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QTL Mapping and CRISPR/Cas9 Editing to Identify a Drug Resistance Gene in Toxoplasma gondii
Published on: June 22, 2017
A unique dynamin-related protein is essential for mitochondrial fission in Toxoplasma gondii
Carmen Melatti1, Manuela Pieperhoff1, Leandro Lemgruber1
1Wellcome Trust Centre for Molecular Parasitology, Institute of Infection, Immunity & Inflammation, Glasgow Biomedical Research Centre, University of Glasgow, Glasgow, United Kingdom.
Abstract:
The single mitochondrion of apicomplexan protozoa is thought to be critical for all stages of the life cycle, and is a validated drug target against these important human and veterinary parasites. In contrast to other eukaryotes, replication of the mitochondrion is tightly linked to the cell cycle. A key step in mitochondrial segregation is the fission event, which in many eukaryotes occurs by the action of dynamins constricting the outer membrane of the mitochondria from the cytosolic face. To date, none of the components of the apicomplexan fission machinery have been identified and validated. We identify here a highly divergent, dynamin-related protein (TgDrpC), conserved in apicomplexans as essential for mitochondrial biogenesis and potentially for fission in Toxoplasma gondii. We show that TgDrpC is found adjacent to the mitochondrion, and is localised both at its periphery and at its basal part, where fission is expected to occur. We demonstrate that depletion or dominant negative expression of TgDrpC results in interconnected mitochondria and ultimately in drastic changes in mitochondrial morphology, as well as in parasite death. Intriguingly, we find that the canonical adaptor TgFis1 is not required for mitochondrial fission. The identification of an Apicomplexa-specific enzyme required for mitochondrial biogenesis and essential for parasite growth highlights parasite adaptation. This work paves the way for future drug development targeting TgDrpC, and for the analysis of additional partners involved in this crucial step of apicomplexan multiplication.
Insights
Researchers identified a novel protein, TgDrpC, crucial for mitochondrial function and parasite survival in apicomplexans. This discovery offers a new target for developing drugs against these significant human and veterinary parasites.
Area of Science:
- Cell Biology
- Parasitology
- Biochemistry
Background:
- The mitochondrion is vital for apicomplexan parasites, making it a key drug target.
- Mitochondrial replication is cell-cycle-dependent in apicomplexans, unlike other eukaryotes.
- Mitochondrial fission is essential for segregation, typically involving dynamins.
Purpose of the Study:
- To identify and validate components of the apicomplexan mitochondrial fission machinery.
- To investigate the role of a novel dynamin-related protein (TgDrpC) in Toxoplasma gondii mitochondrial biogenesis and fission.
Main Methods:
- Identification and characterization of TgDrpC in Toxoplasma gondii.
- Localization studies of TgDrpC within the parasite.
- Depletion and dominant-negative expression experiments to assess TgDrpC function.
- Analysis of mitochondrial morphology and parasite viability.
Main Results:
- TgDrpC is conserved in apicomplexans and essential for mitochondrial biogenesis and potentially fission.
- TgDrpC localizes to the mitochondrion, particularly at the site of expected fission.
- Depletion of TgDrpC leads to interconnected mitochondria, altered morphology, and parasite death.
- The canonical adaptor TgFis1 is not required for mitochondrial fission in this system.
Conclusions:
- Apicomplexa-specific TgDrpC is essential for mitochondrial biogenesis and parasite survival, highlighting parasite adaptation.
- TgDrpC represents a promising new drug target for combating apicomplexan infections.
- Further research into TgDrpC and its interaction partners is warranted for drug development.
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