G-quadruplexes as a source of vulnerability in BRCA2 <i>-</i> deficient granule cell progenitors and medulloblastoma

D Danielle L. Keahi (Laboratory of Genome Maintenance, The Rockefeller University) M Mathijs A. Sanders (Cancer, Ageing and Somatic Mutation, Wellcome Sanger Institute) M Matthew R. Paul (Bioinformatics Resource Center, The Rockefeller University) A Andrew L. H. Webster (Laboratory of Genome Maintenance, The Rockefeller University) Y Yin Fang (Laboratory of Developmental Neurobiology, The Rockefeller University) T Tom F. Wiley (Comparative Bioscience Center, The Rockefeller University) S Samer Shalaby (Flow Cytometry Resource Center, The Rockefeller University) T Thomas S. Carroll (Bioinformatics Resource Center, The Rockefeller University) S Settara C. Chandrasekharappa C Carolina Sandoval-Garcia (Department of Neurosurgery, University of Minnesota) M Margaret L. MacMillan (Department of Pediatrics, University of Minnesota) J John E. Wagner (Department of Pediatrics, University of Minnesota) M Mary E. Hatten (Laboratory of Developmental Neurobiology, The Rockefeller University) A Agata Smogorzewska (Laboratory of Genome Maintenance, The Rockefeller University)

Abstract

Biallelic pathogenic variants in the essential DNA repair gene BRCA2 cause Fanconi anemia complementation group D1. Patients in this group are highly prone to develop embryonal tumors, most commonly medulloblastoma arising from the cerebellar granule cell progenitors (GCPs). GCPs undergo high proliferation in the postnatal cerebellum under Sonic Hedgehog (SHH) activation, but the type of DNA lesions that require the function of the BRCA2 to prevent tumorigenesis remains unknown. To identify such lesions, we assessed both GCP neurodevelopment and tumor formation using a mouse model with deletion of exons three and four of Brca2 in the central nervous system, coupled with global Trp53 loss. Brca2 Δex3-4 ;Trp53 −/− animals developed SHH subgroup medulloblastomas with complete penetrance. Whole-genome sequencing of the tumors identified structural variants with breakpoints enriched in areas overlapping putative G-quadruplexes (G4s). Brca2 -deficient GCPs exhibited decreased replication speed in the presence of the G4-stabilizer pyridostatin. Pif1 helicase, which resolves G4s during replication, was highly upregulated in tumors, and Pif1 knockout in primary medulloblastoma tumor cells resulted in increased genome instability upon pyridostatin treatment. These data suggest that G4s may represent sites prone to replication stalling in highly proliferative GCPs and without BRCA2, G4s become a source of genome instability. Tumor cells upregulate G4-resolving helicases to facilitate rapid proliferation through G4s highlighting PIF1 helicase as a potential therapeutic target for treatment of BRCA2-deficient medulloblastomas.

Article Details

Volume / Issue Vol. 122, Issue 35
Published September 02, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

D

Danielle L. Keahi

Laboratory of Genome Maintenance, The Rockefeller University

M

Mathijs A. Sanders

Cancer, Ageing and Somatic Mutation, Wellcome Sanger Institute

M

Matthew R. Paul

Bioinformatics Resource Center, The Rockefeller University

A

Andrew L. H. Webster

Laboratory of Genome Maintenance, The Rockefeller University

Y

Yin Fang

Laboratory of Developmental Neurobiology, The Rockefeller University

T

Tom F. Wiley

Comparative Bioscience Center, The Rockefeller University

S

Samer Shalaby

Flow Cytometry Resource Center, The Rockefeller University

T

Thomas S. Carroll

Bioinformatics Resource Center, The Rockefeller University

S

Settara C. Chandrasekharappa

C

Carolina Sandoval-Garcia

Department of Neurosurgery, University of Minnesota

M

Margaret L. MacMillan

Department of Pediatrics, University of Minnesota

J

John E. Wagner

Department of Pediatrics, University of Minnesota

M

Mary E. Hatten

Laboratory of Developmental Neurobiology, The Rockefeller University

A

Agata Smogorzewska

Laboratory of Genome Maintenance, The Rockefeller University