Acetylcholine and calcium signalling regulates muscle fibre formation in the zebrafish embryo
Open Access
- 15 November 2005
- journal article
- Published by The Company of Biologists in Journal of Cell Science
- Vol. 118 (22) , 5181-5190
- https://doi.org/10.1242/jcs.02625
Abstract
Nerve activity is known to be an important regulator of muscle phenotype in the adult, but its contribution to muscle development during embryogenesis remains unresolved. We used the zebrafish embryo and in vivo imaging approaches to address the role of activity-generated signals, acetylcholine and intracellular calcium, in vertebrate slow muscle development. We show that acetylcholine drives initial muscle contraction and embryonic movement via release of intracellular calcium from ryanodine receptors. Inhibition of this activity-dependent pathway at the level of the acetylcholine receptor or ryanodine receptor did not disrupt slow fibre number, elongation or migration but affected myofibril organisation. In mutants lacking functional acetylcholine receptors myofibre length increased and sarcomere length decreased significantly. We propose that calcium is acting via the cytoskeleton to regulate myofibril organisation. Within a myofibre, sarcomere length and number are the key parameters regulating force generation; hence our findings imply a critical role for nerve-mediated calcium signals in the formation of physiologically functional muscle units during development.Keywords
This publication has 49 references indexed in Scilit:
- Increased neuromuscular activity causes axonal defects and muscular degenerationDevelopment, 2004
- Approaches to measuring calcium in zebrafish: focus on neuronal developmentCell Calcium, 2004
- Calcium transients regulate patterned actin assembly during myofibrillogenesisDevelopmental Dynamics, 2003
- Differential activation of transcription factors induced by Ca2+ response amplitude and durationNature, 1997
- Measurement of membrane potential and myoplasmic [Ca2+] in developing rat myotubes at rest and in response to stimulationCell Calcium, 1996
- Stages of embryonic development of the zebrafishDevelopmental Dynamics, 1995
- Characterization of spontaneous and action potential‐induced calcium transients in developing myotubes in vitroCell Motility, 1993
- Pathfinding and synapse formation in a zebrafish mutant lacking functional acetylcholine receptorsNeuron, 1990
- A neural degeneration mutation that spares primary neurons in the zebrafishDevelopmental Biology, 1988
- Regulation of sarcomere number in skeletal muscle: A comparison of hypothesesMuscle & Nerve, 1984