Redox regulation of renal DNA synthesis, transforming growth factor-beta1 and collagen gene expression

K A Nath1, J Grande, A Croatt

  • 1Department of Medicine, Mayo Clinic/Foundation, Rochester, Minnesota 55905, USA. nath.karl@mayo.edu

Kidney International
|February 14, 1998
PubMed

Insights

A prooxidant diet lacking antioxidants, selenium, and vitamin E causes kidney enlargement and damage. This diet increases DNA synthesis and collagen production, mimicking uremia and potentially harming kidney function.

Area of Science:

  • Nephrology
  • Biochemistry
  • Molecular Biology

Background:

  • Progressive renal disease involves growth and injury.
  • Previous work showed antioxidant-deficient diets cause renal enlargement, proteinuria, tubulointerstitial disease, and reduced GFR.

Purpose of the Study:

  • To examine the effects of a prooxidant diet on renal DNA synthesis, gene expression, and oxidative stress.
  • To investigate the in vitro effects of oxidants on kidney cells.
  • To analyze renal hydrogen peroxide generation and degradation.

Main Methods:

  • Rats were fed an antioxidant-deficient diet.
  • Assessed thymidine incorporation, DNA content, and mRNA expression (c-myc, H2b, collagens I, III, IV, TGF-beta1).
  • In vitro studies exposed kidney fibroblasts and mesangial cells to hydrogen peroxide.
  • Measured mitochondrial hydrogen peroxide generation, lipid peroxidation, and activities/mRNA of glutathione peroxidase and catalase.

Main Results:

  • The deficient diet increased renal DNA synthesis, primarily in distal tubular epithelium, and interstitial expansion.
  • Upregulated mRNA for collagens and TGF-beta1 in deficient kidneys.
  • Hydrogen peroxide induced collagen and TGF-beta1 mRNA in vitro.
  • Increased mitochondrial hydrogen peroxide generation and lipid peroxidation.
  • Suppressed glutathione peroxidase and unexpectedly reduced catalase mRNA and activity.

Conclusions:

  • A chronic prooxidant state, mimicking uremia, increases renal tubular DNA synthesis and fibrotic gene expression.
  • Oxidative stress in vitro induces collagen and TGF-beta1.
  • Reduced antioxidant enzyme activity may exacerbate kidney damage in chronic renal insufficiency.

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