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Published on: October 4, 2014
Hemodynamic Parameters and Early Intimal Thickening in Branching Blood Vessels
Clement Kleinstreuer1, Sinjae Hyun1, J R Buchanan1
1Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, NC 27695-7910.
Insights
Hemodynamic wall parameters can identify blood vessel sites prone to intimal thickening, a key factor in heart disease. Analyzing and redesigning these vessel geometries may reduce restenosis and improve blood flow.
Area of Science:
- Cardiovascular Science
- Biomedical Engineering
- Fluid Dynamics
Background:
- Intimal thickening in blood vessels contributes significantly to heart disease.
- Current treatments for occluded vessels include angioplasty, bypass surgery, and endarterectomy.
- Disturbed blood flow patterns are implicated in the development and progression of atherosclerosis and intimal hyperplasia.
Purpose of the Study:
- To analyze hemodynamic wall parameters that indicate sites susceptible to intimal thickening.
- To interpret clinical and experimental observations of intimal thickening using these parameters.
- To explore vessel redesign strategies for improved long-term patency.
Main Methods:
- Analysis of internal branching blood vessel geometries using hemodynamic parameters.
- Comparison of time-averaged wall shear stress (WSS), WSS gradient (WSSG), oscillatory shear index (OSI), and WSS angle gradient (WSSAG) with experimental data.
- Segmental averaging of OSI, wall particle density (WPD), and WSSAG for carotid artery bifurcations and comparison with clinical data.
Main Results:
- Identification of susceptible sites in branching blood vessels.
- Comparison of hemodynamic parameters with experimental and clinical data for aortoceliac junction and carotid artery bifurcations.
- Demonstration that suggested redesigns can reduce hemodynamic parameters like WSSG, WSSAG, and normal pressure gradient (NPG).
Conclusions:
- Hemodynamic wall parameters serve as indicators for intimal thickening.
- Vessel redesign based on these parameters can reduce the likelihood of restenosis, particularly in critical regions like the toe region of vascular access grafts.
Abstract:
Intimal thickening due to atherosclerotic lesions or intimal hyperplasia in medium to large blood vessels is a major contributor to heart disease, the leading cause of death in the Western World. Balloon angioplasty with stenting, bypass surgery, and endarterectomy (with or without patch reconstruction) are some of the techniques currently applied to occluded blood vessels. On the basis of the preponderance of clinical evidence that disturbed flow patterns play a key role in the onset and progression of atherosclerosis and intimal hyperplasia, it is of interest to analyze suitable hemodynamic wall parameters that indicate susceptible sites of intimal thickening and/or favorable conditions for thrombi formation. These parameters, based on the wall shear stress, wall pressure, or particle deposition, are applied to interpret experimental/clinical observations of intimal thickening. Utilizing the parameters as "indicator" functions, internal branching blood vessel geometries are analyzed and possibly altered for different purposes: early detection of possibly highly stenosed vessel segments, prediction of future disease progression, and vessel redesign to potentially improve long-term patency rates. At the present time, the focus is on the identification of susceptible sites in branching blood vessels and their subsequent redesign, employing hemodynamic wall parameters. Specifically, the time-averaged wall shear stress (WSS), its spatial gradient (WSSG), the oscillatory shear index (OSI), and the wall shear stress angle gradient (WSSAG) are compared with experimental data for an aortoceliac junction. Then, the OSI, wall particle density (WPD), and WSSAG are segmentally averaged for different carotid artery bifurcations and compared with clinical data of intimal thickening. The third branching blood vessel under consideration is the graft-to-vein anastomosis of a vascular access graft Suggested redesigns reduce several hemodynamic parameters (i.e., the WSSG, WSSAG, and normal pressure gradient [NPG]), thereby reducing the likelihood of restenosis, especially near the critical toe region.
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