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Nrf2 expands the intracellular pool of the chaperone AHSP in a cellular model of β-thalassemia

Authors :
Gaijing Han
Cong Cao
Xi Yang
Guo-Wei Zhao
Xin-Jun Hu
Dong-Lin Yu
Rui-Feng Yang
Ke Yang
Ying-Ying Zhang
Wen-Tian Wang
Xiu-Zhen Liu
Peng Xu
Xue-Hui Liu
Ping Chen
Zheng Xue
De-Pei Liu
Xiang Lv
Source :
Redox Biology, Vol 50, Iss , Pp 102239- (2022)
Publication Year :
2022
Publisher :
Elsevier, 2022.

Abstract

In β-thalassemia, free α-globin chains are unstable and tend to aggregate or degrade, releasing toxic heme, porphyrins and iron, which produce reactive oxygen species (ROS). α-Hemoglobin-stabilizing protein (AHSP) is a potential modifier of β-thalassemia due to its ability to escort free α-globin and inhibit the cellular production of ROS. The influence of AHSP on the redox equilibrium raises the question of whether AHSP expression is regulated by components of ROS signaling pathways and/or canonical redox proteins. Here, we report that AHSP expression in K562 cells could be stimulated by NFE2-related factor 2 (Nrf2) and its agonist tert-butylhydroquinone (tBHQ). This tBHQ-induced increase in AHSP expression was also observed in Ter119+ mouse erythroblasts at each individual stage during terminal erythroid differentiation. We further report that the AHSP level was elevated in α-globin-overexpressing K562 cells and staged erythroblasts from βIVS-2-654 thalassemic mice. tBHQ treatment partially alleviated, whereas Nrf2 or AHSP knockdown exacerbated, α-globin precipitation and ROS production in fetal liver-derived thalassemic erythroid cells. MafG and Nrf2 occupancy at the MARE-1 site downstream of the AHSP transcription start site was detected in K562 cells. Finally, we show that MafG facilitated the activation of the AHSP gene in K562 cells by Nrf2. Our results demonstrate Nrf2-mediated feedback regulation of AHSP in response to excess α-globin, as occurs in β-thalassemia.

Details

Language :
English
ISSN :
22132317
Volume :
50
Issue :
102239-
Database :
Directory of Open Access Journals
Journal :
Redox Biology
Publication Type :
Academic Journal
Accession number :
edsdoj.64bfb4bbf354487e8dff0b3fac47b2bf
Document Type :
article
Full Text :
https://doi.org/10.1016/j.redox.2022.102239