Evaluation of inhibitory effect of Saliva officinalic extracts and volatile oils on the life of Leishmania donovani parasite

https://doi.org/10.53730/ijhs.v6nS8.12383

Authors

  • Hala Talib Abd Ali Al-Taei Department of Biology, College of Education for pure Sciences, University of Kerbala, Karbala, Iraq
  • Yarub Modhar Al-Qazwini Department of Biology, College of Education for pure Sciences, University of Kerbala, Karbala, Iraq
  • Hanan Zwair Department of Biology, College of Education for pure Sciences, University of Kerbala, Karbala, Iraq

Keywords:

visceral leishmaniasis, Salvia officinalis, anti-leishmaniasis, MTT assay, plant extracts, volatile oil, inhibitory percentage

Abstract

Visceral leishmaniasis (VL) is considered one of the endemic diseases in Iraq, and due to the distinction of the anti-leishmaniasis treatments currently used by their many side effects in addition to their toxicity to the human body, as well as the length of treatment period, and the problems they cause to the digestive system, Salvia officinalis (Saga) was used as a natural preventive treatment against leishmaniasis. Because of its therapeutic properties for many health symptoms, including heart attacks, ulcers, and cancerous tumors, in addition to its antibacterial and antimicrobial nature, the current study aimed to know the inhibitory activity of plant extracts and the volatile oil of Salvia officinalis on the life of Leishmania donovani parasite, using the colorimetric test (MTT assay, to measure toxicity) promastigote parasitoid cells, six concentrations of the aqueous extract and plant emulsion of the mentioned plant were prepared (6.25, 12.5, 25, 50, 100, 200) g/mlµ, the concentrations of the volatile oil were (31.25 ,62.5, 125, 250, 500 1000) g/mlµ, The results indicated that under the influence of treatment with the three drug spectra of Salvia officinalis, there were noticeable differences in the inhibitory percentage for each drug spectrum. 

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References

Abe, Y., Sasaki, H., Osaki, T., Kamiya, K., Kawano, R., Miki, N., and Takeuchi, S. (2012). Rapid and accurate IC50 determination using logarithmic concentration generator. 16th International Conference on Miniaturized Systems for Chemistry and Life Sciences, MicroTAS 2012, 956–958.

Afonso, A. F., Pereira, O. R., Fernandes, Â., Calhelha, R. C., Silva, A. M. S., Ferreira, I. C. F. R., and Cardoso, S. M. (2019). Phytochemical composition and bioactive effects of Salvia africana, Salvia officinalis ‘Icterina’and Salvia mexicana aqueous extracts. Molecules, 24 (23), 4327.

Badiee, P., Nasirzadeh, A. R., and Motaffaf, M. (2012). Comparison of Salvia officinalis L. essential oil and antifungal agents against candida species. J. Pharm. Technol. Drug Res, 1 (7).

Cassiday, L. (2014). Emulsions: making oil and water mix. International News on Fats, Oils and Related Materials, 25 (4), 200–208.

Craft, J. D., Satyal, P., and Setzer, W. N. (2017). The chemotaxonomy of common sage (Salvia officinalis) based on the volatile constituents. Medicines, 4 (3), 47.

Debrabant, A., Joshi, M. B., Pimenta, P. F. P., and Dwyer, D. M. (2004). Generation of Leishmania donovani axenic amastigotes: their growth and biological characteristics. International Journal for Parasitology, 34 (2), 205–217.

Dekanski, D., Janićijević-Hudomal, S., Tadić, V., Marković, G., Arsić, I., and Mitrović, D. M. (2009). Phytochemical analysis and gastroprotective activity of an olive leaf extract. Journal of the Serbian Chemical Society, 74 (4), 367–377.

Gharban, H.A.J., and Al-Shaeli, S.J.J. (2021). Clinical and serum biochemical evaluation of goats with hypomagnesemia. Biochem. Cell. Arch., 21 (1), 587-592

Ghorbani, A., and Esmaeilizadeh, M. (2017). Pharmacological properties of Salvia officinalis and its components. Journal of Traditional and Complementary Medicine, 7 (4), 433–440.

Hakkour, M., Hmamouch, A., Mahmoud El Alem, M., Bouyahya, A., Balahbib, A., El Khazraji, A., Fellah, H., Sadak, A., and Sebti, F. (2020). Risk factors associated with leishmaniasis in the most affected provinces by leishmania infantum in Morocco. Interdisciplinary Perspectives on Infectious Diseases, 2020.

Hojjat, H. (2015). Interaction Between Peroxin 14 and Peroxin 5 in Leishmania donovani: A Pivotal Step in Glycosomal Biogenesis. McGill University (Canada).

Lukeš, J., Mauricio, I. L., Schönian, G., Dujardin, J.-C., Soteriadou, K., Dedet, J.-P., Kuhls, K., Tintaya, K. W. Q., Jirků, M., and Chocholová, E. (2007). Evolutionary and geographical history of the Leishmania donovani complex with a revision of current taxonomy. Proceedings of the National Academy of Sciences, 104 (22), 9375–9380.

Martins, N., Barros, L., Santos-Buelga, C., Henriques, M., Silva, S., and Ferreira, I. C. F. R. (2015). Evaluation of bioactive properties and phenolic compounds in different extracts prepared from Salvia officinalis L. Food Chemistry, 170, 378–385.

Millán, J., Ferroglio, E., and Solano-Gallego, L. (2014). Role of wildlife in the epidemiology of Leishmania infantum infection in Europe. Parasitology Research, 113 (6), 2005–2014.

Mohammad, H. A., Ajaj, E. A., and Gharban, H. A. (2022). The first study on confirmation and risk factors of acute and chronic canine distemper in stray dogs in Wasit Province, Iraq, using enzyme-linked immunosorbent assay and reverse transcription-polymerase chain reaction. Veterinary World, 15(4), 968-974

Patel, C. N., Goswami, D., Jaiswal, D. G., Jani, S. P., Parmar, R. M., Rawal, R. M., and Pandya, H. A. (2022). Excavating phytochemicals from plants possessing antiviral activities for identifying SARS-CoV hemagglutinin-esterase inhibitors by diligent computational workflow. Journal of Biomolecular Structure and Dynamics, 1–16.

Pedro, D. F. N., Ramos, A. A., Lima, C. F., Baltazar, F., and Pereira‐Wilson, C. (2016). Colon cancer chemoprevention by sage tea drinking: decreased DNA damage and cell proliferation. Phytotherapy Research, 30 (2), 298–305.

Pund, S., and Joshi, A. (2017). Nanoarchitectures for neglected tropical protozoal diseases: challenges and state of the art. Nano-and Microscale Drug Delivery Systems, 439–480.

Savoia, D. (2015). Recent updates and perspectives on leishmaniasis. The Journal of Infection in Developing Countries, 9 (06), 588–596.

Serakta, M., Djerrou, Z., Mansour-Djaalab, H., Kahlouche-Riachi, F., Hamimed, S., Trifa, W., Belkhiri, A., Edikra, N., and Pacha, Y. H. (2013). Antileishmanial activity of some plants growing in Algeria: Juglans regia, Lawsonia inermis and Salvia officinalis. African Journal of Traditional, Complementary and Alternative Medicines, 10 (3), 427–430.

Sidu, L. O., Niampe, L., & Ino, L. (2016). Survival vocabulary of Wuna language in plant environment of Kowala. International Research Journal of Management, IT and Social Sciences, 3(5), 42-81. Retrieved from https://sloap.org/journals/index.php/irjmis/article/view/368

Sundar, S., and Singh, A. (2016). Recent developments and future prospects in the treatment of visceral leishmaniasis. Therapeutic Advances in Infectious Disease, 3 (3–4), 98–109.

Suryasa, I. W., Rodríguez-Gámez, M., & Koldoris, T. (2021). Get vaccinated when it is your turn and follow the local guidelines. International Journal of Health Sciences, 5(3), x-xv. https://doi.org/10.53730/ijhs.v5n3.2938

Tariku, Y., Hymete, A., Hailu, A., and Rohloff, J. (2010). Essential‐oil composition, antileishmanial, and toxicity study of Artemisia abyssinica and Satureja punctata ssp. punctata from Ethiopia. Chemistry and Biodiversity, 7 (4), 1009–1018.

Tombo, G. B. E., Zambrano, E. C., Barreiro, J. L., & Posligua, J. M. (2020). Potential energy of plant biomass: banana, coconut, cacao and corn. International Journal of Physical Sciences and Engineering, 4(1), 11–20. https://doi.org/10.29332/ijpse.v4n1.415

Ultee, A., Bennik, M. H. J., and Moezelaar, R. (2002). The phenolic hydroxyl group of carvacrol is essential for action against the food-borne pathogen Bacillus cereus. Applied and Environmental Microbiology, 68 (4), 1561–1568

Published

03-09-2022

How to Cite

Al-Taei, H. T. A. A., Al-Qazwini, Y. M., & Zwair, H. (2022). Evaluation of inhibitory effect of Saliva officinalic extracts and volatile oils on the life of Leishmania donovani parasite. International Journal of Health Sciences, 6(S8), 2015–2024. https://doi.org/10.53730/ijhs.v6nS8.12383

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Section

Peer Review Articles