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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Calcium signalling during excitation-contraction coupling in mammalian atrial myocytes
Martin D Bootman1, Daniel R Higazi, Stephen Coombes
1Laboratory of Molecular Signalling, The Babraham Institute, Babraham, Cambridge, CB2 4AT, UK. martin.bootman@bbsrc.ac.uk
Insights
Atrial cardiomyocytes, lacking T-tubules, generate calcium signals at cell peripheries. Hormonal control of centripetal calcium movement enhances atrial contraction, crucial for heart function, especially with age and exercise.
Area of Science:
- Cardiology
- Cellular Physiology
- Molecular Biology
Background:
- Atrial cardiomyocytes are vital for ventricular refilling and cardiac output.
- Atrial calcium signaling is less understood than ventricular signaling.
- Age and exercise increase the importance of atrial contribution to cardiac function.
Purpose of the Study:
- To elucidate the distinct calcium signaling patterns in atrial myocytes compared to ventricular myocytes.
- To understand the structural basis for differences in calcium handling between atrial and ventricular cells.
- To explore the role of hormonal regulation in atrial calcium dynamics.
Main Methods:
- Comparative analysis of atrial and ventricular myocyte ultrastructure.
- Investigation of calcium signal propagation in response to electrical depolarization.
- Examination of hormonal influences on intracellular calcium release.
Main Results:
- Atrial myocytes lack T-tubules, leading to peripheral calcium signal initiation.
- Calcium signals propagate centripetally in atrial cells to activate contraction.
- Hormones modulate calcium release, influencing atrial contractility and blood pumping.
- Similar calcium signaling observed in T-tubule-deficient cells like neonatal ventricular myocytes and Purkinje cells.
- Ventricular myocytes in heart failure exhibit T-tubule loss, mimicking atrial cell calcium patterns.
Conclusions:
- The absence of T-tubules in atrial myocytes dictates a unique peripheral-initiated, centripetal calcium signaling pathway.
- This pathway is critical for atrial contribution to cardiac output and is hormonally regulated.
- Understanding atrial calcium signaling provides insights into other T-tubule-deficient cardiac cells and pathological conditions like heart failure.
Abstract:
Atrial cardiomyocytes make an important contribution to the refilling of ventricles with blood, which enhances the subsequent ejection of blood from the heart. The dependence of cardiac function on the contribution of atria becomes increasingly important with age and exercise. We know much less about the calcium signals that link electrical depolarisation to contraction within atrial myocytes in comparison with ventricular myocytes. Nevertheless, recent work has shed new light on calcium signalling in atrial cells. At an ultrastructural level, atrial and ventricular myocytes have many similarities. However, a few key structural differences, in particular the lack of transverse tubules (;T-tubules') in atrial myocytes, make these two cell types display vastly different calcium patterns in response to depolarisation. The lack of T-tubules in atrial myocytes means that depolarisation provokes calcium signals that largely originate around the periphery of the cells. To engage the contractile machinery, the calcium signal must propagate centripetally deeper into the cells. This inward movement of calcium is ultimately controlled by hormones that can promote or decrease calcium release within the myocytes. Enhanced centripetal movement of calcium in atrial myocytes leads to increased contraction and a more substantial contribution to blood pumping. The calcium signalling paradigm within atrial cells applies to other cardiac cell types that also do not express T-tubules, such as neonatal ventricular myocytes, and Purkinje cells that aid in the spread of electrical depolarisation. Furthermore, during heart failure ventricular myocytes progressively lose their regular T-tubule expression, and their pattern of response resembles that of atrial cells.
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