Literature DB >> 33512405

Multiscale modeling of twitch contractions in cardiac trabeculae.

Srboljub M Mijailovich1, Momcilo Prodanovic2,3, Corrado Poggesi4, Michael A Geeves5, Michael Regnier6.   

Abstract

Understanding the dynamics of a cardiac muscle twitch contraction is complex because it requires a detailed understanding of the kinetic processes of the Ca2+ transient, thin-filament activation, and the myosin-actin cross-bridge chemomechanical cycle. Each of these steps has been well defined individually, but understanding how all three of the processes operate in combination is a far more complex problem. Computational modeling has the potential to provide detailed insight into each of these processes, how the dynamics of each process affect the complexity of contractile behavior, and how perturbations such as mutations in sarcomere proteins affect the complex interactions of all of these processes. The mechanisms involved in relaxation of tension during a cardiac twitch have been particularly difficult to discern due to nonhomogeneous sarcomere lengthening during relaxation. Here we use the multiscale MUSICO platform to model rat trabecular twitches. Validation of computational models is dependent on being able to simulate different experimental datasets, but there has been a paucity of data that can provide all of the required parameters in a single experiment, such as simultaneous measurements of force, intracellular Ca2+ transients, and sarcomere length dynamics. In this study, we used data from different studies collected under similar experimental conditions to provide information for all the required parameters. Our simulations established that twitches either in an isometric sarcomere or in fixed-length, multiple-sarcomere trabeculae replicate the experimental observations if models incorporate a length-tension relationship for the nonlinear series elasticity of muscle preparations and a scheme for thick-filament regulation. The thick-filament regulation assumes an off state in which myosin heads are parked onto the thick-filament backbone and are unable to interact with actin, a state analogous to the super-relaxed state. Including these two mechanisms provided simulations that accurately predict twitch contractions over a range of different conditions.
© 2021 Mijailovich et al.

Entities:  

Year:  2021        PMID: 33512405     DOI: 10.1085/jgp.202012604

Source DB:  PubMed          Journal:  J Gen Physiol        ISSN: 0022-1295            Impact factor:   4.086


  6 in total

1.  Excitation-contraction coupling in cardiac, skeletal, and smooth muscle.

Authors:  Robert T Dirksen; David A Eisner; Eduardo Ríos; Karin R Sipido
Journal:  J Gen Physiol       Date:  2022-08-19       Impact factor: 4.000

2.  FiberSim: A flexible open-source model of myofilament-level contraction.

Authors:  Sarah Kosta; Dylan Colli; Qiang Ye; Kenneth S Campbell
Journal:  Biophys J       Date:  2021-12-18       Impact factor: 3.699

3.  The effect of variable troponin C mutation thin filament incorporation on cardiac muscle twitch contractions.

Authors:  Srboljub M Mijailovich; Momcilo Prodanovic; Corrado Poggesi; Joseph D Powers; Jennifer Davis; Michael A Geeves; Michael Regnier
Journal:  J Mol Cell Cardiol       Date:  2021-02-24       Impact factor: 5.000

4.  Effect of Myosin Isoforms on Cardiac Muscle Twitch of Mice, Rats and Humans.

Authors:  Momcilo Prodanovic; Michael A Geeves; Corrado Poggesi; Michael Regnier; Srboljub M Mijailovich
Journal:  Int J Mol Sci       Date:  2022-01-20       Impact factor: 5.923

5.  Toward an understanding of myofibrillar function in health and disease.

Authors:  Richard L Moss; Christine Cremo; Henk L Granzier
Journal:  J Gen Physiol       Date:  2021-03-01       Impact factor: 4.086

Review 6.  Functional and structural differences between skinned and intact muscle preparations.

Authors:  Alex Lewalle; Kenneth S Campbell; Stuart G Campbell; Gregory N Milburn; Steven A Niederer
Journal:  J Gen Physiol       Date:  2022-01-19       Impact factor: 4.000

  6 in total

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