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Updated: Sep 21, 2025

Studying Cryptosporidium Infection in 3D Tissue-derived Human Organoid Culture Systems by Microinjection
Published on: September 14, 2019
Recent genetic exchanges and admixture shape the genome and population structure of the zoonotic pathogen
Giulia I Corsi1,2, Swapnil Tichkule3,4, Anna Rosa Sannella5
1CIBO, University of Trento, Trento, Italy.
Abstract:
Cryptosporidium parvum is a globally distributed zoonotic pathogen and a major cause of diarrhoeal disease in humans and ruminants. The parasite's life cycle comprises an obligatory sexual phase, during which genetic exchanges can occur between previously isolated lineages. Here, we compare 32 whole genome sequences from human- and ruminant-derived parasite isolates collected across Europe, Egypt and China. We identify three strongly supported clusters that comprise a mix of isolates from different host species, geographic origins, and subtypes. We show that: (1) recombination occurs between ruminant isolates into human isolates; (2) these recombinant regions can be passed on to other human subtypes through gene flow and population admixture; (3) there have been multiple genetic exchanges, and most are probably recent; (4) putative virulence genes are significantly enriched within these genetic exchanges, and (5) this results in an increase in their nucleotide diversity. We carefully dissect the phylogenetic sequence of two genetic exchanges, illustrating the long-term evolutionary consequences of these events. Our results suggest that increased globalization and close human-animal contacts increase the opportunity for genetic exchanges between previously isolated parasite lineages, resulting in spillover and spillback events. We discuss how this can provide a novel substrate for natural selection at genes involved in host-parasite interactions, thereby potentially altering the dynamic coevolutionary equilibrium in the Red Queens arms race.
Insights
Genetic exchanges between Cryptosporidium parvum in animals and humans are frequent and recent. These events, particularly involving virulence genes, impact parasite evolution and host-pathogen interactions.
Area of Science:
- Genomics
- Parasitology
- Evolutionary Biology
Background:
- Cryptosporidium parvum is a significant zoonotic pathogen causing diarrheal disease globally.
- The parasite's sexual phase allows for genetic exchange between distinct lineages.
Purpose of the Study:
- To investigate genetic exchange and recombination events in Cryptosporidium parvum populations.
- To understand the evolutionary implications of these exchanges on virulence and host adaptation.
Main Methods:
- Whole genome sequencing of 32 Cryptosporidium parvum isolates from human and ruminant hosts.
- Phylogenetic analysis to identify genetic exchange events and population structure.
- Analysis of gene content and nucleotide diversity in recombinant regions.
Main Results:
- Three distinct clusters of Cryptosporidium parvum were identified, mixing hosts and origins.
- Evidence of frequent, recent recombination between ruminant and human parasite lineages.
- Putative virulence genes were enriched in recombinant regions, increasing nucleotide diversity.
Conclusions:
- Globalization and human-animal contact facilitate Cryptosporidium parvum genetic exchange.
- Recombination events provide new genetic material for natural selection, potentially altering host-parasite coevolution.
- Understanding these exchanges is crucial for managing cryptosporidiosis and its evolution.
Related Concept Videos
Viral Recombination
Diversity of Protists II
Gene Flow
Mutation, Gene Flow, and Genetic Drift
Genetics of Speciation
Fungal Phylum Microsporidia

