Unifying principles of calcium wave propagation - Insights from a three-dimensional model for atrial myocytes

R Thul1, K Rietdorf2, M D Bootman2

  • 1School of Mathematical Sciences, University of Nottingham, Nottingham NG7 2RD, UK.

Insights

Atrial myocytes exhibit complex calcium signaling due to the absence of transverse tubules. Our mathematical model reveals how cell boundaries guide these calcium waves, influencing their propagation and cellular responses.

Area of Science:

  • Cardiovascular Physiology
  • Computational Biology
  • Cellular Electrophysiology

Background:

  • Atrial myocytes lack transverse tubules, leading to complex intracellular calcium dynamics.
  • Calcium patterns arise from saltatory waves involving diffusion and calcium-induced calcium release.
  • Predicting calcium wave propagation is challenging due to numerous influencing parameters.

Purpose of the Study:

  • To develop and detail a mathematical model of calcium signaling in atrial myocytes.
  • To assess the impact of various parameters on calcium-induced calcium release and signal propagation.
  • To investigate the spatio-temporal dynamics of intracellular calcium signals within a realistic cellular volume.

Main Methods:

  • Developed a mathematical model solving the linear transport equation for calcium analytically.
  • Implemented a threshold process for calcium liberation onset.
  • Simulated calcium signal triggering and evolution in a 3D atrial myocyte volume with low computational cost.

Main Results:

  • The model predicts non-intuitive behaviors of calcium signal propagation.
  • Cellular boundaries exert a wave-guiding effect, enhancing calcium ion propagation distance and duration.
  • Small variations in calcium release site positioning lead to highly heterogeneous cellular responses.

Conclusions:

  • The developed model provides a computationally efficient framework for studying calcium signaling in atrial myocytes.
  • Cellular geometry, specifically boundaries, significantly influences calcium wave propagation patterns.
  • Understanding these dynamics is crucial for comprehending atrial myocyte function and dysfunction.

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