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Updated: Jan 25, 2026

Renal Ischaemia Reperfusion Injury: A Mouse Model of Injury and Regeneration
Published on: June 7, 2014
Lipoprotein modulation of proteinuric renal injury
Yohei Tsuchida1, Jianyong Zhong1,2, Tadashi Otsuka1
1Departments of Pediatrics, Vanderbilt University Medical Center, Nashville, TN, USA.
Insights
High-density lipoprotein (HDL) and apolipoprotein AI (apoAI) protect kidney podocytes from damage. An apoAI mimetic (L-4F) reduced proteinuria and atherosclerosis in mouse models, suggesting therapeutic potential.
Area of Science:
- Nephrology
- Cardiovascular Research
- Cellular Biology
Background:
- High-density lipoprotein (HDL) and apolipoprotein AI (apoAI) offer known cellular protection.
- The protective effects of HDL on renal cells, particularly podocytes, remain incompletely understood.
- Podocyte injury is a key factor in proteinuria and kidney disease progression.
Purpose of the Study:
- To investigate the protective effects of apoAI, HDL, and an apoAI mimetic (L-4F) on damaged podocytes in vitro.
- To evaluate the in vivo efficacy of L-4F in mitigating kidney and atherosclerotic injury in a podocyte-specific injury model of proteinuria.
Main Methods:
- In vitro: Primary mouse podocytes were injured using puromycin aminonucleoside (PAN); effects on viability, migration, reactive oxygen species (ROS), and apoptosis were assessed with apoAI, HDL, and L-4F.
- In vivo: A podocyte-specific injury model (NEP25+ mice) and a proteinuric atherosclerosis model (NEP25+:apoE-/- mice) were used.
- Animals received L-4F or vehicle; assessments included renal function, podocyte injury markers, and atherosclerosis.
Main Results:
- In vitro, apoAI, HDL, and L-4F significantly improved podocyte viability, migration, and reduced ROS production following PAN injury.
- L-4F attenuated podocyte apoptosis and modulated the JAK2/STAT3 signaling pathway.
- In vivo, L-4F reduced proteinuria, preserved podocyte integrity, and decreased atherosclerosis in proteinuric mice.
Conclusions:
- Normal apoAI, HDL, and the apoAI mimetic L-4F demonstrate protective effects against podocyte damage.
- The apoAI mimetic L-4F shows significant in vivo benefits, reducing albuminuria and atherosclerosis.
- Supplemental apoAI or apoAI mimetics represent a potential novel therapeutic strategy for podocyte damage and associated complications.
Abstract:
High-density lipoprotein (HDL) and its main protein, apolipoprotein AI (apoAI), have established benefits in various cells, but whether these cytoprotective effects of HDL pertain to renal cells is unclear. We investigated the in vitro consequences of exposing damaged podocytes to normal apoAI, HDL, and apoAI mimetic (L-4F), and the in vivo effects of L-4F on kidney and atherosclerotic injury in a podocyte-specific injury model of proteinuria. In vitro, primary mouse podocytes were injured by puromycin aminonucleoside (PAN). Cellular viability, migration, production of reactive oxygen species (ROS), apoptosis, and the underlying signaling pathway were assessed. In vivo, we used a proteinuric model, Nphs1-hCD25 transgenic (NEP25+) mice, which express human CD25 on podocytes. Podocyte injury was induced by using immunotoxin (LMB2) and generated a proteinuric atherosclerosis model, NEP25+:apoE-/- mice, was generated by mating apoE-deficient (apoE-/-) mice with NEP25+ mice. Animals received L-4F or control vehicle. Renal function, podocyte injury, and atherosclerosis were assessed. PAN reduced podocyte viability, migration, and increased ROS production, all significantly lessened by apoAI, HDL, and L-4F. L-4F attenuated podocyte apoptosis and diminished PAN-induced inactivation of Janus family protein kinase-2/signal transducers and activators of transcription 3. In NEP25+ mice, L-4F significantly lessened overall proteinuria, and preserved podocyte expression of synaptopodin and cell density. Proteinuric NEP25+:apoE-/- mice had more atherosclerosis than non-proteinuric apoE-/- mice, and these lesions were significantly decreased by L-4F. Normal human apoAI, HDL, and apoAI mimetic protect against podocyte damage. ApoAI mimetic provides in vivo beneficial effects on podocytes that culminate in reduced albuminuria and atherosclerosis. The results suggest supplemental apoAI/apoAI mimetic may be a novel candidate to lessen podocyte damage and its complications.
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