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  • ENGLISH
  • P-ISSN3022-6805
  • E-ISSN3022-6791
  • KCI

Validation of chrysophanol and cordycepin as marker compounds for standardization of a new herbal mixture AST2017-01

셀메드 / CELLMED, (P)3022-6805; (E)3022-6791
2017, v.7 no.3, pp.14-14
장재범 (호서대학교)
김태영 (Gahwa Well Food Co.)
정현자 (호서대학교)
김형민 (경희대학교)

Abstract

Rumex crispus (RC) or Cordyceps militaris (CM) has been used traditionally to treat various diseases and has been also consumed as a functional food made by humanitas medicine concept. We prepared a new herbal mixture, AST2017-01 which is mainly composed of processed (Beopje)-RC (P-RC) and -CM (P-CM). This study aims to validate marker compounds (chrysophanol and cordycepin) in P-RC and P-CM and water extracted-RC and -CM using liquid chromatography-tandem mass spectrometry. In addition, we analyzed contents of chrysophanol and cordycepin in AST2017-01. The linarites of chrysophanol and cordycepin were obtained in calibration curve with a coefficient of correlation of 0.999. The results showed that the concentrations of chrysophanol and cordycepin in P-RC and P-CM were almost 1.70 and 1.23 fold higher than that in RC and CM, respectively. Furthermore, contents of chrysophanol and cordycepin in the AST2017-01 are approximately 0.13% and 0.028%, respectively. In conclusion, these results indicate that chrysophanol and cordycepin were validated as marker compounds in the AST2017-01.

keywords
Rumex crispus, Cordyceps militaris, liquid chromatography-tandem mass spectrometry, chrysophanol, cordycepin

참고문헌

1.

Cho EJ, Um SI, Han JH, Kim B, Han SB, Jeong JH, Kim HR, Kim I, Whang WK, Lee E, Sohn UD. The cytoprotective effect of Rumex Aquaticus Herba extract against hydrogen peroxideinduced oxidative stress in AGS cells. Arch Pharm Res. 2016;39:1739-1747.

2.

Das SK, Masuda M, Sakurai A, Sakakibara M. Medicinal uses of the mushroom Cordyceps militaris: current state and prospects. Fitoterapia 2010;81:961-968.

3.

Doui M, Kakiuchi N, Mikage M. Chemical differences between steamed rhubarbs with or without pre-processing with liquor. J Trad Med. 2010;27:109-114.

4.

Ha BG, Yonezawa T, Son MJ, Woo JT, Ohba S, Chung UI, Yagasaki K. Antidiabetic effect of nepodin, a component of Rumex roots, and its modes of action in vitro and in vivo. Biofactors. 2014;40:436-447.

5.

Jeong GT, Lee KM, Park DH. Study of Antimicrobial and Antioxidant Activities of Rumex crispus Extract. Korean Chem. Eng. Res. 2006;44:81-86.

6.

KFDA. Guideline for standard of health functional food. Korea Food & Drug Administration. Seoul, Korea. 2017: 6-13.

7.

Kim HG, Shrestha B, Lim SY, Yoon DH, Chang WC, Shin DJ, Han SK, Park SM, Park JH, Park HI, Sung JM, Jang Y, Chung N, Hwang KC, Kim TW. Cordycepin inhibits lipopolysaccharide-induced inflammation by the suppression of NF-kappaB through Akt and p38 inhibition in RAW 264.7 macrophage cells. Eur J Pharmacol. 2006;545:192-199.

8.

Kim JS, Kim HJ, Ma JY, Kim JM. Studies on the processing of herbal medicines (II)-HPLC analysis of standard compounds of unprocessed and processed herbal medicines. Korean J Pharmacogn. 2002;33:305-307.

9.

Lee DH, Kwon HW, Kim HH, Lim DH, Nam GS, Shin JH, Kim YY, Kim JL, Lee JJ, Kwon HK, Park HJ. Cordycepinenriched WIB801C from Cordyceps militaris inhibits ADPinduced [Ca(2+)] i mobilization and fibrinogen binding via phosphorylation of IP 3R and VASP. Arch Pharm Res. 2015;38:81-97.

10.

Lee JR, Jo MJ, Park SM, Kim SC, Park SJ. Establishment of UPLC method for analysis of liquiritigenin and studies on the processing of licorice for enhancement of liquiritigenin content. Korean J Orient Med Prescrip. 2010;18:145-154.

11.

Lee MJ, Song HJ, Jeong JY, Park SY, Sohn UD. Anti-Oxidative and Anti-Inflammatory Effects of QGC in Cultured Feline Esophageal Epithelial Cells. Korean J Physiol Pharmacol. 2013;17:81-87.

12.

Lee YM, Kim JS. Studies on the processing of herbal medicines (VI), HPLC analysis of standard compounds of unprocessed and processed herbal medicines. Korean J Orien Med. 2003;9:69-72.

13.

Orbán-Gyapai O, Raghavan A, Vasas A, Forgo P, Hohmann J, Shah ZA. Flavonoids isolated from Rumex aquaticus exhibit neuroprotective and neurorestorative properties by enhancing neurite outgrowth and synaptophysin. CNS Neurol Disord Drug Targets. 2014;13:1458-1464.

14.

Qian G, Leung SY, Lu G, Leung KS. Optimization and validation of a chromatographic method for the simultaneous quantification of six bioactive compounds in Rhizoma et Radix Polygoni Cuspidati. J Pharm Pharmacol. 2008;60:107-113.

15.

Rao YK, Fang SH, Wu WS, Tzeng YM. Constituents isolated from Cordyceps militaris suppress enhanced inflammatory mediator's production and human cancer cell proliferation. J Ethnopharmacol. 2010;131:363-367.

16.

Ruma IM, Putranto EW, Kondo E, Watanabe R, Saito K, Inoue Y, Yamamoto K, Nakata S, Kaihata M, Murata H, Sakaguchi M. Extract of Cordyceps militaris inhibits angiogenesis and suppresses tumor growth of human malignant melanoma cells. Int J Oncol. 2014;45:209-218.

17.

Ryu HW, Song HH, Shin IS, Cho BO, Jeong SH, Kim DY, Ahn KS, Oh SR. Suffruticosol A isolated from Paeonia lactiflora seedcases attenuates airway inflammation in mice induced by cigarette smoke and LPS exposure. J Functional Foods. 2015;17:774-784.

18.

Seo KH, Ryu HW, Park MJ, Park KH, Kim JH, Lee MJ, Kang HJ, Kim SL, Lee JH, Seo WD. Mangosenone F, a furanoxanthone from Garciana mangostana, induces reactive oxygen species-mediated apoptosis in lung cancer cells and decreases xenograft tumor growth. Phytother Res. 2015;29:1753-1760.

19.

Shin YW, Kim DH, Kim NJ. Studies on the processing of crude drugs (VII)—on the constituents and biological activities of Gardeniae Fructus by processing. Korean J Pharmacogn. 2003;34:45-54.

20.

Song J, Wang Y, Teng M, Zhang S, Yin M, Lu J, Liu Y, Lee RJ, Wang D, Teng L. Cordyceps militaris induces tumor cell death via the caspase dependent mitochondrial pathway in HepG2 and MCF 7 cells. Mol Med Rep. 2016;13:5132-5140.

21.

Won SY, Park EH. Anti-inflammatory and related pharmacological activities of cultured mycelia and fruiting bodies of Cordyceps militaris. J Ethnopharmacol. 2005;96:555-561.

22.

Yoou MS, Jin MH, Lee SY, Lee SH, Kim B, Roh SS, Choi IH, Lee MS, Kim HM, Jeong HJ. Cordycepin Suppresses Thymic Stromal Lymphopoietin Expression via Blocking Caspase-1 and Receptor-Interacting Protein 2 Signaling Pathways in Mast Cells. Biol Pharm Bull. 2016;39:90-96.

23.

Yoou MS, Yoon KW, Choi Y, Kim HM, Jeong HJ. Cordycepin diminishes thymic stromal lymphopoietin-induced interleukin-13 production. Eur J Pharmacol. 2017;802:1-6.

24.

Yue K, Ye M, Zhou Z, Sun W, Lin X. The genus Cordyceps: a chemical and pharmacological review. J Pharm Pharmacol. 2013;65:474-493.

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