Planta Med 2012; 78(6): 641-648
DOI: 10.1055/s-0031-1298240
Analytical Studies
Original Papers
© Georg Thieme Verlag KG Stuttgart · New York

Metabolic Discrimination of Rhizoma Coptidis from Different Species Using 1H NMR Spectroscopy and Principal Component Analysis

Gang Fan1 , Ling-hui Tao2 , Qing-hong Yue1 , Ting-ting Kuang1 , Ce Tang1 , Yong-dong Yang1 , Wei-zao Luo3 , Xiang-dong Zhou2 , Yi Zhang1
  • 1College of Ethnic Medicine, Chengdu University of Traditional Chinese Medicine, Chengdu, China
  • 2Department of Medicinal Chemistry, College of Pharmacy, Third Military Medical University, Chongqing, China
  • 3Chongqing Academy of Chinese Materia Medica, Chongqing, China
Further Information

Publication History

received August 25, 2011 revised January 3, 2012

accepted January 16, 2012

Publication Date:
07 February 2012 (online)

Abstract

Rhizoma Coptidis, a broadly used medicinal plant, originates from the dried rhizomes of three species in Chinese pharmacopoeia, namely, Coptis chinensis Franch, Coptis deltoidea C. Y. Cheng et Hsiao, and Coptis teeta Wall. In this study, a novel approach using 1H NMR spectroscopy combined with multivariate analysis was introduced to differentiate the three species and identify potential metabolic markers for better controlling the quality of Rhizoma Coptidis. A broad range of metabolites including alkaloids, sugars, organic acids, amino acids, and fatty acids present in Rhizoma Coptidis were detected by means of 1H NMR spectroscopy. Principal component analysis (PCA) of the 1H NMR data set showed a clear separation between all samples by PC1 and PC3, and some metabolites that could be responsible for the discrimination of the three species were identified. An analysis of variance (ANOVA) was performed to statistically verify the significance of differences in metabolite levels between species. By combining PCA and ANOVA, significantly higher contents of palmatine, coptisine, epiberberine, columbamine, and fatty acids together with lower contents of jateorrhizine were found in Coptis chinensis, whereas Coptis deltoidea and Coptis teeta showed the highest levels of sucrose and chlorogenic acid, respectively. This study indicates that metabolites of Rhizoma Coptidis vary with the species and the proposed method is suitable for metabolic fingerprinting analysis to check the genuine origin of Rhizoma Coptidis.

Supporting Information

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Prof. Yi Zhang

College of Ethnic Medicine
Chengdu University of Traditional Chinese Medicine

No. 1166 Liutai Road

Chengdu 611137

China

Phone: +86 28 61 80 02 74

Email: tcmzhangyi@yahoo.cn

Prof. Xiang-dong Zhou

Department of Medicinal Chemistry
College of Pharmacy
Third Military Medical University

No. 30 Gaotanyan Road

Chongqing 400038

China

Phone: +86 23 68 75 37 01

Email: zhouxd88@126.com