Green and Efficient Extraction of Polysaccharide and Ginsenoside from American Ginseng (Panax quinquefolius L.) by Deep Eutectic Solvent Extraction and Aqueous Two-Phase System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Samples and Reagents
2.2. Preparation of DESs
2.3. Extraction Procedure
2.3.1. Deep Eutectic Solvent Extraction Procedure
2.3.2. Aqueous Two-Phase Extraction Process (DESs-EOPO)
2.3.3. Aqueous Two-Phase Extraction Process (EOPO-Salty Solution)
2.3.4. Dialysis
2.4. Conditions of HPLC Analysis
2.5. Determination of Polysaccharides
2.6. Antioxidant Activity of Polysaccharides In Vitro
2.7. Cell Culture and Cytotoxicity Assay
2.8. Statistical Analysis
2.9. Method Validation
2.9.1. Linearity
2.9.2. Precision
2.9.3. Accuracy
2.9.4. Sability (12 h)
3. Results and Discussion
3.1. Extraction and Separation of Polysaccharide form American Ginseng
3.1.1. Optimizing the Extraction Conditions of DES
- (1)
- The components of DESs have a significant influence on its physic-chemical properties, such as polarity, viscosity, and solubility. They directly affect the extract efficiency of the target compounds. Four kinds of DESs were synthesized and optimized. ChEtgly obtained the best extraction effects for polysaccharide content (Figure 2A); therefore, ChEtgly was chosen as the extraction solvent for the following experiments;
- (2)
- The water content in DESs ranged from 10% to 50% were optimized. As can be seen from Figure 2B, the extraction efficiency increased when the water content in ChEtgly increased from 10% to 20%. When the water content was higher than 20%, the extraction efficiency decreased. Thus, 20% water content in ChEtgly was selected for this study;
- (3)
- The solid to solvent ratio will affect the diffusion of solute into the solvent, thus, in order to maximize extraction efficiency and reduce solvent waste, we studied the effect of solid to solvent ratios (1:10, 1:15, 1:20, 1:25, and 1:30 g/mL). As can been seen from Figure 2C, the best extraction effects for polysaccharide content was obtained with a 1:20 solid to solvent ratio;
- (4)
- The effect of extraction temperatures between 40 and 80 °C was investigated. It can be observed from Figure 2D that the extraction yield increases with the increase in temperature, then slightly decreases above a temperature of 60 °C, and the extraction yield was the highest when the temperature was 60 °C. Thus, the extraction temperature selected was 60 °C;
- (5)
- The effects of ultrasonic time ranging from 20 to 60 min on the extraction yield were also investigated, Figure 2E. A 30 min extraction time was the best extraction effect for polysaccharide content to be obtained.
3.1.2. Optimizing the Extraction Conditions of Aqueous Two-Phase System
3.2. Quantitative Analysis of Ginsenosides in DES Extracts
3.2.1. Validation of the Analysis Method
- (1)
- Linearity: The working curves were drawn by plotting the peak areas value versus the concentrations of seven analytes in the spiked samples (Table 2);
- (2)
- Precision: The RSD of the peak areas of seven analytes were 0.78%, 0.56%, 0.65%, 1.01%, 1.22%, and 1.33%, respectively, all less than 3%;
- (3)
- Accuracy: The RSD of the peak areas of seven analytes were 0.82%, 0.61%, 0.65%, 1.35%, 1.30%, and 1.31%, respectively, all less than 3%;
- (4)
- Sability (12 h): The RSD of the peak areas of seven analytes were 1.35%, 1.21%, 0.79%, 0.88%, 1.25%, and 1.01%, respectively, all less than 3%.
3.2.2. Comparison of Extraction Efficiency with Conventional Extraction Methods
3.3. Antioxidant Activities of Ginseng Polysaccharides In Vitro
3.4. Cytotoxicity of Assay In Vitro
4. Conclusions and Discussion
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Hydrogen Bond Acceptor | Hydrogen Bond Donors | Name Abbreviation |
---|---|---|
Choline chloride | Ethylene glycol | ChEtgly |
Choline chloride | Glycerol | ChGly |
Choline chloride | Formic acid | ChFor |
Choline chloride | Lactic acid | ChLac |
Analytes | Regression Equation | Correlation Coefficient (r2) | Linear Range (mg·L−1) |
---|---|---|---|
Rg1 | Y = 3369.5X + 3206.4 | 0.9997 | 50~200 |
Re | Y = 2774.8X + 31,440 | 0.9983 | 200~800 |
Rb1 | Y = 2088.9X + 30,278 | 0.9994 | 500~2000 |
Rc | Y = 2350.8X − 8744.6 | 0.9978 | 125~500 |
Rb2 | Y = 2452.8X + 4026.8 | 0.9981 | 125~500 |
Rb3 | Y = 1972.8X + 6139.4 | 0.9997 | 125~500 |
Rd | Y = 1181.4X + 1207.6 | 0.9995 | 250~1000 |
Analytes | Conventional Method (mg/g) | DESs Extraction (mg/g) | p-Value |
---|---|---|---|
Rg1 | 1.34 ± 0.02 | 1.65 ± 0.02 | 4.54 × 10−5 |
Re | 11.32 ± 0.52 | 14.15 ± 0.13 | 7.94 × 10−4 |
Rb1 | 26.89 ± 0.42 | 30.26 ± 0.33 | 3.98 × 10−4 |
Rc | 1.84 ± 0.01 | 2.56 ± 0.02 | 6.19 × 10−7 |
Rb2 | 1.99 ± 0.02 | 3.58 ± 0.02 | 2.79 × 10−4 |
Rb3 | 4.57 ± 0.08 | 15.19 ± 0.09 | 1.10 × 10−8 |
Rd | 3.98 ± 0.07 | 4.20 ± 0.05 | 1.14 × 10−2 |
Total contents | 51.93 ± 1.02 | 71.59 ± 2.12 | 1.32 × 10−4 |
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Zhou, R.-R.; Huang, J.-H.; He, D.; Yi, Z.-Y.; Zhao, D.; Liu, Z.; Zhang, S.-H.; Huang, L.-Q. Green and Efficient Extraction of Polysaccharide and Ginsenoside from American Ginseng (Panax quinquefolius L.) by Deep Eutectic Solvent Extraction and Aqueous Two-Phase System. Molecules 2022, 27, 3132. https://doi.org/10.3390/molecules27103132
Zhou R-R, Huang J-H, He D, Yi Z-Y, Zhao D, Liu Z, Zhang S-H, Huang L-Q. Green and Efficient Extraction of Polysaccharide and Ginsenoside from American Ginseng (Panax quinquefolius L.) by Deep Eutectic Solvent Extraction and Aqueous Two-Phase System. Molecules. 2022; 27(10):3132. https://doi.org/10.3390/molecules27103132
Chicago/Turabian StyleZhou, Rong-Rong, Jian-Hua Huang, Dan He, Zi-Yang Yi, Di Zhao, Zhao Liu, Shui-Han Zhang, and Lu-Qi Huang. 2022. "Green and Efficient Extraction of Polysaccharide and Ginsenoside from American Ginseng (Panax quinquefolius L.) by Deep Eutectic Solvent Extraction and Aqueous Two-Phase System" Molecules 27, no. 10: 3132. https://doi.org/10.3390/molecules27103132
APA StyleZhou, R. -R., Huang, J. -H., He, D., Yi, Z. -Y., Zhao, D., Liu, Z., Zhang, S. -H., & Huang, L. -Q. (2022). Green and Efficient Extraction of Polysaccharide and Ginsenoside from American Ginseng (Panax quinquefolius L.) by Deep Eutectic Solvent Extraction and Aqueous Two-Phase System. Molecules, 27(10), 3132. https://doi.org/10.3390/molecules27103132