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R code and downstream analysis objects for the scRNA-seq atlas of normal and tumorigenic human breast tissue

Yunshun Chen, Bhupinder Pal, Geoffrey J. Lindeman, Jane E. Visvader, Gordon K. Smyth

2022Scientific Data42 citationsDOIOpen Access PDF

Abstract

Breast cancer is a common and highly heterogeneous disease. Understanding cellular diversity in the mammary gland and its surrounding micro-environment across different states can provide insight into cancer development in the human breast. Recently, we published a large-scale single-cell RNA expression atlas of the human breast spanning normal, preneoplastic and tumorigenic states. Single-cell expression profiles of nearly 430,000 cells were obtained from 69 distinct surgical tissue specimens from 55 patients. This article extends the study by providing quality filtering thresholds, downstream processed R data objects, complete cell annotation and R code to reproduce all the analyses. Data quality assessment measures are presented and details are provided for all the bioinformatic analyses that produced results described in the study.

Topics & Concepts

Human breastAtlas (anatomy)Breast cancerDownstream (manufacturing)Computational biologyBiologyAnnotationCellExpression (computer science)Computer scienceCancerPathologyBioinformaticsMedicineAnatomyGeneticsEconomicsProgramming languageOperations managementSingle-cell and spatial transcriptomicsGene expression and cancer classificationBioinformatics and Genomic Networks