Genome-wide Analysis

Genome-wide analysis is the systematic study of genetic material across an organism’s entire genome, providing a comprehensive view of biological variation and function. It typically combines high-throughput sequencing or genotyping with computational alignment, data processing, and statistical comparison to identify DNA variants, genomic patterns, or changes in gene activity across samples. In biology, these analyses help investigate genome organization, gene regulation, population diversity, evolution, and disease-associated changes. By examining the genome at scale rather than focusing on individual genes, researchers can detect relationships and biological signals that may be missed by targeted approaches.

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JoVE Journal - Biology
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Genome-wide Analysis using ChIP to Identify Isoform-specific Gene Targets

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Cited by 13 •

2010

Here we are presenting a chromatin immunoprecipitation (ChIP) procedure for genome-wide location analysis of protein isoforms that differ in a histone-binding domain. We are applying it to ChIP-Seq analysis to identify the targets of the KDM5A/JARID1A/RBP2 histone demethylase.

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JoVE Journal - Biology
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Polysome Fractionation and Analysis of Mammalian Translatomes on a Genome-wide Scale

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Cited by 217 •

2014

Ribosomes play a central role in protein synthesis. Polyribosome (polysome) fractionation by sucrose density gradient centrifugation allows direct determination of translation efficiencies of individual mRNAs on a genome-wide scale. In addition, this method can be used for biochemical analysis of ribosome- and polysome-associated factors such as chaperones and signaling molecules.

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JoVE Journal - Biology
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Genome-wide Analysis of Aminoacylation (Charging) Levels of tRNA Using Microarrays

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Cited by 11 •

2010

We describe a method for microarray analysis to determine relative aminoacylation levels of all tRNAs from S. cerivisiae.

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JoVE Journal - Biology

A Novel Bayesian Change-point Algorithm for Genome-wide Analysis of Diverse ChIPseq Data Types

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Cited by 6 •

2012

Our Bayesian Change Point (BCP) algorithm builds on state-of-the-art advances in modeling change-points via Hidden Markov Models and applies them to chromatin immunoprecipitation sequencing (ChIPseq) data analysis. BCP performs well in both broad and punctate data types, but excels in accurately identifying robust, reproducible islands of diffuse histone enrichment.

Genome-Wide Analysis of DNA Methylation in Gastrointestinal Cancer

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2020

Herein, we describe a procedure for genome-wide analysis of DNA methylation in gastrointestinal cancers. The procedure is of relevance to studies that investigate relationships between methylation patterns of genes and factors contributing to carcinogenesis in gastrointestinal cancers.

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