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Inhibitory effects of curcumin on passive cutaneous anaphylactoid response and compound 48/80-induced mast cell activation

  • Choi, Yun-Ho (Department of Anatomy, Chonbuk National University Medical School) ;
  • Yan, Guang-Hai (Department of Anatomy, Chonbuk National University Medical School) ;
  • Chai, Ok-Hee (Department of Anatomy, Chonbuk National University Medical School) ;
  • Song, Chang-Ho (Department of Anatomy, Chonbuk National University Medical School)
  • Received : 2010.01.14
  • Accepted : 2010.03.02
  • Published : 2010.03.30

Abstract

Mast cells participate in allergies and infl ammation by secreting a variety of pro-infl ammatory mediators. Curcumin, the active component of turmeric, is a polyphenolic phytochemical with anti-tumor, anti-inflammatory, anti-oxidative, and anti-allergic properties. The effects of curcumin on compound 48/80-induced mast cell activation and passive cutaneous anaphylactoid reactions are unknown. In this report, we investigated the influences of curcumin on the passive cutaneous anaphylactoid response in vivo and compound 48/80-induced mast cell activation in vitro. The mechanism of action was examined by calcium uptake measurements and cAMP assays in mast cells. Curcumin significantly attenuated the mast cellmediated passive cutaneous anaphylactoid reaction in an animal model. In agreement with this in vivo activity, curcumin suppressed compound 48/80-induced rat peritoneal mast cell (RPMC) degranulation and histamine release from RPMCs. Moreover, compound 48/80-elicited calcium uptake into RPMCs was reduced in a dose-dependent manner by curcumin. Furthermore, curcumin increased the level of intracellular cAMP and significantly inhibited the compound 48/80-induced reduction of cAMP in RPMCs. These results corroborate the finding that curcumin may have anti-allergic activity.

Keywords

Acknowledgement

Supported by : Korea Research Foundation Grant

References

  1. Akagi M, Katakuse Y, Fukuishi N, Kan T, Akagi R. (1994). Superoxide anion-induced histamine release from rat peritoneal mast cells. Biol Pharm Bull 17: 732-734 https://doi.org/10.1248/bpb.17.732
  2. Allansmith MR, Baird RS, Ross RN, Barney NP, Bloch KJ. (1989). Ocular anaphylaxis induced in the rat by topical application of compound 48/80. Dose response and time course study. Acta Ophthalmol Suppl 192: 145-153
  3. Choi YH, Yan GH, Chai OH, et al. (2006a). Inhibition of anaphylaxis-like reaction and mast cell activation by water extract from the fruiting body of Phellinus linteus. Biol Pharm Bull 29: 1360-1365 https://doi.org/10.1248/bpb.29.1360
  4. Choi YH, Yan GH, Chai OH, et al. (2006b). Inhibitory eff ects of Agaricus blazei on mast cell-mediated anaphylaxis-like reactions. Biol Pharm Bull 29: 1366-1371 https://doi.org/10.1248/bpb.29.1366
  5. Cochrane DE, Douglas WW. (1974). Calcium-induced extrusion of secretory granules (exocytosis) in mast cells exposed to 48-80 or the ionophores A-23187 and X-537A. Proc Natl Acad Sci USA 71: 408-412 https://doi.org/10.1073/pnas.71.2.408
  6. Cui SX, Qu XJ, Xie YY, et al. (2006). Curcumin inhibits telomerase activity in human cancer cell lines. Int J Mol Med 18: 227-231
  7. Ennis M, Pearce FL, Weston PM. (1980). Some studies on the release of histamine from mast cells stimulated with polylysine. Br J Pharmacol 70: 329-334 https://doi.org/10.1111/j.1476-5381.1980.tb07940.x
  8. Eybl V, Kotyzova D, Koutensky J. (2006). Comparative study of natural antioxidants - curcumin, resveratrol and melatonin - in cadmium-induced oxidative damage in mice. Toxicology 225: 150-156 https://doi.org/10.1016/j.tox.2006.05.011
  9. Fukuishi N, Sakaguchi M, Matsuura S, Nakagawa C, Akagi R, Akagi M. (1997). The mechanisms of compound 48/80-induced superoxide generation mediated by A-kinase in rat peritoneal mast cells. Biochem Mol Med 61: 107-113 https://doi.org/10.1006/bmme.1997.2594
  10. Galli SJ. (1993). New concepts about the mast cell. N Engl J Med 328: 257-265 https://doi.org/10.1056/NEJM199301283280408
  11. Hachisuka H, Nomura H, Sakamoto F, Mori O, Okubo K, Sasai Y. (1988). Effect of antianaphylactic agents on substance-P induced histamine release from rat peritoneal mast cells. Arch Dermatol Res 280: 158-162 https://doi.org/10.1007/BF00456847
  12. Haddad JJ, Safieh-Garabedian B, Saade NE, et al. (2001). Chemioxyexcitation (delta pO2/ROS)-dependent release of IL-1 beta, IL-6 and TNF-alpha: evidence of cytokines as oxygen-sensitive mediators in the alveolar epithelium. Cytokine 13:138-147 https://doi.org/10.1006/cyto.2000.0789
  13. Harvima RJ, Harvima IT, Fraki JE. (1988) Optimization of histamine radio enzyme assay with purifi ed histamine-Nmethyltransferase. Clin Chim Acta 171: 247-256 https://doi.org/10.1016/0009-8981(88)90150-7
  14. Holmegaard SN. (1982). Measurement of cyclic AMP in clinical investigations. Acta Endocrinol Suppl (Copenh) 249: 1-47
  15. Hoth M, Penner R. (1993). Calcium release-activated calcium current in rat mast cells. J Physiol 465: 359-386 https://doi.org/10.1113/jphysiol.1993.sp019681
  16. Joe B, Lokesh BR. (1994). Role of capsaicin, curcumin and dietary n-3 fatty acids in lowering the generation of reactive oxygen species in rat peritoneal macrophages. Biochim Biophys Acta 1224: 255-263 https://doi.org/10.1016/0167-4889(94)90198-8
  17. Kalesnikoff J, Galli SJ. (2008). New developments in mast cell biology. Nat Immunol 9: 1215-1223 https://doi.org/10.1038/ni.f.216
  18. Kaliner M, Austen KF. (1974). Cyclic AMP, ATP, and reversed anaphylactic histamine release from rat mast cells. J Immunol 112: 664-674
  19. Kurup VP, Barrios CS. (2008). Immunomodulatory eff ects of curcumin in allergy. Mol Nutr Food Res 52: 1031-1039 https://doi.org/10.1002/mnfr.200700293
  20. Lee JH, Kim JW, Ko NY, et al. (2008). Curcumin, a constituent of curry, suppresses IgE-mediated allergic response and mast cell activation at the level of Syk. J Allergy Clin Immunol 121: 1225-1231 https://doi.org/10.1016/j.jaci.2007.12.1160
  21. Matsuda H, Tewtrakul S, Morikawa T, Nakamura A, Yoshikawa M. (2004). Anti-allergic principles from Thai zedoary: structural requirements of curcuminoids for inhibition of degranulation and effect on the release of TNF-${\alpha}$ and IL-4 in RBL-23 cells. Bioorg Med Chem 12: 5891-5898 https://doi.org/10.1016/j.bmc.2004.08.027
  22. Nugroho AE, Ikawati Z, Sardjiman, Maeyama K. (2009). Effects of benzylidencyclopentanone analogues of curcumine on histamine release from mast cells. Biol Pharm Bull 32: 842-849 https://doi.org/10.1248/bpb.32.842
  23. Palomäki VA, Laitinen JT. (2006). The basic secretagogue compound 48/80 activates G proteins indirectly via stimulation of phospholipase D-lysophosphatidic acid receptor axis and 5-HT1A receptors in rat brain sections. Br J Pharmacol 147: 596-606
  24. Petersen LJ, Mosbech H, Skov PS. (1996). Allergen-induced histamine release in intact human skin in vivo assessed by skin microdialysis technique: characterization of factors infl uencing histamine releasability. J Allergy Clin Immunol 97: 672-679 https://doi.org/10.1016/S0091-6749(96)70313-5
  25. Suzuki M, Nakamura T, Iyoki S, et al. (2005). Elucidation of anti-allergic activities of curcumin-related compounds with a special reference to their anti-oxidative activities. Biol Pharm Bull 28: 1438-1443 https://doi.org/10.1248/bpb.28.1438
  26. Tasaka K, Mio M, Okamoto M. (1986). Intracellular calcium release induced by histamine releasers and its inhibition by some antiallergic drugs. Ann Allergy 56: 464-469
  27. Turner H, Kinet JP. (1999). Signalling through the highaffinity IgE receptor Fc epsilonRI. Nature 402s(6760 Suppl): B24-30
  28. Weston MC, Peachell PT. (1998). Regulation of human mast cell and basophil function by cAMP. Gen Pharmacol 31: 715-719 https://doi.org/10.1016/S0306-3623(98)00080-9
  29. Yoshii N, Mio M, Tasaka K. (1988). Ca uptake and Ca releasing properties of the endoplasmic reticulum in rat peritoneal mast cells. Immunopharmacology 16: 107-113 https://doi.org/10.1016/0162-3109(88)90019-7
  30. Yoshimura T, Hamaguchi E, Usami E, et al. (2004). Increased in vitro release of interferon-gamma from ampicillinstimulated peripheral blood mononuclear cells in Stevens-Johnson syndrome. Biol Pharm Bull 27: 929-931 https://doi.org/10.1248/bpb.27.929

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