Sandbox Reserved 1653: Difference between revisions

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==='''Vascularisation: detection of shearing forces'''===
==='''Vascularisation: detection of shearing forces'''===


Piezo1 plays a critical role in the formation of blood vessels. Indeed, fluid flow induces a frictional force, and this shear stress activates the piezo1 channels located in endothelial cells’ membranes. It results in an alignment process, leading to a healthy vascular development. The entry of Ca2+ is the  
Piezo1 plays a critical role in the formation of blood vessels. Indeed, fluid flow induces a frictional force, and this shear stress activates the piezo1 channels located in endothelial cells’ membranes. It results in an alignment process, leading to healthy vascular development. The entry of Ca2+ is the key to the process. The shear stress-enhanced Ca2+ entry through piezo1 channels is coupled with [[calpain]] activation. From this association steams proteolytic cleavage of cytoskeletal [[actin]] and focal [[adhesion proteins]], which induces endothelial cell organisation and alignment.
key to process. The shear stress-enhanced Ca2+ entry through piezo1 channels is coupled with calpain activation. From this association steams proteolytic cleavage of actin cytoskeletal and focal adhesion proteins, which induces endothelial cell organisation and alignment.
A deficit in Piezo1’s expression can lead to a cobblestone-like appearance of endothelial cells’ organisation, instead of its standard linear appearance.
A deficit in Piezo1’s expression can lead to cobblestone-like appearance of endothelial cells’ organisation, instead of its standard linear appearance.
The subcellular localisation of piezo1 is also determining. In static conditions, its repartition is even on the membrane, but when a mechanical stimulus arises, piezo1 accumulates at the cell’s apical. This process characterises endothelial cells’ alignment toward frictional force.
The subcellular localisation of piezo1 is also determining. In static conditions, its repartition is even on the membrane, but when a mechanical stimulus arises, piezo1 accumulates at the cell’s apical. This process characterises endothelial cells’ alignment toward frictional force.
However, piezo1 is also able to drive endothelial cell migration without shear stress, through endothelial nitric oxide synthase, a protein with major  
However, piezo1 is also able to drive endothelial cell migration without shear stress, through endothelial [[nitric oxide synthase]], a protein with major roles in vascular biology. <ref name= "vascularisation"> DOI 10.1038/nature13701</ref>
roles in vascular biology. <ref name= "vascularisation"> DOI 10.1038/nature13701</ref>





Revision as of 22:23, 9 January 2021

Piezo 1

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References