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Elevated FOXG1 and SOX2 in glioblastoma enforces neural stem cell identity through transcriptional control of cell cycle and epigenetic regulators.
Bulstrode, Harry; Johnstone, Ewan; Marques-Torrejon, Maria Angeles; Ferguson, Kirsty M; Bressan, Raul Bardini; Blin, Carla; Grant, Vivien; Gogolok, Sabine; Gangoso, Ester; Gagrica, Sladjana; Ender, Christine; Fotaki, Vassiliki; Sproul, Duncan; Bertone, Paul; Pollard, Steven M.
Affiliation
  • Bulstrode H; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Johnstone E; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
  • Marques-Torrejon MA; Wellcome Trust-MRC Stem Cell Institute, University of Cambridge, Cambridge CB2 1QR, United Kingdom.
  • Ferguson KM; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Bressan RB; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
  • Blin C; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Grant V; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
  • Gogolok S; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Gangoso E; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
  • Gagrica S; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Ender C; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
  • Fotaki V; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Sproul D; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
  • Bertone P; Medical Research Council (MRC) Centre for Regenerative Medicine.
  • Pollard SM; Edinburgh Cancer Research UK Cancer Centre, University of Edinburgh, Edinburgh EH16 4UU, United Kingdom.
Genes Dev ; 31(8): 757-773, 2017 04 15.
Article in En | MEDLINE | ID: mdl-28465359
Glioblastoma multiforme (GBM) is an aggressive brain tumor driven by cells with hallmarks of neural stem (NS) cells. GBM stem cells frequently express high levels of the transcription factors FOXG1 and SOX2. Here we show that increased expression of these factors restricts astrocyte differentiation and can trigger dedifferentiation to a proliferative NS cell state. Transcriptional targets include cell cycle and epigenetic regulators (e.g., Foxo3, Plk1, Mycn, Dnmt1, Dnmt3b, and Tet3). Foxo3 is a critical repressed downstream effector that is controlled via a conserved FOXG1/SOX2-bound cis-regulatory element. Foxo3 loss, combined with exposure to the DNA methylation inhibitor 5-azacytidine, enforces astrocyte dedifferentiation. DNA methylation profiling in differentiating astrocytes identifies changes at multiple polycomb targets, including the promoter of Foxo3 In patient-derived GBM stem cells, CRISPR/Cas9 deletion of FOXG1 does not impact proliferation in vitro; however, upon transplantation in vivo, FOXG1-null cells display increased astrocyte differentiation and up-regulate FOXO3. In contrast, SOX2 ablation attenuates proliferation, and mutant cells cannot be expanded in vitro. Thus, FOXG1 and SOX2 operate in complementary but distinct roles to fuel unconstrained self-renewal in GBM stem cells via transcriptional control of core cell cycle and epigenetic regulators.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Brain Neoplasms / Gene Expression Regulation, Neoplastic / Glioblastoma / Forkhead Transcription Factors / SOXB1 Transcription Factors / Neural Stem Cells / Epigenomics / Nerve Tissue Proteins Type of study: Prognostic_studies Limits: Humans Language: En Journal: Genes Dev Journal subject: BIOLOGIA MOLECULAR Year: 2017 Document type: Article Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Brain Neoplasms / Gene Expression Regulation, Neoplastic / Glioblastoma / Forkhead Transcription Factors / SOXB1 Transcription Factors / Neural Stem Cells / Epigenomics / Nerve Tissue Proteins Type of study: Prognostic_studies Limits: Humans Language: En Journal: Genes Dev Journal subject: BIOLOGIA MOLECULAR Year: 2017 Document type: Article Country of publication: United States