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The morphological basis of intracellular measurements in the cockroach tactile spine neuron

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Summary

The femoral tactile spine of the cockroach (Periplaneta americana) contains a single sensory neuron, which adapts rapidly and completely to step deformations of the spine. Techniques for stable intracellular recording from the tactile spine neuron have recently been established, allowing electrophysiological investigation of mechanotransduction and adaptation in this sensory neuron. However, intracellular recordings from the neuron produce a wide range of action potential heights and thresholds, raising the possibility that some penetrations are in adjacent, but closely coupled supporting glial cells. This problem is exacerbated because the cell cannot be visualized during penetration.

Systematic measurements of action potential heights and thresholds were made in tactile spine cells, together with identification of some penetrated cells by intracellular injection of Lucifer Yellow. All stained cells were clearly sensory neurons, although their action potentials amplitudes varied from 9 mV to 80 mV. Smaller action potentials were broader than larger action potentials, and the changes in height and shape could be explained by a simple cable conduction model using measured morphological and electrical parameters. The model could also account for the observed relationship between action potential height and threshold.

These results indicate that reliable recording from the tactile spine neuron is possible, but that variability in the positions of the penetration or the spike initiating zone cause an apparently wide range of electrophysiological measurements.

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References

  • Basarsky TA, French AS (1991) Intracellular measurements from a rapidly adapting sensory neuron. J Neurophysiol 65:49–56

    Google Scholar 

  • Bohnenberger J (1981) Matched transfer characteristics of single units in a compound slit sense organ. J Comp Physiol 142:391–402

    Google Scholar 

  • Carpenter DO, Hovey MM, Bak AF (1971) Intracellular conductance of Aplysia neurons and squid axon as determined by a new technique. Int J Neurosci 2:35–48

    Google Scholar 

  • Chesler M, Fourtner CR (1981) Mechanical properties of a slow muscle in the cockroach. J Neurobiol 12:391–402

    Google Scholar 

  • Chiu SY, Rogart JM, Stagg D (1979) A quantitative description of membrane currents in rabbit myelinated nerve. J Physiol 292:149–166

    Google Scholar 

  • Cole KS, Hodgkin AL (1939) Membrane and protoplasm resistance in the squid axon. J Gen Physiol 22:671–687

    Google Scholar 

  • Erler G, Thurm U (1981) Dendritic impulse initiation in an epithelial sensory neuron. J Comp Physiol 142:237–249

    Google Scholar 

  • French AS (1984a) The receptor potential and adaptation in the cockroach tactile spine. J Neurosci 4:2063–2068

    Google Scholar 

  • French AS (1984b) Action potential adaptation in the cockroach tactile spine. J Comp Physiol A 155:803–812

    Google Scholar 

  • French AS (1986) Strength-duration properties of a rapidly adapting insect sensory neuron. J Comp Physiol A 159:757–764

    Google Scholar 

  • French AS (1988) Transduction mechanisms of mechanosensilla. Annu Rev Physiol 33:39–58

    Google Scholar 

  • French AS, Sanders EJ (1981) The mechanosensory apparatus of the femoral tactile spine of the cockroach, Periplaneta americana. Cell Tissue Res 219:53–68

    Google Scholar 

  • Guillet JC, Bernard J, Coillot JP, Callec JJ (1980) Electrical properties of the dendrite in an insect mechanoreceptor: effects of antidromic or direct electrical stimulation. J Insect Physiol 26:755–62

    Google Scholar 

  • Hodgkin AL, Rushton WAH (1946) The electrical constants of a crustacean nerve fibre. Proc R Soc Lond B 133:97–132

    Google Scholar 

  • Jack JJB, Noble D, Tsien RW (1983) Electric current flow in excitable cells. Clarendon Press, Oxford

    Google Scholar 

  • McIver SB (1985) Mechanoreception. In: Kerkut GA, Gilbert LI (eds) Comprehensive insect physiology, biochemistry and pharmacology. Pergamon Press, Oxford, pp 71–132

    Google Scholar 

  • Mendelson M, Loewenstein WR (1964) Mechanisms of receptor adaptation. Science 144:554–555

    Google Scholar 

  • Seyfarth E-A, Bohnenberger J, Thorson J (1982) Electrical and mechanical stimulation of a spider slit sensillum: outward current excites. J Comp Physiol 147:423–432

    Google Scholar 

  • Thurm U, Küppers J (1980) Epithelial physiology of insect sensilla. In: Locke M, Smith D (eds) Insect biology in the future. Academic Press, New York, pp 735–763

    Google Scholar 

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Stockbridge, L.L., French, A.S. The morphological basis of intracellular measurements in the cockroach tactile spine neuron. J Comp Physiol A 169, 471–477 (1991). https://doi.org/10.1007/BF00197659

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