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PMID: 26443647 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Simultaneous imaging of blood flow dynamics and vascular remodelling during development.

Development (Cambridge, England) ·Vol. 142 ·No. 23 ·2015-12-01 ·页码 4158-67

Ghaffari S, Leask RL, Jones EA

Abstract

Normal vascular development requires blood flow. Time-lapse imaging techniques have revolutionised our understanding of developmental biology, but measuring changes in blood flow dynamics has met with limited success. Ultrasound biomicroscopy and optical coherence tomography can concurrently image vascular structure and blood flow velocity, but these techniques lack the resolution to accurately calculate fluid forces such as shear stress. This is important because hemodynamic forces are biologically active and induce changes in the expression of genes important for vascular development. Regional variations in shear stress, rather than the overall level, control processes such as vessel enlargement and regression during vascular remodelling. We present a technique to concurrently visualise vascular remodelling and blood flow dynamics. We use an avian embryonic model and inject an endothelial-specific dye and fluorescent microspheres. The motion of the microspheres is captured with a high-speed camera and the velocity of the blood flow in and out of the region of interest is quantified by micro-particle image velocitymetry (µPIV). The vessel geometry and flow are used to numerically solve the flow physics with computational fluid dynamics (CFD). Using this technique, we can analyse changes in shear stress, pressure drops and blood flow velocities over a period of 10 to 16 h. We apply this to study the relationship between shear stress and chronic changes in vessel diameter during embryonic development, both in normal development and after TGFβ stimulation. This technique allows us to study the interaction of biomolecular and biomechanical signals during vascular remodelling using an in vivo developmental model.

Keywords
Angiogenesis Arteriogenesis Computational fluid dynamics Hemodynamics Micro-particle image velocimetry Time-lapse microscopy
MeSH 主题词
Animals Biomechanical Phenomena Blood Flow Velocity/physiology Computer Simulation Coturnix Hematocrit Hemodynamics/physiology Microspheres Models, Cardiovascular Rheology Shear Strength Stress, Mechanical Time Factors Transforming Growth Factor beta/metabolism Vascular Remodeling/physiology
化学物质
Transforming Growth Factor beta
作者与单位
共 3 位作者,点击展开单位 / ORCID
Ghaffari Siavash
Lady Davis Institute for Medical Research, McGill University, 3755 Chemin de la Côte-Ste-Catherine, Montréal, Quebec H3T 1E2, Canada Department of Chemical Engineering, McGill University, 3610 University Street, Montréal, Quebec H3A 0C5, Canada.
Leask Richard L
Department of Chemical Engineering, McGill University, 3610 University Street, Montréal, Quebec H3A 0C5, Canada.
Jones Elizabeth A V
Lady Davis Institute for Medical Research, McGill University, 3755 Chemin de la Côte-Ste-Catherine, Montréal, Quebec H3T 1E2, Canada Department of Chemical Engineering, McGill University, 3610 University Street, Montréal, Quebec H3A 0C5, Canada Department of Cardiovascular Science, KU Leuven, UZ Herestraat 49, Box 911, Leuven 3000, Belgium [email protected].
Article Info
Journal
Development (Cambridge, England)
Abbr.
Development
ISSN
1477-9129
Corresponding email
Published
2015-12-01
电子出版
2015-00-06
页码
4158-67
Language
English
Country/Region
England
NLM ID
8701744
基金资助
Canadian Institutes of Health Research · MOP-119292 · Canada
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