Search results for " Nucleosomes"

showing 4 items of 4 documents

Epigenetic IVD Tests for Personalized Precision Medicine in Cancer

2019

Epigenetic alterations play a key role in the initiation and progression of cancer. Therefore, it is possible to use epigenetic marks as biomarkers for predictive and precision medicine in cancer. Precision medicine is poised to impact clinical practice, patients, and healthcare systems. The objective of this review is to provide an overview of the epigenetic testing landscape in cancer by examining commercially available epigenetic-based in vitro diagnostic tests for colon, breast, cervical, glioblastoma, lung cancers, and for cancers of unknown origin. We compile current commercial epigenetic tests based on epigenetic biomarkers (i.e., DNA methylation, miRNAs, and histones) that can actua…

0301 basic medicineIn Vitro Diagnostic (IVD)lcsh:QH426-470precision medicineReviewBioinformatics03 medical and health sciences0302 clinical medicinemicroRNAGeneticsMedicineEpigeneticscfDNAGenetics (clinical)miRNAEpigenetic biomarkersDNA methylationbiologybusiness.industryCancerepigenetic biomarkerPrecision medicinemedicine.diseaselcsh:Genetics030104 developmental biologyHistone030220 oncology & carcinogenesisDNA methylationcirculating nucleosomesbiology.proteinMolecular MedicinebusinessGlioblastomaFrontiers in Genetics
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Subtracting the sequence bias from partially digested MNase-seq data reveals a general contribution of TFIIS to nucleosome positioning.

2017

Background TFIIS stimulates RNA cleavage by RNA polymerase II and promotes the resolution of backtracking events. TFIIS acts in the chromatin context, but its contribution to the chromatin landscape has not yet been investigated. Co-transcriptional chromatin alterations include subtle changes in nucleosome positioning, like those expected to be elicited by TFIIS, which are elusive to detect. The most popular method to map nucleosomes involves intensive chromatin digestion by micrococcal nuclease (MNase). Maps based on these exhaustively digested samples miss any MNase-sensitive nucleosomes caused by transcription. In contrast, partial digestion approaches preserve such nucleosomes, but intr…

0301 basic medicineNucleosome mappinglcsh:QH426-470MNase-sensitive nucleosomesRNA polymerase IIComputational biologySaccharomyces cerevisiaeReal-Time Polymerase Chain ReactionBiotecnologia03 medical and health sciencesTranscription (biology)Gene expressionGeneticsNucleosomeMNase-seqMicrococcal NucleaseMolecular BiologyGenebiologyMethodologyHigh-Throughput Nucleotide SequencingPromoterChromatinNucleosomeslcsh:Genetics030104 developmental biologyNucleosomal fuzzinessSubtraction TechniqueTFIISbiology.proteinTranscriptional Elongation FactorsGenèticaMicrococcal nuclease
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Variable Ranking Feature Selection for the Identification of Nucleosome Related Sequences

2018

Several recent works have shown that K-mer sequence representation of a DNA sequence can be used for classification or identification of nucleosome positioning related sequences. This representation can be computationally expensive when k grows, making the complexity in spaces of exponential dimension. This issue effects significantly the classification task computed by a general machine learning algorithm used for the purpose of sequence classification. In this paper, we investigate the advantage offered by the so-called Variable Ranking Feature Selection method to select the most informative k − mers associated to a set of DNA sequences, for the final purpose of nucleosome/linker classifi…

0301 basic medicineSequenceSettore INF/01 - InformaticaEpigenomic030102 biochemistry & molecular biologybusiness.industryComputer scienceDeep learningPattern recognitionFeature selectionDNA sequencesNucleosomesRanking (information retrieval)Set (abstract data type)03 medical and health sciencesVariable (computer science)030104 developmental biologyDimension (vector space)Feature selectionDeep learning modelsArtificial intelligenceDeep learning models Feature selection DNA sequences Epigenomic NucleosomesRepresentation (mathematics)business
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Studying Nucleosomes Positioning by a Multi-Layer Model

2007

Eukaryotic DNA is packaged into a highly compact and dynamic structure called chromatin. While this packaging allows the cell to organize a large and complex genome in the nucleus, it can also block the access of transcription factors and other proteins to DNA. Nucleosomes are the fundamental repeating units of eukaryotic chromatin. Nucleosome position can be regulated in vivo by multi-subunit chromatin remodeling complexes, and their position can influence gene expression in eukaryotic cells. Alterations in chromatin structure, and hence in nucleosome organization, can result in a variety of diseases, including cancer, highlighting the need to achieve a better understanding of the molecula…

Multi-Layers methods Nucleosomes positioning Microarray data analysis BioInformatics.
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