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research article

Biomechanical forces promote embryonic haematopoiesis

Adamo, Luigi
•
Naveiras, Olaia
•
Wenzel, Pamela L.
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2009
Nature

Biomechanical forces are emerging as critical regulators of embryogenesis, particularly in the developing cardiovascular system. After initiation of the heartbeat in vertebrates, cells lining the ventral aspect of the dorsal aorta, the placental vessels, and the umbilical and vitelline arteries initiate expression of the transcription factor Runx1 (refs 3-5), a master regulator of haematopoiesis, and give rise to haematopoietic cells. It remains unknown whether the biomechanical forces imposed on the vascular wall at this developmental stage act as a determinant of haematopoietic potential. Here, using mouse embryonic stem cells differentiated in vitro, we show that fluid shear stress increases the expression of Runx1 in CD41(+)c-Kit(+) haematopoietic progenitor cells, concomitantly augmenting their haematopoietic colony-forming potential. Moreover, we find that shear stress increases haematopoietic colony-forming potential and expression of haematopoietic markers in the para-aortic splanchnopleura/aorta-gonads-mesonephros of mouse embryos and that abrogation of nitric oxide, a mediator of shear-stress-induced signalling, compromises haematopoietic potential in vitro and in vivo. Collectively, these data reveal a critical role for biomechanical forces in haematopoietic development.

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Type
research article
DOI
10.1038/nature08073
Author(s)
Adamo, Luigi
Naveiras, Olaia
Wenzel, Pamela L.
McKinney-Freeman, Shannon
Mack, Peter J.
Gracia-Sancho, Jorge
Suchy-Dicey, Astrid
Yoshimoto, Momoko
Lensch, M. William
Yoder, Mervin C.
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Date Issued

2009

Published in
Nature
Volume

459

Issue

7250

Start page

1131

End page

5

Subjects

Cell Differentiation

•

Stress

•

Mechanical

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GR-NAVEIRAS  
Available on Infoscience
March 24, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/102155
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