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1 els may be involved in the generation of the calcium spark.
2 ac myocyte in response to a small artificial calcium spark.
3 s that correspond to experimentally observed calcium sparks.
4 s diastolic depolarization and an absence of calcium sparks.
5 um, leading to contraction, often results in calcium sparks.
8 ly, SK channels are transiently activated by calcium sparks and calcium influx during action potentia
10 currents, whereas local calcium transients ("calcium sparks") and voltage-dependent potassium current
12 'all-or-none' behaviour which suggests that calcium sparks are indeed elementary events underlying c
14 urse of calcium spark production showed that calcium sparks are more likely to occur during the initi
16 s graded release by making the rate at which calcium sparks are recruited proportional to the whole c
19 e show, on general theoretical grounds, that calcium sparks, as observed in confocal line scan images
21 en fixed sites within the cell are examined, calcium sparks have relatively constant amplitude but th
26 y of spontaneous calcium release events, or "calcium sparks," in smooth muscle, suggests an unanticip
27 um-coupled recruitment of multiple channels, calcium sparks might be abolished by a modest depletion
30 the action potential and the time course of calcium spark production showed that calcium sparks are
31 further used to highlight the criticality in calcium spark propagation in relation to inter-dyad dist
35 The low variability of the amplitude of the calcium sparks suggests that more than one sarcoplasmic
36 lease can occur after ryanoid suppression of calcium sparks suggests the possibility of a new strateg
37 mic reticulum (SR), which was visualized as "calcium sparks." The ability of ICa to trigger calcium r
38 nnels, a reduction in functional coupling of calcium sparks to BK channel activation, and increases i
43 tivated by local transient calcium releases (calcium sparks), were present in Slo+/+ CCSM cells, but
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