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The endothelial glycocalyx prefers albumin for evoking shear stress-induced, nitric oxide-mediated coronary dilatation.
- Source :
-
Journal of vascular research [J Vasc Res] 2007; Vol. 44 (6), pp. 435-43. Date of Electronic Publication: 2007 Jul 02. - Publication Year :
- 2007
-
Abstract
- Background: Shear stress induces coronary dilatation via production of nitric oxide (NO). This should involve the endothelial glycocalyx (EG). A greater effect was expected of albumin versus hydroxyethyl starch (HES) perfusion, because albumin seals coronary leaks more effectively than HES in an EG-dependent way.<br />Methods: Isolated hearts (guinea pigs) were perfused at constant pressure with Krebs-Henseleit buffer augmented with 1/3 volume 5% human albumin or 6% HES (200/0.5 or 450/0.7). Coronary flow was also determined after EG digestion (heparinase) and with nitro-L-arginine (NO-L-Ag).<br />Results: Coronary flow (9.50 +/- 1.09, 5.10 +/- 0.49, 4.87 +/- 1.19 and 4.15 +/- 0.09 ml/min/g for 'albumin', 'HES 200', 'HES 450' and 'control', respectively, n = 5-6) did not correlate with perfusate viscosity (0.83, 1.02, 1.24 and 0.77 cP, respectively). NO-L-Ag and heparinase diminished dilatation by albumin, but not additively. Alone NO-L-Ag suppressed coronary flow during infusion of HES 450. Electron microscopy revealed a coronary EG of 300 nm, reduced to 20 nm after heparinase. Cultured endothelial cells possessed an EG of 20 nm to begin with.<br />Conclusions: Albumin induces greater endothelial shear stress than HES, despite lower viscosity, provided the EG contains negative groups. HES 450 causes some NO-mediated dilatation via even a rudimentary EG. Cultured endothelial cells express only a rudimentary glycocalyx, limiting their usefulness as a model system.<br /> (Copyright 2007 S. Karger AG, Basel.)
- Subjects :
- Animals
Cells, Cultured
Colloids
Coronary Vessels drug effects
Coronary Vessels ultrastructure
Endothelium, Vascular drug effects
Endothelium, Vascular ultrastructure
Enzyme Inhibitors pharmacology
Glycocalyx ultrastructure
Guinea Pigs
Hemorheology
Heparin Lyase metabolism
Humans
Hydroxyethyl Starch Derivatives chemistry
In Vitro Techniques
Nitric Oxide Synthase antagonists & inhibitors
Nitric Oxide Synthase metabolism
Nitroarginine pharmacology
Perfusion
Plasma Substitutes chemistry
Serum Albumin chemistry
Stress, Mechanical
Time Factors
Umbilical Veins metabolism
Viscosity
Coronary Circulation drug effects
Coronary Vessels metabolism
Endothelium, Vascular metabolism
Glycocalyx metabolism
Hydroxyethyl Starch Derivatives metabolism
Nitric Oxide metabolism
Plasma Substitutes metabolism
Serum Albumin metabolism
Vasodilation drug effects
Subjects
Details
- Language :
- English
- ISSN :
- 1423-0135
- Volume :
- 44
- Issue :
- 6
- Database :
- MEDLINE
- Journal :
- Journal of vascular research
- Publication Type :
- Academic Journal
- Accession number :
- 17622736
- Full Text :
- https://doi.org/10.1159/000104871