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MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES

Germline loss-of-function (LOF) variants in Elongator complex protein 1 (ELP1) are the most prevalent predisposing genetic events in childhood medulloblastoma (MB). ELP1 germline carriers develop SHH-MBs that exhibit coincident somatic PTCH1 mutations and universal loss-of-heterozygosity of the rema...

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Autores principales: Garcia-Lopez, Jesus, Ahmad, Shiekh Tanveer, Li, Yiran, Gudenas, Brian, Kojic, Marija, Manz, Friedrik, Jonchere, Barbara, Mayasundari, Anand, Pitre, Aaron, Hadley, Jennifer, Paul, Leena, Batts, Melissa, Pfister, Stefan, Waszak, Sebastian, Bianski, Brandon, Tinkle, Christopher, Orr, Brent, Rankovic, Zoran, Robinson, Giles, Wainwright, Brandon, Kutscher, Lena, Lin, Hong, Northcott, Paul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10260154/
http://dx.doi.org/10.1093/neuonc/noad073.255
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author Garcia-Lopez, Jesus
Ahmad, Shiekh Tanveer
Li, Yiran
Gudenas, Brian
Kojic, Marija
Manz, Friedrik
Jonchere, Barbara
Mayasundari, Anand
Pitre, Aaron
Hadley, Jennifer
Paul, Leena
Batts, Melissa
Pfister, Stefan
Waszak, Sebastian
Bianski, Brandon
Tinkle, Christopher
Orr, Brent
Rankovic, Zoran
Robinson, Giles
Wainwright, Brandon
Kutscher, Lena
Lin, Hong
Northcott, Paul
author_facet Garcia-Lopez, Jesus
Ahmad, Shiekh Tanveer
Li, Yiran
Gudenas, Brian
Kojic, Marija
Manz, Friedrik
Jonchere, Barbara
Mayasundari, Anand
Pitre, Aaron
Hadley, Jennifer
Paul, Leena
Batts, Melissa
Pfister, Stefan
Waszak, Sebastian
Bianski, Brandon
Tinkle, Christopher
Orr, Brent
Rankovic, Zoran
Robinson, Giles
Wainwright, Brandon
Kutscher, Lena
Lin, Hong
Northcott, Paul
author_sort Garcia-Lopez, Jesus
collection PubMed
description Germline loss-of-function (LOF) variants in Elongator complex protein 1 (ELP1) are the most prevalent predisposing genetic events in childhood medulloblastoma (MB). ELP1 germline carriers develop SHH-MBs that exhibit coincident somatic PTCH1 mutations and universal loss-of-heterozygosity of the remaining ELP1 allele through chromosome 9q deletion. The molecular, biochemical, and cellular mechanisms by which germline ELP1/Elongator deficiency contribute to SHH-MB tumorigenesis remain largely unknown. Herein, we report that mice engineered to mimic germline Elp1 LOF (i.e., Elp1(HET)) seen in SHH-MB patients exhibit hallmark features of premalignancy events in cycling cerebellar granule neuron progenitors (GNPs), the lineage-of-origin for SHH-MB. Compared to wild-type counterparts, Elp1(HET) GNPs exhibit increased replication stress-associated DNA damage, homologous recombination-associated genomic instability, accelerated cell cycle kinetics, reduced p53-dependent apoptosis in response to genotoxic stress, and slowed differentiation. Orthotopic transplantation of Elp1(HET) GNPs harboring somatic Ptch1 inactivation into the cerebella of immunocompromised mice promotes onset of SHH-MB tumors with incomplete penetrance that exhibit reduced p53 transcriptional activity through a currently unknown mechanism(s). Concomitant Elp1 and Ptch1 gene targeting in p53-null GNPs reproduces highly penetrant cerebellar tumors recapitulating the molecular and phenotypic features of ELP1-associated SHH-MB. Finally, reactivation of the p53 pathway through preclinical treatment with an MDM2 inhibitor promotes cell death and prolongs the survival of patient-derived xenograft tumor (PDX) models harboring deleterious ELP1 mutations. Together, our findings reveal that germline Elp1 LOF heightens genomic instability and malignant transformation in cycling GNPs, providing a mechanistic model for the subgroup-restricted pattern of predisposition associated with pathogenic ELP1 germline carriers. These results provide essential mechanistic insight into the molecular and cellular basis of SHH-MB predisposition driven by ELP1 LOF and nominate therapies that overcome p53 pathway inhibition as a rational treatment option for affected children.
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spelling pubmed-102601542023-06-13 MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES Garcia-Lopez, Jesus Ahmad, Shiekh Tanveer Li, Yiran Gudenas, Brian Kojic, Marija Manz, Friedrik Jonchere, Barbara Mayasundari, Anand Pitre, Aaron Hadley, Jennifer Paul, Leena Batts, Melissa Pfister, Stefan Waszak, Sebastian Bianski, Brandon Tinkle, Christopher Orr, Brent Rankovic, Zoran Robinson, Giles Wainwright, Brandon Kutscher, Lena Lin, Hong Northcott, Paul Neuro Oncol Final Category: Medulloblastomas - MDB Germline loss-of-function (LOF) variants in Elongator complex protein 1 (ELP1) are the most prevalent predisposing genetic events in childhood medulloblastoma (MB). ELP1 germline carriers develop SHH-MBs that exhibit coincident somatic PTCH1 mutations and universal loss-of-heterozygosity of the remaining ELP1 allele through chromosome 9q deletion. The molecular, biochemical, and cellular mechanisms by which germline ELP1/Elongator deficiency contribute to SHH-MB tumorigenesis remain largely unknown. Herein, we report that mice engineered to mimic germline Elp1 LOF (i.e., Elp1(HET)) seen in SHH-MB patients exhibit hallmark features of premalignancy events in cycling cerebellar granule neuron progenitors (GNPs), the lineage-of-origin for SHH-MB. Compared to wild-type counterparts, Elp1(HET) GNPs exhibit increased replication stress-associated DNA damage, homologous recombination-associated genomic instability, accelerated cell cycle kinetics, reduced p53-dependent apoptosis in response to genotoxic stress, and slowed differentiation. Orthotopic transplantation of Elp1(HET) GNPs harboring somatic Ptch1 inactivation into the cerebella of immunocompromised mice promotes onset of SHH-MB tumors with incomplete penetrance that exhibit reduced p53 transcriptional activity through a currently unknown mechanism(s). Concomitant Elp1 and Ptch1 gene targeting in p53-null GNPs reproduces highly penetrant cerebellar tumors recapitulating the molecular and phenotypic features of ELP1-associated SHH-MB. Finally, reactivation of the p53 pathway through preclinical treatment with an MDM2 inhibitor promotes cell death and prolongs the survival of patient-derived xenograft tumor (PDX) models harboring deleterious ELP1 mutations. Together, our findings reveal that germline Elp1 LOF heightens genomic instability and malignant transformation in cycling GNPs, providing a mechanistic model for the subgroup-restricted pattern of predisposition associated with pathogenic ELP1 germline carriers. These results provide essential mechanistic insight into the molecular and cellular basis of SHH-MB predisposition driven by ELP1 LOF and nominate therapies that overcome p53 pathway inhibition as a rational treatment option for affected children. Oxford University Press 2023-06-12 /pmc/articles/PMC10260154/ http://dx.doi.org/10.1093/neuonc/noad073.255 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of the Society for Neuro-Oncology. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Final Category: Medulloblastomas - MDB
Garcia-Lopez, Jesus
Ahmad, Shiekh Tanveer
Li, Yiran
Gudenas, Brian
Kojic, Marija
Manz, Friedrik
Jonchere, Barbara
Mayasundari, Anand
Pitre, Aaron
Hadley, Jennifer
Paul, Leena
Batts, Melissa
Pfister, Stefan
Waszak, Sebastian
Bianski, Brandon
Tinkle, Christopher
Orr, Brent
Rankovic, Zoran
Robinson, Giles
Wainwright, Brandon
Kutscher, Lena
Lin, Hong
Northcott, Paul
MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES
title MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES
title_full MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES
title_fullStr MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES
title_full_unstemmed MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES
title_short MDB-23. ELP1 GERMLINE DEFICIENCY SENSITIZES THE GRANULE NEURON LINEAGE TO SHH MEDULLOBLASTOMA AND EXPOSES NOVEL THERAPEUTIC VULNERABILITIES
title_sort mdb-23. elp1 germline deficiency sensitizes the granule neuron lineage to shh medulloblastoma and exposes novel therapeutic vulnerabilities
topic Final Category: Medulloblastomas - MDB
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10260154/
http://dx.doi.org/10.1093/neuonc/noad073.255
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