Profile Information
- Affiliation
- Faculty of Science Department of Life Science, Gakushuin University
- Degree
- 博士(理学)(Mar, 2006, 東邦大学)
- Researcher number
- 20442535
- ORCID ID
https://orcid.org/0009-0002-5021-224X- J-GLOBAL ID
- 201901016513780868
- researchmap Member ID
- B000349281
Research Interests
8Research Areas
3Research History
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Apr, 2025 - Present
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Apr, 2019 - Mar, 2025
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Jun, 2016 - Mar, 2019
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Apr, 2011 - May, 2016
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Apr, 2009 - Apr, 2011
Education
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Apr, 2003 - Mar, 2006
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Apr, 2001 - Mar, 2003
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Apr, 1997 - Mar, 2001
Papers
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Proceedings of the National Academy of Sciences, 121(31), Jul 25, 2024 Peer-reviewedLead authorDelta receptors (GluD1 and GluD2), members of the large ionotropic glutamate receptor (iGluR) family, play a central role in numerous neurodevelopmental and psychiatric disorders. The amino-terminal domain (ATD) of GluD orchestrates synapse formation and maturation processes through its interaction with the Cbln family of synaptic organizers and neurexin (Nrxn). The transsynaptic triad of Nrxn–Cbln–GluD also serves as a potent regulator of synaptic plasticity, at both excitatory and inhibitory synapses. Despite these recognized functions, there is still debate as to whether GluD functions as a "canonical" ion channel, similar to other iGluRs. A recent report proposes that the ATD of GluD2 imposes conformational constraints on channel activity; removal of this constraint by binding to Cbln1 and Nrxn, or removal of the ATD, reveals channel activity in GluD2 upon administration of glycine (Gly) and d -serine ( d -Ser), two GluD ligands. We were able to reproduce currents when Gly or d -Ser was administered to clusters of heterologous human embryonic kidney 293 (HEK293) cells expressing Cbln1, GluD2 (or GluD1), and Nrxn. However, Gly or d -Ser, but also l -glutamate ( l -Glu), evoked similar currents in naive (i.e., untransfected) HEK293 cells and in GluD2-null Purkinje neurons. Furthermore, no current was detected in isolated HEK293 cells expressing GluD2 lacking the ATD upon administration of Gly. Taken together, these results cast doubt on the previously proposed hypothesis that extracellular ligands directly gate wild-type GluD channels.
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Molecular Neurobiology, Apr 9, 2024 Peer-reviewedAbstract Proper regulation of N-methyl-d-aspartate-type glutamate receptor (NMDA receptor) expression is responsible for excitatory synaptic functions in the mammalian brain. NMDA receptor dysfunction can cause various neuropsychiatric disorders and neurodegenerative diseases. Posttranslational protein S-palmitoylation, the covalent attachment of palmitic acid to intracellular cysteine residues via thioester bonds, occurs in the carboxyl terminus of GluN2B, which is the major regulatory NMDA receptor subunit. Mutations of three palmitoylatable cysteine residues in the membrane-proximal cluster of GluN2B to non-palmitoylatable serine (3CS) lead to the dephosphorylation of GluN2B Tyr1472 in the hippocampus and cerebral cortex, inducing a reduction in the surface expression of GluN2B-containig NMDA receptors. Furthermore, adult GluN2B 3CS homozygous mice demonstrated a definite clasping response without abnormalities in the gross brain structure, other neurological reflexes, or expression levels of synaptic proteins in the cerebrum. This behavioral disorder, observed in the GluN2B 3CS knock-in mice, indicated that complex higher brain functions are coordinated through the palmitoylation-dependent regulation of NMDA receptors in excitatory synapses.
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Nature Communications, 15(1), Feb 1, 2024 Peer-reviewedAbstract In the central nervous system, astrocytes enable appropriate synapse function through glutamate clearance from the synaptic cleft; however, it remains unclear how astrocytic glutamate transporters function at peri-synaptic contact. Here, we report that Down syndrome cell adhesion molecule (DSCAM) in Purkinje cells controls synapse formation and function in the developing cerebellum. Dscam-mutant mice show defects in CF synapse translocation as is observed in loss of function mutations in the astrocytic glutamate transporter GLAST expressed in Bergmann glia. These mice show impaired glutamate clearance and the delocalization of GLAST away from the cleft of parallel fibre (PF) synapse. GLAST complexes with the extracellular domain of DSCAM. Riluzole, as an activator of GLAST-mediated uptake, rescues the proximal impairment in CF synapse formation in Purkinje cell-selective Dscam-deficient mice. DSCAM is required for motor learning, but not gross motor coordination. In conclusion, the intercellular association of synaptic and astrocyte proteins is important for synapse formation and function in neural transmission.
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Cell Research, 34(6) 405-406, Jan 23, 2024 Lead author
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Nature Communications, 13(1), Jun 16, 2022 Peer-reviewedAbstract Direct activation of cell-surface receptors is highly desirable for elucidating their physiological roles. A potential approach for cell-type-specific activation of a receptor subtype is chemogenetics, in which both point mutagenesis of the receptors and designed ligands are used. However, ligand-binding properties are affected in most cases. Here, we developed a chemogenetic method for direct activation of metabotropic glutamate receptor 1 (mGlu1), which plays essential roles in cerebellar functions in the brain. Our screening identified a mGlu1 mutant, mGlu1(N264H), that was activated directly by palladium complexes. A palladium complex showing low cytotoxicity successfully activated mGlu1 in mGlu1(N264H) knock-in mice, revealing that activation of endogenous mGlu1 is sufficient to evoke the critical cellular mechanism of synaptic plasticity, a basis of motor learning in the cerebellum. Moreover, cell-type-specific activation of mGlu1 was demonstrated successfully using adeno-associated viruses in mice, which shows the potential utility of this chemogenetics for clarifying the physiological roles of mGlu1 in a cell-type-specific manner.
Presentations
19Teaching Experience
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生理学 (久留米大学医学部付属臨床検査専門学校)
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PBLテュートリアル (久留米大学医学部)
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生理学実習 (久留米大学医学部)
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細胞・組織の基本構造と機能 (久留米大学医学部)
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個体の調節機構とホメオスターシス (久留米大学医学部)
Professional Memberships
3Research Projects
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科学研究費助成事業, 日本学術振興会, Apr, 2024 - Mar, 2027
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科学研究費助成事業, 日本学術振興会, Jun, 2022 - Mar, 2024
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科学研究費助成事業, 日本学術振興会, Apr, 2021 - Mar, 2024
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科学研究費助成事業, 日本学術振興会, Apr, 2020 - Mar, 2024
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医学系研究助成, 武田科学振興財団, Nov, 2023