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What is the clinical significance of ventricular mural antagonism?
Paul P Lunkenheimer1, Peter Niederer2, Robert S Stephenson3
1Department of Experimental Cardiac- and Thoraco-Vascular Surgery, University Hospital Muenster, Muenster, Germany.
Insights
The heart
Area of Science:
- Cardiovascular Physiology
- Cardiac Mechanics
- Biomedical Engineering
Background:
- Ventricular walls exhibit complex 3D cardiomyocyte chain arrangements.
- Previous studies emphasized tangential myocyte alignment.
- Local structural variations in cardiomyocyte chains were noted.
Purpose of the Study:
- To investigate the functional implications of cardiomyocyte chain orientation.
- To explore the existence and nature of auxotonic forces in the ventricular myocardium.
- To understand the antagonistic interplay of forces governing ventricular dynamics.
Main Methods:
- Morphological analysis of ventricular wall architecture.
- Experimental studies to identify and characterize cardiac forces.
- Investigation of force generation by differently aligned cardiomyocyte chains.
Main Results:
- A significant portion of cardiomyocyte chains display partially transmural alignment.
- Partially transmural chains generate auxotonic (dilating) forces, counteracting constriction.
- Tangentially aligned chains produce unloading (constrictive) forces.
- The ventricular myocardium exhibits antagonistic force generation (constrictive and dilative).
- This antagonism is locally regulated and crucial for ventricular shape, energy storage, and flow dynamics.
- Antagonistic activity is exacerbated in cardiac diseases like hypertrophy and fibrosis.
- Low-dose beta-blockade selectively reduces auxotonic forces.
Conclusions:
- Ventricular function involves a balance of constrictive and dilative forces.
- Cardiac disease disrupts this balance, impacting cardiac performance.
- Targeting auxotonic forces may offer therapeutic potential.
Abstract:
Recent morphological studies provide evidence that the ventricular walls are arranged as a 3D meshwork of aggregated cardiomyocyte chains, exhibiting marked local structural variations. In contrary to previous findings, up to two-fifths of the chains are found to have a partially transmural alignment, thus deviating from the prevailing tangential orientation. Upon contraction, they produce, in addition to a tangential force, a radial force component that counteracts ventricular constriction and aids widening of the ventricular cavity. In experimental studies, we have provided evidence for the existence of such forces, which are auxotonic in nature. This is in contrast to the tangentially aligned myocytes that produce constrictive forces, which are unloading in nature. The ventricular myocardium is, therefore, able to function in an antagonistic fashion, with the prevailing constrictive forces acting simultaneously with a dilatory force component. The ratio of constrictive to dilating force varies locally according to the specific mural architecture. Such antagonism acts according to local demands to preserve the ventricular shape, store the elastic energy that drives the fast late systolic dilation and apportion mural motion to facilitate the spiralling nature of intracavitary flow. Intracavitary pressure and flow dynamics are thus governed concurrently by ventricular constrictive and dilative force components. Antagonistic activity, however, increases deleteriously in states of cardiac disease, such as hypertrophy and fibrosis. ß-blockade at low dosage acts selectively to temper the auxotonic forces.
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