Bioscience Evidence 2026, Vol.16, No.4, 202-220 http://bioscipublisher.com/index.php/be 217 Hou D., Liu F., Ren X., Shen Q., and Zhou S., 2021a, Protective mechanism of mung bean coat against hyperlipidemia in mice fed with a high-fat diet: Insight from hepatic transcriptome analysis, Food & Function, 12(24): 12434-12447. https://doi.org/10.1039/D1FO02455H Hou D., Tang J., Huan M., Liu F., Zhou S., and Shen Q., 2022, Alteration of fecal microbiome and metabolome by mung bean coat improves diet-induced non-alcoholic fatty liver disease in mice, Food Science and Human Wellness, 11(5): 1259-1272. https://doi.org/10.1016/j.fshw.2022.04.023 Hou D., Yousaf L., Xue Y., Hu J., Wu J., Hu X., Feng N., and Shen Q., 2019, Mung bean (Vigna radiata L.): Bioactive polyphenols, polysaccharides, peptides, and health benefits, Nutrients, 11(6): 1238. https://doi.org/10.3390/nu11061238 Hou D., Zhao Q., Chen B., Ren X., Yousaf L., and Shen Q., 2021b, Dietary supplementation with mung bean coat alleviates the disorders in serum glucose and lipid profile and modulates gut microbiota in high-fat diet and streptozotocin-induced prediabetic mice, Journal of Food Science, 86(9): 4183-4196. https://doi.org/10.1111/1750-3841.15866 Hou D., Zhao Q., Yousaf L., Chen B., Xue Y., and Shen Q., 2020a, A comparison between whole mung bean and decorticated mung bean: Beneficial effects on the regulation of serum glucose and lipid disorders and the gut microbiota in high-fat diet and streptozotocin-induced prediabetic mice, Food & Function, 11(6): 5525-5537. https://doi.org/10.1039/D0FO00379D Hou D., Zhao Q., Yousaf L., Khan J., Xue Y., and Shen Q., 2020b, Consumption of mung bean (Vigna radiata L.) attenuates obesity, ameliorates lipid metabolic disorders and modifies the gut microbiota composition in mice fed a high-fat diet, Journal of Functional Foods, 64: 103687. https://doi.org/10.1016/j.jff.2019.103687 Hou D., Zhao Q., Yousaf L., Xue Y., and Shen Q., 2020c, Whole mung bean (Vigna radiata L.) supplementation prevents high-fat diet-induced obesity and disorders in lipid profile and modulates gut microbiota in mice, European Journal of Nutrition, 59(8): 3617-3634. https://doi.org/10.1007/s00394-020-02196-2 Huang C.H., Chen J.Y., and Chiang M.T., 2024, Effects of mung bean water supplementation on modulating lipid and glucose metabolism in a diabetic rat model, Nutrients, 16(16): 2684. https://doi.org/10.3390/nu16162684 Huang P.H., Cheng Y.T., Chan Y.J., Lu W.C., and Li P.H., 2022, Effect of heat treatment on nutritional and chromatic properties of mung bean (Vigna radiata L.), Agronomy, 12(6): 1365. https://doi.org/10.3390/agronomy12061365 Idris F.M., Urga K., Admassu H., and Fentie E.G., 2026, Time-resolved effects of selected processing methods on the biochemical composition, antioxidant capacity, and techno-functional properties of mung bean flour, Applied Food Research, 6(1): 101784. https://doi.org/10.1016/j.afres.2026.101784 Kabré J.D.A.W., Dah-Nouvlessounon D., Hama-Ba F., Agonkoun A., Guinin F., Sina H., Kohonou A.N., Tchogou P., Senou M., Savadogo A., and Baba-Moussa L., 2022, Mung bean (Vigna radiata (L.) R. Wilczek) from Burkina Faso used as antidiabetic, antioxidant and antimicrobial agent, Plants, 11(24): 3556. https://doi.org/10.3390/plants11243556 Kabré J.D.A.W., Hama-Ba F., Sanoué M., and Savadogo A., 2025, Impact of traditional culinary processes on the nutritional quality of beng tigré, a mung bean variety grown in Burkina Faso, Journal of Ethnic Foods, 12(1): 9. https://doi.org/10.1186/s42779-025-00268-4 Kapravelou G., Martínez R., Perazzoli G., Sanchez Gonzalez C., Llopis J., Cantarero S., Goua M., Bermano G., Prados J., Melguizo C., Aranda P., López-Jurado M., and Porres J.M., 2020, Germination improves the polyphenolic profile and functional value of mung bean (Vigna radiata L.), Antioxidants, 9(8): 746. https://doi.org/10.3390/antiox9080746 Karami Z., Changsiripun C., Duangmal K., and Chotechuang N., 2025, Health benefits and challenges of mung bean bioactive compounds: A systematic review of in vivo evidence for functional food applications, Food Reviews International, 41(6): 1681-1708. https://doi.org/10.1080/87559129.2025.2452240 Kohno M., Motoyama T., Shigihara Y., Sakamoto M., and Sugano H., 2017, Improvement of glucose metabolism via mung bean protein consumption: A clinical trial of GLUCODIA™ isolated mung bean protein in Japan, Functional Foods in Health and Disease, 7(2): 115-134. https://doi.org/10.31989/ffhd.v7i2.320 Kohno M., Sugano H., Shigihara Y., Shiraishi Y., and Motoyama T., 2018, Improvement of glucose and lipid metabolism via mung bean protein consumption: Clinical trials of GLUCODIA™ isolated mung bean protein in the USA and Canada, Journal of Nutritional Science, 7: e2. https://doi.org/10.1017/jns.2017.68 Kong F., Li Y., Zhang Y., Zeng Q., and Guo X., 2022, Elucidation of the potential antioxidant compound and mechanism of mung bean using network pharmacology and in vitro anti-oxidative activity, Frontiers in Sustainable Food Systems, 6: 1000916. https://doi.org/10.3389/fsufs.2022.1000916 Lang S., Liu L., Li Z., Liu S., Liang J., Lu L., and Wang L., 2025, Untargeted metabolomics reveals phenolic compound dynamics during mung bean fermentation, Food Chemistry: X, 103189. https://doi.org/10.1016/j.fochx.2025.103189
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