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Longitudinal movements and resulting shear strain of the arterial wall
Magnus Cinthio1, Asa Rydén Ahlgren, Jonas Bergkvist
1Department of Electrical Measurements, Lund Institute of Technology, Lund University, Lund, Sweden. magnus.cinthio@elmat.lth.se
Insights
Arterial walls exhibit significant longitudinal movement, contrary to prior assumptions. This bidirectional motion, observed in common carotid arteries, is crucial for understanding vascular biology and diseases like atherosclerosis.
Area of Science:
- Biomedical Engineering
- Cardiovascular Physiology
- Medical Imaging
Background:
- Longitudinal arterial wall movement has been largely overlooked, presumed negligible compared to diameter changes.
- Previous studies lacked methods to accurately measure subtle arterial wall dynamics.
Purpose of the Study:
- To investigate and quantify the longitudinal movements of the arterial wall using a novel ultrasonic technique.
- To compare longitudinal motion with diameter changes in human common carotid arteries.
Main Methods:
- Employed a high-resolution, noninvasive ultrasonic method to measure intima-media complex and adventitial region movements.
- Monitored longitudinal motion and diameter changes throughout the cardiac cycle in 10 healthy subjects.
Main Results:
- Observed distinct bidirectional longitudinal movements in the intima-media complex (antegrade, retrograde, antegrade phases).
- Measured significant diameter changes (0.65 mm) and longitudinal movements (e.g., -0.52 mm retrograde).
- Identified shear strain and stress within the arterial wall due to differential movement between layers.
Conclusions:
- Longitudinal arterial wall motion is a significant phenomenon, not negligible, and bidirectional.
- These findings necessitate re-evaluation of vascular mechanics, hemodynamics, and disease models like atherosclerosis.
- The novel ultrasonic method provides critical insights into vascular biology and disease.
Abstract:
There has been little interest in the longitudinal movement of the arterial wall. It has been assumed that this movement is negligible compared with the diameter change. Using a new high-resolution noninvasive ultrasonic method, we measured longitudinal movements and diameter change of the common carotid artery of 10 healthy humans. During the cardiac cycle, a distinct bidirectional longitudinal movement of the intima-media complex could be observed in all the subjects. An antegrade longitudinal movement, i.e., in the direction of blood flow, in early systole [0.39 mm (SD 0.26)] was followed by a retrograde longitudinal movement, i.e., in the direction opposite blood flow [-0.52 mm (SD 0.27)], later in systole and a second antegrade longitudinal movement [0.41 mm (SD 0.33)] in diastole. The corresponding diameter change was 0.65 mm (SD 0.19). The adventitial region showed the same basic pattern of longitudinal movement; however, the magnitude of the movements was smaller than that of the intima-media complex, thereby introducing shear strain and, thus, shear stress within the wall [maximum shear strain between the intima-media complex and the adventitial region was 0.36 rad (SD 0.26). These phenomena have not previously been described. Measurements were also performed on the abdominal aorta (n = 3) and brachial (n = 3) and popliteal (n = 3) arteries. Our new information seems to be of fundamental importance for further study and evaluation of vascular biology and hemodynamics and, thus, for study of atherosclerosis and vascular diseases.
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