2024
Ezrin drives adaptation of monocytes to the inflamed lung microenvironment
Gudneppanavar R, Di Pietro C, H Öz H, Zhang P, Cheng E, Huang P, Tebaldi T, Biancon G, Halene S, Hoppe A, Kim C, Gonzalez A, Krause D, Egan M, Gupta N, Murray T, Bruscia E. Ezrin drives adaptation of monocytes to the inflamed lung microenvironment. Cell Death & Disease 2024, 15: 864. PMID: 39613751, PMCID: PMC11607083, DOI: 10.1038/s41419-024-07255-8.Peer-Reviewed Original ResearchConceptsActivation of focal adhesion kinaseExtracellular matrixActin-binding proteinsFocal adhesion kinaseLung extracellular matrixKnock-out mouse modelProtein Kinase SignalingCortical cytoskeletonLoss of ezrinKinase signalingPlasma membraneCell migrationSignaling pathwayEzrinResponse to lipopolysaccharideTissue-resident macrophagesMouse modelLipopolysaccharideCytoskeletonEzrin expressionLung microenvironmentKinaseMonocyte recruitmentProteinAkt
2019
The Psychiatric Risk Gene NT5C2 Regulates Adenosine Monophosphate-Activated Protein Kinase Signaling and Protein Translation in Human Neural Progenitor Cells
Duarte RRR, Bachtel ND, Côtel MC, Lee SH, Selvackadunco S, Watson IA, Hovsepian GA, Troakes C, Breen GD, Nixon DF, Murray RM, Bray NJ, Eleftherianos I, Vernon AC, Powell TR, Srivastava DP. The Psychiatric Risk Gene NT5C2 Regulates Adenosine Monophosphate-Activated Protein Kinase Signaling and Protein Translation in Human Neural Progenitor Cells. Biological Psychiatry 2019, 86: 120-130. PMID: 31097295, PMCID: PMC6614717, DOI: 10.1016/j.biopsych.2019.03.977.Peer-Reviewed Original ResearchConceptsHuman neural progenitor cellsProtein translationNeural progenitor cellsMotility behaviorAvailable expression dataRibosomal protein S6Protein Kinase SignalingRegulation of AMPKProgenitor cellsNutrient sensing mechanismsProtein kinase alphaQuantitative polymerase chain reactionPsychiatric risk allelesDrosophila melanogasterTranscriptional changesKinase signalingProtein S6Transcriptomic profilingRNA interferenceNeural stem cellsExpression changesKinase alphaUnknown roleExpression dataHuman dorsolateral prefrontal cortex
2017
Transforming Growth Factor‐β Receptor III is a Potential Regulator of Ischemia‐Induced Cardiomyocyte Apoptosis
Sun F, Li X, Duan W, Tian W, Gao M, Yang J, Wu X, Huang D, Xia W, Han Y, Wang J, Liu Y, Dong C, Zhao D, Ban T, Chu W. Transforming Growth Factor‐β Receptor III is a Potential Regulator of Ischemia‐Induced Cardiomyocyte Apoptosis. Journal Of The American Heart Association 2017, 6: e005357. PMID: 28559372, PMCID: PMC5669164, DOI: 10.1161/jaha.116.005357.Peer-Reviewed Original ResearchMeSH KeywordsAnimalsApoptosisCells, CulturedDisease Models, AnimalHydrogen PeroxideMaleMice, Inbred C57BLMice, TransgenicMyocardial InfarctionMyocytes, Cardiacp38 Mitogen-Activated Protein KinasesProteoglycansReceptors, Transforming Growth Factor betaRNA InterferenceSignal TransductionTime FactorsTransfectionConceptsMyocardial infarctionCardiomyocyte apoptosisP38 signalingActivation of p38 signalingLeft anterior descending coronary artery ligationRisk of heart failureTransferase-mediated dUTP nick-end labeling assayTerminal deoxynucleotidyl transferase-mediated dUTP nick-end labeling assayIschemia-induced cardiomyocyte apoptosisMitogen-Activated Protein Kinase SignalingAnterior descending coronary artery ligationDUTP nick end labeling assayNick end labeling assayCoronary artery ligationEnlarged infarct sizeProtein Kinase SignalingEnd labeling assayShort hairpin RNANonredundant functionsMethylthiazolyldiphenyl-tetrazolium bromide assayJNK1/2 signalingHeart failureArtery ligationApoptosis of cardiomyocytesKinase signaling
2007
Dissecting kinase signaling pathways
Boyle SN, Koleske AJ. Dissecting kinase signaling pathways. Drug Discovery Today 2007, 12: 717-724. PMID: 17826684, DOI: 10.1016/j.drudis.2007.07.019.Peer-Reviewed Original ResearchMeSH KeywordsAnimalsAntibodies, MonoclonalAntibodies, Monoclonal, HumanizedAntineoplastic AgentsBenzamidesDrug Delivery SystemsHumansImatinib MesylateLapatinibNeoplasmsPhosphoproteinsPhosphorylationPiperazinesProtein Kinase InhibitorsProtein KinasesProteomicsPyrimidinesQuinazolinesSignal TransductionTrastuzumabConceptsSame protein substrateProtein Kinase SignalingKinase substratePutative substratesProtein substratesKinase signalingProtein kinaseMultiple kinasesPhysiological substratesKinaseHuman diseasesDrug targetsPhysiological relevanceSubstrate interactionsKinase inhibitorsPathwaySignalingSubstrateNeurological disordersInteractionHallmarkInhibitorsTargetLack of Extracellular Signal-Regulated Kinase Mitogen-Activated Protein Kinase Signaling Shows a New Type of Melanoma
Shields JM, Thomas NE, Cregger M, Berger AJ, Leslie M, Torrice C, Hao H, Penland S, Arbiser J, Scott G, Zhou T, Bar-Eli M, Bear JE, Der CJ, Kaufmann WK, Rimm DL, Sharpless NE. Lack of Extracellular Signal-Regulated Kinase Mitogen-Activated Protein Kinase Signaling Shows a New Type of Melanoma. Cancer Research 2007, 67: 1502-1512. PMID: 17308088, DOI: 10.1158/0008-5472.can-06-3311.Peer-Reviewed Original ResearchConceptsMitogen-activated protein kinaseERK activationB-RafERK activityMitogen-Activated Protein Kinase SignalingSignal-regulated kinase kinaseN-rasERK MAPK cascadeProtein Kinase SignalingPrimary human melanocytesRNA expression profilesCell linesEpithelial-mesenchymal transformationDistinct melanoma subtypeMAPK cascadeKinase kinaseExtracellular signalsTranscriptional targetsKinase signalingProtein kinaseExpression profilesEpithelial markersMelanoma cell linesRAS/RAFPrimary human tumors
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