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Nrf2 at the heart of oxidative stress and cardiac protection
Qin M Chen1, Anthony J Maltagliati1
1Department of Pharmacology, College of Medicine, University of Arizona , Tucson, Arizona.
Abstract:
The NFE2L2 gene encodes the transcription factor Nrf2 best known for regulating the expression of antioxidant and detoxification genes. Gene knockout approaches have demonstrated its universal cytoprotective features. While Nrf2 has been the topic of intensive research in cancer biology since its discovery in 1994, understanding the role of Nrf2 in cardiovascular disease has just begun. The literature concerning Nrf2 in experimental models of atherosclerosis, ischemia, reperfusion, cardiac hypertrophy, heart failure, and diabetes supports its cardiac protective character. In addition to antioxidant and detoxification genes, Nrf2 has been found to regulate genes participating in cell signaling, transcription, anabolic metabolism, autophagy, cell proliferation, extracellular matrix remodeling, and organ development, suggesting that Nrf2 governs damage resistance as well as wound repair and tissue remodeling. A long list of small molecules, most derived from natural products, have been characterized as Nrf2 inducers. These compounds disrupt Keap1-mediated Nrf2 ubquitination, thereby prohibiting proteasomal degradation and allowing Nrf2 protein to accumulate and translocate to the nucleus, where Nrf2 interacts with sMaf to bind to ARE in the promoter of genes. Recently alternative mechanisms driving Nrf2 protein increase have been revealed, including removal of Keap1 by autophagy due to p62/SQSTM1 binding, inhibition of βTrCP or Synoviolin/Hrd1-mediated ubiquitination of Nrf2, and de novo Nrf2 protein translation. We review here a large volume of literature reporting historical and recent discoveries about the function and regulation of Nrf2 gene. Multiple lines of evidence presented here support the potential of dialing up the Nrf2 pathway for cardiac protection in the clinic.
Insights
The Nrf2 pathway, known for its antioxidant roles, shows significant promise for protecting the heart. Research highlights its potential in treating cardiovascular diseases through various regulatory mechanisms.
Area of Science:
- Molecular Biology
- Cardiovascular Research
- Cellular Signaling
Background:
- The NFE2L2 gene encodes the transcription factor Nrf2, crucial for antioxidant and detoxification gene expression.
- Nrf2's cytoprotective functions are well-established, with growing interest in its role in cardiovascular diseases.
- Its involvement spans atherosclerosis, ischemia, hypertrophy, heart failure, and diabetes.
Purpose of the Study:
- To review the literature on the function and regulation of the Nrf2 gene.
- To explore Nrf2's protective role in cardiovascular disease models.
- To highlight Nrf2 inducers and their mechanisms of action.
Main Methods:
- Literature review of historical and recent discoveries on Nrf2.
- Analysis of experimental models demonstrating Nrf2's effects in cardiovascular conditions.
- Examination of molecular mechanisms regulating Nrf2 activity.
Main Results:
- Nrf2 regulates genes involved in cytoprotection, cell signaling, metabolism, autophagy, and tissue remodeling.
- Evidence supports Nrf2's protective character in various cardiovascular disease models.
- Small molecules, particularly natural products, can induce Nrf2 activity by disrupting its degradation.
Conclusions:
- Nrf2 governs cellular defense, repair, and remodeling processes.
- Activating the Nrf2 pathway presents a potential therapeutic strategy for cardiac protection.
- Further clinical applications of Nrf2 modulation for heart health are supported by extensive evidence.
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