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Targeted Therapeutics in Patients With High-Grade Gliomas: Past, Present, and Future
Ricky Chen1, Adam L Cohen2, Howard Colman3
1Department of Neurology, Clinical Neurosciences Center, University of Utah, Salt Lake City, UT, USA.
Opinion Statement:
High-grade gliomas remain incurable despite current therapies, which are plagued by high morbidity and mortality. Molecular categorization of glioma subtypes using mutations in isocitrate dehydrogenase 1/2 (IDH1/2), TP53, and ATRX; codeletion of chromosomes 1p and 19q; DNA methylation; and amplification of genes such as epidermal growth factor receptor (EGFR) and platelet-derived growth factor receptor, alpha polypeptide provides a more accurate prognostication and biologic classification than classical histopathological diagnoses, and a number of molecular markers are being incorporated in the new World Health Organization classification of gliomas. However, despite the improved understanding of the molecular subtypes of gliomas and the underlying alterations in specific signaling pathways, these observations have so far failed to result in the successful application of targeted therapies, as has occurred in other solid tumors. To date, the only targeted therapy for gliomas approved by the US Food and Drug Administration is bevacizumab, which targets vascular endothelial growth factor. EGFR remains a dominant molecular alteration in specific glioma subtypes and represents a potentially promising target, with drugs of multiple types targeting EGFR in development including vaccines, antibody drug conjugates, and chimeric antigen receptor (CAR) T cells, despite the prior failures of EGFR tyrosine kinase inhibitors. Immune therapies under investigation include checkpoint inhibitors, vaccines against tumor-associated antigens and tumor-specific antigens, pulsed dendritic cells, heat shock protein-tumor conjugates, and CAR T cells. Mutations in the IDH1/2 genes are central to gliomagenesis in a high proportion of grade II and III gliomas, and ongoing trials are examining vaccines against IDH1, small molecular inhibitors of IDH1 and IDH2, and metabolic components including NAD+ depletion to target IDH-mutated gliomas. The central role of DNA methylation in a subset of gliomas may be targetable, but better understanding of the relation between epigenetic alterations and resulting tumor biology appears necessary. Ultimately, given the prior failure of single-agent targeted therapy in high-grade gliomas, it appears that novel combinatorial therapy or targeted drugs with immunomodulatory or epigenetic approaches will likely be necessary to successfully combat these challenging tumors.
Insights
High-grade gliomas are difficult to treat. While molecular subtypes improve classification, targeted therapies like EGFR inhibitors have failed, necessitating combination or immunomodulatory approaches.
Area of Science:
- Neuro-oncology
- Molecular Pathology
- Cancer Therapeutics
Background:
- High-grade gliomas (HGGs) are aggressive brain tumors with poor prognoses despite current treatments.
- Molecular classification, incorporating genetic mutations (IDH1/2, TP53, ATRX), chromosomal codeletions (1p/19q), DNA methylation, and gene amplifications (EGFR), offers superior prognostication over traditional histology.
- Despite advances in understanding glioma subtypes and signaling pathways, translating this knowledge into effective targeted therapies has been challenging.
Purpose of the Study:
- To review the current landscape of targeted and immune therapies for high-grade gliomas.
- To highlight the challenges and future directions in developing effective treatments for gliomas, particularly focusing on molecularly defined subtypes.
- To discuss the potential of novel therapeutic strategies, including combination therapies and immunomodulatory approaches.
Main Methods:
- Review of existing literature on glioma molecular subtypes and therapeutic strategies.
- Analysis of current clinical trials and FDA-approved treatments for gliomas.
- Discussion of emerging therapeutic targets and modalities, including EGFR-targeted drugs, immune therapies, and IDH inhibitors.
Main Results:
- Molecular markers have refined glioma classification, aiding prognostication and guiding research.
- Targeted therapies, including EGFR tyrosine kinase inhibitors, have shown limited success in gliomas.
- Bevacizumab, targeting vascular endothelial growth factor, is the only FDA-approved targeted therapy for gliomas.
- Promising therapeutic strategies under investigation include vaccines, antibody drug conjugates, CAR T cells targeting EGFR, checkpoint inhibitors, and IDH1/2 inhibitors.
Conclusions:
- Novel targeted therapies for gliomas are under development, including those targeting EGFR, IDH mutations, and employing immunomodulatory strategies.
- Combinatorial therapeutic approaches or drugs with immunomodulatory/epigenetic effects are likely essential for overcoming treatment resistance in high-grade gliomas.
- Further research into the interplay between epigenetic alterations and tumor biology is needed to develop more effective treatments.

