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Article: Mechanism of perturbation of integrin-mediated cell-matrix interactions by reactive carbonyl compounds and its implication for pathogenesis of diabetic nephropathy

TitleMechanism of perturbation of integrin-mediated cell-matrix interactions by reactive carbonyl compounds and its implication for pathogenesis of diabetic nephropathy
Authors
Issue Date2005
Citation
Diabetes, 2005, v. 54 n. 10, p. 2952-2960 How to Cite?
AbstractPerturbation of interactions between cells and the extra-cellular matrix (ECU) of renal glomeruli may contribute to characteristic histopathological lesions found in the kidneys of patients with diabetic nephropathy. However, the mechanism by which the diabetic conditions may affect cell-ECM interactions is unknown. Existing hypotheses suggest a role of glucose in direct modification of ECM. Here, we have demonstrated that carbonyl compound methylglyoxal (MGO) completely inhibited endothelial cell adhesion to recombinant α3 noncollagenous 1 domain of type IV collagen mediated via a short collagenous region containing RGD (Arg-Gly-Asp) sequence as well as binding of purified αvβ3 integrin to this protein. Specific MGO adducts of the arginine residue were detected within RGD sequence using mass spectrometry. Modification by carbonyl compounds glyoxal or glycolaldehyde had similar but smaller effects. MGO strongly inhibited adhesion of renal glomerular cells, podocytes, and mesangial cells to native collagen IV and laminin-1 as well as binding of collagen IV to its major receptor in glomerular cells, α1β1 integrin. In contrast, modification of these proteins by glucose had no effect on cell adhesion. Pyridoxamine, a promising drug for treatment of diabetic nephropathy, protected cell adhesion and integrin binding from inhibition by MGO. We suggest that in diabetes, perturbation of integrin-mediated cell-matrix interactions occurs via the modification of critical arginine residues in renal ECM by reactive carbonyl compounds. This mechanism may contribute to the development of diabetic nephropathy. © 2005 by the American Diabetes Association.
Persistent Identifierhttp://hdl.handle.net/10722/195430
ISSN
2021 Impact Factor: 9.337
2020 SCImago Journal Rankings: 3.219
ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorPedchenko, VK-
dc.contributor.authorChetyrkin, SV-
dc.contributor.authorChuang, P-
dc.contributor.authorHam, A-JL-
dc.contributor.authorSaleem, MA-
dc.contributor.authorMathieson, PW-
dc.contributor.authorHudson, BG-
dc.contributor.authorVoziyan, PA-
dc.date.accessioned2014-02-28T06:12:08Z-
dc.date.available2014-02-28T06:12:08Z-
dc.date.issued2005-
dc.identifier.citationDiabetes, 2005, v. 54 n. 10, p. 2952-2960-
dc.identifier.issn0012-1797-
dc.identifier.urihttp://hdl.handle.net/10722/195430-
dc.description.abstractPerturbation of interactions between cells and the extra-cellular matrix (ECU) of renal glomeruli may contribute to characteristic histopathological lesions found in the kidneys of patients with diabetic nephropathy. However, the mechanism by which the diabetic conditions may affect cell-ECM interactions is unknown. Existing hypotheses suggest a role of glucose in direct modification of ECM. Here, we have demonstrated that carbonyl compound methylglyoxal (MGO) completely inhibited endothelial cell adhesion to recombinant α3 noncollagenous 1 domain of type IV collagen mediated via a short collagenous region containing RGD (Arg-Gly-Asp) sequence as well as binding of purified αvβ3 integrin to this protein. Specific MGO adducts of the arginine residue were detected within RGD sequence using mass spectrometry. Modification by carbonyl compounds glyoxal or glycolaldehyde had similar but smaller effects. MGO strongly inhibited adhesion of renal glomerular cells, podocytes, and mesangial cells to native collagen IV and laminin-1 as well as binding of collagen IV to its major receptor in glomerular cells, α1β1 integrin. In contrast, modification of these proteins by glucose had no effect on cell adhesion. Pyridoxamine, a promising drug for treatment of diabetic nephropathy, protected cell adhesion and integrin binding from inhibition by MGO. We suggest that in diabetes, perturbation of integrin-mediated cell-matrix interactions occurs via the modification of critical arginine residues in renal ECM by reactive carbonyl compounds. This mechanism may contribute to the development of diabetic nephropathy. © 2005 by the American Diabetes Association.-
dc.languageeng-
dc.relation.ispartofDiabetes-
dc.titleMechanism of perturbation of integrin-mediated cell-matrix interactions by reactive carbonyl compounds and its implication for pathogenesis of diabetic nephropathy-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.2337/diabetes.54.10.2952-
dc.identifier.pmid16186398-
dc.identifier.scopuseid_2-s2.0-25844476029-
dc.identifier.volume54-
dc.identifier.issue10-
dc.identifier.spage2952-
dc.identifier.epage2960-
dc.identifier.isiWOS:000232237400017-
dc.identifier.issnl0012-1797-

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