Chromatogram-Bioactivity Correlation-Based Discovery and Identification of Three Bioactive Compounds Affecting Endothelial Function in Ginkgo Biloba Extract
Abstract
:1. Introduction
2. Results
2.1. GBE HPLC Fingerprint and Identification of Components
2.2. Three Portions Separated from GBE and Nine Re-Combined GBE Samples
2.3. Cluster Analysis of Nine GBE Samples
2.4. ET-1 Biotests of Nine GBE Samples
2.5. CA between Compound Differences and Biological Differences
3. Discussion
4. Materials and Methods
4.1. Animals and Materials
4.2. Preparation of GBE Samples
4.3. HPLC Fingerprint and Cluster Analysis
4.4. Modelling and ET-1 Assay
4.5. Correlation Analysis between Compound Difference and Bioactivity Difference
4.6. Statistical Analysis
5. Conclusions
Supplementary Materials
Author Contributions
Acknowledgments
Conflicts of Interest
Abbreviations
GBE | Ginkgo biloba Extract |
CA | Correlation analysis |
ET-1 | endothelin-1 |
PCC | Pearson correlation coefficients |
RC | Regression coefficients |
ELSD | Evaporative Light Scattering Detector |
UD | Uniform Design |
Adr | Adrenalin |
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Sample Availability: Samples of the compounds are not available from the authors. |
Peaks | Retention Time | Major Fragment Ions (MS/MS) | Identified Compounds |
---|---|---|---|
P1 | 2.520 | - | |
P2 | 3.840 | - | |
P3 | 5.670 | - | |
P4 | 6.960 | 137.0235 [M + H-H2O]+, 109.028 [M + H-H2O-CO]+, 93.0348 [M + H-H2O-CO2]+ | Protocatechuic acid a |
P5 | 9.403 | - | |
P6 | 10.617 | - | |
P7 | 14.367 | 611.1586 [M + H-rha]+, 465.1014 [M + H-2rha]+, 303.0496 [M + H-2rha-glu]+ | 3-O-[2-O,6-O-double(α-l-rhamnosyl)-β-d-glucosyl] Quercetin |
P8 | 15.207 | 319.0444 [M + H-rha-glu]+ | 3-O-[6-O-(α-l-rhamnosyl)-β-d-glucosyl] Myricetin |
P9 | 15.607 | 319.0454 [M + H-glu]+ | 3-O-[β-d-glucosyl] Myricetin |
P10 | 16.420 | 595.1643 [M + H-rha]+, 449.1073 [M + H-2rha]+, 287.0552 [M + H-2rha-glu]+ | 3-O-[2-O,6-O-double(α-l-rhamnosyl)-β-d-glucosyl] Kaempferide |
P11 | 16.613 | 625.174 [M + H-rha]+, 479.1167 [M + H-2rha]+, 317.0650 [M + H-2rha-glu]+, | 3-O-[2-O,6-O-double(α-l-rhamnosyl)-β-d-glucosyl] Isorhamnetin |
P12 | 18.233 | 465.1012 [M + H-rha]+ 303.0496 [M + H-rha-glu]+, | 3-O-[6-O-(α-l-rhamnosyl)-β-d-glucosyl] Quercetin (rutin) a |
P13 | 18.813 | 495.1122 [M + H-rha]+, 333.0600 [M + H-glu-rha]+ | 3-O-[6-O-(α-l-rhamnosyl)-d-glucosyl] Queretagetin |
P14 | 19.720 | 303.0501 [M + H-glu]+ | Quercetin-3-O-β-d-glucoside |
P15 | 20.807 | 303.0501 [M + H-rha-glu]+ | 3-O-[2-O-(β-d-glucosyl)-α-l-rhamnosyl] Quercetin |
P16 | 21.173 | 287.0546 [M + H-rha-glu]+ | 3-O-[6-O-(β-d-glucosyl)-α-l-rhamnosyl] Kaempferide |
P17 | 21.693 | 479.1176 [M + H-rha]+, 317.0658 [M + H-rha-glu]+ | 3-O-[6-O-(β-d-glucosyl)-α-l-rhamnosyl] Isorhamnetin |
P18 | 22.790 | 287.055 [M + H-glu]+ | Kaempferol-3-O-α-l-glucoside |
P19 | 23.057 | 347.0761 [M + H-rha-glu] + | 3-O-[6-O-(α-l-rhamnosyl)-β-d-glucosyl] Syringetin |
P20 | 23.487 | 347.0767 [M + H-rha-glu] + | 3-O-[2-O-(α-l-rhamnosyl)-β-d-glucosyl] Syringetin |
P21 | 23.867 | 287.0569 [M + H-rha-glu]+ | 3-O-[2-O-(β-d-glucosyl)-α-l-rhamnosyl] Kaempferide |
P22 | 26.527 | 449.101 [M + H-rha-glu]+, | 3-O-{2-O-{6-O-[P-OH-trans-cinnamoyl]-β-d-glucosyl}-α-rhamnosyl} Quercetin isomers |
P23 | 29.233 | 433.1063 [M + H-rha-glu]+, | 3-O-{2-O-{6-O-[P-OH-trans-cinnamoyl]-β-d-glucosyl}-α-rhamnosyl} Kaempferide |
P24 | 34.379 | 391.1396 [M + H-H2O]+; 373.1075 [M + H-2H2O]+, 345.13 [M + H-2H2O-CO]+, | Ginkgolide A a |
P25 | 35.195 | 407.1368 [M + H-H2O]+, 389.1262 [M + H-2H2O]+, 361.1304 [M + H-2H2O-CO]+, | Ginkgolide B a |
P26 | 22.296 | 309.3054 [M + H-H2O]+ | Bilobalide a |
Samples | P1 | P2 | P3 | P4 | P5 | P6 | P7 | P8 | P9 | P10 | P11 | P12 | P13 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
S1 | 1.2622 | 1.3788 | 2.1911 | 12.1766 | 2.8357 | 3.524 | 6.5859 | 2.0551 | 1.4858 | 8.3926 | 5.1951 | 28.4887 | 7.0591 |
S2 | 3.1069 | 3.3891 | 5.7438 | 26.3239 | 2.0025 | 3.6599 | 3.8695 | 1.1924 | 0.801 | 4.7887 | 3.0219 | 17.4548 | 4.1193 |
S3 | 5.1957 | 5.5726 | 9.7592 | 42.5976 | 1.0266 | 3.213 | 0 | 0 | 0 | 0 | 0 | 4.356 | 1.0038 |
S4 | 0 | 0 | 0 | 9.8952 | 3.9214 | 4.981 | 9.2285 | 2.8734 | 2.0094 | 11.422 | 6.9621 | 37.5392 | 8.7436 |
S5 | 3.2118 | 3.5892 | 5.5843 | 27.3079 | 2.991 | 4.6368 | 5.9836 | 1.8489 | 1.3209 | 7.3954 | 4.4638 | 24.571 | 5.7354 |
S6 | 7.4305 | 6.3609 | 10.8327 | 48.0321 | 1.7808 | 4.3221 | 0 | 0 | 0 | 0 | 0 | 8.5261 | 1.9302 |
S7 | 0 | 0 | 0 | 6.0996 | 5.5958 | 5.3295 | 12.8322 | 4.5302 | 3.3714 | 17.5349 | 10.0728 | 52.8165 | 12.5493 |
S8 | 3.5617 | 3.7739 | 6.3758 | 28.8564 | 4.426 | 5.4215 | 9.0171 | 3.2387 | 2.2417 | 11.871 | 6.9002 | 36.2443 | 8.6628 |
S9 | 9.3721 | 7.5017 | 13.1006 | 57.1505 | 3.0606 | 5.2422 | 4.1496 | 1.4944 | 1.0327 | 5.3503 | 3.1294 | 15.863 | 3.8046 |
Samples | P14 | P15 | P16 | P17 | P18 | P19 | P20 | P21 | P22 | P23 | P24 | P25 | P26 |
S1 | 9.4772 | 8.1063 | 23.5872 | 35.2178 | 3.0655 | 0.6415 | 1.9176 | 8.2878 | 25.8635 | 15.4303 | 4.9291 | 1.8927 | 18.2607 |
S2 | 6.4263 | 5.2957 | 16.7922 | 24.4355 | 2.3935 | 0.4798 | 1.5539 | 5.2362 | 19.9002 | 12.9111 | 3.7011 | 1.1571 | 13.0276 |
S3 | 2.6031 | 1.9266 | 8.5073 | 11.4559 | 1.587 | 0 | 1.0682 | 3.2834 | 14.0843 | 10.6601 | 5.6539 | 1.8087 | 7.1442 |
S4 | 11.5354 | 10.171 | 27.3343 | 41.7826 | 3.0651 | 0.5678 | 1.9455 | 8.7336 | 25.4447 | 14.135 | 2.9817 | 0.4018 | 19.4095 |
S5 | 7.8271 | 6.8175 | 18.9692 | 28.6363 | 2.2589 | 0.4425 | 1.4746 | 5.2605 | 17.9486 | 10.0593 | 2.0966 | 0.1254 | 10.8716 |
S6 | 3.2396 | 2.6844 | 8.7539 | 12.6152 | 1.2919 | 0 | 0 | 2.8117 | 10.7481 | 7.2251 | 0 | 0 | 6.5011 |
S7 | 15.3825 | 13.8241 | 33.6609 | 52.7184 | 3.4513 | 0.7236 | 2.1981 | 9.7774 | 25.1843 | 10.9571 | 2.0016 | 0.3504 | 23.2875 |
S8 | 10.5258 | 9.4589 | 22.7495 | 35.6553 | 2.3213 | 0.5586 | 1.443 | 5.3602 | 16.1803 | 5.931 | 0.7501 | 0.3917 | 14.6142 |
S9 | 4.4374 | 4.0615 | 9.2461 | 14.7265 | 0 | 0 | 0 | 2.0158 | 5.1178 | 1.4163 | 0 | 0 | 5.2694 |
Group | ET-1 (ng/L) |
---|---|
Normal | 93.07 ± 5.45 |
Model | 107.07 ± 8.50 ## |
S1 | 96.15 ± 11.45 * |
S2 | 95.72 ± 8.88 * |
S3 | 97.40 ± 15.21 * |
S4 | 96.30 ± 9.68 * |
S5 | 93.89 ± 6.76 ** |
S6 | 94.16 ± 8.49 ** |
S7 | 99.37 ± 12.65 |
S8 | 90.82 ± 10.19 ** |
S9 | 88.31 ± 7.19 * |
Variables | PCC | Variables | PCC | Variables | PCC |
---|---|---|---|---|---|
P1 | −0.598 | P10 | 0.209 | P19 | 0.406 |
P2 | −0.658 | P11 | 0.214 | P20 | 0.647 |
P3 | −0.651 | P12 | 0.277 | P21 | 0.635 |
P4 | −0.658 | P13 | 0.273 | P22 | 0.731 * |
P5 | 0.046 | P14 | 0.365 | P23 | 0.806 ** |
P6 | −0.414 | P15 | 0.332 | P24 | 0.652 |
P7 | 0.198 | P16 | 0.461 | P25 | 0.474 |
P8 | 0.167 | P17 | 0.424 | P26 | 0.577 |
P9 | 0.198 | P18 | 0.727 * |
Samples | C1 | C2 |
---|---|---|
S1 | 0.055 | 1.411 |
S2 | −0.501 | 0.768 |
S3 | −1.484 | 0.772 |
S4 | 0.828 | 0.533 |
S5 | 0.055 | −0.118 |
S6 | −1.011 | −0.770 |
S7 | 1.739 | 0.011 |
S8 | 0.775 | −0.787 |
S9 | −0.456 | −1.820 |
Variables | RC | Variables | RC | Variables | RC |
---|---|---|---|---|---|
P1 | −2.297 | P10 | 0.777 | P19 | 1.779 |
P2 | −2.127 | P11 | 0.851 | P20 | 2.292 |
P3 | −2.127 | P12 | 0.902 | P21 | 2.019 |
P4 | −2.202 | P13 | 0.921 | P22 | 2.445 |
P5 | 0.127 | P14 | 1.196 | P23 | 2.637 |
P6 | −1.362 | P15 | 1.081 | P24 | 2.259 |
P7 | 0.822 | P16 | 1.522 | P25 | 1.913 |
P8 | 0.649 | P17 | 1.395 | P26 | 1.860 |
P9 | 0.675 | P18 | 2.291 |
Sample | Portion A mL (% a) | Portion B mL (%) | Portion C mL (%) |
---|---|---|---|
S1 | 2.50 (50) | 7.50 (150) | 10.00 (200) |
S2 | 6.25 (125) | 3.75 (75) | 8.75 (175) |
S3 | 10.00 (200) | 0 (0) | 7.50 (150) |
S4 | 1.25 (25) | 8.75 (175) | 6.25 (125) |
S5 | 5.00 (100) | 5.00 (100) | 5.00 (100) |
S6 | 8.75 (175) | 1.25 (25) | 3.75 (75) |
S7 | 0 (0) | 10.00 (200) | 2.50 (50) |
S8 | 3.75 (175) | 6.25 (125) | 1.25 (25) |
S9 | 7.50 (150) | 2.50 (50) | 0 (0) |
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Liu, H.; Tan, L.-p.; Huang, X.; Liao, Y.-q.; Zhang, W.-j.; Li, P.-b.; Wang, Y.-g.; Peng, W.; Wu, Z.; Su, W.-w.; et al. Chromatogram-Bioactivity Correlation-Based Discovery and Identification of Three Bioactive Compounds Affecting Endothelial Function in Ginkgo Biloba Extract. Molecules 2018, 23, 1071. https://doi.org/10.3390/molecules23051071
Liu H, Tan L-p, Huang X, Liao Y-q, Zhang W-j, Li P-b, Wang Y-g, Peng W, Wu Z, Su W-w, et al. Chromatogram-Bioactivity Correlation-Based Discovery and Identification of Three Bioactive Compounds Affecting Endothelial Function in Ginkgo Biloba Extract. Molecules. 2018; 23(5):1071. https://doi.org/10.3390/molecules23051071
Chicago/Turabian StyleLiu, Hong, Li-ping Tan, Xin Huang, Yi-qiu Liao, Wei-jian Zhang, Pei-bo Li, Yong-gang Wang, Wei Peng, Zhong Wu, Wei-wei Su, and et al. 2018. "Chromatogram-Bioactivity Correlation-Based Discovery and Identification of Three Bioactive Compounds Affecting Endothelial Function in Ginkgo Biloba Extract" Molecules 23, no. 5: 1071. https://doi.org/10.3390/molecules23051071
APA StyleLiu, H., Tan, L. -p., Huang, X., Liao, Y. -q., Zhang, W. -j., Li, P. -b., Wang, Y. -g., Peng, W., Wu, Z., Su, W. -w., & Yao, H. -l. (2018). Chromatogram-Bioactivity Correlation-Based Discovery and Identification of Three Bioactive Compounds Affecting Endothelial Function in Ginkgo Biloba Extract. Molecules, 23(5), 1071. https://doi.org/10.3390/molecules23051071