This is the released version of ramwas; for the devel version, see ramwas.
Fast Methylome-Wide Association Study Pipeline for Enrichment PlatformsBioconductor version: Release (3.21)
A complete toolset for methylome-wide association studies (MWAS). It is specifically designed for data from enrichment based methylation assays, but can be applied to other data as well. The analysis pipeline includes seven steps: (1) scanning aligned reads from BAM files, (2) calculation of quality control measures, (3) creation of methylation score (coverage) matrix, (4) principal component analysis for capturing batch effects and detection of outliers, (5) association analysis with respect to phenotypes of interest while correcting for top PCs and known covariates, (6) annotation of significant findings, and (7) multi-marker analysis (methylation risk score) using elastic net. Additionally, RaMWAS include tools for joint analysis of methlyation and genotype data. This work is published in Bioinformatics, Shabalin et al. (2018) .
Author: Andrey A Shabalin [aut, cre] ORCID: 0000-0003-0309-6821 , Shaunna L Clark [aut], Mohammad W Hattab [aut], Karolina A Aberg [aut], Edwin J C G van den Oord [aut]
Maintainer: Andrey A Shabalin <andrey.shabalin at gmail.com>
Citation (from within R, entercitation("ramwas")
): Installation
To install this package, start R (version "4.5") and enter:
if (!require("BiocManager", quietly = TRUE))
install.packages("BiocManager")
BiocManager::install("ramwas")
For older versions of R, please refer to the appropriate Bioconductor release.
DocumentationTo view documentation for the version of this package installed in your system, start R and enter:
browseVignettes("ramwas")
Details biocViews BatchEffect, Coverage, DNAMethylation, DifferentialMethylation, Normalization, Preprocessing, PrincipalComponent, QualityControl, Sequencing, Software, Visualization Version 1.32.0 In Bioconductor since BioC 3.5 (R-3.4) (8 years) License LGPL-3 Depends R (>= 3.3.0), methods, filematrix Imports graphics, stats, utils, digest, glmnet, KernSmooth, grDevices, GenomicAlignments, Rsamtools, parallel, biomaRt, Biostrings, BiocGenerics System Requirements URL https://bioconductor.org/packages/ramwas/ Bug Reports https://github.com/andreyshabalin/ramwas/issues See More Package Archives
Follow Installation instructions to use this package in your R session.
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