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PMID: 8620594 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Intracellular pH and tyrosine phosphorylation but not calcium determine shear stress-induced nitric oxide production in native endothelial cells.

Circulation research ·Vol. 78 ·No. 5 ·1996-05-00 ·Pages 750-8

Ayajiki K, Kindermann M, Hecker M, Fleming I, Busse R

Abstract

Signalling pathways determining the shear stress-induced production of NO from endothelial cells in situ were investigated using a bioassay system in which shear stress was increased by inducing vasoconstriction in an endothelium-intact donor segment (rabbit iliac artery) while maintaining a constant luminal perfusion rate. Shear stress-induced NO production, as assessed by changes in the tone of a preconstricted endothelium-denuded detector ring, was biphasic and consisted of an initial transient (20- to 25-minute) Ca(2+)-dependent phase followed by a Ca(2+)-independent plateau phase, which was maintained as long as the donor segment remained constricted. Stretching the donor segments to their in vivo length abolished the initial phase without affecting the plateau phase of NO release. Inhibition of the Na(+)-H+ exchanger using HOE 694 elicited an intracellular acidification which attenuated shear stress-induced NO production. The specific protein kinase C inhibitor, Ro 31-8220, was without effect, whereas the unspecific inhibitors, staurosporine and calphostin C, abolished the shear stress-induced production of NO. Erbstatin A, a tyrosine kinase inhibitor, attenuated the shear stress-induced tyrosine phosphorylation of specific cellular proteins and abrogated the associated NO production. In summary, these data indicate that shear stress activates the NO synthase at basal levels of [Ca2+]i via a mechanotransduction cascade that involves tyrosine phosphorylation and can be modulated by changes in pHi. The apparent fundamental alteration of the endothelial NO synthase under shear stress that renders its maintained activation independent of an increase in [Ca2+]i is probably the consequence of a change in the enzyme microenvironment.

MeSH Terms
Animals Calcium/physiology Cells, Cultured Endothelium, Vascular/cytology,metabolism Extracellular Space/metabolism Female Humans Hydrogen/metabolism Hydrogen-Ion Concentration Hydroquinones/pharmacology Intracellular Membranes/metabolism Male Nitric Oxide/biosynthesis Phosphorylation/drug effects Protein Kinase C/antagonists & inhibitors Protein-Tyrosine Kinases/antagonists & inhibitors Rabbits Sodium-Hydrogen Exchangers/metabolism Stress, Mechanical Swine Tyrosine/metabolism
Chemicals
Hydroquinones Sodium-Hydrogen Exchangers Nitric Oxide Tyrosine Hydrogen Protein-Tyrosine Kinases Protein Kinase C Calcium erbstatin
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Ayajiki K
Zentrum der Physiologie, Klinikum der J.W. Goethe-Universität, Frankfurt/Main, Germany.
Kindermann M
Hecker M
Fleming I
Busse R
Article Info
Journal
Circulation research
Abbr.
Circ Res
ISSN
0009-7330
Published
1996-05-00
Pages
750-8
Language
English
Region
United States
NLM ID
0047103
Subset
IM
Corrections
CommentIn
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