Active force generation in cardiac muscle cells: mathematical modeling and numerical simulation of the actin-myosin interaction
DOI10.1007/s10013-020-00433-zzbMath1472.65114OpenAlexW3082418857MaRDI QIDQ2022471
Luca Dedè, Francesco Regazzoni, Alfio M. Quarteroni
Publication date: 29 April 2021
Published in: Vietnam Journal of Mathematics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s10013-020-00433-z
Asymptotic behavior of solutions to PDEs (35B40) PDEs in connection with biology, chemistry and other natural sciences (35Q92) Cell biology (92C37) Applications to the sciences (65Z05) Computational methods for problems pertaining to biology (92-08) Cell movement (chemotaxis, etc.) (92C17) Fokker-Planck equations (35Q84) Numerical solution of discretized equations for initial value and initial-boundary value problems involving PDEs (65M22) Experimental work for problems pertaining to biology (92-05)
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Cites Work
- A poroelastic model valid in large strains with applications to perfusion in cardiac modeling
- A distribution-moment approximation for kinetic theories of muscular contraction
- Minimal model for human ventricular action potentials in tissue
- Machine learning of multiscale active force generation models for the efficient simulation of cardiac electromechanics
- An intergrid transfer operator using radial basis functions with application to cardiac electromechanics
- A monolithic algorithm for the simulation of cardiac electromechanics in the human left ventricle
- Mathematical cardiac electrophysiology
- Mathematical physiology. I: Cellular physiology
- A Variational Approach for Estimating the Compliance of the Cardiovascular Tissue: An Inverse Fluid-Structure Interaction Problem
- Constitutive modelling of passive myocardium: a structurally based framework for material characterization
- Mathematical Modelling of the Human Cardiovascular System
- Computational electrocardiology: mathematical and numerical modeling
- Multiscale computational modelling of the heart
- Multiscale Heart Simulation with Cooperative Stochastic Cross-Bridge Dynamics and Cellular Structures
- The Monte Carlo Method
- Unnamed Item