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August 9, 2019Frontiers in Molecular Biosciences30 citationsOpen Access

Computational Studies of Cardiac and Skeletal Troponin

JBJacob D. BowmanSLSteffen Lindert

Key Result

Computational methods such as molecular dynamics and Markov modeling have significantly contributed to understanding the structure, dynamics, and function of the troponin complex.

Structured PICO

P
Population
Cardiac and skeletal troponin (computational models)
I
Intervention
Computational studies (molecular dynamics, Brownian dynamics, free energy simulations, Markov modeling, computer-aided drug discovery)
O
Outcome
Structure, dynamics, and function of the troponin complex and its subunits

This review highlights the role of computational modeling in understanding troponin dynamics and its potential for discovering novel calcium-sensitizing agents.

Limitations

  • Accuracy of free energy calculations is currently insufficient due to forcefield inaccuracies and lack of robust sampling.
  • Disparity between physiologically-relevant millisecond-scale dynamics and the restriction of conventional simulations to tens of microseconds.

Abstract

Troponin is a key regulatory protein in muscle contraction, consisting of three subunits troponin C (TnC), troponin I (TnI), and troponin T (TnT). Calcium association to TnC initiates contraction by causing a series of dynamic and conformational changes that allow the switch peptide of TnI to bind and subsequently cross bridges to form between the thin and thick filament of the sarcomere. Owing to its pivotal role in contraction regulation, troponin has been the focus of numerous computational studies over the last decade. These studies elegantly supplemented a large volume of experimental work and focused on the structure, dynamics and function of the whole troponin complex, individual subunits, and even on segments of the thin filament. Molecular dynamics, Brownian dynamics, and free energy simulations have been used to elucidate the conformational dynamics and underlying free energy landscape of troponin, calcium, and switch peptide binding, as well as the effect of disease mutations, small molecules and post-translational modifications such as phosphorylation. Frequently, simulations have been used to confirm or explain experimental observations. Computer-aided drug discovery tools have been employed to identify novel potential calcium sensitizing agents binding to the TnC-TnI interface. Finally, Markov modeling has contributed to simulating contraction within the sarcomere on the mesoscale. Here we are reviewing and classifying the existing computational work on troponin and its subunits, outline current gaps in simulations elucidating troponin's role in contraction and suggest potential future developments in the field.

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Cite This Study

Bowman et al. (2019) conducted a review in Cardiomyopathies. Computational modeling was evaluated. Computational methods such as molecular dynamics and Markov modeling have significantly contributed to understanding the structure, dynamics, and function of the troponin complex.

synapsesocial.com/papers/6a56cf0e7d812fb23aa363d3https://doi.org/10.3389/fmolb.2019.00068
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Molecular Dynamics and Docking Studies on Cardiac Troponin C2011 · 20 citations
  2. 2Identifying Sarcomere Gene Mutations in Hypertrophic Cardiomyopathy2011 · 273 citations
  3. 3Molecular Dynamics Studies on Troponin (Tnl-TnT-TnC) Complexes: Insight into the Regulation of Muscle Contraction2010 · 43 citations
  4. 4Molecular Dynamics Simulations of the Cardiac Troponin Complex Performed with FRET Distances as Restraints2014 · 35 citations
  5. 5Myofilament Calcium Sensitivity: Consequences of the Effective Concentration of Troponin I2016 · 45 citations