bcRflow: a Nextflow pipeline for characterizing B cell receptor repertoires from non-targeted transc...
bcRflow: a Nextflow pipeline for characterizing B cell receptor repertoires from non-targeted transcriptomic data
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England: Oxford University Press
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English
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England: Oxford University Press
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B cells play a critical role in the adaptive recognition of foreign antigens through diverse receptor generation. While targeted immune sequencing methods are commonly used to profile B cell receptors (BCRs), they have limitations in cost and tissue availability. Analyzing B cell receptor profiling from non-targeted transcriptomics data is a promising alternative, but a systematic pipeline integrating tools for accurate immune repertoire extraction is lacking. Here, we present bcRflow, a Nextflow pipeline designed to characterize BCR repertoires from non-targeted transcriptomics data, with functional modules for alignment, processing, and visualization. bcRflow is a comprehensive, reproducible, and scalable pipeline that can run on high-performance computing clusters, cloud-based computing resources like Amazon Web Services (AWS), the Open OnDemand framework, or even local desktops. bcRflow utilizes institutional configurations provided by nf-core to ensure maximum portability and accessibility. To demonstrate the functionality of the bcRflow pipeline, we analyzed a public dataset of bulk transcriptomic samples from COVID-19 patients and healthy controls. We have shown that bcRflow streamlines the analysis of BCR repertoires from non-targeted transcriptomics data, providing valuable insights into the B cell immune response for biological and clinical research. bcRflow is available at https://github.com/Bioinformatics-Core-at-Childrens/bcRflow....
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bcRflow: a Nextflow pipeline for characterizing B cell receptor repertoires from non-targeted transcriptomic data
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TN_cdi_pubmedcentral_primary_oai_pubmedcentral_nih_gov_11474772
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https://devfeature-collection.sl.nsw.gov.au/record/TN_cdi_pubmedcentral_primary_oai_pubmedcentral_nih_gov_11474772
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ISSN
2631-9268
E-ISSN
2631-9268
DOI
10.1093/nargab/lqae137