在细胞保护和新陈代谢中的NRF2信号
Shohei Murakami1, Yusuke Kusano1,2, Keito Okazaki1
1Department of Gene Expression Regulation, Institute of Development, Aging and Cancer, Tohoku University, Sendai, Japan.
British journal of pharmacology
|September 16, 2023
概括
KEAP1-NRF2系统保护细胞免受氧化应激. 本综述探讨了NRF2如何调节细胞代谢,线粒体功能和硫代谢,强调其细胞保护作用.
科学领域:
- 生物化学 生化学
- 细胞生物学 细胞生物学
- 分子生物学分子生物学
背景情况:
- KEAP1-NRF2系统对于细胞抵抗氧化应激的防御至关重要.
- KEAP1通过反应性硫醇充当电友生物传感器,NRF2则调节抗氧化和排毒基因.
- 人们越来越认识到NRF2在细胞代谢和线粒体功能中的作用.
研究的目的:
- 提供调节NRF2信号的分子机制的概述.
- 要突出NRF2.2的细胞保护功能.
- 阐明NRF2对细胞代谢,线粒体功能和硫代谢的贡献.
主要方法:
- 对KEAP1-NRF2信号研究的文献综述.
- 分析NRF2在基因调节中的作用.
- 检查NRF2对细胞代谢和线粒体的影响.
主要成果:
- NRF2是抗氧化剂,解毒和抗炎基因的关键调节者.
- NRF2通过多种机制影响细胞代谢和线粒体功能.
- 新出现的证据表明NRF2参与了新的硫代谢途径.
结论:
- KEAP1-NRF2系统是利用硫的重要细胞保护机制.
- NRF2在维持细胞平衡和代谢调节方面发挥着重要作用.
- 需要进一步的研究,以充分阐明NRF2介导的代谢和线粒体调节.
相关概念视频
NF-κB-dependent Signaling Pathway
7.5K
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...
NF-κB-dependent Signaling Mechanism
The...
7.5K
Transducer Mechanism: Nuclear Receptors
1.4K
Nuclear receptors, or NRs, are unique transcription factors that regulate gene transcription and affect the cellular pathways involved in reproduction, development, or metabolism. Their ability to be stimulated by small lipophilic ligands and control vital cellular processes makes them ideal drug targets. Nearly 10-15% of currently prescribed drugs target these receptors.
About 48 different soluble family members of nuclear receptors are identified that can be divided into two main classes:
About 48 different soluble family members of nuclear receptors are identified that can be divided into two main classes:
1.4K
Regulation of the Unfolded Protein Response
2.5K
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...
2.5K
Signal Transduction: Overview
8.6K
Cells respond to many types of information, often through receptor proteins positioned on the membrane. They respond to chemical signals, such as hormones, neurotransmitters, and other signaling molecules, initiating a series of molecular reactions to produce an appropriate response. This is called signal transduction. Cells also coordinate different responses elicited by the same signaling molecule via mediators, allowing molecular cross-talk.
Typically, signal transduction involves three...
Typically, signal transduction involves three...
8.6K
Electron Transport Chain: Complex I and II
14.4K
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...
ROS generation is regulated and maintained at moderate levels necessary...
14.4K
Redox Reactions
39
Redox reactions are vital biochemical processes that underpin energy metabolism in cells. These reactions involve the transfer of electrons between molecules, occurring in tandem as oxidation and reduction. Oxidation refers to the loss of electrons, while reduction denotes their gain. This coupling ensures the seamless flow of electrons through metabolic pathways. For example, in bacterial metabolism, glucose undergoes oxidation to carbon dioxide, while oxygen is simultaneously reduced to...
39


