Redox Regulation by Keap1 and Nrf2 Controls Intestinal Stem Cell Proliferation in Drosophila

被引:289
|
作者
Hochmuth, Christine E. [1 ]
Biteau, Benoit [1 ]
Bohmann, Dirk [2 ]
Jasper, Heinrich [1 ]
机构
[1] Univ Rochester, Dept Biol, Rochester, NY 14627 USA
[2] Univ Rochester, Med Ctr, Dept Biomed Genet, Rochester, NY 14620 USA
关键词
OXIDATIVE STRESS; REACTIVE OXYGEN; SELF-RENEWAL; DUAL OXIDASE; LIFE-SPAN; HOMEOSTASIS; PATHWAY; MIDGUT; DIFFERENTIATION; ACTIVATION;
D O I
10.1016/j.stem.2010.12.006
中图分类号
Q813 [细胞工程];
学科分类号
摘要
In Drosophila, intestinal stem cells (ISCs) respond to oxidative challenges and inflammation by increasing proliferation rates. This phenotype is part of a regenerative response, but can lead to hyperproliferation and epithelial degeneration in the aging animal. Here we show that Nrf2, a master regulator of the cellular redox state, specifically controls the proliferative activity of ISCs, promoting intestinal homeostasis. We find that Nrf2 is constitutively active in ISCs and that repression of Nrf2 by its negative regulator Keap1 is required for ISC proliferation. We further show that Nrf2 and Keap1 exert this function in ISCs by regulating the intracellular redox balance. Accordingly, loss of Nrf2 in ISCs causes accumulation of reactive oxygen species and accelerates age-related degeneration of the intestinal epithelium. Our findings establish Keap1 and Nrf2 as a critical redox management system that regulates stem cell function in high-turnover tissues.
引用
收藏
页码:188 / 199
页数:12
相关论文
共 50 条
  • [31] 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
  • [32] Thermodynamic profiling of inhibitors of Nrf2: Keap1 interactions
    Nasiri, Hamid R.
    Linge, Sandra
    Ullmann, Dirk
    BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2016, 26 (02) : 526 - 529
  • [33] 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
  • [34] Modulation of NRF2/KEAP1 Signaling by Phytotherapeutics in Periodontitis
    Tossetta, Giovanni
    Fantone, Sonia
    Togni, Lucrezia
    Santarelli, Andrea
    Olivieri, Fabiola
    Marzioni, Daniela
    Rippo, Maria Rita
    ANTIOXIDANTS, 2024, 13 (10)
  • [36] KEAP1 and done? Targeting the NRF2 pathway with sulforaphane
    Kensler, Thomas
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 254
  • [37] Structure of the Keap1: Nrf2 interface provides mechanistic insight into Nrf2 signaling
    Lo, Shih-Ching
    Li, Xuchu
    Henzl, Michael T.
    Beamer, Lesa J.
    Hannink, Mark
    EMBO JOURNAL, 2006, 25 (15): : 3605 - 3617
  • [38] Tethering of Nrf2 to Keap1 prevents Nrf2 degradation by the ubiquitin proteasome pathway
    Sekhar, K
    Yan, X
    Freeman, M
    FREE RADICAL BIOLOGY AND MEDICINE, 2002, 33 : S350 - S351
  • [39] Regulation of Cell Proliferation and Nrf2-Mediated Antioxidant Defense: Conservation of Keap1 Cysteines and Nrf2 Binding Site in the Context of the Evolution of KLHL Family
    Shilovsky, Gregory A.
    Dibrova, Daria V.
    LIFE-BASEL, 2023, 13 (04):
  • [40] Nrf2 activation through the inhibition of Keap1–Nrf2 protein–protein interaction
    Sumi Lee
    Longqin Hu
    Medicinal Chemistry Research, 2020, 29 : 846 - 867