| تعداد نشریات | 127 |
| تعداد شمارهها | 7,195 |
| تعداد مقالات | 77,225 |
| تعداد مشاهده مقاله | 157,154,064 |
| تعداد دریافت فایل اصل مقاله | 118,372,226 |
Effect of Curcumin on the Dissemination of Leishmania major in Different Organs of infected BALB/c Mice Using Quantitative PCR Method | ||
| Iranian Journal of Veterinary Medicine | ||
| مقاله 7، دوره 20، شماره 3، مرداد و شهریور 2026، صفحه 479-486 اصل مقاله (958.47 K) | ||
| نوع مقاله: Original Articles | ||
| شناسه دیجیتال (DOI): 10.32598/ijvm.20.3.1005713 | ||
| نویسندگان | ||
| Parisa Pourdehghan1؛ Fatemeh Arabkhazaeli1؛ Sedigheh Shirmohammad1؛ Mahdi Mohebali2؛ Parviz Shayan* 3 | ||
| 1Department of Parasitology, Research Center for Ticks and Tick-borne Disease, Faculty of Veterinary Medicine, University of Tehran, Tehran, Iran. | ||
| 2Department of Medical Parasitology and Mycology, School of Public Health, Tehran University of Medical Sciences, Tehran, Iran. | ||
| 3Department of Parasitology, Research Center for Ticks and Tick-borne Disease, Faculty of Veterinary Medicine, University of Tehran, Tehran, Iran. & Institute Research Group Molecular Biological System Transfer (MBST), Tehran, Iran. | ||
| چکیده | ||
| Background: Leishmaniasis is considered as a significant public health concern globally. It ranks as the second most prevalent parasitic disease following malaria. The side effects of the drugs used in the treatment of leishmaniasis and the development of resistance against these drugs have caused many researchers to find an alternative treatment method. The most effective methods in the treatment of protozoan parasitic infections, such as leishmaniasis, can be natural plant products. Objectives: This study aimed to investigate the effects of curcumin on the dissemination of leishmaniasis in different organs of mice. Methods: Mice were experimentally infected with Leishmania major and placed in 6 groups. The control groups, the group treated with glucantime as the standard method, and the group treated with curcumin at 40, 80, and 120 μM. The livers, spleens, hearts, lungs, and kidneys of these mice were collected, and parasite dissemination in the tissues was investigated using quantitative polymerase chain reaction (PCR). The intensity of the parasite-derived PCR product was divided by the intensity of the mouse genome-derived PCR product, which was used as a marker for parasite burden in the organs, and the data were analyzed using SPSS. Results: Leishmania major amastigote bands were not detected in the heart, kidney, and lung tissues of any group by quantitative PCR. However, Leishmania bands were observed in the liver and spleen of the control groups. Notably, the parasite band was absent in the spleen of mice treated with curcumin and glucantime. Furthermore, the infection burden in the liver of mice receiving curcumin and glucantime treatment was comparable to the untreated control group. Conclusion: The quantitative PCR analysis of DNA extracted from the liver showed no significant differences in parasite burden in comparison with control groups. Treatment with glucantime and curcumin prevented the spread of Leishmania to the spleen. | ||
| کلیدواژهها | ||
| Curcumin؛ Leishmania major؛ Organ dissemination؛ Quantitative polymerase chain reaction (PCR) | ||
| اصل مقاله | ||
|
Introduction
| ||
| مراجع | ||
|
References Ahmed, H., Khan, M., Rehman, H. U., Noor, H., Khan, N. A., & Sheikh, M. A. K. J. A., et al. (2019). Cutaneous leishmaniasis pattern: A Pakistani perspective. Journal of Entomology and Zoology Studies, 7(3), 868-873. [Link] Albalawi, A. E., Alanazi, A. D., Sharifi, I., & Ezzatkhah, F. (2021). A Systematic Review of Curcumin and its Derivatives as Valuable Sources of Antileishmanial Agents. Acta Parasitologica, 66(3), 797–811. [DOI:10.1007/s11686-021-00351-1] [PMID] Alemu, A. Y., Derseh, L., Kaba, M., Gadisa, E., & Alemu, K. (2023). Treatment outcomes of cutaneous leishmaniasis due to Leishmania aethiopica: A systematic review and meta-analysis. Plos One, 18(11), e0293529. [DOI:10.1371/journal.pone.0293529] [PMID] Alinejad, S., Khademvatan, S., Amani, S., Asadi, N., Tappeh, K. H., & Yousefi, E., et al. (2022). The Effect of Curcumin on the Expression of INFγ, TNF-α, and iNOS Genes in PBMCs Infected with Leishmania major [MRHO/IR/75/ER]. Infectious Disorders Drug Targets, 22(6), e040422203031. [DOI:10.2174/1871526522666220404083220] [PMID] Amini, S. M., Hadighi, R., Najm, M., Alipour, M., Hasanpour, H., & Vosoogh, M., et al. (2023). The Therapeutic Effects of Curcumin-coated Gold Nanoparticle Against Leishmania Major Causative Agent of Zoonotic Cutaneous Leishmaniasis (ZCL): An In Vitro and In Vivo Study. Current Microbiology, 80(4), 104. [DOI:10.1007/s00284-022-03172-1] [PMID] Aqeele, G., Shayan, P., Ebrahimzadeh, E., Mohebali, M., & Khalili, S. (2019). Determination of the Effective Dose of Curcumin alone and in Combination with Antimicrobial Peptide CM11 on Promastigote Forms of Iranian Strain of L. major (MRHO / IR / 75 / ER). Archives of Razi Institute, 74(4), 413–422. [DOI:10.22092/ari.2018.122300.1222] [PMID] Aqeele, G., Shayan, P., Abkooh, E. E., & Mohebali, M. (2021). Evaluation of curcumin and CM11 peptide alone and in combination against amastigote form of Iranian strain of L. major (MRHO/IR75/ER) in vitro. Experimental Parasitology, 229, 108151. [DOI:10.1016/j.exppara.2021.108151] [PMID] Bavarsad Ahmadpour, N., Dalimi, A., & Pirestani, M. (2022). Evaluation of a Novel Multi-Epitope Peptide Vaccine Candidate from LACK, LeIF, GP63, SMT Antigens of Leishmania major in BALB/c Mice. Archives of Razi Institute, 77(6), 2223–2233. [DOI:10.22092/ari.2022.358499.2238] [PMID] Buhrmann, C., Brockmueller, A., Mueller, A. L., Shayan, P., & Shakibaei, M. (2021). Curcumin Attenuates Environment-Derived Osteoarthritis by Sox9/NF-kB Signaling Axis. International Journal of Molecular Sciences, 22(14), 7645. [DOI:10.3390/ijms22147645] [PMID] Chopra, H., Dey, P. S., Das, D., Bhattacharya, T., Shah, M., & Mubin, S., et al. (2021). Curcumin Nanoparticles as Promising Therapeutic Agents for Drug Targets. Molecules (Basel, Switzerland), 26(16), 4998. [DOI:10.3390/molecules26164998] [PMID] Cui, L., Miao, J., & Cui, L. (2007). Cytotoxic effect of curcumin on malaria parasite Plasmodium falciparum: Inhibition of histone acetylation and generation of reactive oxygen species. Antimicrobial Agents and Chemotherapy, 51(2), 488–494. [DOI:10.1128/aac.01238-06] [PMID] Dai, C., Wang, Y., Sharma, G., Shen, J., Velkov, T., & Xiao, X. (2020). Polymyxins-Curcumin Combination Antimicrobial Therapy: Safety Implications and Efficacy for Infection Treatment. Antioxidants (Basel, Switzerland), 9(6), 506. [DOI:10.3390/antiox9060506] [PMID] Das, R., Roy, A., Dutta, N., & Majumder, H. K. (2008). Reactive oxygen species and imbalance of calcium homeostasis contributes to curcumin induced programmed cell death in Leishmania donovani. Apoptosis, 13(7), 867–882. [DOI:10.1007/s10495-008-0224-7] [PMID] Dourado, D., Silva Medeiros, T., do Nascimento Alencar, É., Matos Sales, E., & Formiga, F. R. (2024). Curcumin-loaded nanostructured systems for treatment of leishmaniasis: A review. Beilstein Journal of Nanotechnology, 15, 37–50. [DOI:10.3762/bjnano.15.4] [PMID] Ekawardhani, S., & Berbudi, A. (2020). The Role of Curcumin as An Antimalarial Agent. Systematic Reviews in Pharmacy, 11(7).[Link] Elamin, M., Al-Olayan, E., Abdel-Gaber, R., & Yehia, R. S. (2021). Anti-proliferative and apoptosis induction activities of curcumin on Leishmania major. Revista Argentina de Microbiologia, 53(3), 240–247. [DOI:10.1016/j.ram.2020.08.004] [PMID] Jonah, A. O., & Enoh, E. (2020). In vitro Anti-trypanosomal activity of curcumin isolated from Curcuma longa (Turmeric) rhizomes. Journal of Entomology and Zoology Studies, 8, 729-731.[Link] Kaye, P., & Scott, P. (2011). Leishmaniasis: complexity at the host-pathogen interface. Nature Reviews Microbiology, 9(8), 604-615. [DOI:10.1038/nrmicro2608] [PMID] Laali, K. K., Zwarycz, A. T., Beck, N., Borosky, G. L., Nukaya, M., & Kennedy, G. D. (2020). Curcumin Conjugates of Non-steroidal Anti-Inflammatory Drugs: Synthesis, Structures, Anti-proliferative Assays, Computational Docking, and Inflammatory Response. ChemistryOpen, 9(8), 822–834. [DOI:10.1002/open.202000173] [PMID] Lange, J. D. T., Stoller, J. R., Edwards, K. A., & Friesen, J. A. (2024). Identification, characterization, and cellular localization of Leishmania major CTP: Phosphocholine cytidylyltransferase. Biochemical and Biophysical Research Communications, 738, 150548. [DOI:10.1016/j.bbrc.2024.150548] [PMID] Makwali, J. A., Wanjala, F. M., Kaburi, J. C., Ingonga, J., Byrum, W. W., & Anjili, C. O. (2012). Combination and monotherapy of Leishmania major infection in BALB/c mice using plant extracts and herbicides. Journal of Vector Borne Diseases, 49(3), 123–130. [PMID] Moreira, V. R., de Jesus, L. C. L., Soares, R. P., Silva, L. D. M., Pinto, B. A. S., & Melo, M. N., et al. (2017). Meglumine Antimoniate (Glucantime) Causes Oxidative Stress-Derived DNA Damage in BALB/c Mice Infected by Leishmania (Leishmania) infantum. Antimicrobial Agents and Chemotherapy, 61(6), e02360-16. [DOI:10.1128/aac.02360-16] [PMID] Nasseri, M., & Modabber, F. Z. (1979). Generalized infection and lack of delayed hypersensitivity in BALB/c mice infected with Leishmania tropica major. Infection and Immunity, 26(2), 611-614. [DOI:10.1128/iai.26.2.611-614.1979] [PMID] Nose, M., Koide, T., Ogihara, Y., Yabu, Y., & Ohta, N. (1998). Trypanocidal effects of curcumin in vitro. Biological and Pharmaceutical Bulletin, 21(6), 643-645. [DOI:10.1248/bpb.21.643] [PMID] Novaes, R. D., Sartini, M. V., Rodrigues, J. P., Gonçalves, R. V., Santos, E. C., & Souza, R. L., et al. (2016). Curcumin Enhances the Anti-Trypanosoma cruzi Activity of Benznidazole-Based Chemotherapy in Acute Experimental Chagas Disease. Antimicrobial Agents and Chemotherapy, 60(6), 3355–3364. [DOI:10.1128/aac.00343-16] [PMID] Oliveira, L. F., Schubach, A. O., Martins, M. M., Passos, S. L., Oliveira, R. V., & Marzochi, M. C., et al. (2011). Systematic review of the adverse effects of cutaneous leishmaniasis treatment in the New World. Acta Tropica, 118(2), 87–96. [DOI:10.1016/j.actatropica.2011.02.007] [PMID] Pourmohammadi, B., Motazedian, M. H., Handjani, F., Hatam, G. H., Habibi, S., & Sarkari, B. (2011). Glucantime efficacy in the treatment of zoonotic cutaneous leishmaniasis. The Southeast Asian Journal of Tropical Medicine and Public Health, 42(3), 502–508. [PMID] Ranjbar, R., Bagheri, H., Ghasemi, F., Guest, P. C., & Sahebkar, A. (2021). Effects of Curcumin and Its Analogues on Infectious Diseases. Advances in Experimental Medicine and Biology, 1291, 75–101. [DOI:10.1007/978-3-030-56153-6_5] [PMID] Reddy, R. C., Vatsala, P. G., Keshamouni, V. G., Padmanaban, G., & Rangarajan, P. N. (2005). Curcumin for malaria therapy. Biochemical and Biophysical Research Communications, 326(2), 472–474. [DOI:10.1016/j.bbrc.2004.11.051] [PMID] Roberts, W. L., McMurray, W. J., & Rainey, P. M. (1998). Characterization of the antimonial antileishmanial agent meglumine antimonate (glucantime). Antimicrobial Agents and Chemotherapy, 42(5), 1076–1082. [DOI:10.1128/aac.42.5.1076] [PMID] Sahebi, K., Shahsavani, F., Mehravar, F., Hatam, G., Alimi, R., & Radfar, A., et al. (2024). In vitro and in vivo anti-parasitic activity of curcumin nanoemulsion on Leishmania major (MRHO/IR/75/ER). BMC Complementary Medicine and Therapies, 24(1), 238. [DOI:10.1186/s12906-024-04522-1] [PMID] Saleheen, D., Ali, S. A., Ashfaq, K., Siddiqui, A. A., Agha, A., & Yasinzai, M. M. (2002). Latent activity of curcumin against leishmaniasis in vitro. Biological & Pharmaceutical Bulletin, 25(3), 386–389. [DOI:10.1248/bpb.25.386] [PMID] Shahabi, S., Azizi, K., Asgari, Q., & Sarkari, B. (2023). Calomyscid Rodents (Rodentia: Calomyscidae) as a Potential Reservoir of Zoonotic Cutaneous Leishmaniasis in a Mountainous Residential Area in the Plateau of Iran: Inferring from Molecular Data of kDNA and ITS2 Genes of Leishmania Major. Journal of Tropical Medicine, 2023, 5965340. [DOI:10.1155/2023/5965340] [PMID] Shakibaei, M., Mobasheri, A., Lueders, C., Busch, F., Shayan, P., & Goel, A. (2013). Curcumin enhances the effect of chemotherapy against colorectal cancer cells by inhibition of NF-κB and Src protein kinase signaling pathways. Plos One, 8(2), e57218. [DOI:10.1371/journal.pone.0057218] [PMID] Shirmohammad, S., Mohebali, M., Arabkhazaeli, F., Hassan, J., Shayan, D., & Amininia, N., et al. (2024). Evaluation of Nanonanoliposomal Curcumin on Cutaneous Leishmaniasis Skin Lesions Caused by Leishmania major in BALB/c Mice. Iranian Journal of Parasitology, 19(2), 238–246. [DOI:10.18502/ijpa.v19i2.15859] [PMID] Taheri, S. N., Mahmoudvand, H., Ghasemian Yadegari, J., Pourhossein, S., & Masoori, L. (2024). In Vitro and In Vivo Effects of Astragalus Ecbatanus Extract against Cutaneous Leishmaniasis. Archives of Razi Institute, 79(5), 929–934. [DOI:10.32592/ari.2024.79.5.929] [PMID] Ghasemian Yadegari, J., Khudair Khalaf, A., Ezzatkhah, F., Shakibaie, M., Mohammadi, H. R., & Mahmoudvand, H. (2023). Antileishmanial, cellular mechanisms, and cytotoxic effects of green synthesized zinc nanoparticles alone and in combined with glucantime against Leishmania major infection. Biomedicine & Pharmacotherapy = Biomedecine & Pharmacotherapie, 164, 114984. [DOI:10.1016/j.biopha.2023.114984] [PMID] Zhong, Y., Liu, C., Feng, J., Li, J. F., & Fan, Z. C. (2020). Curcumin affects ox-LDL-induced IL-6, TNF-α, MCP-1 secretion and cholesterol efflux in THP-1 cells by suppressing the TLR4/NF-κB/miR33a signaling pathway. Experimental and Therapeutic Medicine, 20(3), 1856–1870. [DOI:10.3892/etm.2020.8915] [PMID] | ||
|
آمار تعداد مشاهده مقاله: 387 تعداد دریافت فایل اصل مقاله: 22 |
||