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Updated: Oct 9, 2025

A Large Animal Model for Acute Kidney Injury by Temporary Bilateral Renal Artery Occlusion
Published on: February 2, 2021
Nephrotoxic Effects of Paraoxon in Three Rat Models of Acute Intoxication
Vladislav E Sobolev1, Margarita O Sokolova1, Richard O Jenkins2
1Sechenov Institute of Evolutionary Physiology and Biochemistry, Russian Academy of Sciences, Thorez 44, 194223 St. Petersburg, Russia.
Abstract:
The delayed effects of acute intoxication by organophosphates (OPs) are poorly understood, and the various experimental animal models often do not take into account species characteristics. The principal biochemical feature of rodents is the presence of carboxylesterase in blood plasma, which is a target for OPs and can greatly distort their specific effects. The present study was designed to investigate the nephrotoxic effects of paraoxon (O,O-diethyl O-(4-nitrophenyl) phosphate, POX) using three models of acute poisoning in outbred Wistar rats. In the first model (M1, POX2x group), POX was administered twice at doses 110 µg/kg and 130 µg/kg subcutaneously, with an interval of 1 h. In the second model (M2, CBPOX group), 1 h prior to POX poisoning at a dose of 130 µg/kg subcutaneously, carboxylesterase activity was pre-inhibited by administration of specific inhibitor cresylbenzodioxaphosphorin oxide (CBDP, 3.3 mg/kg intraperitoneally). In the third model (M3), POX was administered subcutaneously just once at doses of LD16 (241 µg/kg), LD50 (250 µg/kg), and LD84 (259 µg/kg). Animal observation and sampling were performed 1, 3, and 7 days after the exposure. Endogenous creatinine clearance (ECC) decreased in 24 h in the POX2x group (p = 0.011). Glucosuria was observed in rats 24 h after exposure to POX in both M1 and M2 models. After 3 days, an increase in urinary excretion of chondroitin sulfate (CS, p = 0.024) and calbindin (p = 0.006) was observed in rats of the CBPOX group. Morphometric analysis revealed a number of differences most significant for rats in the CBPOX group. Furthermore, there was an increase in the area of the renal corpuscles (p = 0.0006), an increase in the diameter of the lumen of the proximal convoluted tubules (PCT, p = 0.0006), and narrowing of the diameter of the distal tubules (p = 0.001). After 7 days, the diameter of the PCT lumen was still increased in the nephrons of the CBPOX group (p = 0.0009). In the M3 model, histopathological and ultrastructural changes in the kidneys were revealed after the exposure to POX at doses of LD50 and LD84. Over a period from 24 h to 3 days, a significant (p = 0.018) expansion of Bowman's capsule was observed in the kidneys of rats of both the LD50 and LD84 groups. In the epithelium of the proximal tubules, stretching of the basal labyrinth, pycnotic nuclei, and desquamation of microvilli on the apical surface were revealed. In the epithelium of the distal tubules, partial swelling and destruction of mitochondria and pycnotic nuclei was observed, and nuclei were displaced towards the apical surface of cells. After 7 days of the exposure to POX, an increase in the thickness of the glomerular basement membrane (GBM) was observed in the LD50 and LD84 groups (p = 0.019 and 0.026, respectively). Moreover, signs of damage to tubular epithelial cells persisted with blockage of the tubule lumen by cellular detritus and local destruction of the surface of apical cells. Comparison of results from the three models demonstrates that the nephrotoxic effects of POX, evaluated at 1 and 3 days, appear regardless of prior inhibition of carboxylesterase activity.
Insights
Organophosphates (OPs) cause kidney damage, including changes in tubules and glomeruli, even when blood carboxylesterase is inhibited. These effects manifest rapidly and persist, highlighting the nephrotoxicity of paraoxon (POX).
Area of Science:
- Toxicology
- Nephrology
- Biochemistry
Background:
- Organophosphate (OP) intoxication delayed effects are poorly understood, with animal models often lacking species-specific relevance.
- Rodent carboxylesterase in plasma can interfere with assessing OP toxicity.
- Investigating paraoxon (POX) nephrotoxicity requires models accounting for these factors.
Purpose of the Study:
- To investigate the nephrotoxic effects of paraoxon (POX) in Wistar rats.
- To evaluate POX-induced kidney damage using three distinct acute poisoning models.
- To determine if carboxylesterase inhibition influences POX nephrotoxicity.
Main Methods:
- Three rat models of acute paraoxon (POX) poisoning were used, including repeated dosing, pre-inhibition of carboxylesterase with CBDP, and single high-dose exposures (LD16, LD50, LD84).
- Kidney function was assessed via endogenous creatinine clearance (ECC) and glucosuria.
- Urinary markers (chondroitin sulfate, calbindin), renal morphometry, and histopathology/ultrastructure were analyzed at 1, 3, and 7 days post-exposure.
Main Results:
- Paraoxon (POX) caused decreased ECC and glucosuria within 24 hours in models M1 and M2.
- Inhibition of carboxylesterase (CBDP) led to increased urinary chondroitin sulfate and calbindin, along with significant renal morphometric changes, including enlarged renal corpuscles and altered tubule diameters.
- Histopathological analysis revealed glomerular and tubular damage, including GBM thickening and epithelial cell destruction, particularly at higher POX doses (LD50, LD84).
Conclusions:
- Paraoxon (POX) induces significant nephrotoxicity, affecting renal function and structure.
- The observed nephrotoxic effects of POX occur independently of carboxylesterase activity inhibition.
- These findings underscore the importance of considering species-specific carboxylesterase activity when evaluating OP nephrotoxicity and highlight POX as a potent renal toxicant.
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