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Combination Radiotherapy in an Orthotopic Mouse Brain Tumor Model
Published on: March 6, 2012
Radiotherapy resistance in glioblastoma: Mechanistic insights and novel therapeutic approaches (Review)
Dengtian Zhang1, Yiming Zhang1, Fen Liu2
1Teaching and Research Section of Internal Medicine, College of First Clinical Medicine, Shandong University of Traditional Chinese Medicine, Jinan, Shandong 250000, P.R. China.
Abstract:
Glioblastoma (GBM) is currently the most lethal type of primary brain tumor, with a median survival time of 15‑20 months despite the use of multimodal therapy. Although radiotherapy (RT) remains a cornerstone of GBM treatment, a subset of patients who initially respond to RT eventually acquire resistance, leading to tumor relapse. The emergence of radioresistance severely impairs the long‑term efficacy of RT, highlighting the importance of understanding its underlying mechanisms. The present review synthesizes emerging evidence that therapy‑induced remodeling of the blood‑brain barrier (BBB), upregulation of ATP‑binding cassette efflux transporters, hypoxia‑driven hypoxia inducible factor‑1α signaling and tumor microtube (TM)‑mediated intercellular communication converge to create a self‑reinforcing resistance network. These interconnected mechanisms collectively drive adaptive radioresistance, rather than acting in isolation. Based on this framework, the present review evaluates therapeutic strategies designed to disrupt distinct nodes of this network, including epigenetic modulators, poly (ADP‑ribose) polymerase inhibitors, BBB‑penetrant agents and TM‑targeting approaches, such as connexin43 peptide inhibitors and high‑linear energy transfer particle therapy. The clinical implications of these findings are discussed, with emphasis on biomarker‑driven patient stratification and combinatorial regimens that concurrently target multiple resistance mechanisms.
Insights
Glioblastoma radioresistance stems from a network of blood-brain barrier changes, transporter activity, and tumor cell communication. Targeting these interconnected mechanisms offers new strategies to improve radiotherapy efficacy for brain tumors.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Radiotherapy Research
Background:
- Glioblastoma (GBM) is a highly lethal brain tumor with poor prognosis.
- Radiotherapy (RT) is a key treatment, but acquired radioresistance leads to tumor relapse.
- Understanding GBM radioresistance mechanisms is crucial for improving patient outcomes.
Purpose of the Study:
- To review the interconnected mechanisms driving adaptive radioresistance in Glioblastoma.
- To evaluate therapeutic strategies targeting identified resistance pathways.
- To discuss clinical implications for patient stratification and combination therapies.
Main Methods:
- Synthesis of emerging evidence on therapy-induced changes in GBM.
- Analysis of factors contributing to adaptive radioresistance.
- Evaluation of novel therapeutic strategies and their targets.
Main Results:
- Therapy-induced blood-brain barrier remodeling, efflux transporter upregulation, hypoxia-inducible factor-1α signaling, and tumor microtubule communication form a resistance network.
- These mechanisms act collectively to drive adaptive radioresistance.
- Various therapeutic strategies targeting distinct nodes of this network are emerging.
Conclusions:
- Adaptive radioresistance in GBM is a complex, multifactorial process.
- Targeting this interconnected network, rather than isolated mechanisms, is essential.
- Biomarker-driven stratification and combinatorial regimens hold promise for enhancing RT efficacy in GBM.
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