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Cis-element architecture of Nrf2-sMaf heterodimer binding sites and its relation to diseases
Akihito Otsuki1, Masayuki Yamamoto2
1Department of Medical Biochemistry, Tohoku University Graduate School of Medicine and Tohoku University Tohoku Medical Megabank Organization, 2-1 Seiryo-machi, Aoba-ku, Sendai, Miyagi, 980-8575, Japan.
Abstract:
Cellular detoxication is essential for health because it provides protection against various chemicals and xenobiotics. The KEAP1-NRF2 system is important for cellular defense against oxidative and electrophilic stresses as NRF2 activates the transcription of an array of cytoprotective genes, including drug-metabolizing and antioxidant enzymes, in a stress-dependent manner. The CNC family of transcription factors, including NRF2, form heterodimers with small Maf (sMaf) proteins and bind to consensus DNA sequences that have been referred to as antioxidant response element, electrophile response element, or NF-E2-binding element. These sequences are now collectively called CNC-sMaf binding element (CsMBE). In addition to forming a heterodimer with CNC proteins, sMaf proteins can form homodimers and recognize regulatory motifs called Maf recognition element (MARE). Although the CsMBE sequence substantially overlaps with that of MARE, the sequences differ. NRF2 selectively recognizes CsMBE, which is critical for cytoprotection. Recent advances in high-throughput sequencing and population-scale genome analysis provide new insights into the transcriptional regulation involved in the stress response. The integration of a genome-wide map of NRF2 occupancy with disease-susceptibility loci reveals the associations between polymorphisms in CsMBE and disease risk, information useful for the personalized medicine of the future.
Insights
The KEAP1-NRF2 pathway protects cells from stress by activating protective genes. Genetic variations in NRF2 binding sites are linked to disease risk, paving the way for personalized medicine.
Area of Science:
- Molecular Biology
- Cellular Biology
- Genetics
Background:
- Cellular detoxification is vital for health, protecting against harmful chemicals and xenobiotics.
- The KEAP1-NRF2 system is a key cellular defense mechanism against oxidative and electrophilic stress.
- NRF2 activates cytoprotective genes, including drug-metabolizing and antioxidant enzymes, in response to cellular stress.
Purpose of the Study:
- To investigate the role of the KEAP1-NRF2 system in cellular defense.
- To understand the DNA binding specificity of NRF2.
- To explore the link between NRF2 regulatory elements and disease risk.
Main Methods:
- Analysis of high-throughput sequencing data.
- Population-scale genome analysis.
- Integration of genome-wide NRF2 occupancy maps with disease-susceptibility loci.
Main Results:
- NRF2 forms heterodimers with small Maf (sMaf) proteins, binding to CNC-sMaf binding elements (CsMBE).
- NRF2 selectively recognizes CsMBE, distinct from MARE sequences recognized by sMaf homodimers.
- Polymorphisms in CsMBE are associated with increased disease risk.
Conclusions:
- The KEAP1-NRF2 pathway and its specific DNA binding elements (CsMBE) are crucial for cytoprotection.
- Genetic variations in CsMBE contribute to disease susceptibility.
- These findings have implications for future personalized medicine strategies.
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