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Leveraging Allele-Specific Expression for Therapeutic Response Gene Discovery in Glioblastoma
Arko Sen1, Briana C Prager2,3,4, Cuiqing Zhong5
1Integrative Biology Laboratory, Salk Institute for Biological Studies, La Jolla, California.
Abstract:
Glioblastoma is the most prevalent primary malignant brain tumor in adults and is characterized by poor prognosis and universal tumor recurrence. Effective glioblastoma treatments are lacking, in part due to somatic mutations and epigenetic reprogramming that alter gene expression and confer drug resistance. To investigate recurrently dysregulated genes in glioblastoma, we interrogated allele-specific expression (ASE), the difference in expression between two alleles of a gene, in glioblastoma stem cells (GSC) derived from 43 patients. A total of 118 genes were found with recurrent ASE preferentially in GSCs compared with normal tissues. These genes were enriched for apoptotic regulators, including schlafen family member 11 (SLFN11). Loss of SLFN11 gene expression was associated with aberrant promoter methylation and conferred resistance to chemotherapy and PARP inhibition. Conversely, low SLFN11 expression rendered GSCs susceptible to the oncolytic flavivirus Zika. This discovery effort based upon ASE revealed novel points of vulnerability in GSCs, suggesting a potential alternative treatment strategy for chemotherapy-resistant glioblastoma. SIGNIFICANCE: Assessing allele-specific expression reveals genes with recurrent cis-regulatory changes that are enriched in glioblastoma stem cells, including SLFN11, which modulates chemotherapy resistance and susceptibility to the oncolytic Zika virus.
Insights
Researchers identified 118 genes with altered expression in glioblastoma stem cells, including SLFN11. Loss of SLFN11 impacts chemotherapy resistance and Zika virus susceptibility, offering new therapeutic avenues.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Glioblastoma is an aggressive brain tumor with poor outcomes and frequent recurrence.
- Current treatments are limited by genetic mutations and epigenetic changes causing drug resistance.
- Glioblastoma stem cells (GSCs) are crucial for tumor growth and recurrence.
Purpose of the Study:
- To identify genes with recurrent allele-specific expression (ASE) in GSCs.
- To explore the role of identified genes in glioblastoma pathogenesis and treatment resistance.
- To uncover novel therapeutic vulnerabilities in glioblastoma.
Main Methods:
- Interrogation of allele-specific expression (ASE) in GSCs from 43 patients.
- Analysis of gene expression patterns and promoter methylation.
- Assessment of gene function in response to chemotherapy, PARP inhibition, and oncolytic viruses.
Main Results:
- Identified 118 genes with recurrent ASE in GSCs compared to normal tissues.
- Schlafen family member 11 (SLFN11) was enriched among these genes.
- Loss of SLFN11 expression, linked to promoter methylation, conferred resistance to chemotherapy and PARP inhibitors.
- Reduced SLFN11 expression sensitized GSCs to Zika virus infection.
Conclusions:
- ASE analysis reveals recurrent cis-regulatory changes in GSCs.
- SLFN11 plays a critical role in glioblastoma chemoresistance and Zika virus susceptibility.
- Targeting SLFN11 or leveraging Zika virus may offer new strategies for glioblastoma treatment.
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