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Published on: August 10, 2021
A Novel Toxoplasma Inner Membrane Complex Suture-Associated Protein Regulates Suture Protein Targeting and
Jessica H Chern1, Rebecca R Pasquarelli2, Andy S Moon1
1Department of Microbiology, Immunology and Molecular Genetics, University of California, Los Angelesgrid.19006.3e, Los Angeles, California, USA.
Abstract:
The cytoskeleton of Toxoplasma gondii is composed of the inner membrane complex (IMC) and an array of underlying microtubules that provide support at the periphery of the parasite. Specific subregions of the IMC carry out distinct roles in replication, motility, and host cell invasion. Building on our previous in vivo biotinylation (BioID) experiments of the IMC, we identified here a novel protein that localizes to discrete puncta that are embedded in the parasite's cytoskeleton along the IMC sutures. Gene knockout analysis showed that loss of the protein results in defects in cytoskeletal suture protein targeting, cytoskeletal integrity, parasite morphology, and host cell invasion. We then used deletion analyses to identify a domain in the N terminus of the protein that is critical for both localization and function. Finally, we used the protein as bait for in vivo biotinylation, which identified several other proteins that colocalize in similar spot-like patterns. These putative interactors include several proteins that are implicated in membrane trafficking and are also associated with the cytoskeleton. Together, these data reveal an unexpected link between the IMC sutures and membrane trafficking elements of the parasite and suggest that the suture puncta are likely a portal for trafficking cargo across the IMC. IMPORTANCE The inner membrane complex (IMC) is a peripheral membrane and cytoskeletal system that is organized into intriguing rectangular plates at the periphery of the parasite. The IMC plates are delimited by an array of IMC suture proteins that are tethered to both the membrane and the cytoskeleton and are thought to provide structure to the organelle. Here, we identified a protein that forms discrete puncta that are embedded in the IMC sutures, and we show that it is important for the proper sorting of a group of IMC suture proteins as well as maintaining parasite shape and IMC cytoskeletal integrity. Intriguingly, proximity labeling experiments identified several proteins that are involved in membrane trafficking or endocytosis, suggesting that the IMC puncta provide a gateway for transporting molecules across the structure.
Insights
A novel protein forms puncta in the Toxoplasma gondii cytoskeleton, crucial for inner membrane complex (IMC) suture integrity and parasite invasion. This discovery links IMC sutures to membrane trafficking, suggesting a transport gateway.
Area of Science:
- Cell Biology
- Parasitology
- Structural Biology
Background:
- The cytoskeleton of *Toxoplasma gondii*, comprising the inner membrane complex (IMC) and microtubules, is vital for parasite functions.
- The IMC is organized into plates delimited by suture proteins, providing structural support.
- Previous studies utilized in vivo biotinylation (BioID) to explore the IMC proteome.
Purpose of the Study:
- To identify and characterize novel proteins associated with the IMC sutures.
- To elucidate the function of a newly identified IMC suture protein in parasite biology.
- To investigate the relationship between IMC sutures and membrane trafficking pathways.
Main Methods:
- Identification of a novel protein localizing to IMC suture puncta.
- Gene knockout analysis to assess the protein's function.
- Deletion analyses to map functional domains.
- In vivo biotinylation (BioID) using the novel protein as bait to identify interactors.
Main Results:
- Loss of the novel protein disrupts IMC suture protein targeting, cytoskeletal integrity, parasite morphology, and host cell invasion.
- An N-terminal domain of the protein is critical for its localization and function.
- Proximity labeling identified interacting proteins involved in membrane trafficking and cytoskeleton association.
Conclusions:
- The identified protein is essential for maintaining IMC suture integrity and overall parasite structure.
- IMC suture puncta represent a novel link between the cytoskeleton and membrane trafficking.
- These puncta likely function as a portal for cargo transport across the IMC.
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