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Screening of the Pandemic Response Box identifies anti-microsporidia compounds
Qingyuan Huang1,2, Jie Chen1, Guoqing Pan1
1State Key Laboratory of Resource Insects, Chongqing Key Laboratory of Microsporidia Infection and Control, Southwest University, Chongqing, China.
Abstract:
Microsporidia are fungal obligate intracellular pathogens, which infect most animals and cause microsporidiosis. Despite the serious threat that microsporidia pose to humans and agricultural animals, few drugs are available for the treatment and control of microsporidia. To identify novel inhibitors, we took advantage of the model organism Caenorhabditis elegans infected with its natural microsporidian Nematocida parisii. We used this system to screen the Pandemic Response Box, a collection of 400 diverse compounds with known antimicrobial activity. After testing these compounds in a 96-well format at high (100 μM) and low (40 μM) concentrations, we identified four inhibitors that restored the ability of C. elegans to produce progeny in the presence of N. parisii. All four compounds reduced the pathogen load of both N. parisii and Pancytospora epiphaga, a C. elegans-infecting microsporidia related to human-infecting species. One of these compounds, a known inhibitor of a viral protease, MMV1006203, inhibited invasion and prevented the firing of spores. A bis-indole derivative, MMV1593539, decreased spore viability. An albendazole analog, MMV1782387, inhibited proliferation of N. parisii. We tested albendazole as well as 5 other analogs and observed that MMV1782387 was amongst the strongest inhibitors of N. parisii and displayed the least host toxicity. Our study further demonstrates the effectiveness of the C. elegans-N. parisii system for discovering microsporidia inhibitors and the compounds we identified provide potential scaffolds for anti-microsporidia drug development.
Insights
Researchers screened 400 compounds against microsporidia infections in Caenorhabditis elegans. Four compounds inhibited microsporidia growth and reduced pathogen load, offering potential new treatments for microsporidiosis.
Area of Science:
- Mycology
- Parasitology
- Drug Discovery
Background:
- Microsporidia are obligate intracellular fungal pathogens causing microsporidiosis in diverse hosts.
- Limited therapeutic options exist for microsporidiosis, posing a threat to human and animal health.
Purpose of the Study:
- To identify novel anti-microsporidia compounds using a high-throughput screening approach.
- To evaluate the efficacy of identified compounds against microsporidian pathogens in a model organism.
Main Methods:
- Screening of the Pandemic Response Box (400 compounds) against Nematocida parisii in Caenorhabditis elegans.
- Assessing compound efficacy by measuring C. elegans progeny production and pathogen load reduction.
- Investigating the mechanism of action for lead compounds, including spore viability, invasion, and proliferation inhibition.
Main Results:
- Four compounds restored C. elegans progeny production, indicating anti-microsporidia activity.
- All identified compounds reduced pathogen load for N. parisii and Pancytospora epiphaga.
- MMV1006203 inhibited spore invasion and firing; MMV1593539 decreased spore viability; MMV1782387 (albendazole analog) inhibited N. parisii proliferation with low host toxicity.
Conclusions:
- The C. elegans-N. parisii model is effective for discovering microsporidia inhibitors.
- Identified compounds, particularly MMV1782387, show promise as scaffolds for developing new anti-microsporidia drugs.
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