CtBP2 confers protection against oxidative stress through interactions with NRF1 and NRF2

Kenta Kainoh1, Ryo Takano1, Motohiro Sekiya1

  • 1Department of Endocrinology and Metabolism, Faculty of Medicine, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki, 305-8575, Japan.

Insights

C-terminal binding protein 2 (CtBP2) partners with nuclear factor-erythroid 2-like 1 and 2 (NRF1 and NRF2) to activate antioxidant genes. This discovery reveals a new mechanism in cellular defense against oxidative stress.

Area of Science:

  • Molecular Biology
  • Cellular Biology
  • Biochemistry

Background:

  • Aerobic organisms utilize oxygen but generate harmful oxidative insults.
  • Antioxidative defense systems protect cells, but their dysfunction contributes to disease.
  • Nuclear factor-erythroid 2-like 1 and 2 (NRF1 and NRF2) regulate antioxidant genes.

Purpose of the Study:

  • To investigate potential unknown regulatory mechanisms in antioxidative defense systems.
  • To identify novel partners involved in the activation of NRF1 and NRF2.

Main Methods:

  • Investigated the role of C-terminal binding protein 2 (CtBP2) in the NRF1/NRF2 pathway.
  • Analyzed the formation of transcriptional complexes involving CtBP2, NRF1, and NRF2.

Main Results:

  • CtBP2 was identified as an essential partner for NRF1 and NRF2.
  • CtBP2 forms transcriptional complexes with NRF1 and NRF2.
  • These complexes are required for the expression of antioxidant genes under oxidative stress.

Conclusions:

  • CtBP2 is a critical component of the transcriptional regulation of antioxidative defense.
  • This finding provides a basis for understanding cellular redox homeostasis.
  • The identified pathway may offer therapeutic targets for diseases linked to oxidative stress.

Related Concept Videos

Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
16.2K
NF-κB-dependent Signaling Pathway02:26

NF-κB-dependent Signaling Pathway

The transcription factor NF-κB was discovered in 1986 in the lab of Nobel laureate Professor David Baltimore, for its interaction with the immunoglobulin light chain enhancer in B-cells. After more than three decades of study, it is now evident that NF-κB regulates the expression of over 100 genes. Most of these genes play an essential role in the innate and adaptive immune responses as well as the inflammatory responses of animals.
NF-κB-dependent Signaling Mechanism
The...
8.0K
Regulation of the Unfolded Protein Response01:31

Regulation of the Unfolded Protein Response

Inositol-requiring kinase one or IRE1 is the most conserved eukaryotic unfolded protein response (UPR) receptor. It is a type I transmembrane protein kinase receptor with a distinctive site-specific RNase activity. As the binding mechanics of the misfolded proteins with the N-terminal domain of IRE-1 are unclear, three binding models — direct, indirect, and allosteric -- are proposed for receptor activation. Nevertheless, it is known that once a misfolded protein associates with IRE1, it...
2.7K
Other Stress Responses in Bacteria01:30

Other Stress Responses in Bacteria

Bacteria have global regulatory systems that control several types of stress mechanisms. These include Pho regulon and the heat shock response, which are essential systems for environmental adaptation, such as nutrient limitation and proteotoxic stress. The Pho regulon and the heat shock response exemplify bacterial resilience, enabling rapid adaptation to fluctuating environmental conditions.Pho RegulonBacteria require phosphorus for essential cellular processes, including nucleic acid...
141
DNA Damage can Stall the Cell Cycle02:37

DNA Damage can Stall the Cell Cycle

In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
9.6K
Sulfur Assimilation01:20

Sulfur Assimilation

Sulfur is an essential element in biological systems, contributing to synthesizing key biomolecules, including amino acids such as cysteine and methionine, and cofactors such as coenzyme A and biotin. Microorganisms primarily assimilate sulfur as sulfate (SO₄²⁻) from the environment, which must undergo a series of biochemical transformations before it can be incorporated into cellular components. As sulfate is highly oxidized, it must undergo assimilatory sulfate reduction to...
147