Rapid Characterization of Components in Bolbostemma paniculatum by UPLC/LTQ-Orbitrap MSn Analysis and Multivariate Statistical Analysis for Herb Discrimination
Abstract
:1. Introduction
2. Results and Discussion
2.1. Optimization of UPLC and LTQ-Orbitrap MSn Conditions
2.2. UPLC/LTQ-Orbitrap MSn Analysis of B. paniculatum
2.3. Structural Charscterization and Identification of Various Types of Components in B. paniculatum
2.3.1. Structural Characterization and Identification of Alkaloids
2.3.2. Structural Characterization and Identification of Flavonols
2.3.3. Structural Characterization and Identification of Sterols
2.3.4. Structural Characterization and Identification of Triterpenoid Saponins
2.3.5. Structural Characterization and Identification of Anthraquinones
2.3.6. Structural Characterization and Identification of Tetracyclic Triterpenoids and Other Components
2.4. Multivariate Statistical Analysis with PCA and HCA
3. Materials and Methods
3.1. Reagents and Materials
3.2. Samples Preparation
3.3. UPLC Separation
3.4. LTQ-Orbitrap MSn Analysis and Data Processing
3.5. Method Validation and Multivariate Statistical Analysis
Supplementary Materials
Author Contributions
Acknowledgments
Conflicts of Interest
References
- Nanjing University of Chinese Medicine. Dictionary of Chinese Materia Medica (Part I), 2nd ed.; Shanghai Science and Technology Press: Shanghai, China, 2006; pp. 113–114. ISBN 978-7-5323-8271-2. [Google Scholar]
- Yu, T.X.; Ma, R.D.; Yu, L.J. Structure-activity relationship of tubeimosides in anti-inflammatory, antitumor, and antitumor-promoting effects. Acta Pharmacol. Sin. 2001, 22, 463–468. [Google Scholar] [PubMed]
- Li, X.J.; Jiang, L.L.; Wu, Z.N.; Zhao, L.H. Fingerprints of Rhizoma Bolbostemmae by HPLC. Chin. Tradit. Herb. Drugs 2007, 926–929. [Google Scholar] [CrossRef]
- Kang, L.P.; Zhao, Y.; Pang, X.; Yu, H.S.; Xiong, C.Q.; Zhang, J.; Gao, Y.; Yu, K.; Liu, C.; Ma, B.P. Characterization and identification of steroidal saponins from the seeds of Trigonella foenum-graecum by ultra high-performance liquid chromatography and hybrid time-of-flight mass spectrometry. J. Pharm. Biomed. Anal. 2013, 74, 257–267. [Google Scholar] [CrossRef] [PubMed]
- Xu, L.L.; Xu, J.J.; Zhong, K.R.; Shang, Z.P.; Wang, F.; Wang, R.F.; Zhang, L.; Zhang, J.Y.; Liu, B. Analysis of non-volatile chemical constituents of Menthae Haplocalycis herba by ultra-high performance liquid chromatography-high resolution mass spectrometry. Molecules 2017, 22, 1756. [Google Scholar] [CrossRef] [PubMed]
- Xu, W.; Zhang, J.; Zhu, D.; Huang, J.; Huang, Z.; Bai, J.; Qiu, X. Rapid separation and characterization of diterpenoid alkaloids in processed roots of Aconitum carmichaeli using ultra high performance liquid chromatography coupled with hybrid linear ion trap-Orbitrap tandem mass spectrometry. J. Sep. Sci. 2014, 37, 2864–2873. [Google Scholar] [CrossRef] [PubMed]
- Zhang, J.Y.; Li, C.; Che, Y.Y.; Wu, J.R.; Wang, Z.J.; Cai, W.; Li, Y.; Ma, Z.G.; Tu, P.F. LTQ-Orbitrap-based strategy for traditional Chinese medicine targeted class discovery, identification and herbomics research: A case study on phenylethanoid glycosides in three different species of Herba Cistanches. RSC Adv. 2015, 5, 80816–80828. [Google Scholar] [CrossRef]
- Wang, Z.X.; Qu, Y.; Wang, L.; Zhang, X.Z.; Xiao, H.B. Ultra-high performance liquid chromatography with linear ion trap-Orbitrap hybrid mass spectrometry combined with a systematic strategy based on fragment ions for the rapid separation and characterization of components in Stellera chamaejasme extracts. J. Sep. Sci. 2016, 39, 1379–1388. [Google Scholar] [CrossRef] [PubMed]
- Makarov, A.; Scigelova, M. Coupling liquid chromatography to Orbitrap mass spectrometry. J. Chromatogr. A 2010, 1217, 3938–3945. [Google Scholar] [CrossRef] [PubMed]
- Dunn, W.B.; Erban, A.; Weber, R.J.M.; Creek, D.J.; Brown, M.; Breitling, R.; Hankemeier, T.; Goodacre, R.; Neumann, S.; Kopka, J.; et al. Mass appeal: Metabolite identification in mass spectrometry-focused untargeted metabolomics. Metabolomics 2013, 9, 44–66. [Google Scholar] [CrossRef]
- Ma, T.J.; Tu, P.F.; Lv, F.J.; Hu, X.S. Chemical Constituents of Bolbostemma paniculatum (II). Acta Bot. Boreali-Occident. Sin. 2006, 26, 1732–1734. [Google Scholar] [CrossRef]
- Liu, W.Y.; Zhang, W.D.; Chen, H.S.; Gu, Z.B.; Li, T.Z.; Yun, Z. Pyrrole alkaloids from Bolbostemma paniculatum. J. Asian Nat. Prod. Res. 2003, 5, 159–163. [Google Scholar] [CrossRef] [PubMed]
- Karaye, I.U.; Aliero, A.A.; Muhammad, S.; Bilbis, L.S. Comparative evaluation of amino acid composition and volatile organic compounds of selected nigerian cucurbit seeds. Pak. J. Nutr. 2012, 11, 1161–1165. [Google Scholar] [CrossRef]
- He, F.; Xiang, M.X.; Hu, Y.J.; Liu, X.Q. Study on chemical composition of ethylacetate fraction from Bolbostemma paniculatum (Maxim.) Franquet. J. Cent. China Norm. Univ. Nat. Sci. 2015, 49, 563–566. [Google Scholar] [CrossRef]
- Zhang, T.; Han, S.; Liu, Q.; Guo, Y.; He, L. Analysis of allergens in tubeimu saponin extracts by using rat basophilic leukemia 2H3 cell-based affinity chromatography coupled to liquid chromatography and mass spectrometry. J. Sep. Sci. 2014, 37, 3384–3391. [Google Scholar] [CrossRef] [PubMed]
- Xiang, M.X.; Wu, L.; Fan, Y.; Yin, X.; Zhang, L. Study on chemical compound of ethyl acetate fraction from Bolbostemma paniculatum (Maxim.) Franquet. J. South Cent. Univ. Nat. Sci. 2017, 36, 56–59. [Google Scholar] [CrossRef]
- Xiang, M.X.; Jiu, C.; Kou, R.; Yang, G.; Li, J. Study on chemical compound of n-butyl alcohol fraction from Actinidia arguta (Sieb.& Zucc) Planch.ex Miq. J. Cent. China Norm. Univ. Nat. Sci. 2015, 49, 397–401. [Google Scholar] [CrossRef]
- Zheng, C.; Fu, H.; Pei, Y. Isolation and identification of the chemical constituents from Bolbostemma paniculatum (Maxim) Franquet. Chin. J. Med. Chem. 2005, 15, 291–293. [Google Scholar] [CrossRef]
- Fu, Z.C.; Zhou, L.Y.; Kong, F.H.; Zhu, D.Y.; Xu, R.S. Chemical constituents of Tubeimu (I). Chin. Tradit. Herb. Drugs 1987, 18, 150. [Google Scholar]
- Ma, T.; Li, J.; Tu, P.; Lv, F.J.; Tai, J. Chemical constituents of Bolbostemma paniculatum. Acta Bot. Boreali-Occident. Sin. 2005, 25, 1163–1165. [Google Scholar] [CrossRef]
- Liu, W.Y.; Chen, W.G.; Zhang, W.D.; Chen, H.S.; Gu, Z.B.; Li, T.Z. Studies on chemical constituents in bulbs of Bolbostemma paniculatum. China J. China Mater. Med. 2004, 29, 953–956. [Google Scholar] [CrossRef]
- Nielsen, J.K. Host plant discrimination within Cruciferae-feeding respectivelyonses of 4 leaf beetles (Coleoptera-Chrysomelidae) to glucosinolates, cucurbitacins and cardenolides. Entomol. Exp. Appl. 1978, 24, 41–54. [Google Scholar] [CrossRef]
- Sadikov, Z.T.; Saatov, Z.; Girault, J.; Lafont, R. Sileneoside, H. A new phytoecdysteroid from Silene brahuica. J. Nat. Prod. 2000, 63, 987–988. [Google Scholar] [CrossRef] [PubMed]
- Nielsen, J.K. Host plant-selection of monophagous and oligophagous flea beetles feeding on Crucifers. Entomol. Exp. Appl. 1978, 24, 562–569. [Google Scholar] [CrossRef]
- Sadikov, Z.T.; Saatov, Z. Phytoecdysteroids of plants of the genus Silene XX. Integristerone A 25-acetate from Silene brahuica. Chem. Nat. Compd. 1999, 35, 440–441. [Google Scholar] [CrossRef]
- Zibareva, L. Distribution and levels of phytoecdysteroids in plants of the genus Silene during development. Arch. Insect Biochem. 2000, 43, 1–8. [Google Scholar] [CrossRef]
- Liu, W.Y.; Zhang, W.D.; Chen, H.S.; Gu, Z.B.; Li, T.Z.; Chen, W.S. Two new sterols from Bolbostemma paniculatum. Chin. Chem. Lett. 2003, 14, 1037–1040. [Google Scholar]
- Ghosh, S.; Derle, A.; Ahire, M.; More, P.; Jagtap, S.; Phadatare, S.D.; Patil, A.B.; Jabgunde, A.M.; Sharma, G.K.; Shinde, V.S.; et al. Phytochemical analysis and free radical scavenging activity of medicinal plants Gnidia glauca and Dioscorea bulbifera. PLoS ONE 2013, 8, e82529. [Google Scholar] [CrossRef] [PubMed]
- Tang, H.F.; Yi, Y.H.; Li, L.; Sun, P.; Wang, Z.Z.; Zhao, Y.P. Isolation and structural elucidation of bioactive cyclic bisdesmosides from tubers of Bolbostemma paniculatum. Pharm. Care Res. 2005, 5, 216–223. [Google Scholar] [CrossRef]
- Tang, Y.; Li, W.; Cao, J.; Li, W.; Zhao, Y. Bioassay-guided isolation and identification of cytotoxic compounds from Bolbostemma paniculatum. J. Ethnopharmacol. 2015, 169, 18–23. [Google Scholar] [CrossRef] [PubMed]
- Fujioka, T.; Iwamoto, M.; Iwase, Y.; Hachiyama, S.; Okabe, H.; Mihashi, K.; Yamauchi, T. Studies on the constituents of Actinostemma lobatum Maxim. (Cucurbitaceae). Structures of triterpene glycosides isolated from the herb. Symp. Chem. Nat. Prod. 1988, 30, 165–172. [Google Scholar] [CrossRef]
- Liu, W.Y.; Zhang, W.D.; Chen, H.S.; Gu, Z.B.; Li, T.Z.; Chen, W.S. New triterpenoid saponins from bulbs of Bolbostemma paniculatum. Planta Med. 2004, 70, 458–464. [Google Scholar] [CrossRef] [PubMed]
- Fujioka, T.; Iwamoto, M.; Iwase, Y.; Hachiyama, S.; Okabe, H.; Yamauchi, T.; Mihashi, K. Studies on the constituents of Actinostemma lobatum Maxim. IV. Structures of lobatosides C, D and H, the dicrotalic acid esters of bayogenin bisdesmosides isolated from the herb. Chem. Pharm. Bull. 1989, 37, 1770–1775. [Google Scholar] [CrossRef]
- Ma, T.J.; Li, J.; Tu, P.F.; Lu, F.J. A novel triterpenoid saponin from bulbs of Bolbostemma paniculatum. Chin. Tradit. Herb. Drugs 2006, 37, 327–329. [Google Scholar] [CrossRef]
- Tang, Y.; Cao, J.Q.; Li, W.; Li, W.; Zhao, Y.Q. Three new triterpene saponins from Bolbostemma paniculatum. Helv. Chim. Acta 2014, 97, 268–277. [Google Scholar] [CrossRef]
- Tang, H.F.; Zhang, S.Y.; Yi, Y.H.; Wen, A.D.; Zhao, Y.P.; Wang, Z.Z. Isolation and structural elucidation of a bioactive saponin from tubers of Bolbostemma paniculatum. China J. Chin. Mater. Med. 2006, 31, 213–217. [Google Scholar] [CrossRef]
- Li, J.; He, F.; Yin, X.; Hong, Z.G.; Liu, X.Q.; Xiang, M.X. Study on chemical compound of n-butyl alcohol fraction from Bolbostemma paniculatum (Maxim.) Franquet. J. Cent. China Norm. Univ. Nat. Sci. 2016, 50, 721–725. [Google Scholar] [CrossRef]
- Robert, F. The genesis of starch in some plants with amylaceous reserves. Rev. Gen. Botanique 1932, 44, 84–97. [Google Scholar]
- Samant, S.K.; Rege, D.V. Carbohydrate composition of some cucurbit seeds. J. Food Compos. Anal. 1989, 2, 149–156. [Google Scholar] [CrossRef]
- Wen, W.X.; Zhu, H.S.; Wen, Q.F.; Chen, M.D.; Lin, B.Y.; Xue, Z.Z. Determination of polyphenols in Luffa by ultra performance liquid chromatography. Acta Hortic. Sin. 2016, 43, 1391–1401. [Google Scholar] [CrossRef]
Sample Availability: Samples of the reference compounds adenosine, chlorogenic acid, quercitrin, scopoletin, β-sitosterol, tubeimoside I, emodin, cucurbitacin B and 18 batches of Bolbostemma Paniculatum bulbs are available from the authors. |
Category | Compound Name | tR (min) | Formula | Molecular Mass | Positive ESI Mode | Negative ESI Mode | ||||
---|---|---|---|---|---|---|---|---|---|---|
Adduct Ions | Mass Error (ppm) | MSn Fragment Ions | Adduct Ions | Mass Error (ppm) | MSn Fragment Ions | |||||
Alkaloid | adenosine (1) a | 2.45 | C10H13N5O4 | 267.0968 | 268.1042 [M + H]+ | −0.63 | - | 266.0889 [M − H]− | 2.18 | MS2: 248(50.6), 238(100), 222(63.1), 134(33.8) |
Polyphenol | chlorogenic acid (2) | 4.39 | C16H18O9 | 354.0951 | - | - | - | 353.0854 [M − H]− | −1.32 | MS2: 335(100), 309(71.2), 191(86.3) b MS3: 173(100), 127(69.2), 85(23.9) |
Flavonol | quercitrin (3) | 4.81 | C21H20O11 | 448.1006 | 449.1081 [M + H]+ | −0.58 | - | 447.0912 [M − H]−895.1896 [2M − H]− | −0.97 | MS2: 419(10.1), 327(24.8), 301(44.5), 284(100), 257(8.81) MS3: 179(100), 151(81.2) |
Coumarin | scopoletin (4) | 5.18 | C10H8O4 | 192.0423 | - | - | - | 191.0335 [M − H]− | −0.41 | MS2: 176(100) MS3: 148(100), 120(26.7), 104(15.2) |
Sterol | β-sitosterol (5) | 5.53 | C29H50O | 414.3862 | 415.3940 [M + H]+ | −1.34 | MS2: 397(89.2), 273(100), 233(13.5) MS3: 255(100), 215(35.1) | - | - | - |
Triterpenoid saponins | tubeimoside I (6) | 7.39 | C63H98O29 | 1318.6194 | - | - | - | 1317.6083 [M − H]− | 2.88 | MS2: 1233(100), 1173(47.3), 781(38.5), 649(11.3) |
Anthraquinone | emodin (7) | 13.19 | C15H10O5 | 270.0528 | 271.0589 [M + H]+ | −1.230 | - | 269.0457 [M − H]− | 0.77 | MS2: 241(32.2), 225(100), 197(3.98) |
Tetracyclic triterpenoids | cucurbitacin B (8) | 15.27 | C32H46O8 | 558.3193 | 581.3100 [M + Na]+ | −2.60 | - | 557.3102 [M − H]− | 2.85 | MS2: 539(100), 515(30.8), 497(90.1) 479(10.2) |
Sample | Original Place | Climate Type |
---|---|---|
BP-01 | Chunhua, Xianyang, Shaanxi | temperate monsoon climate |
BP-02 | Xunyi, Xianyang, Shaanxi | temperate monsoon climate |
BP-03 | Yongshou, Xianyang, Shaanxi | temperate monsoon climate |
BP-04 | Fengping, Baoji, Shaanxi | temperate monsoon climate |
BP-05 | Taibai, Baoji, Shaanxi | temperate monsoon climate |
BP-06 | Yaozhou, Tongchuan, Shaanxi | temperate continental monsoon climate |
BP-07 | Baota, Yanan, Shaanxi | temperate continental monsoon climate |
BP-08 | Huxian, Xi’an, Shaanxi | temperate monsoon climate |
BP-09 | Shangzhou, Shangluo, Shaanxi | warm temperate semi-humid monsoon climate |
BP-10 | Shangzhou, Shangluo, Shaanxi | warm temperate semi-humid monsoon climate |
BP-11 | Yangxian, Hanzhong, Shaanxi | warm temperate semi-humid monsoon climate |
BP-12 | Chengcheng, Weinan, Shaanxi | warm temperate semi-humid continental monsoon climate |
BP-13 | Wanrong, Yuncheng, Shanxi | warm temperate semi-humid continental monsoon climate |
BP-14 | Zhenyuan, Qingyang, Gansu | temperate continental monsoon climate |
BP-15 | Longde, Guyuan, Ningxia | temperate continental monsoon climate |
BP-16 | Yiyuan, Zibo, Shandong | temperate monsoon climate |
BP-17 | Luoyang, Henan | warm temperate-subtropical monsoon climate |
BP-18 | Baoshan, Yunnan | subtropical monsoon climate |
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Zeng, Y.; Lu, Y.; Chen, Z.; Tan, J.; Bai, J.; Li, P.; Wang, Z.; Du, S. Rapid Characterization of Components in Bolbostemma paniculatum by UPLC/LTQ-Orbitrap MSn Analysis and Multivariate Statistical Analysis for Herb Discrimination. Molecules 2018, 23, 1155. https://doi.org/10.3390/molecules23051155
Zeng Y, Lu Y, Chen Z, Tan J, Bai J, Li P, Wang Z, Du S. Rapid Characterization of Components in Bolbostemma paniculatum by UPLC/LTQ-Orbitrap MSn Analysis and Multivariate Statistical Analysis for Herb Discrimination. Molecules. 2018; 23(5):1155. https://doi.org/10.3390/molecules23051155
Chicago/Turabian StyleZeng, Yanling, Yang Lu, Zhao Chen, Jiawei Tan, Jie Bai, Pengyue Li, Zhixin Wang, and Shouying Du. 2018. "Rapid Characterization of Components in Bolbostemma paniculatum by UPLC/LTQ-Orbitrap MSn Analysis and Multivariate Statistical Analysis for Herb Discrimination" Molecules 23, no. 5: 1155. https://doi.org/10.3390/molecules23051155
APA StyleZeng, Y., Lu, Y., Chen, Z., Tan, J., Bai, J., Li, P., Wang, Z., & Du, S. (2018). Rapid Characterization of Components in Bolbostemma paniculatum by UPLC/LTQ-Orbitrap MSn Analysis and Multivariate Statistical Analysis for Herb Discrimination. Molecules, 23(5), 1155. https://doi.org/10.3390/molecules23051155