Extracellular matrix is modulated in advanced glycation end products milieu via a RAGE receptor dependent pathway

Andreea Iren Serban1, Loredana Stanca, Ovidiu Ionut Geicu

  • 1Department of Preclinical Sciences, University of Agronomical Sciences and Veterinary Medicine, Bucharest, Romania.

Journal of Diabetes
|March 27, 2014
PubMed
Abstract

Insights

Advanced glycation end products (AGEs) increase kidney fibrosis by upregulating RAGE and TGF-β1. While treatments show promise, cellular compensation mechanisms limit their effectiveness in controlling collagen IV levels.

Area of Science:

  • Nephrology
  • Cell Biology
  • Biochemistry

Background:

  • Interstitial fibrosis results from extracellular matrix imbalances.
  • Advanced glycation end products (AGEs) activate the receptor for AGEs (RAGE), implicated in diabetic nephropathy.
  • AGEs may drive matrix hypertrophy through specific pathways.

Purpose of the Study:

  • To investigate the role of AGEs in matrix hypertrophy.
  • To elucidate the mechanisms by which AGEs influence RAGE and TGF-β1.
  • To evaluate the efficacy of aminoguanidine and antibody treatments in preventing AGE-induced alterations.

Main Methods:

  • Human embryonic kidney (HEK-293) cells were treated with AGE-bovine serum albumin (AGE-BSA).
  • Co-treatments included neutralizing antibodies against RAGE and TGF-β1, and aminoguanidine.
  • Gene expression, protein synthesis, and metalloproteinase activity were assessed.

Main Results:

  • AGE-BSA upregulated RAGE expression and dose-dependently increased TGF-β1 synthesis.
  • Matrix metalloproteinase (MMP) activity and collagen IV synthesis were elevated by AGE-BSA, potentiated by TGF-β1.
  • Aminoguanidine showed biphasic effects: low concentrations enhanced AGE-BSA effects, while high concentrations downregulated RAGE and TGF-β1.

Conclusions:

  • AGEs activate RAGE, leading to increased TGF-β1, which in turn influences collagen IV turnover.
  • MMP-2 activity is TGF-β1-dependent, while MMP-9 activity is RAGE-dependent.
  • Cellular compensation by increasing mRNA expression limits the effectiveness of RAGE and TGF-β1 blockade.

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