Matrix stiffness regulates α-TAT1-mediated acetylation of α-tubulin and promotes silica-induced epithelial–mesenchymal transition via DNA damage
Author(s) -
Gengxu Li,
Si Chen,
Yi Zhang,
Hong Xu,
Dingjie Xu,
Zhongqiu Wei,
Xuemin Gao,
Wenchen Cai,
Na Mao,
Lijuan Zhang,
Shumin Li,
Yang Fang,
Heliang Liu,
S Li
Publication year - 2020
Publication title -
journal of cell science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.384
H-Index - 278
eISSN - 1477-9137
pISSN - 0021-9533
DOI - 10.1242/jcs.243394
Subject(s) - silicosis , acetylation , biology , downregulation and upregulation , microbiology and biotechnology , epithelial–mesenchymal transition , dna damage , cytoskeleton , fibrosis , tubulin , cancer research , microtubule , dna , cell , biochemistry , pathology , medicine , gene
Silicosis is characterized by silica exposure-induced lung interstitial fibrosis and formation of silicotic nodules, resulting in lung stiffening. The acetylation of microtubules mediated by α-tubulin N-acetyltransferase 1 (α-TAT1) is a posttranslational modification that promotes microtubule stability in response to mechanical stimulation. α-TAT1 and downstream acetylated α-tubulin (Ac-α-Tub) are decreased in silicosis, promoting the epithelial–mesenchymal transition (EMT); however, the underlying mechanisms are unknown. We found that silica, matrix stiffening or their combination triggered Ac-α-Tub downregulation in alveolar epithelial cells, followed by DNA damage and replication stress. α-TAT1 elevated Ac-α-Tub to limit replication stress and the EMT via trafficking of p53-binding protein 1 (53BP1, also known as TP53BP1). The results provide evidence that α-TAT1 and Ac-α-Tub inhibit the EMT and silicosis fibrosis by preventing 53BP1 mislocalization and relieving DNA damage. This study provides insight into how the cell cycle is regulated during the EMT and why the decrease in α-TAT1 and Ac-α-Tub promotes silicosis fibrosis. This article has an associated First Person interview with the first authors of the paper.
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