Nanocarrier-based antioxidant therapy: promise or delusion?

Volkmar Weissig1, Diana Guzman-Villanueva2

  • 1a 1 Midwestern University College of Pharmacy Glendale , 19555 N. 59th Avenue, Glendale, AZ 85308, USA +1 623 572 3574 ; +1 623 572 3565 ; vweiss@midwestern.edu.

Abstract

Insights

Developing nanotechnology-based drug delivery systems is key for effective antioxidant therapy. These systems must precisely target reactive oxygen and nitrogen species (RO/NS) at toxic levels, avoiding interference with their crucial physiological signaling roles.

Area of Science:

  • Redox biology
  • Nanotechnology
  • Pharmacology

Background:

  • Oxidative stress is implicated in human disease pathogenesis.
  • Antioxidant therapies have shown limited success in clinical trials due to issues like poor bioavailability.
  • Nanotechnology offers potential solutions for delivering antioxidants effectively.

Purpose of the Study:

  • To review antioxidant clinical trials and the role of reactive oxygen and nitrogen species (RO/NS).
  • To highlight the underappreciated signaling functions of RO/NS in redox biology.
  • To propose novel nanodelivery strategies for antioxidant therapy.

Main Methods:

  • Review of existing antioxidant clinical trial data.
  • Discussion of the dual role of RO/NS as signaling molecules and toxic agents.
  • Analysis of current nanotechnology-based drug delivery approaches.

Main Results:

  • Numerous antioxidant trials have yielded disappointing results.
  • Reactive oxygen and nitrogen species (RO/NS) function as critical intracellular messengers at physiological levels.
  • Three distinct concentration levels of RO/NS exist: physiological, elevated (protective), and toxic.

Conclusions:

  • Current nanodelivery systems may overlook the signaling roles of RO/NS.
  • Future nanodrug delivery systems should be site-specific and multifunctional.
  • These advanced systems must sense intracellular RO/NS concentrations to release antioxidants only when pathological excess occurs.

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