Disorder in Ca2+ release unit locations confers robustness but cuts flexibility of heart pacemaking

Anna V Maltsev1, Michael D Stern2, Victor A Maltsev2

  • 1School of Mathematics, Queen Mary University of London, London, UK.

Insights

Sinoatrial-nodal cell pacemaking depends on calcium release units (CRUs). CRU distribution and Cav1.3 channels regulate heart rate by synchronizing calcium release, impacting age-related heart rate decline.

Area of Science:

  • Cardiovascular Physiology
  • Computational Biology
  • Cellular Electrophysiology

Background:

  • Pacemaker function in sinoatrial-nodal cells is crucial for heart rate regulation.
  • Local calcium releases (LCRs) from calcium release units (CRUs) activate ion currents that drive diastolic depolarization.
  • The spatial distribution of CRUs and its impact on pacemaking remain poorly understood.

Purpose of the Study:

  • To investigate the functional significance of CRU distribution heterogeneity on sinoatrial-nodal cell pacemaking.
  • To determine how CRU spatial arrangement and Cav1.3 channel expression influence excitation-contraction coupling kinetics.
  • To model the impact of CRU order/disorder on pacemaker function and its potential role in age-related heart rate changes.

Main Methods:

  • Numerical modeling of sinoatrial-nodal cell electrophysiology.
  • Simulation of CRU distribution using square lattice and disordered arrangements.
  • Incorporation of Cav1.3 channel activity into the models.

Main Results:

  • A regular lattice distribution of CRUs was insufficient for pacemaking across a range of L-type calcium channel (ICaL) densities.
  • Increasing CRU disorder promoted spark propagation and synchronized CRU firing, reviving pacemaker function.
  • Excessive CRU disorder or Cav1.3 expression boosted basal pacemaker function but limited the achievable rate range.

Conclusions:

  • CRU spatial distribution and Cav1.3 channel expression are key regulators of sinoatrial-nodal cell pacemaking through CRU firing synchronization.
  • Disordered CRU arrangements and Cav1.3 enhance pacemaking but restrict the dynamic range, potentially contributing to age-related heart rate decline.
  • Understanding CRU organization offers insights into cardiac rhythm disorders and therapeutic strategies.

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