Endothelial-derived microvesicles promote pro-migratory cross-talk with smooth muscle cells by a mechanism requiring

Sophie J Featherby1, Camille Ettelaie1

  • 1Biomedical Section, Hull-York Medical School, Hull, United Kingdom.

Abstract

Insights

Endothelial cells release microvesicles containing tissue factor (TF) that promote smooth muscle cell (SMC) migration. Phosphorylated TF and factor VIIa in microvesicles, acting via PAR2, are key to this process and arterial health.

Area of Science:

  • Vascular Biology and Cell Signaling
  • Biochemistry and Molecular Biology

Background:

  • Endothelial cells (EC) release microvesicles (MV) carrying tissue factor (TF) that influence underlying smooth muscle cells (SMC).
  • Serine 253-phosphorylated TF (TFAsp253) is found with filamin A in migrating SMC, suggesting a role in cell movement.

Purpose of the Study:

  • To investigate the impact of endothelial-derived TF-MV on human coronary artery SMC (HCASMC) migration.
  • To elucidate the specific mechanisms involving TF phosphorylation, factor VIIa (fVIIa), and PAR2 signaling in HCASMC migration.

Main Methods:

  • HCASMC migration assays were performed using TF-expressing EC-derived MV (TFWt-MV and TFAsp253-MV).
  • Experiments involved blocking TF-fVIIa activity, inhibiting PAR2 signaling, and transfecting HCASMC with TF cytoplasmic domain peptides or mutant filamin A.
  • Changes in Smoothelin-B protein and FAK expression were analyzed.

Main Results:

  • TFWt-MV accelerated HCASMC migration, while TFAsp253-MV reduced it.
  • TF-fVIIa procoagulant activity and PAR2 signaling were essential for accelerated migration.
  • Phosphorylation at Ser253 of TF cytoplasmic peptides suppressed migration; filamin A repeat-24 was crucial for TF-mediated migration enhancement.

Conclusions:

  • Endothelial-derived Ser253-phosphorylated TF and fVIIa within MV promote HCASMC migration via PAR2 signaling.
  • This pathway is vital for maintaining arterial homeostasis and potentially implicated in vascular disease development.

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