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Published on: June 22, 2017
Molecular analyses of Toxoplasma gondii calmodulin-like domain protein kinase isoform 3
Tatsuki Sugi1, Kentaro Kato, Kyousuke Kobayashi
1Department of Veterinary Microbiology, Graduate School of Agricultural and Life Sciences, The University of Tokyo, Tokyo, Japan.
Abstract:
Ca(2+) signaling is thought to play an important role in Toxoplasma gondii motility, including invasion of and egress from host cells. Recently, it has been reported that phosphorylation of the glideosome apparatus components of T. gondii occurs during invasion. To elucidate the role of T. gondii calmodulin-like domain protein kinase in the signaling pathway that bridges Ca(2+) stimulation and motility, we characterized T. gondii calmodulin-like domain protein kinase isoform 3 (TgCDPKif3). TgCDPKif3 is homologous to Plasmodium falciparum calcium-dependent protein kinase 1, which has been reported to phosphorylate P. falciparum glideosome components. TgCDPKif3 was purified as a fusion protein that was labeled with [gamma-(32)P]ATP, and the label was subsequently removed by phosphatase treatment. Phosphorylation was eliminated when the putative catalytic lysine residue of TgCDPKif3 was replaced with alanine. TgCDPKif3 phosphorylated Histone II(AS) as a representative substrate in a Ca(2+)-dependent manner at a high Ca(2+) concentration. TgCDPKif3 was localized to the apical ends of tachyzoites. TgCDPKif3 showed the translocation between intra- and extracellular tachyzoites. TgCDPKif3 could phosphorylate T. gondii aldolase 1 (TgALD1) in vitro. The interaction between TgCDPKif3 and TgALD1 was confirmed by the co-immunoprecipitation assay in mammal cells. We suggested that TgCDPKif3 could participate in the motility of T. gondii through the phosphorylation of glideosome complex member.
Insights
Toxoplasma gondii calmodulin-like domain protein kinase isoform 3 (TgCDPKif3) plays a role in parasite motility. This calcium-dependent kinase phosphorylates glideosome components, suggesting its involvement in host cell invasion and egress.
Area of Science:
- Parasitology
- Molecular Biology
- Cell Signaling
Background:
- Calcium signaling is crucial for Toxoplasma gondii motility, invasion, and egress.
- Phosphorylation of glideosome components during T. gondii invasion suggests a role for protein kinases.
Purpose of the Study:
- To investigate the role of T. gondii calmodulin-like domain protein kinase isoform 3 (TgCDPKif3) in the Ca(2+) signaling pathway.
- To understand TgCDPKif3's function in bridging Ca(2+) stimulation and parasite motility.
Main Methods:
- Purification and characterization of TgCDPKif3 as a fusion protein.
- In vitro kinase assays using Histone II(AS) and T. gondii aldolase 1 (TgALD1) as substrates.
- Site-directed mutagenesis to identify the catalytic lysine residue.
- Subcellular localization studies using tachyzoites.
- Co-immunoprecipitation assays in mammalian cells.
Main Results:
- TgCDPKif3 is a Ca(2+)-dependent protein kinase that phosphorylates Histone II(AS) at high Ca(2+) concentrations.
- Phosphorylation activity requires the catalytic lysine residue.
- TgCDPKif3 localizes to the apical ends of tachyzoites and translocates between intra- and extracellular stages.
- TgCDPKif3 phosphorylates TgALD1 in vitro, and their interaction is confirmed.
Conclusions:
- TgCDPKif3 is implicated in T. gondii motility.
- The kinase likely participates in the signaling pathway regulating invasion and egress by phosphorylating glideosome complex members like TgALD1.
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