| Literature DB >> 28626487 |
Yunshuang Fan1,2, Yamei Li3,4, Yuanyuan Wu3,4, Lixin Li5, Yuming Wang3,4, Yubo Li3,4.
Abstract
Simiao Wan (SMW), an important multiherbal formula used in traditional Chinese medicine, is extensively used to treat rheumatoid arthritis. However, the knowledge of the bioactive components of SMW remains unclear. Thus, gas chromatography-mass spectrometry (GC-MS) and liquid chromatography-mass spectrometry (LC-MS) were used to analyze the chemical constituents of volatile and nonvolatile extracts of SMW, as well as its absorbed components in rat plasma after oral SMW administration. Identification of several compounds was enabled by comparison of retention times, MS spectra, and MS/MS spectral data with the standard substance and reference materials reported in the literature. In the volatile extracts, GC-MS identified 26 compounds in vitro, three of which observed in blood by GC-MS. In the nonvolatile extracts, LC-MS identified 49 compounds in SMW; 18 compounds containing 7 prototype compounds, 5 metabolites, and 6 unknown compounds were absorbed by blood. The proposed GC-MS and LC-MS method was appropriate not only for the rapid screening and identification of multiple components of an SMW extract but also for screening its bioactive constituents in vivo. The proposed method could be a promising tool for the quality control of other Chinese herbal medicines.Entities:
Year: 2017 PMID: 28626487 PMCID: PMC5463147 DOI: 10.1155/2017/6781593
Source DB: PubMed Journal: Evid Based Complement Alternat Med ISSN: 1741-427X Impact factor: 2.629
Figure 1Total ion chromatograms obtained by GC-MS of volatile oils from (a) SMW and its major constituent herbs, (b) Cortex Phellodendri, (c) Rhizoma Atractylodis, (d) Radix Achyranthis Bidentatae, and (e) Semen Coicis.
26 compounds identified in volatile oils from SMW and its constituent herbs.
| Number | RT (min) | Compounds | Molecular formula | Molecular weight | % |
|---|---|---|---|---|---|
| 1 | 2.78 | Methylbenzene | C7H8 | 92 | 1.43 |
| 2 | 4.43 |
| C10H16 | 136 | 0.68 |
| 3 | 6.45 | 1-Phellandrene | C10H16 | 136 | 0.49 |
| 4 | 7.58 | 1-Methyl-2-(1-Methylethyl)-benzene | C10H14 | 134 | 0.1 |
| 5 | 13.07 | 1,3,4,5,6,7-Hexahydro-2,5,5-trimethyl-2H-2,4a-ethanonaphtalene | C15H24 | 204 | 0.16 |
| 6 | 15.41 | Longifden | C15H24 | 204 | 1.22 |
| 7 | 15.83 | 4,4-Dimethyl-adamantan-2-ol | C12H20O | 180 | 2.2 |
| 8 | 16.99 |
| C15H24 | 204 | 1.5 |
| 9 | 17.34 | Trans-caryophellene | C15H24 | 204 | 1.77 |
| 10 | 18.02 |
| C15H24 | 204 | 0.46 |
| 11 | 19.33 |
| C15H24 | 204 | 0.75 |
| 12 | 20.17 |
| C15H24 | 204 | 1.18 |
| 13 | 21.10 |
| C15H24 | 204 | 10.89 |
| 14 | 22.67 |
| C15H24 | 204 | 0.79 |
| 15 | 24.07 |
| C15H24 | 204 | 4.85 |
| 16 | 25.69 |
| C15H24 | 204 | 5.75 |
| 17 | 26.90 |
| C15H22 | 202 | 0.58 |
| 18 | 32.48 | Hinesol | C15H26O | 222 | 0.83 |
| 19 | 33.91 |
| C15H26O | 222 | 8.63 |
| 20 | 34.88 |
| C15H26O | 222 | 2.03 |
| 21 | 35.53 | Furanodiene | C15H20O | 216 | 33.4 |
| 22 | 37.47 | Diethyl phthalate | C12H14O4 | 222 | 0.35 |
| 23 | 46.83 | Atrctylodin | C13H10O | 182 | 8.58 |
| 24 | 56.82 | Trans-tricyclo[8.6.0.0(2,9)]- | C16H24 | 216 | 0.54 |
| 25 | 57.27 | 5-Methyl-1-[2,6,6-Trimethyl-2,4-cyclohexadienyl]-1,4-hexadiene-3-one | C16H22O | 230 | 0.73 |
| 26 | 58.85 | Isolantolactonoid butenolide A | C15H20O2 | 232 | 0.13 |
Figure 2Base peak chromatograms obtained by RPLC/Q-TOF-MS in the positive mode of nonvolatile extracts from SMW and its constituent herbs. (Chromatograms at 0 to 25 min: (a-1) SMW; (b-1) Cortex Phellodendri; (c-1) Rhizoma Atractylodis; (d-1) Radix Achyranthis Bidentatae; (e-1) Semen Coicis; Chromatogram at 25–40 min: (a-2) SMW; (b-2) Cortex Phellodendri; (c-2) Rhizoma Atractylodis; (d-2) Radix Achyranthis Bidentatae; (e-2) Semen Coicis).
Figure 3Base peak chromatograms obtained by RPLC/Q-TOF-MS in the negative mode of nonvolatile extracts from SMW and its constituent herbs. (a) SMW; (b) Cortex Phellodendri; (c) Rhizoma Atractylodis; (d) Radix Achyranthis Bidentatae; (e) Semen Coicis.
Figure 4Structures of compounds identified in the nonvolatile extracts from SMW and its constituent herbs.
Characterization of compounds in SMW by RPLC-Q-TOF/MS.
| Number | RT (min) | Ion mode | Characteristic ion | Fragment ions ( | Identification | Origin |
|---|---|---|---|---|---|---|
| 1 | 1.77 | + | 118.0851 | — | Valine | C |
| 2 | 1.86 | − | 191.0650 | — | Quinic acid | B, C |
| 3 | 1.94 | + | 192.1011 | 133.05, 148.07, 176.05 | — | A |
| 4 | 2.47 | + | 180.1333 | — | — | A |
| 5 | 7.31 | + | 314.1678 | 283.08 [M − CH4 − CH3]+, | (−)-oblongine | A |
| 6 | 8.12 | − | 367.1033 | 193.06 [ferulic acid − H]− | 5-O-feruloylquinic acid | A |
| 7 | 8.38 | − | 353.0905 | 179.04 [caffeic acid − H]−, | Caffeotannic acid | A |
| 8 | 8.39 | + | 448.1959 | 143.05, 178.09, 255.10, 286.14 | — | A |
| 9 | 8.88 | + | 342.1741 | 192.10 [M − C9H10O2]+, | Phellodendrine | A |
| 10 | 9.35 | + | 328.1827 | 166.09, 252.09, 312.12 | — | A |
| 11 | 9.44 | + | 592.2408 | 178.08, 255.10, 286.14 | — | A |
| 12 | 9.82 | + | 342.1685 | 265.08 [M − C2H7N − CH3 − CH3OH]+, 282.02 [M − C2H7N − CH3]+, | Magnoflorine | A |
| 13 | 9.99 | + | 312.1223 | 177.08 [M + H − C7H4O2 − CH3]+, | Cassythidine | A |
| 14 | 10.29 | + | 314.177 | 192.10 [M − CH3 − H − C7H7O + H]+, 239.07 [M − H − CO − 2CH3]+, | Lotusine | A |
| 15 | 10.47 | − | 337.0939 | 191.06 [quinic acid − H]−, 163.04 | Derivation of Quinic acid | A |
| 16 | 10.69 | − | 367.1084 | 173.05 [quinic acid − H2O − H]− | 4-O-feruloylquinic acid | A |
| 17 | 10.97 | − | 367.1075 | 191.07 [quinic acid − H]− | 3-O-feruloylquinic acid | A |
| 18 | 10.991 | + | 356.1873 | 192.10, 177.08, 265.08 | Menispermine | A |
| 19 | 11.10 | + | 328.1884 | 121.06, 208.08 | Litcubine | A |
| 20 | 11.12 | + | 344.1842 | 137.06 [M − C11H14NO2 − CH3 + H]+, 192.09 [M − C9H11O2 + H]+ | Codamine | A |
| 21 | 11.58 | + | 481.3129 | 173.10, 371.22 [M + H − 2H2O − C4H10O]+ | Ecdysterone | C |
| 22 | 11.78 | + | 350.0995 | 279.05, 294.07, 322.07 | — | A |
| 23 | 11.89 | − | 525.3078 | 159.11, 319.20 | — | C |
| 24 | 11.95 | + | 438.2375 | 119.05, 147.04, 204.10, 275.17 | D | |
| 25 | 11.99 | − | 567.2102 | 314.13, 329.15 | — | A |
| 26 | 12.14 | + | 356.185 | 177.08, 192.10 | Xanthoplanine | A |
| 27 | 12.37 | − | 679.2255 | 219.08, 337.13 | — | A |
| 28 | 12.53 | + | 324.1229 | 266.08 [M − CH2 − 2H + H − CH2]+, 280.09 [M − CH2 − 2H − CO + H]+, | Tetrahydrocoptisine | A |
| 29 | 13.01 | + | 352.119 | 294.07 [M − CH3 − H − CH2 − CO]+, 308.09 [M − CH3 − H − CO]+, | Isomer of palmatine | A |
| 30 | 14.19 | + | 354.0953 | 320.06 [M + H − H2O − CH3 − H]+, 336.04 [M + H − H2O]+ | Rugosinone | A |
| 31 | 14.22 | + | 338.1376 | 280.09 [M − CH3 − H − CH2 − CO]+, 307.08 [M − CH3 − H − CH3]+, 322.11 [M − CH3 − H]+ | Columbamine | A |
| 32 | 14.50 | + | 338.1387, | 280.09 [M − CH3 − H − CH2 − CO]+, 307.08 [M − CH3 − H − CH3]+, | Jateorhizine | A |
| 33 | 14.51 | + | 322.1067 | 279.09 [M + H − CH3 − CO]+, | Berberubine | A |
| 34 | 14.90 | + | 354.1677 | 190.08 | Takatonine | A |
| 35 | 15.34 | + | 322.1104 | 279.09 [M − CH3 − CO]+, | Tetradehydroscoulerine | A |
| 36 | 15.89 | + | 352.117 | 294.07 [M − CH3 − H − CH2 − CO]+, 308.12 [M − CH3 − H − CO]+, | Palmatine | A |
| 37 | 16.34 | + | 336.1261 | 278.08 [M − CH3 − H − CH2 − CO]+, 292.10 [M − CH3 − H − CO]+, | Berberine | A |
| 38 | 16.63 | − | 426.1202 | — | — | A |
| 39 | 18.39 | + | 350.1370 | 292.09, 306.10, 320.09, 334.10 | A | |
| 40 | 19.34 | + | 336.1217 | 320.09 [M − CH3 − H]+, | Epiberberine | A |
| 41 | 19.53 | + | 230.08 | 144.04, 172.04, 200.03 |
| A |
| 42 | 21.39 | + | 200.0697 | 129.05, 185.04 | Dictamnine | A |
| 43 | 21.58 | − | 955.4855 | 793.48 [M − H − Glc]−, | Chikusetsusaponin V | C |
| 44 | 21.77 | − | 329.2349 | 211.14 | — | A, D |
| 45 | 24.43 | − | 793.43.65 | 455.37 [M − H − Glc − GlcA]−, | Zingibroside R1 | C |
| 46 | 25.13 | − | 955.4419 | 455.37 [M − H − 2Glc − GlcA]−, | Ginsenoside Ro | C |
| 47 | 25.48 | − | 953.9747 | 455.37, 569.41, 631.41, 793.48, | 3-O-(3′-carboxymethoxyl-3-oxyacetone acid-3′-acetal-4′-hemiketal)- | C |
| 48 | 27.36 | + | 471.1995 | 161.06, 213.09, 425.19 | Obakulactone | A |
| 49 | 27.66 | − | 515.196 | 229.13 | Nomilin | A |
| 50 | 28.27 | − | 955.4417 | 455.37 [M − H − 2Glc − GlcA]−, | Isomer of ginsenoside Ro | C |
| 51 | 28.53 | + | 352.1152 | 294.07 [M − CH3 − H − CH2 − CO]+, 322.07 [M − CH3 − H − CH2]+ | Isomer of Palmatine | A |
| 52 | 30.30 | + | 255.1344 | — | B | |
| 53 | 30.46 | + | 283.1302 | — | B | |
| 54 | 30.75 | + | 455.2074 | 161.07, 183.07 | Obakunone | A |
| 55 | 31.00 | − | 313.2416 | 185.13 | — | A, B, C, D |
| 56 | 31.34 | − | 791.3842 | 455.38, 631.41 | Achyranthis saponin IV | C |
| 57 | 31.42 | + | 701.3396 | 251.08, 455.22 | Atractysucrose-III | B |
| 58 | 31.93 | + | 701.3385 | — | Atractysucrose-III | B |
| 59 | 32.00 | − | 677.3414 | — | — | B |
| 60 | 32.24 | + | 231.1385 | 128.06, 141.06, 155.08 | Atractylenolide I | B |
| 61 | 32.39 | + | 319.2237 | — | — | D |
| 62 | 32.60 | − | 295.2305 | — | — | A, B, D |
| 63 | 32.68 | + | 313.1398 | — | — | B |
| 64 | 32.85 | + | 381.1657 | 128.06, 52.06, 178.07 | — | B |
| 65 | 33.22 | + | 309.1098 | 141.07, 165.07 | — | B |
| 66 | 33.73 | + | 301.1425 | — | — | A, B, C, D |
| 67 | 33.91 | + | 325.1433 | 121.03, 149.02, | (2E, 8E)-2,8-decadiene-4,6-diyne-1,10-diol-1- | B |
| 68 | 35.57 | + | 785.3907 | 251.08, | Atractysucrose-I | B |
| 69 | 36.03 | + | 785.3965 | 233.07, 335.14, 437.21, 539.27 | Atractysucrose-I | B |
| 70 | 36.05 | + | 279.2315 | — | — | A |
| 71 | 36.14 | − | 807.4036 | — | — | B |
| 72 | 36.32 | + | 785.3951 | — | Atractysucrose-I | B |
| 73 | 37.15 | + | 303.2298 | — | — | A, B, C, D |
| 74 | 37.35 | − | 279.2378 | — | — | A, B, C, D |
| 75 | 37.96 | + | 257.2491 | — | Hexadecanoic acid | A, B, C, D |
| 76 | 38.53 | + | 283.2655 | — | Oleic acid or | A, D |
A: Cortex Phellodendri; B: Rhizoma Atractylodis; C: Radix Acanthopanacis Bidentatae; D: Semen Coicis.
Figure 5Total ion chromatograms obtained by GC-MS of (a) control serum, (b) serum after oral administration of SMW, and (c) reference substance.
Figure 6Extracted ion chromatogram obtained by HPLC-MS of (a) control serum and (b) serum after oral administration of SMW.
MS/MS data of (+) ESI-MS spectra and the identification results of the constituents of SMW.
| No. | RT (min) | [M]+ or [M + H]+ | MS2 ( | MS3 ( | Identified compounds |
|---|---|---|---|---|---|
| 1 | 5.82 | 450.5 | 234.8, 217.0 | Not identified | |
| 2 | 6.66 | 404.0 | 193.0, 210.9 | Not identified | |
| 3 | 6.96 | 328.0 | 309.9, 265.2, 283.0 | Not identified | |
| 4 | 8.84 | 342.0 | 192.2 | Phellodendrine | |
| 5 | 9.49 | 448.0 | 286.1 | Not identified | |
| 6 | 10.49 | 342.0 | 297.1, 265.2 | Magnoflorine | |
| 7 | 11.09 | 558.0 | 525.0, 472.0 | Not identified | |
| 8 | 12.90 | 369.0 | 177.1 | Not identified | |
| 9 | 13.23 | 314.5 | 269.0 | Oblongine or lotusine | |
| 10 | 14.51 | 514.0 | 338.2 | 265.1, 307.1, 322.1 | Jateorhizine-3-O- |
| 11 | 14.71 | 498.0 | 322.1 | Berberubine-9-O- | |
| 12 | 15.34 | 356.0 | 311.0, 279.1 | Dauricine | |
| 13 | 17.19 | 540.0 | 331.0, 471.1 | Not identified | |
| 14 | 22.81 | 322.0 | 307.3, 322.2 | Berberubine | |
| 15 | 23.04 | 354.0 | 336.2 | 321.2 | Metabolite of berberine |
| 16 | 24.53 | 402.0 | 322.1 | 307.3 | Berberubine-9-O-sulfate |
| 17 | 26.42 | 336.0 | 321.2, 292.4 | Berberine | |
| 18 | 26.92 | 352.0 | 337.2, 308.3 | Palmatine |