Dendritic mechanisms contribute to stimulus-specific adaptation in an insect neuron

J Neurophysiol. 2013 Nov;110(9):2217-26. doi: 10.1152/jn.00057.2013. Epub 2013 Aug 14.

Abstract

Reduced neuronal activation to repetitive stimulation is a common feature of information processing in nervous systems. Such stimulus-specific adaptation (SSA) occurs in many systems, but the underlying neural mechanisms are not well understood. The Neoconocephalus (Orthoptera, Tettigoniidae) TN-1 auditory neuron exhibits an SSA-like process, characterized by reliably detecting deviant pulses after response cessation to common standard pulses. Therefore, TN-1 provides a model system to study the cellular mechanisms underlying SSA with an identified neuron. Here we test the hypothesis that dendritic mechanisms underlie TN-1 response cessation to fast-pulse rate repeated signals. Electrically stimulating TN-1 with either high-rate or continuous-current pulses resulted in a decreased ability in TN-1 to generate action potentials but failed to elicit cessation of spiking activity as observed with acoustic stimulation. BAPTA injection into TN-1 delayed the onset of response cessation to fast-pulse rate acoustic stimuli in TN-1 but did not eliminate it. These results indicate that calcium-mediated processes contribute to the fast cessation of spiking activity in TN-1 but are insufficient to cause spike cessation on its own. Replacing normal saline with low-Na(+) saline (replacing sodium chloride with either lithium chloride or choline chloride) eliminated response cessation, and TN-1 no longer responded selectively to the deviant pulses. Sodium-mediated potassium channels are the most likely candidates underlying sodium-mediated response suppression in TN-1, triggered by Na(+) influx in dendritic regions activated by acoustic stimuli. On the basis of these results, we present a model for a cellular mechanism for SSA in a single auditory neuron.

Keywords: auditory neuron; hearing; insect.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Acoustic Stimulation
  • Action Potentials*
  • Adaptation, Physiological*
  • Animals
  • Calcium / metabolism
  • Dendrites / metabolism
  • Dendrites / physiology*
  • Ganglia, Invertebrate / cytology
  • Ganglia, Invertebrate / metabolism
  • Ganglia, Invertebrate / physiology*
  • Neurons, Afferent / metabolism
  • Neurons, Afferent / physiology*
  • Orthoptera
  • Potassium Channels / metabolism
  • Sodium / metabolism

Substances

  • Potassium Channels
  • Sodium
  • Calcium