Tomofumi Oga
Overview
Explore the profile of Tomofumi Oga including associated specialties, affiliations and a list of published articles.
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Articles
13
Citations
254
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Recent Articles
1.
Noguchi J, Watanabe S, Oga T, Isoda R, Nakagaki K, Sakai K, et al.
Commun Biol
. 2024 May;
7(1):642.
PMID: 38802535
Alterations in the experience-dependent and autonomous elaboration of neural circuits are assumed to underlie autism spectrum disorder (ASD), though it is unclear what synaptic traits are responsible. Here, utilizing a...
2.
Watanabe S, Kurotani T, Oga T, Noguchi J, Isoda R, Nakagami A, et al.
Nat Commun
. 2021 Sep;
12(1):5388.
PMID: 34526497
Autism spectrum disorder (ASD) is a multifactorial disorder with characteristic synaptic and gene expression changes. Early intervention during childhood is thought to benefit prognosis. Here, we examined the changes in...
3.
Mimura K, Oga T, Sasaki T, Nakagaki K, Sato C, Sumida K, et al.
Neuroimage
. 2019 Apr;
195:243-251.
PMID: 30953832
In autism spectrum disorder (ASD), disrupted functional and structural connectivity in the social brain has been suggested as the core biological mechanism underlying the social recognition deficits of this neurodevelopmental...
4.
Oga T, Elston G, Fujita I
Front Neurosci
. 2017 Mar;
11:118.
PMID: 28348514
Pyramidal cells in the primate cerebral cortex, particularly those in layer III, exhibit regional variation in both the time course and magnitude of postnatal growth and pruning of dendrites and...
5.
Oga T, Okamoto T, Fujita I
Front Neural Circuits
. 2016 Oct;
10:74.
PMID: 27708563
Neurons in the mammalian primary visual cortex (V1) are systematically arranged across the cortical surface according to the location of their receptive fields (RFs), forming a visuotopic (or retinotopic) map....
6.
Sasaki T, Aoi H, Oga T, Fujita I, Ichinohe N
Brain Struct Funct
. 2014 Jul;
220(6):3245-58.
PMID: 25064470
In the primate cerebral cortex, dendritic spines rapidly increase in number after birth up to infancy or mid-childhood, and then decrease towards adulthood. Abnormalities in these processes accompany several psychiatric...
7.
Sasaki T, Oga T, Nakagaki K, Sakai K, Sumida K, Hoshino K, et al.
Biochem Biophys Res Commun
. 2014 Feb;
444(3):302-6.
PMID: 24485715
The synapse number and the related dendritic spine number in the cerebral cortex of primates shows a rapid increase after birth. Depending on the brain region and species, the number...
8.
Sasaki T, Oga T, Nakagaki K, Sakai K, Sumida K, Hoshino K, et al.
Biochem Biophys Res Commun
. 2014 Jan;
444(3):307-10.
PMID: 24440696
This is the second report of a series paper, which reports molecular mechanisms underlying the occurrence of pruning spine phase after rapid spinogenesis phase in neonates and young infant in...
9.
Oga T, Aoi H, Sasaki T, Fujita I, Ichinohe N
Front Neural Circuits
. 2013 Mar;
7:31.
PMID: 23483808
Abnormalities in the processes of the generation and/or pruning of dendritic spines have been implicated in several mental disorders including autism and schizophrenia. We have chosen to examine the common...
10.
Elston G, Oga T, Okamoto T, Fujita I
Front Neuroanat
. 2011 Aug;
5:42.
PMID: 21811440
Pyramidal cells grow and mature at different rates among different cortical areas in the macaque monkey. In particular, differences across the areas have been reported in both the timing and...