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Transcription factors ASCL1 and OLIG2 drive glioblastoma initiation and co-regulate tumor cell types and migration

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  • Bianca L. Myers

    (University of New Mexico Health Sciences Center)

  • Kathryn J. Brayer

    (University of New Mexico Comprehensive Cancer Center)

  • Luis E. Paez-Beltran

    (University of New Mexico Health Sciences Center)

  • Estrella Villicana

    (University of New Mexico Health Sciences Center)

  • Matthew S. Keith

    (University of New Mexico Health Sciences Center)

  • Hideaki Suzuki

    (University of New Mexico Health Sciences Center)

  • Jessie Newville

    (University of New Mexico Health Sciences Center)

  • Rebekka H. Anderson

    (University of New Mexico Health Sciences Center)

  • Yunee Lo

    (University of New Mexico Health Sciences Center)

  • Conner M. Mertz

    (University of New Mexico Health Sciences Center)

  • Rahul K. Kollipara

    (University of Texas Southwestern Medical Center)

  • Mark D. Borromeo

    (University of Texas Southwestern Medical Center)

  • Q. Richard Lu

    (Brain Tumor Center, EHCB, Cincinnati Children’s Hospital Medical Center)

  • Robert M. Bachoo

    (University of Texas Southwestern Medical Center)

  • Jane E. Johnson

    (University of Texas Southwestern Medical Center)

  • Tou Yia Vue

    (University of New Mexico Health Sciences Center
    University of New Mexico Comprehensive Cancer Center)

Abstract

Glioblastomas (GBMs) are highly aggressive, infiltrative, and heterogeneous brain tumors driven by complex genetic alterations. The basic-helix-loop-helix (bHLH) transcription factors ASCL1 and OLIG2 are dynamically co-expressed in GBMs; however, their combinatorial roles in regulating the plasticity and heterogeneity of GBM cells are unclear. Here, we show that induction of somatic mutations in subventricular zone (SVZ) progenitor cells leads to the dysregulation of ASCL1 and OLIG2, which then function redundantly and are required for brain tumor formation in a mouse model of GBM. Subsequently, the binding of ASCL1 and OLIG2 to each other’s loci and to downstream target genes then determines the cell types and degree of migration of tumor cells. Single-cell RNA sequencing (scRNA-seq) reveals that a high level of ASCL1 is key in specifying highly migratory neural stem cell (NSC)/astrocyte-like tumor cell types, which are marked by upregulation of ribosomal protein, oxidative phosphorylation, cancer metastasis, and therapeutic resistance genes.

Suggested Citation

  • Bianca L. Myers & Kathryn J. Brayer & Luis E. Paez-Beltran & Estrella Villicana & Matthew S. Keith & Hideaki Suzuki & Jessie Newville & Rebekka H. Anderson & Yunee Lo & Conner M. Mertz & Rahul K. Koll, 2024. "Transcription factors ASCL1 and OLIG2 drive glioblastoma initiation and co-regulate tumor cell types and migration," Nature Communications, Nature, vol. 15(1), pages 1-21, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-54750-9
    DOI: 10.1038/s41467-024-54750-9
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    as
    1. Bella M. Ben-Oz & Feras E. Machour & Marian Nicola & Amir Argoetti & Galia Polyak & Rawad Hanna & Oded Kleifeld & Yael Mandel-Gutfreund & Nabieh Ayoub, 2023. "A dual role of RBM42 in modulating splicing and translation of CDKN1A/p21 during DNA damage response," Nature Communications, Nature, vol. 14(1), pages 1-18, December.
    2. Charles P. Couturier & Shamini Ayyadhury & Phuong U. Le & Javad Nadaf & Jean Monlong & Gabriele Riva & Redouane Allache & Salma Baig & Xiaohua Yan & Mathieu Bourgey & Changseok Lee & Yu Chang David Wa, 2020. "Author Correction: Single-cell RNA-seq reveals that glioblastoma recapitulates a normal neurodevelopmental hierarchy," Nature Communications, Nature, vol. 11(1), pages 1-1, December.
    3. Marc Zuckermann & Volker Hovestadt & Christiane B. Knobbe-Thomsen & Marc Zapatka & Paul A. Northcott & Kathrin Schramm & Jelena Belic & David T. W. Jones & Barbara Tschida & Branden Moriarity & David , 2015. "Somatic CRISPR/Cas9-mediated tumour suppressor disruption enables versatile brain tumour modelling," Nature Communications, Nature, vol. 6(1), pages 1-9, November.
    4. Charles P. Couturier & Shamini Ayyadhury & Phuong U. Le & Javad Nadaf & Jean Monlong & Gabriele Riva & Redouane Allache & Salma Baig & Xiaohua Yan & Mathieu Bourgey & Changseok Lee & Yu Chang David Wa, 2020. "Single-cell RNA-seq reveals that glioblastoma recapitulates a normal neurodevelopmental hierarchy," Nature Communications, Nature, vol. 11(1), pages 1-19, December.
    5. Shaghayegh Nouruzi & Dwaipayan Ganguli & Nakisa Tabrizian & Maxim Kobelev & Olena Sivak & Takeshi Namekawa & Daksh Thaper & Sylvan C. Baca & Matthew L. Freedman & Adeleke Aguda & Alastair Davies & Ami, 2022. "ASCL1 activates neuronal stem cell-like lineage programming through remodeling of the chromatin landscape in prostate cancer," Nature Communications, Nature, vol. 13(1), pages 1-15, December.
    6. Jian Chen & Yanjiao Li & Tzong-Shiue Yu & Renée M. McKay & Dennis K. Burns & Steven G. Kernie & Luis F. Parada, 2012. "A restricted cell population propagates glioblastoma growth after chemotherapy," Nature, Nature, vol. 488(7412), pages 522-526, August.
    7. Shideng Bao & Qiulian Wu & Roger E. McLendon & Yueling Hao & Qing Shi & Anita B. Hjelmeland & Mark W. Dewhirst & Darell D. Bigner & Jeremy N. Rich, 2006. "Glioma stem cells promote radioresistance by preferential activation of the DNA damage response," Nature, Nature, vol. 444(7120), pages 756-760, December.
    8. Xiaoyang Lan & David J. Jörg & Florence M. G. Cavalli & Laura M. Richards & Long V. Nguyen & Robert J. Vanner & Paul Guilhamon & Lilian Lee & Michelle M. Kushida & Davide Pellacani & Nicole I. Park & , 2017. "Fate mapping of human glioblastoma reveals an invariant stem cell hierarchy," Nature, Nature, vol. 549(7671), pages 227-232, September.
    Full references (including those not matched with items on IDEAS)

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