Key result
Hypertonic Krebs-Henseleit medium doubled the calculated mean Ca ion cellular exchange per beat and increased isometric peak tension in guinea pig atria compared to normal medium.
Why the study?
Does hypertonic medium alter calcium exchange and contraction strength in guinea pig atrium?
Does hypertonic medium alter calcium exchange and contraction strength in guinea pig atrium?
Hypertonicity increases calcium ion entry rate during depolarization in guinea pig atrium, suggesting that additional calcium for larger contractions at higher frequencies comes from intracellular stores rather than extracellular entry per beat.
Does not support clinical use; leaves open translation of hypertonicity effects on atrial calcium handling to humans.
A Krebs-Henseleit (KH) medium made hypertonic by adding nonpermeant molecules substantially increased the isometric peak tension at steady-state contractions below 3 per sec in guinea pig atrium at 27 degrees C. Action potential durations were decreased. KH plus 100 mM raffinose or sucrose resulted in similar and nearly maximal changes which were essentially reversible upon return to normal KH. When one active contracting atrium was used to passively stretch a second atrium, the difference in Ca ion exchange (1 min exchange with the extracellular space) between active and stretched atria significantly increased at 1 per sec and at 2 per sec in going from normal to 100 mM hypertonic KH. The calculated mean Ca ion cellular exchange per beat per 100 g of cells (a) doubled in changing from normal to 100 mM hypertonic KH, and (b) decreased slightly in changing from contractions of 1 per sec to 2 per sec in normal KH. These data are consistent with the hypothesis (a) that Ca ion entry per beat from the extracellular space is proportional to membrane depolarized time with a constant medium and a steady-state condition, and the hypothesis (b) that 100 mM hypertonicity doubles the Ca ion entry rate during depolarization. These data enable rejection of the hypothesis that the peak tension is proportional to the Ca ion entry per beat from the extracellular space under steady-state conditions, and suggest that any additional Ca ion involved in the larger contractions at higher frequencies comes from an increase in Ca ion available from intracellular stores.
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Little et al. (1969) studied this question. Hypertonic Krebs-Henseleit medium (100 mM raffinose or sucrose) vs. Normal Krebs-Henseleit medium was evaluated on Isometric peak tension and Ca ion exchange. Hypertonic Krebs-Henseleit medium doubled the calculated mean Ca ion cellular exchange per beat and increased isometric peak tension in guinea pig atria compared to normal medium.
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