2021
Ketogenic diet restrains aging-induced exacerbation of coronavirus infection in mice
Ryu S, Shchukina I, Youm YH, Qing H, Hilliard B, Dlugos T, Zhang X, Yasumoto Y, Booth CJ, Fernández-Hernando C, Suárez Y, Khanna K, Horvath TL, Dietrich MO, Artyomov M, Wang A, Dixit VD. Ketogenic diet restrains aging-induced exacerbation of coronavirus infection in mice. ELife 2021, 10: e66522. PMID: 34151773, PMCID: PMC8245129, DOI: 10.7554/elife.66522.Peer-Reviewed Original ResearchConceptsΓδ T cellsKetogenic dietCoronavirus infectionAged miceT cellsHigher systemic inflammationInfected aged miceCOVID-19 severityCOVID-19 infectionActivation of ketogenesisMouse hepatitis virus strain A59Systemic inflammationInflammatory damageInfluenza infectionClinical hallmarkNLRP3 inflammasomeImmune surveillanceAdipose tissuePotential treatmentInfectionMiceStrongest predictorLungMortalityAgeUcp2-dependent microglia-neuronal coupling controls ventral hippocampal circuit function and anxiety-like behavior
Yasumoto Y, Stoiljkovic M, Kim JD, Sestan-Pesa M, Gao XB, Diano S, Horvath TL. Ucp2-dependent microglia-neuronal coupling controls ventral hippocampal circuit function and anxiety-like behavior. Molecular Psychiatry 2021, 26: 2740-2752. PMID: 33879866, PMCID: PMC8056795, DOI: 10.1038/s41380-021-01105-1.Peer-Reviewed Original ResearchConceptsAnxiety-like behaviorReactive oxygen speciesMicroglia-synapse contactsSpine synapse numberHippocampal circuit functionNeuronal circuit dysfunctionMicroglial productionVentral hippocampusCircuit dysfunctionSpine synapsesSynapse numberAdult brainTransient riseMitochondrial ROS generationMicrogliaBrain functionConditional ablationPhagocytic inclusionsSynaptic elementsProtein 2ROS generationSignificant reductionCircuit functionConsequent accumulationOxygen speciesDiscovery and functional interrogation of SARS-CoV-2 RNA-host protein interactions
Flynn RA, Belk JA, Qi Y, Yasumoto Y, Wei J, Alfajaro MM, Shi Q, Mumbach MR, Limaye A, DeWeirdt PC, Schmitz CO, Parker KR, Woo E, Chang HY, Horvath TL, Carette JE, Bertozzi CR, Wilen CB, Satpathy AT. Discovery and functional interrogation of SARS-CoV-2 RNA-host protein interactions. Cell 2021, 184: 2394-2411.e16. PMID: 33743211, PMCID: PMC7951565, DOI: 10.1016/j.cell.2021.03.012.Peer-Reviewed Original ResearchConceptsSARS-CoV-2 RNASARS-CoV-2Virus-induced cell deathHost protein interactionsRNA-binding proteinActive infectionRNA virusesHost-virus interfaceGlobal mortalityTherapeutic benefitCRISPR screensAntiviral factorsProtein interactionsAntiviral activityViral specificityHost pathwaysFunctional RNA-binding proteinsFunctional connectionsRNA-centric approachesCell deathHost proteinsVirusFunctional interrogationRNAComprehensive catalogNeuroinvasion of SARS-CoV-2 in human and mouse brain
Song E, Zhang C, Israelow B, Lu-Culligan A, Prado AV, Skriabine S, Lu P, Weizman OE, Liu F, Dai Y, Szigeti-Buck K, Yasumoto Y, Wang G, Castaldi C, Heltke J, Ng E, Wheeler J, Alfajaro MM, Levavasseur E, Fontes B, Ravindra NG, Van Dijk D, Mane S, Gunel M, Ring A, Kazmi SAJ, Zhang K, Wilen CB, Horvath TL, Plu I, Haik S, Thomas JL, Louvi A, Farhadian SF, Huttner A, Seilhean D, Renier N, Bilguvar K, Iwasaki A. Neuroinvasion of SARS-CoV-2 in human and mouse brain. Journal Of Experimental Medicine 2021, 218: e20202135. PMID: 33433624, PMCID: PMC7808299, DOI: 10.1084/jem.20202135.Peer-Reviewed Original ResearchConceptsSARS-CoV-2Central nervous systemSARS-CoV-2 neuroinvasionImmune cell infiltratesCOVID-19 patientsType I interferon responseMultiple organ systemsCOVID-19I interferon responseHuman brain organoidsNeuroinvasive capacityCNS infectionsCell infiltrateNeuronal infectionPathological featuresCortical neuronsRespiratory diseaseDirect infectionCerebrospinal fluidNervous systemMouse brainInterferon responseOrgan systemsHuman ACE2Infection
2018
FABP3 in the Anterior Cingulate Cortex Modulates the Methylation Status of the Glutamic Acid Decarboxylase67 Promoter Region
Yamamoto Y, Kida H, Kagawa Y, Yasumoto Y, Miyazaki H, Islam A, Ogata M, Yanagawa Y, Mitsushima D, Fukunaga K, Owada Y. FABP3 in the Anterior Cingulate Cortex Modulates the Methylation Status of the Glutamic Acid Decarboxylase67 Promoter Region. Journal Of Neuroscience 2018, 38: 10411-10423. PMID: 30341178, PMCID: PMC6596254, DOI: 10.1523/jneurosci.1285-18.2018.Peer-Reviewed Original ResearchConceptsAnterior cingulate cortexHistone deacetylase 1KO miceCellular chaperonesFatty acid-binding proteinMethionine administrationTranscriptional repressor complexMouse anterior cingulate cortexGlutamic acid decarboxylase 67Promoter methylationEnzyme glutamic acid decarboxylase 67Emotional behaviorKO male miceGABAergic inhibitory interneuronsRepressor complexTranscriptional regulationSignal transductionAcid-binding proteinDNA methylationGene transcriptionMethyl-CpGIntracellular traffickingPromoter regionHuman psychiatric disordersPUFA homeostasisGlial Fatty Acid-Binding Protein 7 (FABP7) Regulates Neuronal Leptin Sensitivity in the Hypothalamic Arcuate Nucleus
Yasumoto Y, Miyazaki H, Ogata M, Kagawa Y, Yamamoto Y, Islam A, Yamada T, Katagiri H, Owada Y. Glial Fatty Acid-Binding Protein 7 (FABP7) Regulates Neuronal Leptin Sensitivity in the Hypothalamic Arcuate Nucleus. Molecular Neurobiology 2018, 55: 9016-9028. PMID: 29623545, DOI: 10.1007/s12035-018-1033-9.Peer-Reviewed Original ResearchConceptsFabp7 KO miceFatty Acid Binding Protein 7Arcuate nucleusHypothalamic arcuate nucleusKO miceFood intakeMedian eminenceFatty acid-binding protein 7Energy homeostasisWeight gainSingle leptin injectionHigh-fat dietNon-neuronal cell typesWild-type miceProtein 7Systemic energy homeostasisLeptin-induced activationPrimary astrocyte culturesNeuronal leptinHypothalamic astrocytesWT miceLeptin injectionObese miceHypothalamic sitesLeptin treatment
2016
Inhibition of Fatty Acid Synthase Decreases Expression of Stemness Markers in Glioma Stem Cells
Yasumoto Y, Miyazaki H, Vaidyan LK, Kagawa Y, Ebrahimi M, Yamamoto Y, Ogata M, Katsuyama Y, Sadahiro H, Suzuki M, Owada Y. Inhibition of Fatty Acid Synthase Decreases Expression of Stemness Markers in Glioma Stem Cells. PLOS ONE 2016, 11: e0147717. PMID: 26808816, PMCID: PMC4726602, DOI: 10.1371/journal.pone.0147717.Peer-Reviewed Original ResearchConceptsFatty acid synthaseGlioma stem cellsStem cellsCellular lipid metabolismCellular metabolic changesKey lipogenic enzymesPatient-derived glioma stem cellsLipid biosynthesisFatty acid binding proteinAcid binding proteinPharmacological inhibitorsSynthesis assayBinding proteinAcid synthaseCerulenin treatmentGlial fibrillary acidic protein (GFAP) expressionGSC stemnessProtein expressionCancer cellsDe novo lipogenesisLipogenic enzymesImmunocytochemical analysisMarker nestinStemness markersDecrease expression
2015
Astrocyte‐expressed FABP7 regulates dendritic morphology and excitatory synaptic function of cortical neurons
Ebrahimi M, Yamamoto Y, Sharifi K, Kida H, Kagawa Y, Yasumoto Y, Islam A, Miyazaki H, Shimamoto C, Maekawa M, Mitsushima D, Yoshikawa T, Owada Y. Astrocyte‐expressed FABP7 regulates dendritic morphology and excitatory synaptic function of cortical neurons. Glia 2015, 64: 48-62. PMID: 26296243, DOI: 10.1002/glia.22902.Peer-Reviewed Original ResearchConceptsFabp7 KO miceMedial prefrontal cortexMiniature excitatory postsynaptic currentsAberrant dendritic morphologyKO miceCortical neuronsDendritic morphologyNeuropsychiatric disordersWhole-cell voltage-clamp recordingsPrimary cortical neuronal culturesDendritic arbor growthNeuronal dendritic morphologyExcitatory synaptic functionCortical pyramidal neuronsExcitatory synapse numberCortical neuronal culturesExcitatory postsynaptic currentsAstrocyte-conditioned mediumPrimary cortical neuronsWild-type miceExcitatory synapse formationVoltage-clamp recordingsNovel therapeutic interventionsHuman neuropsychiatric disordersFatty acids
2014
Fatty Acid Binding Protein 3 Is Involved in n–3 and n–6 PUFA Transport in Mouse Trophoblasts
Islam A, Kagawa Y, Sharifi K, Ebrahimi M, Miyazaki H, Yasumoto Y, Kawamura S, Yamamoto Y, Sakaguti S, Sawada T, Tokuda N, Sugino N, Suzuki R, Owada Y. Fatty Acid Binding Protein 3 Is Involved in n–3 and n–6 PUFA Transport in Mouse Trophoblasts. Journal Of Nutrition 2014, 144: 1509-1516. PMID: 25122651, DOI: 10.3945/jn.114.197202.Peer-Reviewed Original ResearchConceptsWild-type micePlacental fatty acid transportFatty Acid Binding Protein 3Glucose uptakeLinoleic acidAdult metabolic diseaseBinding protein 3Fetal developmental disordersGene-ablated miceFA transportWild-type fetusesEmbryonic day 15.5Palmitic acidPlacental unitFatty acid transportMetabolic diseasesFetal developmentTrophoblast cellsBeWo cellsProtein 3Day 15.5MiceMouse placentaPlacentaMouse trophoblastFatty Acid Binding Protein 7 Regulates Phagocytosis and Cytokine Production in Kupffer Cells during Liver Injury
Miyazaki H, Sawada T, Kiyohira M, Yu Z, Nakamura K, Yasumoto Y, Kagawa Y, Ebrahimi M, Islam A, Sharifi K, Kawamura S, Kodama T, Yamamoto Y, Adachi Y, Tokuda N, Terai S, Sakaida I, Ishikawa T, Owada Y. Fatty Acid Binding Protein 7 Regulates Phagocytosis and Cytokine Production in Kupffer Cells during Liver Injury. American Journal Of Pathology 2014, 184: 2505-2515. PMID: 25041855, DOI: 10.1016/j.ajpath.2014.05.015.Peer-Reviewed Original ResearchMeSH KeywordsAnimalsBlotting, WesternCarbon TetrachlorideChemical and Drug Induced Liver InjuryCytokinesEnzyme-Linked Immunosorbent AssayFatty Acid-Binding Protein 7Fatty Acid-Binding ProteinsFlow CytometryFluorescent Antibody TechniqueImmunohistochemistryIn Situ Nick-End LabelingKupffer CellsMaleMiceMice, Inbred C57BLMice, KnockoutNerve Tissue ProteinsPhagocytosisReverse Transcriptase Polymerase Chain ReactionConceptsLiver injuryKupffer cellsKnockout miceLiver diseaseCytokine productionKC functionNumber of KCsKC phagocytic activityLiver injury processLiver necrotic areasChronic liver injurySerum liver enzymesWild-type miceNovel therapeutic approachesRole of FABP7Scavenger receptor CD36Cytokine expressionFibrogenic responseLiver enzymesInjury processPathological changesLiver cancerTherapeutic approachesReceptor CD36Tissue macrophages
2013
Fatty acid binding protein 7 as a marker of glioma stem cells
Morihiro Y, Yasumoto Y, Vaidyan LK, Sadahiro H, Uchida T, Inamura A, Sharifi K, Ideguchi M, Nomura S, Tokuda N, Kashiwabara S, Ishii A, Ikeda E, Owada Y, Suzuki M. Fatty acid binding protein 7 as a marker of glioma stem cells. Pathology International 2013, 63: 546-553. PMID: 24274717, DOI: 10.1111/pin.12109.Peer-Reviewed Original ResearchConceptsGlioblastoma stem cellsPatient-derived GSC linesGlioma surgical specimensExpression of FABP7Stem cellsAggressive brain tumorGlioma stem cellsNeural stem cellsPoor prognosisFatty acidsMajority of glioblastomasSurgical specimensFABP7 expressionAnaplastic astrocytomaBrain tumorsDiffuse astrocytomasGlioma diagnosisTumor cellsFABP7Western blottingAddition of serumKnown markerGlioblastomaProtein 7GSC linesDifferential expression and regulatory roles of FABP5 and FABP7 in oligodendrocyte lineage cells
Sharifi K, Ebrahimi M, Kagawa Y, Islam A, Tuerxun T, Yasumoto Y, Hara T, Yamamoto Y, Miyazaki H, Tokuda N, Yoshikawa T, Owada Y. Differential expression and regulatory roles of FABP5 and FABP7 in oligodendrocyte lineage cells. Cell And Tissue Research 2013, 354: 683-695. PMID: 24114376, DOI: 10.1007/s00441-013-1730-7.Peer-Reviewed Original ResearchConceptsLineage cellsOligodendrocyte lineage cellsOligodendrocyte progenitor cellsCultured oligodendrocyte progenitor cellsCell populationsOPCs/oligodendrocytesSignal transductionGene transcriptionKey intracellular moleculesOligodendrocyte lineage markersExpression of FABP5Differential expressionRegulatory roleIntracellular moleculesDifferentiation mediumFABP7FABP5FABP7 expressionLineage markersProgenitor cellsOligodendrocyte lineageMixed cortical culturesBrdU uptakeExpressionCentral role
2011
FABP7 expression in normal and stab-injured brain cortex and its role in astrocyte proliferation
Sharifi K, Morihiro Y, Maekawa M, Yasumoto Y, Hoshi H, Adachi Y, Sawada T, Tokuda N, Kondo H, Yoshikawa T, Suzuki M, Owada Y. FABP7 expression in normal and stab-injured brain cortex and its role in astrocyte proliferation. Histochemistry And Cell Biology 2011, 136: 501. PMID: 21938553, PMCID: PMC3192944, DOI: 10.1007/s00418-011-0865-4.Peer-Reviewed Original ResearchMeSH KeywordsAnimalsAnimals, NewbornAntigensAstrocytesCell ProliferationCells, CulturedCerebral CortexDisease Models, AnimalFatty Acid-Binding Protein 7Fatty Acid-Binding ProteinsFatty Acids, Omega-3Gene ExpressionGliosisHomeostasisMaleMiceMice, Inbred C57BLMice, KnockoutNerve Tissue ProteinsNeural Stem CellsOligodendrogliaProteoglycansWounds, StabConceptsFabp7 KO miceGlial cellsReactive gliosisFABP7 expressionBrain-type fatty acid-binding proteinProliferation of astrocytesExpression of FABP7Cellular fatty acid homeostasisWild-type miceGlial cell proliferationOligodendrocyte progenitor cellsWild-type astrocytesFatty acid-binding proteinRole of FABP7Fatty acid homeostasisFatty acid incorporationNeural stem cellsReactive astrocytesNormal cortexAstrocyte proliferationContralateral sideInjury modelAcid-binding proteinBrain pathologyBrain cortex