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Updated: May 14, 2026

Evaluation of Biomarkers in Glioma by Immunohistochemistry on Paraffin-Embedded 3D Glioma Neurosphere Cultures
Published on: January 9, 2019
Progress in molecular markers associated with radiotherapy efficacy in glioma
Xiang Gao1,2, Yijing Ren2, Lishan Gao3
1Department of Geratology, Nanhu District People's Hospital, Jiaxing, China.
Abstract:
Radiotherapy remains a cornerstone in glioma treatment, yet its efficacy is significantly hindered by tumor heterogeneity and molecularly driven radioresistance. This review systematically delineates molecular biomarkers that influence radiotherapy outcomes, categorizing them into radiosensitivity (e.g., IDH1 mutations, MGMT promoter methylation, TIM-3) and radioresistance (e.g., CD133, CD44, PRMT1, CSF-1R,RAD51,HMGB2). Mechanistically, radiosensitivity is governed by DNA repair fidelity (MGMT), ferroptosis suppression (PRMT1), and immune modulation (TIM-3/TAMs). Radioresistance arises from cancer stem cell maintenance (CD133/HMGB2), TAM polarization (CSF-1R/CD44), and enhanced homologous recombination (RAD51). Integrating molecular stratification into radiotherapy paradigms demonstrates clinical utility: MGMT methylation permits radiation dose de-escalation (52-54 Gy vs. 60 Gy) without compromising survival (32 vs. 25 months), while TIM-3 expression predicts responsiveness to combinatorial immunotherapy. A multi-omics AI model combining radiomics, dosiomics, and clinical data to predict radiotherapy response in glioma. Using a support vector machine trained on 176 patients, the fused model achieved an AUC of 0.728(95% CI:0.717-0.739) in validation, outperforming single-modality approaches. These advances underscore the transformative potential of biomarker-guided precision radiotherapy, enabling tailored interventions that counteract resistance mechanisms and synergize with immunotherapies. By bridging molecular insights with clinical innovation, this paradigm shift promises to redefine glioma management, offering renewed hope for overcoming therapeutic recalcitrance in this devastating malignancy.
Insights
Molecular biomarkers significantly impact glioma radiotherapy outcomes. Identifying radiosensitivity and radioresistance markers enables precision treatment, improving patient survival and response to immunotherapy.
Area of Science:
- Oncology
- Radiotherapy
- Molecular Biology
Background:
- Radiotherapy is crucial for glioma treatment but faces challenges from tumor heterogeneity and radioresistance.
- Molecular biomarkers play a key role in predicting patient response to radiotherapy.
Purpose of the Study:
- To systematically review molecular biomarkers influencing radiotherapy outcomes in glioma.
- To explore the integration of these biomarkers into precision radiotherapy strategies.
Main Methods:
- Systematic review of literature on molecular biomarkers for glioma radiosensitivity and radioresistance.
- Analysis of clinical utility of biomarker stratification, including MGMT methylation and TIM-3 expression.
- Evaluation of a multi-omics AI model combining radiomics, dosiomics, and clinical data for response prediction.
Main Results:
- Biomarkers for radiosensitivity (e.g., IDH1, MGMT, TIM-3) and radioresistance (e.g., CD133, CD44, RAD51) were identified and categorized.
- MGMT methylation allows for radiation dose de-escalation without compromising survival.
- TIM-3 expression predicts response to immunotherapy combinations.
- A multi-omics AI model achieved an AUC of 0.728 in predicting radiotherapy response.
Conclusions:
- Biomarker-guided precision radiotherapy offers tailored interventions to overcome resistance mechanisms.
- Integration of molecular insights and AI models can redefine glioma management.
- This approach holds promise for improving outcomes in patients with challenging gliomas.
