Unified pre- and postsynaptic long-term plasticity enables reliable and flexible learning

Elife. 2015 Aug 26:4:e09457. doi: 10.7554/eLife.09457.

Abstract

Although it is well known that long-term synaptic plasticity can be expressed both pre- and postsynaptically, the functional consequences of this arrangement have remained elusive. We show that spike-timing-dependent plasticity with both pre- and postsynaptic expression develops receptive fields with reduced variability and improved discriminability compared to postsynaptic plasticity alone. These long-term modifications in receptive field statistics match recent sensory perception experiments. Moreover, learning with this form of plasticity leaves a hidden postsynaptic memory trace that enables fast relearning of previously stored information, providing a cellular substrate for memory savings. Our results reveal essential roles for presynaptic plasticity that are missed when only postsynaptic expression of long-term plasticity is considered, and suggest an experience-dependent distribution of pre- and postsynaptic strength changes.

Keywords: computational biology; learning rules; memory savings; neuroscience; pre- and postsynaptic long-term plasticity; rat; receptive fields; spike-timing-dependent plasticity; synaptic transmission; systems biology.

Publication types

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

MeSH terms

  • Action Potentials
  • Animals
  • Learning*
  • Models, Theoretical
  • Neuronal Plasticity*
  • Time Factors