| Literature DB >> 32953804 |
Zhihong Wang1,2, Sheng Peng3, Mijun Peng1, Zhigang She2, Qiuling Yang1, Tao Huang1.
Abstract
BACKGROUND: Eucommia ulmoides Oliv. (EUO) was a traditional Chinese herb, its leaves were abundant in China, and polyphenol compounds were considered to be an important active ingredient in Eucommia ulmoides Oliv. leaves (EUOL). However, previous research mainly focused on compound identification and extraction process, there were few reported on the efficient enrichment process and biological activity evaluation of polyphenols in EUOL.Entities:
Keywords: Eucommia ulmoides Oliv. leaves (EUOL); adsorption; desorption; inhibitory effect; marcoporous resin; polyphenol
Year: 2020 PMID: 32953804 PMCID: PMC7475476 DOI: 10.21037/atm-20-5468
Source DB: PubMed Journal: Ann Transl Med ISSN: 2305-5839
Physical characteristics of the selected macroporous resins
| Resins | Polarity | Average pore diameter (nm) | Particle size (mm) | Specific surface area (m2/g) | Pore volume (mL/g) |
|---|---|---|---|---|---|
| HPD-100 | Nonpolar | 8.5–9.0 | 0.3–1.25 | 650–700 | 1.35–1.65 |
| HPD-300 | Nonpolar | 5.0–5.5 | 0.3–1.2 | 800–870 | – |
| HPD-600 | Polar | 8.0 | 0.3–1.2 | 550–600 | – |
| D-3520 | Nonpolar | 8.5–9.0 | 0.3–1.25 | 480–520 | 2.10–2.15 |
| X-5 | Nonpolar | 29–30 | 0.3–1.25 | 500–600 | 1.20–1.24 |
| D-140 | Nonpolar | 9.5 | – | 500–600 | 1.00–1.50 |
| NKA-9 | Polar | 15.5–16.5 | 0.315–1.25 | 170–250 | 1.00–1.04 |
| NKA-II | Polar | 14–16 | 0.3–1.25 | 950–1,250 | 0.62–0.66 |
| D-101 | Nonpolar | 9–11 | 0.3–1.25 | 550–600 | 1.50–1.70 |
| AB-8 | Weak polar | 13–14 | 0.3–1.25 | 480–520 | 0.73–0.77 |
| S-8 | Polar | 28–30 | 0.3–1.25 | 100–120 | 0.78–0.82 |
| Polyamide | Polar | – | – | 5–10 | – |
Figure 1Adsorption capacity and adsorption ratio of different resins.
Figure 2Desorption ratio of different resins with varying ethanol concentrations.
Figure 3Adsorption and desorption properties of different resins. (A) Adsorption curves, (B) desorption curves, (C) internal particle diffusion.
Equation of pseudo-first-order, pseudo-second-order and particle diffusion kinetics model and dynamic parameters for different resins
| Resins | Dynamic equation | Dynamic parameters | Correlation of coefficient | |
|---|---|---|---|---|
| Qe (mg/g) | k | |||
| HPD-300 | Pseudo-first-order | 21.11556 | 0.00723 | 0.82780 |
| Pseudo-second-order | 31.7965 | 0.003831 | 0.97256 | |
| Particle diffusion | 12.04512 | 1.71734 | 0.86634 | |
| HPD-600 | Pseudo-first-order | 17.89623 | 0.00592 | 0.70354 |
| Pseudo-second-order | 29.15452 | 0.003483 | 0.99938 | |
| Particle diffusion | 11.49744 | 1.40214 | 0.76062 | |
| D-3250 | Pseudo-first-order | 14.05756 | 0.00812 | 0.76261 |
| Pseudo-second-order | 29.57705 | 0.004931 | 0.99533 | |
| Particle diffusion | 13.85397 | 1.32204 | 0.77845 | |
| X-5 | Pseudo-first-order | 21.00037 | 0.00555 | 0.79271 |
| Pseudo-second-order | 24.9066 | 0.002951 | 0.99591 | |
| Particle diffusion | 6.75386 | 1.46058 | 0.85803 | |
| D-140 | Pseudo-first-order | 16.13983 | 0.02029 | 0.99121 |
| Pseudo-second-order | 27.2257 | 0.003908 | 0.99331 | |
| Particle diffusion | 9.73643 | 1.47167 | 0.87328 | |
| NKA-9 | Pseudo-first-order | 19.77048 | 0.00726 | 0.78331 |
| Pseudo-second-order | 33.89831 | 0.003506 | 0.99533 | |
| Particle diffusion | 13.75996 | 1.68062 | 0.81578 | |
| D-101 | Pseudo-first-order | 17.69019 | 0.00693 | 0.84031 |
| Pseudo-second-order | 24.78929 | 0.003533 | 0.99624 | |
| Particle diffusion | 7.7738 | 1.39645 | 0.86379 | |
| AB-8 | Pseudo-first-order | 25.24025 | 0.00694 | 0.83823 |
| Pseudo-second-order | 34.47087 | 0.001122 | 0.99713 | |
| Particle diffusion | 5.56654 | 1.98757 | 0.87013 | |
The parameters of Langmuir and Freundlich models for three resins
| Resins | T (°C) | Langmuir | Freundlich | |||||
|---|---|---|---|---|---|---|---|---|
| Qm (mg/g) | KL | R2 | n | KF | R2 | |||
| HPD-300 | 25 | 111.9821 | 0.5207 | 0.9799 | 1.1945 | 42.4268 | 0.9946 | |
| 35 | 79.6178 | 0.8710 | 0.9815 | 1.2718 | 36.9612 | 0.9812 | ||
| 45 | 35.7654 | 2.8271 | 0.9140 | 1.5488 | 31.1867 | 0.9258 | ||
| HPD-600 | 25 | 77.5795 | 0.7434 | 0.9952 | 1.2850 | 33.6977 | 0.9934 | |
| 35 | 69.1563 | 0.6757 | 0.9982 | 1.3578 | 31.2347 | 0.9989 | ||
| 45 | 48.1928 | 1.3233 | 0.9793 | 1.4074 | 29.0126 | 0.9970 | ||
| NKA-9 | 25 | 406.5041 | 0.0935 | 0.9997 | 1.0589 | 34.2744 | 0.9987 | |
| 35 | 72.3066 | 0.6605 | 0.9833 | 1.2108 | 30.2895 | 0.9947 | ||
| 45 | 58.3090 | 0.9166 | 0.9949 | 1.2955 | 29.1143 | 0.9997 | ||
Thermodynamic parameters of three resins on the adsorption process
| Resins | T (K) | ΔS [J/(mol K)] | ΔH (kJ/mol) | ΔG (kJ/mol) |
|---|---|---|---|---|
| HPD-300 | 298 | −0.4756 | −3.8148 | −3.6731 |
| 308 | −3.6683 | |||
| 318 | −3.6636 | |||
| HPD-600 | 298 | −0.4398 | −3.6848 | −3.5538 |
| 308 | −3.5494 | |||
| 318 | −3.5450 | |||
| NKA-9 | 298 | −0.9220 | −3.7061 | −3.4314 |
| 308 | −3.4222 | |||
| 318 | −3.4129 |
Total polyphenol content and enzyme inhibitory activity of the fraction eluted from column packed with HPD-300 resin
| Ethanol concentration | Content of polyphenol (mg/g) | IC50 (mg/mL) | |
|---|---|---|---|
| α-Amylase inhibition | α-Glucosidase inhibition | ||
| Water | 8.6451±0.0193 | 10.27±0.3385 | 11.49±0.1992 |
| 20% ethanol | 60.7134±1.2209 | 6.71±0.1361 | 5.98±0.1874 |
| 40% ethanol | 1,084.0614±2.1384 | 2.05±0.0287 | 1.93±0.2103 |
| 60% ethanol | 1,680.3304±2.0861 | 1.37±0.0963 | 1.15±0.1010 |
| 80% ethanol | 1,004.3971±0.3390 | 3.54±0.2984 | 3.09±0.0090 |
| 100% ethanol | 32.5891±1.0296 | 5.31±0.2827 | 5.17±0.1123 |
| Crude extract | 152.4123±0.5989 | 8.44±0.1898 | 8.21±0.0381 |
| Acarbose | – | 0.136±0.0019 | 0.098±0.002 |
Figure 4HPLC chromatograms of reference materials (A) and samples (B). a, aucubin; b, geniposide; c, chlorogenic acid; d, geniposide; e, pinoresinol diglucoside; f, genipin; g, rutin; h, quercetin; i, kaempferol. HPLC, high-phase liquid chromatography.
Information on the main polyphenol compounds and their molecular docking results
| Compounds | Molecular formula | Molecular weight, g/moL | Total score | |
|---|---|---|---|---|
| α-Amylase | α-Glucosidase | |||
| Chlorogenic acid | C16H18O9 | 354.3 | 2.7140 | 3.9591 |
| Rutin | C27H30O16 | 610.5 | 4.3419 | 4.3419 |
| Quercetin | C15H10O7 | 302.2 | 4.0134 | 5.2114 |
| Kaempferol | C15H10O6 | 286.2 | 2.5705 | 2.7611 |
Figure 5Molecular docking results of different compounds with α-amylase (A,B) and α-glucosidase (C,D).