4.6 Article

A DNA Repair and Cell Cycle Gene Expression Signature in Pediatric High-Grade Gliomas: Prognostic and Therapeutic Value

Journal

CANCERS
Volume 13, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/cancers13092252

Keywords

pediatric high-grade gliomas; DNA damage repair; prognostic clustering; PARP1; XRCC1

Categories

Funding

  1. Federation Enfants et Sante
  2. Societe Francaise de lutte contre les Cancers et les leucemies de l'Enfant et de l'adolescent
  3. Satt Conectus program association
  4. ''Fondation de l'Universite de Strasbourg'' association
  5. LifePink association
  6. ''J'ai demande la lune'' association
  7. '' Une roulade pour Charline'' association
  8. '' Franck Rayon de Soleil '' association
  9. '' Semeurs d'Etoile '' association

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Pediatric high-grade gliomas (pHGGs) are incurable brain tumors that exhibit resistance to standard therapies. This study investigated the expression of DNA repair and cell cycle genes in pHGGs to propose a novel classification based on therapeutic vulnerabilities. Several potential new diagnostic markers were identified among the DNA repair factors studied.
Simple Summary Pediatric high-grade gliomas are incurable brain tumors for which there is a critical need for new therapeutic strategies as well as treatment-predictive biomarkers. This study examined the expression of DNA repair and cell cycle genes in pediatric high-grade gliomas with distinct driving mutations. The aim is to propose a novel classification of these tumors based on sub-groups exposing therapeutic vulnerabilities. Several DNA repair factors were identified that might become new diagnostic markers. Background: Pediatric high-grade gliomas (pHGGs) are the leading cause of mortality in pediatric neuro-oncology, displaying frequent resistance to standard therapies. Profiling DNA repair and cell cycle gene expression has recently been proposed as a strategy to classify adult glioblastomas. To improve our understanding of the DNA damage response pathways that operate in pHGGs and the vulnerabilities that these pathways might expose, we sought to identify and characterize a specific DNA repair and cell-cycle gene expression signature of pHGGs. Methods: Transcriptomic analyses were performed to identify a DNA repair and cell-cycle gene expression signature able to discriminate pHGGs (n = 6) from low-grade gliomas (n = 10). This signature was compared to related signatures already established. We used the pHGG signature to explore already transcriptomic datasets of DIPGs and sus-tentorial pHGGs. Finally, we examined the expression of key proteins of the pHGG signature in 21 pHGG diagnostic samples and nine paired relapses. Functional inhibition of one DNA repair factor was carried out in four patients who derived H3.3 K27M mutant cell lines. Results: We identified a 28-gene expression signature of DNA repair and cell cycle that clustered pHGGs cohorts, in particular sus-tentorial locations, in two groups. Differential protein expression levels of PARP1 and XRCC1 were associated to TP53 mutations and TOP2A amplification and linked significantly to the more radioresistant pHGGs displaying the worst outcome. Using patient-derived cell lines, we showed that the PARP-1/XRCC1 expression balance might be correlated with resistance to PARP1 inhibition. Conclusion: We provide evidence that PARP1 overexpression, associated to XRCC1 expression, TP53 mutations, and TOP2A amplification, is a new theranostic and potential therapeutic target.

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