Altered electrical properties in Drosophila neurons developing without synaptic transmission

J Neurosci. 2001 Mar 1;21(5):1523-31. doi: 10.1523/JNEUROSCI.21-05-01523.2001.

Abstract

We examine the role of synaptic activity in the development of identified Drosophila embryonic motorneurons. Synaptic activity was blocked by both pan-neuronal expression of tetanus toxin light chain (TeTxLC) and by reduction of acetylcholine (ACh) using a temperature-sensitive allele of choline acetyltransferase (Cha(ts2)). In the absence of synaptic activity, aCC and RP2 motorneurons develop with an apparently normal morphology and retain their capacity to form synapses. However, blockade of synaptic transmission results in significant changes in the electrical phenotype of these neurons. Specifically, increases are seen in both voltage-gated inward Na(+) and voltage-gated outward K(+) currents. Voltage-gated Ca(2+) currents do not change. The changes in conductances appear to promote neuron excitability. In the absence of synaptic activity, the number of action potentials fired by a depolarizing ramp (-60 to +60 mV) is increased and, in addition, the amplitude of the initial action potential fired is also significantly larger. Silencing synaptic input to just aCC, without affecting inputs to other neurons, demonstrates that the capability to respond to changing levels of synaptic excitation is intrinsic to these neurons. The alteration to electrical properties are not permanent, being reversed by restoration of normal synaptic function. Whereas our data suggest that synaptic activity makes little or no contribution to the initial formation of embryonic neural circuits, the electrical development of neurons that constitute these circuits seems to depend on a process that requires synaptic activity.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acetylcholine / deficiency
  • Action Potentials / drug effects
  • Action Potentials / physiology
  • Animals
  • Calcium Channels / metabolism
  • Choline O-Acetyltransferase / genetics
  • Choline O-Acetyltransferase / metabolism
  • Drosophila
  • Excitatory Postsynaptic Potentials / drug effects
  • Excitatory Postsynaptic Potentials / physiology
  • In Vitro Techniques
  • Metalloendopeptidases / biosynthesis
  • Metalloendopeptidases / genetics
  • Metalloendopeptidases / pharmacology
  • Motor Neurons / cytology
  • Motor Neurons / drug effects
  • Motor Neurons / physiology*
  • Patch-Clamp Techniques
  • Potassium Channels / metabolism
  • Sodium Channels / metabolism
  • Synapses / drug effects
  • Synapses / metabolism
  • Synaptic Transmission / drug effects
  • Synaptic Transmission / physiology*
  • Temperature
  • Tetanus Toxin / biosynthesis
  • Tetanus Toxin / genetics
  • Tetanus Toxin / pharmacology

Substances

  • Calcium Channels
  • Potassium Channels
  • Sodium Channels
  • Tetanus Toxin
  • Choline O-Acetyltransferase
  • Metalloendopeptidases
  • zinc-endopeptidase, tetanus neurotoxin
  • Acetylcholine