Abstract
The regenerative Ca(2+)-induced Ca2+ release mechanism is an important amplifier of signal transduction in diverse cells. In heart muscle cells, this mechanism contributes to the Ca2+ transient activating the mechanical contraction, but it is also believed to drive Ca2+ waves propagating within the cytosol. We investigated the subcellular Ca2+ distribution in heart muscle cells during spontaneous Ca2+ release using laser scanning confocal microscopy with a ratiometric fluorescent indicator technique. Besides planar Ca2+ waves with linear propagation, sequences of confocal optical sections also revealed spiral Ca2+ waves spinning around a subcellular core at approximately 1 Hz. Although the Ca2+ spirals were continuous processes they frequently exhibited an apparently oscillatory output function into the elongated cell body. These oscillatory waves emanating from the spiral at regular intervals were formally considered to be short outer segments of the spiral but could not be distinguished from planar Ca2+ waves propagating along the longitudinal cell axis. The complex spatiotemporal pattern of spiral Ca2+ waves implies the participation of an active process exhibiting a large degree of positive feedback, most likely the Ca(2+)-induced Ca2+ release mechanism.
MeSH Terms
Aniline Compounds
Animals
Benzofurans
Calcium/metabolism,physiology
Cells, Cultured
Feedback
Fluorescent Dyes
Guinea Pigs
Heart/physiology
Imidazoles
Microscopy, Fluorescence/methods
Models, Cardiovascular
Signal Transduction/physiology
Subcellular Fractions/metabolism
Xanthenes
Chemicals
Aniline Compounds
Benzofurans
Fluorescent Dyes
Imidazoles
Xanthenes
fura red
Fluo-3
Calcium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Lipp P
Department of Physiology, University of Bern, Switzerland.
Niggli E
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