| Literature DB >> 24958255 |
Shu-Qi Li1, Shu Dong2, Zhi-Heng Su3, Hong-Wu Zhang4, Jing-Bo Peng5, Chang-Yuan Yu6, Zhong-Mei Zou7.
Abstract
Chaihu-Shu-Gan-San (CSGS), a traditional Chinese medicine (TCM) formula containing seven herbal medicines, has been used in the clinical treatment of gastritis, peptic ulcer, irritable bowel syndrome and depression in China. In order to explore the interaction between naringin and other constituents in CSGS, the pharmacokinetic difference of naringin in rats after oral administration of CSGS aqueous extract and naringin alone was investigated. The pharmacokinetic parameters of naringin in rats were achieved by quantification of its aglycone, naringenin by LC-MS/MS method. The double peaks phenomenon was observed in both serum profiles of rats after orally administered CSGS aqueous extract and naringin alone. However, the T1/2b was significantly decreased in rats given CSGS aqueous extract compared with naringin alone, and the mean residence time (MRT) and the area under the serum concentration-time curve (AUC0-τ) were higher than those of naringin, which indicated that naringin in CSGS had higher bioavailability, longer term efficacy and somewhat faster metabolism and excretion than those of naringin. The results suggested that certain ingredients co-exist in CSGS could influence pharmacokinetic behavior of naringin. This also provides a reference for human studies.Entities:
Year: 2013 PMID: 24958255 PMCID: PMC3937833 DOI: 10.3390/metabo3040867
Source DB: PubMed Journal: Metabolites ISSN: 2218-1989
Figure 1The chemical structures of naringin (NA), narigenin (NG) and quercetin (QU, IS).
Figure 2The multiple-reaction-monitoring (MRM) chromatograms of rat serum monitored at m/z 271.1/151.1. (A) Blank serum. (B) Blank serum spiked with naringenin. (C) Serum sample after administration of naringin.
Figure 3The MRM chromatograms of blank serum monitored at m/z 301.2/151.2. (A) Blank serum. (B) Blank serum spiked with quercetin.
Intra-day and Inter-day precision of narigenin in rat plasma (n = 5).
| Spiked concentration ( | Intra-day | Inter-day | ||||
|---|---|---|---|---|---|---|
| Measured concentration ( | Precision (%) | Accuracy (%) | Measured concentration ( | Precision (%) | Accuracy (%) | |
| 0.36 | 0.392 | 3.27 | 104.00 | 0.423 | 7.78 | 105.17 |
| 0.365 | 0.347 | |||||
| 0.372 | 0.389 | |||||
| 0.381 | 0.375 | |||||
| 0.362 | 0.359 | |||||
| 0.374 ± 0.012 | 0.379 ± 0.02 | |||||
| 1.8 | 1.82 | 3.77 | 99.00 | 1.90 | 5.3 | 98.56 |
| 1.77 | 1.83 | |||||
| 1.86 | 1.79 | |||||
| 1.78 | 1.64 | |||||
| 1.68 | 1.71 | |||||
| 1.78 ± 0.07 | 1.77 ± 0.10 | |||||
| 9.0 | 8.96 | 1.22 | 100.69 | 9.08 | 2.18 | 99.89 |
| 9.06 | 8.72 | |||||
| 9.24 | 9.24 | |||||
| 8.98 | 9.02 | |||||
| 9.07 | 8.89 | |||||
| 9.06 ± 0.11 | 8.99 ± 0.20 | |||||
Stability of quality control (QC) samples.
| Concentration (μg·mL−1) | Short term (at room temperature) | Long term (at −80 °C) | Freeze-thaw (cycle number) | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 0 | 4h | 6h | 10h | RSD (%) | 0 | 5d | 10d | 15d | RSD (%) | 0 | 1 | 2 | 3 | RSD (%) | |
| 0.36 | 0.342 | 0.354 | 0.374 | 0.365 | 3.85 | 0.347 | 0.365 | 0.418 | 0.384 | 8.02 | 0.357 | 0.403 | 0.382 | 0.369 | 5.17 |
| 1.8 | 1.87 | 1.86 | 1.78 | 1.80 | 2.30 | 2.02 | 1.95 | 1.79 | 1.87 | 5.21 | 1.78 | 1.89 | 1.92 | 1.82 | 3.45 |
| 9 | 9.94 | 9.87 | 9.29 | 10.03 | 3.42 | 9.07 | 9.47 | 9.24 | 9.05 | 2.11 | 8.90 | 9.23 | 9.89 | 9.09 | 4.64 |
Extraction recoveries of NG and QU control samples (n = 5).
| Concentration | Extracted peak area | Control | Absolute recovery (%) | Average recovery (%) | RSD (%) | |
|---|---|---|---|---|---|---|
| 0.36 | 2.08e + 003 | 3.17e + 003 | 78.74 | 77.84 | 4.80 | |
| 2.13e + 003 | 3.22e + 003 | 79.38 | ||||
| 2.18e + 003 | 3.64e + 003 | 71.87 | ||||
| 2.28e + 003 | 3.34e + 003 | 81.92 | ||||
| 2.08e + 003 | 3.23e + 003 | 77.28 | ||||
| 1.8 | 2.15e + 004 | 3.12e + 004 | 82.69 | 83.94 | 4.17 | |
| 2.07e + 004 | 3.05e + 004 | 81.44 | ||||
| 2.22e + 004 | 3.08e + 004 | 86.49 | ||||
| 1.99e + 004 | 2.97e + 004 | 80.40 | ||||
| 2.29e + 004 | 3.10e + 004 | 88.64 | ||||
| 9 | 1.97e + 005 | 2.58e + 005 | 91.63 | 90.16 | 5.17 | |
| 1.67e + 005 | 2.42e + 005 | 82.81 | ||||
| 1.65e + 005 | 2.23e + 005 | 88.79 | ||||
| 1.93e + 005 | 2.44e + 005 | 94.92 | ||||
| 1.83e + 005 | 2.37e + 005 | 92.66 | ||||
| QU | 5 | 6.34e + 004 | 8.23e + 004 | 92.44 | 86.08 | 5.65 |
| 5.98e + 004 | 9.02e + 004 | 79.56 | ||||
| 5.81e + 004 | 8.32e + 004 | 83.80 | ||||
| 5.87e + 004 | 8.19e + 004 | 86.01 | ||||
| 6.38e + 004 | 8.64e + 004 | 88.61 |
Figure 4Serum concentration-time curve of naringenin in rats after orally administration of Chaihu-Shu-Gan-San and naringin.
Non-compartmental model pharmacokinetic parameters of rats after orally administered Chaihu-Shu-Gan-San (CSGS) aqueous extract and naringin monomer.
| Parameters | Units | CSGS | NA |
|---|---|---|---|
| Tmax,1 | min | 360.0000 | 15.0000 |
| Cmax,1 | mg·L-1 | 1.8970 | 0.4840 |
| Tmax,2 | min | 600.0000 | 180.0000 |
| Cmax,2 | mg·L-1 | 1.3040 | 0.7390 |
| Lambda_z | 1·min-1 | 0.0040 | 0.0027 |
| HL_Lambda_z | min | 171.8932 | 255.7001 |
| AUCall | min·mg·L-1 | 840.2175 | 114.0243 |
| Cl_F | L·min-1·kg-1 | 3.0512 | 0.0443 |
| MRT | min | 523.3516 | 274.8070 |