Literature DB >> 21298621

Computational finite element model of cardiac torsion.

Paola Bagnoli1, Nicolò Malagutti, Dario Gastaldi, Emanuela Marcelli, Enrico Lui, Laura Cercenelli, Maria Laura Costantino, Gianni Plicchi, Roberto Fumero.   

Abstract

PURPOSE: A novel finite-element model of ventricular torsion for the analysis of the twisting behavior of the left human ventricle was developed, in order to investigate the influence of various biomechanical parameters on cardiac kinematics.
METHODS: The ventricle was simulated as a thick-walled ellipsoid composed of nine concentric layers. Arrays of reinforcement bars were embedded in each layer to mimic physiological myocardial anisotropy. The reinforcement bars were activated through an artificial combination of thermal and mechanical effects in order to obtain a contractile behavior which is similar to that of myocardial fibers. The presence of an incompressible fluid inside the ventricular cavity was also simulated and the ventricle was combined with simple lumped-parameter hydraulic circuits reproducing preload and afterload. Changes to a number of cardiac parameters, such as preload, afterload and fiber angle orientation were introduced, in order to study the effects of these changes on cardiac torsion.
RESULTS: The model is able to reproduce a similar torsional behavior to that of a physiological heart. The results of the simulations showed that there was sound correspondence between the model outcomes and available data from the literature. Results confirmed the importance of symmetric transmural patterns for fiber orientation.
CONCLUSIONS: This model represents an important step on the path towards unveiling the complexity of cardiac torsion. It proves to be a practical and versatile tool which could assist clinicians and researchers by providing them with easily-accessible, detailed data on cardiac kinematics for future diagnostic and surgical purposes.

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Year:  2011        PMID: 21298621     DOI: 10.5301/ijao.2011.6313

Source DB:  PubMed          Journal:  Int J Artif Organs        ISSN: 0391-3988            Impact factor:   1.595


  5 in total

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Authors:  Seyedvahid Khodaei; Alison Henstock; Reza Sadeghi; Stephanie Sellers; Philipp Blanke; Jonathon Leipsic; Ali Emadi; Zahra Keshavarz-Motamed
Journal:  Sci Rep       Date:  2021-05-25       Impact factor: 4.379

2.  Weighted least-squares finite element method for cardiac blood flow simulation with echocardiographic data.

Authors:  Fei Wei; John Westerdale; Eileen M McMahon; Marek Belohlavek; Jeffrey J Heys
Journal:  Comput Math Methods Med       Date:  2012-01-16       Impact factor: 2.238

3.  An Implantable Sensorized Lead for Continuous Monitoring of Cardiac Apex Rotation.

Authors:  Emanuela Marcelli; Laura Cercenelli
Journal:  Sensors (Basel)       Date:  2018-11-30       Impact factor: 3.576

4.  An inverse finite element method for determining the tissue compressibility of human left ventricular wall during the cardiac cycle.

Authors:  Abdallah I Hassaballah; Mohsen A Hassan; Azizi N Mardi; Mohd Hamdi
Journal:  PLoS One       Date:  2013-12-19       Impact factor: 3.240

5.  Multiscale Modeling of Cardiovascular Function Predicts That the End-Systolic Pressure Volume Relationship Can Be Targeted via Multiple Therapeutic Strategies.

Authors:  Kenneth S Campbell; Brianna Sierra Chrisman; Stuart G Campbell
Journal:  Front Physiol       Date:  2020-08-19       Impact factor: 4.566

  5 in total

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