Warning: fopen(/home/virtual/parasitol/journal/upload/ip_log/ip_log_2025-12.txt): failed to open stream: Permission denied in /home/virtual/lib/view_data.php on line 83

Warning: fwrite() expects parameter 1 to be resource, boolean given in /home/virtual/lib/view_data.php on line 84
Tamoxifen Induces Apoptosis of Leishmania major Promastigotes in Vitro
Skip to main navigation Skip to main content
  • KSPTM
  • E-Submission

PHD : Parasites, Hosts and Diseases

OPEN ACCESS
ABOUT
BROWSE ARTICLES
FOR CONTRIBUTORS

Articles

Original Article

Tamoxifen Induces Apoptosis of Leishmania major Promastigotes in Vitro

The Korean Journal of Parasitology 2016;54(1):9-14.
Published online: February 26, 2016

1School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, IR. Iran

2Department of Medical Parasitology, School of Medicine, Kashan University of Medical Sciences, Kashan, IR. Iran

3Department of Pathology and Histology, School of Medicine, Kashan University of Medical Sciences, Kashan, IR. Iran

*Corresponding author (adoroudgar@gmail.com)
• Received: March 31, 2015   • Revised: August 15, 2015   • Accepted: August 31, 2015

© 2016, Korean Society for Parasitology and Tropical Medicine

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

  • 10,859 Views
  • 165 Download
  • 29 Web of Science
  • 26 Crossref
  • 33 Scopus
prev next

Citations

Citations to this article as recorded by  Crossref logo
  • Therapeutic effect of topical tamoxifen in murine cutaneous leishmaniasis caused by Leishmania major
    Parastoo Hassani-Abharian, Seyedamirmehdi Hejazi Dehaghani, Zabihollah Shahmoradi, Seyed Hossein Hejazi, Audrey Odom John
    Antimicrobial Agents and Chemotherapy.2024;[Epub]     CrossRef
  • Compared Antileishmanial Activity of Clomiphene and Tamoxifen
    Sergio Sifontes-Rodríguez, Alma Reyna Escalona-Montaño, Ricardo Mondragón Flores, Niurka Mollineda-Diogo, Lianet Monzote Fidalgo, Mónica Edith Mondragón-Castelán, Fedra Alardin-Gutiérrez, Lourdes Araceli López-Enzana, Daniel Andrés Sánchez-Almaraz, Ofelia
    Biomedicines.2024; 12(10): 2290.     CrossRef
  • Caryocar coriaceumWittm. fruit extracts asLeishmaniainhibitors:in-vitroandin-silicoapproaches
    Fernanda Tomiotto-Pellissier, Daniela Ribeiro Alves, Selene Maia de Morais, Bruna Taciane da Silva Bortoleti, Manoela Daiele Gonçalves, Taylon Felipe Silva, Eliandro Reis Tavares, Lucy Megumi Yamauchi, Idessania Nazareth Costa, Emmanuel Silva Marinho, Mar
    Journal of Biomolecular Structure and Dynamics.2022; 40(17): 8040.     CrossRef
  • Antileishmanial Activity of Tamoxifen by Targeting Sphingolipid Metabolism: A Review
    Kaleab Alemayehu Zewdie, Haftom Gebregergs Hailu, Muluken Altaye Ayza, Bekalu Amare Tesfaye
    Clinical Pharmacology: Advances and Applications.2022; Volume 14: 11.     CrossRef
  • The potential role and apoptotic profile of three medicinal plant extracts on Leishmania tropica by MTT assay, macrophage model and flow cytometry analysis
    Mozhde Ilaghi, Iraj Sharifi, Fariba Sharififar, Fatemeh Sharifi, Razieh Tavakoli Oliaee, Zahra Babaei, Manzume Shamsi Meimamandi, Alireza Keyhani, Mehdi Bamorovat
    Parasite Epidemiology and Control.2021; 12: e00201.     CrossRef
  • Apoptosis-Like Cell Death in Leishmania major Treated with HESA-A: An Herbal Marine Compound
    Jasem Saki, Khalil Saki, Reza Arjmand
    Jundishapur Journal of Natural Pharmaceutical Products.2021;[Epub]     CrossRef
  • Selective Estrogen Receptor Modulators Against Gram-Positive and Gram-Negative Bacteria: An Experimental Study
    Aakriti Garg, Arti Singh, Anoop Kumar
    Future Microbiology.2021; 16(13): 987.     CrossRef
  • Network-Based Approaches Reveal Potential Therapeutic Targets for Host-Directed Antileishmanial Therapy Driving Drug Repurposing
    J. Eduardo Martinez-Hernandez, Zaynab Hammoud, Alessandra Mara de Sousa, Frank Kramer, Rubens L. do Monte-Neto, Vinicius Maracaja-Coutinho, Alberto J. M. Martin, Tim Downing
    Microbiology Spectrum.2021;[Epub]     CrossRef
  • Male predominance in reported Visceral Leishmaniasis cases: Nature or nurture? A comparison of population-based with health facility-reported data
    Kristien Cloots, Sakib Burza, Paritosh Malaviya, Epco Hasker, Sangeeta Kansal, Guy Mollett, Jaya Chakravarty, Nurpur Roy, Bibek Kumar Lal, Suman Rijal, Shyam Sundar, Marleen Boelaert, Guilherme L. Werneck
    PLOS Neglected Tropical Diseases.2020; 14(1): e0007995.     CrossRef
  • Selective Estrogen Receptor Modulators (SERMs): Mechanistic Insights Against Microbial Infections
    Aakriti Garg, Balraj Singh, Ruchika Sharma, Arti Singh, Anoop Kumar
    Current Molecular Medicine.2020; 20(2): 102.     CrossRef
  • Epidemiology, Associated Factors and Treatment Methods of Cutaneous Leishmaniasis Based on Previous Data from 2013 to 2018 in Ilam, Western Iran
    Nasrin Rezaee, Vahid Raissi, Ahmad Rajaeipour, Mehdi Nazari, Muhammad Getso, Ali Taghipour, Omid Raiesi, Asmaa Ibrahim
    Acta Parasitologica.2020; 65(3): 760.     CrossRef
  • Diethyldithiocarbamate encapsulation reduces toxicity and promotes leishmanicidal effect through apoptosis-like mechanism in promastigote and ROS production by macrophage
    João Paulo Assolini, Fernanda Tomiotto-Pellissier, Bruna Taciane da Silva Bortoleti, Manoela Daiele Gonçalves, Claudia Stoeglehner Sahd, Amanda Cristina Machado Carloto, Paulo Emilio Feuser, Arthur Poester Cordeiro, Sergio Marques Borghi, Waldiceu Apareci
    Journal of Drug Targeting.2020; 28(10): 1110.     CrossRef
  • 4-nitrochalcone exerts leishmanicidal effect on L. amazonensis promastigotes and intracellular amastigotes, and the 4-nitrochalcone encapsulation in beeswax copaiba oil nanoparticles reduces macrophages cytotoxicity
    João Paulo Assolini, Thais Peron da Silva, Bruna Taciane da Silva Bortoleti, Manoela Daiele Gonçalves, Fernanda Tomiotto-Pellissier, Claudia Stoeglehner Sahd, Amanda Cristina Machado Carloto, Paulo Emilio Feuser, Arthur Poester Cordeiro, Claudia Sayer, Pe
    European Journal of Pharmacology.2020; 884: 173392.     CrossRef
  • Repurposing azole antifungals into antileishmanials: Novel 3-triazolylflavanones with promising in vitro antileishmanial activity against Leishmania major
    Masoud Keighobadi, Saeed Emami, Mahdi Fakhar, Azar Shokri, Hassan Mirzaei, Saeed Hosseini Teshnizi
    Parasitology International.2019; 69: 103.     CrossRef
  • Study of Ethinyl Estradiol Activity Against Promastigotes, Axenic and Macrophage-Dwelling Amastigotes of Leishmania infantum by Using Atomic Force Microscopy and Methyl Thiazolyl Tetrazolium Methods
    Farnoush Shadnoush, Reza Arjmand, Fakher Rahim, Jasem Saki
    Jundishapur Journal of Microbiology.2019;[Epub]     CrossRef
  • Repurposing as a strategy for the discovery of new anti-leishmanials: the-state-of-the-art
    REBECCA L. CHARLTON, BARTIRA ROSSI-BERGMANN, PAUL W. DENNY, PATRICK G. STEEL
    Parasitology.2018; 145(2): 219.     CrossRef
  • Caryocar coriaceum extracts exert leishmanicidal effect acting in promastigote forms by apoptosis-like mechanism and intracellular amastigotes by Nrf2/HO-1/ferritin dependent response and iron depletion
    Fernanda Tomiotto-Pellissier, Daniela Ribeiro Alves, Milena Menegazzo Miranda-Sapla, Selene Maia de Morais, João Paulo Assolini, Bruna Taciane da Silva Bortoleti, Manoela Daiele Gonçalves, Allan Henrique Depieri Cataneo, Danielle Kian, Tiago Bervelieri Ma
    Biomedicine & Pharmacotherapy.2018; 98: 662.     CrossRef
  • Epidemiological Aspects of Cutaneous Leishmaniasis during 2009-2016 in Kashan City, Central Iran
    Doroodgar Moein, Doroodgar Masoud, Mahboobi Saeed, Doroodgar Abbas
    The Korean Journal of Parasitology.2018; 56(1): 21.     CrossRef
  • Tamoxifen Never Ceases to Amaze: New Findings on Non-Estrogen Receptor Molecular Targets and Mediated Effects
    Tatiana Anatolievna Bogush, Boris Borisovich Polezhaev, Ivan Andreevich Mamichev, Elena Alexandrovna Bogush, Boris Evseevich Polotsky, Sergei Alexeevich Tjulandin, Andrey Borisovich Ryabov
    Cancer Investigation.2018; 36(4): 211.     CrossRef
  • Cell death mechanisms in Leishmania amazonensis triggered by methylene blue-mediated antiparasitic photodynamic therapy
    Débora P. Aureliano, José Angelo Lauletta Lindoso, Sandra Regina de Castro Soares, Cleusa Fumika Hirata Takakura, Thiago Martini Pereira, Martha Simões Ribeiro
    Photodiagnosis and Photodynamic Therapy.2018; 23: 1.     CrossRef
  • Grandiflorenic acid promotes death of promastigotes via apoptosis-like mechanism and affects amastigotes by increasing total iron bound capacity
    Bruna Taciane da Silva Bortoleti, Manoela Daiele Gonçalves, Fernanda Tomiotto-Pellissier, Milena Menegazzo Miranda-Sapla, João Paulo Assolini, Amanda Cristina Machado Carloto, Priscila Goes Camargo de Carvalho, Ian Lucas Alves Cardoso, Andréa Name Colado
    Phytomedicine.2018; 46: 11.     CrossRef
  • In vitro Effects of Ketotifen and Cromolyn Sodium on Promastigote and Amastigotes of Leishmania major
    Lima Asgharpour Sarouey, Khadijeh Khanaliha, Parvaneh Rahimi-Moghaddam, Samaneh Khorrami, Mohammad Saaid Dayer, Fatemeh Tabatabaie
    Jundishapur Journal of Microbiology.2018;[Epub]     CrossRef
  • Repurposing Estrogen Receptor Antagonists for the Treatment of Infectious Disease
    Marhiah C. Montoya, Damian J. Krysan, Danielle A. Garsin
    mBio.2018;[Epub]     CrossRef
  • Library of Seleno-Compounds as Novel Agents against Leishmania Species
    Álvaro Martín-Montes, Daniel Plano, Rubén Martín-Escolano, Verónica Alcolea, Marta Díaz, Silvia Pérez-Silanes, Socorro Espuelas, Esther Moreno, Clotilde Marín, Ramón Gutiérrez-Sánchez, Carmen Sanmartín, Manuel Sánchez-Moreno
    Antimicrobial Agents and Chemotherapy.2017;[Epub]     CrossRef
  • Evaluation of the Cytotoxicity Effect of Chaerophyllum Extract on Leishmania major and J774 Cell Line in Vitro
    Parisa Ebrahimisadr, Hamidreza Majidiani, Farahnaz Bineshian, Farnoosh Jameie, Ezatollah Ghasemi, Fatemeh Ghaffarifar
    Jundishapur Journal of Natural Pharmaceutical Products.2016;[Epub]     CrossRef
  • Evaluation of the Cytotoxicity Effect of Chaerophyllum Extract on Leishmania major and J774 Cell Line in Vitro
    Parisa Ebrahimisadr, Hamidreza Majidiani, Farahnaz Bineshian, Farnoosh Jameie, Ezatollah Ghasemi, Fatemeh Ghaffarifar
    Jundishapur Journal of Natural Pharmaceutical Products.2016;[Epub]     CrossRef

Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:

Include:

Tamoxifen Induces Apoptosis of Leishmania major Promastigotes in Vitro
Korean J Parasitol. 2016;54(1):9-14.   Published online February 26, 2016
Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:
Include:
Tamoxifen Induces Apoptosis of Leishmania major Promastigotes in Vitro
Korean J Parasitol. 2016;54(1):9-14.   Published online February 26, 2016
Close

Figure

  • 0
  • 1
Tamoxifen Induces Apoptosis of Leishmania major Promastigotes in Vitro
Image Image
Fig. 1. Percentage of live promastigotes after treatment with different concentrations of tamoxifen and incubation times.
Fig. 2. Flow cytometry results showing early and late apoptosis as well as necrotic cells after treatment with various concentrations of tamoxifen for 24 or 48 hr.
Tamoxifen Induces Apoptosis of Leishmania major Promastigotes in Vitro
Drug concentration (µg/ml) Promastigotes no. ( × 106)
24 hr 48 hr 72 hr
Tamoxifen 1 0.95 ± 0.08 0.56 ± 0.07 0.27 ± 0.01
Tamoxifen 5 0.28 ± 0.02 0.06 ± 0.04 0.05 ± 0.01
Tamoxifen 10 0.26 ± 0.01 0.01 ± 0.02 0
Tamoxifen 20 0.14 ± 0.03 0.01 ± 0.02 0
Tamoxifen 50 0.06 ± 0.02 0 0
Glucantime 50 0.74 ± 0.05 0.4 ± 0.05 0.22 ± 0.1
Glucantime 100 0.54 ± 0.09 0.31 ± 0.05 0.17 ± 0.09
Glucantime 200 0.51 ± 0.03 0.28 ± 0.05 0.1 ± 0.01
Glucantime 400 0.12 ± 0.01 0.08 ± 0.05 0
Control 1.07 ± 0.1 1.1 ± 0.06 1.28 ± 0.04
Drug concentration (µg/ml) Amastigotes no. in macrophages
24 hr 48 hr
Tamoxifen 1 4.2 ± 0.14 3.5 ± 0.13
Tamoxifen 5 3.3 ± 0.15 2.2 ± 0.12
Tamoxifen 10 2.1 ± 0.12 1.1 ± 0.15
Tamoxifen 20 0.5 ± 0.21 0.2 ± 0.18
Tamoxifen 50 0 0
Glucantime 50 4.5 ± 0.09 3.1 ± 0.16
Glucantime 100 3.2 ± 0.18 2.6 ± 0.17
Glucantime 200 1.3 ± 0.15 0.78 ± 0.11
Glucantime 400 0.35 ± 0.10 0.2 ± 0.22
Control 6.2 ± 1.4 6.8 ± 1.1
Drug concentration (µg/ml) Cell viability (%)
24 hr 48 hr 72 hr
Tamoxifen 1 76 53 33
Tamoxifen 5 58 47 24
Tamoxifen 10 45 36 26
Tamoxifen 20 38 21 16.8
Tamoxifen 50 24.2 20.3 15.9
Glucantime 50 68 56 47
Glucantime 100 52 49 36.6
Glucantime 200 39 33 25.1
Glucantime 400 25.2 22.4 21
Tamoxifen (µg/ml) Apoptosis (%)
24 hr 48 hr
1 10.8 16.0
5 15.3 39.8
10 18.6 42.7
20 23.2 47.8
50 51.8 59.7
Control 0.61 2.0
Table 1. Number (mean±SD) of promastigotes after adding tamoxifen or glucantime
Table 2. Number (mean±SD) of amastigotes after adding tamoxifen or glucantime
Table 3. Percentage of live promastigotes after treatment with tamoxifen or glucantime
Table 4. Percentage of programmed cell death (early and late apoptosis) at 24 hr and 48 hr after addition of various concentrations of tamoxifen