Succinylation of a KEAP1 sensor lysine promotes NRF2 activation

被引:15
|
作者
Ibrahim, Lara [1 ,2 ]
Stanton, Caroline [1 ,2 ]
Nutsch, Kayla [2 ]
Nguyen, Thu [2 ]
Li-Ma, Chloris [2 ]
Ko, Yeonjin [2 ]
Lander, Gabriel C. [3 ]
Wiseman, R. Luke [1 ]
Bollong, Michael J. [2 ]
机构
[1] Scripps Res Inst, Dept Mol Med, San Diego, CA 92037 USA
[2] Scripps Res, Dept Chem, San Diego, CA 92037 USA
[3] Scripps Res, Dept Integrat Struct & Computat Biol, San Diego, CA 92037 USA
关键词
SUCCINATION; STRESS;
D O I
10.1016/j.chembiol.2023.07.014
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Cross talk between metabolism and stress-responsive signaling is essential for maintaining cellular homeo-stasis. This cross talk is often achieved through covalent modification of proteins by endogenous, reactive metabolites that regulate key stress-responsive transcription factors like NRF2. Metabolites including meth-ylglyoxal, glyceraldehyde 3-phosphate, fumarate, and itaconate covalently modify sensor cysteines of the NRF2 repressor KEAP1, resulting in stabilization of NRF2 and activation of its cytoprotective transcriptional program. Here, we employed a shRNA-based screen targeting the enzymes of central carbon metabolism to identify additional regulatory nodes bridging metabolism to NRF2 activation. Succinic anhydride, increased by genetic depletion of the TCA cycle enzyme succinyl-CoA synthetase or by direct administration, results in N-succinylation of lysine 131 of KEAP1 to activate NRF2 signaling. This study identifies KEAP1 as capable of sensing reactive metabolites not only by several cysteine residues but also by a conserved lysine residue, indicating its potential to sense an expanded repertoire of reactive metabolic messengers.
引用
收藏
页码:1295 / +
页数:13
相关论文
共 50 条
  • [21] Activation of the Keap1/Nrf2 stress response pathway in autophagic vacuolar myopathies
    Duleh, Steve
    Wang, Xianhong
    Komirenko, Allison
    Margeta, Marta
    ACTA NEUROPATHOLOGICA COMMUNICATIONS, 2016, 4 : 115
  • [22] Activation of the Keap1/Nrf2 pathway for neuroprotection by electrophillic phase II inducers
    Satoh, T
    Okamoto, SI
    Cui, J
    Watanabe, Y
    Furuta, K
    Suzuki, M
    Tohyama, K
    Lipton, SA
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (03) : 768 - 773
  • [23] Specific patterns of electrophile adduction trigger Keap1 ubiquitination and Nrf2 activation
    Hong, F
    Sekhar, KR
    Freeman, ML
    Liebler, DC
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (36) : 31768 - 31775
  • [24] KEAP1 gene mutations and NRF2 activation are common in pulmonary papillary adenocarcinoma
    Qing Kay Li
    Anju Singh
    Shyam Biswal
    Frederic Askin
    Edward Gabrielson
    Journal of Human Genetics, 2011, 56 : 230 - 234
  • [25] Activation of the Keap1/Nrf2 stress response pathway in autophagic vacuolar myopathies
    Steve Duleh
    Xianhong Wang
    Allison Komirenko
    Marta Margeta
    Acta Neuropathologica Communications, 4
  • [26] Loss-of-function mutations in KEAP1 drive lung cancer progression via KEAP1/NRF2 pathway activation
    Meiling Gong
    Yan Li
    Xiaoping Ye
    Linlin Zhang
    Zhifang Wang
    Xiaowen Xu
    Yejing Shen
    Cuixia Zheng
    Cell Communication and Signaling, 18
  • [27] KEAP1 gene mutations and NRF2 activation are common in pulmonary papillary adenocarcinoma
    Li, Qing Kay
    Singh, Anju
    Biswal, Shyam
    Askin, Frederic
    Gabrielson, Edward
    JOURNAL OF HUMAN GENETICS, 2011, 56 (03) : 230 - 234
  • [28] Loss-of-function mutations in KEAP1 drive lung cancer progression via KEAP1/NRF2 pathway activation
    Gong, Meiling
    Li, Yan
    Ye, Xiaoping
    Zhang, Linlin
    Wang, Zhifang
    Xu, Xiaowen
    Shen, Yejing
    Zheng, Cuixia
    CELL COMMUNICATION AND SIGNALING, 2020, 18 (01)
  • [29] KEAP1 and done? Targeting the NRF2 pathway with sulforaphane
    Dinkova-Kostova, Albena T.
    Fahey, Jed W.
    Kostov, Rumen V.
    Kensler, Thomas W.
    TRENDS IN FOOD SCIENCE & TECHNOLOGY, 2017, 69 : 257 - 269
  • [30] Nrf2 sequesters Keap1 preventing endothelial dysfunction
    Kopacz, A.
    Kloska, D.
    Cysewski, D.
    Dulak, J.
    Jozkowicz, A.
    Grochot-Przeczek, A.
    CARDIOVASCULAR RESEARCH, 2018, 114 : S92 - S92