Cinnamoyl-based Nrf2-activators targeting human skin cell photo-oxidative stress
Georg T Wondrak1, Christopher M Cabello, Nicole F Villeneuve
1Department of Pharmacology and Toxicology, College of Pharmacy, Arizona Cancer Center, University of Arizona, Tucson, AZ 85724, USA. wondrak@pharmacy.arizona.edu
Abstract:
Strong experimental evidence suggests the involvement of photo-oxidative stress mediated by reactive oxygen species as a crucial mechanism of solar damage relevant to human skin photoaging and photocarcinogenesis. Based on the established role of antioxidant response element (ARE)-mediated gene expression in cancer chemoprevention, we tested the hypothesis that small molecule Nrf2-activators may serve a photo-chemopreventive role by targeting skin cell photo-oxidative stress. A luciferase-based reporter gene assay was used as a primary screen for the identification of novel agents that modulate the Nrf2-Keap1 signaling pathway. A series of cinnamoyl-based electrophilic Michael acceptors including cinnamic aldehyde and methyl-1-cinnamoyl-5-oxo-2-pyrrolidine-carboxylate was identified as potent Nrf2-activators. Hit confirmation was performed in a secondary screen, based on immunodetection of Nrf2 protein upregulation in human Hs27 skin fibroblasts, HaCaT keratinocytes, and primary skin keratinocytes. Bioefficacy profiling of positive test compounds in skin cells demonstrated compound-induced upregulation of hemeoxygenase I and NAD(P)H-quinone oxidoreductase, two Nrf2 target genes involved in the cellular antioxidant response. Pretreatment with cinnamoyl-based Nrf2-activators suppressed intracellular oxidative stress and protected against photo-oxidative induction of apoptosis in skin cells exposed to high doses of singlet oxygen. Our pilot studies suggest feasibility of developing cinnamoyl-based Nrf2-activators as novel photo-chemopreventive agents targeting skin cell photo-oxidative stress.
Insights
Small molecules activating the Nrf2 pathway show promise in preventing skin damage from sun exposure. These cinnamoyl-based compounds protect skin cells from oxidative stress and apoptosis, suggesting potential as photo-chemopreventive agents.
Area of Science:
- Dermatology
- Molecular Biology
- Photochemistry
Background:
- Photo-oxidative stress from reactive oxygen species contributes to skin aging and cancer.
- The antioxidant response element (ARE) pathway, regulated by Nrf2, is key in cancer chemoprevention.
Purpose of the Study:
- To investigate if small molecule Nrf2-activators can prevent skin cell photo-oxidative stress.
- To identify novel Nrf2-activators targeting the Nrf2-Keap1 signaling pathway for photo-chemoprevention.
Main Methods:
- A luciferase reporter gene assay screened for Nrf2-activators.
- Hit compounds were confirmed by detecting Nrf2 upregulation in human skin cells.
- Bioefficacy was assessed by measuring Nrf2 target genes and protection against singlet oxygen-induced apoptosis.
Main Results:
- Cinnamoyl-based compounds, including cinnamic aldehyde, were identified as potent Nrf2-activators.
- These compounds upregulated antioxidant genes (hemeoxygenase I, NAD(P)H-quinone oxidoreductase) in skin cells.
- Pretreatment with these activators reduced oxidative stress and protected skin cells from apoptosis.
Conclusions:
- Cinnamoyl-based Nrf2-activators show potential for photo-chemoprevention.
- These agents effectively target skin cell photo-oxidative stress.
- Further development could lead to novel agents for preventing sun-induced skin damage.
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