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Published on: April 13, 2015
Ultrasound shear wave elasticity imaging quantifies coronary perfusion pressure effect on cardiac compliance
Insights
Diastolic heart failure is a leading cause of cardiac mortality. New ultrasound elastography (SWEI) shows stiffness changes in diastolic heart failure, correlating linearly with coronary perfusion pressure.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Medical Imaging
Background:
- Diastolic heart failure (DHF) significantly contributes to cardiac morbidity and mortality.
- Cardiac compliance changes are key indicators of DHF, yet no standard clinical method exists to evaluate it.
- Shear wave elasticity imaging (SWEI) is a novel ultrasound technique measuring tissue stiffness.
Purpose of the Study:
- To investigate the relationship between coronary perfusion pressure and cardiac stiffness during diastole using SWEI.
- To demonstrate how SWEI can reflect changes in cardiac stiffness due to altered coronary perfusion pressure.
Main Methods:
- Utilized eight Langendorff-perfused isolated rabbit hearts.
- Systematically varied coronary perfusion pressure (0-90 mmHg) in a randomized order.
- Recorded SWEI measurements of cardiac stiffness during diastole at each pressure level.
Main Results:
- A positive linear correlation was observed between coronary perfusion pressure and SWEI stiffness measurements (R² = 0.88).
- Shear modulus also showed a linear correlation with coronary perfusion pressure (R² = 0.83).
- The relationship between SWEI stiffness and coronary perfusion pressure was linear across the tested range.
Conclusions:
- Diastolic SWEI measurements can characterize factors influencing cardiac compliance.
- SWEI effectively quantifies the mechanical interaction between coronary perfusion pressure and cardiac muscle stiffness.
- This study establishes a linear relationship between diastolic cardiac stiffness and coronary perfusion pressure using SWEI.
Abstract:
Diastolic heart failure (DHF) is a major source of cardiac related morbidity and mortality in the world today. A major contributor to, or indicator of DHF is a change in cardiac compliance. Currently, there is no accepted clinical method to evaluate the compliance of cardiac tissue in diastolic dysfunction. Shear wave elasticity imaging (SWEI) is a novel ultrasound-based elastography technique that provides a measure of tissue stiffness. Coronary perfusion pressure affects cardiac stiffness during diastole; we sought to characterize the relationship between these two parameters using the SWEI technique. In this work, we demonstrate how changes in coronary perfusion pressure are reflected in a local SWEI measurement of stiffness during diastole. Eight Langendorff perfused isolated rabbit hearts were used in this study. Coronary perfusion pressure was changed in a randomized order (0-90 mmHg range) and SWEI measurements were recorded during diastole with each change. Coronary perfusion pressure and the SWEI measurement of stiffness had a positive linear correlation with the 95% confidence interval (CI) for the slope of 0.009-0.011 m/s/mmHg ( R(2) = 0.88 ). Furthermore, shear modulus was linearly correlated to the coronary perfusion pressure with the 95% CI of this slope of 0.035-0.042 kPa/mmHg ( R(2) = 0.83). In conclusion, diastolic SWEI measurements of stiffness can be used to characterize factors affecting cardiac compliance specifically the mechanical interaction (cross-talk) between perfusion pressure in the coronary vasculature and cardiac muscle. This relationship was found to be linear over the range of pressures tested.
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