Cargando…

Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors

The attachment of myristate to the N-terminal glycine of certain proteins is largely a co-translational modification catalyzed by N-myristoyltransferase (NMT), and involved in protein membrane-localization. Pathogen NMT is a validated therapeutic target in numerous infectious diseases including mala...

Descripción completa

Detalles Bibliográficos
Autores principales: Schlott, Anja C., Mayclin, Stephen, Reers, Alexandra R., Coburn-Flynn, Olivia, Bell, Andrew S., Green, Judith, Knuepfer, Ellen, Charter, David, Bonnert, Roger, Campo, Brice, Burrows, Jeremy, Lyons-Abbott, Sally, Staker, Bart L., Chung, Chun-Wa, Myler, Peter J., Fidock, David A., Tate, Edward W., Holder, Anthony A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6658617/
https://www.ncbi.nlm.nih.gov/pubmed/31080074
http://dx.doi.org/10.1016/j.chembiol.2019.03.015
_version_ 1783438993584553984
author Schlott, Anja C.
Mayclin, Stephen
Reers, Alexandra R.
Coburn-Flynn, Olivia
Bell, Andrew S.
Green, Judith
Knuepfer, Ellen
Charter, David
Bonnert, Roger
Campo, Brice
Burrows, Jeremy
Lyons-Abbott, Sally
Staker, Bart L.
Chung, Chun-Wa
Myler, Peter J.
Fidock, David A.
Tate, Edward W.
Holder, Anthony A.
author_facet Schlott, Anja C.
Mayclin, Stephen
Reers, Alexandra R.
Coburn-Flynn, Olivia
Bell, Andrew S.
Green, Judith
Knuepfer, Ellen
Charter, David
Bonnert, Roger
Campo, Brice
Burrows, Jeremy
Lyons-Abbott, Sally
Staker, Bart L.
Chung, Chun-Wa
Myler, Peter J.
Fidock, David A.
Tate, Edward W.
Holder, Anthony A.
author_sort Schlott, Anja C.
collection PubMed
description The attachment of myristate to the N-terminal glycine of certain proteins is largely a co-translational modification catalyzed by N-myristoyltransferase (NMT), and involved in protein membrane-localization. Pathogen NMT is a validated therapeutic target in numerous infectious diseases including malaria. In Plasmodium falciparum, NMT substrates are important in essential processes including parasite gliding motility and host cell invasion. Here, we generated parasites resistant to a particular NMT inhibitor series and show that resistance in an in vitro parasite growth assay is mediated by a single amino acid substitution in the NMT substrate-binding pocket. The basis of resistance was validated and analyzed with a structure-guided approach using crystallography, in combination with enzyme activity, stability, and surface plasmon resonance assays, allowing identification of another inhibitor series unaffected by this substitution. We suggest that resistance studies incorporated early in the drug development process help selection of drug combinations to impede rapid evolution of parasite resistance.
format Online
Article
Text
id pubmed-6658617
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Cell Press
record_format MEDLINE/PubMed
spelling pubmed-66586172019-08-06 Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors Schlott, Anja C. Mayclin, Stephen Reers, Alexandra R. Coburn-Flynn, Olivia Bell, Andrew S. Green, Judith Knuepfer, Ellen Charter, David Bonnert, Roger Campo, Brice Burrows, Jeremy Lyons-Abbott, Sally Staker, Bart L. Chung, Chun-Wa Myler, Peter J. Fidock, David A. Tate, Edward W. Holder, Anthony A. Cell Chem Biol Article The attachment of myristate to the N-terminal glycine of certain proteins is largely a co-translational modification catalyzed by N-myristoyltransferase (NMT), and involved in protein membrane-localization. Pathogen NMT is a validated therapeutic target in numerous infectious diseases including malaria. In Plasmodium falciparum, NMT substrates are important in essential processes including parasite gliding motility and host cell invasion. Here, we generated parasites resistant to a particular NMT inhibitor series and show that resistance in an in vitro parasite growth assay is mediated by a single amino acid substitution in the NMT substrate-binding pocket. The basis of resistance was validated and analyzed with a structure-guided approach using crystallography, in combination with enzyme activity, stability, and surface plasmon resonance assays, allowing identification of another inhibitor series unaffected by this substitution. We suggest that resistance studies incorporated early in the drug development process help selection of drug combinations to impede rapid evolution of parasite resistance. Cell Press 2019-07-18 /pmc/articles/PMC6658617/ /pubmed/31080074 http://dx.doi.org/10.1016/j.chembiol.2019.03.015 Text en © 2019 The Authors http://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 Article
Schlott, Anja C.
Mayclin, Stephen
Reers, Alexandra R.
Coburn-Flynn, Olivia
Bell, Andrew S.
Green, Judith
Knuepfer, Ellen
Charter, David
Bonnert, Roger
Campo, Brice
Burrows, Jeremy
Lyons-Abbott, Sally
Staker, Bart L.
Chung, Chun-Wa
Myler, Peter J.
Fidock, David A.
Tate, Edward W.
Holder, Anthony A.
Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors
title Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors
title_full Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors
title_fullStr Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors
title_full_unstemmed Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors
title_short Structure-Guided Identification of Resistance Breaking Antimalarial N‑Myristoyltransferase Inhibitors
title_sort structure-guided identification of resistance breaking antimalarial n‑myristoyltransferase inhibitors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6658617/
https://www.ncbi.nlm.nih.gov/pubmed/31080074
http://dx.doi.org/10.1016/j.chembiol.2019.03.015
work_keys_str_mv AT schlottanjac structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT mayclinstephen structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT reersalexandrar structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT coburnflynnolivia structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT bellandrews structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT greenjudith structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT knuepferellen structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT charterdavid structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT bonnertroger structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT campobrice structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT burrowsjeremy structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT lyonsabbottsally structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT stakerbartl structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT chungchunwa structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT mylerpeterj structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT fidockdavida structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT tateedwardw structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors
AT holderanthonya structureguidedidentificationofresistancebreakingantimalarialnmyristoyltransferaseinhibitors