PROTEOMICS · 2015 · 22 citations · 19 references
Epigenetic ChangePathologyEpigeneticsHistone VariantsHistone Posttranslational ModificationsSitu DetectionHistopathologyNeuroimagingEpigenetic RegulationCell BiologyImaging GenomicsChromatin FunctionChromatinNeuroimaging BiomarkersChromatin RemodelingNatural SciencesMass SpectrometryEpigenomicsBiomedical ImagingMouse BrainNeuroscienceSystems BiologyMedicine
Histone posttranslational modifications and histone variants control the epigenetic regulation of gene expression and affect a wide variety of biological processes. A complex pattern of such modifications and variants defines the identity of cells within complex organ systems and can therefore be used to characterize cells at a molecular level. However, their detection and identification in situ has been limited so far due to lack of specificity, selectivity, and availability of antihistone antibodies. Here, we describe a novel MALDI imaging MS based workflow, which enables us to detect and characterize histones by their intact mass and their correlation with cytological properties of the tissue using novel statistical and image analysis tools. The workflow allows us to characterize the in situ distribution of the major histone variants and their modification in the mouse brain. This new analysis tool is particularly useful for the investigation of expression patterns of the linker histone H1 variants for which suitable antibodies are so far not available.
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Crystal structure of the nucleosome core particle at 2.8 Å resolution
Karolin Luger, Armin W. Mäder, Robin K. Richmond et al. · Nature · 1997 · 9.3K citations
Nucleosome Core Particle, Crystal Structure, Engineering +10
Jesper V. Olsen, Lyris Martins Franco de Godoy, Guoqing Li et al. · Molecular & Cellular Proteomics · 2005 · 1.5K citations · Full text
Engineering, Lock Mass Injection, Biological Mass Spectrometry +17
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Timothy J. Richmond, Curt A. Davey · Nature · 2003 · 1.3K citations
Chromatin, Dna, Chromatin Structure +12
Cryo-EM Study of the Chromatin Fiber Reveals a Double Helix Twisted by Tetranucleosomal Units
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