4.8 Article

Correlated Synaptic Inputs Drive Dendritic Calcium Amplification and Cooperative Plasticity during Clustered Synapse Development

Journal

NEURON
Volume 89, Issue 4, Pages 784-799

Publisher

CELL PRESS
DOI: 10.1016/j.neuron.2016.01.012

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Funding

  1. Canadian Institutes of Health Research (CIHR)
  2. Natural Sciences and Engineering Research Council of Canada (NSERC)
  3. Heart and Stroke Foundation Canadian Partnership for Stroke Recovery
  4. University of Ottawa Brain and Mind Research Institute
  5. Ontario Graduate Scholarships
  6. CIHR

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The mechanisms that instruct the assembly of finescale features of synaptic connectivity in neural circuits are only beginning to be understood. Using whole-cell electrophysiology, two-photon calcium imaging, and glutamate uncaging in hippocampal slices, we discovered a functional coupling between NMDA receptor activation and ryanodine-sensitive intracellular calcium release that dominates the spatiotemporal dynamics of activity-dependent calcium signals during synaptogenesis. This developmentally regulated calcium amplification mechanism was tuned to detect and bind spatially clustered and temporally correlated synaptic inputs and enacted a local cooperative plasticity rule between coactive neighboring synapses. Consistent with the hypothesis that synapse maturation is spatially regulated, we observed clustering of synaptic weights in developing dendritic arbors. These results reveal developmental features of NMDA receptor-dependent calcium dynamics and local plasticity rules that are suited to spatially guide synaptic connectivity patterns in emerging neural networks.

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