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Updated: Dec 15, 2025

Author Spotlight: Identifying Compensatory Pathways in Malaria Parasites Containing Hypomorphic Allele of Essential Protein Kinases
Published on: November 22, 2024
Evolutionarily distant I domains can functionally replace the essential ligand-binding domain of Plasmodium TRAP
Dennis Klug1,2, Sarah Goellner1,3, Jessica Kehrer1
1Integrative Parasitology, Center for Infectious Diseases, Heidelberg University Medical School, Heidelberg, Germany.
The I domain of Plasmodium TRAP is crucial for parasite infection and transmission. Replacing it with I domains from other species partially or fully restored these functions, highlighting conserved roles in host cell invasion.
Area of Science:
- Parasitology
- Molecular Biology
- Cell Biology
Background:
- Inserted (I) domains are key ligand-binding regions in adhesins, facilitating cell adhesion and migration across eukaryotes.
- Examples include integrin heterodimers in animals and single-subunit proteins like TRAP in Plasmodium and MIC2 in Toxoplasma.
Purpose of the Study:
- To investigate the essentiality of the TRAP I domain for Plasmodium sporozoite infectivity.
- To explore the functional conservation and specificity of apicomplexan I domains by cross-species domain replacement.
Main Methods:
- Genetic manipulation of the Plasmodium berghei TRAP gene to replace its I domain with I domains from Toxoplasma MIC2 or human integrin αX.
- Assessing the impact of these genetic modifications on sporozoite gliding motility, mosquito salivary gland invasion, and mammalian host infection (liver and transmission stages).
Main Results:
- The TRAP I domain is indispensable for sporozoite gliding motility, salivary gland invasion, and successful mouse infection.
- Replacing the TRAP I domain with the Toxoplasma MIC2 I domain fully restored tissue invasion and parasite transmission.
- Substitution with the human integrin αX I domain partially restored liver infection, indicating conserved but not identical functions.
- Mutations near the ligand-binding site impaired transmission despite enabling salivary gland invasion.
Conclusions:
- Apicomplexan parasites utilize polyspecific I domains for engaging multiple host ligands, crucial for efficient invasion of diverse tissues.
- The I domain's ability to provide traction for host cell traversal is a conserved mechanism for parasite dissemination across phyla.
- Understanding I domain function offers potential targets for novel anti-parasitic strategies.
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