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Updated: Jun 27, 2026

Isolation of Atrial Myocytes from Adult Mice
Published on: July 25, 2019
Differences in intracellular calcium homeostasis between atrial and ventricular myocytes
A P Walden1, K M Dibb, A W Trafford
1Division of Cardiovascular and Endocrine Sciences, Unit of Cardiac Physiology, University of Manchester, 3.08 Core Technology Facility, Manchester, UK. apwalden@hotmail.com
Insights
Cardiac cells differ in calcium handling. Atrial cells show faster calcium transient decay due to increased sarcoplasmic reticulum uptake, higher SR calcium content, and greater buffering capacity compared to ventricular cells.
Area of Science:
- Cardiovascular Physiology
- Cellular Biology
- Biochemistry
Background:
- Ventricular excitation-contraction coupling is well-understood.
- Significant differences exist in systolic calcium transients between atrial and ventricular myocytes.
- Calcium homeostatic mechanisms in atrial cells remain under-investigated.
Purpose of the Study:
- To systematically assess calcium homeostatic mechanisms in atrial myocytes.
- To compare these mechanisms with those in ventricular myocytes.
- To determine the contributions of sarcoplasmic reticulum and sarcolemmal mechanisms to systolic calcium transients and decay.
Main Methods:
- Experiments on single rat atrial and ventricular myocytes.
- Measurement of intracellular calcium concentration, membrane currents, SR calcium content, and cellular calcium buffering capacity.
- Controlled temperature of 23°C.
Main Results:
- Atrial cells exhibited smaller, more rapidly decaying systolic calcium transients.
- Increased rate of SR-mediated calcium uptake (k(SR)) in atrial cells.
- Higher SR calcium content and approximately 3-fold greater calcium buffering capacity in atrial cells.
Conclusions:
- Fundamental differences in calcium homeostasis exist between atrial and ventricular cells.
- Increased SR calcium content in atrial cells may contribute to the higher prevalence of arrhythmias.
- Further research is warranted to explore the functional implications of these differences.
Abstract:
The role that Ca(2+) plays in ventricular excitation contraction coupling is well defined and much is known about the marked differences in the spatiotemporal properties of the systolic Ca(2+) transient between atrial and ventricular myocytes. However, to date there has been no systematic appraisal of the Ca(2+) homeostatic mechanisms employed by atrial cells and how these compare to the ventricle. In the present study we sought to determine the fractional contributions made to the systolic Ca(2+) transient and the decay of [Ca(2+)](i) by the sarcoplasmic reticulum and sarcolemmal mechanisms. Experiments were performed on single myocytes isolated from the atria and ventricles of the rat. Intracellular Ca(2+) concentration, membrane currents, SR Ca(2+) content and cellular Ca(2+) buffering capacity were measured at 23 degrees C. Atrial cells had smaller systolic Ca(2+) transients (251+/-39 vs. 376+/-41 nmol x L(-1)) that decayed more rapidly (7.4+/-0.6 vs. 5.45+/-0.3 s(-1)). This was due primarily to an increased rate of SR mediated Ca(2+) uptake (k(SR), 6.88+/-0.6 vs. 4.57+/-0.3 s(-1)). SR Ca(2+) content was 289% greater and Ca(2+) buffering capacity was increased approximately 3-fold in atrial cells (B(max) 371.9+/-32.4 vs. 121.8+/-8 micromol x L(-1), all differences P<0.05). The fractional release of Ca(2+) from the SR was greater in atrial cells, although the gain of excitation contraction coupling was the same in both cell types. In summary our data demonstrate fundamental differences in Ca(2+) homeostasis between atrial and ventricular cells and we speculate that the increased SR Ca(2+) content may be significant in determining the increased prevalence of arrhythmias in the atria.
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