Novel genetically engineered H3.3G34R model reveals cooperation with ATRX loss in upregulation ofHoxacluster genes and promotion of neuronal lineage

Author:

Abdallah Aalaa S12,Cardona Herminio J2,Gadd Samantha L3,Brat Daniel J3ORCID,Powla Plamena P4,Alruwalli Waleed S4,Shen Chen2,Picketts David J5,Li Xiao-Nan1267,Becher Oren J1289

Affiliation:

1. Department of Pediatrics, Northwestern University , Chicago, Illinois , USA

2. Stanley Manne Children’s Research Institute, Molecular and Translational Cancer Biology, Ann & Robert H. Lurie Children’s Hospital of Chicago , Chicago, Illinois , USA

3. Department of Pathology, Northwestern University , Chicago, Illinois , USA

4. Department of Psychiatry and Behavioral Sciences, Northwestern University , Chicago, Illinois , USA

5. Regenerative Medicine Program, Ottawa Hospital Research Institute , Ottawa, Ontario , Canada

6. Developmental Therapeutic Core, Robert H. Lurie Comprehensive Cancer Center, Northwestern University Feinberg School of Medicine , Chicago, Illinois , USA

7. Program of Precision Medicine PDOX Modeling of Pediatric Tumors, Ann & Robert H. Lurie Children’s Hospital of Chicago , Chicago, Illinois , USA

8. Department of Pediatrics, Kravis Children’s Hospital, Icahn School of Medicine at Mount Sinai , New York, New York , USA

9. Department of Oncological Sciences, Icahn School of Medicine at Mount Sinai , New York, New York , USA

Abstract

AbstractBackgroundPediatric high-grade gliomas (pHGGs) are aggressive pediatric CNS tumors and an important subset are characterized by mutations in H3F3A, the gene that encodes Histone H3.3 (H3.3). Substitution of Glycine at position 34 of H3.3 with either Arginine or Valine (H3.3G34R/V), was recently described and characterized in a large cohort of pHGG samples as occurring in 5–20% of pHGGs. Attempts to study the mechanism of H3.3G34R have proven difficult due to the lack of knowledge regarding the cell-of-origin and the requirement for co-occurring mutations for model development. We sought to develop a biologically relevant animal model of pHGG to probe the downstream effects of the H3.3G34R mutation in the context of vital co-occurring mutations.MethodsWe developed a genetically engineered mouse model (GEMM) that incorporates PDGF-A activation, TP53 loss and the H3.3G34R mutation both in the presence and loss of Alpha thalassemia/mental retardation syndrome X-linked (ATRX), which is commonly mutated in H3.3G34 mutant pHGGs.ResultsWe demonstrated that ATRX loss significantly increases tumor latency in the absence of H3.3G34R and inhibits ependymal differentiation in the presence of H3.3G34R. Transcriptomic analysis revealed that ATRX loss in the context of H3.3G34R upregulates Hoxa cluster genes. We also found that the H3.3G34R overexpression leads to enrichment of neuronal markers but only in the context of ATRX loss.ConclusionsThis study proposes a mechanism in which ATRX loss is the major contributor to many key transcriptomic changes in H3.3G34R pHGGs.Accession numberGSE197988.

Funder

Rory David Deutsch Foundation

The Fly the Kite Foundation

Cristian Rivera Foundation

Madox’s Warriors and NIH

Manne Children’s Research Institute and Ann & Robert H. Lurie Children’s Hospital of Chicago

Publisher

Oxford University Press (OUP)

Subject

Surgery,Oncology,Neurology (clinical)

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