Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.

The emergence of artemisinin (ART) resistance in Plasmodium falciparum intra-erythrocytic parasites has led to increasing treatment failure rates with first-line ART-based combination therapies in Southeast Asia. Decreased parasite susceptibility is caused by K13 mutations, which are associated clin...

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Main Authors: Nina F Gnädig, Barbara H Stokes, Rachel L Edwards, Gavreel F Kalantarov, Kim C Heimsch, Michal Kuderjavy, Audrey Crane, Marcus C S Lee, Judith Straimer, Katja Becker, Ilya N Trakht, Audrey R Odom John, Sachel Mok, David A Fidock
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-04-01
Series:PLoS Pathogens
Online Access:https://doi.org/10.1371/journal.ppat.1008482
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spelling doaj-63f0cf7a413247b28ca9b575fa65febb2021-04-21T17:57:40ZengPublic Library of Science (PLoS)PLoS Pathogens1553-73661553-73742020-04-01164e100848210.1371/journal.ppat.1008482Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.Nina F GnädigBarbara H StokesRachel L EdwardsGavreel F KalantarovKim C HeimschMichal KuderjavyAudrey CraneMarcus C S LeeJudith StraimerKatja BeckerIlya N TrakhtAudrey R Odom JohnSachel MokDavid A FidockThe emergence of artemisinin (ART) resistance in Plasmodium falciparum intra-erythrocytic parasites has led to increasing treatment failure rates with first-line ART-based combination therapies in Southeast Asia. Decreased parasite susceptibility is caused by K13 mutations, which are associated clinically with delayed parasite clearance in patients and in vitro with an enhanced ability of ring-stage parasites to survive brief exposure to the active ART metabolite dihydroartemisinin. Herein, we describe a panel of K13-specific monoclonal antibodies and gene-edited parasite lines co-expressing epitope-tagged versions of K13 in trans. By applying an analytical quantitative imaging pipeline, we localize K13 to the parasite endoplasmic reticulum, Rab-positive vesicles, and sites adjacent to cytostomes. These latter structures form at the parasite plasma membrane and traffic hemoglobin to the digestive vacuole wherein artemisinin-activating heme moieties are released. We also provide evidence of K13 partially localizing near the parasite mitochondria upon treatment with dihydroartemisinin. Immunoprecipitation data generated with K13-specific monoclonal antibodies identify multiple putative K13-associated proteins, including endoplasmic reticulum-resident molecules, mitochondrial proteins, and Rab GTPases, in both K13 mutant and wild-type isogenic lines. We also find that mutant K13-mediated resistance is reversed upon co-expression of wild-type or mutant K13. These data help define the biological properties of K13 and its role in mediating P. falciparum resistance to ART treatment.https://doi.org/10.1371/journal.ppat.1008482
collection DOAJ
language English
format Article
sources DOAJ
author Nina F Gnädig
Barbara H Stokes
Rachel L Edwards
Gavreel F Kalantarov
Kim C Heimsch
Michal Kuderjavy
Audrey Crane
Marcus C S Lee
Judith Straimer
Katja Becker
Ilya N Trakht
Audrey R Odom John
Sachel Mok
David A Fidock
spellingShingle Nina F Gnädig
Barbara H Stokes
Rachel L Edwards
Gavreel F Kalantarov
Kim C Heimsch
Michal Kuderjavy
Audrey Crane
Marcus C S Lee
Judith Straimer
Katja Becker
Ilya N Trakht
Audrey R Odom John
Sachel Mok
David A Fidock
Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.
PLoS Pathogens
author_facet Nina F Gnädig
Barbara H Stokes
Rachel L Edwards
Gavreel F Kalantarov
Kim C Heimsch
Michal Kuderjavy
Audrey Crane
Marcus C S Lee
Judith Straimer
Katja Becker
Ilya N Trakht
Audrey R Odom John
Sachel Mok
David A Fidock
author_sort Nina F Gnädig
title Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.
title_short Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.
title_full Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.
title_fullStr Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.
title_full_unstemmed Insights into the intracellular localization, protein associations and artemisinin resistance properties of Plasmodium falciparum K13.
title_sort insights into the intracellular localization, protein associations and artemisinin resistance properties of plasmodium falciparum k13.
publisher Public Library of Science (PLoS)
series PLoS Pathogens
issn 1553-7366
1553-7374
publishDate 2020-04-01
description The emergence of artemisinin (ART) resistance in Plasmodium falciparum intra-erythrocytic parasites has led to increasing treatment failure rates with first-line ART-based combination therapies in Southeast Asia. Decreased parasite susceptibility is caused by K13 mutations, which are associated clinically with delayed parasite clearance in patients and in vitro with an enhanced ability of ring-stage parasites to survive brief exposure to the active ART metabolite dihydroartemisinin. Herein, we describe a panel of K13-specific monoclonal antibodies and gene-edited parasite lines co-expressing epitope-tagged versions of K13 in trans. By applying an analytical quantitative imaging pipeline, we localize K13 to the parasite endoplasmic reticulum, Rab-positive vesicles, and sites adjacent to cytostomes. These latter structures form at the parasite plasma membrane and traffic hemoglobin to the digestive vacuole wherein artemisinin-activating heme moieties are released. We also provide evidence of K13 partially localizing near the parasite mitochondria upon treatment with dihydroartemisinin. Immunoprecipitation data generated with K13-specific monoclonal antibodies identify multiple putative K13-associated proteins, including endoplasmic reticulum-resident molecules, mitochondrial proteins, and Rab GTPases, in both K13 mutant and wild-type isogenic lines. We also find that mutant K13-mediated resistance is reversed upon co-expression of wild-type or mutant K13. These data help define the biological properties of K13 and its role in mediating P. falciparum resistance to ART treatment.
url https://doi.org/10.1371/journal.ppat.1008482
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