Related Experiment Video
Updated: May 11, 2026

Use of a Hanging-weight System for Liver Ischemia in Mice
Published on: August 7, 2012
Peroxisome proliferator-activated receptor δ agonist, HPP593, prevents renal necrosis under chronic ischemia
Larisa V Fedorova1, Komal Sodhi, Cara Gatto-Weis
1Department of Medicine, The University of Toledo School of Medicine, Toledo, Ohio, United States of America. Larisa.fedorova@utoledo.edu
Abstract:
The Goldblatt's 2 kidney 1 clip (2K1C) rat animal model of renovascular hypertension is characterized by ischemic nephropathy of the clipped kidney. 2K1C rats were treated with a specific peroxisome proliferator-activated receptor δ (PPARδ) agonist, HPP593. Clipped kidneys from untreated rats developed tubular and glomerular necrosis and massive interstitial, periglomerular and perivascular fibrosis. HPP593 kidneys did not exhibit any histochemical features of necrosis; fibrotic lesions were present only in perivascular areas. Necrosis in the untreated clipped kidneys was associated with an increased oxidative stress, up regulation and mitochondrial translocation of the pro-death protein BNIP3 specifically in tubules. In the kidneys of HPP593-treated rats oxidative stress was attenuated and BNIP3 protein decreased notably in the mitochondrial fraction when compared to untreated animals. In untreated clipped kidneys, mitochondria were dysfunctional as revealed by perturbations in the levels of MCAD, COXIV, TFAM, and Parkin proteins and AMPK activation, while in HPP593-treated rats these proteins remained at the physiological levels. Nuclear amounts of oxidative stress-responsive proteins, NRF1 and NRF2 were below physiological levels in treated kidneys. Mitochondrial biogenesis and autophagy were inhibited similarly in both treated and untreated 2K1C kidneys as indicated by a decrease in PGC1-α and deficiency of the autophagy-essential proteins LC3-II and ATG5. However, HPP593 treatment resulted in increased accumulation of p62 protein, an autophagic substrate and an enhancer of NRF2 activity. Therefore, inhibition of BNIP3 activation by the preservation of mitochondrial function and control of oxidative stress by PPARδ is the most likely mechanism to account for the prevention of necrotic death in the kidney under conditions of persistent ischemia.
Insights
A PPARδ agonist, HPP593, prevented kidney cell death in a renovascular hypertension model by reducing oxidative stress and preserving mitochondrial function. This offers a potential therapeutic strategy for ischemic nephropathy.
Area of Science:
- Nephrology
- Cardiovascular Research
- Molecular Biology
Background:
- The Goldblatt 2 kidney 1 clip (2K1C) rat model mimics renovascular hypertension, leading to ischemic nephropathy in the clipped kidney.
- This condition involves tubular and glomerular necrosis and significant fibrosis.
- Oxidative stress and mitochondrial dysfunction are implicated in the pathogenesis of ischemic kidney injury.
Purpose of the Study:
- To investigate the protective effects of a peroxisome proliferator-activated receptor delta (PPARδ) agonist, HPP593, in the 2K1C rat model.
- To elucidate the molecular mechanisms underlying HPP593's action on kidney injury, focusing on oxidative stress, mitochondrial function, and cell death pathways.
Main Methods:
- 2K1C rats were treated with HPP593 or left untreated.
- Kidney tissues were analyzed for histochemical features of necrosis and fibrosis.
- Levels of proteins involved in oxidative stress (BNIP3, NRF1, NRF2), mitochondrial function (MCAD, COXIV, TFAM, Parkin, AMPK), and autophagy (PGC1-α, LC3-II, ATG5, p62) were assessed.
Main Results:
- HPP593 treatment prevented necrosis and reduced fibrosis in clipped kidneys.
- HPP593 attenuated oxidative stress and decreased mitochondrial BNIP3 levels.
- Mitochondrial function was preserved, and autophagic markers showed altered patterns (increased p62) in HPP593-treated rats.
Conclusions:
- PPARδ activation by HPP593 protects against kidney necrosis in renovascular hypertension.
- The protective mechanism involves inhibiting BNIP3 activation, preserving mitochondrial integrity, and controlling oxidative stress.
- HPP593 represents a promising therapeutic agent for ischemic nephropathy.

