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NDT Advance Access published online on May 6, 2009

Nephrology Dialysis Transplantation, doi:10.1093/ndt/gfp204
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© The Author [2009]. Published by Oxford University Press on behalf of ERA-EDTA. All rights reserved. For Permissions, please e-mail: journals.permissions@oxfordjournals.org



Mechanical forces and TGFβ1 reduce podocyte adhesion through {alpha}3β1 integrin downregulation

Cecile Dessapt1, Marc Olivier Baradez2, Anthea Hayward1, Alessandra Dei Cas1, Stephen M. Thomas1, Giancarlo Viberti1 and Luigi Gnudi1

1 Cardiovascular Division, School of Medicine, King's College London, London 2 School of Life Science, Kingston University, Kingston-upon-Thames, UK

Correspondence and offprint requests to: Luigi Gnudi; E-mail: luigi.gnudi{at}kcl.ac.uk



  Abstract

Background. Podocyturia is a marker of diabetic nephr- opathy, a possible determinant of its progression and a powerful risk factor for cardiovascular disease. A reduction in podocyte adhesion to the glomerular basement membrane (GBM) via downregulation of {alpha}3β1 integrin expression, the main podocyte anchoring dimer to the GBM, may represent one of the mechanisms of podocyturia in glomerular disease. This study investigated the role of mechanical forces and transforming growth factor beta1 (TGFβ1) in podocyte adhesion and integrin expression.

Methods. Conditionally immortalized murine podocytes were exposed to mechanical stretch and/or TGFβ1 for 48 h. Podocyte adhesion, apoptosis and {alpha}3β1 integrin expression were assessed.

Results. Stretch and TGFβ1 significantly reduced podocyte adhesion and {alpha}3β1 integrin expression, events paralleled by increased apoptosis. Blockade of β1 integrin, with a specific antibody, demonstrated a reduced podocyte adhesion indicating that β1 integrin downregulation was required for the loss of podocyte adhesion. This was linked to an increase in podocyte apoptosis. The role of apoptosis in podocyte adhesion was further investigated using caspase-3 inhibitors. Podocyte apoptosis inhibition did not affect stretch- and TGFβ1-mediated integrin downregulation and the loss of podocyte adhesion, suggesting that {alpha}3β1 integrin downregulation is sufficient to alter cell adhesion. Although stretch significantly increased podocyte TGFβ type I, II and III receptors but not podocyte TGFβ1 secretion, the combination of stretch and TGFβ1 did not show any additive or synergistic effects on podocyte adhesion and {alpha}3β1 integrin expression.

Conclusions. These results suggest that downregulation of {alpha}3β1 integrin expression, by mechanical forces or TGFβ1, is per se sufficient to reduce podocyte adhesion. Apoptosis may represent a parallel important determinant of the podocyte loss from the GBM.

Keywords: cell adhesion; podocyte; stretch; TGFβ1; {alpha}3β1 integrin

Received for publication: 29. 3.08
Accepted in revised form: 10. 4.09


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