4.8 Article

Dynamic Reconfiguration of Hippocampal Interneuron Circuits during Spatial Learning

Journal

NEURON
Volume 78, Issue 1, Pages 166-180

Publisher

CELL PRESS
DOI: 10.1016/j.neuron.2013.01.033

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Funding

  1. MRC [U138197111]
  2. European Research Council [281511]
  3. Saint Edmund Hall College, University of Oxford
  4. European Research Council (ERC) [281511] Funding Source: European Research Council (ERC)
  5. Medical Research Council [MC_UU_12020/7, MC_U138197111] Funding Source: researchfish
  6. MRC [MC_UU_12020/7, MC_U138197111] Funding Source: UKRI

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In the hippocampus, cell assemblies forming mnemonic representations of space are thought to arise as a result of changes in functional connections of pyramidal cells. We have found that CA1 interneuron circuits are also reconfigured during goal-oriented spatial learning through modification of inputs from pyramidal cells. As learning progressed, new pyramidal assemblies expressed in theta cycles alternated with previously established ones, and eventually overtook them. The firing patterns of interneurons developed a relationship to new, learning-related assemblies: some interneurons associated their activity with new pyramidal assemblies while some others dissociated from them. These firing associations were explained by changes in the weight of monosynaptic inputs received by interneurons from new pyramidal assemblies, as these predicted the associational changes. Spatial learning thus engages circuit modifications in the hippocampus that incorporate a redistribution of inhibitory activity that might assist in the segregation of competing pyramidal cell assembly patterns in space and time.

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