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Glycosaminoglycan therapy prevents TGF-beta1 overexpression and pathologic changes in renal tissue of long-term
Monica Ceol1,2, Giovanni Gambaro1, Ulrich Sauer3
1Institute of Internal Medicine, Division of Nephrology, University of Padova, Padova, Italy.
Abstract:
Chronic induction of the prosclerotic cytokine transforming growth factor beta (TGF-beta) has been implicated in the pathogenesis of diabetic nephropathy. In a rat model of diabetes mellitus-induced glomerulosclerosis, daily administration of a modified heparin (mH) glycosaminoglycan (GAG) preparation with low anticoagulant activity prevented glomerular and tubular matrix accumulation, as well as overexpression of TGF-beta1 mRNA and albuminuria, without obvious side effects. To elucidate the molecular mechanisms of GAG/mH inhibitory actions on TGF-beta1, studies using cultured mesangial cells were also performed. In these cells, high glucose-induced, dose-dependent increases in TGF-beta1 mRNA and bioactive TGF-beta protein expression were inhibited by GAG/mH treatment, whereas basal TGF-beta1 expression was not affected. Both the heparin-derived GAG and dermatan sulfate were effective, indicating that the heparin chemical structure is not necessary for inhibitory activity. Coincubation of GAG with active TGF-beta1 demonstrated no inhibitory effect on TGF-beta1 bioactivity, excluding a neutralizing effect of GAG on TGF-beta1 a the protein level. Furthermore, it was demonstrated that GAG inhibited phorbol myristate acetate-induced translocation of protein kinase C-alpha (PKC-alpha) and -beta1 and activation of PKC-alpha, as well as high glucose-induced activation of PKC-alpha. These results suggest that GAG inhibit TGF-beta1 overexpression at the transcriptional level, possibly via inhibition of high glucose-activated PKC. The findings indicate the potential of GAG therapy for the prevention of diabetic glomerulosclerosis by the inhibition of chronic disease-induced TGF-beta1 mRNA overexpression.
Insights
Modified heparin glycosaminoglycan (GAG) prevents diabetic nephropathy progression by inhibiting transforming growth factor beta 1 (TGF-beta1) mRNA overexpression, potentially through protein kinase C (PKC) pathway modulation.
Area of Science:
- Nephrology
- Endocrinology
- Biochemistry
Background:
- Diabetic nephropathy involves chronic transforming growth factor beta (TGF-beta) induction.
- TGF-beta1 overexpression contributes to glomerulosclerosis and kidney damage.
Purpose of the Study:
- To investigate the molecular mechanisms of modified heparin (mH) glycosaminoglycan (GAG) in inhibiting TGF-beta1.
- To assess the therapeutic potential of GAG in diabetic nephropathy.
Main Methods:
- In vivo studies using a rat model of diabetes mellitus-induced glomerulosclerosis.
- In vitro studies using cultured mesangial cells exposed to high glucose.
- Analysis of TGF-beta1 mRNA and protein expression, albuminuria, and protein kinase C (PKC) activation.
Main Results:
- Daily mH GAG administration prevented matrix accumulation, TGF-beta1 mRNA overexpression, and albuminuria in diabetic rats.
- GAG/mH inhibited high glucose-induced TGF-beta1 mRNA and protein expression in mesangial cells.
- GAG inhibited high glucose- and phorbol myristate acetate-induced PKC activation, suggesting transcriptional inhibition of TGF-beta1.
Conclusions:
- GAG/mH therapy shows potential for preventing diabetic glomerulosclerosis by inhibiting TGF-beta1 mRNA overexpression.
- The mechanism involves inhibiting high glucose-activated PKC, not direct TGF-beta1 neutralization.
- GAG therapy offers a promising approach for diabetic kidney disease management.
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