A New Computerized Biomechanical Perfusion Model for ex vivo Study of Fluid Mechanical Forces in Intact Conduit Vessels
- 1 February 1999
- journal article
- Published by S. Karger AG in Journal of Vascular Research
- Vol. 36 (1) , 68-78
- https://doi.org/10.1159/000025627
Abstract
We have developed a new computerized biomechanical ex vivo perfusion system for intact conduit vessels in which a wide range of combinations of intraluminal pressure, fluid flow and shear stress could be set and maintained at target levels in mammalian conduit vessels under controlled metabolic conditions. Mean wall shear stress is calculated using the formula:τ = 1/2 * (ΔP/L)3/4 * (8ηQ/Π)1/4.Accuracy of the wall shear stress calculation was validated by ultrasonographic imaging of the vessel radius. In a series of simulation experiments, the hemodynamic homeostasis functions of the system were challenged by generating a wide range of vascular resistance in artificial vessels and by pharmacologically induced changes in vascular tone in intact human vessels. Despite rapid changes in vessel resistance, shear stress and pressure, or flow and pressure were maintained well at target levels. Shear- and pressure-stimulated production of the vasodilator prostaglandin E2 (PGE2) was used to validate the biological relevance of the model. PGE2 release was significantly more stimulated by high (25 dyn/cm2) compared to low (<4 dyn/cm2) shear (ANOVA, p = 0.012). High compared to low intraluminal pressure depressed the production of PGE2 (ANOVA, p = 0.019). In summary, the computerized perfusion model appears to offer new possibilities of investigating the complex interplay between fluid mechanics and the vascular wall.Keywords
This publication has 2 references indexed in Scilit:
- Influence of pressure, flow rate, and pulsatility on release of 6-keto-PGF and thromboxane B in ex vivo[mdash ]perfused canine veinsJournal of Vascular Surgery, 1988
- Apparatus for subjecting living cells to fluid shear stressReview of Scientific Instruments, 1982