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Ubiquitination-dependent CARM1 degradation facilitates Notch1-mediated podocyte apoptosis in diabetic nephropathy
Dongil Kim1, Seulki Lim1, Minjung Park1
1College of Veterinary Medicine, Chonnam National University, Gwangju 500-757, Republic of Korea.
Abstract:
Podocyte apoptosis induced by hyperglycemia is considered a critical factor in the development of diabetic nephropathy. Recent studies have implicated Notch signaling in podocyte apoptosis; however, its regulatory mechanisms are not fully understood. In this study, we found that high-glucose treatment increased Notch1 and Jagged-1 expression, the transcriptional activity of Hes, and podocyte apoptosis, and decreased the expression of coactivator-associated arginine methyltransferase 1 (CARM1) in rat podocytes. Transient transfection of CARM1 reversed high-glucose-induced Notch1 expression, the transcriptional activity of Hes, and podocyte apoptosis. Moreover, the silencing of CARM1 using siRNA increased Notch1 expression, the transcriptional activity of Hes, and podocyte apoptosis. However, the Glu(266)-mediated enzymatic activity of CARM1 was not necessary for Notch signaling activation and podocyte apoptosis. Here, we demonstrate that AMP-activated protein kinase alpha (AMPKα) and cannabinoid receptor 1 (CB1R) are regulated by CARM1 and that high-glucose-induced podocyte apoptosis is mediated by a CARM1-AMPKα-Notch1-CB1R signaling axis. We also show that high-glucose-induced CARM1 downregulation is due to ubiquitination-dependent CARM1 degradation. Finally, we demonstrate that CARM1 expression in podocytes was diminished in rats with streptozotocin-induced diabetes compared to vehicle-treated rats. Together, our data provide evidence that ubiquitination-dependent CARM1 degradation in podocytes in diabetes promotes podocyte apoptosis via Notch1 activation. Strategies to preserve CARM1 expression or reduce the enzymatic activity of a ubiquitin ligase specific for CARM1 could be used to prevent podocyte loss in diabetic nephropathy.
Insights
High glucose levels trigger podocyte apoptosis in diabetic nephropathy by degrading CARM1, activating the Notch1 pathway. Preserving CARM1 may prevent kidney damage.
Area of Science:
- Nephrology
- Molecular Biology
- Endocrinology
Background:
- Diabetic nephropathy is a major complication of diabetes, characterized by podocyte apoptosis.
- Notch signaling is implicated in podocyte apoptosis, but its regulation remains unclear.
- Coactivator-associated arginine methyltransferase 1 (CARM1) plays a role in cellular processes.
Purpose of the Study:
- To investigate the role of CARM1 in high-glucose-induced podocyte apoptosis.
- To elucidate the signaling pathways involved in this process.
- To identify potential therapeutic targets for diabetic nephropathy.
Main Methods:
- Primary rat podocyte culture
- High-glucose stimulation
- Western blotting
- Quantitative real-time PCR
- siRNA-mediated gene silencing
- Immunoprecipitation
- Ubiquitination assays
- Animal models of diabetes
Main Results:
- High glucose decreased CARM1 expression and increased Notch1, Jagged-1, Hes activity, and podocyte apoptosis.
- CARM1 overexpression or silencing modulated Notch1 signaling and apoptosis.
- CARM1 regulates AMP-activated protein kinase alpha (AMPKα) and cannabinoid receptor 1 (CB1R) in a CARM1-AMPKα-Notch1-CB1R axis.
- High-glucose-induced CARM1 downregulation results from ubiquitination-dependent degradation.
- CARM1 expression was reduced in diabetic rat kidneys.
Conclusions:
- Ubiquitination-dependent CARM1 degradation in podocytes promotes apoptosis via Notch1 activation in diabetes.
- CARM1 acts as a crucial regulator in the high-glucose-induced podocyte apoptosis pathway.
- Targeting CARM1 degradation or ubiquitin ligases may offer a therapeutic strategy for diabetic nephropathy.
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