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Updated: Jan 19, 2026

Determination of Chemical Inhibitor Efficiency against Intracellular Toxoplasma Gondii Growth Using a Luciferase-Based Growth Assay
Published on: April 29, 2020
In Vitro Screening to Identify Anti-Toxoplasma Compounds and In Silico Modeling for Bioactivities and Toxicity
Oluyomi Stephen Adeyemi1, Olubunmi Atolani2, Oluwakemi Josephine Awakan1
1Department of Biochemistry, Medicinal Biochemistry, Nanomedicine & Toxicology Laboratory, Landmark University, Omu-Aran, Nigeria.
Abstract:
Toxoplasmosis, which affects more than a billion people worldwide, is a common parasitic infection caused by the obligate intracellular parasite, Toxoplasmagondii. Current treatment strategies have several limitations, including unwanted side effects and poor efficacy. Therefore, newer therapies are needed for toxoplasmosis. Drug repurposing and screening of a vast array of natural and/or synthetic compounds is a viable option for antiparasitic drug discovery. In this study, we screened 62 compounds comprising natural products (NPs) and FDA-approved (FDA) drugs, to identify the hit compounds that suppress the growth of T. gondii. To determine the parasite inhibitory potential of the compounds, host mammalian cells were infected with a transgenic T. gondii strain, and the viability of the parasite was evaluated by luminescence. Of the 62 compounds, tubericidin, sulfuretin, peruvoside, resveratrol, narasin and diacetoxyscirpenol of the natural product isolates, as well as bortezonib, 10-Hydroxycamtothecin, mebendazole, niflumic acid, clindamycin HCl, mecamylamine, chloroquine, mitomycin C, fenbendazole, daunorubicin, atropine, and cerivastatin of FDA molecules were identified as "hits" with ≥ 40 percent anti-parasite action. Additionally, mitomycin C, radicicol, naringenin, gitoxigenin, menadione, botulin, genistin, homobutein, and gelsemin HCl of the natural product isolates, as well as lomofungin, cyclocytidine, prazosin HCl, cerivastatin, camptothecin, flufenamic acid, atropine, daunorubicin, and fenbendazole of the FDA compounds exhibited cytotoxic activity, reducing the host viability by ≥ 30 percent. Our findings not only support the prospects of drug repurposing, but also indicate that screening a vast array of molecules may provide viable sources of alternative therapies for parasitic infection.
Insights
New therapies are needed for toxoplasmosis, a widespread parasitic infection. Researchers screened 62 natural products and FDA-approved drugs, identifying several compounds with significant anti-parasitic activity for potential new treatments.
Area of Science:
- Parasitology
- Drug Discovery
- Infectious Diseases
Background:
- Toxoplasmosis, caused by *Toxoplasma gondii*, affects over a billion people globally.
- Current treatments for toxoplasmosis have limitations, including side effects and limited efficacy.
- Novel therapeutic strategies are crucial for managing this widespread parasitic infection.
Purpose of the Study:
- To identify compounds with anti-*Toxoplasma gondii* activity through drug repurposing and natural product screening.
- To evaluate the efficacy of natural products and FDA-approved drugs against *T. gondii* growth.
- To discover potential alternative therapies for toxoplasmosis.
Main Methods:
- Screening of 62 compounds, including natural products (NPs) and FDA-approved (FDA) drugs.
- Infection of host mammalian cells with a transgenic *T. gondii* strain.
- Evaluation of parasite viability using luminescence to determine inhibitory potential and host cytotoxicity.
Main Results:
- Sixteen compounds, including tubericidin, resveratrol, and clindamycin HCl, showed ≥ 40% anti-parasite action.
- Several natural products and FDA drugs exhibited cytotoxic activity, reducing host cell viability by ≥ 30%.
- Specific compounds like mitomycin C, fenbendazole, and atropine demonstrated both anti-parasitic and cytotoxic effects.
Conclusions:
- Drug repurposing and screening diverse molecular libraries are effective strategies for antiparasitic drug discovery.
- The identified compounds represent promising candidates for developing new therapies against toxoplasmosis.
- This study highlights the potential of natural products and existing drugs for novel anti-parasitic applications.

