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A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities

Pediatric high-grade gliomas (pHGG) are lethal, incurable brain tumors frequently driven by clonal mutations in histone genes. They often harbor a range of additional genetic alterations that correlate with different ages, anatomic locations, and tumor subtypes. We developed models representing 16 p...

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Autores principales: McNicholas, Michael, De Cola, Antonella, Bashardanesh, Zahedeh, Foss, Amelia, Lloyd, Cameron B., Hébert, Steven, Faury, Damien, Andrade, Augusto Faria, Jabado, Nada, Kleinman, Claudia L., Pathania, Manav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for Cancer Research 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10326601/
https://www.ncbi.nlm.nih.gov/pubmed/37011011
http://dx.doi.org/10.1158/2159-8290.CD-23-0004
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author McNicholas, Michael
De Cola, Antonella
Bashardanesh, Zahedeh
Foss, Amelia
Lloyd, Cameron B.
Hébert, Steven
Faury, Damien
Andrade, Augusto Faria
Jabado, Nada
Kleinman, Claudia L.
Pathania, Manav
author_facet McNicholas, Michael
De Cola, Antonella
Bashardanesh, Zahedeh
Foss, Amelia
Lloyd, Cameron B.
Hébert, Steven
Faury, Damien
Andrade, Augusto Faria
Jabado, Nada
Kleinman, Claudia L.
Pathania, Manav
author_sort McNicholas, Michael
collection PubMed
description Pediatric high-grade gliomas (pHGG) are lethal, incurable brain tumors frequently driven by clonal mutations in histone genes. They often harbor a range of additional genetic alterations that correlate with different ages, anatomic locations, and tumor subtypes. We developed models representing 16 pHGG subtypes driven by different combinations of alterations targeted to specific brain regions. Tumors developed with varying latencies and cell lines derived from these models engrafted in syngeneic, immunocompetent mice with high penetrance. Targeted drug screening revealed unexpected selective vulnerabilities—H3.3(G34R)/PDGFRA(C235Y) to FGFR inhibition, H3.3(K27M)/PDGFRA(WT) to PDGFRA inhibition, and H3.3(K27M)/PDGFRA(WT) and H3.3(K27M)/PPM1D(ΔC)/PIK3CA(E545K) to combined inhibition of MEK and PIK3CA. Moreover, H3.3(K27M) tumors with PIK3CA, NF1, and FGFR1 mutations were more invasive and harbored distinct additional phenotypes, such as exophytic spread, cranial nerve invasion, and spinal dissemination. Collectively, these models reveal that different partner alterations produce distinct effects on pHGG cellular composition, latency, invasiveness, and treatment sensitivity. SIGNIFICANCE: Histone-mutant pediatric gliomas are a highly heterogeneous tumor entity. Different histone mutations correlate with different ages of onset, survival outcomes, brain regions, and partner alterations. We have developed models of histone-mutant gliomas that reflect this anatomic and genetic heterogeneity and provide evidence of subtype-specific biology and therapeutic targeting. See related commentary by Lubanszky and Hawkins, p. 1516. This article is highlighted in the In This Issue feature, p. 1501
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spelling pubmed-103266012023-07-08 A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities McNicholas, Michael De Cola, Antonella Bashardanesh, Zahedeh Foss, Amelia Lloyd, Cameron B. Hébert, Steven Faury, Damien Andrade, Augusto Faria Jabado, Nada Kleinman, Claudia L. Pathania, Manav Cancer Discov Research Articles Pediatric high-grade gliomas (pHGG) are lethal, incurable brain tumors frequently driven by clonal mutations in histone genes. They often harbor a range of additional genetic alterations that correlate with different ages, anatomic locations, and tumor subtypes. We developed models representing 16 pHGG subtypes driven by different combinations of alterations targeted to specific brain regions. Tumors developed with varying latencies and cell lines derived from these models engrafted in syngeneic, immunocompetent mice with high penetrance. Targeted drug screening revealed unexpected selective vulnerabilities—H3.3(G34R)/PDGFRA(C235Y) to FGFR inhibition, H3.3(K27M)/PDGFRA(WT) to PDGFRA inhibition, and H3.3(K27M)/PDGFRA(WT) and H3.3(K27M)/PPM1D(ΔC)/PIK3CA(E545K) to combined inhibition of MEK and PIK3CA. Moreover, H3.3(K27M) tumors with PIK3CA, NF1, and FGFR1 mutations were more invasive and harbored distinct additional phenotypes, such as exophytic spread, cranial nerve invasion, and spinal dissemination. Collectively, these models reveal that different partner alterations produce distinct effects on pHGG cellular composition, latency, invasiveness, and treatment sensitivity. SIGNIFICANCE: Histone-mutant pediatric gliomas are a highly heterogeneous tumor entity. Different histone mutations correlate with different ages of onset, survival outcomes, brain regions, and partner alterations. We have developed models of histone-mutant gliomas that reflect this anatomic and genetic heterogeneity and provide evidence of subtype-specific biology and therapeutic targeting. See related commentary by Lubanszky and Hawkins, p. 1516. This article is highlighted in the In This Issue feature, p. 1501 American Association for Cancer Research 2023-07-07 2023-04-03 /pmc/articles/PMC10326601/ /pubmed/37011011 http://dx.doi.org/10.1158/2159-8290.CD-23-0004 Text en ©2023 The Authors; Published by the American Association for Cancer Research https://creativecommons.org/licenses/by/4.0/This open access article is distributed under the Creative Commons Attribution 4.0 International (CC BY 4.0) license.
spellingShingle Research Articles
McNicholas, Michael
De Cola, Antonella
Bashardanesh, Zahedeh
Foss, Amelia
Lloyd, Cameron B.
Hébert, Steven
Faury, Damien
Andrade, Augusto Faria
Jabado, Nada
Kleinman, Claudia L.
Pathania, Manav
A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities
title A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities
title_full A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities
title_fullStr A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities
title_full_unstemmed A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities
title_short A Compendium of Syngeneic, Transplantable Pediatric High-Grade Glioma Models Reveals Subtype-Specific Therapeutic Vulnerabilities
title_sort compendium of syngeneic, transplantable pediatric high-grade glioma models reveals subtype-specific therapeutic vulnerabilities
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10326601/
https://www.ncbi.nlm.nih.gov/pubmed/37011011
http://dx.doi.org/10.1158/2159-8290.CD-23-0004
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