Related Experiment Video
Updated: Jun 11, 2025

Mechanism of Kemeng Fang's Inhibition of Podocyte Apoptosis in Rats with Membranous Nephropathy through the PI3K/AKT Signaling Pathway
Published on: August 23, 2024
LncRNA PVT1 induces mitochondrial dysfunction of podocytes via TRIM56 in diabetic kidney disease
Zhimei Lv1,2, Ziyang Wang1,2, Jinxiu Hu1,2
1Department of Nephrology, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, Shandong, 250021, China.
Abstract:
Mitochondrial dysfunction is a significant contributor to podocyte injury in diabetic kidney disease (DKD). While previous studies have shown that PVT1 might play a vital role in DKD, the precise molecular mechanisms are largely unknown. By analyzing the plasma and kidney tissues of DKD patients, we observed a significant upregulation of PVT1 expression, which exhibited a positive correlation with albumin/creatinine ratios and serum creatinine levels. Then, we generated mice with podocyte-specific deletion of PVT1 (Nphs2-Cre/Pvt1flox/flox) and confirmed that the deletion of PVT1 suppressed podocyte mitochondrial dysfunction and inflammation in addition to ameliorating diabetes-induced podocyte injury, glomerulopathy, and proteinuria. Subsequently, we cultured podocytes in vitro and observed that PVT1 expression was upregulated under hyperglycemic conditions. Mechanistically, we demonstrated that PVT1 was involved in mitochondrial dysfunction by interacting with TRIM56 post-transcriptionally to modulate the ubiquitination of AMPKα, leading to aberrant mitochondrial biogenesis and fission. Additionally, the release of mtDNA and mtROS from damaged mitochondria triggered inflammation in podocytes. Subsequently, we verified the important role of TRIM56 in vivo by constructing Nphs2-Cre/Trim56flox/flox mice, consistently with the results of Nphs2-Cre/Pvt1flox/flox mice. Together, our results revealed that upregulation of PVT1 could promote mitochondrial dysfunction and inflammation of podocyte by modulating TRIM56, highlighting a potential novel therapeutic target for DKD.
Insights
Increased PVT1 expression exacerbates mitochondrial dysfunction and inflammation in diabetic kidney disease (DKD) podocytes. Targeting PVT1 and TRIM56 may offer new therapeutic strategies for DKD.
Area of Science:
- Nephrology
- Molecular Biology
- Biochemistry
Background:
- Mitochondrial dysfunction is a key factor in podocyte injury in diabetic kidney disease (DKD).
- The specific molecular role of PVT1 in DKD pathogenesis remains unclear.
- Previous research suggests PVT1 involvement in DKD.
Purpose of the Study:
- To investigate the role of PVT1 in DKD-related podocyte injury.
- To elucidate the molecular mechanisms by which PVT1 contributes to podocyte dysfunction.
- To identify potential therapeutic targets for DKD.
Main Methods:
- Analysis of plasma and kidney tissues from DKD patients.
- Generation of podocyte-specific PVT1 knockout mice (Nphs2-Cre/Pvt1flox/flox).
- In vitro studies using cultured podocytes under hyperglycemic conditions.
- Investigation of PVT1 interaction with TRIM56 and its effect on AMPKα ubiquitination.
- Generation of podocyte-specific TRIM56 knockout mice (Nphs2-Cre/Trim56flox/flox).
Main Results:
- PVT1 expression was significantly upregulated in DKD patients and correlated with disease severity.
- PVT1 deletion in podocytes ameliorated mitochondrial dysfunction, inflammation, and kidney injury in diabetic mice.
- PVT1 interacts with TRIM56, modulating AMPKα ubiquitination, mitochondrial biogenesis/fission, and mtROS release.
- TRIM56 knockout mice showed similar protective effects as PVT1 knockout mice.
Conclusions:
- Upregulated PVT1 promotes podocyte mitochondrial dysfunction and inflammation in DKD by modulating TRIM56.
- PVT1-TRIM56 interaction represents a potential therapeutic target for DKD treatment.
- This study reveals a novel molecular mechanism underlying podocyte injury in DKD.
Related Concept Videos
Nephrons
Nephrotic Syndrome I : Introduction

