Endfoot regeneration restricts radial glial state and prevents translocation into the outer subventricular zone in early mammalian brain development

被引:28
|
作者
Fujita, Ikumi [1 ]
Shitamukai, Atsunori [1 ]
Kusumoto, Fumiya [1 ,2 ]
Mase, Shun [1 ,2 ]
Suetsugu, Taeko [1 ]
Omori, Ayaka [1 ]
Kato, Kagayaki [3 ]
Abe, Takaya [4 ,5 ]
Shioi, Go [5 ]
Konno, Daijiro [1 ,6 ]
Matsuzaki, Fumio [1 ,2 ]
机构
[1] RIKEN, Lab Cell Asymmetry, Ctr Biosyst Dynam Res, Kobe, Hyogo, Japan
[2] Kyoto Univ, Grad Sch Biostudies, Dept Anim Dev & Physiol, Lab Mol Cell Biol & Dev, Kyoto, Japan
[3] Natl Inst Nat Sci, Exploratory Res Ctr Life & Living Syst ExCELLS, Tokyo, Japan
[4] RIKEN, Lab Anim Resource Dev, Ctr Biosyst Dynam Res, Kobe, Hyogo, Japan
[5] RIKEN, Lab Genet Engn, Ctr Biosyst Dynam Res, Kobe, Hyogo, Japan
[6] Kyushu Univ, Div Pathophysiol, Med Inst Bioregulat, Fukuoka, Japan
基金
日本学术振兴会;
关键词
MITOTIC SPINDLE ORIENTATION; NEURAL STEM-CELLS; ASYMMETRIC INHERITANCE; PLANAR DIVISIONS; PROGENITORS; NEURONS; GENERATION; NOTCH; INTERCALATION; ACTIVATION;
D O I
10.1038/s41556-019-0436-9
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Neural stem cells, called radial glia, maintain epithelial structure during the early neocortical development. The prevailing view claims that when radial glia first proliferate, their symmetric divisions require strict spindle orientation; its perturbation causes precocious neurogenesis and apoptosis. Here, we show that despite this conventional view, radial glia at the proliferative stage undergo normal symmetric divisions by regenerating an apical endfoot even if it is lost by oblique divisions. We found that the Notch-R-Ras-integrin beta 1 pathway promotes the regeneration of endfeet, whose leading edge bears ectopic adherens junctions and the Par-polarity complex. However, this regeneration ability gradually declines during the subsequent neurogenic stage and hence oblique divisions induce basal translocation of radial glia to form the outer subventricular zone, a hallmark of the development of the convoluted brain. Our study reveals that endfoot regeneration is a temporally changing cryptic property, which controls the radial glial state and its shift is essential for mammalian brain size expansion. Fujita et al. show that endfoot regeneration of radial glia cells after division retains them in the ventricular zone in early development, independently of spindle orientation, but is lost during late neurogenesis.
引用
收藏
页码:26 / +
页数:28
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  • [1] Endfoot regeneration restricts radial glial state and prevents translocation into the outer subventricular zone in early mammalian brain development
    Ikumi Fujita
    Atsunori Shitamukai
    Fumiya Kusumoto
    Shun Mase
    Taeko Suetsugu
    Ayaka Omori
    Kagayaki Kato
    Takaya Abe
    Go Shioi
    Daijiro Konno
    Fumio Matsuzaki
    Nature Cell Biology, 2020, 22 : 26 - 37