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Chun-Liang Lin1, Pei-Hsien Lee2, Yung-Chien Hsu2
1Department of Nephrology and Kidney and Diabetic Complications Research Team, Chang Gung Memorial Hospital, Chiayi, Taiwan; Kidney Research Center, Chang Gung Memorial Hospital, Taipei, Taiwan; School of Traditional Chinese Medicine and.
Abstract:
Podocyte dysfunction is a detrimental feature in diabetic nephropathy, with loss of nephrin integrity contributing to diabetic podocytopathy. MicroRNAs (miRs) reportedly modulate the hyperglycemia-induced perturbation of renal tissue homeostasis. This study investigated whether regulation of histone deacetylase (HDAC) actions and nephrin acetylation by miR-29 contributes to podocyte homeostasis and renal function in diabetic kidneys. Hyperglycemia accelerated podocyte injury and reduced nephrin, acetylated nephrin, and miR-29a levels in primary renal glomeruli from streptozotocin-induced diabetic mice. Diabetic miR-29a transgenic mice had better nephrin levels, podocyte viability, and renal function and less glomerular fibrosis and inflammation reaction compared with diabetic wild-type mice. Overexpression of miR-29a attenuated the promotion of HDAC4 signaling, nephrin ubiquitination, and urinary nephrin excretion associated with diabetes and restored nephrin acetylation. Knockdown of miR-29a by antisense oligonucleotides promoted HDAC4 action, nephrin loss, podocyte apoptosis, and proteinuria in nondiabetic mice. In vitro, interruption of HDAC4 signaling alleviated the high glucose-induced apoptosis and inhibition of nephrin acetylation in podocyte cultures. Furthermore, HDAC4 interference increased the acetylation status of histone H3 at lysine 9 (H3K9Ac), the enrichment of H3K9Ac in miR-29a proximal promoter, and miR-29a transcription in high glucose-stressed podocytes. In conclusion, hyperglycemia impairs miR-29a signaling to intensify HDAC4 actions that contribute to podocyte protein deacetylation and degradation as well as renal dysfunction. HDAC4, via epigenetic H3K9 hypoacetylation, reduces miR-29a transcription. The renoprotective effects of miR-29a in diabetes-induced loss of podocyte integrity and renal homeostasis highlights the importance of post-translational acetylation reactions in podocyte microenvironments. Increasing miR-29a action may protect against diabetic podocytopathy.
Insights
MicroRNA-29a (miR-29a) protects against diabetic kidney disease by regulating histone deacetylase 4 (HDAC4) and nephrin acetylation, preserving podocyte function and renal health.
Area of Science:
- Nephrology
- Molecular Biology
- Epigenetics
Background:
- Podocyte injury and nephrin loss are key features of diabetic nephropathy.
- MicroRNAs (miRs) play a role in regulating renal homeostasis under hyperglycemia.
- Histone deacetylase (HDAC) actions and nephrin acetylation are implicated in podocyte dysfunction.
Purpose of the Study:
- To investigate the role of miR-29 in regulating HDAC actions and nephrin acetylation in diabetic kidney disease.
- To determine if miR-29a protects podocyte homeostasis and renal function in diabetic conditions.
- To elucidate the epigenetic mechanisms involving HDAC4 and miR-29a transcription.
Main Methods:
- Studied streptozotocin-induced diabetic mice with altered miR-29a levels (transgenic and antisense oligonucleotides).
- Utilized primary renal glomeruli and podocyte cultures under high glucose conditions.
- Assessed podocyte viability, nephrin levels, acetylation, HDAC4 signaling, and epigenetic modifications (H3K9Ac).
Main Results:
- Hyperglycemia reduced miR-29a, nephrin, and acetylated nephrin, while increasing podocyte injury.
- miR-29a overexpression improved podocyte viability, renal function, and nephrin acetylation, while reducing fibrosis and inflammation.
- HDAC4 inhibition alleviated high glucose-induced podocyte apoptosis and increased miR-29a transcription via H3K9 acetylation.
Conclusions:
- Hyperglycemia-induced impairment of miR-29a signaling exacerbates HDAC4 activity, leading to podocyte deacetylation, degradation, and renal dysfunction.
- HDAC4-mediated epigenetic hypoacetylation of H3K9 reduces miR-29a transcription, creating a detrimental feedback loop.
- Restoring miR-29a activity shows renoprotective effects, highlighting the therapeutic potential of targeting acetylation pathways in diabetic nephropathy.
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