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Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion

We have combined chemical biology and genetic modification approaches to investigate the importance of protein myristoylation in the human malaria parasite, Plasmodium falciparum. Parasite treatment during schizogony in the last 10 to 15 hours of the erythrocytic cycle with IMP-1002, an inhibitor of...

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Autores principales: Schlott, Anja C., Knuepfer, Ellen, Green, Judith L., Hobson, Philip, Borg, Aaron J., Morales-Sanfrutos, Julia, Perrin, Abigail J., Maclachlan, Catherine, Collinson, Lucy M., Snijders, Ambrosius P., Tate, Edward W., Holder, Anthony A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8544853/
https://www.ncbi.nlm.nih.gov/pubmed/34695132
http://dx.doi.org/10.1371/journal.pbio.3001408
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author Schlott, Anja C.
Knuepfer, Ellen
Green, Judith L.
Hobson, Philip
Borg, Aaron J.
Morales-Sanfrutos, Julia
Perrin, Abigail J.
Maclachlan, Catherine
Collinson, Lucy M.
Snijders, Ambrosius P.
Tate, Edward W.
Holder, Anthony A.
author_facet Schlott, Anja C.
Knuepfer, Ellen
Green, Judith L.
Hobson, Philip
Borg, Aaron J.
Morales-Sanfrutos, Julia
Perrin, Abigail J.
Maclachlan, Catherine
Collinson, Lucy M.
Snijders, Ambrosius P.
Tate, Edward W.
Holder, Anthony A.
author_sort Schlott, Anja C.
collection PubMed
description We have combined chemical biology and genetic modification approaches to investigate the importance of protein myristoylation in the human malaria parasite, Plasmodium falciparum. Parasite treatment during schizogony in the last 10 to 15 hours of the erythrocytic cycle with IMP-1002, an inhibitor of N-myristoyl transferase (NMT), led to a significant blockade in parasite egress from the infected erythrocyte. Two rhoptry proteins were mislocalized in the cell, suggesting that rhoptry function is disrupted. We identified 16 NMT substrates for which myristoylation was significantly reduced by NMT inhibitor (NMTi) treatment, and, of these, 6 proteins were substantially reduced in abundance. In a viability screen, we showed that for 4 of these proteins replacement of the N-terminal glycine with alanine to prevent myristoylation had a substantial effect on parasite fitness. In detailed studies of one NMT substrate, glideosome-associated protein 45 (GAP45), loss of myristoylation had no impact on protein location or glideosome assembly, in contrast to the disruption caused by GAP45 gene deletion, but GAP45 myristoylation was essential for erythrocyte invasion. Therefore, there are at least 3 mechanisms by which inhibition of NMT can disrupt parasite development and growth: early in parasite development, leading to the inhibition of schizogony and formation of “pseudoschizonts,” which has been described previously; at the end of schizogony, with disruption of rhoptry formation, merozoite development and egress from the infected erythrocyte; and at invasion, when impairment of motor complex function prevents invasion of new erythrocytes. These results underline the importance of P. falciparum NMT as a drug target because of the pleiotropic effect of its inhibition.
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spelling pubmed-85448532021-10-26 Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion Schlott, Anja C. Knuepfer, Ellen Green, Judith L. Hobson, Philip Borg, Aaron J. Morales-Sanfrutos, Julia Perrin, Abigail J. Maclachlan, Catherine Collinson, Lucy M. Snijders, Ambrosius P. Tate, Edward W. Holder, Anthony A. PLoS Biol Research Article We have combined chemical biology and genetic modification approaches to investigate the importance of protein myristoylation in the human malaria parasite, Plasmodium falciparum. Parasite treatment during schizogony in the last 10 to 15 hours of the erythrocytic cycle with IMP-1002, an inhibitor of N-myristoyl transferase (NMT), led to a significant blockade in parasite egress from the infected erythrocyte. Two rhoptry proteins were mislocalized in the cell, suggesting that rhoptry function is disrupted. We identified 16 NMT substrates for which myristoylation was significantly reduced by NMT inhibitor (NMTi) treatment, and, of these, 6 proteins were substantially reduced in abundance. In a viability screen, we showed that for 4 of these proteins replacement of the N-terminal glycine with alanine to prevent myristoylation had a substantial effect on parasite fitness. In detailed studies of one NMT substrate, glideosome-associated protein 45 (GAP45), loss of myristoylation had no impact on protein location or glideosome assembly, in contrast to the disruption caused by GAP45 gene deletion, but GAP45 myristoylation was essential for erythrocyte invasion. Therefore, there are at least 3 mechanisms by which inhibition of NMT can disrupt parasite development and growth: early in parasite development, leading to the inhibition of schizogony and formation of “pseudoschizonts,” which has been described previously; at the end of schizogony, with disruption of rhoptry formation, merozoite development and egress from the infected erythrocyte; and at invasion, when impairment of motor complex function prevents invasion of new erythrocytes. These results underline the importance of P. falciparum NMT as a drug target because of the pleiotropic effect of its inhibition. Public Library of Science 2021-10-25 /pmc/articles/PMC8544853/ /pubmed/34695132 http://dx.doi.org/10.1371/journal.pbio.3001408 Text en © 2021 Schlott et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Schlott, Anja C.
Knuepfer, Ellen
Green, Judith L.
Hobson, Philip
Borg, Aaron J.
Morales-Sanfrutos, Julia
Perrin, Abigail J.
Maclachlan, Catherine
Collinson, Lucy M.
Snijders, Ambrosius P.
Tate, Edward W.
Holder, Anthony A.
Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion
title Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion
title_full Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion
title_fullStr Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion
title_full_unstemmed Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion
title_short Inhibition of protein N-myristoylation blocks Plasmodium falciparum intraerythrocytic development, egress and invasion
title_sort inhibition of protein n-myristoylation blocks plasmodium falciparum intraerythrocytic development, egress and invasion
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8544853/
https://www.ncbi.nlm.nih.gov/pubmed/34695132
http://dx.doi.org/10.1371/journal.pbio.3001408
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