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Updated: May 1, 2026

Fabricating a Kidney Cortex Extracellular Matrix-Derived Hydrogel
Published on: October 13, 2018
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.
Background:
Interstitial fibrosis is induced by imbalances in extracellular matrix homeostasis. Advanced glycation end products (AGEs) can bind and activate the receptor for AGEs (RAGE), which is involved in diabetic nephropathy. We set out to identify the role of AGEs in producing alterations leading to matrix hypertrophy and the pathway through which aminoguanidine, as well as anti-RAGE and anti-transforming growth factor (TGF)-β1 antibody treatments could prevent these modifications.
Methods:
Human embryonic kidney (HEK-293) cells were exposed to glycated bovine serum albumin (AGE-BSA) and co-treated with neutralizing antibodies or aminoguanidine. The effects on the transcriptional and translational levels of RAGE, TGF-β1 and collagen IV were evaluated, while metalloproteinase activity was assessed by gelatin zymography.
Results:
AGE-BSA (200 μg/mL) upregulated RAGE's expression, while TGF-β1 synthesis and the formation of its bioactive form were increased in a dose-dependent manner by AGEs. AGE-BSA exposure increased both matrix metalloproteinase (MMP) activity and collagen IV synthesis, boosted by TGF-β1 upregulation. Aminoguanidine's effects revealed that small concentrations (10 μmol/L) enhance AGE-BSA effects, by increasing the expression of RAGE and TGF-β1, while higher concentrations (100 μmol/L) contribute to their downregulation.
Conclusions:
Although AGEs regulate RAGE and TGF-β1 by distinct pathways, RAGE activation leads to a further increase of TGF-β1 levels. MMP-2 activity seems to rely on TGF-β1, while MMP-9 was dependent on RAGE. These factors converge to control collagen IV turnover. Furthermore, although the antibody treatments might appear more efficient than AG in decreasing collagen IV levels, the cells compensate the RAGE and TGF-β1 blockade by increasing the mRNA expression of these proteins.
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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