Related Experiment Video
Updated: Aug 15, 2026

Modeling Encephalopathy of Prematurity Using Prenatal Hypoxia-ischemia with Intra-amniotic Lipopolysaccharide in Rats
Published on: November 20, 2015
Tubular mitochondrial alterations in neonatal rats subjected to RAS inhibition
Daina Lasaitiene1, Yun Chen, Vida Mildaziene
1Dept. of Clinical Physiology, Univ. of Gothenburg, S-413 45 Gothenburg, Sweden. daina.lasaitiene@kidney.med.gu.se
Abstract:
Pharmacological interruption of the angiotensin II (ANG II) type 1 receptor signaling during nephrogenesis in rats perturbs renal tubular development. This study aimed to further investigate tubular developmental defects in neonatal rats subjected to ANG II inhibition with enalapril. We evaluated tubular ultrastructural changes using electron microscopy and estimated spectrophotometrically activity or concentrations of succinate dehydrogenase (SDH), cytochromes a and c, which are components of mitochondrial respiratory chain, on postnatal days 2 and 9 (PD2 and PD9). Renal expression of sodium-potassium adenosinetriphosphatase (Na(+)-K(+)-ATPase) and two reflectors of mitochondrial biogenesis [mitochondrial transcription factor A (TFAM) and translocase of outer mitochondrial membrane 20 (TOM20)] also were studied using Western immunoblotting and immunohistochemistry. Enalapril disrupted inner mitochondrial membranes of developing cortical and medullary tubular cells on PD2 and PD9. These findings were paralleled by impaired mitochondrial respiratory function, as revealed from the changes in components of the mitochondrial respiratory chain, such as decreased cytochrome c level in the cortex and medulla on PD2 and PD9, decreased cytochrome a level in the cortex and medulla on PD2, and diminished cortical SDH activity on PD2 and PD9. Moreover, tubular expression of the most active energy-consuming pump Na(+)-K(+)-ATPase was decreased by enalapril treatment. Renal expression of TFAM and TOM20 was not altered by neonatal enalapril treatment. Because nephrogenesis is a highly energy-demanding biological process, with the energy being utilized for renal growth and transport activities, the structural-functional alterations of the mitochondria induced by neonatal enalapril treatment may provide the propensity for the tubular developmental defect.
Insights
Neonatal enalapril treatment disrupts kidney development by impairing mitochondrial function and structure in tubular cells, potentially leading to developmental defects.
Area of Science:
- Nephrology and Developmental Biology
- Mitochondrial Biology and Function
- Pharmacology and Toxicology
Background:
- Angiotensin II (ANG II) type 1 receptor signaling is crucial for normal kidney development (nephrogenesis).
- Pharmacological inhibition of this pathway during development can lead to renal tubular defects.
- Enalapril is an ACE inhibitor that blocks ANG II production.
Purpose of the Study:
- To investigate the specific tubular developmental defects caused by enalapril during neonatal rat kidney development.
- To assess the impact of enalapril on mitochondrial structure, function, and key protein expression in developing renal tubules.
Main Methods:
- Neonatal rats were treated with enalapril.
- Ultrastructural analysis of renal tubules using electron microscopy.
- Spectrophotometric assessment of mitochondrial respiratory chain components (SDH, cytochromes a and c).
- Western immunoblotting and immunohistochemistry for Na(+)-K(+)-ATPase, TFAM, and TOM20 expression.
Main Results:
- Enalapril disrupted inner mitochondrial membranes in developing cortical and medullary tubular cells.
- Impaired mitochondrial respiratory function was observed, with decreased levels of cytochrome c and cytochrome a, and diminished SDH activity.
- Enalapril treatment reduced the expression of Na(+)-K(+)-ATPase, a key energy-dependent pump, without altering TFAM or TOM20.
Conclusions:
- Neonatal enalapril exposure induces structural and functional mitochondrial damage in renal tubular cells.
- These mitochondrial alterations, coupled with reduced Na(+)-K(+)-ATPase activity, likely contribute to the observed tubular developmental defects during nephrogenesis.
- The findings highlight the critical role of ANG II signaling in supporting the high energy demands of kidney development.
More Related Videos
11:26Analyzing Oxygen Consumption Rate in Primary Cultured Mouse Neonatal Cardiomyocytes Using an Extracellular Flux Analyzer
Published on: February 13, 2019
08:33Optimized Automated Analysis of Live Neuronal Mitochondria Homeostasis Modulation by Isoform-Specific Retinoic Acid Receptors
Published on: July 28, 2023