Neuromuscular System of the Flexible Arm of the Octopus: Physiological Characterization
- 1 March 2000
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 83 (3) , 1315-1328
- https://doi.org/10.1152/jn.2000.83.3.1315
Abstract
The octopus arm is an outstanding example of an efficient boneless and highly flexible appendage. We have begun characterizing the neuromuscular system of the octopus arm in both innervated muscle preparations and dissociated muscle cells. Functionally antagonistic longitudinal and transverse muscle fibers showed no differences in membrane properties and mode of innervation. The muscle cells are excitable but have a broad range of linear membrane properties. They are electrotonically very compact so that localized synaptic inputs can control the membrane potential of the entire muscle cell. Three distinct excitatory neuronal inputs to each arm muscle cell were identified; their reversal potentials were extrapolated to be about −10 mV. These appear to be cholinergic as they are blocked by hexamethonium, d-tubocurarine, and atropine. Two inputs have low quantal amplitude (1–7 mV) and slow rise times (4–15 ms), whereas the third has a large size (5–25 mV) and fast rise time (2–4 ms). This large synaptic input is most likely due to exceptionally large quantal events. The probability of release is rather low, suggesting a stochastic activation of muscle cells. All inputs demonstrated a modest activity-dependent plasticity typical of fast neuromuscular systems. The pre- and postsynaptic properties suggest a rather direct relation between neuronal activity and muscle action. The lack of significant electrical coupling between muscle fibers and the indications for the small size of the motor units suggest that the neuromuscular system of the octopus arm has evolved to ensure a high level of precise localization in the neural control of arm function.Keywords
This publication has 32 references indexed in Scilit:
- Saturation of postsynaptic receptors at central synapses?Current Opinion in Neurobiology, 1996
- Postsynaptic contribution to long-term potentiation revealed by the analysis of miniature synaptic currentsNature, 1992
- The regulation of quantal sizeProgress in Neurobiology, 1991
- Short-Term Synaptic PlasticityAnnual Review of Neuroscience, 1989
- The fin musculature of cuttlefish and squid (Mollusca, Cephalopoda): morphology and mechanicsJournal of Zoology, 1989
- The musculature of squid arms and tentacles: Ultrastructural evidence for functional differencesJournal of Morphology, 1985
- Tongues, tentacles and trunks: the biomechanics of movement in muscular-hydrostatsZoological Journal of the Linnean Society, 1985
- Cholinergic Innervation of Muscle Fibres in SquidJournal of the Marine Biological Association of the United Kingdom, 1982
- Is hyperosmotic neurosecretion from motor nerve endings a calcium-dependent process?Nature, 1977
- The diameters of the fibres of the peripheral nerves of OctopusProceedings of the Royal Society of London. B. Biological Sciences, 1965