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    1. Naturvetenskap och teknik
    2. Matematik och naturvetenskap
    3. Biologi
    4. Biovetenskap

    Functional Genomics and Proteomics in the Clinical Neurosciences

    AvScott E. Hemby,Sabine Bahn

    Inbunden, Engelska, 2006

    Del 158 i serien Progress in Brain Research

    3 163 kr

    Beställningsvara. Skickas inom 10-15 vardagar. Fri frakt över 249 kr.

    Beskrivning

    The purpose of this work is to familiarize neuroscientists with the available tools for proteome research and their relative abilities and limitations. To know the identities of the thousands of different proteins in a cell, and the modifications to these proteins, along with how the amounts of both of these change in different conditions would revolutionize biology and medicine. While important strides are being made towards achieving the goal of global mRNA analysis, mRNA is not the functional endpoint of gene expression and mRNA expression may not directly equate with protein expression. There are many potential applications for proteomics in neuroscience: determination of the neuro-proteome, comparative protein expression profiling, post-translational protein modification profiling and mapping protein-protein interactions, to name but a few. Functional Genomics and Proteomics in Clinical Neuroscience will comment on all of these applications, but with an emphasis on protein expression profiling. This book combines the basic methodology of genomics and proteomics with the current applications of such technologies in understanding psychiatric illnesses.

    * Introduction of basic methodologies in genomics and proteomics and their integration in psychiatry
    * Development of the text in sections related to methods, application and future directions of these rapidly advancing technologies
    * Use of actual data to illustrate many principles of functional genomics and proteomics.
    * Introduction to bioinformatics and database management techniques

    Produktinformation

    • Utgivningsdatum:2006-10-09
    • Mått:192 x 262 x 0 mm
    • Vikt:1 070 g
    • Format:Inbunden
    • Språk:Engelska
    • Serie:Progress in Brain Research
    • Antal sidor:402
    • Förlag:Elsevier Science
    • ISBN:9780444518538

    Utforska kategorier

    • Biovetenskap inom Naturvetenskap och teknik

    Innehållsförteckning

    • List of ContributorsForewordFunctional Genomics and Proteomics in the Clinical NeurosciencesTissue preparation and bankingIntroductionIdentifying subjectsCollection and harvesting tissueDocumentingRNA integrityProtein integrityConclusionsFunctional genomic methodologiesIntroductionInput sources of RNAGene expression profiling: toward an informed choiceLevel of sensitivity to detect the molecules of interestMagnitude of expression-level changes in the brainMinimum starting material for functional genomic analysisVerification of expression-profiling analysisConventional methods of analyzing gene expression: Northern hybridizationqPCRSerial analysis of gene expression (SAGE)Massive parallel signature sequencing (MPSS)Total analysis of gene expression (TOGA)Sequencing by hybridization (SBH)Microarray platformsAnalyzing massive datasetsRegional and single cell assessmentRNA amplification strategies: aRNA amplificationAdditional considerationsConclusionsMethods for proteomics in neuroscienceIntroductionSubcellular fractionationExpression proteomicsFunctional proteomicsMass spectrometryProtein arraysConclusionFunctional genomics and proteomics in the clinical neurosciences: data mining and bioinformaticsIntroductionExperimental methodsData analysisStatistical analysis and pattern classificationMicroarray case studyInterpretation and validationReproducibility of microarray studies: concordance of current analysis methodsIntroductionThe data analysis pipelineAssessment of data qualityPerformance comparisonValidationImplications for data miningSummary and conclusionsThe genomics of mood disordersIntroductionGenetics of mood disorders: the progressNeurobiological and neuroanatomical substrates of severe mood disordersThe pathophysiology of severe mood disorders: insights from recent gene profiling studiesClues from animal modelsConcluding remarksTranscriptome alterations in schizophrenia: disturbing the functional architecture of the dorsolateral prefrontal cortexDysfunction of the DLPFC in schizophreniaTypes of transcriptome alterations in the DLPFC in schizophreniaCauses of transcriptome alterations in the DLPFC in schizophreniaConsequences of transcriptome alterations in the DLPFC in schizophreniaConclusionsStrategies for improving sensitivity of gene expression profiling: regulation of apoptosis in the limbic lobe of schizophrenics and bipolarsIntroductionConclusionsAssessment of genome and proteome profiles in cocaine abuseIntroductionNeuroanatomy of cocaine addictionFunctional genomicsProteomicsConclusionNeuronal gene expression profiling: uncovering the molecular biology of neurodegenerative diseaseIntroductionAlzheimer's diseaseDetermination of RNA within senile plaques and neurofibrillary tangles in ADSingle cell gene array analysis of hippocampal senile plaques in ADSingle cell gene analysis of hippocampal NFTs in ADRegional gene expression profiling in the hippocampus in ADRegional gene expression profiling in frontal and temporal neocortex in ADRegional gene expression profiling in other AD-related brain regionsSingle cell analysis of cholinergic basal forebrain (CBF) neurons in ADSingle cell profiling of galanin hyperinnervated CBF neurons in ADSummary of gene expression profiling in ADParkinson's diseaseRegional gene profiling of the substantia nigra in PDGene expression profiling of Lewy body-containing SNpc neurons in PDSummary of gene expression profiling in PDSchizophreniaRegional gene expression profiling in frontal cortex in schizophreniaSingle cell gene profiling in the entorhinal cortex in schizophreniaMultiple sclerosisGene profiling in multiple sclerosisCreutzfeld–Jakob diseaseGene profiling in the aged brainSingle cell profiling of aged CA1 and CA3 hippocampal neuronsGene regulation during the course of normal aging within the frontal cortexConclusionsAbbreviationsEpileptogenesis-related genes revisitedIntroductionMethodsResults and discussionConcluding remarksAbbreviationsFunctional genomics of sex hormone-dependent neuroendocrine systems: specific and generalized actions in the CNSNeural and genomic mechanisms for female mating behaviorsFrom lordosis to sexual arousal to generalized CNS arousalFrom generalized CNS arousal to specific forms of arousalMolecular biology of histamine receptors in CNSα1B-Noradrenergic receptor signalingμ and δ opioid receptor signalingSummary and outlookAbbreviationsImplications for the practice of psychiatryIntroductionProteomicsmRNA expression arrays (expressomics)Whole genome SNP association studiesUse of convergent evidenceFuture directionsHuman brain evolutionAnatomical evolutionProtein sequence evolutionGene expression evolutionTheory of gene expression evolutionAdaptive human brain evolutionConclusionSubject IndexErratum to Progress in Brain Research Vol. 158 Functional Genomics and Proteomics in the Clinical Neurosciences Scott E. Hemby and Sabine Bahn