The Interaction of miR-378i-Skp2 Regulates Cell Senescence in Diabetic Nephropathy.
Yi-Chun TsaiPo-Lin KuoMei-Chuan KuoWei-Wen HungLing-Yu WuWei-An ChangPing-Hsun WuSu-Chu LeeHung-Chun ChenYa-Ling HsuPublished in: Journal of clinical medicine (2018)
Diabetic nephropathy (DN) is the major cause of end stage renal disease. Proximal tubular epithelial cell (PTEC) injury occurs early in diabetic kidney, and it is correlated with consequent renal failure. Cellular senescence participates in the pathophysiology of DN, but its role remains unclear. We conducted a cross-disciplinary study, including human, in vivo, and in vitro studies, to explore the novel molecular mechanisms of PTEC senescence in DN. We found that HG induced cell senescence in PTECs, supported by enhanced β-galactosidase staining, p53 and p27 expression, and reduced cyclin E levels. Transcriptome analysis of PTECs from a type 2 diabetic patient and a normal individual using next generation sequencing (NGS) and systematic bioinformatics analyses indicated that miR-378i and its downstream target S-phase kinase protein 2 (Skp2) contribute to HG-induced senescence in PTECs. High glucose (HG) elevated miR-378i expression in PTECs, and miR-378i transfection reduced Skp2 expression. Urinary miR-378i levels were elevated in both db/db mice and type 2 diabetic patients, whereas decreased Skp2 levels were shown in proximal tubule of db/db mice and human DN. Moreover, urinary miR-378i levels were positively correlated with urinary senescence-associated secretory phenotype cytokines and renal function in in vivo and human study. This study demonstrates that the interaction between miR-378i and Skp2 regulates PTEC senescence of DN. miR-378i has the potential to predict renal injury in DN. These findings suggest future applications in both therapy and in predicting renal dysfunction of DN.
Keyphrases
- endothelial cells
- high glucose
- long non coding rna
- cell proliferation
- long noncoding rna
- poor prognosis
- diabetic nephropathy
- dna damage
- type diabetes
- single cell
- stress induced
- cell cycle
- end stage renal disease
- gene expression
- chronic kidney disease
- oxidative stress
- peritoneal dialysis
- skeletal muscle
- diabetic rats
- small molecule
- dna methylation
- binding protein
- cell death
- adipose tissue
- induced pluripotent stem cells
- metabolic syndrome
- genome wide
- human health
- current status
- wound healing
- copy number
- circulating tumor cells
- fluorescent probe
- cell free