The UDPase ENTPD5 regulates ER stress-associated renal injury by mediating protein N-glycosylation

Author:

Xu Lifen1,Zhou Yuxia2,Wang Guifang2,Bo Li3,Jin bangming2,Dai Lujun3,Lu Qinli3,Cai Xueni2,Hu Laying2,Liu Lu2,Wu Yixuan2,Chang Xuebing2,Huang Yali2,Song Lingyu2,Zhang Tian2,Wang yuanyuan4ORCID,xiao ying2,Zhang Fan,Liu Lingling4,Shi Mingjun2,Wang Tuanlao5ORCID,Guo Bing2ORCID

Affiliation:

1. The Affiliated Hospital of Guizhou Medical University

2. Guizhou Medical University

3. Affiliated Hospital of Guizhou Medical University

4. Guizhou Provincial Key Laboratory of Pathogenesis and Drug Research on Common Chronic Diseases, Guizhou Medical University

5. Xiamen University

Abstract

AbstractImpaired protein N-glycosylation leads to endoplasmic reticulum (ER) stress, which triggers adaptive survival or maladaptive apoptosis in renal tubules in diabetic kidney disease (DKD). Therapeutic strategies targeting ER stress are promising for the treatment of DKD. Here, we report a previously unappreciated role played by ENTPD5 in alleviating renal injury by mediating ER stress. We found that ENTPD5 was highly expressed in normal renal tubules; however, ENTPD5 was dynamically expressed in the kidney and closely related to pathological DKD progression in both human patients and mouse models. Overexpression of ENTPD5 relieved ER stress in renal tubular cells, leading to compensatory cell proliferation that resulted in hypertrophy, while ENTPD5 knockdown aggravated ER stress to induce cell apoptosis, leading to renal tubular atrophy and interstitial fibrosis. Mechanistically, ENTPD5 regulated N-glycosylation of proteins in the ER to promote cell proliferation in the early stage of DKD, and continuous hyperglycemia activated the hexosamine biosynthesis pathway (HBP) to increase the level of UDP-GlcNAc, which driving a feedback mechanism that inhibited transcription factor SP1 activity to downregulate ENTPD5 expression in the late stage of DKD. This study was the first to demonstrate that ENTPD5 regulated renal tubule cell numbers through adaptive proliferation or apoptosis in the kidney by modulating the protein N-glycosylation rate in the ER, suggesting that ENTPD5 drives cell fate in response to metabolic stress and is a potential therapeutic target for renal diseases.

Publisher

Research Square Platform LLC

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