin Res. 2016;8(7):584-586.
- Khoo HE, et al. Anthocyanidins and anthocyanins: colored pigments as food, pharmaceutical ingredients, and the potential health benefits. Food Nutr Res. 2017;61(1):1361779.
- Stintzing FC, Carle R. Functional properties of anthocyanins and betalains in plants, food, and in human nutrition. Trends Food Sci Technol. 2004;15(1):19-38.
- Gattuso G, et al. Flavonoid composition of citrus juices. Molecules. 2007;12(8):1641-1673.
- Nogata Y, et al. Flavonoid composition of fruit tissues of citrus species. Biosci Biotechnol Biochem. 2006;70(1):178-192.
- Manthey JA, et al. Biological properties of citrus flavonoids pertaining to cancer and inflammation. Curr Med Chem. 2001;8(2):135-153.
- Mizzi L, et al. HPLC analysis of phenolic compounds and flavonoids with overlapping peaks. Food Technol Biotechnol. 2020;58(1):12-19.
- Pereira V, et al. HPLC-DAD methodology for the quantification of organic acids, furans and polyphenols by direct injection of wine samples. J Sep Sci. 2010;33(9):1204-1215.
- Careri M, et al. Direct HPLC analysis of quercetin and trans-resveratrol in red wine, grape, and winemaking by-products. J Agric Food Chem. 2004;52(25):7378-7384.
- Pimentel-Moral S, et al. Chromatographic methods for quercetin quantification from natural sources: systematic review 2018–2022. Molecules. 2023;28(23):7714.
- Miller GL. Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal Chem. 1959;31(3):426-428.
- Pilone GJ. Determination of ethanol in wine by titrimetric and spectrophotometric dichromate method. J Assoc Off Anal Chem. 1985;68(2):188-190.
- Zhang P, et al. A high throughput method for total alcohol determination in fermentation broths. BMC Biotechnol. 2019;19(1):34.
- Blois MS. Antioxidant determinations by the use of a stable free radical. Nature. 1958;181(4617):1199-1200.
- Brand-Williams W, et al. Use of a free radical method to evaluate antioxidant activity. LWT Food Sci Technol. 1995;28(1):25-30.
- Shen J, et al. Co-fermentation of navel orange juice to improve phenolic content and aroma. Front Microbiol. 2024;15:1342847.
- Minh TN, Trung NQ. Influences of fermentation conditions on the chemical composition of red dragon fruit (Hylocereus undatus) wine. Beverages. 2024;10(3):61.
- Nguyen TH, et al. Characterization of red dragon fruit wine fermented with a newly identified yeast strain Saccharomyces cerevisiae Food Sci Nutr. 2025;13(3):e70009.
- Prieto MA, et al. Impacts of peel inclusion and fermentation temperature on the bioactive compounds, antioxidant activity, and sensory properties of dragon fruit wines. Food Sci Biotechnol. 2021;30(8):1013-1024.
- Sadeer NB, et al. The versatility of antioxidant assays in food science and safety. Antioxidants (Basel). 2020;9(8):709
- Xu G, et al. Juice components and antioxidant capacity of citrus varieties cultivated in China. Food Chem. 2008;106(2):545-551.
- Ross JA, Kasum CM. Dietary flavonoids: bioavailability, metabolic effects, and safety. Annu Rev Nutr. 2002;22(1):19-34.
- Castillo-Munoz N, et al. Flavonol profiles of Vitis vinifera red grapes and their single-cultivar wines. J Agric Food Chem. 2007;55(3):992-1002.
- Corder R, et al. Oenology: red wine procyanidins and vascular health. Nature. 2006;444(7119):566.