Planta Med 2000; 66(6): 541-544
DOI: 10.1055/s-2000-8607
Original Paper
Georg Thieme Verlag Stuttgart · New York

New Antimicrobial Mono- and Sesquiterpenes from Soroseris hookeriana Subsp. erysimoides

J. C. Meng1 , Q. X. Zhu2 , R. X. Tan1,*
  • 1 Institute of Functional Biomolecule, State Key Laboratory of Pharmaceutical Biotechnology, School of Life Sciences, Nanjing University, Nanjing, People's Republic of China
  • 2 State Key Laboratory for Applied Organic Chemistry at Lanzhou University, Lanzhou, People's Republic of China
Further Information

Publication History

Publication Date:
31 December 2000 (online)

Abstract

A new monoterpene and a new guaianolide were isolated from the aerial parts of the Tibetan medicinal plant Soroseris hookeriana subsp. erysimoides (Asteraceae), in addition to (1R,4R,5R)-5-hydroxybornan-2-one 5-O-β-D-glucopyranoside, β-sitosterol, daucosterol, diosmetin, isoluteolin, p-methoxybenzoic acid, isovanillic acid, two phenylmethanol derivatives (vanilloloside and phenylmethanol glucopyranoside), and five guaianolides [3β,8β-dihyroxyguaia-4(15),10(14),11(13)-triene-12,6α-olide, dentalactone, 10α-hydroxy-8-deoxy-10,14-dihydrodeacylcinaropicrin, glucozaluzanin C and 8-epideacylcinaropicrin glucoside]. By a combination of spectroscopic methods (IR, EI-MS, 1H- and 13C-NMR, and DEPT), the structure of the new guaianolide was established as 3β,8β-dihydroxy-11αH-guaia-4(15),10(14)-diene-12,6α-olide, and that of the new monoterpene as (1R,4R,5R)-5-benzoyloxybornan-2-one. The antimicrobial activity of all isolates except the two sterols were measured using Escherichia coli, Bacillus subtilis, Staphylococcus aureus, Candida albicans, Aspergillus niger, and Trichophyton rubrum as test microorganisms. The new guaianolide was shown to be equally active (MIC: 50 μg/ml) against E. coli, B. subtilis and A. niger. The new monoterpene inhibited exclusively the growth of B. subtilis with MIC at 25 μg/ml. p-Methoxybenzoic acid and isovanillic acid were inhibitory against A. niger (MIC: 25 μg/ml), the latter being also active against B. subtilis with MIC at 25 μg/ml. The flavonoids diosmetin and isoluteolin almost equally inhibited the growth of B. subtilis (MIC: 25 μg/ml) and the human pathgenic fungus T. rubrum (MIC: 50 μg/ml).

References

  • 1 Jiangsu College of New Medicine.. The Dictionary of the Traditional Chinese Medicine,. Shanghai Press of Science & Technology, Shanghai; 1986;: 1978-9
  • 2 Tan  R X,, Lu  H,, Wolfender  J L,, Yu  T T,, Zheng  W F,, Yang  L et al.. Mono- and sesquiterpenes and antifungal constituents from Artemisia species.  Planta Medica. 1999;;  65 64-7
  • 3 Kubo  I,, Himejima  M,, Muroi  H.. Antimicrobial activity of flavor components of cardamon Elettaria cardamomum (Zingiberaceae) seed.  Journal of Agricultural and Food Chemistry. 1991;;  39 1984-6
  • 4 Fujita  M,, Nagai  M,, Inoue  T.. Carbon-13 nuclear magnetic resonance spectral study.  Effect of O-methylation of ortho-substituted phenols on the aryl carbon shielding and its application to interpretation of the spectra of some flavonoids.. Chemical & Pharmaceutical Bulletin  1982;;  30 1151-6
  • 5 Morel  I,, Lescoat  G,, Cogrel  P,, Seagent  O,, Pasdeloup  N,, Brissot  P et al.. Antioxidant and iron-chelating activities of the flavonoids catechin, quercetin and diosmetin on iron loaded rat hepatocyte cultures.  Biochemical Pharmacology. 1993;;  45 13-9
  • 6 Ramanathan  R,, Das  N P,, Tan  C H.. Inhibitory effect of 2-hydroxy chalcone and other flavonoids on human cancer cell proliferation.  Int. J. Oncol.. 1993;;  3 115-9
  • 7 Lee  I K,, Song  K S,, K-Ch  J,, Kim  H M,, Oh  Goo-Taeg,, Yoo  I D.. Tumor cell growth inhibition and antioxidant activity of flavonoids from the stem bark of Cudrania tricuspidata. .  Han'guk Nonghwa Hakhoechi. 1994;;  37 105-9
  • 8 Bromilow  J,, Brownlee  T TC,, Craik  D J,, Fiske  P R,, Rowe  J E,, Sadek  M.. Carbon-13 substituent chemical shifts in the side-chain carbons of aromatic systems: the importance of π-polarization in determining chemical shifts.  Journal of the Chemical Society, Perkin Transactions II. 1981;;  5 753-9
  • 9 Lai  A,, Monduzzi  M,, Saba  G.. Carbon-13 NMR studies on catechol, phenol and benzene derivatives of biological relevance.  Magnetic Resonance in Chemistry. 1985;;  23 379-82
  • 10 Rittich  B,, Pirochtova  M,, Hrib  J,, Jurtikova  K,, Dolezal  P.. The antifungal activity of some aliphatic and aromatic acids.  Collection Czechoslovak Chemical Communication. 1992;;  57 1134-42
  • 11 Yun-Choi  H S,, Kang  S S,, Kim  M H,, Jung  K H.. Anti-thrombotic effect of analogs of protocatechuic acid and gallic acid.  Yakhak Hoechi. 1993;;  37 453-7
  • 12 Chang  W S,, Yan  G F,, Chiang  H C.. Inhibitory effect of phenolic carboxylic acid analogs on xanthine oxidase.  Anticancer Research. 1995;;  15 2097-100
  • 13 Ida  Y,, Satoh  Y,, Ohtsuka  M,, Nagasao  M,, Shoji  J.. Phenolic constituents of Phellodendron amurense Bark.  Phytochemistry. 1994;;  35 209-15
  • 14 Grindley  T B,, Wickramage  C.. A novel approach to the synthesis of C-glycosyl compounds: the Witting rearrangement.  Journal of Carbohydrate Chemistry. 1988;;  7 661-85
  • 15 Zhong  Y,, Pang  Q,, Zhang  H Y,, Tao  A Q,, Zhang  Z Q,, Gao  M Y et al.. Synthesis and anticonvulsive effect of gastrodigenin homologs and analogs.  Sichuan Yixueyuan Xuebao. 1984;;  15 17-22
  • 16 Orihara  Y,, Noguchi  T,, Furuya  T.. Biotransformation of (+)-camphor by cultured cells of Eucalyptus perriniana. .  Phytochemistry. 1994;;  35 941-5
  • 17 Seto  M,, Miyase  T,, Fukushima  S.. Sesquiterpene lactones from Ixeris dentata Nakai.  Chemical & Pharmaceutical Bulletin. 1986;;  34 4170-6
  • 18 Chung  H S,, Woo  W S,, Lim  S J.. Dentalactone, a sesquiterpene from Ixeris dentata. .  Phytochemistry. 1994;;  35 1583-4
  • 19 Tan  R X,, Jakupovic  F,, Bohlmann  F,, Jia  Z J,, Schuster  S.. Sesquiterpene lactone from Vladimira souliei.  Phytochemistry. 1990;;  29 1209-12
  • 20 Nikaido  T,, Sung  Y,, Ohmoto  T,, Sankawa  U.. Inhibitory of cyclic AMP phosphodiesterase in medicinal plants. VI. Inhibitory effect of cyclic adenosine 3′,5′-monophosphate phosphodiesterase in Phyllostachys nigra munro var. Henonis Stapf. and Phragmites communis Trin., and inhibition by related compounds.  Chemical & Pharmaceutical Bulletin. 1984;;  32 578-84

Prof. R. X. Tan

School of Life Sciences Nanjing University

Nanjing 210093

P.R. China

Email: rxtan@netra.nju.edu.cn

Phone: & +86 25 359 3201

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