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inflammatoire, cytotoxique et

5. Evaluation de l’activité antibactérienne 1. Définitions

5.3. Détermination de la CMI

La CMI permet d’apprécier in vitro la sensibilité d’une souche vis-à-vis d’un antibiotique mais elle ne reflète pas la réalité thérapeutique. Déterminer la CMI, consiste à déterminer la concentration en antibiotique inhibant la croissance bactérienne. La CMI d'un germe donné peut être mesurée par différents procédés de laboratoire [55]

Références :

1. C. Sanchez-Moreno, 2002. Review: methods used to evaluate the free radical

scavenging activity in foods and biological systems. Food. Sci & Technol. Int., 8, 121-137.

2. F. Marc, A. Davin, L. Deglène-Benbrahim, C. Ferrand, 2004. Méthodes d’évaluation

du potentiel antioxydant dans les aliments. Erudit, M/S, Med. Sci., 20, 458-463. 3. D. Huang, B. Ou, R. L. Prior, 2005. The chemistry behind antioxidant capacity

assays. J. Agric & Food Chem., 53, 1841-1856.

4. M. Cuendet, 1999. Recherche de nouveaux composés capteurs de radicaux libres et antioxydants à partir d’une plante d’Indonésie : Fagraeablumei (Loganiaceae) et de trois plantes d’altitude : Bartsiaalpina (Scrophlariaceae), Loiseleuria procumbens (Ericaceae) et Campanula barbata (Campanulaceae). Thèse de doctorat, Faculté des Sciences de l’Université de Lausanne, pp. 2-8

5. Md. N. Alam, N. J. Bristi, Md. Rafiquzzaman, 2013. Review on in vivo and in vitro methods evaluation of antioxidant activity. Saudi Pharm. J., 21, 143-152.

6. J.M. Ricardo da Silva, N. Darmon, Y. Fernandez, S. Mitjavila, 1991. Oxygen free radical scavenger capacity in aqueous models of different procyanidins from grape seeds. J. Agric. & Food Chem., 39, 549-1552.

7. I. F. Benzie, J. Strain, 1996. The ferric reducing ability of plasma (FRAP) as a measure of antioxidant power: The FRAP assay. Analytical Biochemistry., 239, 70-76. 8. R. Re, N. Pellegrini, A. Proteggente, A. Pannala, M. Yang, C. Rice- Evans, 1999. Antioxidant activity applying an improved ABTS radical cation decolorization assay. Free Radic. Biol & Med., 26, 1231-1237.

9. P. Sharma Om, T.K. Bhat, 2009. DPPH antioxidant assay revisited. Food chem., 113 (4), 1202.

10. J. Tabart, C. Kevers, J. Pincemail, J. Defraigne, J. Dommes, 2009. Comparative antioxidant capacities of phenolic compounds meausured by various tests. Food Chem., 113, 1226-1233

11. S. C. Degaulejac, N. Provost, N. Vivas, 1999. Comparative study of polyphenol scavenging activities assessed by different methods, J. Agric. & Food Chem., 47, 425-431.

12. L. Hua, W. Xiaoyu, L. Peihong, L. Yong, W. Hua, 2008. Comparative Study of Antioxidant Activity of Grape (Vitis vinifera) Seed Powder Assessed by Different Methods. J. Food & Drug Anal., 16 (6), 67-73.

13. N. Salah, N. J. Miller, G. Paganga, L. Tijburg, G.P. Bolwell, C. A. Rice-Evans, 1995. Polyphenolic flavanols as scavengers of aqueous phase radicals and as chain-breaking antioxidants. Arch. Biochem & Biophys., 339-346.

14. Y. Z. Cai, M. Sun, J. Xing, Q. Luo, H. Corke, 2006. Structure-radical scavenging activity relationships of phenolic compounds from traditional Chinese medicinal plants. Life Sci., 78, 2872-2888.

15. L. I. Mensor, F. S. Menezes, G. G. Leitao, A. S. Reis, T .dos Santos, C. S. Coube, S. G. Leitao, 2001. Screening of Brazillian plant extracts for antioxidant activity by the use of DPPH free radical method. Phytother. Res., 15, 127-130.

16. F. Nanjo, K. Goto, R. Seto, M. Suzuki, M. Sakai, Y. Hara, 1996. Scavenging effects of tea catechins and their derivatives on 1,1-diphenyl-2-picrylhydrazyl radical. Free Radic. Biol. Med., 21, 895-902

17. B. S. Maataoui, A. Hmyene, S. Hilati, 2006. Avtivites anti-radicalaires d’extraits de jus de fruits du figuier de Barbarie (Opuntia ficus indica). Libanese Sci. J., 7, 3-7. 18. M. Sendra Jose, E. Sentandreu, L. Navarro Jose, 2006. Reduction kinetics of the free

stable radical 2,2-diphenyl-1-picrylhydrazyl (DPPH•) for determination of the antiradical activity of Citrus juices. Eur. Food Res. & Technol., 223, 615-624.

19. J.K. Cherif, I. M'Rabet, M. El Habiri, R. Abidi, 2006. Albrecht-Gary Anne-Marie. Mesure de l'activité antiradicalaire du jus et des peaux d'oranges tunisiennes par le radical DPPH. Fruits, 61, 99-104.

20. G. Angelov, L. Boyadzhiev, S. Georgieva, Antioxydant properties of some Bulgarian wines. Journal of International Scientific Publication: Materials, Methods and Technologies, V.3

21. D. P. Makris, G. Boskou, N. K. Andrikopoulos, 2007. Recovery of antioxidant phenolics from white vinification solid by-products employing water/ethanol mixtures. Bioress. Technol., 98, 2963-2967.

22. P. Iacopini, M. Baldi, P. Storchi, L. Sebastiani, 2008. Catechin, epicatechin, quercetin, rutin and resveratrol in red grape: Content, in vitro antioxidant activity and interactions. J. Food Compos. & Anal., 21, 589-598.

23. B. Bozan, G. Tosun, D. Ozcan. 2008. Study on polyphenol content in the seeds of red grape (Vitis vinifera L) varieties cultivated in Turkey and their antioxydant activity. Food Chem., 209, 426-430.

24. Y. Yilmaz, R. T. Toledo, 2004. Major flavonoids in grape seeds: antioxidant capacity of catechin, epicatechin and gallic acid. J. Agric & Food Chem., 52, 255-260.

25. E. F. Hatzidimitriou, N. Nenadis, M. Z. Tsimidou, 2007. Changes in the catechin and epicatechin content of grape seeds on storage under different water activity (aw) conditions. Food Chem., 105, 1504-1511

26. D. Huang, B. Ou, R. L. Prior, 2005. The chemistry behind antioxidant capacity

assays. J. Agric & Food Chem., 53, 1841-1856.

27. F. Nanjo, K. Goto, R. Seto, M. Suzuki, M. Sakai, Y. Hara, 1996. Scavenging effects of tea catechins and their derivatives on 1,1-diphenyl-2-picrylhydrazyl radical. Free Radic. Biol. Med., 21, 895-902

28. P. Molyneux, 2004. The use of stable free radical diphenylpicrilhydrazyl (DPPH) for estimating antioxidant activity. Songklanakarin. J. Sci. Technol., 26, 211-219.

29. C. Sanchez-Moreno, A. Larrauri Jose, F. Saura-Calixto 1998. A procedure to measure the antiradical efficiency of polyphenols. J. Sci. Food & Agric., 76, 270-276.

30. P. Molyneux, 2004. The use of stable free radical diphenylpicrilhydrazyl (DPPH) for estimating antioxidant activity. Song klanakarin J. Sci. Technol., 26, 211-219.

31. N. J. Miller, C. A. Rice-Evans, 1997. The relative contributions of ascorbic acid and phenolic antioxidants to the total antioxidant activity of orange and apple fruit juices and black currant drink. Food Chem., 60, 331-337.

32. M. B. Arnao, A. Cano, M. Acosta, 2001. The hydrophilic and lipophilic contribution tototal antioxidant activity. Food Chem., 73, 239-244.

33. O. Benavente-Garcia, J. Castillo, J. Lorente, 2000. Antioxidant activity of phenolics extracted from Olea europaea L. leaves. Food Chem., 68, 457-462.

34. N. J. Miller, J. Sampson, L. P. Candeias, 1996. Antioxidant activities of carotenesand xanthophylles. FEBS Lett., 384, 242.

35. R. Re, N. Pellegrini, A. Proteggente, 1999. Antioxidant activity applying animproved ABTS radical cation decolorization assay. Free Radic. Biol. Med, 26, 1231-1237. 36. E. J. Lien, S. Ren, H. H. Bui, R. Wang, 1999. Quantitative structure-activity

37. R. Van Den Berg, G. R. Haenen, H .Van Den Berg, 2000. The predictive value of the antioxidant capacity of structurally related flavonoids using the trolox equivalent antioxidant capacity (TEAC) assay. Food Chem, 70, 391-395.

38. R. Apak, K. Guclu, M. Ozyurek, S.E. Karademir. 2004. Novel total antioxidant capacity index for dietary polyphenols and vitamins C and E, Using their cupric ion reducing capability in the presence of neocuproine: CUPRAC Method. J. Agric. Food. Chem., 52, 7970–7981

39. P. G. Pietta, 2000. Flavonoids as antioxidants. J. Nat. Prod., 63, 1035-1042.

40. K. E. Heim, A. R. Tagliaferro, D. J. Bobilya, 2002. Flavonoid antioxidants: chemistry, metabolism and structure-activity relationships. J. Nutrit. Biochem., 13, 572-584. 41. J. G. Marco, 1968. A rapid method for evaluation of antioxidants. J. Amer. Oil’s.

Chem., 45, 594-598.

42. G. L. Ellman, K. D. Courtney, V. Andres, R. M. Featherston, 1961. A new and rapid colorimetric determination of acetylcholinesterase activity. Biochem. Pharmacol., 7, 88-95.

43. A. Traoré, M. Bonini, S.D. Dano , E.E. Creppy, 1999. Syneristic effects of some metals contaminating mussels on the cytotoxicity of the marine toxin okadaic acid, Arch. Toxicol, 73, 289-295.

44. Y. Ruckebusch, 1981. Physiologie, pharmacologie, thérapeutique animales, 2eme Edit. Maloine S.A. Paris.

45. JM., Gaziano, CM. Gibson, 2006. Potential for drug-drug interactions in patients taking analgesics for mild-to-moderate pain and low-dose aspirin for cardioprotection. Am. J .Cardiol., 97, 23-9.

46. LEQUESNE M. Méthodes d’étude des anti-inflammatoires non-stéroïdiens dans la coxarthrose et la gonarthrose. 1983. 38, pp. 683-688.

47. Cohen Y. 1997. Les anti-inflammatoires dans Abrégé de pharmacologie. Ed. Masson, Paris, 465.

48. C.A. Winter, E.A. Risley, G.W. Nuss. 1963. Carragenine-induced edema in ind-paw of rat as an assay for anti-inflammatory drug. J. Pharmacol. Exp. Therap., 141, 369-373.

49. K. D. Rainsford. 1984. Aspirin and the salicylates, p. 281. London: Butterworths & Co.

50. T. Yvan. 1997. Pharmacologie 8ème Edit. Masson. Paris-Milan-Barcelone., 388 P. 51. A.J. Higgins, 1987. Development of equine models of inflammation. Vet. Rec.

120,22, 517-522

52. C. Nauciel, J.L. Vildé, 2005. Bactériologie médicale, 2ème Ed. Masson. Paris. pp: 5-10 53. J.L. Elghozi, D. Duval, 1992. Pharmacologie 2ème Ed : Médecine Flammarion. Paris.

P 289.

54. F. Caron, 2012. Antimicrobial susceptibility testing: A four facets tool for the clinician. Journal des Anti-infectieux, 14, 168-174.

55. J. Allegrini, S.M. Buochberg, A. Billot, 1973. Emulsions d’huiles essentielles, fabrication et application en microbiologie. Travaux de la Société de Pharmacie de Montpellier, 33, 73-86.

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