Cargando…

Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication

Pharmacological targeting of metabolic processes in cancer must overcome redundancy in biosynthetic pathways. Deoxycytidine (dC) triphosphate (dCTP) can be produced both by the de novo pathway (DNP) and by the nucleoside salvage pathway (NSP). However, the role of the NSP in dCTP production and DNA...

Descripción completa

Detalles Bibliográficos
Autores principales: Nathanson, David A., Armijo, Amanda L., Tom, Michelle, Li, Zheng, Dimitrova, Elizabeth, Austin, Wayne R., Nomme, Julian, Campbell, Dean O., Ta, Lisa, Le, Thuc M., Lee, Jason T., Darvish, Ryan, Gordin, Ari, Wei, Liu, Liao, Hsiang-I, Wilks, Moses, Martin, Colette, Sadeghi, Saman, Murphy, Jennifer M., Boulos, Nidal, Phelps, Michael E., Faull, Kym F., Herschman, Harvey R., Jung, Michael E., Czernin, Johannes, Lavie, Arnon, Radu, Caius G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3949575/
https://www.ncbi.nlm.nih.gov/pubmed/24567448
http://dx.doi.org/10.1084/jem.20131738
_version_ 1782306912397688832
author Nathanson, David A.
Armijo, Amanda L.
Tom, Michelle
Li, Zheng
Dimitrova, Elizabeth
Austin, Wayne R.
Nomme, Julian
Campbell, Dean O.
Ta, Lisa
Le, Thuc M.
Lee, Jason T.
Darvish, Ryan
Gordin, Ari
Wei, Liu
Liao, Hsiang-I
Wilks, Moses
Martin, Colette
Sadeghi, Saman
Murphy, Jennifer M.
Boulos, Nidal
Phelps, Michael E.
Faull, Kym F.
Herschman, Harvey R.
Jung, Michael E.
Czernin, Johannes
Lavie, Arnon
Radu, Caius G.
author_facet Nathanson, David A.
Armijo, Amanda L.
Tom, Michelle
Li, Zheng
Dimitrova, Elizabeth
Austin, Wayne R.
Nomme, Julian
Campbell, Dean O.
Ta, Lisa
Le, Thuc M.
Lee, Jason T.
Darvish, Ryan
Gordin, Ari
Wei, Liu
Liao, Hsiang-I
Wilks, Moses
Martin, Colette
Sadeghi, Saman
Murphy, Jennifer M.
Boulos, Nidal
Phelps, Michael E.
Faull, Kym F.
Herschman, Harvey R.
Jung, Michael E.
Czernin, Johannes
Lavie, Arnon
Radu, Caius G.
author_sort Nathanson, David A.
collection PubMed
description Pharmacological targeting of metabolic processes in cancer must overcome redundancy in biosynthetic pathways. Deoxycytidine (dC) triphosphate (dCTP) can be produced both by the de novo pathway (DNP) and by the nucleoside salvage pathway (NSP). However, the role of the NSP in dCTP production and DNA synthesis in cancer cells is currently not well understood. We show that acute lymphoblastic leukemia (ALL) cells avoid lethal replication stress after thymidine (dT)-induced inhibition of DNP dCTP synthesis by switching to NSP-mediated dCTP production. The metabolic switch in dCTP production triggered by DNP inhibition is accompanied by NSP up-regulation and can be prevented using DI-39, a new high-affinity small-molecule inhibitor of the NSP rate-limiting enzyme dC kinase (dCK). Positron emission tomography (PET) imaging was useful for following both the duration and degree of dCK inhibition by DI-39 treatment in vivo, thus providing a companion pharmacodynamic biomarker. Pharmacological co-targeting of the DNP with dT and the NSP with DI-39 was efficacious against ALL models in mice, without detectable host toxicity. These findings advance our understanding of nucleotide metabolism in leukemic cells, and identify dCTP biosynthesis as a potential new therapeutic target for metabolic interventions in ALL and possibly other hematological malignancies.
format Online
Article
Text
id pubmed-3949575
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher The Rockefeller University Press
record_format MEDLINE/PubMed
spelling pubmed-39495752014-09-10 Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication Nathanson, David A. Armijo, Amanda L. Tom, Michelle Li, Zheng Dimitrova, Elizabeth Austin, Wayne R. Nomme, Julian Campbell, Dean O. Ta, Lisa Le, Thuc M. Lee, Jason T. Darvish, Ryan Gordin, Ari Wei, Liu Liao, Hsiang-I Wilks, Moses Martin, Colette Sadeghi, Saman Murphy, Jennifer M. Boulos, Nidal Phelps, Michael E. Faull, Kym F. Herschman, Harvey R. Jung, Michael E. Czernin, Johannes Lavie, Arnon Radu, Caius G. J Exp Med Article Pharmacological targeting of metabolic processes in cancer must overcome redundancy in biosynthetic pathways. Deoxycytidine (dC) triphosphate (dCTP) can be produced both by the de novo pathway (DNP) and by the nucleoside salvage pathway (NSP). However, the role of the NSP in dCTP production and DNA synthesis in cancer cells is currently not well understood. We show that acute lymphoblastic leukemia (ALL) cells avoid lethal replication stress after thymidine (dT)-induced inhibition of DNP dCTP synthesis by switching to NSP-mediated dCTP production. The metabolic switch in dCTP production triggered by DNP inhibition is accompanied by NSP up-regulation and can be prevented using DI-39, a new high-affinity small-molecule inhibitor of the NSP rate-limiting enzyme dC kinase (dCK). Positron emission tomography (PET) imaging was useful for following both the duration and degree of dCK inhibition by DI-39 treatment in vivo, thus providing a companion pharmacodynamic biomarker. Pharmacological co-targeting of the DNP with dT and the NSP with DI-39 was efficacious against ALL models in mice, without detectable host toxicity. These findings advance our understanding of nucleotide metabolism in leukemic cells, and identify dCTP biosynthesis as a potential new therapeutic target for metabolic interventions in ALL and possibly other hematological malignancies. The Rockefeller University Press 2014-03-10 /pmc/articles/PMC3949575/ /pubmed/24567448 http://dx.doi.org/10.1084/jem.20131738 Text en © 2014 Nathanson et al. This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 3.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Article
Nathanson, David A.
Armijo, Amanda L.
Tom, Michelle
Li, Zheng
Dimitrova, Elizabeth
Austin, Wayne R.
Nomme, Julian
Campbell, Dean O.
Ta, Lisa
Le, Thuc M.
Lee, Jason T.
Darvish, Ryan
Gordin, Ari
Wei, Liu
Liao, Hsiang-I
Wilks, Moses
Martin, Colette
Sadeghi, Saman
Murphy, Jennifer M.
Boulos, Nidal
Phelps, Michael E.
Faull, Kym F.
Herschman, Harvey R.
Jung, Michael E.
Czernin, Johannes
Lavie, Arnon
Radu, Caius G.
Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
title Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
title_full Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
title_fullStr Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
title_full_unstemmed Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
title_short Co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
title_sort co-targeting of convergent nucleotide biosynthetic pathways for leukemia eradication
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3949575/
https://www.ncbi.nlm.nih.gov/pubmed/24567448
http://dx.doi.org/10.1084/jem.20131738
work_keys_str_mv AT nathansondavida cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT armijoamandal cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT tommichelle cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT lizheng cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT dimitrovaelizabeth cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT austinwayner cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT nommejulian cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT campbelldeano cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT talisa cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT lethucm cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT leejasont cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT darvishryan cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT gordinari cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT weiliu cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT liaohsiangi cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT wilksmoses cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT martincolette cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT sadeghisaman cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT murphyjenniferm cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT boulosnidal cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT phelpsmichaele cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT faullkymf cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT herschmanharveyr cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT jungmichaele cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT czerninjohannes cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT laviearnon cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication
AT raducaiusg cotargetingofconvergentnucleotidebiosyntheticpathwaysforleukemiaeradication