Investigation of the active components in Tripterygium wilfordii leading to its acute hepatotoxicty and nephrotoxicity

被引:89
作者
Li, Xin-Xiu [1 ]
Du, Fu-Ying [1 ]
Liu, Hui-Xiang [1 ]
Ji, Jian-Bo [1 ]
Xing, Jie [1 ]
机构
[1] Shandong Univ, Sch Pharmaceut Sci, Jinan 250012, Peoples R China
基金
中国国家自然科学基金;
关键词
Tripterygium wilfordii; Active components; Toxicity; Hematology; Metabolism; TRIPTOLIDE; TOXICITY; RATS; BIOACTIVATION; METABOLISM; PATHWAYS; MEDICINE;
D O I
10.1016/j.jep.2015.01.004
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Ethnopharmacological relevance: The traditional herbal medicine Triptetygium wilfordii Hook. f. (TW) has been widely used for the treatment of rheumatoid arthritis and autoimmune disease in the clinic. However, adverse reactions of TW including hepatotoxicity and nephrotoxicity have been frequently reported. Terpenes and alkaloids are among the most important active components in TW. Triptolide (TP), a major terpene in TW, has been found to induce toxicity, and metabolic pathways could lead to detoxification of TP. In this study, whether other major terpenes or alkaloids in TW contribute to its toxicity was investigated. The role of metabolic eliminations in their potential detoxification process was also evaluated. Materials and methods: The toxicity of TW and its five major active components (one terpene and four alkaloids) in mice was evaluated in terms of mortality and blood biochemical levels (ALT, AST, BUN and CREA). TP was used as a positive control. Metabolic pathways leading to potential detoxification of TW or its two representative components (triptonide and wilforgine) were evaluated in glutathione (GSH)-depleted (treated with L-buthionine-S,R-sulfoxinine, BSO) and aminobenzotriazole (ABT; a nonspecific inhibitor for P450s)-treated mice. Results: In normal mice, the major metabolic pathways for the terpene compounds TP and triptonide (TN) were hydroxylation and cysteine conjugation, and the alkaloid wilforgine (WG) mainly underwent oxidative metabolism and hydrolysis. In ABT/BSO-treated mice, the hydroxylated metabolites of TP, TN and WG were found at a lower level than normal mice, and the level of cysteine conjugates of TN increased probably due to the stress response. Compared with normal mice, mortality and levels of ALT (but not BUN) were significantly higher (P < 0.01) in TW (or TP)-treated mice (1.2 mg kg(-1)), indicating the acute toxicity (may not nephrotoxicity) of TW and its active component TP. Pretreatment with ABT and/or BSO increased the acute toxicity (including hepatotoxicity and nephrotoxicity) caused by TW or TP. No significant toxicity was found for TN or four alkaloids in normal mice or ABT/BSO-treated mice. Conclusions: TP was probably the main contributor to the toxicity of TW, and the terpene TN and alkaloids in TW may be of no toxicological concern at dosage levels up to 20-fold of the therapeutic dose. Metabolic eliminations to less reactive metabolites implied a high potential for detoxification of TW, and caution should be taken for TW clinical use during co-administration with other CYP inhibitors or GSH-depleting agents. (C) 2015 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:238 / 243
页数:6
相关论文
共 18 条
[1]   Mechanisms of Herb-Induced Nephrotoxicity [J].
Allard, T. ;
Wenner, T. ;
Greten, H. J. ;
Efferth, T. .
CURRENT MEDICINAL CHEMISTRY, 2013, 20 (22) :2812-2819
[2]   METHODOLOGY FOR ANALYSIS OF TISSUE SULFHYDRYL COMPONENTS [J].
BOYNE, AF ;
ELLMAN, GL .
ANALYTICAL BIOCHEMISTRY, 1972, 46 (02) :639-&
[3]   Evidence of Effectiveness of Herbal Medicinal Products in the Treatment of Arthritis Part 2: Rheumatoid Arthritis [J].
Cameron, Melainie ;
Gagnier, Joel J. ;
Little, Christine V. ;
Parsons, Tessa J. ;
Bluemle, Anette ;
Chrubasik, Sigrun .
PHYTOTHERAPY RESEARCH, 2009, 23 (12) :1647-1662
[4]   Metabolic pathways leading to detoxification of triptolide, a major active component of the herbal medicine Tripterygium wilfordii [J].
Du, Fuying ;
Liu, Zhaohua ;
Li, Xinxiu ;
Xing, Jie .
JOURNAL OF APPLIED TOXICOLOGY, 2014, 34 (08) :878-884
[5]   Metabolite identification of triptolide by data-dependent accurate mass spectrometric analysis in combination with online hydrogen/deuterium exchange and multiple data-mining techniques [J].
Du, Fuying ;
Liu, Ting ;
Liu, Tian ;
Wang, Yongwei ;
Wan, Yakun ;
Xing, Jie .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2011, 25 (20) :3167-3177
[6]   A comprehensive listing of bioactivation pathways of organic functional groups [J].
Kalgutkar, AS ;
Gardner, I ;
Obach, RS ;
Shaffer, CL ;
Callegari, E ;
Henne, KR ;
Mutlib, AE ;
Dalvie, DK ;
Lee, JS ;
Nakai, Y ;
O'Donnell, JP ;
Boer, J ;
Harriman, SP .
CURRENT DRUG METABOLISM, 2005, 6 (03) :161-225
[7]   Triptolide: Progress on research in pharmacodynamics and toxicology [J].
Li, Xiao-Jiaoyang ;
Jiang, Zhen-Zhou ;
Zhang, Lu-yong .
JOURNAL OF ETHNOPHARMACOLOGY, 2014, 155 (01) :67-79
[8]   Sex differences in subacute toxicity and hepatic microsomal metabolism of triptolide in rats [J].
Liu, Li ;
Jiang, Zhenzhou ;
Liu, Jing ;
Huang, Xin ;
Wang, Tao ;
Liu, Jun ;
Zhang, Yun ;
Zhou, Zhixing ;
Guo, Jianlu ;
Yang, Lina ;
Chen, Yun ;
Zhang, Luyong .
TOXICOLOGY, 2010, 271 (1-2) :57-63
[9]   The research on the anti-inflammatory activity and hepatotoxicity of triptolide-loaded solid lipid nanoparticle [J].
Mei, ZN ;
Lia, XK ;
Wu, QR ;
Yang, XL .
PHARMACOLOGICAL RESEARCH, 2005, 51 (04) :345-351
[10]   Simultaneous determination of four sesquiterpene alkaloids in Tripterygium wilfordii Hook. F. extracts by high-performance liquid chromatography [J].
Ouyang, Xiao-Kun ;
Jin, Mi-Cong ;
He, Chao-Hong .
PHYTOCHEMICAL ANALYSIS, 2007, 18 (04) :320-325