Thrombin-thrombomodulin inhibits prourokinase-mediated pleural mesothelial cell-dependent fibrinolysis

A V Iakhiaev1, A Nalian, K Koenig

  • 1The Texas Lung Injury Institute, The University of Texas Health Center at Tyler 11937 US HWY 271 Tyler, TX 75708, USA. alexei.iakhiaev@uthct.edu

Thrombosis Research
|February 6, 2007
PubMed

Insights

Pleural mesothelial cells regulate fibrinolysis by processing single-chain urokinase (scuPA). Thrombin cleaves scuPA, inhibiting fibrinolysis and contributing to pleural injury and loculation.

Area of Science:

  • Pleural biology
  • Fibrinolysis
  • Cellular signaling

Background:

  • Fibrin deposition is key in pleural inflammation and loculation.
  • Mechanisms of mesothelial cell regulation of intrapleural fibrinolysins are not fully understood.

Purpose of the Study:

  • To investigate how pleural mesothelial cells regulate local fibrinolytic capacity.
  • To determine the role of single-chain urokinase (scuPA) processing by mesothelial cells.

Main Methods:

  • Human pleural mesothelial (MeT-5A) cells were pretreated with TGF-beta or thrombin.
  • Urokinase (uPA)-mediated fibrinolysis was assessed.
  • Molecular dynamics analyses were performed on thrombin-cleaved scuPA (uPAt).
  • uPAt levels were measured in patient effusions and rabbit models.

Main Results:

  • Thrombin, but not TGF-beta, inhibited uPA-mediated fibrinolysis without increasing PAI-1.
  • Thrombin directly cleaves scuPA, and thrombomodulin accelerates this process.
  • Thrombin-cleaved scuPA (uPAt) is catalytically inactive due to conformational changes.
  • uPAt was detected in human pleural effusions and induced in rabbit models of pleural injury.

Conclusions:

  • Thrombin-mediated cleavage of scuPA by mesothelial cells limits fibrinolytic capacity.
  • This pathway contributes to fibrin deposition and loculation in pleural injury.
  • The processing of scuPA by mesothelial cells is a key regulator of intrapleural fibrinolysis.

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