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Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation

Malaria is responsible for hundreds of thousands of deaths every year. The lack of an effective vaccine and the global spread of multidrug resistant parasites hampers the fight against the disease and underlines the need for new antimalarial drugs. Central to the pathogenesis of malaria is the proli...

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Autores principales: Alder, Arne, Wilcke, Louisa, Pietsch, Emma, von Thien, Heidrun, Pazicky, Samuel, Löw, Christian, Mesen-Ramirez, Paolo, Bachmann, Anna, Burda, Paul-Christian, Kunick, Conrad, Sondermann, Holger, Wilson, Danny, Gilberger, Tim-Wolf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9478393/
https://www.ncbi.nlm.nih.gov/pubmed/35961464
http://dx.doi.org/10.1016/j.jbc.2022.102360
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author Alder, Arne
Wilcke, Louisa
Pietsch, Emma
von Thien, Heidrun
Pazicky, Samuel
Löw, Christian
Mesen-Ramirez, Paolo
Bachmann, Anna
Burda, Paul-Christian
Kunick, Conrad
Sondermann, Holger
Wilson, Danny
Gilberger, Tim-Wolf
author_facet Alder, Arne
Wilcke, Louisa
Pietsch, Emma
von Thien, Heidrun
Pazicky, Samuel
Löw, Christian
Mesen-Ramirez, Paolo
Bachmann, Anna
Burda, Paul-Christian
Kunick, Conrad
Sondermann, Holger
Wilson, Danny
Gilberger, Tim-Wolf
author_sort Alder, Arne
collection PubMed
description Malaria is responsible for hundreds of thousands of deaths every year. The lack of an effective vaccine and the global spread of multidrug resistant parasites hampers the fight against the disease and underlines the need for new antimalarial drugs. Central to the pathogenesis of malaria is the proliferation of Plasmodium parasites within human erythrocytes. Parasites invade erythrocytes via a coordinated sequence of receptor–ligand interactions between the parasite and the host cell. Posttranslational modifications such as protein phosphorylation are known to be key regulators in this process and are mediated by protein kinases. For several parasite kinases, including the Plasmodium falciparum glycogen synthase kinase 3 (PfGSK3), inhibitors have been shown to block erythrocyte invasion. Here, we provide an assessment of PfGSK3 function by reverse genetics. Using targeted gene disruption, we show the active gene copy, PfGSK3β, is not essential for asexual blood stage proliferation, although it modulates efficient erythrocyte invasion. We found functional inactivation leads to a 69% decreased growth rate and confirmed this growth defect by rescue experiments with wildtype and catalytically inactive mutants. Functional knockout of PfGSK3β does not lead to transcriptional upregulation of the second copy of PfGSK3. We further analyze expression, localization, and function of PfGSK3β during gametocytogenesis using a parasite line allowing conditional induction of sexual commitment. We demonstrate PfGSK3β-deficient gametocytes show a strikingly malformed morphology leading to the death of parasites in later stages of gametocyte development. Taken together, these findings are important for our understanding and the development of PfGSK3 as an antimalarial target.
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spelling pubmed-94783932022-09-22 Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation Alder, Arne Wilcke, Louisa Pietsch, Emma von Thien, Heidrun Pazicky, Samuel Löw, Christian Mesen-Ramirez, Paolo Bachmann, Anna Burda, Paul-Christian Kunick, Conrad Sondermann, Holger Wilson, Danny Gilberger, Tim-Wolf J Biol Chem Research Article Malaria is responsible for hundreds of thousands of deaths every year. The lack of an effective vaccine and the global spread of multidrug resistant parasites hampers the fight against the disease and underlines the need for new antimalarial drugs. Central to the pathogenesis of malaria is the proliferation of Plasmodium parasites within human erythrocytes. Parasites invade erythrocytes via a coordinated sequence of receptor–ligand interactions between the parasite and the host cell. Posttranslational modifications such as protein phosphorylation are known to be key regulators in this process and are mediated by protein kinases. For several parasite kinases, including the Plasmodium falciparum glycogen synthase kinase 3 (PfGSK3), inhibitors have been shown to block erythrocyte invasion. Here, we provide an assessment of PfGSK3 function by reverse genetics. Using targeted gene disruption, we show the active gene copy, PfGSK3β, is not essential for asexual blood stage proliferation, although it modulates efficient erythrocyte invasion. We found functional inactivation leads to a 69% decreased growth rate and confirmed this growth defect by rescue experiments with wildtype and catalytically inactive mutants. Functional knockout of PfGSK3β does not lead to transcriptional upregulation of the second copy of PfGSK3. We further analyze expression, localization, and function of PfGSK3β during gametocytogenesis using a parasite line allowing conditional induction of sexual commitment. We demonstrate PfGSK3β-deficient gametocytes show a strikingly malformed morphology leading to the death of parasites in later stages of gametocyte development. Taken together, these findings are important for our understanding and the development of PfGSK3 as an antimalarial target. American Society for Biochemistry and Molecular Biology 2022-08-10 /pmc/articles/PMC9478393/ /pubmed/35961464 http://dx.doi.org/10.1016/j.jbc.2022.102360 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Alder, Arne
Wilcke, Louisa
Pietsch, Emma
von Thien, Heidrun
Pazicky, Samuel
Löw, Christian
Mesen-Ramirez, Paolo
Bachmann, Anna
Burda, Paul-Christian
Kunick, Conrad
Sondermann, Holger
Wilson, Danny
Gilberger, Tim-Wolf
Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation
title Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation
title_full Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation
title_fullStr Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation
title_full_unstemmed Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation
title_short Functional inactivation of Plasmodium falciparum glycogen synthase kinase GSK3 modulates erythrocyte invasion and blocks gametocyte maturation
title_sort functional inactivation of plasmodium falciparum glycogen synthase kinase gsk3 modulates erythrocyte invasion and blocks gametocyte maturation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9478393/
https://www.ncbi.nlm.nih.gov/pubmed/35961464
http://dx.doi.org/10.1016/j.jbc.2022.102360
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