Completed Infection & Immunity Genetics & Molecular Biology

Defining Oocyst Wall Biogenesis and Function in Cryptosporidium Transmission

In plain English

AI plain-English summary

Every year, 79,000 years of healthy life are lost to young children from cryptosporidiosis—a diarrhoeal disease caused by a parasite that survives in chlorinated drinking water. There is no vaccine, and the only approved drug fails in children and immunocompromised patients. The parasite spreads as a tough, spore-like “oocyst” that resists chemical disinfection, yet no one knows exactly what the oocyst wall is made of or how it forms. This project will identify the oocyst wall’s molecular components for the first time, using mass spectrometry and a new genetic toolkit that allows precise gene manipulation. The researcher will create reporter strains to track which genes are active during transmission, and develop high-content imaging screens to find drugs that block oocyst formation. If successful, this work could reveal weak points in the parasite’s armour—targets for new disinfectants, drugs, or a vaccine. Because the oocyst is what makes Cryptosporidium waterborne and untreatable, understanding its construction is a prerequisite for breaking the transmission cycle. This is fundamental science with a clear, practical endpoint: stopping a parasite that quietly contaminates water supplies and kills children.

View original technical description
Cryptosporidiosis is the second leading cause of severe diarrhoeal disease in young children (estimated 79,000 years of life lost). There is no vaccine and the only approved drug is not effective for young children or immunocompromised patients. Cryptosporidium parasites are transmitted as a spore-like “oocyst” and due to their resistance to chemical disinfection (chlorination) are often water borne. There are no genetic markers or reagents available to study Cryptosporidium transmission. I propose to analyse Cryptosporidium transmission by defining the molecular mechanisms of oocyst formation using a mutagenic toolkit I developed. - First, we need to identify the components of the oocyst wall. We will use Mass Spectrometry to create the first comprehensive list of oocyst wall components and will use conditional mutagenesis to analyse their function in oocyst formation and transmission. - Second, it is critical to understand how oocyst-related genes, including Cryptosporidium Oocyst Wall Proteins (COWPs) impact transmission. We will create reporter strains to confirm expression and evaluate their function in transmission. Biochemical analysis of COWPs will reveal how their inter/intramolecular interactions contribute to oocyst structure. - Finally, regulation of the process of oocyst development is completely unknown. We will develop high-content imaging assays to screen for pharmacological inhibitors of oocyst formation.

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Researchers

Mattie Pawlowic (EPMC Awardee)

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Original classification

Sir Henry Dale Fellowship

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