Area of research
Molecular Biology · Neurology
Research interest
Research focused on Epiblast and Antidepressant, with related work in Cell biology, Hippocampal formation, CREB. Notable publications include 'The transcription factor Pou3f1 promotes neural fate commitment via activation of neural lineage genes and inhibition of external signaling pathways', 'Spatial Transcriptome for the Molecular Annotation of Lineage Fates and Cell Identity in Mid-gastrula Mouse Embryo', and 'Genome editing with CRISPR/Cas9 in postnatal mice corrects PRKAG2 cardiac syndrome'.
Hippocampal Salt-Inducible Kinase 2 Plays a Role in Depression via the CREB-Regulated Transcription Coactivator 1–cAMP Response Element Binding–Brain-Derived Neurotrophic Factor Pathway
Hippocampal PPARα is a novel therapeutic target for depression and mediates the antidepressant actions of fluoxetine in mice
Antidepressant‐like effects of tetrahydroxystilbene glucoside in mice: Involvement of BDNF signaling cascade in the hippocampus
Spatial Transcriptome for the Molecular Annotation of Lineage Fates and Cell Identity in Mid-gastrula Mouse Embryo
Genome editing with CRISPR/Cas9 in postnatal mice corrects PRKAG2 cardiac syndrome
Antidepressant‐like effects of fenofibrate in mice via the hippocampal brain‐derived neurotrophic factor signalling pathway
GM1 ganglioside reverses the cognitive deficits induced by MK801 in mice
Histone deacetylation promotes mouse neural induction by restricting Nodal-dependent mesendoderm fate
Ectodermal progenitors derived from epiblast stem cells by inhibition of Nodal signaling
Intrinsic regulations in neural fate commitment
The transcription factor Pou3f1 promotes neural fate commitment via activation of neural lineage genes and inhibition of external signaling pathways