4.7 Article

Whole-genome and multisector exome sequencing of primary and post-treatment glioblastoma reveals patterns of tumor evolution

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GENOME RESEARCH
卷 25, 期 3, 页码 316-327

出版社

COLD SPRING HARBOR LAB PRESS, PUBLICATIONS DEPT
DOI: 10.1101/gr.180612.114

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资金

  1. NCI [P50 CA127001, P50 CA083639-12, P01 CA085878, R01 CA190121, CA016672]
  2. Cancer Prevention & Research Institute of Texas (CPRIT) [R140606]
  3. University Cancer Foundation via the Institutional Research Grant program at the University of Texas MD Anderson Cancer Center
  4. TCGA [28xS100]
  5. MD Anderson Genome Data Analysis Center [CA143883]
  6. H.A. and Mary K. Chapman Foundation
  7. Michael and Susan Dell Foundation (honoring Lorraine Dell)
  8. Odyssey Program
  9. Theodore N. Law Endowment for Scientific Achievement at The University of Texas MD Anderson Cancer Center
  10. [R01 CA163722]
  11. [HHSN261201000057C]

向作者/读者索取更多资源

Glioblastoma (GBM) is a prototypical heterogeneous brain tumor refractory to conventional therapy. A small residual population of cells escapes surgery and chemoradiation, resulting in a typically fatal tumor recurrence similar to 7 mo after diagnosis. Understanding the molecular architecture of this residual population is critical for the development of successful therapies. We used whole-genome sequencing and whole-exome sequencing of multiple sectors from primary and paired recurrent GBM tumors to reconstruct the genomic profile of residual, therapy resistant tumor initiating cells. We found that genetic alteration of the p53 pathway is a primary molecular event predictive of a high number of subclonal mutations in glioblastoma. The genomic road leading to recurrence is highly idiosyncratic but can be broadly classified into linear recurrences that share extensive genetic similarity with the primary tumor and can be directly traced to one of its specific sectors, and divergent recurrences that share few genetic alterations with the primary tumor and originate from cells that branched off early during tumorigenesis. Our study provides mechanistic insights into how genetic alterations in primary tumors impact the ensuing evolution of tumor cells and the emergence of subclonal heterogeneity.

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