Performance of tumour microenvironment deconvolution methods in breast cancer using single-cell simulated bulk mixtures

Author:

Tran Khoa A.ORCID,Addala VenkateswarORCID,Johnston Rebecca L.ORCID,Lovell David,Bradley AndrewORCID,Koufariotis Lambros T.,Wood ScottORCID,Wu Sunny Z.ORCID,Roden DanielORCID,Al-Eryani GhamdanORCID,Swarbrick AlexanderORCID,Williams Elizabeth D.ORCID,Pearson John V.,Kondrashova OlgaORCID,Waddell NicolaORCID

Abstract

AbstractCells within the tumour microenvironment (TME) can impact tumour development and influence treatment response. Computational approaches have been developed to deconvolve the TME from bulk RNA-seq. Using scRNA-seq profiling from breast tumours we simulate thousands of bulk mixtures, representing tumour purities and cell lineages, to compare the performance of nine TME deconvolution methods (BayesPrism, Scaden, CIBERSORTx, MuSiC, DWLS, hspe, CPM, Bisque, and EPIC). Some methods are more robust in deconvolving mixtures with high tumour purity levels. Most methods tend to mis-predict normal epithelial for cancer epithelial as tumour purity increases, a finding that is validated in two independent datasets. The breast cancer molecular subtype influences this mis-prediction. BayesPrism and DWLS have the lowest combined numbers of false positives and false negatives, and have the best performance when deconvolving granular immune lineages. Our findings highlight the need for more single-cell characterisation of rarer cell types, and suggest that tumour cell compositions should be considered when deconvolving the TME.

Funder

Department of Health | National Health and Medical Research Council

Ian Potter Foundation

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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