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Updated: May 24, 2026

Genetic Manipulation in Δku80 Strains for Functional Genomic Analysis of Toxoplasma gondii
Published on: July 12, 2013
Toxoplasma gondii profilin acts primarily to sequester G-actin while formins efficiently nucleate actin filament
Kristen M Skillman1, Wassim Daher, Christopher I Ma
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, Missouri 63110, United States.
Abstract:
Apicomplexan parasites employ gliding motility that depends on the polymerization of parasite actin filaments for host cell entry. Despite this requirement, parasite actin remains almost entirely unpolymerized at steady state; formation of filaments required for motility relies on a small repertoire of actin-binding proteins. Previous studies have shown that apicomplexan formins and profilin exhibit canonical functions on heterologous actins from higher eukaryotes; however, their biochemical properties on parasite actins are unknown. We therefore analyzed the impact of T. gondii profilin (TgPRF) and FH1-FH2 domains of two formin isoforms in T. gondii (TgFRM1 and TgFRM2) on the polymerization of T. gondii actin (TgACTI). Our findings based on in vitro assays demonstrate that TgFRM1-FH1-FH2 and TgFRM2-FH1-FH2 dramatically enhanced TgACTI polymerization in the absence of profilin, making them the sole protein factors known to initiate polymerization of this normally unstable actin. In addition, T. gondii formin domains were shown to both initiate polymerization and induce bundling of TgACTI filaments; however, they did not rely on TgPRF for these activities. In contrast, TgPRF sequestered TgACTI monomers, thus inhibiting polymerization even in the presence of formins. Collectively, these findings provide insight into the unusual control mechanisms of actin dynamics within the parasite.
Insights
Toxoplasma gondii formins initiate and bundle parasite actin polymerization, while profilin inhibits it. This reveals unique mechanisms controlling actin dynamics essential for parasite motility and host cell entry.
Area of Science:
- Cell Biology
- Parasitology
- Biochemistry
Background:
- Apicomplexan parasites use actin polymerization for host cell invasion.
- Parasite actin is typically unpolymerized, relying on specific actin-binding proteins for motility.
- The functions of apicomplexan formins and profilin on parasite actin are not well understood.
Purpose of the Study:
- To investigate the biochemical properties of Toxoplasma gondii profilin (TgPRF) and formin FH1-FH2 domains (TgFRM1, TgFRM2) on T. gondii actin (TgACTI).
- To elucidate the roles of TgPRF and formins in regulating TgACTI polymerization.
Main Methods:
- In vitro polymerization assays using purified T. gondii actin, profilin, and formin domains.
- Analysis of actin filament formation, initiation, and bundling.
Main Results:
- T. gondii formin domains (TgFRM1-FH1-FH2, TgFRM2-FH1-FH2) significantly enhanced TgACTI polymerization independently of profilin.
- Formin domains initiated polymerization and induced TgACTI filament bundling.
- TgPRF sequestered TgACTI monomers, inhibiting polymerization even with formins present.
Conclusions:
- T. gondii formins are key initiators of actin polymerization for parasite motility.
- Formins and profilin exhibit distinct, non-canonical roles in regulating parasite actin dynamics.
- These findings offer insight into the unique control of actin dynamics in apicomplexan parasites.
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