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  4. Propagation of fast and slow intercellular Ca2+ waves in primary cultured arterial smooth muscle cells
 
research article

Propagation of fast and slow intercellular Ca2+ waves in primary cultured arterial smooth muscle cells

Halidi, Nadia  
•
Boittin, Francois-Xavier
•
Beny, Jean-Louis  
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2011
Cell Calcium

Smooth muscle contraction is regulated by changes in cytosolic Ca2+ concentration (Ca2+). In response to stimulation, Ca2+ increase in a single cell can propagate to neighbouring cells through gap junctions, as intercellular Ca2+ waves. To investigate the mechanisms underlying Ca2+ wave propagation between smooth muscle cells, we used primary cultured rat mesenteric smooth muscle cells (pSMCs). Cells were aligned with the microcontact printing technique and a single pSMC was locally stimulated by mechanical stimulation or by microejection of KCl. Mechanical stimulation evoked two distinct Ca2+ waves: (1) a fast wave (2 mm/s) that propagated to all neighbouring cells, and (2) a slow wave (20 mu m/s) that was spatially limited in propagation. KCl induced only fast Ca2+ waves of the same velocity as the mechanically induced fast waves. Inhibition of gap junctions, voltage-operated calcium channels, inositol 1,4,5-trisphosphate (IP3) and ryanodine receptors, shows that the fast wave was due to gap junction mediated membrane depolarization and subsequent Ca2+ influx through voltage-operated Ca2+ channels, whereas, the slow wave was due to Ca2+ release primarily through IP3 receptors. Altogether, these results indicate that temporally and spatially distinct mechanisms allow intercellular communication between SMCs. In intact arteries this may allow fine tuning of vessel tone. (C) 2011 Elsevier Ltd. All rights reserved.

  • Details
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Type
research article
DOI
10.1016/j.ceca.2011.08.001
Web of Science ID

WOS:000297038300006

Author(s)
Halidi, Nadia  
Boittin, Francois-Xavier
Beny, Jean-Louis  
Meister, Jean-Jacques  
Date Issued

2011

Published in
Cell Calcium
Volume

50

Start page

459

End page

467

Subjects

Calcium waves

•

Intercellular communication

•

Smooth muscle cells

•

Rat Basilar Artery

•

Calcium Waves

•

Inositol 1,4,5-Trisphosphate

•

Ryanodine Receptor

•

Guinea-Pig

•

Mechanical Stimulation

•

Intracellular Calcium

•

Mesenteric-Artery

•

Channel Currents

•

Epithelial-Cells

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LCB  
Available on Infoscience
December 16, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/73275
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