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Published on: December 4, 2015
Metal-captured inhibition of pre-mRNA processing activity by CPSF3 controls Cryptosporidium infection
Christopher Swale1, Alexandre Bougdour1, Audrey Gnahoui-David2
1Institute for Advanced Biosciences (IAB), Host-Pathogen Interactions and Immunity to Infection, INSERM U1209, CNRS UMR 5309, University Grenoble Alpes, 38000 Grenoble, France.
Abstract:
Cryptosporidium is an intestinal pathogen that causes severe but self-limiting diarrhea in healthy humans, yet it can turn into a life-threatening, unrelenting infection in immunocompromised patients and young children. Severe diarrhea is recognized as the leading cause of mortality for children below 5 years of age in developing countries. The only approved treatment against cryptosporidiosis, nitazoxanide, has limited efficacy in the most vulnerable patient populations, including malnourished children, and is ineffective in immunocompromised individuals. Here, we investigate inhibition of the parasitic cleavage and polyadenylation specificity factor 3 (CPSF3) as a strategy to control Cryptosporidium infection. We show that the oxaborole AN3661 selectively blocked Cryptosporidium growth in human HCT-8 cells, and oral treatment with AN3661 reduced intestinal parasite burden in both immunocompromised and neonatal mouse models of infection with greater efficacy than nitazoxanide. Furthermore, we present crystal structures of recombinantly produced Cryptosporidium CPSF3, revealing a mechanism of action whereby the mRNA processing activity of this enzyme is efficiently blocked by the binding of the oxaborole group at the metal-dependent catalytic center. Our data provide insights that may help accelerate the development of next-generation anti-Cryptosporidium therapeutics.
Insights
A new drug, AN3661, effectively inhibits Cryptosporidium growth by targeting the parasitic CPSF3 enzyme. This offers a promising new treatment for cryptosporidiosis, especially in vulnerable populations.
Area of Science:
- Parasitology
- Drug Discovery
- Structural Biology
Background:
- Cryptosporidium causes severe diarrhea, a leading cause of mortality in young children.
- Current treatment, nitazoxanide, is ineffective in immunocompromised individuals and vulnerable populations.
- There is an urgent need for novel therapeutics against cryptosporidiosis.
Purpose of the Study:
- To investigate the inhibition of parasitic cleavage and polyadenylation specificity factor 3 (CPSF3) as a therapeutic strategy.
- To evaluate the efficacy of the oxaborole AN3661 against Cryptosporidium infection.
- To elucidate the mechanism of action of AN3661 through structural analysis.
Main Methods:
- In vitro testing of AN3661 in human HCT-8 cells.
- In vivo efficacy studies in immunocompromised and neonatal mouse models.
- Recombinant production and crystal structure determination of Cryptosporidium CPSF3.
Main Results:
- AN3661 selectively inhibited Cryptosporidium growth in cell culture.
- Oral AN3661 treatment significantly reduced parasite burden in mouse models.
- Crystal structures revealed AN3661 blocks CPSF3 activity by binding to its catalytic center.
Conclusions:
- Inhibition of Cryptosporidium CPSF3 by AN3661 is a viable therapeutic strategy.
- AN3661 demonstrates superior efficacy compared to nitazoxanide in preclinical models.
- Structural insights pave the way for developing next-generation anti-cryptosporidiosis drugs.
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