2017
Membrane Currents, Gene Expression, and Circadian Clocks
Allen CN, Nitabach MN, Colwell CS. Membrane Currents, Gene Expression, and Circadian Clocks. Cold Spring Harbor Perspectives In Biology 2017, 9: a027714. PMID: 28246182, PMCID: PMC5411696, DOI: 10.1101/cshperspect.a027714.Peer-Reviewed Original ResearchConceptsCircadian clockGene ClockMembrane electrical activityCyclic adenosine monophosphateCircadian clock neuronsCircadian outputClock neuronsGenetic clockGene expressionCircadian oscillatorIntracellular CaAdenosine monophosphateFeedback loopPathwayClockHuman healthAction potential firing patternsMammalianActivityAction potential firingNightly reductionsMultiple typesExpressionMembrane currentsCircadian pattern
2011
A conserved motif within RAP1 has diversified roles in telomere protection and regulation in different organisms
Chen Y, Rai R, Zhou ZR, Kanoh J, Ribeyre C, Yang Y, Zheng H, Damay P, Wang F, Tsujii H, Hiraoka Y, Shore D, Hu HY, Chang S, Lei M. A conserved motif within RAP1 has diversified roles in telomere protection and regulation in different organisms. Nature Structural & Molecular Biology 2011, 18: 213-221. PMID: 21217703, PMCID: PMC3688267, DOI: 10.1038/nsmb.1974.Peer-Reviewed Original ResearchMeSH KeywordsAmino Acid MotifsAmino Acid SequenceAnimalsCells, CulturedCrystallography, X-RayFungal ProteinsHeLa CellsHumansModels, MolecularMolecular Sequence DataMutationNuclear Magnetic Resonance, BiomolecularProtein BindingProtein Interaction Domains and MotifsSaccharomycetalesSchizosaccharomycesShelterin ComplexTelomereTelomere-Binding ProteinsTelomeric Repeat Binding Protein 2ConceptsRap1 C-terminusDifferent interacting partnersProtein Rap1Fission yeastTelomere protectionInteracting partnerTranscriptional silencingDifferent organismsC-terminusFunctional analysisInteraction moduleYeastRap1Different functionsOrganismsTaz1Sir3TRF2MammalianTelomeresSilencingMammalsMotifCrystal structureRegulation
2009
Sleep Physiology in Pregnancy
Bourjeily G, Mohsenin V. Sleep Physiology in Pregnancy. Respiratory Medicine 2009, 37-55. DOI: 10.1007/978-1-59745-445-2_4.Peer-Reviewed Original Research
2006
Identification of Avian- and Mammalian-Derived Bloodmeals in Aedes vexans and Culiseta melanura (Diptera: Culicidae) and Its Implication for West Nile Virus Transmission in Connecticut, U.S.A.
Molaei G, Andreadis T. Identification of Avian- and Mammalian-Derived Bloodmeals in Aedes vexans and Culiseta melanura (Diptera: Culicidae) and Its Implication for West Nile Virus Transmission in Connecticut, U.S.A. Journal Of Medical Entomology 2006, 51 DOI: 10.1603/0022-2585(2006)43[1088:ioaamb]2.0.co;2.Peer-Reviewed Original ResearchVertebrate bloodmealsAmerican robinsMixed bloodmealsCytochrome b geneHost-feeding patternsCuliseta melanuraAedes vexansVertebrate bloodMitochondrial DNAWood ThrushGray CatbirdsB geneMammalian hostsAvian hostsLarge mammalsAvian speciesMammalian bloodWest Nile virus transmissionEastern cottontailsBridge vectorsIndividual mosquitoesAmerican crowsMelanuraCulex vectorsMammalian
2004
Genetic Analysis of RGS Protein Function in Caenorhabditis elegans
Chase DL, Koelle MR. Genetic Analysis of RGS Protein Function in Caenorhabditis elegans. Methods In Enzymology 2004, 389: 305-320. PMID: 15313573, DOI: 10.1016/s0076-6879(04)89018-9.Peer-Reviewed Original ResearchConceptsRGS proteinsC. elegansG proteinsRGS protein functionStructure/function studiesG protein geneCaenorhabditis elegansGalpha mutantsClose homologProtein functionGalpha proteinsElegansGenetic analysisDetailed protocolTransgenic expressionProteinMost mammaliansMutantsFunction studiesOrthologsCaenorhabditisHomologMammalianGenesOrganisms
2003
Spatial Regulation of Developmental Signaling by a Serpin
Hashimoto C, Kim DR, Weiss LA, Miller JW, Morisato D. Spatial Regulation of Developmental Signaling by a Serpin. Developmental Cell 2003, 5: 945-950. PMID: 14667416, DOI: 10.1016/s1534-5807(03)00338-1.Peer-Reviewed Original ResearchConceptsExtracellular serine protease cascadeDiverse biological processesSerine protease cascadeDevelopmental signalingDrosophila embryosDorsoventral polarityBlood-clotting cascadeSpatial regulationSerine protease inhibitorProtease cascadeBiological processesGeneral mechanismEssential roleProtease activitySpatial controlEmbryosCascadeProtease inhibitorsVentral sideMammalianSerpinsSignalingRegulationPathwayRole
1998
Immunochemical characterization of Na+/H+exchanger isoform NHE4
Pizzonia J, Biemesderfer D, Abu-Alfa A, Wu M, Exner M, Isenring P, Igarashi P, Aronson P. Immunochemical characterization of Na+/H+exchanger isoform NHE4. American Journal Of Physiology 1998, 275: f510-f517. PMID: 9755122, DOI: 10.1152/ajprenal.1998.275.4.f510.Peer-Reviewed Original ResearchConceptsSubcellular localizationFusion proteinWestern blot analysisBlot analysisBroad tissue distributionBasolateral membraneTransport proteinsMembrane fractionProteinEpithelial cellsSkeletal muscleGradient centrifugationTissue distributionPercoll gradient centrifugationCellsGastric glandsNHE4MembraneImmunochemical characterizationMammalianLocalizationRat tissuesImmunochemical techniquesMonoclonal antibodiesPolypeptideCharacterization of the ryanodine receptor/channel of invertebrate muscle
Quinn K, Castellani L, Ondrias K, Ehrlich B. Characterization of the ryanodine receptor/channel of invertebrate muscle. American Journal Of Physiology 1998, 274: r494-r502. PMID: 9486309, DOI: 10.1152/ajpregu.1998.274.2.r494.Peer-Reviewed Original ResearchConceptsInvertebrate musclesRyanodine receptor/channelVertebrate skeletal muscleDiverse organismsCalcium release channel/ryanodine receptorRelease channel/ryanodine receptorChannel/ryanodine receptorSingle-channel conductanceReceptor/channelElectron microscopic analysisRyanodine receptorSkeletal muscleRelease channelCytoplasmic Ca2Single-channel currentsSpecific ryanodine bindingChannel conductanceSarcoplasmic reticulumRyRsRuthenium redInvertebratesCa2MammalianRyanodine bindingOrganisms
1995
The generation of epithelial polarity in mammalian and Drosophila embryos
Shiel M, Caplan M. The generation of epithelial polarity in mammalian and Drosophila embryos. Seminars In Cell And Developmental Biology 1995, 6: 39-46. DOI: 10.1016/s1044-5781(06)80083-6.Peer-Reviewed Original Research
1993
Expression and regulation of mammalian K+ channel genes
Perney T, Kaczmarek L. Expression and regulation of mammalian K+ channel genes. Seminars In Neuroscience 1993, 5: 135-145. DOI: 10.1016/s1044-5765(05)80008-9.Peer-Reviewed Original ResearchChannel gene expressionGene expressionChannel genesRegulation of mammalianParticular spatial domainSpecific cell typesDifferent environmental stimuliCellular functionsChannel proteinsCell typesEnvironmental stimuliCell occurDiverse aspectsSuch regulationGenesRegulationChannel expressionGrowth factorExpressionExcitable tissuesLongterm changesCellsSuperfamilyMammalianProtein
1992
Site-specific cross-linking of mammalian U5 snRNP to the 5' splice site before the first step of pre-mRNA splicing.
Wyatt JR, Sontheimer EJ, Steitz JA. Site-specific cross-linking of mammalian U5 snRNP to the 5' splice site before the first step of pre-mRNA splicing. Genes & Development 1992, 6: 2542-2553. PMID: 1340469, DOI: 10.1101/gad.6.12b.2542.Peer-Reviewed Original ResearchConceptsSplice siteMRNA splicingATP-dependent interactionHeLa nuclear extractsU5 snRNPMRNA substratesSplice site regionProtein factorsU5 snRNANucleotides upstreamU6 snRNAPre-mRNANuclear extractsSplicingSite regionLoop sequenceCross-link formationSnRNASplicing conditionsWatson-Crick complementarityCross-linking strategyU1Selective photoactivationSnRNPMammalian
1990
Spliced leader RNA sequences can substitute for the essential 5′ end of U1 RNA during splicing in a mammalian in vitro system
Bruzik J, Steitz J. Spliced leader RNA sequences can substitute for the essential 5′ end of U1 RNA during splicing in a mammalian in vitro system. Cell 1990, 62: 889-899. PMID: 2168293, DOI: 10.1016/0092-8674(90)90264-f.Peer-Reviewed Original Research
1985
Organization of Ion Channels in the Myelinated Nerve Fiber
Waxman S, Ritchie J. Organization of Ion Channels in the Myelinated Nerve Fiber. Science 1985, 228: 1502-1507. PMID: 2409596, DOI: 10.1126/science.2409596.Peer-Reviewed Original Research
This site is protected by hCaptcha and its Privacy Policy and Terms of Service apply