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PMID: 29522755 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Video-Audio Media

Influence of microvascular sutures on shear strain rate in realistic pulsatile flow.

Microvascular research ·Vol. 118 ·2018-00-00 ·页码 69-81

Wain RAJ, Smith DJ, Hammond DR, Whitty JPM

Abstract

Arterial thrombus formation is directly related to the mechanical shear experienced by platelets within flow. High shear strain rates (SSRs) and large shear gradients cause platelet activation, aggregation and production of thrombus. This study, for the first time, investigates the influence of pulsatile flow on local haemodynamics within sutured microarterial anastomoses. We measured physiological arterial waveform velocities experimentally using Doppler ultrasound velocimetry, and a representative example was applied to a realistic sutured microarterial geometry. Computational geometries were created using measurements taken from sutured chicken femoral arteries. Arterial SSRs were predicted using computational fluid dynamics (CFD) software, to indicate the potential for platelet activation, deposition and thrombus formation. Predictions of steady and sinusoidal inputs were compared to analyse whether the addition of physiological pulse characteristics affects local intravascular flow characteristics. Simulations were designed to evaluate flow in pristine and hand-sutured microarterial anastomoses, each with a steady-state and sinusoidal pulse component. The presence of sutures increased SSRmax in the anastomotic region by factors of 2.1 and 2.3 in steady-state and pulsatile flows respectively, when compared to a pristine vessel. SSR values seen in these simulations are analogous to the presence of moderate arterial stenosis. Steady-state simulations, driven by a constant inflow velocity equal to the peak systolic velocity (PSV) of the measured pulsatile flow, underestimated SSRs by ∼ 9% in pristine, and ∼ 19% in sutured vessels compared with a realistic pulse. Sinusoidal flows, with equivalent frequency and amplitude to a measured arterial waveform, represent a slight improvement on steady-state simulations, but still SSRs are underestimated by 1-2%. We recommend using a measured arterial waveform, of the form presented here, for simulating pulsatile flows in vessels of this nature. Under realistic pulsatile flow, shear gradients across microvascular sutures are high, of the order ∼ 7.9 × 106 m-1 s-1, which may also be associated with activation of platelets and formation of aggregates.

Keywords
Anastomosis Computational Fluid Dynamics (CFD) Microvascular Pulsatile Shear strain rate Sutures
MeSH 主题词
Anastomosis, Surgical Animals Arterial Occlusive Diseases/blood,diagnostic imaging,etiology,physiopathology Blood Flow Velocity Chickens Computer Simulation Female Femoral Artery/diagnostic imaging,physiopathology,surgery Humans Hydrodynamics Laser-Doppler Flowmetry Models, Cardiovascular Platelet Aggregation Pulsatile Flow Regional Blood Flow Risk Factors Stress, Mechanical Suture Techniques/adverse effects,instrumentation Sutures/adverse effects Thrombosis/blood,diagnostic imaging,etiology,physiopathology Time Factors
作者与单位
共 4 位作者,点击展开单位 / ORCID
Wain R A J
School of Mathematics, University of Birmingham, B15 2TT, UK; Institute of Translational Medicine, University of Birmingham, B15 2TT, UK; School of Medicine and Dentistry, University of Central Lancashire, Preston PR1 2HE, UK; Computational Mechanics Research Group, School of Engineering, University of Central Lancashire, Preston PR1 2HE, UK. Electronic address: [email protected].
Smith D J
School of Mathematics, University of Birmingham, B15 2TT, UK; Institute for Metabolism and Systems Research, University of Birmingham, B15 2TT, UK.
Hammond D R
School of Medicine and Dentistry, University of Central Lancashire, Preston PR1 2HE, UK.
Whitty J P M
Computational Mechanics Research Group, School of Engineering, University of Central Lancashire, Preston PR1 2HE, UK.
Article Info
Journal
Microvascular research
Abbr.
Microvasc Res
ISSN
1095-9319
Corresponding email
Published
2018-00-00
电子出版
2018-00-06
页码
69-81
Language
English
Country/Region
United States
NLM ID
0165035
基金资助
Biotechnology and Biological Sciences Research Council · BB/M025888/1 · United Kingdom
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