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江西中医药大学,南昌 330004
[第一作者] 孟晓伟,在读博士,讲师,从事中药体内代谢研究,Tel:0791-87118088,E-mail:jxjzmxw@163.com
*刘荣华,博士,教授,从事中药药效物质基础研究,Tel:0791-87118992,E-mail:rhliu@163.com
纸质出版日期:2020-05-05,
网络出版日期:2019-11-29,
收稿日期:2019-09-10,
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孟晓伟, 蔡定吉, 朱清, 等. 基于UPLC-Q-TOF-MS/MS技术快速鉴定交趾黄檀心材中化学成分[J]. 中国实验方剂学杂志, 2020,26(9):143-156.
Xiao-wei MENG, Ding-ji CAI, Qing ZHU, et al. Rapid Identification and Analysis of Chemical Components in Heartwood of
孟晓伟, 蔡定吉, 朱清, 等. 基于UPLC-Q-TOF-MS/MS技术快速鉴定交趾黄檀心材中化学成分[J]. 中国实验方剂学杂志, 2020,26(9):143-156. DOI: 10.13422/j.cnki.syfjx.20200647.
Xiao-wei MENG, Ding-ji CAI, Qing ZHU, et al. Rapid Identification and Analysis of Chemical Components in Heartwood of
目的:
2
应用超高效液相色谱-四极杆-飞行时间高分辨率质谱(UPLC-Q-TOF-MS/MS)技术快速分析与鉴定黄檀属植物交趾黄檀心材甲醇提取物中的化学成分。
方法:
2
采用UPLC RRHD SB-C
18
色谱柱(3.0 mm×100 mm,1.8 μm),流速0.3 mL·min
-1
,进样量1 μL,流动相0.1%甲酸水溶液(A)-乙腈(B)梯度洗脱(0~0.01 min,5%B;0.01~2 min,5%~22%B;2~28 min,22%~35%B;28~45 min,35%~44%B;45~55 min,44%~100%B;55~57 min,100%B;57~57.10 min,100%~5%B);选择电喷雾离子源,负离子模式采集数据,采集范围
m
/
z
100~1 500。
结果:
2
从交趾黄檀心材的甲醇提取物中初步鉴定了101个化学成分,包括22个黄酮类,34个异黄酮类,15个新黄酮类,18个其他类型黄酮和12个其他类成分。
结论:
2
UPLC-Q-TOF-MS/MS技术方法可快捷、准确、较全面地鉴定交趾黄檀心材中的化学成分,交趾黄檀心材中主要化学成分为异黄酮类、黄酮类和新黄酮类成分,对揭示其内在物质基础具有重要意义,也为其作为潜在的中药新资源开发提供了实验依据。
Objective:
2
To rapidly identify and analysis the chemical constituents in the methanol extract of heartwood of
Dalbergia cochinchinensis
by ultra high performance liquid chromatography-quadrupole-time-of-flight high resolution mass spectrometry (UPLC-Q-TOF-MS/MS).
Method:
2
UPLC RRHD SB-C
18
column (3.0 mm×100 mm
1.8 μm) was used for chromatographic separation with acetonitrile-0.1% formic acid solution as the mobile phase for gradient elution (0-0.01 min
5%B; 0.01-2 min
5%-22%B; 2-28 min
22%-35%B; 28-45 min
35%-44%B; 45-55 min
44%-100%B; 55-57 min
100%B; 57-57.10 min
100%~5%B) at a flow rate of 0.3 mL·min
-1
. The analytes were determined in negative ion mode with electrospray ionization (ESI) and data collection range of
m
/
z
100-1 500.
Result:
2
A total of 101 chemical constituents were identified
including 22 flavonoids
34 isoflavones
15 neoflavonoids
18 other flavonoids and 12 other components.
Conclusion:
2
UPLC-Q-TOF-MS/MS technique can quickly
accurately and comprehensively identify the chemical constituents in the heartwood of
D
.
cochinchinensis
. Isoflavones
flavonoids and neoflavonoids are the main chemical constituents in the heartwood of
D
.
cochinchinensis
which is of great significance to reveal its internal material basis and provides experimental basis for this plant to be developed as a potential new resource of traditional Chinese medicine.
黄檀属交趾黄檀超高效液相色谱-四极杆-飞行时间高分辨率质谱(UPLC-Q-TOF-MS/MS)化学成分黄酮类异黄酮类新黄酮类
Dalbergiaheartwood of D. cochinchinensisultra high performance liquid chromatography-quadrupole-time-of-flight high resolution mass spectrometry (UPLC-Q-TOF-MS/MS)chemical constituentsflavonoidsisoflavonesneoflavonoids
国家质量监督检验检疫总局,中国国家标准化管理委员会.GB/T18107-2017红木[M].北京:中国标准出版社,2017.
林国网.国标红木包括哪些主要木材[J].湖南林业,2010(3):24.
吴培衍,张荣标,张金文.红木树种新贵——交趾黄檀[J].福建热作科技,2016,41(4):51-54.
何凌.西双版纳珍稀用材树种栽培利用现状及建议[J].热带农业科技,2014,37(3):40-42.
李瑞聪.闽南山地引种交趾黄檀种源初步表现[J].绿色科技,2017(15):127-129.
A PALASUWN, S SOOGARUN, T LERTLUM, et al.Inhibition of heinz body induction in an in vitro model and total an-tioxidant activity of medicinal Thai plants[J].Asian Pac J Cancer P,2005,6(4):458-463.
D M X DONNELLY, B J NANGLE, J P PRENDERGAST, et al.Dalbergia species-Ⅴ.Isolation of R-5-O-methyllatifolin from Dalbergia cochinchinensis,Pierre.[J].Phytochemistry,1968,7(4):647-649.
V PATHAK, O SHIROTA, S SEKITA, et al.Antiandrogenic phenolic constituents from Dalbergia cochinchinensis[J].Phytochemistry,1997,46(7):1219-1223.
W PORNPUTTAPITAK.Chemical constituents of the branches of Anomianthus dulcis and the branches of Dalbergia cochinchinensis Pierre.[D].Bangkok:Silpakorn University,2008.
O SHIROTA, V PATHAK, S SEKITA, et al.Phenolic constituents from Dalbergia cochinchinensis[J].J Nat Prod,2003,66(8):1128-1131.
J SVASTI, C SRISOMSAP, S TECHASAKUL, et al.Dalcochinin-8′-O-β-D-glucoside and its β-glucosidase enzyme from Dalbergia cochinchinensis[J].Phytochemistry,1999,50(5):739-743.
Y X ZHONG, R M HUANG, X J ZHOU, et al.Chemical constituents from the heartwood of Dalbergia cochinchinensis[J].Nat Prod Res Dev,2013,25(11):1515-1518.
刘荣华,林帅,张普照,等.黄檀属植物新黄酮类化学成分与药理活性研究进展[J].中国中药杂志,2017,42(24):4707-4715.
刘荣华,温新潮,张普照,等.交趾黄檀异黄酮类化学成分研究[J].中草药,2015,46(19):2851-2855.
孟晓伟,王定清,陈兰英,等.阔叶黄檀心材新黄酮类化学成分研究[J].中国中药杂志,2019,44(6):1186-1192.
李雪亮,陈兰英,官紫祎,等.降香新黄酮latifolin对大鼠急性心肌缺血影响及介导Nrf2信号通路机制研究[J].中国中药杂志,2017,42(20):3974-3982.
N SEKINE, T ASHITANI, T MURAYAMA, et al.Bioactivity of latifolinand its derivatives against termites and fungi[J].J Agric Food Chem,2009,57(13):5707-5712.
张妮,陈兰英,骆瑶,等.降香新黄酮latifolin通过Nrf2/HO-1通路抗H9c2细胞缺氧复氧损伤作用研究[J].中药材,2019,42(7):1629-1634.
魏文峰,王昶,张树明,等.串联质谱技术在中药化学成分分析中的应用研究进展[J].中国实验方剂学杂志,2013,19(14):351-354.
雷军,边清泉,罗娅君.高效液相色谱-质谱联用技术在分析中草药黄酮类化学成分方面的应用[J].绵阳师范学院学报,2012,31(5):51-56.
张伽妹,郭晓宇,全庆华,等.基于LTQ-Orbitrap高分辨质谱技术的柘木化学成分分析[J].质谱学报,2018,39(5):599-606.
刘建群,舒积成,张锐,等.新西兰牡荆苷等4种碳苷黄酮的电喷雾质谱裂解规律研究[J].中国实验方剂学杂志,2013,19(8):72-76.
冯阳,陈玉梅,辛华.金樱子黄酮类成分的UPLC-Q-TOF-MS分析[J].中国实验方剂学杂志,2017,23(12):71-76.
王燕,李晓波,李俊杰,等.5,6,7,4′-四羟基黄酮和5,6,7,4′-四甲氧基黄酮高分辨电喷雾串联质谱裂解规律对比研究[J].质谱学报,2016,37(5):385-392.
李想.黄酮醇类化合物ESI-IT-MSn质谱裂解规律的量子化学研究[D].佳木斯:佳木斯大学,2015.
郑国帅,赵鑫,范国荣.黄酮醇糖苷及其结构类似物的质谱裂解规律研究[J].药学服务与研究,2015,15(3):196-200.
吴茵,白万军,魏欣.基于UPLC-Q-TOF-MS技术分析木蝴蝶中化学成分[J].中国实验方剂学杂志,2019,25(2):196-200.
杨彬,王媛,田梦,等.基于UPLC-Q-TOF-MS/MS研究法半夏中甘草化学成分[J].中国实验方剂学杂志,2017,23(3):45-49.
赵安琦,李博,张慧荣,等.应用电喷雾质谱技术分析鉴定桑叶中黄酮类化合物[J].分子科学学报,2014,30(4):293-298.
李慧,万乐人,王弘,等.异黄酮同分异构体的ESI-IT-TOF质谱特征及区别[J].高等学校化学学报,2007,28(12):2284-2289.
刘亚丽,魏韶锋,宋永贵,等.UPLC/Q-TOF-MS/MS法分析丰城鸡血藤中刺芒柄花素在大鼠肠道菌群中的代谢[J].中国新药杂志,2015,24(23):2715-2723.
方高,张鹏,叶晓岚,等.淡豆豉异黄酮苷及其苷元的电喷雾离子阱质谱分析[J].第二军医大学学报,2013,34(10):1108-1115.
徐英,董静,王弘,等.电喷雾-离子阱-飞行时间质谱联用研究黄酮和异黄酮苷元C环上的裂解规律[J].高等学校化学学报,2009,30(1):46-50.
池玉梅,朱华云,居羚,等.高效液相-四极杆飞行时间串联质谱分析黄蜀葵花中黄酮醇类化合物[J].分析化学,2009,37(2):227-231.
丛浦珠,李笋玉.天然有机质谱学[M].北京:中国医药科技出版社,2002:556-718.
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