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Updated: Jul 19, 2026

Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Cellular distribution of calcium current is unaltered during compensated hypertrophy in the spontaneously
Mark R Fowler1, Clive H Orchard, Simon M Harrison
1Institute of Biomedical and Life Sciences, West Medical Building, University of Glasgow, Glasgow, G12 8QQ, UK.
Insights
In spontaneously hypertensive rats, increased cell surface area in cardiac hypertrophy is due to t-tubule expansion, maintaining normal calcium handling and cell function.
Area of Science:
- Cardiology
- Cell Physiology
- Molecular Biology
Background:
- Altered cellular calcium (Ca(2+)) handling is linked to cardiac hypertrophy and failure.
- Transverse tubules (t-tubules) play a critical role in regulating intracellular Ca(2+).
Purpose of the Study:
- To investigate if altered Ca(2+) distribution in t-tubules contributes to abnormal Ca(2+) handling in compensated cardiac hypertrophy.
- To examine Ca(2+) current (I(Ca)) distribution in surface versus t-tubule membranes in spontaneously hypertensive rats (SHR).
Main Methods:
- Ventricular myocytes were isolated from 5-month-old SHR and Wistar-Kyoto (WKY) control rats.
- The t-tubular system was disrupted using osmotic shock (formamide).
- Whole-cell patch clamp recorded I(Ca) before and after t-tubule disruption.
Main Results:
- SHR myocytes had greater membrane capacitance and I(Ca) than WKY controls.
- Detubulation reduced cell capacitance and I(Ca) to similar levels in both groups.
- I(Ca) density remained unchanged between SHR and WKY, and across surface and t-tubule membranes.
Conclusions:
- The distribution of I(Ca) is preserved in SHR myocytes during compensated hypertrophy.
- Increased surface area in SHR myocytes is primarily due to t-tubule expansion.
- This expansion maintains normal I(Ca) density, preserving cell function and synchronous Ca(2+) release.
Abstract:
Changes in cellular calcium (Ca(2+)) handling are thought to underlie the altered contraction that occurs during cardiac hypertrophy and failure. Recent work has highlighted the importance of t-tubules in the control of intracellular Ca(2+). The present study was performed to investigate whether changes in the distribution of I (Ca) between the surface and t-tubule membranes might contribute to the altered Ca(2+) handling observed during compensated hypertrophy in the spontaneously hypertensive rat (SHR). Experiments were performed on ventricular myocytes isolated from 5-month-old SHR and normotensive Wistar-Kyoto (WKY) control rats. Osmotic shock using formamide was used to disrupt the t-tubular system and the whole-cell patch clamp technique used to monitor I (Ca) in the presence and absence of t-tubules. Membrane capacitance and I (Ca) were greater in control SHR than WKY myocytes; following detubulation, cell capacitance and I (Ca) both decreased and were no longer significantly different in the two cell types. The density of I (Ca) was not significantly different in control SHR and WKY cells or in detubulated myocytes from the two species. These data suggest that the distribution of I (Ca) is unchanged in SHR myocytes compared to WKY controls; I (Ca) density in the t-tubules was 1.2-fold greater than in the sarcolemma in both strains. These data also imply that the increase in surface area in SHR myocytes is due principally to an increase in t-tubular area, which is accompanied by an approximately equivalent increase in I (Ca), so that the density of I (Ca) at the cell surface and in the t-tubules remains the same. These changes would be expected to retain cell function and synchronicity of Ca(2+) release in the SHR at this stage of compensated hypertrophy.
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