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Updated: May 5, 2026

In Vivo Imaging of Reactive Oxygen Species in a Murine Wound Model
Published on: November 17, 2018
ROS-responsive drug delivery systems: Harnessing redox biology for targeted therapies
Urmila Kafle1, Rajan Thapa2, Nisha Panth3
1Department of Biomedical and Nutritional Sciences, University of Massachusetts Lowell, 3 Solomont Way, Lowell, MA 01854, United States.
Abstract:
Reactive oxygen species play an integral role in physiological signaling but contribute to pathology when dysregulated. Elevated ROS levels in diseased tissues such as tumors, inflamed sites, and ischemic regions present unique biochemical triggers for targeted drug delivery. Furthermore, strategies utilizing exogenously generated ROS (e.g., via photodynamic action) provide an alternative route for spatiotemporal control. This review summarizes recent advances in ROS-responsive systems, beginning with the chemistry of ROS-cleavable linkers and the design of nanocarrier platforms capable of spatiotemporally controlled release. The integration of these carriers with theranostic functions is highlighted as a strategy to enhance selectivity and reduce systemic toxicity. Applications across oncology, inflammatory disorders, ischemia-reperfusion injury, and regenerative medicine illustrate the breadth of therapeutic potential. Key design considerations including sensitivity thresholds, payload compatibility, and surface functionalization are discussed alongside translational challenges such as stability, reproducibility, and scalability. Emerging opportunities, notably patient-specific redox profiling and biosensor-guided adaptive delivery are identified as promising routes to clinical translation. By bridging redox biology with materials science and nanomedicine, ROS-triggered drug delivery platforms demonstrate the capacity to exploit endogenous oxidative cues for improved therapeutic precision and safety, positioning them as a transformative approach in the development of next-generation controlled release systems.
Insights
Reactive oxygen species (ROS) are key in disease, offering targets for drug delivery. ROS-responsive nanocarriers enable precise, controlled release, enhancing therapeutic precision and safety.
Area of Science:
- Biomedical Engineering
- Nanomedicine
- Redox Biology
Background:
- Reactive oxygen species (ROS) are crucial for cell signaling but implicated in pathologies like cancer and inflammation.
- Dysregulated ROS levels in diseased tissues offer unique biochemical triggers for targeted therapies.
- Exogenous ROS generation provides spatiotemporal control for therapeutic interventions.
Purpose of the Study:
- To review recent advancements in ROS-responsive drug delivery systems.
- To explore the integration of these systems with theranostic capabilities.
- To discuss applications, design considerations, and translational challenges in ROS-triggered therapies.
Main Methods:
- Review of ROS-cleavable linker chemistry and nanocarrier design.
- Analysis of theranostic integration for enhanced selectivity and reduced toxicity.
- Examination of applications in oncology, inflammatory disorders, and regenerative medicine.
Main Results:
- ROS-responsive systems leverage specific biochemical cues for targeted drug release.
- Integration with theranostics improves therapeutic selectivity and minimizes systemic side effects.
- Successful applications demonstrated across various disease models, including cancer and ischemia-reperfusion injury.
Conclusions:
- ROS-responsive drug delivery platforms offer enhanced therapeutic precision and safety by exploiting endogenous oxidative stress.
- Key considerations for clinical translation include sensitivity, stability, and scalability.
- Future directions involve patient-specific redox profiling and adaptive delivery systems for improved outcomes.
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