Spatial regulation of coordinated excitatory and inhibitory synaptic plasticity at dendritic synapses
The induction of synaptic plasticity at an individual dendritic glutamatergic spine can affect neighboring spines. This local modulation generates dendritic plasticity microdomains believed to expand the neuronal computational capacity. Here, we investigate whether local modulation of plasticity can...
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Published in | Cell reports (Cambridge) Vol. 38; no. 6; p. 110347 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
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Elsevier Inc
08.02.2022
Cell Press Elsevier |
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Abstract | The induction of synaptic plasticity at an individual dendritic glutamatergic spine can affect neighboring spines. This local modulation generates dendritic plasticity microdomains believed to expand the neuronal computational capacity. Here, we investigate whether local modulation of plasticity can also occur between glutamatergic synapses and adjacent GABAergic synapses. We find that the induction of long-term potentiation at an individual glutamatergic spine causes the depression of nearby GABAergic inhibitory synapses (within 3 μm), whereas more distant ones are potentiated. Notably, L-type calcium channels and calpain are required for this plasticity spreading. Overall, our data support a model whereby input-specific glutamatergic postsynaptic potentiation induces a spatially regulated rearrangement of inhibitory synaptic strength in the surrounding area through short-range heterosynaptic interactions. Such local coordination of excitatory and inhibitory synaptic plasticity is expected to influence dendritic information processing and integration.
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•LTP of individual dendritic spines causes iLTD at neighboring GABAergic synapses•Interaction between single-spine LTP and iLTD occurs in the spatial range of ±3 μm•This iLTD depends on the local dendritic calcium increase and calpain activation•iLTD is associated with reduced gephyrin clustering and increased GABAAR mobility
How do neighboring dendritic excitatory and inhibitory synapses interact in hippocampal neurons? Here, Ravasenga et al. reveal the spatial rules of heterosynaptic plasticity by demonstrating that LTP at an individual dendritic spine depresses adjacent GABAergic synapses in the range of ±3 μm. |
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AbstractList | The induction of synaptic plasticity at an individual dendritic glutamatergic spine can affect neighboring spines. This local modulation generates dendritic plasticity microdomains believed to expand the neuronal computational capacity. Here, we investigate whether local modulation of plasticity can also occur between glutamatergic synapses and adjacent GABAergic synapses. We find that the induction of long-term potentiation at an individual glutamatergic spine causes the depression of nearby GABAergic inhibitory synapses (within 3 μm), whereas more distant ones are potentiated. Notably, L-type calcium channels and calpain are required for this plasticity spreading. Overall, our data support a model whereby input-specific glutamatergic postsynaptic potentiation induces a spatially regulated rearrangement of inhibitory synaptic strength in the surrounding area through short-range heterosynaptic interactions. Such local coordination of excitatory and inhibitory synaptic plasticity is expected to influence dendritic information processing and integration. The induction of synaptic plasticity at an individual dendritic glutamatergic spine can affect neighboring spines. This local modulation generates dendritic plasticity microdomains believed to expand the neuronal computational capacity. Here, we investigate whether local modulation of plasticity can also occur between glutamatergic synapses and adjacent GABAergic synapses. We find that the induction of long-term potentiation at an individual glutamatergic spine causes the depression of nearby GABAergic inhibitory synapses (within 3 μm), whereas more distant ones are potentiated. Notably, L-type calcium channels and calpain are required for this plasticity spreading. Overall, our data support a model whereby input-specific glutamatergic postsynaptic potentiation induces a spatially regulated rearrangement of inhibitory synaptic strength in the surrounding area through short-range heterosynaptic interactions. Such local coordination of excitatory and inhibitory synaptic plasticity is expected to influence dendritic information processing and integration. • LTP of individual dendritic spines causes iLTD at neighboring GABAergic synapses • Interaction between single-spine LTP and iLTD occurs in the spatial range of ±3 μm • This iLTD depends on the local dendritic calcium increase and calpain activation • iLTD is associated with reduced gephyrin clustering and increased GABAAR mobility How do neighboring dendritic excitatory and inhibitory synapses interact in hippocampal neurons? Here, Ravasenga et al. reveal the spatial rules of heterosynaptic plasticity by demonstrating that LTP at an individual dendritic spine depresses adjacent GABAergic synapses in the range of ±3 μm. The induction of synaptic plasticity at an individual dendritic glutamatergic spine can affect neighboring spines. This local modulation generates dendritic plasticity microdomains believed to expand the neuronal computational capacity. Here, we investigate whether local modulation of plasticity can also occur between glutamatergic synapses and adjacent GABAergic synapses. We find that the induction of long-term potentiation at an individual glutamatergic spine causes the depression of nearby GABAergic inhibitory synapses (within 3 μm), whereas more distant ones are potentiated. Notably, L-type calcium channels and calpain are required for this plasticity spreading. Overall, our data support a model whereby input-specific glutamatergic postsynaptic potentiation induces a spatially regulated rearrangement of inhibitory synaptic strength in the surrounding area through short-range heterosynaptic interactions. Such local coordination of excitatory and inhibitory synaptic plasticity is expected to influence dendritic information processing and integration. [Display omitted] •LTP of individual dendritic spines causes iLTD at neighboring GABAergic synapses•Interaction between single-spine LTP and iLTD occurs in the spatial range of ±3 μm•This iLTD depends on the local dendritic calcium increase and calpain activation•iLTD is associated with reduced gephyrin clustering and increased GABAAR mobility How do neighboring dendritic excitatory and inhibitory synapses interact in hippocampal neurons? Here, Ravasenga et al. reveal the spatial rules of heterosynaptic plasticity by demonstrating that LTP at an individual dendritic spine depresses adjacent GABAergic synapses in the range of ±3 μm. |
ArticleNumber | 110347 |
Author | Ravasenga, Tiziana Barberis, Andrea Petrini, Enrica Maria Regio, Vincenzo Ruben, Massimo Polenghi, Alice |
Author_xml | – sequence: 1 givenname: Tiziana surname: Ravasenga fullname: Ravasenga, Tiziana organization: Neuroscience and Brain Technologies Department, Fondazione Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy – sequence: 2 givenname: Massimo surname: Ruben fullname: Ruben, Massimo organization: Neuroscience and Brain Technologies Department, Fondazione Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy – sequence: 3 givenname: Vincenzo orcidid: 0000-0003-2002-9612 surname: Regio fullname: Regio, Vincenzo organization: Neuroscience and Brain Technologies Department, Fondazione Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy – sequence: 4 givenname: Alice surname: Polenghi fullname: Polenghi, Alice organization: Neuroscience and Brain Technologies Department, Fondazione Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy – sequence: 5 givenname: Enrica Maria surname: Petrini fullname: Petrini, Enrica Maria organization: Neuroscience and Brain Technologies Department, Fondazione Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy – sequence: 6 givenname: Andrea surname: Barberis fullname: Barberis, Andrea email: andrea.barberis@iit.it organization: Neuroscience and Brain Technologies Department, Fondazione Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/35139381$$D View this record in MEDLINE/PubMed |
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Keywords | GABA uncaging glutamatergic spines heterosynaptic plasticity glutamatergic synaptic plasticity receptor lateral diffusion dendrites glutamate uncaging gephyrin calcium imaging GABAergic synaptic plasticity |
Language | English |
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Title | Spatial regulation of coordinated excitatory and inhibitory synaptic plasticity at dendritic synapses |
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