TY - JOUR
T1 - Longitudinal multimodal profiling of IDH-wildtype glioblastoma reveals the molecular evolution and cellular phenotypes underlying prognostically different treatment responses
AU - Lucas, Calixto Hope G.
AU - Al-Adli, Nadeem N.
AU - Young, Jacob S.
AU - Gupta, Rohit
AU - Morshed, Ramin A.
AU - Wu, Jasper
AU - Ravindranathan, Ajay
AU - Shai, Anny
AU - Oberheim Bush, Nancy Ann
AU - Taylor, Jennie W.
AU - de Groot, John
AU - Villanueva-Meyer, Javier E.
AU - Pekmezci, Melike
AU - Perry, Arie
AU - Bollen, Andrew W.
AU - Theodosopoulos, Philip V.
AU - Aghi, Manish K.
AU - Chang, Edward F.
AU - Hervey-Jumper, Shawn L.
AU - Raleigh, David R.
AU - Molinaro, Annette M.
AU - Costello, Joseph F.
AU - Diaz, Aaron A.
AU - Clarke, Jennifer L.
AU - Butowski, Nicholas A.
AU - Phillips, Joanna J.
AU - Chang, Susan M.
AU - Berger, Mitchel S.
AU - Solomon, David A.
N1 - Publisher Copyright:
© The Author(s) 2024. Published by Oxford University Press on behalf of the Society for Neuro-Oncology.
PY - 2025/1/1
Y1 - 2025/1/1
N2 - Background. Despite recent advances in the biology of IDH-wildtype glioblastoma, it remains a devastating disease with median survival of less than 2 years. However, the molecular underpinnings of the heterogeneous response to the current standard-of-care treatment regimen consisting of maximal safe resection, adjuvant radiation, and chemotherapy with temozolomide remain unknown. Methods. Comprehensive histopathologic, genomic, and epigenomic evaluation of paired initial and recurrent glioblastoma specimens from 106 patients was performed to investigate the molecular evolution and cellular phenotypes underlying differential treatment responses. Results. While TERT promoter mutation and CDKN2A homozygous deletion were early events during gliomagenesis shared by initial and recurrent tumors, most other recurrent genetic alterations (eg, EGFR, PTEN, and NF1) were commonly private to initial or recurrent tumors indicating acquisition later during clonal evolution. Furthermore, glioblastomas exhibited heterogeneous epigenomic evolution with subsets becoming more globally hypermethylated, hypomethylated, or remaining stable. Glioblastoma that underwent sarcomatous transformation had shorter interval to recurrence and were significantly enriched in NF1, TP53, and RB1 alterations and the mesenchymal epigenetic class. Patients who developed somatic hypermutation following temozolomide treatment had significantly longer interval to disease recurrence and prolonged overall survival, and increased methylation at 4 specific CpG sites in the promoter region of MGMT was significantly associated with this development of hypermutation. Finally, an epigenomic evolution signature incorporating change in DNA methylation levels across 347 critical CpG sites was developed that significantly correlated with clinical outcomes. Conclusions. Glioblastoma undergoes heterogeneous genetic, epigenetic, and cellular evolution that underlies prognostically different treatment responses.
AB - Background. Despite recent advances in the biology of IDH-wildtype glioblastoma, it remains a devastating disease with median survival of less than 2 years. However, the molecular underpinnings of the heterogeneous response to the current standard-of-care treatment regimen consisting of maximal safe resection, adjuvant radiation, and chemotherapy with temozolomide remain unknown. Methods. Comprehensive histopathologic, genomic, and epigenomic evaluation of paired initial and recurrent glioblastoma specimens from 106 patients was performed to investigate the molecular evolution and cellular phenotypes underlying differential treatment responses. Results. While TERT promoter mutation and CDKN2A homozygous deletion were early events during gliomagenesis shared by initial and recurrent tumors, most other recurrent genetic alterations (eg, EGFR, PTEN, and NF1) were commonly private to initial or recurrent tumors indicating acquisition later during clonal evolution. Furthermore, glioblastomas exhibited heterogeneous epigenomic evolution with subsets becoming more globally hypermethylated, hypomethylated, or remaining stable. Glioblastoma that underwent sarcomatous transformation had shorter interval to recurrence and were significantly enriched in NF1, TP53, and RB1 alterations and the mesenchymal epigenetic class. Patients who developed somatic hypermutation following temozolomide treatment had significantly longer interval to disease recurrence and prolonged overall survival, and increased methylation at 4 specific CpG sites in the promoter region of MGMT was significantly associated with this development of hypermutation. Finally, an epigenomic evolution signature incorporating change in DNA methylation levels across 347 critical CpG sites was developed that significantly correlated with clinical outcomes. Conclusions. Glioblastoma undergoes heterogeneous genetic, epigenetic, and cellular evolution that underlies prognostically different treatment responses.
KW - DNA methylation
KW - glioblastoma
KW - gliosarcoma
KW - molecular neuropathology
KW - temozolomide-induced hypermutation
UR - https://www.scopus.com/pages/publications/85215321851
UR - https://www.scopus.com/pages/publications/85215321851#tab=citedBy
U2 - 10.1093/neuonc/noae214
DO - 10.1093/neuonc/noae214
M3 - Article
C2 - 39560080
AN - SCOPUS:85215321851
SN - 1522-8517
VL - 27
SP - 89
EP - 105
JO - Neuro-oncology
JF - Neuro-oncology
IS - 1
ER -