The Degradation Mechanism of Toxic Atractyloside in Herbal Medicines by Decoction
Abstract
:1. Introduction
2. Results and Discussion
2.1. Quantitation of ATR in Herbs
2.2. Cytotoxicity of Herb Extracts and Effects of Decoction
2.3. Hydrolysis of ATR and Mass Spectral Interpretations
2.4. Degradation of ATR by Hydrothermal Processing
3. Experimental
3.1. Chemicals, Reagents and Apparatuses
3.2. Sample Preparation and Aqueous Infusion
3.3. MTT Assay
3.4. Stability of ATR during Decoction
3.5. Extraction and GC-MS Analysis
4. Conclusions
Acknowledgments
Conflicts of Interest
References
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Sample Availability: Samples of the Atractylode lancea, Atractylode macrocephala, Xanthii Fructus are available from the authors. |
Specimen | ATR ± s.d. (μg/g) a | Reference |
---|---|---|
Atractylode lancea (n = 3 | 8980 ± 148 | This study |
Atractylode macrocephala (n = 3) | 9230 ± 175 | This study |
Xanthii Fructus (n = 3) | 2570 ± 153 | This study |
Calliepis laureola | N.D. | [21] |
Atractylode gummifera | 0.12%–1.57% | [3] |
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Chen, L.-Y.; Hu, A.; Chang, C.-J. The Degradation Mechanism of Toxic Atractyloside in Herbal Medicines by Decoction. Molecules 2013, 18, 2018-2028. https://doi.org/10.3390/molecules18022018
Chen L-Y, Hu A, Chang C-J. The Degradation Mechanism of Toxic Atractyloside in Herbal Medicines by Decoction. Molecules. 2013; 18(2):2018-2028. https://doi.org/10.3390/molecules18022018
Chicago/Turabian StyleChen, Liang-Yu, Anren Hu, and Chih-Jui Chang. 2013. "The Degradation Mechanism of Toxic Atractyloside in Herbal Medicines by Decoction" Molecules 18, no. 2: 2018-2028. https://doi.org/10.3390/molecules18022018
APA StyleChen, L. -Y., Hu, A., & Chang, C. -J. (2013). The Degradation Mechanism of Toxic Atractyloside in Herbal Medicines by Decoction. Molecules, 18(2), 2018-2028. https://doi.org/10.3390/molecules18022018