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2019 | 65 | 2 |

Tytuł artykułu

In-vitro antigiardial activity and GC-MS analysis of Eucalyptus globulus and Zingiber officinalis essential oils against Giardia lamblia cysts in simulated condition to human’s body

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
In order to finding of potent natural medication/agent which can kill giardial cysts in the interval between lysing of outer membrane of cysts due to exposure by acidic condition of stomach and their encystation in proximal small intestine, In-vitro antigiardial activity and GC-MS analysis of Eucalyptus globulus and Zingiber officinalis against Giardia lamblia were studied in simulated condition to human’s body singly and in combination. Essential oils were extracted and their chemical components were identified via GC-MS method. After purification, cysts were exposure to acidic condition and were challenged by different concentrations of essential oils in simulated condition to human’s body. Percentages of inactivated (killed) cysts as efficacy of antigiardial activity were calculated and analyzed statistically. Presence of 1,8-eucalyptol, α-pinene, α-terpineol acetate, etc. in essential oil of E. globulus and presence of geraniol, α-zingiberene, (E,E)-α-farnesene, etc. in Z. officinalis essential oil were identified. Highest antigiardial activity (73.55%) was observed for eucalyptus essential oil in time 480 minutes after exposure. Efficacies of ginger and combined essential oils were different in different times. This study shows considerable antigiardial activity for both of essential oils singly and in combination together against giardial cysts. In-vivo study of protective effect of these essential oils against giardiasis can be considered as a subject for next studies.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

65

Numer

2

Opis fizyczny

p.129-1338,fig.,ref.

Twórcy

  • Faculty of Veterinary Medicine, Shahrekord University, Rahbar Boulevard, Shahrekord, Iran
  • Department of Clinical Sciences, Faculty of Veterinary Medicine, Ferdowsi University of Mashhad, Azadi Square, Mashhad, Iran
  • Faculty of Medicine, Birjand University of Medical Sciences, Ghaffari Boulevard, Birjand, Iran
  • Department of Clinical Sciences, Faculty of Veterinary Medicine, Shahrekord University, Rahbar Boulevard, Shahrekord, Iran
autor
  • Department of Pathobiology, Faculty of Veterinary Medicine, Shahrekord University, Rahbar Boulevard, Shahrekord, Iran

Bibliografia

  • [1] Baldursson S., Karanis P. 2005. Waterborne transmission of protozoan parasites: review of worldwide outbreaks, an update 2004-2010. Water Research 45: 6603-6614. doi:10.1016/j.watres.2011.10.013
  • [2] Smith H.V., Caccio S.M., Cook N., Nichols R.A.B., Tait A. 2007. Cryptosporidium and Giardia as foodborne zoonoses. Veterinary Parasitology 149: 29-40. doi:10.1016/j.vetpar.2007.07.015
  • [3] Buret A.G. 2008. Pathophysiology of enteric infections with Giardia duodenalis. Parasite 15: 261-265. doi:10.1051/parasite/2008153261
  • [4] Leitsch D. 2015. Drug resistance in the microaerophilic parasite Giardia lamblia. Current Topics in Me dicinal Chemistry 2: 128-135. doi:10.1007/s40475-015-0051-1
  • [5] Adam R.D. 2001. Biology of Giardia lamblia. Clinical Microbiology Reviews 14: 447-475. doi:10.1128/CMR.14.3.447-475.2001
  • [6] Tejman-Yarden N., Eckman L. 2011. New approaches to the treatment of giardiasis. Current Opinion in Infectious Diseases 24: 451-456. doi:10.1097/QCO.0b013e32834ad401
  • [7] Lemee V., Zaharia I., Nevez G., Rabodonirina M., Brasseur P., Ballet J.J., Favennec L. 2000. Metronidazole and albendazole susceptibility of 11 clinical isolates of Giardia duodenalis from France. Journal of Antimicrobial Chemotherapy 46: 819-821. doi:10.1093/jac/46.5.819
  • [8] Arguello-Garcia R., Cruz-Soto M., Romero-Montoya L., Ortega-Pierres G. 2009. In vitro resistance to 5-nitroimidazoles and benzimidazoles in Giardia duodenalis: variability and variation in gene expression. Infection, Genetics and Evolution 9: 1057-1064. doi:10.1016/j.meegid.2009.05.015
  • [9] Chopra A., Doiphode V.V. 2002. Ayurvedic medicine: core concept, therapeutic principles, and current relevance. Medical Clinics 86: 75-89.
  • [10] Ayyanar M., Ignacimuthu S. 2011. Ethnobotanical survey of medicinal plants commonly used by Kani tribals in Tirunelveli hills of Western Ghats, India. Journal of Ethnopharmacology 134: 851-864. doi:10.1016/j.jep.2011.01.029
  • [11] Birtchnell M.J., Gibson M. 2006. Long-term flowering patterns of melliferous Eucalyptus (Myrtaceae) species. Australian Journal of Botany 54: 745-754. doi:10.1071/BT05160
  • [12] Dehghani-Samani A., Madreseh-Ghahfarokhi S., Dehghani-Samani A., Pirali-Kheirabadi K. 2015. Acaricidal and repellent activities of essential oil of Eucalyptus globulus against Dermanyssus gallinae (Acari: Mesostigmata). Journal of Herbmed Pharmacology 4: 81-84.
  • [13] Batish D.R., Singh H.P., Kohli R.K., Kaur S. 2008. Eucalyptus essential oil as a natural pesticide. Forest Ecology and Management 256: 2166-2174. doi:10.1016/j.foreco.2008.08.008
  • [14] USEPA, United States Environment Protection Agency. R.E.D. FACTS.1993. www3.epa.gov/pesticides/chem_search/reg_actions/reregistration/fs_G-114_1-Dec-3.pdf
  • [15] Shukla Y., Singh M. 2007. Cancer preventive properties of ginger: a brief review. Food and Chemical Toxicology 45: 683-690. doi:10.1016/j.fct.2006.11.002
  • [16] Singh G., Maurya S., Catalan C., De Lampasona M.P. 2005. Studies on essential oils, Part 42: chemical, antifungal, antioxidant and sprout suppressant studies on ginger essential oil and its oleoresin. Flavour and Fragrance Journal 20: 1-6. doi:10.1002/ffj.1373
  • [17] Koch C., Reichling J., Schneele J., Schnitzler P. 2008. Inhibitory effect of essential oils against herpes simplex virus type 2. Phytomedicine 15: 71-78. doi:10.1016/j.phymed.2007.09.003
  • [18] Bellik Y. 2014. Total antioxidant activity and antimicrobial potency of the essential oil and oleoresin of Zingiber officinale Roscoe. Asian Pacific Journal of Tropical Disease 4: 40-44. doi:10.1016/S2222-1808(14)60311-X
  • [19] Sharifi-Rad M., Varoni E.M., Salehi B., Sharifi-Rad J., Matthews K.R., Ayatollahi S.A., Kobarfard F., Ibrahim S., Mnayer D., Zakaria Z., Sharifi-Rad M. 2017. Plants of the genus Zingiber as a source of bioactive phytochemicals: from tradition to pharmacy. Molecules 22: 2145-2164. doi:10.3390/molecules22122145
  • [20] Blazevic I., Mastelic J. 2009. Glucosinolate degradation products and other bound and free volatiles in the leaves and roots of radish (Raphanus sativus L.). Food Chemistry 113: 96-102. doi:10.1016/j.foodchem.2008.07.029
  • [21] Song A., Wang Y., Liu Y. 2009. Study on the chemical constituents of the essential oil of the leaves of Eucalyptus globulus Labill from China. Asian Journal of Traditional Medicines 4: 34-140.
  • [22] Singh G., Kapoor I.P., Singh P., de Heluani C.S., De Lampasona M.P., Catalan C.A. 2008. Chemistry, antioxidant and antimicrobial investigations on essential oil and oleoresins of Zingiber officinale. Food and Chemical Toxicology 46: 3295-302. doi:10.1016/j.fct.2008.07.017
  • [23] Li H., Madden J.L. 1995. Analysis of leaves oils from a Eucalyptus species trial. Biochemical Systematics and Ecology 23: 167-177. doi:10.1016/0305-1978(94)00087-W
  • [24] Silvestre A.J.D., Cavaleiro J.A.S., Delmond B., Filliatre C., Bourgeois G. 1997. Analysis of the variation of the essential oil composition of Eucalyptus globulus Labill from Portugal using multivariate statistical analysis. Industrial Crops and Products 6: 27-33. doi:10.1016/S0926-6690(96)00200-2
  • [25] Singh G., Marimuthu P., Murali H.S., Bawa A.S. 2005. Antioxidative and antimicrobial potentials of essential oils and extracts isolated from various spice materials. Journal of Food Safety 25: 130-145. doi:10.1111/j.1745-4565.2005.00564.x
  • [26] Rajurkar M.N., Lall N., Basak S., Mallick S.K. 2012. A simple method for demonstrating the Giardia lamblia trophozoite. Journal of Clinical and Diagnostic Research 6: 1492-1494. doi:10.7860/JCDR/2012/4358.2541
  • [27] Kamath K.R., Murugasu R. 1974. A comparative study of four methods for detecting Giardia lamblia in children with diarrheal disease and malabsorption. Gastroenterology 66: 16-21. doi:10.1016/S0016-5085(74)80074-0
  • [28] Rahimi-Esboei B., Ebrahimzadeh M.A., Gholami S.H., Falah-Omrani V. 2013. Anti-giardial activity of Sambucus ebulus. European Review for Medical and Pharmacological Sciences 17: 2047-2050.
  • [29] Evans D.F., Pye G., Bramley R., Clark A.G., Dyson T.J., Hardcastle J.D. 1988. Measurement of gastrointestinal pH profiles in normal ambulant human subjects. Gut 29: 1035-1041. doi:10.1136/gut.29.8.1035
  • [30] Thompson R.C.A., Reynoldson J.A., Mendis A.H.W. 1993. Giardia and giardiasis. Advances in Parasitology 32: 71-160. doi:10.1016/S0065-308X(08)60207-9
  • [31] Zengin H., Baysal A.H. 2014. Antibacterial and antioxidant activity of essential oil terpenes against pathogenic and spoilage-forming bacteria and cell structure-activity relationships evaluated by SEM microscopy. Molecules 19: 17773-17798. doi:10.3390/molecules191117773
  • [32] Calzada F., Yepez-Mulia L., Aguilar A. 2006. In vitro susceptibility of Entamoeba histolytica and Giardia lamblia to plants used in Mexican traditional medicine for the treatment of gastrointestinal disorders. Journal of Ethnopharmacology 108: 367-370. doi:10.1016/j.jep.2006.05.025
  • [33] Neiva V.D.A., Ribeiro M.N.S., Nascimento F.R., Cartagenes M.D.S.S., Coutinho-Moraes D.F., Do-Amaral F.M. 2014. Plant species used in giardiasis treatment: ethnopharmacology and in vitro evaluation of anti-Giardia activity. The Revista Brasileira de Farmacognosia 24: 215-224.
  • [34] Liu X., Chen Q., Wang Z., Xie L., Xu Z. 2008. Allelopathic effects of essential oil from Eucalyptus grandis/E. urophylla on pathogenic fungi and pest insects. Frontiers of Forestry in China 3: 232-236. doi:10.1007/s11461-008-0036-5
  • [35] Sivasothy Y., Chong W.K., Hamid A., Eldeen I.M., Sulaiman S.F., Awang K. 2011. Essential oils of Zingiber officinale var. rubrum Theilade and their antibacterial activities. Food Chemistry 124: 514-517. doi:10.1016/j.foodchem.2010.06.062
  • [36] Amaral F.M., Ribeiro M.N.S., Barbosa-Filho J.M., Reis A.S., Nascimento F.R., Macedo R.O. 2006. Plants and chemical constituents with giardicidal activity. The Revista Brasileira de Farmacognosia 16: 696-720. doi:10.1590/S0102-695X2006000500017
  • [37] Machado M., Dinis A.M., Salgueiro L., Cavaleiro C., Custodio J.B., Do-Ceu Sousa M. 2010. Anti-Giardia activity of phenolic-rich essential oils: effects of Thymbra capitata, Origanum virens, Thymus zygis subsp. sylvestris, and Lippia graveolens on trophozoites growth, viability, adherence, and ultrastructure. Parasitology Research 106: 1205-1215. doi:10.1007/s00436-010-1800-7
  • [38] Hassan L.E.A., Koko W.S., Osman E.B.E., Dahab M.M., Sirat H.M. 2011. In vitro antigiardial activity of Citrullus lanatus Var. citroides extracts and cucurbitacins isolated compounds. Journal of Medicinal Plants Research 5: 3338-3346.
  • [39] Brandelli C.L.C., Giordani R.B., De Carli G.A., Tasca T. 2009. Indigenous traditional medicine: in vitro anti-giardial activity of plants used in the treatment of diarrhea. Parasitology Research 104: 1345-1349. doi:10.1007/s00436-009-1330-3
  • [40] Harris J.C., Plummer S., Turner M.P., Lloyd D. 2000. The microaerophilic flagellate Giardia intestinalis: Allium sativum (garlic) is an effective antigiardial. Microbiology 146: 3119-3127. doi:10.1099/00221287-146-12-3119
  • [41] Ramos-Lopez M.A., Sanchez-Mir E., Fresan-Orozco M.C., Perez-Ramos J. 2012. Antiprotozoa activity of some essential oils. Journal of Medicinal Plants Research 6: 2901-2908. doi:10.5897/JMPR11.1572
  • [42] De-Almeida I., Alviano D.S., Vieira D.P., Alves P.B., Blank A.F., Lopes A.H.C., Alviano C.S., Maria do Socorro S.R. 2007. Antigiardial activity of Ocimum basilicum essential oil. Parasitology Research 101: 443-452. doi:10.1007/s00436-007-0502-2
  • [43] Achado M., Dinis A.M., Salgueiro L., Custodio J.B., Cavaleiro C., Sousa M.C. 2011. Anti-Giardia activity of Syzygium aromaticum essential oil and eugenol: effects on growth, viability, adherence and ultrastructure. Experimental Parasitology 127: 732-739. doi:10.1016/j.exppara.2011.01.011
  • [44] Monzote L., Alarcon O., Setzer W.N. 2012. Antiprotozoal activity of essential oils. Agriculturae Conspectus Scientificus 77: 167-175.

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Bibliografia

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