Inside-out radial migration facilitates lineage-dependent neocortical microcircuit assembly Journal Article


Authors: He, S.; Li, Z.; Ge, S.; Yu, Y. C.; Shi, S. H.
Article Title: Inside-out radial migration facilitates lineage-dependent neocortical microcircuit assembly
Abstract: Neocortical excitatory neurons migrate radially along the glial fibers of mother radial glial progenitors (RGPs) in a birth-date-dependent inside-out manner. However, the precise functional significance of this well-established orderly neuronal migration remains largely unclear. Here, we show that strong electrical synapses selectively form between RGPs and their newborn progeny and between sister excitatory neurons in ontogenetic radial clones at the embryonic stage. Interestingly, the preferential electrical coupling between sister excitatory neurons, but not that between RGP and newborn progeny, is eliminated in mice lacking REELIN or upon clonal depletion of DISABLED-1, which compromises the inside-out radial neuronal migration pattern in the developing neocortex. Moreover, increased levels of Ephrin-A ligand or receptor that laterally disperse sister excitatory neurons also disrupt preferential electrical coupling between radially aligned sister excitatory neurons. These results suggest that RGP-guided inside-out radial neuronal migration facilitates the initial assembly of lineage-dependent precise columnar microcircuits in the neocortex. He et al. show that electrical synapses preferentially form between progenitor and newborn progeny, and between sister excitatory neurons, in the embryonic neocortex. Moreover, disruption of the birth-date-dependent inside-out radial migration impairs preferential electrical coupling between sister excitatory neurons. © 2015 Elsevier Inc.
Keywords: controlled study; unclassified drug; nonhuman; mouse; embryo; protein depletion; brain development; progeny; cell migration; neocortex; developmental stage; ephrin; synapse; adaptor protein; brain nerve cell; ephrin receptor; reelin; ephrin a receptor; priority journal; article; disabled 1 protein; ephrin a
Journal Title: Neuron
Volume: 86
Issue: 5
ISSN: 0896-6273
Publisher: Cell Press  
Date Published: 2015-06-03
Start Page: 1159
End Page: 1166
Language: English
DOI: 10.1016/j.neuron.2015.05.002
PROVIDER: scopus
PMCID: PMC4458701
PUBMED: 26050035
DOI/URL:
Notes: Export Date: 2 July 2015 -- Source: Scopus
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  1. Song-Hai Shi
    52 Shi
  2. Shuijin Jian He
    3 He
  3. Zhizhong Li
    11 Li