Distinct NMDA Receptor Pools Determine Diverse Forms of Cortical Plasticity
Rannio, S.; Lubembele, K.; Ko, C. B.; Cherepacha, N.; Li, V. Y.; Moffat, G.; Alageswaran, S.; Thomazeau, A.; Lujan, R.; Sjostrom, P. J.
Show abstract
NMDA receptors (NMDARs) are well-established as coincidence detectors in Hebbian learning, but this requires postsynaptic localization. Presynaptic NMDARs, however, remain controversial due to limitations of pharmacology and calcium imaging. We therefore dissected the function of distinct NMDAR pools using more direct techniques, including immunogold EM, sparse genetic deletion, and paired recordings from layer-5 (L5) pyramidal cell (PC) synapses in mouse primary visual cortex (V1). We found that pre- but not postsynaptic NMDARs regulate both spontaneous and evoked neurotransmitter release. In spike-timing-dependent plasticity, we uncovered a double dissociation: timing-dependent long-term depression (tLTD) requires pre- but not postsynaptic NMDARs, whereas timing-dependent long-term potentiation (tLTP) needs post- but not presynaptic NMDARs. Postsynaptic NMDAR loss also caused developmentally delayed dendritic spine loss and altered axonal and dendritic architecture. In summary, NMDARs do not act as a unified plasticity signal but rather confer location-specific control over diverse forms of synaptic signaling, plasticity, and circuit structure.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Modular Arrangement of Synaptic and Intrinsic Homeostatic Plasticity within Visual Cortical Circuits 96%
- All-or-none disconnection of pyramidal inputs onto parvalbumin-positive interneurons gates ocular dominance plasticity 96%
- Fully-primed slowly-recovering vesicles mediate presynaptic LTP at neocortical neurons 96%
Similar papers in this journal
Similar papers in this journal
- Spinal V1 neurons inhibit motor targets locally and sensory targets distally to coordinate locomotion 95%
- Orbitofrontal cortex populations are differentially recruited to support actions 94%
- Activity-dependent nucleation of dynamic microtubules at presynaptic boutons is required for neurotransmission 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.