Medicinal Plant Research 2026, Vol.16, No.2, 154-168 http://hortherbpublisher.com/index.php/mpr 166 References Belwal T., Cravotto C., Prieto M.A., Venskutonis P.R., Daglia M., Devkota H.P., Baldi A., Ezzat S.M., Gómez-Gómez L., Salama M., Campone L., Rastrelli L., Echave J., Jafari S., and Cravotto G., 2022, Effects of different drying techniques on the quality and bioactive compounds of plant-based products: a critical review on current trends, Drying Technology, 40(8): 1539-1561. https://doi.org/10.1080/07373937.2022.2068028 Chua L.Y.W., Chua B.L., Figiel A., Chong C.H., Wojdyło A., Szumny A., and Lech K., 2019, Characterisation of the convective hot-air drying and vacuum microwave drying of cassia alata: antioxidant activity, essential oil volatile composition and quality studies, Molecules, 24(8): 1625. https://doi.org/10.3390/molecules24081625 Chen N., Fan J.Z., Li G., Guo X.X., Meng X., Wang Y.Q., Duan Y.Y., Ding W., Liu K., Liu Y., and Xing S.H., 2024, Comparative analysis of the chemical constituents of Chrysanthemum morifolium with different drying processes integrating LC/GC–MS-based, Non-Targeted Metabolomics, Metabolites, 14(9): 481. https://doi.org/10.3390/metabo14090481 Fan D.G., Liu Z.Z., Li Y.Y., Chen Y.H., and Zhang X.X., 2024, Effects of different drying methods on the chemical components and activities of Taihang chrysanthemum (Opisthopappus taihangensis), Food Chemistry, 466: 142262. https://doi.org/10.1016/j.foodchem.2024.142262 Gong J.Y., Chu B.Q., Gong L.G., Fang Z.X., Zhang X.X., Qiu S.P., Wang J.J., Xiang Y.L., Xiao G.N., Yuan H., and Zheng F.P., 2019, Comparison of phenolic compounds and the antioxidant activities of fifteen Chrysanthemum morifoliumramat cv. ‘hangbaiju’ in China, Antioxidants, 8(8): 325. https://doi.org/10.3390/antiox8080325 Guo X., Wang Y.Y., Bai R.B., Chen Y., Wang S.M., Wang H., Hua Y.T., Wang T., and Yang J., 2025, Rapid geographical origin identification and functional compound content prediction of Chrysanthemum (“Gongju”) using excitation-emission matrix fluorescence spectroscopy coupled with chemometrics, Food Chemistry, 492(1): 145415. https://doi.org/10.1016/j.foodchem.2025.145415 He J., Zhang C., Zhou L., and He Y., 2021, Simultaneous determination of five micro-components in Chrysanthemum morifolium (hangbaiju) using near-infrared hyperspectral imaging coupled with deep learning with wavelength selection, Infrared Physics & Technology, 116: 103802. https://doi.org/10.1016/j.infrared.2021.103802 Jing Y.F., Zhao H.G., and Yu S.J., 2024, Establish seedling quality classification standard for Chrysanthemum efficiently with help of deep clustering algorithm, arXiv, 2024: 1-12. https://doi.org/10.48550/arxiv.2409.08867 Julianti E., Nurminah M., and Siregar J.Y., 2026, Physicochemical characteristics and antioxidant activity of 11 chrysanthemum cultivars at different harvest stage, IOP Conference Series: Earth and Environmental Science, 1614(1): 012013. https://doi.org/10.1088/1755-1315/1614/1/012013 Liu C.F., Chen Y.J., Chen P.A., Kuo C.C., Chen K.H., Chen C.H., Su T.C., Chen I., and Chang Y.S., 2025, Impact of temperature on growth, photosynthetic efficiency, yield, and functional components of bud-leaves and flowers in edible chrysanthemum (Chrysanthemum morifoliumramat), Horticulturae, 11(5): 448. https://doi.org/10.3390/horticulturae11050448 Lu C.F., Yan X.Y., Zhang H.H., Zhong T.W., Gui A.J., Liu Y.C., Pan L.Y., and Shao Q.S., 2024, Integrated metabolomic and transcriptomic analysis reveals biosynthesis mechanism of flavone and caffeoylquinic acid in chrysanthemum, BMC Genomics, 25(1): 759. https://doi.org/10.1186/s12864-024-10676-6 Lu Q., Wang S.H., Xue S.J., Yang D., and Li L., 2020, Effects of drying methods on phenolic components in different parts of Chrysanthemum morifolium flower, Journal of Food Processing and Preservation, 44(12): e14982. https://doi.org/10.1111/jfpp.14982 Lu Y.F., Li D.X., Zhang R., Zhao L.L., Qiu Z., Du Y., Ji S., and Tang D.Q., 2022, Chemical antioxidant quality markers of Chrysanthemum morifoliumusing a spectrum-effect approach, Frontiers in Pharmacology, 13: 809482. https://doi.org/10.3389/fphar.2022.809482 Miao W., Wang Q., Wang K., Li Y., and Wei H., 2026, Quality characterization of flavonoids from flowers, stems and leaves of Chrysanthemum morifolium ramat. ‘chuju’, Emirates Journal of Food and Agriculture, 38: 1-10. https://doi.org/10.3897/ejfa.2026.168254 Ouyang H.Z., Fan Y.Q., Wei S.J., Chang Y.X., and He J., 2022, Study on the chemical profile of chrysanthemum (Chrysanthemum morifolium) and the evaluation of the similarities and differences between different cultivars, Chemistry & Biodiversity, 19(7): e202200252. https://doi.org/10.1002/cbdv.202200252 Pedrosa L.M., De Almeida Moreira B.R., and Martins C.C., 2024, Optimization of harvesting and drying techniques for quality seed production in specialty crops: a systematic review and meta-analysis, Agronomy, 14(8): 1705. https://doi.org/10.3390/agronomy14081705 Shi X.F., Chu J.Z., Zhang Y.F., Liu C.Q., and Yao X.Q., 2017, Nutritional and active ingredients of medicinal chrysanthemum flower heads affected by different drying methods, Industrial Crops and Products, 104: 45-51. https://doi.org/10.1016/j.indcrop.2017.04.021
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