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Updated: Jun 30, 2026

Biaxial Mechanical Characterizations of Atrioventricular Heart Valves
Published on: April 9, 2019
Structure and function relationships of the helical ventricular myocardial band
Gerald Buckberg1, Aman Mahajan, Saleh Saleh
1Option on Bioengineering, California Institute of Technology, Pasadena, Calif, USA.
Insights
Cardiac function relies on helical myocardial motion, not constriction. Understanding this twisting motion and the helical ventricular myocardial band model improves diagnosis and treatment of heart conditions.
Area of Science:
- Cardiology
- Cardiac Anatomy
- Physiology
Background:
- Normal cardiac function depends on understanding the heart's architecture.
- Newer imaging techniques allow characterization of directional and twisting motions.
Purpose of the Study:
- To define cardiac movements and compare them with models.
- To introduce a functional anatomy explaining cardiac spatial and temporal relationships.
Main Methods:
- Defining directional (narrowing, shortening, lengthening, widening) and twisting motions.
- Comparing these movements with various models.
- Utilizing the Torrent-Guasp helical ventricular myocardial band model.
Main Results:
- Cardiac twisting motion is caused by helical (clockwise and counterclockwise) movements.
- The helical ventricular myocardial band model defines normal cardiac function.
- This model provides novel insights into ventricular suction, septal function, diastolic dysfunction, and pacing strategies.
Conclusions:
- Further research on spatial anatomic concepts is necessary.
- A more accurate understanding of cardiac dynamics is needed for future heart problems.
Objective:
Understanding cardiac function requires knowledge of the architecture responsible for the normal actions of emptying and filling. Newer imaging methods are surveyed to characterize directional (narrowing, shortening, lengthening, and widening) and twisting motions.
Methods:
These movements are defined and then compared with a spectrum of models to introduce a useful "functional anatomy" that explains cardiac spatial and temporal relationships. The sequential nature of normal contraction differs from a synchronous beat.
Results:
The prior concept of constriction is replaced by understanding that clockwise and counterclockwise helical motions are necessary to cause the predominant twisting motion. The helical ventricular myocardial band model of Torrent-Guasp fulfills the architectural structure to define normal function. Expansion of information from this model allows novel understanding of mechanisms that explains why a component of ventricular suction involves a systolic event, clarifies septum function, determines diastolic dysfunction, introduces new treatments, shows how knowledge of the helical structure influences understanding of atrioventricular and biventricular pacing, and creates novel methods for introducing septal pacing stimuli.
Conclusion:
Further testing of these spatial anatomic concepts is needed to create a more accurate understanding of the architectural mechanisms that underlie cardiac dynamics to address future problems in unhealthy hearts.
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