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Updated: Jul 19, 2026

Digital Spatial Profiling for Characterization of the Microenvironment in Adult-Type Diffusely Infiltrating Glioma
Published on: September 13, 2022
Analysis of oncogenic signaling networks in glioblastoma identifies ASPM as a molecular target
Abstract:
Glioblastoma is the most common primary malignant brain tumor of adults and one of the most lethal of all cancers. Patients with this disease have a median survival of 15 months from the time of diagnosis despite surgery, radiation, and chemotherapy. New treatment approaches are needed. Recent works suggest that glioblastoma patients may benefit from molecularly targeted therapies. Here, we address the compelling need for identification of new molecular targets. Leveraging global gene expression data from two independent sets of clinical tumor samples (n = 55 and n = 65), we identify a gene coexpression module in glioblastoma that is also present in breast cancer and significantly overlaps with the "metasignature" for undifferentiated cancer. Studies in an isogenic model system demonstrate that this module is downstream of the mutant epidermal growth factor receptor, EGFRvIII, and that it can be inhibited by the epidermal growth factor receptor tyrosine kinase inhibitor Erlotinib. We identify ASPM (abnormal spindle-like microcephaly associated) as a key gene within this module and demonstrate its overexpression in glioblastoma relative to normal brain (or body tissues). Finally, we show that ASPM inhibition by siRNA-mediated knockdown inhibits tumor cell proliferation and neural stem cell proliferation, supporting ASPM as a potential molecular target in glioblastoma. Our weighted gene coexpression network analysis provides a blueprint for leveraging genomic data to identify key control networks and molecular targets for glioblastoma, and the principle eluted from our work can be applied to other cancers.
Insights
Researchers identified a gene network in glioblastoma, a deadly brain cancer, that is also found in breast cancer. Targeting ASPM within this network may offer new glioblastoma treatment strategies.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Glioblastoma is a highly lethal primary brain tumor with poor patient survival rates.
- Current treatments (surgery, radiation, chemotherapy) offer limited efficacy, necessitating novel therapeutic strategies.
- Molecularly targeted therapies show promise for glioblastoma treatment.
Purpose of the Study:
- To identify novel molecular targets for glioblastoma treatment by analyzing gene expression data.
- To investigate a specific gene coexpression module associated with glioblastoma and its potential therapeutic relevance.
Main Methods:
- Weighted gene coexpression network analysis of glioblastoma tumor samples (n=120).
- Validation in an isogenic model system to link gene module to EGFRvIII signaling.
- siRNA-mediated knockdown to assess the functional role of ASPM in glioblastoma and neural stem cell proliferation.
Main Results:
- A conserved gene coexpression module was identified in glioblastoma, also present in breast cancer and linked to undifferentiated cancer.
- This module is downstream of EGFRvIII and sensitive to Erlotinib.
- ASPM (abnormal spindle-like microcephaly associated) was identified as a key gene within the module and found to be overexpressed in glioblastoma.
- ASPM inhibition reduced glioblastoma and neural stem cell proliferation.
Conclusions:
- ASPM is a potential molecular target for glioblastoma therapy.
- Gene coexpression network analysis is a powerful approach for identifying therapeutic targets in cancer.
- The findings may have implications for other cancer types beyond glioblastoma.
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