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Updated: Jan 28, 2026

Radiosensitivity of Cancer Stem Cells in Lung Cancer Cell Lines
Published on: August 21, 2019
Overcoming Radioresistance: Small Molecule Radiosensitisers and Hypoxia-activated Prodrugs
R K Jackson1, L P Liew2, M P Hay2
1Auckland Cancer Society Research Centre, School of Medical Sciences, Faculty of Medical and Health Sciences, University of Auckland, Auckland, New Zealand.
Abstract:
The role of hypoxia in radiation resistance is well established and many approaches to overcome hypoxia in tumours have been explored, with variable success. Two small molecule strategies for targeting hypoxia have dominated preclinical and clinical efforts. One approach has been the use of electron-affinic nitroheterocycles as oxygen-mimetic sensitisers. These agents are best exemplified by the 5-nitroimidazole nimorazole, which has limited use in conjunction with radiotherapy in head and neck squamous cell carcinoma. The second approach seeks to leverage tumour hypoxia as a tumour-specific address for hypoxia-activated prodrugs. These prodrugs are selectively activated by reductases under hypoxia to release cytotoxins, which in some instances may diffuse to kill surrounding oxic tumour tissue. A number of these hypoxia-activated prodrugs have been examined in clinical trial and the merits and shortcomings of recent examples are discussed. There has been an evolution from delivering DNA-interactive cytotoxins to molecularly targeted agents. Efforts to implement these strategies clinically continue today, but success has been elusive. Several issues have been identified that compromised these clinical campaigns. A failure to consider the extravascular transport and the micropharmacokinetic properties of the prodrugs has reduced efficacy. One key element for these 'targeted' approaches is the need to co-develop biomarkers to identify appropriate patients. Hypoxia-activated prodrugs require biomarkers for hypoxia, but also for appropriate activating reductases in tumours, as well as markers of intrinsic sensitivity to the released drug. The field is still evolving and changes in radiation delivery and the impact of immune-oncology will provide fertile ground for future innovation.
Insights
Hypoxia-activated prodrugs offer targeted cancer therapy by releasing cytotoxins in low-oxygen tumor environments. However, clinical success remains elusive due to challenges in drug delivery, transport, and patient selection, necessitating biomarker development.
Area of Science:
- Oncology
- Radiotherapy
- Pharmacology
Background:
- Tumor hypoxia is a known factor in radiation resistance, prompting exploration of strategies to overcome it.
- Two main small molecule approaches target hypoxia: oxygen-mimetic radiosensitizers and hypoxia-activated prodrugs.
- Hypoxia-activated prodrugs are designed for selective activation in hypoxic tumor regions by reductases, releasing cytotoxic agents.
Purpose of the Study:
- To review and discuss the evolution, merits, and shortcomings of hypoxia-activated prodrug strategies in cancer therapy.
- To identify key issues hindering clinical success, including extravascular transport and micropharmacokinetic properties.
- To emphasize the critical need for co-developed biomarkers for patient selection and treatment optimization.
Main Methods:
- Review of preclinical and clinical efforts involving electron-affinic nitroheterocycles and hypoxia-activated prodrugs.
- Discussion of the transition from DNA-interactive cytotoxins to molecularly targeted agents in prodrug design.
- Analysis of factors limiting clinical efficacy, such as transport and pharmacokinetic properties.
Main Results:
- While hypoxia-activated prodrugs show promise for targeted delivery, clinical success has been limited.
- Failure to account for extravascular transport and micropharmacokinetics has compromised efficacy.
- Development of appropriate biomarkers for hypoxia, activating reductases, and drug sensitivity is crucial.
Conclusions:
- The field of hypoxia-targeted cancer therapy is evolving, with ongoing efforts to improve clinical outcomes.
- Future innovation may arise from integrating these strategies with advancements in radiation delivery and immuno-oncology.
- Addressing pharmacokinetic challenges and implementing robust biomarker strategies are essential for realizing the potential of hypoxia-activated prodrugs.
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