Cargando…

Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma

Cross-talk among oncogenic signaling and metabolic pathways may create opportunities for novel therapeutic strategies in cancer. Here we show that acute inhibition of EGFR-driven glucose metabolism induces minimal cell death, yet lowers the apoptotic threshold in a subset of patient-derived glioblas...

Descripción completa

Detalles Bibliográficos
Autores principales: Mai, Wilson X., Gosa, Laura, Daniels, Veerle W., Ta, Lisa, Tsang, Jonathan E., Higgins, Brian, Gilmore, W. Blake, Bayley, Nicholas A., Harati, Mitra Dehghan, Lee, Jason T., Yong, William H., Kornblum, Harley I., Bensinger, Steven J., Mischel, Paul S., Rao, P. Nagesh, Clark, Peter M., Cloughesy, Timothy F., Letai, Anthony, Nathanson, David A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5683421/
https://www.ncbi.nlm.nih.gov/pubmed/29035366
http://dx.doi.org/10.1038/nm.4418
_version_ 1783278275952377856
author Mai, Wilson X.
Gosa, Laura
Daniels, Veerle W.
Ta, Lisa
Tsang, Jonathan E.
Higgins, Brian
Gilmore, W. Blake
Bayley, Nicholas A.
Harati, Mitra Dehghan
Lee, Jason T.
Yong, William H.
Kornblum, Harley I.
Bensinger, Steven J.
Mischel, Paul S.
Rao, P. Nagesh
Clark, Peter M.
Cloughesy, Timothy F.
Letai, Anthony
Nathanson, David A.
author_facet Mai, Wilson X.
Gosa, Laura
Daniels, Veerle W.
Ta, Lisa
Tsang, Jonathan E.
Higgins, Brian
Gilmore, W. Blake
Bayley, Nicholas A.
Harati, Mitra Dehghan
Lee, Jason T.
Yong, William H.
Kornblum, Harley I.
Bensinger, Steven J.
Mischel, Paul S.
Rao, P. Nagesh
Clark, Peter M.
Cloughesy, Timothy F.
Letai, Anthony
Nathanson, David A.
author_sort Mai, Wilson X.
collection PubMed
description Cross-talk among oncogenic signaling and metabolic pathways may create opportunities for novel therapeutic strategies in cancer. Here we show that acute inhibition of EGFR-driven glucose metabolism induces minimal cell death, yet lowers the apoptotic threshold in a subset of patient-derived glioblastoma (GBM) cells. Mechanistic studies revealed that, following attenuated glucose consumption, Bcl-xL blocks cytoplasmic p53 from triggering intrinsic apoptosis. Consequently, pharmacological stabilization of p53 with the brain-penetrant small molecule, Idasanutlin, in combination with targeting EGFR-driven glucose metabolism promoted synthetic lethality in orthotopic xenograft models. Notably, neither inhibition of EGFR signaling, nor genetic analysis of EGFR, was sufficient to predict sensitivity to this new therapeutic combination. Conversely, rapid changes in (18)F-fluorodeoxyglucose ((18)F-FDG) uptake using non-invasive positron emission tomography was an effective predictive biomarker of response in vivo. Together, these studies identify a critical link between oncogene signaling, glucose metabolism, and cytoplasmic p53, which could be exploited for combination therapy in GBM and potentially, other malignancies.
format Online
Article
Text
id pubmed-5683421
institution National Center for Biotechnology Information
language English
publishDate 2017
record_format MEDLINE/PubMed
spelling pubmed-56834212018-04-09 Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma Mai, Wilson X. Gosa, Laura Daniels, Veerle W. Ta, Lisa Tsang, Jonathan E. Higgins, Brian Gilmore, W. Blake Bayley, Nicholas A. Harati, Mitra Dehghan Lee, Jason T. Yong, William H. Kornblum, Harley I. Bensinger, Steven J. Mischel, Paul S. Rao, P. Nagesh Clark, Peter M. Cloughesy, Timothy F. Letai, Anthony Nathanson, David A. Nat Med Article Cross-talk among oncogenic signaling and metabolic pathways may create opportunities for novel therapeutic strategies in cancer. Here we show that acute inhibition of EGFR-driven glucose metabolism induces minimal cell death, yet lowers the apoptotic threshold in a subset of patient-derived glioblastoma (GBM) cells. Mechanistic studies revealed that, following attenuated glucose consumption, Bcl-xL blocks cytoplasmic p53 from triggering intrinsic apoptosis. Consequently, pharmacological stabilization of p53 with the brain-penetrant small molecule, Idasanutlin, in combination with targeting EGFR-driven glucose metabolism promoted synthetic lethality in orthotopic xenograft models. Notably, neither inhibition of EGFR signaling, nor genetic analysis of EGFR, was sufficient to predict sensitivity to this new therapeutic combination. Conversely, rapid changes in (18)F-fluorodeoxyglucose ((18)F-FDG) uptake using non-invasive positron emission tomography was an effective predictive biomarker of response in vivo. Together, these studies identify a critical link between oncogene signaling, glucose metabolism, and cytoplasmic p53, which could be exploited for combination therapy in GBM and potentially, other malignancies. 2017-10-09 2017-11 /pmc/articles/PMC5683421/ /pubmed/29035366 http://dx.doi.org/10.1038/nm.4418 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Mai, Wilson X.
Gosa, Laura
Daniels, Veerle W.
Ta, Lisa
Tsang, Jonathan E.
Higgins, Brian
Gilmore, W. Blake
Bayley, Nicholas A.
Harati, Mitra Dehghan
Lee, Jason T.
Yong, William H.
Kornblum, Harley I.
Bensinger, Steven J.
Mischel, Paul S.
Rao, P. Nagesh
Clark, Peter M.
Cloughesy, Timothy F.
Letai, Anthony
Nathanson, David A.
Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
title Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
title_full Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
title_fullStr Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
title_full_unstemmed Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
title_short Cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
title_sort cytoplasmic p53 couples oncogene-driven glucose metabolism to apoptosis and is a therapeutic target in glioblastoma
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5683421/
https://www.ncbi.nlm.nih.gov/pubmed/29035366
http://dx.doi.org/10.1038/nm.4418
work_keys_str_mv AT maiwilsonx cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT gosalaura cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT danielsveerlew cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT talisa cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT tsangjonathane cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT higginsbrian cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT gilmorewblake cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT bayleynicholasa cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT haratimitradehghan cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT leejasont cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT yongwilliamh cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT kornblumharleyi cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT bensingerstevenj cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT mischelpauls cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT raopnagesh cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT clarkpeterm cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT cloughesytimothyf cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT letaianthony cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma
AT nathansondavida cytoplasmicp53couplesoncogenedrivenglucosemetabolismtoapoptosisandisatherapeutictargetinglioblastoma