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Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3

Toxoplasma gondii parasites rapidly exit their host cell when exposed to calcium ionophores. Calcium‐dependent protein kinase 3 (TgCDPK3) was previously identified as a key mediator in this process, as TgCDPK3 knockout (∆cdpk3) parasites fail to egress in a timely manner. Phosphoproteomic analysis c...

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Autores principales: Wallbank, Bethan A., Dominicus, Caia S., Broncel, Malgorzata, Legrave, Nathalie, Kelly, Gavin, MacRae, James I., Staines, Henry M., Treeck, Moritz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6488386/
https://www.ncbi.nlm.nih.gov/pubmed/30402958
http://dx.doi.org/10.1111/mmi.14156
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author Wallbank, Bethan A.
Dominicus, Caia S.
Broncel, Malgorzata
Legrave, Nathalie
Kelly, Gavin
MacRae, James I.
Staines, Henry M.
Treeck, Moritz
author_facet Wallbank, Bethan A.
Dominicus, Caia S.
Broncel, Malgorzata
Legrave, Nathalie
Kelly, Gavin
MacRae, James I.
Staines, Henry M.
Treeck, Moritz
author_sort Wallbank, Bethan A.
collection PubMed
description Toxoplasma gondii parasites rapidly exit their host cell when exposed to calcium ionophores. Calcium‐dependent protein kinase 3 (TgCDPK3) was previously identified as a key mediator in this process, as TgCDPK3 knockout (∆cdpk3) parasites fail to egress in a timely manner. Phosphoproteomic analysis comparing WT with ∆cdpk3 parasites revealed changes in the TgCDPK3‐dependent phosphoproteome that included proteins important for regulating motility, but also metabolic enzymes, indicating that TgCDPK3 controls processes beyond egress. Here we have investigated a predicted direct target of TgCDPK3, ApiAT5‐3, a putative transporter of the major facilitator superfamily, and show that it is rapidly phosphorylated at serine 56 after induction of calcium signalling. Conditional knockout of apiAT5‐3 results in transcriptional upregulation of most ribosomal subunits, but no alternative transporters, and subsequent parasite death. Mutating the S56 to a non‐phosphorylatable alanine leads to a fitness cost, suggesting that phosphorylation of this residue is beneficial, albeit not essential, for tyrosine import. Using a combination of metabolomics and heterologous expression, we confirmed a primary role in tyrosine import for ApiAT5‐3. However, no significant differences in tyrosine import could be detected in phosphorylation site mutants showing that if tyrosine transport is affected by S56 phosphorylation, its regulatory role is subtle.
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spelling pubmed-64883862019-05-23 Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3 Wallbank, Bethan A. Dominicus, Caia S. Broncel, Malgorzata Legrave, Nathalie Kelly, Gavin MacRae, James I. Staines, Henry M. Treeck, Moritz Mol Microbiol Research Articles Toxoplasma gondii parasites rapidly exit their host cell when exposed to calcium ionophores. Calcium‐dependent protein kinase 3 (TgCDPK3) was previously identified as a key mediator in this process, as TgCDPK3 knockout (∆cdpk3) parasites fail to egress in a timely manner. Phosphoproteomic analysis comparing WT with ∆cdpk3 parasites revealed changes in the TgCDPK3‐dependent phosphoproteome that included proteins important for regulating motility, but also metabolic enzymes, indicating that TgCDPK3 controls processes beyond egress. Here we have investigated a predicted direct target of TgCDPK3, ApiAT5‐3, a putative transporter of the major facilitator superfamily, and show that it is rapidly phosphorylated at serine 56 after induction of calcium signalling. Conditional knockout of apiAT5‐3 results in transcriptional upregulation of most ribosomal subunits, but no alternative transporters, and subsequent parasite death. Mutating the S56 to a non‐phosphorylatable alanine leads to a fitness cost, suggesting that phosphorylation of this residue is beneficial, albeit not essential, for tyrosine import. Using a combination of metabolomics and heterologous expression, we confirmed a primary role in tyrosine import for ApiAT5‐3. However, no significant differences in tyrosine import could be detected in phosphorylation site mutants showing that if tyrosine transport is affected by S56 phosphorylation, its regulatory role is subtle. John Wiley and Sons Inc. 2018-11-25 2019-05 /pmc/articles/PMC6488386/ /pubmed/30402958 http://dx.doi.org/10.1111/mmi.14156 Text en © 2018 The Authors. Molecular Microbiology Published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Wallbank, Bethan A.
Dominicus, Caia S.
Broncel, Malgorzata
Legrave, Nathalie
Kelly, Gavin
MacRae, James I.
Staines, Henry M.
Treeck, Moritz
Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
title Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
title_full Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
title_fullStr Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
title_full_unstemmed Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
title_short Characterisation of the Toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
title_sort characterisation of the toxoplasma gondii tyrosine transporter and its phosphorylation by the calcium‐dependent protein kinase 3
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6488386/
https://www.ncbi.nlm.nih.gov/pubmed/30402958
http://dx.doi.org/10.1111/mmi.14156
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