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Published on: April 28, 2019
Exploring therapeutic approaches against Naegleria fowleri infections through the COVID box
Javier Chao-Pellicer1, Iñigo Arberas-Jiménez2, Ines Sifaoui1
1Instituto Universitario de Enfermedades Tropicales y Salud Pública de Canarias, Universidad de La Laguna, Avda. Astrofísico Fco. Sánchez, S/N, 38203, San Cristóbal de La Laguna, Spain; Departamento de Obstetricia y Ginecología, Pediatría, Medicina Preventiva y Salud Pública, Toxicología, Medicina Legal y Forense y Parasitología, Universidad de La Laguna, 38203, San Cristóbal de La Laguna, Spain; Centro de Investigación Biomédica en Red de Enfermedades Infecciosas (CIBERINFEC), Instituto de Salud Carlos III, 28220, Madrid, Spain.
Abstract:
Naegleria fowleri, known as the brain-eating amoeba, is the pathogen that causes the primary amoebic meningoencephalitis (PAM), a severe neurodegenerative disease with a fatality rate exceeding 95%. Moreover, PAM cases commonly involved previous activities in warm freshwater bodies that allow amoebae-containing water through the nasal passages. Hence, awareness among healthcare professionals and the general public are the key to contribute to a higher and faster number of diagnoses worldwide. Current treatment options for PAM, such as amphotericin B and miltefosine, are limited by potential cytotoxic effects. In this context, the repurposing of existing compounds has emerged as a promising strategy. In this study, the evaluation of the COVID Box which contains 160 compounds demonstrated significant in vitro amoebicidal activity against two type strains of N. fowleri. From these compounds, terconazole, clemastine, ABT-239 and PD-144418 showed a higher selectivity against the parasite compared to the remaining products. In addition, programmed cell death assays were conducted with these four compounds, unveiling compatible metabolic events in treated amoebae. These compounds exhibited chromatin condensation and alterations in cell membrane permeability, indicating their potential to induce programmed cell death. Assessment of mitochondrial membrane potential disruption and a significant reduction in ATP production emphasized the impact of these compounds on the mitochondria, with the identification of increased ROS production underscoring their potential as effective treatment options. This study emphasizes the potential of the mentioned COVID Box compounds against N. fowleri, providing a path for enhanced PAM therapies.
Insights
Repurposing drugs from the COVID Box shows promise against Naegleria fowleri, the brain-eating amoeba causing deadly primary amoebic meningoencephalitis (PAM). Four compounds demonstrated significant amoebicidal activity, offering new therapeutic avenues.
Area of Science:
- Infectious Diseases
- Neuroscience
- Drug Discovery
Background:
- Naegleria fowleri causes primary amoebic meningoencephalitis (PAM), a rapidly fatal brain infection.
- Current PAM treatments have limited efficacy and significant side effects.
- Drug repurposing offers a viable strategy for developing novel PAM therapies.
Purpose of the Study:
- To evaluate the amoebicidal activity of compounds from the COVID Box against Naegleria fowleri.
- To identify selective and potent compounds for potential PAM treatment.
- To investigate the mechanism of action of promising drug candidates.
Main Methods:
- Screening of 160 compounds from the COVID Box for in vitro activity against N. fowleri.
- Assessing compound selectivity and programmed cell death induction.
- Evaluating effects on mitochondrial membrane potential, ATP production, and ROS generation.
Main Results:
- Significant in vitro amoebicidal activity was observed for compounds within the COVID Box.
- Terconazole, clemastine, ABT-239, and PD-144418 exhibited high selectivity against N. fowleri.
- These compounds induced programmed cell death by disrupting mitochondrial function and increasing ROS production.
Conclusions:
- Compounds from the COVID Box demonstrate significant potential as novel therapeutic agents against Naegleria fowleri.
- The identified compounds offer a promising foundation for developing enhanced treatments for primary amoebic meningoencephalitis.
- Further research into these compounds could lead to improved outcomes for PAM patients.
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