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A disinhibitory microcircuit for associative fear learning in the auditory cortex. | LitMetric

AI Article Synopsis

  • Learning changes how neuronal circuits process information, but the specific mechanisms at the circuit level are less understood compared to synaptic plasticity.
  • Research shows that forming fear memories in mice relies on a disinhibitory microcircuit in the auditory cortex, which is activated by cholinergic signals from foot shocks.
  • Disrupting this disinhibition in pyramidal neurons prevents fear learning, highlighting the importance of auditory stimulus convergence and layer-1 disinhibition in learning and information processing within these brain circuits.

Article Abstract

Learning causes a change in how information is processed by neuronal circuits. Whereas synaptic plasticity, an important cellular mechanism, has been studied in great detail, we know much less about how learning is implemented at the level of neuronal circuits and, in particular, how interactions between distinct types of neurons within local networks contribute to the process of learning. Here we show that acquisition of associative fear memories depends on the recruitment of a disinhibitory microcircuit in the mouse auditory cortex. Fear-conditioning-associated disinhibition in auditory cortex is driven by foot-shock-mediated cholinergic activation of layer 1 interneurons, in turn generating inhibition of layer 2/3 parvalbumin-positive interneurons. Importantly, pharmacological or optogenetic block of pyramidal neuron disinhibition abolishes fear learning. Together, these data demonstrate that stimulus convergence in the auditory cortex is necessary for associative fear learning to complex tones, define the circuit elements mediating this convergence and suggest that layer-1-mediated disinhibition is an important mechanism underlying learning and information processing in neocortical circuits.

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Source
http://dx.doi.org/10.1038/nature10674DOI Listing

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