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NRF2 as a Therapeutic Target in Dermatological Disorders: Mechanisms and Molecules
Ismael Khiar-Fernández1,2, Nora Khiar-Fernández3, José-Juan Pereyra-Rodríguez1,2
1Dermatology Department, Hospital Universitario Virgen del Rocío, 41013 Sevilla, Spain.
Abstract:
The nuclear factor erythroid 2-related factor 2 (NRF2) is a master transcription factor that orchestrates cellular defense against oxidative and electrophilic stress. Dysregulation of the KEAP1-NRF2-ARE pathway has been implicated in several dermatological disorders, including vitiligo, psoriasis, atopic dermatitis, photoaging, and radiation dermatitis. This review summarizes recent advances in the understanding of NRF2 activation mechanisms and highlights pharmacological and natural compounds with potential dermatological applications. A comprehensive analysis of natural, semisynthetic, and synthetic NRF2 modulators is provided, describing their chemical structures, synthetic approaches, mechanisms of action, preclinical and clinical evidence, and therapeutic relevance for skin disorders. Multiple classes of NRF2 activators, including isothiocyanates such as sulforaphane, triterpenoids such as omaveloxolone, flavonoids including baicalein and apigenin, alkaloids such as berberine, glycosides like afzelin and paeoniflorin, stilbenoids such as tapinarof, and α,β-unsaturated fumaric acid esters such as dimethyl fumarate, have demonstrated antioxidant, anti-inflammatory, and cytoprotective effects in keratinocytes and melanocytes. Some of these agents, particularly dimethyl fumarate and tapinarof, have advanced to clinical development or commercialization, whereas others remain at the preclinical stage but show encouraging results in animal models and cell culture systems. Overall, pharmacological activation of NRF2 represents a promising therapeutic strategy to counteract oxidative stress-driven skin damage and inflammation; however, continued translational and clinical research is required to optimize formulations, dosing regimens, and safety profiles for integration into dermatological practice.
Insights
Activating the NRF2 pathway offers a promising strategy for treating skin disorders by reducing oxidative stress and inflammation. Various natural and synthetic compounds show potential for dermatological applications, with some already in clinical use.
Area of Science:
- Dermatology
- Molecular Biology
- Pharmacology
Background:
- The nuclear factor erythroid 2-related factor 2 (NRF2) pathway is crucial for cellular defense against oxidative stress.
- Dysregulation of the KEAP1-NRF2-ARE pathway is linked to various skin conditions like vitiligo, psoriasis, and atopic dermatitis.
- Understanding NRF2 activation mechanisms is key to developing new dermatological treatments.
Purpose of the Study:
- To review recent advancements in NRF2 activation mechanisms relevant to skin health.
- To highlight pharmacological and natural compounds that modulate NRF2 for dermatological applications.
- To analyze the therapeutic potential of NRF2 activators for various skin disorders.
Main Methods:
- Comprehensive analysis of natural, semisynthetic, and synthetic NRF2 modulators.
- Review of chemical structures, synthesis, mechanisms of action, and preclinical/clinical evidence.
- Focus on compounds demonstrating antioxidant, anti-inflammatory, and cytoprotective effects in skin cells.
Main Results:
- Multiple NRF2 activators (e.g., sulforaphane, omaveloxolone, baicalein, berberine, tapinarof, dimethyl fumarate) show promise.
- These compounds exhibit antioxidant, anti-inflammatory, and cytoprotective effects in keratinocytes and melanocytes.
- Dimethyl fumarate and tapinarof have progressed to clinical development or commercialization; others show preclinical promise.
Conclusions:
- Pharmacological activation of NRF2 is a potent strategy against oxidative stress-induced skin damage and inflammation.
- Further translational and clinical research is necessary to optimize NRF2-based therapies for dermatological practice.
- Continued investigation into formulations, dosing, and safety profiles is essential for clinical integration.
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