Updated on 2026/08/20

写真a

 
YAMASAKI TOKIWA
 
Organization
School of Life Science and Technology Assistant Professor
Title
Assistant Professor
External link

Research Areas

  • Life Science / Neuroscience-general

Papers

  • GARLH regulates neuroligin preference for excitatory versus inhibitory synapses Reviewed International coauthorship International journal

    Tokiwa Yamasaki, Kohtarou Konno, Dilja Krueger-Burg, Yoav Noam, Nashid H. Chaudhury, Megumi Morimoto-Tomita, Elizabeth J. Salm, Masahiko Watanabe, Nils Brose, Susumu Tomita

    Journal of Cell Biology   225 ( 2 )   2025.12

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    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)   Publisher:Rockefeller University Press  

    Synaptic specificity is governed by precise combinations of cell adhesion proteins that stabilize pre- and postsynaptic sites and appropriate neurotransmitter receptors. The postsynaptic neuroligins NL1/3 and NL2/3/4 localize to excitatory and inhibitory synapses, respectively, and regulate the corresponding neurotransmitter receptors. However, the exact molecular mechanisms that determine synaptic specificity via defined combinations of neuroligins and neurotransmitter receptors remain unclear. We found that all neuroligin isoforms form a tripartite complex with GABAA receptors and GARLH4 protein, with isoform-specific preferences, and that NL1, previously thought to be restricted to excitatory synapses, is also present at inhibitory synapses. In the absence of inhibitory synapse-specific NL2/4, NL1/3 increasingly assembles with GARLH4/GABAA receptors and relocates to inhibitory synapses. Moreover, forced interaction between NL1 and GARLH4 redirects their localization to inhibitory synapses. These findings demonstrate that GARLHs regulate the synaptic specificity of neuroligins, providing the key link between neuroligins and inhibitory GABAA receptors.

    DOI: 10.1083/jcb.202507190

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  • Kainate receptors regulate synaptic integrity and plasticity by forming a complex with synaptic organizers in the cerebellum. Reviewed International coauthorship International journal

    Wataru Kakegawa, Ana V Paternain, Keiko Matsuda, M Isabel Aller, Izumi Iida, Eriko Miura, Kazuya Nozawa, Tokiwa Yamasaki, Kenji Sakimura, Michisuke Yuzaki, Juan Lerma

    Cell reports   43 ( 7 )   114427 - 114427   2024.7

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    Kainate (KA)-type glutamate receptors (KARs) are implicated in various neuropsychiatric and neurological disorders through their ionotropic and metabotropic actions. However, compared to AMPA- and NMDA-type receptor functions, many aspects of KAR biology remain incompletely understood. Our study demonstrates an important role of KARs in organizing climbing fiber (CF)-Purkinje cell (PC) synapses and synaptic plasticity in the cerebellum, independently of their ion channel or metabotropic functions. The amino-terminal domain (ATD) of the GluK4 KAR subunit binds to C1ql1, provided by CFs, and associates with Bai3, an adhesion-type G protein-coupled receptor expressed in PC dendrites. Mice lacking GluK4 exhibit no KAR-mediated responses, reduced C1ql1 and Bai3 levels, and fewer CF-PC synapses, along with impaired long-term depression and oculomotor learning. Remarkably, introduction of the ATD of GluK4 significantly improves all these phenotypes. These findings demonstrate that KARs act as synaptic scaffolds, orchestrating synapses by forming a KAR-C1ql1-Bai3 complex in the cerebellum.

    DOI: 10.1016/j.celrep.2024.114427

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  • Integrator complex subunit 15 controls mRNA splicing and is critical for eye development. Reviewed International journal

    Noriyuki Azuma, Tadashi Yokoi, Taku Tanaka, Emiko Matsuzaka, Yuki Saida, Sachiko Nishina, Miho Terao, Shuji Takada, Maki Fukami, Kohji Okamura, Kayoko Maehara, Tokiwa Yamasaki, Jun Hirayama, Hiroshi Nishina, Hiroshi Handa, Yuki Yamaguchi

    Human molecular genetics   32 ( 12 )   2032 - 2045   2023.6

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    The eye and brain are composed of elaborately organized tissues, development of which is supported by spatiotemporally precise expression of a number of transcription factors and developmental regulators. Here we report the molecular and genetic characterization of Integrator complex subunit 15 (INTS15). INTS15 was identified in search for the causative gene(s) for an autosomal-dominant eye disease with variable individual manifestation found in a large pedigree. While homozygous Ints15 knockout mice are embryonic lethal, mutant mice lacking a small C-terminal region of Ints15 show ocular malformations similar to the human patients. INTS15 is highly expressed in the eye and brain during embryogenesis and stably interacts with the Integrator complex to support small nuclear RNA 3' end processing. Its knockdown resulted in missplicing of a large number of genes, probably as a secondary consequence, and substantially affected genes associated with eye and brain development. Moreover, studies using human iPS cells-derived neural progenitor cells showed that INTS15 is critical for axonal outgrowth in retinal ganglion cells. This study suggests a new link between general transcription machinery and a highly specific hereditary disease.

    DOI: 10.1093/hmg/ddad034

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  • Coordination chemogenetics for activation of GPCR-type glutamate receptors in brain tissue. Reviewed International journal

    Kento Ojima, Wataru Kakegawa, Tokiwa Yamasaki, Yuta Miura, Masayuki Itoh, Yukiko Michibata, Ryou Kubota, Tomohiro Doura, Eriko Miura, Hiroshi Nonaka, Seiya Mizuno, Satoru Takahashi, Michisuke Yuzaki, Itaru Hamachi, Shigeki Kiyonaka

    Nature communications   13 ( 1 )   3167 - 3167   2022.6

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    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.

    DOI: 10.1038/s41467-022-30828-0

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  • Excitatory and inhibitory receptors utilize distinct post- and trans-synaptic mechanisms in vivo. Reviewed International coauthorship International journal

    Taisuke Miyazaki, Megumi Morimoto-Tomita, Coralie Berthoux, Kotaro Konno, Yoav Noam, Tokiwa Yamasaki, Matthijs Verhage, Pablo E Castillo, Masahiko Watanabe, Susumu Tomita

    eLife   10   2021.10

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    Ionotropic neurotransmitter receptors at postsynapses mediate fast synaptic transmission upon binding of the neurotransmitter. Post- and trans-synaptic mechanisms through cytosolic, membrane, and secreted proteins have been proposed to localize neurotransmitter receptors at postsynapses. However, it remains unknown which mechanism is crucial to maintain neurotransmitter receptors at postsynapses. In this study, we ablated excitatory or inhibitory neurons in adult mouse brains in a cell-autonomous manner. Unexpectedly, we found that excitatory AMPA receptors remain at the postsynaptic density upon ablation of excitatory presynaptic terminals. In contrast, inhibitory GABAA receptors required inhibitory presynaptic terminals for their postsynaptic localization. Consistent with this finding, ectopic expression at excitatory presynapses of neurexin-3 alpha, a putative trans-synaptic interactor with the native GABAA receptor complex, could recruit GABAA receptors to contacted postsynaptic sites. These results establish distinct mechanisms for the maintenance of excitatory and inhibitory postsynaptic receptors in the mature mammalian brain.

    DOI: 10.7554/eLife.59613

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  • MKK7 deficiency in mature neurons impairs parental behavior in mice. Reviewed International coauthorship International journal

    Tadashi Shin, Yuichi Hiraoka, Tokiwa Yamasaki, Jamey D Marth, Josef M Penninger, Masami Kanai-Azuma, Kohichi Tanaka, Satoshi Kofuji, Hiroshi Nishina

    Genes to cells : devoted to molecular & cellular mechanisms   26 ( 1 )   5 - 17   2021.1

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    c-Jun N-terminal kinases (JNKs) are constitutively activated in mammalian brains and are indispensable for their development and neural functions. MKK7 is an upstream activator of all JNKs. However, whether the common JNK signaling pathway regulates the brain's control of social behavior remains unclear. Here, we show that female mice in which Mkk7 is deleted specifically in mature neurons (Mkk7flox/flox Syn-Cre mice) give birth to a normal number of pups but fail to raise them due to a defect in pup retrieval. To explore the mechanism underlying this abnormality, we performed comprehensive behavioral tests. Mkk7flox/flox Syn-Cre mice showed normal locomotor functions and cognitive ability but exhibited depression-like behavior. cDNA microarray analysis of mutant brain revealed an altered gene expression pattern. Quantitative RT-PCR analysis demonstrated that mRNA expression levels of genes related to neural signaling pathways and a calcium channel were significantly different from controls. In addition, loss of neural MKK7 had unexpected regulatory effects on gene expression patterns in oligodendrocytes. These findings indicate that MKK7 has an important role in regulating the gene expression patterns responsible for promoting normal social behavior and staving off depression.

    DOI: 10.1111/gtc.12816

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  • Growth Cone Phosphoproteomics Reveals that GAP-43 Phosphorylated by JNK Is a Marker of Axon Growth and Regeneration. Reviewed International journal

    Asami Kawasaki, Masayasu Okada, Atsushi Tamada, Shujiro Okuda, Motohiro Nozumi, Yasuyuki Ito, Daiki Kobayashi, Tokiwa Yamasaki, Ryo Yokoyama, Takeshi Shibata, Hiroshi Nishina, Yutaka Yoshida, Yukihiko Fujii, Kosei Takeuchi, Michihiro Igarashi

    iScience   4   190 - 203   2018.6

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    Neuronal growth cones are essential for nerve growth and regeneration, as well as for the formation and rearrangement of the neural network. To elucidate phosphorylation-dependent signaling pathways and establish useful molecular markers for axon growth and regeneration, we performed a phosphoproteomics study of mammalian growth cones, which identified >30,000 phosphopeptides of ∼1,200 proteins. The phosphorylation sites were highly proline directed and primarily MAPK dependent, owing to the activation of JNK, suggesting that proteins that undergo proline-directed phosphorylation mediate nerve growth in the mammalian brain. Bioinformatics analysis revealed that phosphoproteins were enriched in microtubules and the cortical cytoskeleton. The most frequently phosphorylated site was S96 of GAP-43 (growth-associated protein 43-kDa), a vertebrate-specific protein involved in axon growth. This previously uncharacterized phosphorylation site was JNK dependent. S96 phosphorylation was specifically detected in growing and regenerating axons as the most frequent target of JNK signaling; thus it represents a promising new molecular marker for mammalian axonal growth and regeneration.

    DOI: 10.1016/j.isci.2018.05.019

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  • Assembly rules for GABAA receptor complexes in the brain. Reviewed International coauthorship International journal

    James S Martenson, Tokiwa Yamasaki, Nashid H Chaudhury, David Albrecht, Susumu Tomita

    eLife   6   2017.8

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    GABAA receptor (GABAAR) pentamers are assembled from a pool of 19 subunits, and variety in subunit combinations diversifies GABAAR functions to tune brain activity. Pentamers with distinct subunit compositions localize differentially at synaptic and non-synaptic sites to mediate phasic and tonic inhibition, respectively. Despite multitudes of theoretical permutations, limited subunit combinations have been identified in the brain. Currently, no molecular model exists for combinatorial GABAAR assembly in vivo. Here, we reveal assembly rules of native GABAAR complexes that explain GABAAR subunit subcellular distributions using mice and Xenopus laevis oocytes. First, α subunits possess intrinsic signals to segregate into distinct pentamers. Second, γ2 is essential for GABAAR assembly with Neuroligin-2 (NL2) and GARLHs, which localize GABAARs at synapses. Third, δ suppresses α6 synaptic localization by preventing assembly with GARLHs/NL2. These findings establish the first molecular model for combinatorial GABAAR assembly in vivo and reveal an assembly pathway regulating GABAAR synaptic localization.

    DOI: 10.7554/eLife.27443

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  • Age-dependent motor dysfunction due to neuron-specific disruption of stress-activated protein kinase MKK7. Reviewed International coauthorship International journal

    Tokiwa Yamasaki, Norie Deki-Arima, Asahito Kaneko, Norio Miyamura, Mamiko Iwatsuki, Masato Matsuoka, Noriko Fujimori-Tonou, Yoshimi Okamoto-Uchida, Jun Hirayama, Jamey D Marth, Yuji Yamanashi, Hiroshi Kawasaki, Koji Yamanaka, Josef M Penninger, Shigenobu Shibata, Hiroshi Nishina

    Scientific reports   7 ( 1 )   7348 - 7348   2017.8

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    c-Jun N-terminal kinase (JNK) is a member of the mitogen-activated protein kinase family and controls various physiological processes including apoptosis. A specific upstream activator of JNKs is the mitogen-activated protein kinase kinase 7 (MKK7). It has been reported that MKK7-JNK signaling plays an important regulatory role in neural development, however, post-developmental functions in the nervous system have not been elucidated. In this study, we generated neuron-specific Mkk7 knockout mice (MKK7 cKO), which impaired constitutive activation of JNK in the nervous system. MKK7 cKO mice displayed impaired circadian behavioral rhythms and decreased locomotor activity. MKK7 cKO mice at 8 months showed motor dysfunctions such as weakness of hind-limb and gait abnormality in an age-dependent manner. Axonal degeneration in the spinal cord and muscle atrophy were also observed, along with accumulation of the axonal transport proteins JNK-interacting protein 1 and amyloid beta precursor protein in the brains and spinal cords of MKK7 cKO mice. Thus, the MKK7-JNK signaling pathway plays important roles in regulating circadian rhythms and neuronal maintenance in the adult nervous system.

    DOI: 10.1038/s41598-017-07845-x

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  • GARLH Family Proteins Stabilize GABAA Receptors at Synapses. Reviewed International coauthorship International journal

    Tokiwa Yamasaki, Erika Hoyos-Ramirez, James S Martenson, Megumi Morimoto-Tomita, Susumu Tomita

    Neuron   93 ( 5 )   1138 - 1152   2017.3

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    Ionotropic neurotransmitter receptors mediate fast synaptic transmission by functioning as ligand-gated ion channels. Fast inhibitory transmission in the brain is mediated mostly by ionotropic GABAA receptors (GABAARs), but their essential components for synaptic localization remain unknown. Here, we identify putative auxiliary subunits of GABAARs, which we term GARLHs, consisting of LH4 and LH3 proteins. LH4 forms a stable tripartite complex with GABAARs and neuroligin-2 in the brain. Moreover, LH4 is required for the synaptic localization of GABAARs and inhibitory synaptic transmission in the hippocampus. Our findings propose GARLHs as the first identified auxiliary subunits for anion channels. These findings provide new insights into the regulation of inhibitory transmission and the molecular constituents of native anion channels in vivo.

    DOI: 10.1016/j.neuron.2017.02.023

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  • Porcupine Controls Hippocampal AMPAR Levels, Composition, and Synaptic Transmission. Reviewed International coauthorship International journal

    Nadine Erlenhardt, Hong Yu, Kavitha Abiraman, Tokiwa Yamasaki, Jacques I Wadiche, Susumu Tomita, David S Bredt

    Cell reports   14 ( 4 )   782 - 794   2016.2

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    AMPA receptor (AMPAR) complexes contain auxiliary subunits that modulate receptor trafficking and gating. In addition to the transmembrane AMPAR regulatory proteins (TARPs) and cornichons (CNIH-2/3), recent proteomic studies identified a diverse array of additional AMPAR-associated transmembrane and secreted partners. We systematically surveyed these and found that PORCN and ABHD6 increase GluA1 levels in transfected cells. Knockdown of PORCN in rat hippocampal neurons, which express it in high amounts, selectively reduces levels of all tested AMPAR complex components. Regulation of AMPARs is independent of PORCN's membrane-associated O-acyl transferase activity. PORCN knockdown in hippocampal neurons decreases AMPAR currents and accelerates desensitization and leads to depletion of TARP γ-8 from AMPAR complexes. Conditional PORCN knockout mice also exhibit specific changes in AMPAR expression and gating that reduce basal synaptic transmission but leave long-term potentiation intact. These studies define additional roles for PORCN in controlling synaptic transmission by regulating the level and composition of hippocampal AMPAR complexes.

    DOI: 10.1016/j.celrep.2015.12.078

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  • Cornichons control ER export of AMPA receptors to regulate synaptic excitability. Reviewed International coauthorship International journal

    Penelope J Brockie, Michael Jensen, Jerry E Mellem, Erica Jensen, Tokiwa Yamasaki, Rui Wang, Dane Maxfield, Colin Thacker, Frédéric Hoerndli, Patrick J Dunn, Susumu Tomita, David M Madsen, Andres V Maricq

    Neuron   80 ( 1 )   129 - 42   2013.10

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    The strength of synaptic communication at central synapses depends on the number of ionotropic glutamate receptors, particularly the class gated by the agonist AMPA (AMPARs). Cornichon proteins, evolutionarily conserved endoplasmic reticulum cargo adaptors, modify the properties of vertebrate AMPARs when coexpressed in heterologous cells. However, the contribution of cornichons to behavior and in vivo nervous system function has yet to be determined. Here, we take a genetic approach to these questions by studying CNI-1--the sole cornichon homolog in C. elegans. cni-1 mutants hyperreverse, a phenotype associated with increased glutamatergic synaptic transmission. Consistent with this behavior, we find larger glutamate-gated currents in cni-1 mutants with a corresponding increase in AMPAR number. Furthermore, we observe opposite phenotypes in transgenic worms that overexpress CNI-1 or vertebrate homologs. In reconstitution studies, we provide support for an evolutionarily conserved role for cornichons in regulating the export of vertebrate and invertebrate AMPARs.

    DOI: 10.1016/j.neuron.2013.07.028

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  • Involvement of stress kinase mitogen-activated protein kinase kinase 7 in regulation of mammalian circadian clock. Reviewed International journal

    Yoshimi Uchida, Tomomi Osaki, Tokiwa Yamasaki, Tadanori Shimomura, Shoji Hata, Kazumasa Horikawa, Shigenobu Shibata, Takeshi Todo, Jun Hirayama, Hiroshi Nishina

    The Journal of biological chemistry   287 ( 11 )   8318 - 26   2012.3

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    The stress kinase mitogen-activated protein kinase kinase 7 (MKK7) is a specific activator of c-Jun N-terminal kinase (JNK), which controls various physiological processes, such as cell proliferation, apoptosis, differentiation, and migration. Here we show that genetic inactivation of MKK7 resulted in an extended period of oscillation in circadian gene expression in mouse embryonic fibroblasts. Exogenous expression in cultured mammalian cells of an MKK7-JNK fusion protein that functions as a constitutively active form of JNK induced phosphorylation of PER2, an essential circadian component. Furthermore, JNK interacted with PER2 at both the exogenous and endogenous levels, and MKK7-mediated JNK activation increased the half-life of PER2 protein by inhibiting its ubiquitination. Notably, the PER2 protein stabilization induced by MKK7-JNK fusion protein reduced the degradation of PER2 induced by casein kinase 1ε. Taken together, our results support a novel function for the stress kinase MKK7 as a regulator of the circadian clock in mammalian cells at steady state.

    DOI: 10.1074/jbc.M111.308908

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  • Stress-activated protein kinase MKK7 regulates axon elongation in the developing cerebral cortex. Reviewed International coauthorship International journal

    Tokiwa Yamasaki, Hiroshi Kawasaki, Satoko Arakawa, Kimiko Shimizu, Shigeomi Shimizu, Orly Reiner, Hideyuki Okano, Sachiko Nishina, Noriyuki Azuma, Josef M Penninger, Toshiaki Katada, Hiroshi Nishina

    The Journal of neuroscience : the official journal of the Society for Neuroscience   31 ( 46 )   16872 - 83   2011.11

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    The c-Jun NH(2)-terminal protein kinase (JNK), which belongs to the mitogen-activated protein kinase family, plays important roles in a broad range of physiological processes. JNK is controlled by two upstream regulators, mitogen-activated protein kinase kinase (MKK) 7 and MKK4. To elucidate the physiological functions of MKK7, we used Nestin-Cre to generate a novel mouse model in which the mkk7 gene was specifically deleted in the nervous system (Mkk7(flox/flox) Nestin-Cre mice). These mice were indistinguishable from their control littermates in gross appearance during embryogenesis but died immediately after birth without breathing. Histological examination showed that the mutants had severe defects in brain development, including enlarged ventricles, reduced striatum, and minimal axon tracts. Electron microscopy revealed abnormal accumulations of filamentous structures and autophagic vacuoles in Mkk7(flox/flox) Nestin-Cre brain. Further analysis showed that MKK7 deletion decreased numbers of TAG-1-expressing axons and delayed neuronal migration in the cerebrum. Neuronal differentiation was not altered. In utero electroporation studies showed that contralateral projection of axons by layer 2/3 neurons was impaired in the absence of MKK7. Moreover, MKK7 regulated axon elongation in a cell-autonomous manner in vivo, a finding confirmed in vitro. Finally, phosphorylation levels of JNK substrates, including c-Jun, neurofilament heavy chain, microtubule-associated protein 1B, and doublecortin, were reduced in Mkk7(flox/flox) Nestin-Cre brain. Our findings demonstrate that the phenotype of Mkk7(flox/flox) Nestin-Cre mice differs substantially from that of Mkk4(flox/flox) Nestin-Cre mice, and establish that MKK7-mediated regulation of JNK is uniquely critical for both axon elongation and radial migration in the developing brain.

    DOI: 10.1523/JNEUROSCI.1111-11.2011

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  • Imaging mass spectrometry reveals characteristic changes in triglyceride and phospholipid species in regenerating mouse liver. Reviewed International journal

    Norio Miyamura, Takashi Nakamura, Naoko Goto-Inoue, Nobuhiro Zaima, Takahiro Hayasaka, Tokiwa Yamasaki, Shuji Terai, Isao Sakaida, Mitsutoshi Setou, Hiroshi Nishina

    Biochemical and biophysical research communications   408 ( 1 )   120 - 5   2011.4

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    After partial hepatectomy (PH), regenerating liver accumulates unknown lipid species. Here, we analyzed lipids in murine liver and adipose tissues following PH by thin-layer chromatography (TLC), imaging mass spectrometry (IMS), and real-time RT-PCR. In liver, IMS revealed that a single TLC band comprised major 19 TG species. Similarly, IMS showed a single phospholipid TLC band to be major 13 species. In adipose tissues, PH induced changes to expression of genes regulating lipid metabolism. Finally, IMS of phosphatidylcholine species demonstrated distribution gradients in lobules that resembled hepatic zonation. IMS is thus a novel and power tool for analyzing lipid species with high resolution.

    DOI: 10.1016/j.bbrc.2011.03.133

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  • Negative regulation of wnt11 expression by Jnk signaling during zebrafish gastrulation. Reviewed International coauthorship International journal

    Jungwon Seo, Yoichi Asaoka, Yoko Nagai, Jun Hirayama, Tokiwa Yamasaki, Misako Namae, Shinya Ohata, Nao Shimizu, Takahiro Negishi, Daiju Kitagawa, Hisato Kondoh, Makoto Furutani-Seiki, Josef M Penninger, Toshiaki Katada, Hiroshi Nishina

    Journal of cellular biochemistry   110 ( 4 )   1022 - 37   2010.7

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    Stress-induced Sapk/Jnk signaling is involved in cell survival and apoptosis. Recent studies have increased our understanding of the physiological roles of Jnk signaling in embryonic development. However, still unclear is the precise function of Jnk signaling during gastrulation, a critical step in the establishment of the vertebrate body plan. Here we use morpholino-mediated knockdown of the zebrafish orthologs of the Jnk activators Mkk4 and Mkk7 to examine the effect of Jnk signaling abrogation on early vertebrate embryogenesis. Depletion of zebrafish Mkk4b led to abnormal convergent extension (CE) during gastrulation, whereas Mkk7 morphants exhibited defective somitogenesis. Surprisingly, Mkk4b morphants displayed marked upregulation of wnt11, which is the triggering ligand of CE and stimulates Jnk activation via the non-canonical Wnt pathway. Conversely, ectopic activation of Jnk signaling by overexpression of an active form of Mkk4b led to wnt11 downregulation. Mosaic lineage tracing studies revealed that Mkk4b-Jnk signaling suppressed wnt11 expression in a non-cell-autonomous manner. These findings provide the first evidence that wnt11 itself is a downstream target of the Jnk cascade in the non-canonical Wnt pathway. Our work demonstrates that Jnk activation is indispensable for multiple steps during vertebrate body plan formation. Furthermore, non-canonical Wnt signaling may coordinate vertebrate CE movements by triggering Jnk activation that represses the expression of the CE-triggering ligand wnt11.

    DOI: 10.1002/jcb.22616

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  • Filamin associates with stress signalling kinases MKK7 and MKK4 and regulates JNK activation. Reviewed International journal

    Kentaro Nakagawa, Misato Sugahara, Tokiwa Yamasaki, Hiroaki Kajiho, Shinya Takahashi, Jun Hirayama, Yasuhiro Minami, Yasutaka Ohta, Toshio Watanabe, Yutaka Hata, Toshiaki Katada, Hiroshi Nishina

    The Biochemical journal   427 ( 2 )   237 - 45   2010.3

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    SAPK/JNK (stress-activated protein kinase/c-Jun N-terminal kinase) belongs to the MAPK (mitogen-activated protein kinase) family and is important in many biological contexts. JNK activation is regulated by phosphorylation of specific tyrosine and threonine residues sequentially catalysed by MKK4 and MKK7, which are both dual-specificity MAPKKs (MAPK kinases). Previously, we reported that tyrosine-phosphorylation of JNK by MKK4 precedes threonine-phosphorylation by MKK7, and that both are required for synergistic JNK activation. In the present study, we identify the actin-binding protein-280 (Filamin A) as a presumed 'binder' protein that can bind to MKK7, as well as to MKK4, connecting them in close proximity. We show that Filamin family members A, B and C interact with MKK4 and MKK7, but not with JNK. Filamin A binds to an N-terminal region (residues 31-60) present in the MKK7gamma and MKK7beta splice isoforms, but cannot bind to MKK7alpha which lacks these amino acids. This same N-terminal region is crucial for the intracellular co-localization of MKK7gamma with actin stress fibres and Filamin A. Experiments using Filamin-A-deletion mutants revealed that the MKK7-binding region of Filamin A differs from its MKK4-binding region, and that MKK7gamma (but not MKK7alpha) can form a complex with Filamin A and MKK4. Finally, we used Filamin-A-deficient cells to show that Filamin A enhances MKK7 activation and is important for synergistic stress-induced JNK activation in vivo. Thus Filamin A is a novel member of the group of scaffold proteins whose function is to link two MAPKKs together and promote JNK activation.

    DOI: 10.1042/BJ20091011

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  • CrxOS maintains the self-renewal capacity of murine embryonic stem cells. Reviewed International journal

    Ryota Saito, Tokiwa Yamasaki, Yoko Nagai, Jinzhan Wu, Hiroaki Kajiho, Tadashi Yokoi, Eiichiro Noda, Sachiko Nishina, Hitoshi Niwa, Noriyuki Azuma, Toshiaki Katada, Hiroshi Nishina

    Biochemical and biophysical research communications   390 ( 4 )   1129 - 35   2009.12

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    Embryonic stem (ES) cells maintain pluripotency by self-renewal. Several homeoproteins, including Oct3/4 and Nanog, are known to be key factors in maintaining the self-renewal capacity of ES cells. However, other genes required for the mechanisms underlying this process are still unclear. Here we report the identification by in silico analysis of a homeobox-containing gene, CrxOS, that is specifically expressed in murine ES cells and is essential for their self-renewal. ES cells mainly express the short isoform of endogenous CrxOS. Using a polyoma-based episomal expression system, we demonstrate that overexpression of the CrxOS short isoform is sufficient for maintaining the undifferentiated morphology of ES cells and stimulating their proliferation. Finally, using RNA interference, we show that CrxOS is essential for the self-renewal of ES cells, and provisionally identify foxD3 as a downstream target gene of CrxOS. To our knowledge, ours is the first delineation of the physiological role of CrxOS in ES cells.

    DOI: 10.1016/j.bbrc.2009.09.118

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  • Blockage by SP600125 of Fcepsilon receptor-induced degranulation and cytokine gene expression in mast cells is mediated through inhibition of phosphatidylinositol 3-kinase signalling pathway. Reviewed International coauthorship International journal

    Shuhei Tanemura, Haruka Momose, Nao Shimizu, Daiju Kitagawa, Jungwon Seo, Tokiwa Yamasaki, Kentaro Nakagawa, Hiroaki Kajiho, Josef M Penninger, Toshiaki Katada, Hiroshi Nishina

    Journal of biochemistry   145 ( 3 )   345 - 54   2009.3

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    SP600125 is used as a specific inhibitor of c-Jun N-terminal kinase (JNK). We initially aimed to examine physiological roles of JNK in mast cells that play a central role in inflammatory and immediate allergic responses. We found that Fc receptor for IgE (FcepsilonRI)-induced degranulation (serotonin release) and cytokine gene expression [interleukin (IL)-6, tumour necrosis factor-alpha and IL-13] in bone marrow-derived mast cells, were almost completely inhibited by SP600125. However, the time course of FcepsilonRI-induced JNK activation did not correlate with that of serotonin release. Furthermore, FcepsilonRI-induced degranulation and cytokine gene expression were not impaired in a JNK activator, MKK7-deficient mast cells, in which JNK activation was lost. These results indicate that the inhibitory effects by SP600125 are not due to impaired JNK activation. Instead, we found that SP600125 markedly inhibited the FcepsilonRI-induced activation of phosphatidylinositol 3-kinase (PI3K) and Akt, the same as a PI3K inhibitor, wortmannin. Finally, we found that SP600125 specifically inhibits delta form of p110 catalytic subunit (p110delta) of PI3K. Thus, SP600125 exerts its influence on mast cell functions by inhibiting the kinase activity of PI3K, but not JNK.

    DOI: 10.1093/jb/mvn172

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  • Hematopoiesis-dependent expression of CD44 in murine hepatic progenitor cells. Reviewed International journal

    Shinya Ohata, Makiko Nawa, Takeshi Kasama, Tokiwa Yamasaki, Kenji Sawanobori, Shoji Hata, Takashi Nakamura, Yoichi Asaoka, Toshio Watanabe, Hitoshi Okamoto, Takahiko Hara, Shuji Terai, Isao Sakaida, Toshiaki Katada, Hiroshi Nishina

    Biochemical and biophysical research communications   379 ( 4 )   817 - 23   2009.2

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    Language:English   Publishing type:Research paper (scientific journal)  

    The fetal liver serves as the predominant hematopoietic organ until birth. However, the mechanisms underlying this link between hematopoiesis and hepatogenesis are unclear. Previously, we reported the isolation of a monoclonal antibody (anti-Liv8) that specifically recognizes an antigen (Liv8) present in murine fetal livers at embryonic day 11.5 (E11.5). Liv8 is a cell surface molecule expressed by hematopoietic cells in both fetal liver and adult mouse bone marrow. Here, we report that Liv8 is also transiently expressed by hepatoblasts at E11.5. Using protein purification and mass spectrometry, we have identified Liv8 as the CD44 protein. Interestingly, the expression of Liv8/CD44 in fetal liver was completely lost in AML1(-/-) murine embryos, which lack definitive hematopoiesis. These results show that hepatoblasts change from Liv8/CD44-negative to Liv8/CD44-positive status in a hematopoiesis-dependent manner by E11.5, and indicate that Liv8/CD44 expression is an important link between hematopoiesis and hepatogenesis during fetal liver development.

    DOI: 10.1016/j.bbrc.2008.12.149

    PubMed

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MISC

  • Cornichon Invited Reviewed

    Tokiwa Yamasaki

    2016.3

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    Authorship:Lead author, Last author, Corresponding author   Language:Japanese   Publishing type:Article, review, commentary, editorial, etc. (other)  

    DOI: 10.14931/bsd.6742

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  • 【神経系のMAPキナーゼ】MAPキナーゼの基礎 脳におけるSAPK/JNKシグナルの役割

    山崎 世和, 仁科 博史

    Clinical Neuroscience   31 ( 6 )   654 - 656   2013.6

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    Authorship:Lead author   Language:Japanese   Publisher:(株)中外医学社  

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  • Diverse Roles of JNK and MKK Pathways in the Brain Reviewed International journal

    Tokiwa Yamasaki, Hiroshi Kawasaki, Hiroshi Nishina

    Journal of Signal Transduction   2012   1 - 9   2012.2

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    Language:English   Publisher:Wiley  

    The c-Jun NH2-terminal protein kinase (JNK) plays important roles in a broad range of physiological processes. JNK is controlled by two upstream regulators, mitogen-activated protein kinase kinase (MKK) 4 and MKK7, which are activated by various MAPKKKs. Studies employing knockout mice have demonstrated that the JNK signaling pathway is involved in diverse phenomena in the brain, regulating brain development and maintenance as well as animal metabolism and behavior. Furthermore, examination of single or combined knockout mice ofJnk1, Jnk2,andJnk3has revealed both functional differences and redundancy among JNK1, JNK2, and JNK3. Phenotypic differences between knockouts of MKK4 and MKK7 have also been observed, suggesting that the JNK signaling pathway in the brain has a complex nature and is intricately regulated. This paper summarizes the functional properties of the major JNK signaling components in the developing and adult brain.

    DOI: 10.1155/2012/459265

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    Other Link: http://downloads.hindawi.com/archive/2012/459265.xml

  • Utility and limitations of sp600125 an inhibitor of stress-responsive c-jun n-terminal kinase Reviewed

    Shuhei Tanemura, Tokiwa Yamasaki, Toshiaki Katada, Hiroshi Nishina

    Current Enzyme Inhibition   6 ( 1 )   26 - 33   2010.2

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    Language:English   Publishing type:Book review, literature introduction, etc.  

    DOI: 10.2174/157340810790712023

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Presentations

  • Development of a gene therapy using adeno-associated virus to rescue cerebellar ataxia in Cbln1-deficient mice International conference

    Tokiwa Yamasaki, Wataru Kakegawa, Michisuke Yuzaki

    Neuro2022  2022.6 

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    Event date: 2022.6 - 2022.7

    Language:English   Presentation type:Poster presentation  

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  • Non-membranous organelles underlying learning and memory Invited

    Tokiwa Yamasaki

    Second Japanese-German-American Frontiers of Science Symposium  2019.9 

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    Event date: 2019.9

    Language:English   Presentation type:Symposium, workshop panel (nominated)  

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  • Identification of novel auxiliary subunits for GABAA receptors International coauthorship International conference

    Yamasaki, T., Hoyos-Ramirez, E., Martenson, JS, Morimoto-Tomita, M., Tomita, S.

    The 5th Annual iGluR Retreat  2017 

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    Event date: 2017

    Language:English   Presentation type:Poster presentation  

    Venue:New Haven   Country:United States  

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  • Identification of novel auxiliary subunit of ionotropic GABAA receptors in the brain.

    Yamasaki, T., Hoyos-Ramirez, E., Martenson, JS, Morimoto-Tomita, M., Tomita, S.

    Gordon Research Conference, Cell Biology of the Neuron  2016 

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    Event date: 2016.6 - 2016.7

    Language:English  

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  • Defective brain formation in mice lacking the stress signaling kinase MKK7.

    Yamasaki, T., Kawasaki, H., Katada, T., Nishina, H.

    BMB2010 (33rd Annual Meeting of the Molecular Biology Society of Japan and the 83rd Annual Meeting of the Japan Biochemical Society)  2010.12 

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    Event date: 2010.12

    Language:English   Presentation type:Poster presentation  

    Venue:Kobe   Country:Japan  

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  • Neuron specific deletion of the mitogen-activated protein kinase kinase 7 gene causes growth retardation.

    Yamasaki, T., Katada, T., Nishina, H.

    The 3rd meeting of Developmental Neurobiology  2009 

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    Event date: 2009

    Presentation type:Poster presentation  

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Research Projects

  • ヒトのCBLN1遺伝子疾患における小脳失調の分子病態解明と治療法開発

    Grant number:24K09661  2024.4 - 2027.3

    日本学術振興会  科学研究費助成事業  基盤研究(C)

    山崎 世和

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    Grant amount:\4550000 ( Direct Cost: \3500000 、 Indirect Cost:\1050000 )

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  • 分泌性C1qファミリー分子との相互作用がもたらすカイニン酸受容体の新しい機能

    Grant number:24K02212  2024.4 - 2027.3

    日本学術振興会  科学研究費助成事業  基盤研究(B)

    掛川 渉, 伊藤 政之, 山崎 世和

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    Grant amount:\18460000 ( Direct Cost: \14200000 、 Indirect Cost:\4260000 )

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  • イオンチャネル型グルタミン酸受容体の新規活動様式の解明:KA受容体をモデルとして

    Grant number:22K19364  2022.6 - 2025.3

    日本学術振興会  科学研究費助成事業  挑戦的研究(萌芽)

    掛川 渉, 伊藤 政之, 山崎 世和

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    Grant amount:\6500000 ( Direct Cost: \5000000 、 Indirect Cost:\1500000 )

    中枢神経系において、速い興奮伝達を担うイオンチャネル型グルタミン酸受容体(iGluR)ファミリーに属するカイニン酸型グルタミン酸受容体 (KAR) は、神経細胞の興奮性やシナプス伝達、さらには、てんかんや種々の精神疾患に関わる重要なシナプス受容体である。近年、KARはチャネルとしてだけでなく、細胞内のシグナル伝達系を駆動させる「非チャネル活動」を伴うユニークな受容体として注目されている。しかし、KARの非チャネル活動の生理的重要性についてはほとんどわかっていない。私たちは最近、運動記憶を支える小脳神経回路において、KARがチャネル活動非依存的に機能することを見出した。そこで本研究では、iGluRの新規でかつ普遍的な動作原理の理解を目指し、小脳KARの新しい活動様式について追究してきた。その結果、KARは小脳回路の要衝を担う登上線維-プルキンエ細胞シナプス(CFシナプス)に発現し、そのKARを欠くKAR-KOマウスが重篤な運動記憶障害を示すことを見出した。また、KARはシナプス前部から分泌される新規シナプス形成分子のC1q様分子(C1qL分子)と直接的に結合することを発見した。興味深いことに、KAR-KOマウスのCFシナプスにC1qL分子を欠く変異型KARを発現させた場合、KOマウスに見られる病的表現型は回復しなかったが、驚くべきことに、C1qL分子との結合部位を有する膜タンパク質においてその回復が認められた。これらの事実は、KARがC1qL分子との相互作用にもとづく非チャネル活動を介して機能していることを示唆する。今後、本研究成果がiGluRが関わる生理機能や病態発現の分子的理解につながるものと期待する。

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  • 抑制性シナプス後部の分子構成解明と特定の抑制性シナプス操作技術の開発

    Grant number:21K06377  2021.4 - 2025.3

    日本学術振興会  科学研究費助成事業  基盤研究(C)

    山崎 世和

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    Grant amount:\4160000 ( Direct Cost: \3200000 、 Indirect Cost:\960000 )

    脳には様々な種類の抑制性神経細胞が存在し、種類の抑制性シナプスを形成しているが、どの種類のシナプスにどのような分子が集積しているのかよくわかっていない。本研究では抑制性シナプスにおいて、特にそのシナプス後部にどのような分子が存在しているのかを明らかにし、さらにそれらの分子を人為的に操作することによって、任意の抑制性シナプスを選択して操作する技術を開発することを目的としている。
    本研究では、近接依存性ラベル化酵素TurboIDを抑制性シナプス後部に局在させ周辺タンパク質をビオチン化しそれらを同定する。TurboIDのシナプス局在には、ALFAタグ-膜貫通領域-TurboID融合タンパク質(Labeling module)を錐体細胞に、抗ALFAナノボディ-GPIアンカー融合タンパク質(Targeting module)を抑制性神経細胞に発現させることで行う。これら二つのタンパク質はTranssynapticに相互作用し、抑制性神経細胞と錐体細胞の接合部、すなわちシナプスに集積することが期待される。
    これまで、Labeling moduleとTargeting moduleを設計、AAVベクターに組み込み、マウスの脳で発現することを確認していた。一方で、次のステップであるプロテオーム解析を行うため、より広範な脳領域により強く発現させることが必要であった。よって本年度はこの点を検討した。広範な発現領域を確保するために、AAVの血液脳関門透過型の血清型であるPHP.eBを使用することにしたが、作成時の細胞密度・Plasmid導入量を最適化することでより高いタイターのAAVを安定して確保することが出来るようになった。また、CMVのmini promoterやCre依存的CAGプロモーター、Tet-off systemを組み込み、目的細胞に高いレベルでタンパク質が発現することが確認できた。

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  • Naked spineから読み解く小脳シナプスの新しい形成・動作原理

    Grant number:20H03420  2020.4 - 2024.3

    日本学術振興会  科学研究費助成事業  基盤研究(B)

    掛川 渉, 山崎 世和, 伊藤 政之

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    Grant amount:\17550000 ( Direct Cost: \13500000 、 Indirect Cost:\4050000 )

    脳内の神経細胞間を結ぶ「シナプス」は、情報伝達の場であると同時に、記憶・学習の形成や種々の精神神経疾患に関わる重要な部位である。私たちはこれまで、運動記憶・学習を担う小脳回路シナプスがNeurexin-Cbln1-GluD2複合体を介する新しい「シナプス架橋構造」によって構築されていることを明らかにしてきた。この架橋構造の破綻は小脳シナプスに特有の障害をもたらし、シナプス前部との接触が外れる“裸のスパイン (naked spine)”と称するシナプス異常を伴う。近年、naked spineを示すことが報告された炭酸脱水酵素8 (carbonic anhydrase-related protein 8;CA8) 変異自然発症マウスが、Cbln1, GluD2欠損マウスと同様、重篤な小脳失調様行動を示すことが見出されている。しかし、細胞内タンパク質であり酵素活性をもたないCA8が脳内でどのように働いているかはまったく不明である。そこで本研究では、小脳シナプスの形成・動作原理の分子的解明を目指し、脳内CA8の機能について追究した。
    引き続き、CA8-KOマウスの病的表現型について詳細な解析を進めた。その中でも、今年度は、CA8-KOマウスにおいて障害されているシナプス可塑性の分子機構を追究した結果、CA8は従来のシナプス可塑性に関わる分子群と共通のシグナル経路を介して働いていることが示唆された。興味深いことに、CA8-KOマウスの形態学解析により、シナプス可塑性に関わる分子群の局在様式が大きく変化していることが示された。これらの所見は、CA8とシナプス可塑性に関わる従来分子群が何らかの相互作用を介している可能性を示唆しており、今後、これらの分子群による相互作用について明らかにしていきたい。

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  • Novel molecular mechanisms to regulate inhibitory synapse functions through GABAA Receptor Regulatory Lhfpl (GARLH)

    Grant number:18K06490  2018.4 - 2021.3

    Japan Society for the Promotion of Science  Grants-in-Aid for Scientific Research  Grant-in-Aid for Scientific Research (C)

    Yamasaki Tokiwa

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    Grant amount:\4420000 ( Direct Cost: \3400000 、 Indirect Cost:\1020000 )

    Previously we identified GARLH as a novel GABAA receptor binding protein. In this study, we investigated the molecular mechanisms which regulate inhibitory synapses through GARLH. We found that GARLH binds not only inhibitory adhesion NL2, but also excitatory adhesion NL1, and that GARLH localizes NL1 from excitatory to inhibitory synapses. Additionally, we performed proteome analysis of NL1 using HA-NL1 knock-in mice and revealed NL1-interacting proteins. We also designed fusion proteins of GARLH and proximity labeling enzyme, TurboID, and expressed in mouse brain. We are now investigating to identify novel GARLH binding proteins using this GARLH-TurboID system.

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  • 神経-グリア相互作用におけるJNKシグナルを介した高次脳機能制御メカニズムの解明

    Grant number:13J08039  2013.4 - 2016.3

    日本学術振興会  科学研究費助成事業  特別研究員奨励費

    山崎 世和

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    Grant amount:\3960000 ( Direct Cost: \3300000 、 Indirect Cost:\660000 )

    精神疾患様の症状を呈する神経細胞特異的mkk7欠損マウスについて、解剖学的、行動学的な解析を行った。その結果、Parvalbumin陽性細胞が減少すること、強制水泳試験における不動時間が延長すること、プレパルス抑制試験においてプレパルス抑制の低下を呈すること、が観察され、さらなる精神疾患様の症状が明らかとなった。
    また、グリア特異的mkk7欠損マウスの解析と神経・グリア特異的mkk7欠損マウスの作出を行った。アストロサイトでCreERT2を発現するGLAST-CreERT2マウスとMkk7 floxマウスを交配して得られたマウスにタモキシフェンを投与し、アストロサイト特異的mkk7欠損マウスを作出した。現在このマウスにおいて神経変性疾患や精神疾患様の症状が観察されるか解析を進めている。また神経細胞とグリア細胞の両者でmkk7を同時に欠損させたマウスを作出するため、Mkk7 floxマウス、Syn-Creマウス、GLAST-CreERT2マウスの掛け合わせを行った。今後はこのマウスへタモキシフェンを投与しmkk7の欠損を誘導することを計画している。
    加えてAMPA型グルタミン酸受容体機能複合体におけるMKK7-JNKシグナルの機能解析を行った。アフリカツメガエル卵母細胞発現系にGluA1, GluA2, TARPg-8, CNIH2に加えMKK7, JNKを導入し、チャネル特性を解析した。しかしながら有意な変化は認められなかった。
    さらにMkk7欠損神経細胞の電気生理学的解析を行うため、CRISPR/Casの系の立ち上げを進めている。小脳顆粒細胞の初代培養にて、複数のguide配列を検討、効率良く遺伝子発現を抑制する配列をスクリーニングするin vitroの系の立ち上げに成功した。今後は、この系を用いてMkk7, JNKのguide配列のスクリーニングを行い、同定された配列をマウス脳に導入、急性スライス培養における解析を計画している。

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  • ストレス応答性JNKシグナル系の神経変性疾患における機能解析

    Grant number:07J03259  2007 - 2009

    日本学術振興会  科学研究費助成事業  特別研究員奨励費

    山崎 世和

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    Grant amount:\2700000 ( Direct Cost: \2700000 )

    ストレス応答性JNK(別名SAPK)シグナル系が、正常な脳において発生期から持続的にリン酸化されている事を見出し、正常な脳における機能を明らかにするため、JNKの活性化因子であるMKK7の条件付ノックアウトマウスを用いた解析を行った。
    1)Nestin-CreによるMKK7条件付ノックアウトマウスの解析
    発生期の脳におけるJNKシグナル系の機能を解析するため、Mkk7 floxマウスとNestin-Creマウスを交配し、発生初期の神経幹細胞でMKK7を破壊したマウスを作出した。このマウスは生後直後に呼吸不全で死亡すること、脳における軸索路の形成に異常を呈することが明らかとなった。さらに解析を行い、MKK7-JNKシグナルが発生期における神経細胞の軸索形成を制御していることを示した。
    2)Synapsinl-CreによるMKK7条件付ノックアウトマウスの解析
    成体の脳においてJNKシグナル系の機能を解析するため、Mkk7 floxマウスとSynapsinl-Creマウスを交配し、成体における神経系特異的MKK7ノックアウトマウスを作出した。このマウスは生後直後の致死を回避したが、体重の減少、脳重量の増加という表現型を示した。また、このマウスでは加齢することで神経変性疾患と類似した症状が観察されることが明らかとなった。
    以上の成果より、JNKシグナル系は発生期から成体に至るまで、正常な脳の形成・機能維持に必須であることが明らかとなった。今後は、成体の脳におけるJNKシグナル系が制御している現象を見出し、Synapsinl-CreによるMKK7条件付ノックアウトマウスの神経変性疾患様症状発症のメカニズムを明らかにすることを計画している。

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