ACROLEIN INDUCES NRF2 NUCLEAR TRANSLOCATION VIA TRPA1 CHANNEL ACTIVATION IN A549 CELLS

被引:0
|
作者
Cao, Jian-ping [1 ]
Zhang, Jun-li [1 ]
Sun, Wen-wu [1 ]
Ma, Zhuango [1 ,2 ]
机构
[1] Gen Hosp Northern Theater Command, Dept Pulm & Crit Care Med, Shenyang 110016, Liaoning, Peoples R China
[2] Gen Hosp Northern Theater Command, Dept Pulm & Crit Care Med, 83,Wenhua Rd,Shenhe Dist, Shenyang 110016, Liaoning, Peoples R China
来源
ACTA MEDICA MEDITERRANEA | 2023年 / 39卷 / 02期
关键词
Nrf2; Acrolein; TRPA1; Ca2+]c;
D O I
10.19193/0393-6384_2023_2_64
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Introducion: Acrolein is present in cigarette smoke, vehicle exhaust, and air pollution. It has been reported that acrolein activates nuclear factor-erythroid 2 related factor2 (Nrf2) signaling pathway in lung epithelial cells. Acrolein is also known as one of transient receptor potential ankyrin-repeat 1 channel (TRPA1) agonists. However, the role of TRPA1 in the Nrf2 nuclear translocationMaterial and methods: In the present work, the change of Nrf2 nuclear translocation was analyzed by immunocytochemistry. At the same time, cytosolic Ca2+ concentration ([Ca2+]c) was examined in A549 cells stimulated by acrolein.Results: Results showed that Nrf2 nuclear translocation was enhanced by acrolein in A549 cells, which was abolished by AP18 (a TRPA1 channel blocker). In addition, AP-18 blocked enhanced [Ca2+]c induced by acrolein. The further experiments confirmed that removal of extracellular Ca2+ largely abrogated the [Ca2+]c elevation and nuclear translocation of Nrf2 induced by acroleinConclusions: Our results suggest that acrolein induces Nrf2 nuclear translocation through activation of TRPA1 in lung epithelial cells, which might be useful in the research and treatment of pulmonary disease.
引用
收藏
页码:453 / 456
页数:4
相关论文
共 50 条
  • [31] TRPA1 Channel Activation With Cinnamaldehyde Induces Cutaneous Vasodilation Through NOS, but Not COX and KCa Channel, Mechanisms in Humans
    Kataoka, Yufuko
    Kenny, Glen P.
    Nishiyasu, Takeshi
    Amano, Tatsuro
    Mundel, Toby
    Zheng, Huixin
    Lei, Tze-Huan
    Watanabe, Koichi
    Fujii, Naoto
    JOURNAL OF CARDIOVASCULAR PHARMACOLOGY, 2022, 79 (03) : 375 - 382
  • [32] Erythropoietin induces nuclear translocation of Nrf2 and heme oxygenase-1 expression in SH-SY5Y cells
    Genc, Kursad
    Egrilmez, Mehtap Y.
    Genc, Sermin
    CELL BIOCHEMISTRY AND FUNCTION, 2010, 28 (03) : 197 - 201
  • [33] Luteolin inhibits Nrf2 leading to negative regulation of the Nrf2/ARE pathway and sensitization of human lung carcinoma A549 cells to therapeutic drugs
    Tang, Xiuwen
    Wang, Hongyan
    Fan, Longfang
    Wu, Xiaoyuan
    Xin, Ai
    Ren, Huanyu
    Wang, Xiu Jun
    FREE RADICAL BIOLOGY AND MEDICINE, 2011, 50 (11) : 1599 - 1609
  • [34] Suppression of NRF2/ARE by convallatoxin sensitises A549 cells to 5-FU-mediated apoptosis
    Lee, June
    Kang, Jong-Su
    Nam, Le Ba
    Yoo, Ok-Kyung
    Keum, Young-Sam
    FREE RADICAL RESEARCH, 2018, 52 (11-12) : 1416 - 1423
  • [35] Inflammatory stress induces a biphasic Nrf2 activation in neuronal cells
    Krepel, Stacey A.
    O'Hara, Lars
    Mangum, Sally
    Hogan, Mary B.
    Kuhn, Thomas B.
    FASEB JOURNAL, 2017, 31
  • [36] Ferulic acid induces heme oxygenase-1 via activation of ERK and Nrf2
    Ma, Zengchun
    Hong, Qian
    Wang, Yuguang
    Liang, Qiande
    Tan, Hongling
    Xiao, Chengrong
    Tang, Xianglin
    Shao, Shuai
    Zhou, Sisi
    Gao, Yue
    DRUG DISCOVERIES AND THERAPEUTICS, 2011, 5 (06): : 299 - 305
  • [37] Nuclear protein HMGN2 attenuates pyocyanin-induced oxidative stress via Nrf2 signaling and inhibits Pseudomonas aeruginosa internalization in A549 cells
    Liu, Keyun
    Wang, Xinyuan
    Sha, Kaihui
    Zhang, Fumei
    Xiong, Feng
    Wang, Xiaoying
    Chen, Junli
    Li, Jingyu
    Churilov, Leonid P.
    Chen, Shanze
    Wang, Yi
    Huang, Ning
    FREE RADICAL BIOLOGY AND MEDICINE, 2017, 108 : 404 - 417
  • [38] ALLYL ISOTHYOCYNATE INDUCES BLADDER OVERACTIVITY VIA DIRECT ACTIVATION OF BOTH TRPA1 AND TRPV1
    Everaerts, W.
    Talavera, K.
    Gees, M.
    Leten, C.
    Voets, T.
    Nilius, B.
    De Ridder, D.
    NEUROUROLOGY AND URODYNAMICS, 2009, 28 (07) : 865 - 865
  • [39] Potential Interplay between Nrf2, TRPA1, and TRPV1 in Nutrients for the Control of COVID-19
    Bousquet, Jean
    Czarlewski, Wienczyslawa
    Zuberbier, Torsten
    Mullol, Joaquim
    Blain, Hubert
    Cristol, Jean-Paul
    De la Torre, Rafael
    Lozano, Nieves Pizarro
    Le Moing, Vincent
    Bedbrook, Anna
    Agache, Ioana
    Akdis, Cezmi A.
    Canonica, G. Walter
    Cruz, Alvaro A.
    Fiocchi, Alessandro
    Fonseca, Joao A.
    Fonseca, Susana
    Gemicioglu, Bilun
    Haahtela, Tari
    Iaccarino, Guido
    Ivancevich, Juan Carlos
    Jutel, Marek
    Klimek, Ludger
    Kraxner, Helga
    Kuna, Piotr
    Larenas-Linnemann, Desiree E.
    Martineau, Adrian
    Melen, Erik
    Okamoto, Yoshitaka
    Papadopoulos, Nikolaos G.
    Pfaar, Oliver
    Regateiro, Frederico S.
    Reynes, Jacques
    Rolland, Yves
    Rouadi, Philip W.
    Samolinski, Boleslaw
    Sheikh, Aziz
    Toppila-Salmi, Sanna
    Valiulis, Arunas
    Choi, Hak-Jong
    Kim, Hyun Ju
    Anto, Josep M.
    INTERNATIONAL ARCHIVES OF ALLERGY AND IMMUNOLOGY, 2021, 182 (04) : 324 - 338
  • [40] Catechol estrogens stimulate insulin secretion in pancreatic β-cells via activation of the transient receptor potential A1 (TRPA1) channel
    Ma, Wenzhen
    Chen, Xingjuan
    Cerne, Rok
    Syed, Samreen K.
    Ficorilli, James V.
    Cabrera, Over
    Obukhov, Alexander G.
    Efanov, Alexander M.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2019, 294 (08) : 2935 - 2946