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Published on: June 22, 2017
Loss of the Conserved Alveolate Kinase MAPK2 Decouples Toxoplasma Cell Growth from Cell Division
Xiaoyu Hu1, William J O'Shaughnessy1, Tsebaot G Beraki1
1Department of Pharmacology, University of Texas Southwestern Medical Center, Dallas, Texas, USA.
Abstract:
Mitogen-activated protein kinases (MAPKs) are a conserved family of protein kinases that regulate signal transduction, proliferation, and development throughout eukaryotes. The apicomplexan parasite Toxoplasma gondii expresses three MAPKs. Two of these, extracellular signal-regulated kinase 7 (ERK7) and MAPKL1, have been implicated in the regulation of conoid biogenesis and centrosome duplication, respectively. The third kinase, MAPK2, is specific to and conserved throughout the Alveolata, although its function is unknown. We used the auxin-inducible degron system to determine phenotypes associated with MAPK2 loss of function in Toxoplasma We observed that parasites lacking MAPK2 failed to duplicate their centrosomes and therefore did not initiate daughter cell budding, which ultimately led to parasite death. MAPK2-deficient parasites initiated but did not complete DNA replication and arrested prior to mitosis. Surprisingly, the parasites continued to grow and replicate their Golgi apparatus, mitochondria, and apicoplasts. We found that the failure in centrosome duplication is distinct from the phenotype caused by the depletion of MAPKL1. As we did not observe MAPK2 localization at the centrosome at any point in the cell cycle, our data suggest that MAPK2 regulates a process at a distal site that is required for the completion of centrosome duplication and the initiation of parasite mitosis.IMPORTANCEToxoplasma gondii is a ubiquitous intracellular protozoan parasite that can cause severe and fatal disease in immunocompromised patients and the developing fetus. Rapid parasite replication is critical for establishing a productive infection. Here, we demonstrate that a Toxoplasma protein kinase called MAPK2 is conserved throughout the Alveolata and essential for parasite replication. We found that parasites lacking MAPK2 protein were defective in the initiation of daughter cell budding and were rendered inviable. Specifically, T. gondii MAPK2 (TgMAPK2) appears to be required for centrosome replication at the basal end of the nucleus, and its loss causes arrest early in parasite division. MAPK2 is unique to the Alveolata and not found in metazoa and likely is a critical component of an essential parasite-specific signaling network.
Insights
Toxoplasma gondii MAPK2 (mitogen-activated protein kinase 2) is essential for parasite replication. Loss of MAPK2 prevents centrosome duplication, halting daughter cell budding and leading to parasite death.
Area of Science:
- Cell Biology
- Parasitology
- Molecular Biology
Background:
- Mitogen-activated protein kinases (MAPKs) regulate vital cellular processes in eukaryotes.
- Toxoplasma gondii, an apicomplexan parasite, possesses three MAPKs, with MAPK2 being unique to Alveolata.
- The function of MAPK2 in T. gondii remained unknown prior to this study.
Purpose of the Study:
- To elucidate the function of MAPK2 in Toxoplasma gondii.
- To investigate the cellular phenotypes associated with MAPK2 loss of function.
Main Methods:
- Utilized the auxin-inducible degron system for targeted depletion of MAPK2 in T. gondii.
- Observed and analyzed parasite morphology, DNA replication, and organelle content.
- Compared MAPK2-deficient phenotypes with those of MAPKL1 depletion.
Main Results:
- MAPK2 depletion resulted in a complete failure of centrosome duplication.
- Parasites arrested early in the cell cycle, prior to mitosis, with incomplete DNA replication.
- Despite cell cycle arrest, Golgi apparatus, mitochondria, and apicoplasts continued to replicate.
Conclusions:
- MAPK2 is essential for T. gondii replication, specifically regulating centrosome duplication.
- MAPK2 acts at a distal site to control centrosome duplication, distinct from MAPKL1.
- MAPK2 represents a potential target for therapeutic intervention due to its essential, parasite-specific role.
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