4.6 Article

Ubiquitin-like protein FAT10 promotes renal fibrosis by stabilizing USP7 to prolong CHK1-mediated G2/M arrest in renal tubular epithelial cells

期刊

AGING-US
卷 14, 期 18, 页码 7527-7546

出版社

IMPACT JOURNALS LLC

关键词

renal fibrosis; FAT10; cell cycle (G2/M) arrest; checkpoint kinase 1; ubiquitin specific protease 7

资金

  1. National Natural Science Foundation of China
  2. Project of the Jiangxi Provincial Department of Science and Technology
  3. [82160530]
  4. [81560117]
  5. [20192BAB205024]
  6. [20202ACBL216002]

向作者/读者索取更多资源

This study revealed that FAT10 promotes renal fibrosis by prolonging CHK1-mediated G2/M arrest via USP7. Inhibition of the FAT10/USP7/CHK1 axis may be a potential therapeutic approach for chronic kidney disease.
Renal fibrosis is the pathological hallmark of chronic kidney disease that is influenced by numerous factors. Arrest of renal tubular epithelial cells (RTECs) in G2/M phase is closely correlated with the progression of renal fibrosis; however, the mechanisms mediating these responses remain poorly defined. In this study, we observed that human leukocyte antigen-F adjacent transcript 10 (FAT10) deficiency abolished hypoxia-induced upregulation of checkpoint kinase 1 (CHK1) expression in RTECs derived from FAT10(+/+) and FAT10(-/- )mice. Further investigations revealed that FAT10 contributes to CHK1-mediated G2/M arrest and production of pro-fibrotic cytokines in RTECs exposed to hypoxia. Mechanistically, FAT10 directly interacted with and stabilized the deubiquitylating enzyme ubiquitin specific protease 7 (USP7) to mediate CHK1 upregulation, thereby promoting CHK1-mediated G2/M arrest in RTECs. In animal model, FAT10 expression was upregulated in the obstructed kidneys of mice induced by unilateral ureteric obstruction injury, and FAT10(-/- )mice exhibited reduced unilateral ureteric obstruction injury induced-renal fibrosis compared with FAT10(+/+ )mice. Furthermore, in a cohort of patients with calculi-related chronic kidney disease, upregulated FAT10 expression was positively correlated with renal fibrosis and the USP7/CHK1 axis. These novel findings indicate that FAT10 prolongs CHK1-mediated G2/M arrest via USP7 to promote renal fibrosis, and inhibition of the FAT10/USP7/CHK1 axis might be a plausible therapeutic approach to alleviate renal fibrosis in chronic kidney disease.

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