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Updated: Aug 24, 2026

Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Calcium-sodium antagonism on the frog's heart: a voltage-clamp study
Abstract:
1. In double sucrose-gap voltage-clamped frog atrial fibres the influence of [Ca]o and [Na]o on membrane current and contraction was investigated. 2. The slow (secondary) inward current varied with [Ca]o but was almost insensitive to changes in [Na]o. In contrast, the phasic (transient) contraction initiated by the slow inward current was affected by both [Ca]o and [Na]o. 3. With moderate changes of [Ca]o and [Na]o from normal, the strength of phasic contraction at a given depolarization followed the [Ca]o/[Na]2o ratio approximately. This was best seen at membrane potentials near zero level. 4. Under the same conditions, tonic (sustained) contractions associated with prolonged depolarizations were strictly correlated to the [Ca]o/[Na]2o ratio at any potential. No interrelation between tonic tension and steady-state current was found. 5. With extensive changes in [Ca]o and [Na]o, the sensitivity of both phasic and tonic tension to the [Ca]o/[Na]2o ratio declined, the negative effect of [Na]o becoming smaller than was expected from this ratio. 6. In Na-free choline-Ringer, a strong contracture developed followed by a spontaneous relaxation. Starting from the relaxed state, application of depolarizing clamps gave rise to phasic contractions with a very slow relaxation while tonic contractions were apparently lacking. 7. The results are interpreted in terms of an energy-dependent carrier mechanism exchanging one Ca for two Na ions across the cell membrane. The model implies a strong asymmetry in the rate constants governing the chemical reactions on both sides of the membrane. The system is thought to operate close to equilibrium at any potential, thereby determining the steady level of myoplasmic Ca. The equilibrium itself is considered to shift upon depolarization. Assuming that [Na]i is constant, the steady level of [Ca]i is expected to be proportional to the [Ca]o/[Na]2o ratio, the scale factor being a function of membrane potential. 8. The carrier model suggests the occurrence of a depolarization-induced inward transfer of Ca which might be involved in the generation of tonic contractions. 9. The apparent lack of tonic contractions in the absence of external Na ions may be explained by a suppression of carrier-mediated Ca influx normally occurring upon depolarization. 10. The antagonistic effects of [Ca]o and [Na]o on phasic contraction are understood as being due to alterations of the Ca pumping system rather than changes in slow inward current.
Insights
Investigating frog atrial fibers revealed that while slow inward calcium current depends on external calcium ([Ca]o), phasic contractions are influenced by both [Ca]o and external sodium ([Na]o). A carrier mechanism exchanging calcium for sodium explains these findings.
Area of Science:
- Cardiology
- Cell Physiology
- Biophysics
Background:
- The relationship between extracellular calcium ([Ca]o) and sodium ([Na]o) concentrations and cardiac myocyte contraction is complex.
- Understanding these ionic influences is crucial for elucidating cardiac electrophysiology and contractility.
Purpose of the Study:
- To investigate the effects of varying [Ca]o and [Na]o on membrane currents and contractions in voltage-clamped frog atrial fibers.
- To explore the underlying ionic mechanisms governing cardiac contractility.
Main Methods:
- Utilized double sucrose-gap voltage clamp technique on frog atrial fibers.
- Manipulated extracellular calcium ([Ca]o) and sodium ([Na]o) concentrations.
- Measured membrane currents and contractile force.
Main Results:
- The slow inward current correlated with [Ca]o but was insensitive to [Na]o.
- Phasic and tonic contractions were influenced by both [Ca]o and [Na]o, following approximately the [Ca]o/[Na]2o ratio under moderate conditions.
- A Na-free environment altered contraction patterns, suggesting a role for sodium-calcium exchange.
Conclusions:
- Results support an energy-dependent carrier mechanism for calcium-sodium exchange across the cell membrane.
- This carrier system, operating near equilibrium, likely regulates intracellular calcium levels and contributes to tonic contractions.
- Antagonistic effects of [Ca]o and [Na]o on contraction are attributed to modulation of this calcium-handling mechanism.
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