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DOI: 10.1055/a-2720-9103
Impact of Different Drying Methods on Magnolia officinalis Leaves
Authors
This study was supported by the Scientific and Technological Innovation Project of the China Academy of Chinese Medical Sciences (Grant Nos. CI2023E002, CI2021A04511, and CI2023E001TS) and the National Natural Science Foundation of China (Grant No. 82173964).
Abstract
Different drying techniques can affect the quality characteristics of Magnolia officinalis leaves (MOLs), including their chemical composition, color, and biological activity. This study comprehensively evaluated five drying methods: vacuum drying (VD), hot-air drying (HAD), freeze drying (FD), sun drying (SD), and shade drying (SHD). The non-volatile and volatile constituents of MOLs were analyzed by high-performance liquid chromatography (HPLC) and gas chromatography–mass spectrometry (GC-MS), respectively. Objective color parameters were measured using an electronic eye, and the antioxidant activity was evaluated by the DPPH (1,1-diphenyl-2-picrylhydrazyl) radical scavenging assay. Additionally, the moisture content and the alcohol-soluble extract content were determined. Results indicated that HAD had the least impact on the color, chemical composition, and antioxidant activity of MOLs, thereby demonstrating its superiority over the other four drying methods.
Keywords
Magnoliaceae - Magnolia officinalis leaves - drying method - chemical composition - antioxidant activity colorPublication History
Received: 19 May 2025
Accepted after revision: 02 October 2025
Article published online:
04 November 2025
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References
- 1 China Medical Science Press. Pharmacopoeia of the Peopleʼs Republic of China. Beijing, China: Chinese Pharmacopoeia commission; 2020
- 2 Hang GY, Lin LJ, Zhang MX, He YX, Yang LX, Li L, Yang B. Discrimination of genuine and non‐genuine Magnolia officinalis leaves based on multi-technique data fusion of ultra‐high performance liquid chromatography-quadrupole time-of-flight tandem mass spectrometry, gas chromatography-mass spectrometry, and chemometrics. Sep Sci plus 2023; 6: 2200074
- 3 Wu JY, Wu JG, Wu JZ, Wu YB. Simultaneous determination of seven components in Magnolia officinalis leaves from different habitats by HPLC. Strait Med 2018; 30: 74-76
- 4 Yi J, Wu JG, Wu JY, Wu YB. Quality evaluation of the leaves of Magnolia officinalis var. biloba using high-performance liquid chromatography fingerprint analysis of phenolic compounds. J Sep Sci 2016; 39: 784-792
- 5 Li XC. Study on chemical constituents and antibacterial activity of volatile oil from Magnolia officinalis leaves. Food Sci Technol 2013; 38: 271-275
- 6 Kang ZY, Li YS, Wu G, Huang JL, Chen Y, Zhao ZY, Ma L. Study on total phenol content and in vitro antioxidant activity of different polar solvent extracts from Magnolia officinalis leaves. Food Res Dev 2019; 40: 73-79
- 7 Tian Q, Zhang MN, Zhang L, Xu R, Zhang Y, Ma L. Comparative analysis of antioxidant activity of different solvent extracts from Magnolia officinalis leaves. Food Res Dev 2018; 39: 37-42
- 8 Deng F, Zhang FQ, Wang Y, Lei Y, Liu CF, Nai PH. Study on ultrasonic extraction and antioxidant activity of polysaccharides from Magnolia officinalis leaves. Food Sci Technol 2011; 36: 173-175
- 9 Yang ZY, Wei YF, Ma XX, Hai QS. Study on the effect and mechanism of afzelin on isolated rabbit aortic rings. Tradit Chin Drug Res 2013; 24: 341-344
- 10 Yang ZY, Wei YF, Zhou ZH, Ma XY. Study on chemical constituents of vasoactive parts in Magnolia officinalis leaves. Chin Tradit Herb Drugs 2013; 44: 260-264
- 11 Yang ZY, Wei YF, Hai QS, Ma XY. Effect of quercetin on isolated rabbit aortic rings and its mechanism. Tradit Herb Drug 2013; 24: 90-92
- 12 Yang ZY, Wei YF, Hai QS, Chen C. Study on the effect of Magnolia officinalis leaves on the tension of isolated aortic rings in rabbits and its mechanism. Lishizhen Med Mater Med Res 2012; 23: 956-958
- 13 Yang ZY, Wei YF, Zhou ZH, Long F. Study on the chemical constituents with vasodilatory effect in Magnolia officinalis leaves. Nat Prod Res Dev 2012; 24: 298-302
- 14 Xue ZZ, Zhang RX, Yang B. Research progress on geoherbalism of Magnolia officinalis . China J Chin Mater Med 2019; 44: 3601-3607
- 15 Huang GY. Comparative study on the quality of Chuanpo leaves and Wenpo leaves [Dissertation]. Xihua university; 2021: 1-2
- 16 Zheng YP, Fan YQ, Qin KM, Xu H. Effects of different drying methods on the contents of four active components in Eucommia ulmoides leaves. China Pharm 2017; 28: 3973-3976
- 17 Luo S, He ZY, Yao J, Zhou K, Li W, Liu J, Xie BJ. Effects of different drying methods on the effective components of Ginkgo biloba leaves. West China J Pharm Sci 2014; 29: 678-680
- 18 Dong JY, Liu ML, Ren B, Zhang M. Analysis of volatile oil and polysaccharide content in Magnolia officinalis from different producing areas in Sichuan. Pharm Clin Chin Mater Med 2017; 8: 22-26 + 52
- 19 Dang ZH. Study on the determination of trace elements in different parts of Magnolia officinalis . Biotic Resour 2010; 32: 51-54
- 20 Li GZ, Li GF. Determination of metal elements in Magnolia officinalis leaves. J Anhui Agric Sci 2011; 39: 20400-20401
- 21 He JH, Li CX, Liu CF. Determination of trace elements in Magnolia officinalis leaves. Stud Trace Elem Health 2013; 30: 19-20
- 22 Cheng QL, Liu SZ, Zhan SQ, Fan GJ, Liu BS, Gao F, Hao ZL. Four key aroma components of Wuyi rock tea were identified based on HS-SPME-GC-MS and OAV. Mod Food Sci Technol 2023; 44: 296-303
- 23 Xie HX, Hu ZC, Wang HO, Chen SJ, Fu QQ. Effect of vacuum freeze-drying on the retention of volatile flavor compounds in lemon. Trans Chin Soc Agric Eng 2018; 34: 282-290
- 24 Vu VT, Xu XJ, Chen K, Nguyen MT, Nguyen BN, Pham GN, Kong LY, Luo JG. New oligomeric neolignans from the leaves of Magnolia officinalis var. biloba. Chin J Nat Med 2021; 19: 491-499
- 25 Ai XH, Yao HZ, Yang FY. Determination of magnolol and honokiol in Magnolia officinalis leaves by HPLC. Jiangxi Chem Ind 2009; 93: 74-75
- 26 Liu CF. Determination of magnolol in leaves of Magnolia officinalis by reversed-phase high performance liquid chromatography. J Jiangsu Agric Sci 2015; 43: 311-313
- 27 Yao MG, Chen LX, Dai Y, Liu WG, Xiang ZY. Comparison of phenolic constituents between Magnolia officinalis bark and Magnolia officinalis leaves. Chin Tradit Herb Drugs 1991; 22: 351-352
- 28 Li HT, Hang NT, Wang RY. The contents of magnolol and honokiol in Magnolia officinalis leaves from different producing areas were investigated by thin layer scanning method. Lishizhen Med Mater Med Res 2004; 3: 141-142
- 29 Lan XM, Lin LJ, Yang LX, Wang YH, Ke XM, Yang RP, Li H, Yang B. Comprehensive quality evaluation of Magnolia officinalis leaves based on wavelength fusion fingerprint, content determination, and antioxidant activity analysis. Sci Tradit Chin Med 2024; 2: 48-56
- 30 Liu CF, Liu X, Li R. Determination of trace elements in Magnolia officinalis . Feed and animal husbandry 2014; 12: 32-35
- 31 Deng F, Zhang FQ, Zhang JR, Ma S, Tang GZ, Liu CF, Nai PH. Scavenging hydroxyl free radical effect of Magnolia officinalis leaf polysaccharide in the same month in vitro. J Anhui Agric Sci 2011; 39: 22303-22304
