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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.
Abstract:
Excitation-contraction coupling kinetics is dictated by the action potential rate of sinoatrial-nodal cells. These cells generate local Ca releases (LCRs) that activate Na/Ca exchanger current, which accelerates diastolic depolarization and determines the pace. LCRs are generated by clusters of ryanodine receptors, Ca release units (CRUs), residing in the sarcoplasmic reticulum. While CRU distribution exhibits substantial heterogeneity, its functional importance remains unknown. Using numerical modeling, here we show that with a square lattice distribution of CRUs, Ca-induced-Ca-release propagation during diastolic depolarization is insufficient for pacemaking within a broad range of realistic ICaL densities. Allowing each CRU to deviate randomly from its lattice position allows sparks to propagate, as observed experimentally. As disorder increases, the CRU distribution exhibits larger empty spaces and simultaneously CRU clusters, as in Poisson clumping. Propagating within the clusters, Ca release becomes synchronized, increasing action potential rate and reviving pacemaker function of dormant/nonfiring cells. However, cells with fully disordered CRU positions could not reach low firing rates and their β-adrenergic-receptor stimulation effect was substantially decreased. Inclusion of Cav1.3, a low-voltage activation L-type Ca channel isoform into ICaL, strongly increases recruitment of CRUs to fire during diastolic depolarization, increasing robustness of pacemaking and complementing effects of CRU distribution. Thus, order/disorder in CRU locations along with Cav1.3 expression regulates pacemaker function via synchronization of CRU firing. Excessive CRU disorder and/or overexpression of Cav1.3 boosts pacemaker function in the basal state, but limits the rate range, which may contribute to heart rate range decline with age and disease.
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