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Published on: August 21, 2021
Role of the Nrf2/ARE Pathway in the mtDNA Reparation
Artem P Gureev1,2, Ekaterina V Chernyshova1, Ekaterina P Krutskikh1
1Department of Genetics, Cytology and Bioengineering, Voronezh State University, 394018 Voronezh, Russia.
Abstract:
Mitochondrial DNA (mtDNA) is located in the mitochondrial matrix, in close proximity to major sources of reactive oxygen species (ROS) in the cell. This makes mtDNA one of the most susceptible components to damage in the cell. The nuclear factor E2-related factor 2/antioxidant response element (Nrf2/ARE) signaling pathway is an important cytoprotective mechanism. It is well-studied and described that Nrf2 can regulate the expression of mitochondrial-targeted antioxidant systems in the cell, indirectly protecting mtDNA from damage. However, the Nrf2/ARE pathway can also directly impact on the mtDNA repair processes. In this review, we summarize the existing data on the impact of Nrf2 on mtDNA repair, primarily base excision repair (BER), as it is considered the main repair pathway for the mitochondrial genome. We explore the crosstalk between Nrf2/ARE, BRCA1, and p53 signaling pathways in their involvement in maintaining mtDNA integrity. The role of other repair mechanisms in correcting mismatched bases and double-strand breaks is discussed. Additionally, the review addresses the role of Nrf2 in the repair of noncanonical bases, which contribute to an increased number of mutations in mtDNA and can contaminate the nucleotide pool.
Insights
The nuclear factor E2-related factor 2 (Nrf2) pathway protects mitochondrial DNA (mtDNA) by regulating antioxidant systems and directly impacting mtDNA repair mechanisms like base excision repair (BER). This review explores Nrf2
Area of Science:
- Mitochondrial biology and genetics
- Cellular stress response and DNA repair
Background:
- Mitochondrial DNA (mtDNA) is highly vulnerable to reactive oxygen species (ROS) due to its cellular location.
- The nuclear factor E2-related factor 2/antioxidant response element (Nrf2/ARE) pathway is a key cytoprotective mechanism.
- Nrf2 is known to indirectly protect mtDNA via antioxidant systems, but its direct role in repair is less understood.
Purpose of the Study:
- To review and summarize the impact of the Nrf2/ARE pathway on mitochondrial DNA repair processes.
- To explore the interplay between Nrf2, BRCA1, and p53 in maintaining mtDNA integrity.
- To discuss Nrf2's role in repairing various types of DNA damage, including noncanonical bases.
Main Methods:
- Literature review synthesizing existing data on Nrf2 and mtDNA repair.
- Focus on base excision repair (BER) as the primary mtDNA repair pathway.
- Discussion of signaling pathway crosstalk (Nrf2/ARE, BRCA1, p53) and other repair mechanisms.
Main Results:
- Nrf2 directly influences mtDNA repair, particularly base excision repair (BER).
- Cross-talk exists between Nrf2, BRCA1, and p53 pathways to maintain mtDNA integrity.
- Nrf2 plays a role in repairing noncanonical bases, which are linked to mtDNA mutations.
Conclusions:
- The Nrf2/ARE pathway is a critical regulator of both indirect antioxidant defense and direct repair of mitochondrial DNA.
- Understanding Nrf2's multifaceted role is essential for comprehending mtDNA maintenance and preventing mutations.
- Further research into Nrf2's involvement in diverse DNA repair pathways can illuminate strategies for combating mtDNA damage.
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