Tgfβ/Alk5 signaling is required for shear stress induced klf2 expression in embryonic endothelial cells

Journal Article (2011)
Author(s)

A.D. Egorova (Leiden University Medical Center)

K. Van der Heiden (Leiden University Medical Center)

Simone Van de Pas (Leiden University Medical Center)

P. Vennemann (TU Delft - Fluid Mechanics)

C. Poelma (TU Delft - Process and Energy)

M.C. DeRuiter (Leiden University Medical Center)

M.-J.T.H. Goumans (Leiden University Medical Center)

A.C. Gittenberger-de Groot (Leiden University Medical Center)

P. ten Dijke (Leiden University Medical Center)

R.E. Poelmann (Leiden University Medical Center)

B.P. Hierck (Leiden University Medical Center)

Department
Process and Energy
DOI related publication
https://doi.org/10.1002/dvdy.22660 Final published version
More Info
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Publication Year
2011
Language
English
Department
Process and Energy
Journal title
Developmental Dynamics
Issue number
7
Volume number
240
Pages (from-to)
1670-1680
Downloads counter
10

Abstract

Endothelial cells (EC) translate biomechanical forces into functional and phenotypic responses that play important roles in cardiac development. Specifically, EC in areas of high shear stress, i.e., in the cardiac outflow tract and atrioventricular canal, are characterized by high expression of Krüppel-like factor 2 (Klf2) and by transforming growth factor-beta (Tgfβ)-driven endothelial-to-mesenchymal transition. Extraembryonic venous obstruction (venous clip model) results in congenital heart malformations, and venous clip-induced alterations in shear stress-related gene expression are suggestive for an increase in cardiac shear stress. Here, we study the effects of shear stress on Klf2 expression and Tgfβ-associated signaling in embryonic EC in vivo using the venous clip model and in vitro by subjecting cultured EC to fluid flow. Cellular responses were assessed by analysis of Klf2, Tgfβ ligands, and their downstream signaling targets. Results show that, in embryonic EC, shear stress activates Tgfβ/Alk5 signaling and that induction of Klf2 is an Alk5 dependent process.