TY - JOUR
T1 - Fhod3 controls the dendritic spine morphology of specific subpopulations of pyramidal neurons in the mouse cerebral cortex
AU - Sulistomo, Hikmawan Wahyu
AU - Nemoto, Takayuki
AU - Kage, Yohko
AU - Fujii, Hajime
AU - Uchida, Taku
AU - Takamiya, Kogo
AU - Sumimoto, Hideki
AU - Kataoka, Hiroaki
AU - Bito, Haruhiko
AU - Takeya, Ryu
N1 - Funding Information:
This work was supported in part by Grants-in-aid for Scientific Research (C) (JP18K06701 to T.N., JP19K07355 to R.T., JP19K11793 to Y.K.) from the Japan Society for the Promotion of Science; a Grant-in-aid for Research Activity Start-up (JP19K23830 to H.W.S.) from the Japan Society for the Promotion of Science; a Grant-in-aid for Scientific Research on Innovative Areas, “Platform of Advanced Animal Model Support,” (to R.T.) from the Ministry of Education, Culture, Sports, Science, and Technology; a grant from the Japan Research Institute of Industrial Science (Fukuyama) (to R.T.); a grant from Kobayashi Foundation (to R.T. and H.W.S.); a grant from TERUMO Life Science Foundation (to R.T.); the joint research program of the Biosignal Research Center, Kobe University (to R.T.); and the President’s Strategic Priority Budget of the University of Miyazaki (to R.T.).
Publisher Copyright:
© The Author(s) 2020.
PY - 2021
Y1 - 2021
N2 - Changes in the shape and size of the dendritic spines are critical for synaptic transmission. These morphological changes depend on dynamic assembly of the actin cytoskeleton and occur differently in various types of neurons. However, how the actin dynamics are regulated in a neuronal cell type-specific manner remains largely unknown. We show that Fhod3, a member of the formin family proteins that mediate F-actin assembly, controls the dendritic spine morphogenesis of specific subpopulations of cerebrocortical pyramidal neurons. Fhod3 is expressed specifically in excitatory pyramidal neurons within layers II/III and V of restricted areas of the mouse cerebral cortex. Immunohistochemical and biochemical analyses revealed the accumulation of Fhod3 in postsynaptic spines. Although targeted deletion of Fhod3 in the brain did not lead to any defects in the gross or histological appearance of the brain, the dendritic spines in pyramidal neurons within presumptive Fhod3-positive areas were morphologically abnormal. In primary cultures prepared from the Fhod3-depleted cortex, defects in spine morphology were only detected in Fhod3 promoter-active cells, a small population of pyramidal neurons, and not in Fhod3 promoter-negative pyramidal neurons. Thus, Fhod3 plays a crucial role in dendritic spine morphogenesis only in a specific population of pyramidal neurons in a cell type-specific manner.
AB - Changes in the shape and size of the dendritic spines are critical for synaptic transmission. These morphological changes depend on dynamic assembly of the actin cytoskeleton and occur differently in various types of neurons. However, how the actin dynamics are regulated in a neuronal cell type-specific manner remains largely unknown. We show that Fhod3, a member of the formin family proteins that mediate F-actin assembly, controls the dendritic spine morphogenesis of specific subpopulations of cerebrocortical pyramidal neurons. Fhod3 is expressed specifically in excitatory pyramidal neurons within layers II/III and V of restricted areas of the mouse cerebral cortex. Immunohistochemical and biochemical analyses revealed the accumulation of Fhod3 in postsynaptic spines. Although targeted deletion of Fhod3 in the brain did not lead to any defects in the gross or histological appearance of the brain, the dendritic spines in pyramidal neurons within presumptive Fhod3-positive areas were morphologically abnormal. In primary cultures prepared from the Fhod3-depleted cortex, defects in spine morphology were only detected in Fhod3 promoter-active cells, a small population of pyramidal neurons, and not in Fhod3 promoter-negative pyramidal neurons. Thus, Fhod3 plays a crucial role in dendritic spine morphogenesis only in a specific population of pyramidal neurons in a cell type-specific manner.
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U2 - 10.1093/cercor/bhaa355
DO - 10.1093/cercor/bhaa355
M3 - Article
C2 - 33251537
AN - SCOPUS:85102910255
SN - 1047-3211
VL - 31
SP - 2205
EP - 2219
JO - Cerebral Cortex
JF - Cerebral Cortex
IS - 4
ER -