Chemico-genetic discovery of astrocytic control of inhibition in vivo

被引:0
作者
Tetsuya Takano
John T. Wallace
Katherine T. Baldwin
Alicia M. Purkey
Akiyoshi Uezu
Jamie L. Courtland
Erik J. Soderblom
Tomomi Shimogori
Patricia F. Maness
Cagla Eroglu
Scott H. Soderling
机构
[1] Duke University Medical School,The Department of Cell Biology
[2] Duke University Medical School,Department of Neurobiology
[3] Duke University Medical School,Duke Proteomics and Metabolomics Shared Resource and Duke Center for Genomic and Computational Biology
[4] Molecular Mechanisms of Brain Development,Department of Biochemistry
[5] Center for Brain Science (CBS),Department of Biophysics
[6] RIKEN,undefined
[7] University of North Carolina School of Medicine,undefined
[8] University of North Carolina School of Medicine,undefined
来源
Nature | 2020年 / 588卷
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摘要
Perisynaptic astrocytic processes are an integral part of central nervous system synapses1,2; however, the molecular mechanisms that govern astrocyte–synapse adhesions and how astrocyte contacts control synapse formation and function are largely unknown. Here we use an in vivo chemico-genetic approach that applies a cell-surface fragment complementation strategy, Split-TurboID, and identify a proteome that is enriched at astrocyte–neuron junctions in vivo, which includes neuronal cell adhesion molecule (NRCAM). We find that NRCAM is expressed in cortical astrocytes, localizes to perisynaptic contacts and is required to restrict neuropil infiltration by astrocytic processes. Furthermore, we show that astrocytic NRCAM interacts transcellularly with neuronal NRCAM coupled to gephyrin at inhibitory postsynapses. Depletion of astrocytic NRCAM reduces numbers of inhibitory synapses without altering glutamatergic synaptic density. Moreover, loss of astrocytic NRCAM markedly decreases inhibitory synaptic function, with minor effects on excitation. Thus, our results present a proteomic framework for how astrocytes interface with neurons and reveal how astrocytes control GABAergic synapse formation and function.
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页码:296 / 302
页数:6
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