Calcium-sodium antagonism on the frog's heart: a voltage-clamp study

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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