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August 1, 1999AJP Heart and Circulatory Physiology12 citations

Activation of contraction in cat ventricular myocytes: effects of low Cd2+ concentration and temperature

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JWJ. Andrew WasserstromAVAna-Maria Vites

Structured PICO

P
Population
Cat ventricular myocytes
I
Intervention
Superfusion with Cd2+ (20 microM) and varying bath temperatures (25 to 34 degrees C)
C
Comparator
Control conditions without Cd2+ at standard temperatures
O
Outcome
Cell shortening and ionic currentssurrogate

In cat ventricular myocytes, triggering of contraction via the Na+/Ca2+ exchanger is highly temperature-dependent, providing a major contribution at physiological temperatures but failing below 30 degrees C.

Abstract

The effects of Cd(2+) (20 microM) and different bath temperatures were used to study the contributions of two separate triggering mechanisms, L-type Ca(2+) current (I(Ca)) and reverse mode Na(+)/Ca(2+) exchange, to excitation-contraction (E-C) coupling in cat ventricular myocytes. Ionic currents and cell shortening were studied with patch pipettes filled with K(+)-containing internal solution and discontinuous ("switch") voltage clamp. Superfusion with Cd(2+) blocked cell shortening that closely mirrored the block of I(Ca); the voltage dependence of Cd(2+)-induced reduction in contraction was bell-shaped, displaying minima at test potentials below -10 mV and above +50 mV and a maximum at about +20 mV. Cd(2+)-insensitive cell shortening was blocked by ryanodine (10 microM) and Ni(2+) (4-5 mM). When an action potential was used as the command waveform for the voltage clamp (action potential clamp), Cd(2+) reduced contraction to approximately 60 +/- 7% of control cell shortening (n = 7). The remaining contraction was blocked by ryanodine and Ni(2+). Superfusion with nifedipine (10 microM) caused nearly identical effects to Cd(2+). The voltage dependence of contraction was sigmoidal at temperatures above 34 degrees C but bell-shaped below 30 degrees C. When Cd(2+) was added to superfusate, contraction was abolished at 25 degrees C (to 6 +/- 3% of control) but reduced only modestly at 34 degrees C (to 65 +/- 13% of control, test potential +10 mV, n = 4, P < 0.01). These results indicate that 1) there is a component of contraction that is sensitive to I(Ca) antagonists, and the block is equivalent with either organic or inorganic antagonists; 2) the contribution of Na(+)/Ca(2+) exchange to triggering of contraction under our experimental conditions is fairly linear throughout the entire voltage range tested; 3) the contribution of I(Ca) is superimposed on this background component contributed by the Na(+)/Ca(2+) exchanger; and 4) triggering via the exchanger is temperature-dependent, providing a major contribution at physiological temperatures but failing at temperatures below 30 degrees C in a nearly all-or-none fashion.

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Cite This Study

Wasserstrom et al. (1999) studied this question.

synapsesocial.com/papers/6a7f0750c5b020b0b6d0ad4ehttps://doi.org/10.1152/ajpheart.1999.277.2.h488
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Fast sodium influx provides an initial step to trigger contractions in cat ventricle1996 · 18 citations
  2. 2BAY K 8644 depresses excitation-contraction coupling in cardiac muscle1996 · 19 citations
  3. 3Identification of sodium‐calcium exchange current in single ventricular cells of guinea‐pig.1987 · 632 citations
  4. 4The role of Na(+)‐Ca2+ exchange in activation of excitation‐contraction coupling in rat ventricular myocytes.1996 · 106 citations
  5. 5Contractions in guinea‐pig ventricular myocytes triggered by a calcium‐release mechanism separate from Na+ and L‐currents.1995 · 65 citations