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.

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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