Identification of the Trace Components in BopuzongJian and Macleaya cordata Extract Using LC-MS Combined with a Screening Method
Abstract
:1. Introduction
2. Result and Discussion
2.1. Establishment of the Screening Method
2.2. Screening and Identification of Benzyltetrahydroisoquinoline-Type Alkaloids
2.3. Screening and Identification of Protopine-Type Alkaloids
2.4. Screening and Identification of Tetrahydroproberberine-Type Alkaloids
2.5. Screening and Identification of Protoberberine-Type Alkaloids
2.6. Screening and Identification of Benzophenanthrine-Type Alkaloids
3. Experimental
3.1. Materials and Reagents
3.2. HPLC Conditions
3.3. Q-TOF-MS Conditions
3.4. Sample Preparation
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
Sample Availability
References
- Wang, M.; Ao, X.; Zhang, L.T.; He, J. Effect and mechanism of the extracts of Sangrovit® on animal bodies. Swine Prod. 2020, 03, 30–32. [Google Scholar] [CrossRef]
- Yang, N.S.; Zhao, Z.; Tang, Z.S.; Liu, H.; Wang, Q.A.; Xie, X.F.; Zhang, Y.M.; Song, L.L.; Xu, X.Q. The reproductive toxicity test of Bopu powder® on breeding chickens. J. Yangzhou Univ. Agric. Life Sci. 2019, 40, 65–69. [Google Scholar] [CrossRef]
- Zeng, J.; Liu, Y.; Liu, W.; Liu, X.; Liu, F.; Huang, P.; Zhu, P.; Chen, J.; Shi, M.; Guo, F.; et al. Integration of transcriptome, proteome and metabolism data reveals the alkaloids biosynthesis in Macleaya cordata and Macleaya microcarpa. PLoS ONE 2013, 8, e53409. [Google Scholar] [CrossRef]
- Pěnčíková, K.; Urbanová, J.; Musil, P.; Taborska, E.; Gregorova, J. Seasonal variation of bioactive alkaloid contents in Macleaya microcarpa (Maxim.) Fedde. Molecules 2011, 16, 3391–3401. [Google Scholar] [CrossRef]
- Suchomelová, J.; Bochořáková, H.; Paulová, H.; Musil, P.; Taborska, E. HPLC quantification of seven quaternary benzo [c] phenanthridine alkaloids in six species of the family Papaveraceae. J. Pharm. Biomed. Anal. 2007, 44, 283–287. [Google Scholar] [CrossRef]
- Liang, F.D. Study on Pharmacokinetics of Sangrovit® and Bopu powder® in Pigs [D]. Ph.D. Thesis, Hunan Agricultural University, Changsha, China, 2017. [Google Scholar]
- Li, C.H. Study on the Effects of Sangrovit Replacing Colistin Sulfate in the Diets of Piglets and Finishing Pigs [D]. Ph.D. Thesis, Hunan Agricultural University, Changsha, China, 2017. [Google Scholar]
- Yang, G.Y. Test method for special impurities in veterinary drugs. Heilongjiang Anim. Sci. Vet. Med. 2009, 14, 104–105. [Google Scholar]
- Pu, Y.X.; Jiang, L.P.; Zheng, M. Beef cattle fattening to standardize the use of veterinary drugs. China Anim. Health 2020, 22, 2–3. [Google Scholar]
- Ahuja, S.S. Assuring quality of drugs by monitoring impurities. Adv. Drug Deliv. Rev. 2007, 59, 3–11. [Google Scholar] [CrossRef] [PubMed]
- Bristow, T.; Harrison, M.; Sims, M. The application of gas chromatography/atmospheric pressure chemical ionization time-of-flight mass spectrometry to impurity identification in Pharmaceutical Development. Rapid Commun. Mass Spectrom. 2010, 24, 1673–1681. [Google Scholar] [CrossRef] [PubMed]
- Li, W.; Hu, C.Q. Spectral correlation of high-performance liquid chromatography diode array detection data from two independent chromatographic runs peak tracking in pharmaceutical impurity profiling. J. Chromatogr. A 2008, 1190, 141–149. [Google Scholar] [CrossRef]
- Dumarey, M.; Sneyers RJanssens, W.; Somers, I.; Vander Heyden, Y. Drug impurity profiling: Method optimization on dissimilar chromatographic systems: Part I: pH optimization of the aqueous phase. Anal. Chim. Acta 2009, 656, 85–92. [Google Scholar] [CrossRef]
- Wu, C.S.; Tong, Y.F.; Wang, P.Y.; Wang, D.M.; Wu, S.; Zhang, J.L. Identification of impurities in methotrexate drug substances using high-performance liquid chromatography coupled with a photodiode array detector and Fourier transform ion cyclotron resonance mass spectrometry. Rapid Commun. Mass Spectrom. 2013, 27, 971–978. [Google Scholar] [CrossRef]
- Provera, S.; Martini, L.; Guercio, G.; Turco, L.; Costa, L.; Marchioro, C. Application of LC-NMR and HR-NMR to the characterization of biphenyl impurities in the synthetic route development for vestipitant, a novel NK1 antagonist. J. Pharm. Biomed. Anal. 2010, 53, 389–395. [Google Scholar] [CrossRef] [PubMed]
- Pan, C.; Liu, F.; Motto, M. Identification of pharmaceutical impurities in formulated dosage forms. J. Pharm. Sci. 2011, 100, 1228–1259. [Google Scholar] [CrossRef] [PubMed]
- Yu, L.Y.; Chen, M.F.; Liu, J.H.; Huang, X.; He, W.; Qing, Z.; Zeng, J. Systematic Detection and Identification of Bioactive Ingredients from Citrus aurantium L. var. amara Using HPLC-Q-TOF-MS Combined with a Screening Method. Molecules 2020, 25, 357. [Google Scholar] [CrossRef] [PubMed]
- Xue, G.; Bendick, A.D.; Chen, R.; Sekulic, S.S. Automate peak tracking for comprehensive impurity profiling in orthogonal liquid chromatographic separation using mass spectrometric detection. J. Chromatogr. A 2004, 1050, 159–171. [Google Scholar] [CrossRef]
- Fredriksson, M.J.; Petersson, P.; Axelsson, B.O.; Bylund, D. An automatic peak finding method for LC-MS data using Gaussian second derivative filtering. J. Sep. Sci. 2009, 32, 3906–3918. [Google Scholar] [CrossRef] [PubMed]
- Wang, X.; Zhou, H.; Zheng, J.; Huang, C.; Liu, W.; Yu, L.; Zeng, S. Identification and characterization of four process related impurities in retigabine. J. Pharm. Biomed. Anal. 2012, 71, 148–151. [Google Scholar] [CrossRef]
- Zhang, J.; Jin, Y.; Dong, J.; Xiao, Y.; Feng, J.; Xue, X.; Zhang, X.; Liang, X. Systematic screening and characterization of tertiary and quaternary alkaloids from corydalis yanhusuo W.T. Wang using ultra-performance liquid chromatography-quadrupole-time-of-flight mass spectrometry. Talanta 2009, 78, 513–522. [Google Scholar] [CrossRef] [PubMed]
- Jeong, E.K.; Lee, S.Y.; Yu, S.M.; Park, N.H.; Lee, H.-S.; Yim, Y.-H.; Hwang, G.-S.; Cheong, C.; Jung, J.H.; Hong, J. Identification of structurally diverse alkaloids in Corydalis species by liquid chromatography/electrospray ionization tandem mass spectrometry. Rapid Commun. Mass Spectrom. 2012, 26, 1661–1674. [Google Scholar] [CrossRef] [PubMed]
- Qing, Z.X.; Xu, Y.-Q.; Yang, P.; Yu, K.; Cheng, P.; Zeng, J.-G. Mass spectrometry-guided isolation of two new benzoquinoline alkaloids from Macleaya cordata. Nat. Prod. Res. 2016, 30, 1030–1035. [Google Scholar] [CrossRef]
- Qing, Z.-X.; Cheng, P.; Liu, X.-B.; Zeng, J.-G.; Wang, W. Structural speculation and identification of alkaloids in Macleaya cordata fruits byhigh-performance liquid chromatography/quadrupole-time-of-flight mass spectrometry combined with a screening procedure. Rapid Commun. Mass Spectrom. 2014, 28, 1033–1044. [Google Scholar] [CrossRef] [PubMed]
- Qing, Z.X.; Xu, Y.Q.; Yu, L.Y.; Liu, J.; Huang, X.; Tang, Z.; Cheng, P.; Zeng, J. Investigation of fragmentation behaviours of isoquinoline alkaloids by mass spectrometry combined with computational chemistry. Sci. Rep. 2020, 10, 733. [Google Scholar] [CrossRef]
- Neu, V.; Bielow, C.; Gostomski, I.; Wintringer, R.; Braun, R.; Reinert, K.; Schneider, P.; Stuppner, H.; Huber, C.G. Rapid and comprehensive impurity profiling of synthetic thyroxine by ultrahigh-performance liquid chromatography-highresolution mass spectrometry. Anal. Chem. 2013, 85, 3309–3317. [Google Scholar] [CrossRef] [PubMed]
- Qing, Z.X.; Liu, X.B.; Wu, H.M.; Chen, P.; Liu, Y.-S.; Zeng, J.-G. An improved separation method for classification of Macleaya cordata from different geographical origins. Anal. Methods 2015, 7, 1866–1871. [Google Scholar] [CrossRef]
- Qing, Z.X.; Cheng, P.; Zeng, J.G. Research progress on mass spectral fragmentation behaviour of alkaloids in Macleaya cordata. Chinese Tradit. Herb. Drugs 2013, 44, 2929–2939. [Google Scholar]
- Chen, Y.Z.; Liu, G.Z.; Shen, Y.; Chen, B.; Zeng, J.-G. Analysis of alkaloids in Macleaya cordata (Willd.) R. Br. using highperformance liquid chromatography with diode array detection and electrospray ionization mass spectrometry. J. Chromatogr. A 2009, 1216, 2104–2110. [Google Scholar] [CrossRef] [PubMed]
- Huang, Y.-J.; Xiao, S.; Sun, Z.-L.; Zeng, J.-G.; Liu, Y.-S.; Liu, Z.-Y. Identification of allocryptopine and protopine metabolites in rat liver S9 by high-performance liquid chromatography/quadrupole-time-of-flight mass spectrometry. Rapid Commun. Mass Spectrom. 2016, 30, 1549–1559. [Google Scholar] [CrossRef] [PubMed]
- Xie, H.; Yang, J.; Feng, S.; Chen, P.; Zeng, J.; Xiong, X. Simultaneous quantitative determination of sanguinarine, chelerythrine, dihydrosanguinarine and dihydrochelerythrine in chicken by HPLC–MS/MS method and its applications to drug residue and pharmacokinetic study. J. Chromatogr. B 2015, 985, 124–130. [Google Scholar] [CrossRef] [PubMed]
- Yan, X.; Zheng, J.; Li, W. Studies on the Chemical Synthesis of Natural Drugs Berberine. Chin. J. Org. Chem. 2021, 41, 1–13. [Google Scholar] [CrossRef]
PN | TR (min) | Molecular Formula | MS1 | Characteristic MS/MS Ions (m/z) | Tentative Identification | Screening Method | Type | Source |
---|---|---|---|---|---|---|---|---|
1 | 4.391 | C19H24NO3+ | 314.1744 | 269.1149, 237.0797, 175.0934, 143.0482, 107.0481 | N, N-dimethylisococlaurine | Y | Benzyltetrahydroisoquinoline | BopuzongJian/Macleaya cordata extract |
2 | 4.915 | C19H24NO3+ | 314.1752 | 269.1239, 207.0753, 175.0736, 107.0485 | N, N-dimethylcoclaurine | Y | Benzyltetrahydroisoquinoline | Macleaya cordata extract |
3 | 6.945 | C19H20NO5+ | 342.1409 | 324.1193, 194.0935, 177.0792, 176.0687, 165.0659 | Demethylcryptopine | Z | Protopine | Macleaya cordata extract |
4 | 7.114 | C19H24NO4+ | 330.144 | 299.1172, 192.1009, 137.0616 | Reticuline | Y | Benzyltetrahydroisoquinoline | Macleaya cordata extract |
5 | 7.911 | C20H22NO4+ | 340.1258 | 192.1101, 149.0652 | Isotetrahydroprotoberberine | Z | Tetrahydroptotoberberine | BopuzongJian |
6 | 8.310 | C19H18NO4+ | 324.1214 | 176.0779, 149.0579, 294.1161 | Tetrahydrocoptisine | Y | Tetrahydroptotoberberine | BopuzongJian |
7 | 8.393 | C19H16NO4+ | 322.0909 | 279.0869, 294.1065, 307.0822, | Isothalonil | Z | Protoberberine | Macleaya cordata extract |
8 | 8.677 | C20H22NO5+ | 356.1395 | 151.0646,188.0709,189.0755,206.0777 | Demethyl allocryprotopine | XY | Protopine | BopuzongJian |
9 | 9.201 | C20H20NO5+ | 354.1351 | 336.1232, 189.0769, 206.0803,149.0577 | Protopine | XY | Protopine | Macleaya cordata extract |
10 | 9.891 | C19H14NO5+ | 336.0862 | 318.0726, 308.0850, 290.0797 | 13-hydroxyl-coptisine | Z | Protoberberine | Macleaya cordata extract |
11 | 10.116 | C21H24NO5+ | 370.1584 | 352.1580, 206.0812, 188.0728, 189.0893 | Allocryprotopine | YZ | Protopine | Macleaya cordata extract |
12 | 10.334 | C20H22NO4+ | 340.1614 | 192.0924, 170.9604 | N-methylpyrophylline | Z | Tetrahydroptotoberberine | Macleaya cordata extract |
13 | 10.824 | C20H20NO4+ | 338.1380 | 190.0845, 149.0669 | N-methyltetrahydropalmatine | Z | Tetrahydroptotoberberine | BopuzongJian/Macleaya cordata extract |
14 | 11.373 | C19H14NO4+ | 320.0916 | 305.0672, 292.0863, 262.0825, 246.0860 | Didemethyl chelerythrine | YZ | Benzophenanthridine | Macleaya cordata extract |
15 | 11.414 | C20H20NO4+ | 338.1378 | 323.1047, 322.1029, 294.0938 | 7,8-dihydroberberine | Z | Protoberberine | Macleaya cordata extract |
16 | 11.639 | C20H16NO4+ | 334.0927 | 319.0828, 304.0570, 291.0834, 276.0496 | Demethylated chelerythrine | X | Benzophenanthridine | Macleaya cordata extract |
17 | 11.699 | C20H18NO4+ | 336.1154 | 320.0759, 318.0738, 292.0937 | Berberine | Y | Protoberberine | Macleaya cordata extract |
18 | 11.705 | C20H16NO4+ | 334.1021 | 319.0836, 318.0738, 304.0545, 290.0758, 276.0665 | Dihydrosanguinarine | X | Benzophenanthridine | Macleaya cordata extract |
19 | 11.722 | C19H14NO4+ | 320.0839 | 305.0701, 292.0909, 277.0703, 262.0830 | Isodimethylchelerythrine | YZ | Benzophenanthridine | BopuzongJian/Macleaya cordata extract |
20 | 12.039 | C20H20NO5+ | 354.1297 | 206.0809, 189.0758, 188.0691, 149.0591 | Isoprotopine | YZ | Protopine | BopuzongJian/Macleaya cordata extract |
21 | 12.754 | C20H14NO4+ | 332.0791 | 317.0701, 304.0924, 274.0836 | Sanguinarine | X | Benzophenanthridine | BopuzongJian |
22 | 13.911 | C21H18NO5+ | 364.1168 | 349.0923, 348.0824, 334.0633, 320.0859, 306.0723 | Oxychelerythrine | YZ | Benzophenanthridine | Macleaya cordata extract |
23 | 13.928 | C20H18NO4+ | 336.2800 | 321.0874, 320.0857, 306.0772, 304.0898, 292.0975 | Dedimethyl-benzophenanthridinium | YZ | Benzophenanthridine | BopuzongJian/Macleaya cordata extract |
24 | 13.944 | C20H18NO4+ | 322.1045 | 321.0990, 306.1000, 278.1161 | Detrimethyl-benzophenanthridinium | YZ | Benzophenanthridine | BopuzongJian |
25 | 15.451 | C22H18NO6+ | 392.1193 | 332.0920, 318.0768, 274.0667 | 6-acetoxy-dihydrosanguinarine | YZ | Benzophenanthridine | BopuzongJian |
26 | 15.825 | C21H18NO4+ | 348.2089 | 332.0823, 318.0620, 304.0910, 290.0654 | Chelerythrine | X | Benzophenanthridine | BopuzongJian |
27 | 17.135 | C23H22NO6+ | 408.1354 | 348.1193, 333.0833 | 6-acetoxy-dihydrochelervthrine | YZ | Benzophenanthridine | BopuzongJian |
28 | 17.248 | C29H24NO6+ | 482.1590 | 467.1464, 452.1271, 422.0905, 163.0776 | Maclekarpine E | YZ | Benzophenanthridine | BopuzongJian |
29 | 17.268 | C20H14NO5+ | 348.0962 | 333.0718, 305.0666 | Oxysanguinarine | X | Benzophenanthridine | BopuzongJian/Macleaya cordata extract |
30 | 17.290 | C20H17N2O4+ | 349.1243 | 334.1036,333.0974,319.0810, 305.0997, 291.0863 | 6-amino-chelerythrine | YZ | Benzophenanthridine | BopuzongJian |
31 | 17.340 | C21H18NO5+ | 364.1158 | 349.0838,334.0721,320.0849, 306.0833 | 6-methoxy-diazomethylchelerythrine | YZ | Benzophenanthridine | BopuzongJian |
32 | 17.435 | C21H18NO5+ | 364.1152 | 349.0906, 348.0738, 334.0626, 332.4152, 319.0601 | 10-methoxy-dihydrosanguinarine | YZ | Benzophenanthridine | BopuzongJian |
33 | 17.493 | C21H18NO5+ | 364.1148 | 349.0883, 334.0663, 306.0689 | 10-methoxy-demethyl chelerythrine | YZ | Benzophenanthridine | BopuzongJian |
34 | 17.505 | C21H18NO5+ | 364.0917 | 349.0955, 334.0682 | 6-methylol-dihydrosanguinarine | YZ | Benzophenanthridine | BopuzongJian |
35 | 19.366 | C22H20NO5+ | 378.1420 | 360.1198, 345.0956, 330.1045, 318.0653 | 6-ethoxy-dihydrosanguinarine | YZ | Benzophenanthridine | BopuzongJian |
36 | 19.628 | C23H24NO5+ | 394.2107 | 376.1556, 361.1176, 345.1085, 334.2396 | 6-hydroxyethylchelerythrine | YZ | Benzophenanthridine | BopuzongJian |
37 | 19.836 | C20H16NO4+ | 334.0885 | 319.0801, 318.0736, 304.0592, 290.0742 | Diazomethylchelerythrine | X | Benzophenanthridine | BopuzongJian |
38 | 20.402 | C19H12NO4+ | 318.0738 | 290.0801, 288.0630, 260.0672, 232.0742 | Diazomethylsanguinarine | YZ | Benzophenanthridine | BopuzongJian |
39 | 21.384 | C21H20NO4+ | 350.1306 | 335.1108, 349.1318 | Dihydrochelerythrine | YZ | Benzophenanthridine | BopuzongJian |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Dong, Z.; Liu, M.; Zhong, X.; Ou, X.; Yun, X.; Wang, M.; Ren, S.; Qing, Z.; Zeng, J. Identification of the Trace Components in BopuzongJian and Macleaya cordata Extract Using LC-MS Combined with a Screening Method. Molecules 2021, 26, 3851. https://doi.org/10.3390/molecules26133851
Dong Z, Liu M, Zhong X, Ou X, Yun X, Wang M, Ren S, Qing Z, Zeng J. Identification of the Trace Components in BopuzongJian and Macleaya cordata Extract Using LC-MS Combined with a Screening Method. Molecules. 2021; 26(13):3851. https://doi.org/10.3390/molecules26133851
Chicago/Turabian StyleDong, Zhuang, Mengting Liu, Xiaohong Zhong, Xiaoyong Ou, Xuan Yun, Mingcan Wang, Shurui Ren, Zhixing Qing, and Jianguo Zeng. 2021. "Identification of the Trace Components in BopuzongJian and Macleaya cordata Extract Using LC-MS Combined with a Screening Method" Molecules 26, no. 13: 3851. https://doi.org/10.3390/molecules26133851
APA StyleDong, Z., Liu, M., Zhong, X., Ou, X., Yun, X., Wang, M., Ren, S., Qing, Z., & Zeng, J. (2021). Identification of the Trace Components in BopuzongJian and Macleaya cordata Extract Using LC-MS Combined with a Screening Method. Molecules, 26(13), 3851. https://doi.org/10.3390/molecules26133851