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A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes

Myristoylation is a lipid modification involving the addition of a 14-carbon unsaturated fatty acid, myristic acid, to the N-terminal glycine of a subset of proteins, a modification that promotes their binding to cell membranes for varied biological functions. The process is catalyzed by myristoyl-C...

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Autores principales: Galvin, Brendan D., Li, Zhiru, Villemaine, Estelle, Poole, Catherine B., Chapman, Melissa S., Pollastri, Michael P., Wyatt, Paul G., Carlow, Clotilde K. S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4154664/
https://www.ncbi.nlm.nih.gov/pubmed/25188325
http://dx.doi.org/10.1371/journal.pntd.0003145
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author Galvin, Brendan D.
Li, Zhiru
Villemaine, Estelle
Poole, Catherine B.
Chapman, Melissa S.
Pollastri, Michael P.
Wyatt, Paul G.
Carlow, Clotilde K. S.
author_facet Galvin, Brendan D.
Li, Zhiru
Villemaine, Estelle
Poole, Catherine B.
Chapman, Melissa S.
Pollastri, Michael P.
Wyatt, Paul G.
Carlow, Clotilde K. S.
author_sort Galvin, Brendan D.
collection PubMed
description Myristoylation is a lipid modification involving the addition of a 14-carbon unsaturated fatty acid, myristic acid, to the N-terminal glycine of a subset of proteins, a modification that promotes their binding to cell membranes for varied biological functions. The process is catalyzed by myristoyl-CoA:protein N-myristoyltransferase (NMT), an enzyme which has been validated as a drug target in human cancers, and for infectious diseases caused by fungi, viruses and protozoan parasites. We purified Caenorhabditis elegans and Brugia malayi NMTs as active recombinant proteins and carried out kinetic analyses with their essential fatty acid donor, myristoyl-CoA and peptide substrates. Biochemical and structural analyses both revealed that the nematode enzymes are canonical NMTs, sharing a high degree of conservation with protozoan NMT enzymes. Inhibitory compounds that target NMT in protozoan species inhibited the nematode NMTs with IC(50) values of 2.5–10 nM, and were active against B. malayi microfilariae and adult worms at 12.5 µM and 50 µM respectively, and C. elegans (25 µM) in culture. RNA interference and gene deletion in C. elegans further showed that NMT is essential for nematode viability. The effects observed are likely due to disruption of the function of several downstream target proteins. Potential substrates of NMT in B. malayi are predicted using bioinformatic analysis. Our genetic and chemical studies highlight the importance of myristoylation in the synthesis of functional proteins in nematodes and have shown for the first time that NMT is required for viability in parasitic nematodes. These results suggest that targeting NMT could be a valid approach for the development of chemotherapeutic agents against nematode diseases including filariasis.
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spelling pubmed-41546642014-09-08 A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes Galvin, Brendan D. Li, Zhiru Villemaine, Estelle Poole, Catherine B. Chapman, Melissa S. Pollastri, Michael P. Wyatt, Paul G. Carlow, Clotilde K. S. PLoS Negl Trop Dis Research Article Myristoylation is a lipid modification involving the addition of a 14-carbon unsaturated fatty acid, myristic acid, to the N-terminal glycine of a subset of proteins, a modification that promotes their binding to cell membranes for varied biological functions. The process is catalyzed by myristoyl-CoA:protein N-myristoyltransferase (NMT), an enzyme which has been validated as a drug target in human cancers, and for infectious diseases caused by fungi, viruses and protozoan parasites. We purified Caenorhabditis elegans and Brugia malayi NMTs as active recombinant proteins and carried out kinetic analyses with their essential fatty acid donor, myristoyl-CoA and peptide substrates. Biochemical and structural analyses both revealed that the nematode enzymes are canonical NMTs, sharing a high degree of conservation with protozoan NMT enzymes. Inhibitory compounds that target NMT in protozoan species inhibited the nematode NMTs with IC(50) values of 2.5–10 nM, and were active against B. malayi microfilariae and adult worms at 12.5 µM and 50 µM respectively, and C. elegans (25 µM) in culture. RNA interference and gene deletion in C. elegans further showed that NMT is essential for nematode viability. The effects observed are likely due to disruption of the function of several downstream target proteins. Potential substrates of NMT in B. malayi are predicted using bioinformatic analysis. Our genetic and chemical studies highlight the importance of myristoylation in the synthesis of functional proteins in nematodes and have shown for the first time that NMT is required for viability in parasitic nematodes. These results suggest that targeting NMT could be a valid approach for the development of chemotherapeutic agents against nematode diseases including filariasis. Public Library of Science 2014-09-04 /pmc/articles/PMC4154664/ /pubmed/25188325 http://dx.doi.org/10.1371/journal.pntd.0003145 Text en © 2014 Galvin et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Galvin, Brendan D.
Li, Zhiru
Villemaine, Estelle
Poole, Catherine B.
Chapman, Melissa S.
Pollastri, Michael P.
Wyatt, Paul G.
Carlow, Clotilde K. S.
A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes
title A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes
title_full A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes
title_fullStr A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes
title_full_unstemmed A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes
title_short A Target Repurposing Approach Identifies N-myristoyltransferase as a New Candidate Drug Target in Filarial Nematodes
title_sort target repurposing approach identifies n-myristoyltransferase as a new candidate drug target in filarial nematodes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4154664/
https://www.ncbi.nlm.nih.gov/pubmed/25188325
http://dx.doi.org/10.1371/journal.pntd.0003145
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