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Published on: February 13, 2021
Hemodynamic energy dissipation in the cardiovascular system: generalized theoretical analysis on disease states
Lakshmi P Dasi1, Kerem Pekkan, Diane de Zelicourt
1Wallace H. Coulter School of Biomedical Engineering, Georgia Institute of Technology and Emory University, Room 2119, U. A. Whitaker Building, 313 Ferst Drive, Atlanta, GA 30332-0535, USA.
Insights
A new theoretical framework quantifies energy dissipation in circulation. New indices like CEDI, AV-EDI, and TCPC-EDI allow precise hemodynamic evaluation of vascular diseases and surgical connections.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Theoretical Physics
Background:
- A fundamental theoretical framework for analyzing energy dissipation in the circulatory system is presented.
- The full energy budget for venous and arterial circulations is formulated.
- New indices enable disease-specific comparisons and hemodynamic evaluation of vascular diseases.
Purpose of the Study:
- To develop a theoretical framework for energy dissipation analysis in the human circulation.
- To formulate a comprehensive energy budget for both venous and arterial circulations.
- To introduce new indices for quantifying hemodynamic severity and comparing disease states.
Main Methods:
- Dimensional analysis of energy dissipation rate in human circulation.
- Formulation of a complete energy budget for the circulatory system.
- Development and application of novel indices: Circulation Energy Dissipation Index (CEDI), Aortic Valve Energy Dissipation Index (AV-EDI), and Total Cavopulmonary Connection Energy Dissipation Index (TCPC-EDI).
Main Results:
- Energy dissipation rate is inversely proportional to body surface area squared and directly proportional to cardiac output cubed.
- CEDI values are 4.01±0.16 in healthy individuals and >7.0 in severe aortic stenosis.
- Fontan circulation shows progressive hemodynamic degradation with growth, equivalent to severe aortic stenosis.
- AV-EDI is ~0.28±0.12 in healthy valves, increasing significantly with stenosis severity.
- TCPC-EDI correlates negatively with pulmonary artery size in the TCPC pathway.
Conclusions:
- Energy dissipation in human circulation has been theoretically analyzed to derive proper scaling factors.
- CEDI, AV-EDI, and TCPC-EDI are validated as accurate measures of circulatory, aortic valve, and Fontan connection dissipative characteristics, respectively.
Background:
We present a fundamental theoretical framework for analysis of energy dissipation in any component of the circulatory system and formulate the full energy budget for both venous and arterial circulations. New indices allowing disease-specific subject-to-subject comparisons and disease-to-disease hemodynamic evaluation (quantifying the hemodynamic severity of one vascular disease type to the other) are presented based on this formalism.
Methods And Results:
Dimensional analysis of energy dissipation rate with respect to the human circulation shows that the rate of energy dissipation is inversely proportional to the square of the patient body surface area and directly proportional to the cube of cardiac output. This result verified the established formulae for energy loss in aortic stenosis that was solely derived through empirical clinical experience. Three new indices are introduced to evaluate more complex disease states: (1) circulation energy dissipation index (CEDI), (2) aortic valve energy dissipation index (AV-EDI), and (3) total cavopulmonary connection energy dissipation index (TCPC-EDI). CEDI is based on the full energy budget of the circulation and is the proper measure of the work performed by the ventricle relative to the net energy spent in overcoming frictional forces. It is shown to be 4.01+/-0.16 for healthy individuals and above 7.0 for patients with severe aortic stenosis. Application of CEDI index on single-ventricle venous physiology reveals that the surgically created Fontan circulation, which is indeed palliative, progressively degrades in hemodynamic efficiency with growth (p<0.001), with the net dissipation in a typical Fontan patient (Body surface area=1.0 m(2)) being equivalent to that of an average case of severe aortic stenosis. AV-EDI is shown to be the proper index to gauge the hemodynamic severity of stenosed aortic valves as it accurately reflects energy loss. It is about 0.28+/-0.12 for healthy human valves. Moderate aortic stenosis has an AV-EDI one order of magnitude higher while clinically severe aortic stenosis cases always had magnitudes above 3.0. TCPC-EDI represents the efficiency of the TCPC connection and is shown to be negatively correlated to the size of a typical "bottle-neck" region (pulmonary artery) in the surgical TCPC pathway (p<0.05).
Conclusions:
Energy dissipation in the human circulation has been analyzed theoretically to derive the proper scaling (indexing) factor. CEDI, AV-EDI, and TCPC-EDI are proper measures of the dissipative characteristics of the circulatory system, aortic valve, and the Fontan connection, respectively.
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