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Molecular basis of electrophilic and oxidative defense: promises and perils of Nrf2
1Receptor Biology Laboratory, Toxicology and Molecular Biology Branch, Health Effects Laboratory Division, National Institute forOccupational Safety and Health, Centers for Disease Control and Prevention, Morgantown, West Virginia. qam1@cdc.gov
Abstract:
Induction of drug-metabolizing enzymes through the antioxidant response element (ARE)-dependent transcription was initially implicated in chemoprevention against cancer by antioxidants. Recent progress in understanding the biology and mechanism of induction revealed a critical role of induction in cellular defense against electrophilic and oxidative stress. Induction is mediated through a novel signaling pathway via two regulatory proteins, the nuclear factor erythroid 2-related factor 2 (Nrf2) and the Kelch-like erythroid cell-derived protein with CNC homology-associated protein 1 (Keap1). Nrf2 binds to Keap1 at a two site-binding interface and is ubiquitinated by the Keap1/cullin 3/ring box protein-1-ubiquitin ligase, resulting in a rapid turnover of Nrf2 protein. Electrophiles and oxidants modify critical cysteine thiols of Keap1 and Nrf2 to inhibit Nrf2 ubiquitination, leading to Nrf2 activation and induction. Induction increases stress resistance critical for cell survival, because knockout of Nrf2 in mice increased susceptibility to a variety of toxicity and disease processes. Collateral to diverse functions of Nrf2, genome-wide search has led to the identification of a plethora of ARE-dependent genes regulated by Nrf2 in an inducer-, tissue-, and disease-dependent manner to control drug metabolism, antioxidant defense, stress response, proteasomal degradation, and cell proliferation. The protective nature of Nrf2 could also be hijacked in a number of pathological conditions by means of somatic mutation, epigenetic alteration, and accumulation of disruptor proteins, promoting drug resistance in cancer and pathologic liver features in autophagy deficiency. The repertoire of ARE inducers has expanded enormously; the therapeutic potential of the inducers has been examined beyond cancer prevention. Developing potent and specific ARE inducers and Nrf2 inhibitors holds certain new promise for the prevention and therapy against cancer, chronic disease, and toxicity.
Insights
The nuclear factor erythroid 2-related factor 2 (Nrf2) pathway protects cells from oxidative stress by regulating antioxidant response element (ARE)-dependent genes. Dysregulation of Nrf2 can promote disease, but also offers therapeutic targets for cancer and chronic conditions.
Area of Science:
- Cellular Biology
- Molecular Toxicology
- Biochemistry
Background:
- Antioxidant Response Element (ARE)-dependent transcription was initially linked to cancer chemoprevention by antioxidants.
- Recent research highlights the critical role of this pathway in cellular defense against electrophilic and oxidative stress.
Purpose of the Study:
- To elucidate the mechanism of Nrf2-Keap1 pathway activation and its role in cellular defense.
- To explore the diverse functions of Nrf2-regulated genes and their implications in various diseases.
- To assess the therapeutic potential of ARE inducers and Nrf2 inhibitors.
Main Methods:
- Investigated the Nrf2-Keap1 signaling pathway, including protein interactions and ubiquitination.
- Utilized genome-wide searches to identify ARE-dependent genes regulated by Nrf2.
- Examined the impact of Nrf2 knockout in mice on susceptibility to toxicity and disease.
Main Results:
- Nrf2 activation is mediated by the Keap1-cullin3-ring box protein-1 ubiquitin ligase, which is inhibited by electrophilic/oxidant modification of Keap1.
- Nrf2 knockout mice exhibit increased susceptibility to various toxicities and diseases.
- Nrf2 regulates a wide array of genes involved in drug metabolism, antioxidant defense, and cell proliferation, with context-dependent expression.
Conclusions:
- The Nrf2 pathway is crucial for cellular stress resistance and survival.
- Dysregulation of Nrf2, through mutation or epigenetic changes, can contribute to drug resistance in cancer and other pathologies.
- Targeting ARE inducers and Nrf2 inhibitors presents promising therapeutic strategies for cancer, chronic diseases, and toxicity.
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