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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.
Introduction:
Oxidative stress has generally been recognized as an important factor in the pathogenesis of human diseases, making antioxidant therapy a plausible strategy to either prevent or treat human disorders. Yet so far, numerous antioxidant-based clinical trials aimed at developing clinically approved protocols have been disappointing and many reasons for their failure are being discussed, including the limited bioavailability of most antioxidants. To overcome the hurdles associated with the direct administration of antioxidant molecules, a variety of nanotechnology-based drug delivery systems are being developed. All the strategies currently being explored, however, appear in our opinion to underappreciate the crucial role reactive oxygen and nitrogen species (RO/NS) play in the regulation of the metabolome, as revealed by recent progress made in redox biology.
Areas Covered:
We briefly review antioxidant-based clinical trials and discuss the functions of RO/NS as crucial intracellular messengers. We emphasize the probable existence of three distinct concentration levels of RO/NS: a physiological level reflecting their functions as messenger molecules, an elevated level crucial for activation of protective pathways and a toxic level causing oxidative damage to cellular components.
Expert Opinion:
Site-specific, multifunctional nanodrug delivery systems able to sense the actual intracellular concentrations of RO/NS and release antioxidants accordingly in order to only neutralize the pathologic excess of RO/NS need to be developed.
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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