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Pentoxifylline reduces in vitro renal myofibroblast proliferation and collagen secretion.

作者信息

Hewitson T D, Martic M, Kelynack K J, Pedagogos E, Becker G J

机构信息

Department of Nephrology, Royal Melbourne Hospital, Melbourne, Australia.

出版信息

Am J Nephrol. 2000 Jan-Feb;20(1):82-8. doi: 10.1159/000013562.

Abstract

Interstitial myofibroblasts (MF) are cells with features of both smooth muscle cells and fibroblasts. They have been universally recognized in situations of tubulointerstitial injury, where their presence has been shown to be a marker of disease progression. The objective of this study was to determine if functions of MF relevant to fibrogenesis can be modified in vitro by the phosphodiesterase inhibitor pentoxifylline (PTX). MF were obtained from sub-culture of normal rat kidney explant outgrowths maintained in DMEM + 20% fetal calf serum (FCS), supplemented with antibiotics. Cells were characterized on the basis of growth characteristics and immunohistochemistry. MF constituted >95% of cells at passage 3. Cell culture media was supplemented with the potential antagonist PTX alone (0, 1, 10, 100 microg/ml) and in combination with TGFbeta(1) (5 ng/ml). Population kinetics, proliferation and collagen production were determined from cell growth, [(3)H]thymidine incorporation and [(3)H]proline incorporation in collagenous proteins, respectively. Both serum-stimulated population growth and proliferation were reduced in a linear fashion by 1, 10 and 100 microg/ml PTX (all p < 0.05 versus 0 microg/ml). Effect of PTX on cell population growth was however reversible when PTX was removed. Basal collagen secretion was decreased by PTX at 10 and 100 microg/ml (p < 0.05 versus 0 microg/ml although layer collagen remained unchanged. Collagen production (secreted and cell layer) was augmented by 5 ng/ml TGFbeta(1). These effects on collagen production were partially reduced when 100 microg/ml PTX was added. The authors conclude that myofibroblast function can be altered with agonists/antagonists. Attempts to down-regulate fibrogenic functions of MF may therefore offer a valuable therapeutic strategy.

摘要

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