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Targeted Nrf2 activation therapy with RTA 408 enhances regenerative capacity of diabetic wounds
Piul S Rabbani1, Trevor Ellison1, Bukhtawar Waqas1
1Wyss Department of Plastic Surgery, New York University School of Medicine, New York, NY 10016, United States.
Aims:
Though unmitigated oxidative stress in diabetic chronic non-healing wounds poses a major therapeutic challenge, currently, there are no effective pharmacological agents. We targeted the cytoprotective Nrf2/Keap1 pathway, which is dysfunctional in diabetic skin and the regenerative environment in the diabetic wound. We assessed the efficacy of a potent Nrf2-activator, RTA 408, a semi-synthetic oleanane triterpenoid, on accelerating diabetic wound healing.
Methods:
Using Leprdb/dbmice, we made 10 mm-diameter excisional humanized wounds in dorsal skin. We administered RTA 408 formulations daily, and used ANOVA for comparison of time to closure, in vivo real-time ROS, histology, molecular changes.
Results:
We found that RTA 408, specifically a 0.1% formulation, significantly reduced wound healing time and increased wound closure rate. While either systemic or topical administration of RTA 408 is effective, wound closure time with the latter was far superior. RTA 408-treated diabetic wounds upregulated Nrf2 and downstream antioxidant genes, and exhibited well-vascularized granulation tissue that aided in re-epithelialization. Reintroduction of redox mechanisms via RTA 408-induced Nrf2 resulted in reduction of the oxidative status of wounds, to coordinate successful wound closure.
Conclusions:
This preclinical study shows that promoting Nrf2-mediated antioxidant activity in the localized regenerative milieu of a diabetic wound markedly improves the molecular and cellular composition of diabetic wound beds. RTA 408 treats and corrects the irregularity in redox balance mechanisms involving Nrf2, in an avenue not explored previously for treatment of diabetic wounds and tissue regeneration. Our study supports development of RTA 408 as a therapeutic modality for chronic diabetic wounds.
Insights
RTA 408 significantly accelerates diabetic wound healing by activating the Nrf2 pathway, reducing oxidative stress, and improving tissue regeneration. Topical application proved most effective in preclinical studies.
Area of Science:
- Biomedical Science
- Wound Healing Research
- Pharmacology
Background:
- Diabetic chronic wounds present a significant therapeutic challenge due to unmitigated oxidative stress.
- The cytoprotective Nrf2/Keap1 pathway is often dysfunctional in diabetic skin and wound environments.
- Current pharmacological treatments for diabetic wounds are limited.
Purpose of the Study:
- To assess the efficacy of RTA 408, a Nrf2-activator, in accelerating diabetic wound healing.
- To investigate the impact of RTA 408 on the Nrf2/Keap1 pathway in diabetic wounds.
- To evaluate RTA 408's potential as a therapeutic agent for chronic non-healing wounds.
Main Methods:
- Utilized Leprdb/db mice with excisional humanized wounds.
- Administered RTA 408 formulations daily.
- Analyzed wound closure time, reactive oxygen species (ROS) levels, histology, and molecular changes using ANOVA.
Main Results:
- A 0.1% RTA 408 formulation significantly reduced wound healing time and increased closure rate.
- Topical RTA 408 administration was superior to systemic administration for wound closure.
- RTA 408 upregulated Nrf2 and antioxidant genes, promoting well-vascularized granulation tissue and re-epithelialization.
- RTA 408 treatment reduced wound oxidative status by reintroducing redox balance mechanisms.
Conclusions:
- Promoting Nrf2-mediated antioxidant activity with RTA 408 improves molecular and cellular composition in diabetic wound beds.
- RTA 408 effectively corrects redox balance irregularities involving Nrf2 in diabetic wounds.
- This study supports the development of RTA 408 as a therapeutic modality for chronic diabetic wounds and tissue regeneration.
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