Sequence Data Analysis

Sequence data analysis is the computational examination of DNA or RNA sequences to identify patterns, similarities, differences, and biologically meaningful changes. It typically begins with quality control and preprocessing, followed by sequence alignment to a reference or comparison among samples; specialized algorithms can then detect variants, assemble sequences, and annotate genes or regulatory regions. In genetics, these analyses support genome and transcriptome studies, disease-associated variant identification, evolutionary comparisons, and population research. Reliable analysis helps researchers connect sequence-level changes with biological function, while careful filtering and validation improve the accuracy and reproducibility of downstream conclusions.

Sequence Data Analysis - Related Videos

Research

JoVE Journal - Genetics

Transcriptomic Analysis of C. elegans RNA Sequencing Data Through the Tuxedo Suite on the Galaxy Project

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Cited by 8 •

2017

Galaxy and DAVID have emerged as popular tools that allow investigators without bioinformatics training to analyze and interpret RNA-Seq data. We describe a protocol for C. elegans researchers to perform RNA-Seq experiments, access and process the dataset using Galaxy and obtain meaningful biological information from the gene lists using DAVID.

Introductory Analysis and Validation of CUT&RUN Sequencing Data

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Cited by 1 •

2024

This protocol guides bioinformatics beginners through an introductory CUT&RUN analysis pipeline that enables users to complete an initial analysis and validation of CUT&RUN sequencing data. Completing the analysis steps described here, combined with downstream peak annotation, will allow users to draw mechanistic insights into chromatin regulation.

Informatic Analysis of Sequence Data from Batch Yeast 2-Hybrid Screens

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Cited by 2 •

2018

Deep sequencing of yeast populations selected for positive yeast 2-hybrid interactions potentially yields a wealth of information about interacting partner proteins. Here, we describe the operation of specific bioinformatics tools and customized updated software to analyze sequence data from such screens.

Comparative Lesions Analysis Through a Targeted Sequencing Approach

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2019

This article describes a method to identify clonal and subclonal alterations among different specimens from a given patient. Although the experiments described here focus on a specific tumor type, the approach is broadly applicable to other solid tumors.

Optimization for Sequencing and Analysis of Degraded FFPE-RNA Samples

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Cited by 19 •

2020

This method describes the steps to improve the quality and quantity of sequence data that can be obtained from formalin-fixed paraffin-embedded (FFPE) RNA samples. We describe the methodology to more accurately assess the quality of FFPE-RNA samples, prepare sequencing libraries, and analyze the data from FFPE-RNA samples.

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