Mechanism of chronic obstructive uropathy: increased expression of apoptosis-promoting molecules

Y J Choi1, E Baranowska-Daca, V Nguyen

  • 1Renal Pathology Laboratory, Department of Pathology, Department of Medicine, The Methodist Hospital and BaylorCollege of Medicine, Houston, Texas, USA.

Kidney International
|September 30, 2000
PubMed
Abstract

Insights

Chronic obstructive uropathy (COU) causes increased apoptosis in kidney cells. Key apoptosis-related molecules show dynamic expression changes, implicating them in COU pathogenesis and suggesting targets for future therapies.

Area of Science:

  • Renal cell biology
  • Molecular pathology
  • Apoptosis research

Background:

  • Renal tubular and interstitial cells exhibit significant apoptosis in chronic obstructive uropathy (COU).
  • Apoptosis involves complex molecular pathways including receptor/ligand molecules, signal transduction adapters, and effector molecules.
  • The precise mechanism and pathogenetic relevance of apoptosis-related molecules in COU remain unclear.

Purpose of the Study:

  • To investigate the mechanism of tubular cell apoptosis in COU.
  • To determine the pathogenetic relevance of apoptosis-related molecules in COU.
  • To correlate the expression of apoptosis-related molecules with cellular apoptosis in COU.

Main Methods:

  • Kidneys from sham-operated and COU mice were analyzed at multiple time points post-ligation.
  • In situ end labeling detected apoptotic cells; ribonuclease protection assay and immunostaining assessed apoptosis-related molecule expression.
  • Frequencies of apoptotic tubular and interstitial cells were quantified and correlated with molecular expression patterns.

Main Results:

  • COU kidneys showed increased tubular and interstitial cell apoptosis, with distinct temporal patterns.
  • Dynamic mRNA expression of apoptosis-related molecules (Fas, Fas ligand, TNFR-1, TRAIL, TRADD, RIP, caspase-8, FADD, FAP) was observed.
  • Apoptosis patterns correlated with the expression of these molecules, particularly Fas, Fas ligand, TRAIL, TRADD, RIP, and caspase-8 in tubular cells.

Conclusions:

  • The study demonstrates dynamic expression of key apoptosis-mediating molecules in COU.
  • These molecules are implicated in COU-associated renal cell apoptosis and disease pathogenesis.
  • Findings provide a basis for interventional studies targeting molecular control of apoptosis in COU.

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