| Literature DB >> 22430118 |
Feng-Jian Yang1, Chun-Hui Ma, Lei Yang, Chun-Jian Zhao, Ying Zhang, Yuan-Gang Zu.
Abstract
In present study, the performance and separation characteristics of 21 macroporous resins for the enrichment and purification of deoxyschizandrin and γ-schizandrin, the two major lignans from Schisandra chinensis extracts, were evaluated. According to our results, HPD5000, which adsorbs by the molecular tiers model, was the best macroporous resin, offering higher adsorption and desorption capacities and higher adsorption speed for deoxyschizandrin and γ-schizandrin than other resins. Columns packed with HPD5000 resin were used to perform dynamic adsorption and desorption tests to optimize the technical parameters of the separation process. The results showed that the best adsorption time is 4 h, the rate of adsorption is 0.85 mL/min (4 BV/h) and the rate of desorption is 0.43 mL/min (2 BV/h). After elution with 90% ethanol, the purity of deoxy-schizandrin increased 12.62-fold from 0.37% to 4.67%, the purity of γ-schizandrin increased 15.8-fold from 0.65% to 10.27%, and the recovery rate was more than 80%.Entities:
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Year: 2012 PMID: 22430118 PMCID: PMC6268366 DOI: 10.3390/molecules17033510
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1HPLC chromatograms of sample solution of S. chinensis extracts (a) and desorption solution (b) from HPD5000. Inset: The molecular structures of deoxyschizandrin [DS] and γ-schizandrin [GS].
Physical properties and absorption characteristics of the test macroporous resins.
| Trade name | Polarity | Surface area (m2/g) | Average pore diameter (nm) | Particle size(mm) | Specific volume (dm3/g) | Moisture contents(%) | ||||
|---|---|---|---|---|---|---|---|---|---|---|
| HPD80 | Non-polar | 350–400 | 80–85 | 0.3–1.25 | 1.33-1.54 | 67.84 | 499.65 ± 16.45 | 443.43 ± 15.12 | 51.64 ± 1.77 | 84.52 ± 2.77 |
| HPD100 | Non-polar | 650–700 | 85–90 | 0.3–1.25 | 1.33–1.54 | 65.00 | 669.85 ± 22.34 | 790.26 ± 25.67 | 48.63 ± 1.66 | 43.63 ± 1.45 |
| HPD100A | Non-polar | 650–700 | 95–100 | 0.3–1.25 | 1.33–1.54 | 66.67 | 544.00 ± 19.01 | 718.96 ± 24.44 | 50.24 ± 1.67 | 87.09 ± 2.99 |
| HPD100B | Non-polar | 500–580 | 120–160 | 0.3–1.25 | 1.33–1.54 | 61.49 | 535.91 ± 18.23 | 515.43 ± 18.12 | 74.36 ± 2.55 | 93.96 ± 3.22 |
| HPD100C | Non-polar | 720–760 | 80–90 | 0.3–1.25 | 1.33–1.54 | 61.68 | 500.32 ± 16.94 | 552.55 ± 18.34 | 70.07 ± 2.39 | 93.37 ± 3.18 |
| HPD200A | Non-polar | 700–750 | 85–90 | 0.3–1.25 | 1.33–1.54 | 54.90 | 398.75 ± 13.34 | 649.62 ± 22.22 | 75.83 ± 2.61 | 10.56 ± 0.45 |
| HPD300 | Non-polar | 800–870 | 50–55 | 0.3–1.25 | 1.33–1.54 | 75.52 | 848.13 ± 27.33 | 809.76 ± 26.76 | 45.81 ± 1.55 | 64.96 ± 2.22 |
| HPD700 | Non-polar | 650–700 | 85–90 | 0.3–1.25 | 1.33–1.54 | 66.10 | 561.75 ± 19.11 | 891.18 ± 30.33 | 52.51 ± 1.89 | 71.23 ± 2.45 |
| HPD910 | Non-polar | 450–550 | 85–90 | 0.3–1.25 | 1.33–1.54 | 50.00 | 413.04 ± 14.02 | 610.84 ± 21.12 | 61.40 ± 2.11 | 93.11 ± 3.22 |
| HPD5000 | Non-polar | 550–600 | 100–110 | 0.3–1.25 | 1.33–1.54 | 73.28 | 762.61 ± 22.98 | 738.68 ± 25.25 | 93.36 ± 3.18 | 94.69 ± 3.22 |
| AB-8 | Weak-polar | 480–520 | 130–140 | 0.3–1.25 | 1.43–1.54 | 65.00 | 741.63 ± 26.02 | 672.28 ± 22.22 | 44.37 ± 1.55 | 61.44 ± 2.06 |
| D101 | Weak-polar | 400–600 | 100–120 | 0.3–1.25 | 1.43–1.54 | 66.47 | 702.16 ± 23.88 | 634.14 ± 21.55 | 46.03 ± 1.56 | 76.66 ± 2.75 |
| HPD722 | Weak-polar | 485–530 | 130–140 | 0.3–1.25 | 1.33–1.54 | 58.95 | 641.16 ± 22.92 | 705.83 ± 23.98 | 47.21 ± 1.66 | 82.77 ± 2.88 |
| HPD-D | Polar | 650–750 | 90–110 | 0.3–1.25 | 1.33–1.54 | 73.06 | 476.34 ± 16.33 | 568.21 ± 19.45 | 66.02 ± 2.22 | 88.07 ± 2.99 |
| HPD200L | Polar | 500–550 | 80–90 | 0.3–1.25 | 1.33–1.54 | 72.86 | 678.53 ± 23.09 | 607.93 ± 21.12 | 50.24 ± 1.73 | 90.82 ± 3.11 |
| HPD300L | Polar | 800–870 | 50–55 | 0.3–1.25 | 1.33–1.54 | 69.84 | 578.81 ± 29.43 | 935.08 ± 31.88 | 59.39 ± 2.14 | 84.72 ± 2.86 |
| HPD400 | Polar | 500–550 | 75–80 | 0.3–1.25 | 1.33–1.54 | 68.93 | 535.62 ± 19.33 | 602.80 ± 20.54 | 52.22 ± 1.74 | 89.27 ± 3.06 |
| HPD400A | Polar | 500–550 | 85–90 | 0.3–1.25 | 1.33–1.54 | 72.37 | 552.43 ± 19.34 | 474.55 ± 16.19 | 50.71 ± 1.72 | 82.35 ± 2.89 |
| HPD450 | Polar | 500–550 | 90–110 | 0.3–1.25 | 1.33–1.54 | 72.00 | 622.94 ± 22.09 | 684.47 ± 23.23 | 57.59 ± 1.93 | 80.89 ± 2.78 |
| HPD450A | Polar | 500–550 | 85–90 | 0.3–1.25 | 1.33–1.54 | 64.06 | 517.97 ± 18.03 | 599.50 ± 20.88 | 55.52 ± 1.87 | 82.46 ± 2.99 |
| HPD750 | Polar | 650–700 | 85–90 | 0.3–1.25 | 1.33–1.54 | 57.58 | 363.10 ± 13.22 | 493.03 ± 16.66 | 71.38 ± 2.44 | 89.55 ± 3.13 |
Figure 2(a) The adsorption kinetics curves; (b) The desorption kinetics curves.
Figure 3Adsorption isotherms of deoxyschizandrin (a) and γ-schizandrin (b) on HPD5000 resin at different temperatures.
Langmuir and Freundlich parameters of DS and GS on HPD5000 resin.
| Temperature (°C) | Langmuir equation | R2 | Freundlich equation | R2 |
|---|---|---|---|---|
| DS | ||||
| 20 | qe = 476.19Ce/(42.24 + Ce) | 0.9944 | qe = 14.22Ce0.77 | 0.9959 |
| 30 | qe = 434.78Ce/(60.96 + Ce) | 0.8803 | qe = 8.26Ce0.84 | 0.9800 |
| 40 | qe = 250.00Ce/(51.63 + Ce) | 0.8303 | qe = 5.92Ce0.81 | 0.9692 |
| 50 | qe = 106.38Ce/(23.03 + Ce) | 0.9539 | qe = 7.11Ce0.62 | 0.9877 |
| GS | ||||
| 20 | qe = 588.24Ce/(53.82 + Ce) | 0.9953 | qe = 14.86Ce0.76 | 0.9952 |
| 30 | qe = 500.00Ce/(73.60 + Ce) | 0.8849 | qe = 8.31Ce0.83 | 0.9770 |
| 40 | qe = 285.71Ce/(66.77 + Ce) | 0.9260 | qe = 5.76Ce0.79 | 0.9871 |
| 50 | qe = 188.68Ce/(83.62 + Ce) | 0.9691 | qe = 2.77Ce0.84 | 0.9891 |
Figure 4Dynamic leakage curves with different flow rates (a), dynamic desorption curves with different ethanol concentrations (b) and dynamic desorption curves with different flow rates (c).
Adsorption and desorption capacity of regenerated HPD5000 resin.
| Regenerated HPD5000 Resin | Adsorption capability of DS | The ratio of desorption of DS | Adsorption capability of GS | The ratio of desorption of GS |
|---|---|---|---|---|
| Initial | 100.00% | 100.00% | 100.00% | 100.00% |
| 1 time | 97.32% | 96.77% | 96.33% | 96.99% |
| 3 times | 94.00% | 93.41% | 92.87% | 92.55% |
| 5 times | 88.54% | 85.74% | 84.70% | 88.08% |
| 8 times | 82.44% | 83.83% | 78.18% | 86.27% |