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

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.

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