| Literature DB >> 31534007 |
Kazuya Tsubouchi1,2, Jun Araya1, Masahiro Yoshida3, Taro Sakamoto4, Tomoko Koumura4, Shunsuke Minagawa3, Hiromichi Hara3, Yusuke Hosaka3, Akihiro Ichikawa3, Nayuta Saito3, Tsukasa Kadota3, Yusuke Kurita3, Kenji Kobayashi3, Saburo Ito3, Yu Fujita3, Hirofumi Utsumi3, Mitsuo Hashimoto3, Hiroshi Wakui3, Takanori Numata3, Yumi Kaneko3, Shohei Mori5, Hisatoshi Asano5, Hideki Matsudaira5, Takashi Ohtsuka5, Katsutoshi Nakayama3, Yoichi Nakanishi2, Hirotaka Imai4,6, Kazuyoshi Kuwano3.
Abstract
The imbalanced redox status in lung has been widely implicated in idiopathic pulmonary fibrosis (IPF) pathogenesis. To regulate redox status, hydrogen peroxide must be adequately reduced to water by glutathione peroxidases (GPx). Among GPx isoforms, GPx4 is a unique antioxidant enzyme that can directly reduce phospholipid hydroperoxide. Increased lipid peroxidation products have been demonstrated in IPF lungs, suggesting the participation of imbalanced lipid peroxidation in IPF pathogenesis, which can be modulated by GPx4. In this study, we sought to examine the involvement of GPx4-modulated lipid peroxidation in regulating TGF-β-induced myofibroblast differentiation. Bleomycin-induced lung fibrosis development in mouse models with genetic manipulation of GPx4 were examined. Immunohistochemical evaluations for GPx4 and lipid peroxidation were performed in IPF lung tissues. Immunohistochemical evaluations showed reduced GPx4 expression levels accompanied by increased 4-hydroxy-2-nonenal in fibroblastic focus in IPF lungs. TGF-β-induced myofibroblast differentiation was enhanced by GPx4 knockdown with concomitantly enhanced lipid peroxidation and SMAD2/SMAD3 signaling. Heterozygous GPx4-deficient mice showed enhancement of bleomycin-induced lung fibrosis, which was attenuated in GPx4-transgenic mice in association with lipid peroxidation and SMAD signaling. Regulating lipid peroxidation by Trolox showed efficient attenuation of bleomycin-induced lung fibrosis development. These findings suggest that increased lipid peroxidation resulting from reduced GPx4 expression levels may be causally associated with lung fibrosis development through enhanced TGF-β signaling linked to myofibroblast accumulation of fibroblastic focus formation during IPF pathogenesis. It is likely that regulating lipid peroxidation caused by reduced GPx4 can be a promising target for an antifibrotic modality of treatment for IPF.Entities:
Mesh:
Substances:
Year: 2019 PMID: 31534007 DOI: 10.4049/jimmunol.1801232
Source DB: PubMed Journal: J Immunol ISSN: 0022-1767 Impact factor: 5.422