Cell Systems
Volume 10, Issue 5, 20 May 2020, Pages 445-452.e6
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SCOPE: A Normalization and Copy-Number Estimation Method for Single-Cell DNA Sequencing

https://doi.org/10.1016/j.cels.2020.03.005Get rights and content
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Highlights

  • SCOPE normalizes scDNA-seq data and profiles copy-number variations

  • SCOPE accounts for the aberrant copy-number changes for normalization

  • SCOPE estimates ploidy directly without need for post hoc adjustment

  • SCOPE performs cross-sample segmentation to identify shared breakpoints

Summary

Whole-genome single-cell DNA sequencing (scDNA-seq) enables characterization of copy-number profiles at the cellular level. We propose SCOPE, a normalization and copy-number estimation method for the noisy scDNA-seq data. SCOPE’s main features include the following: (1) a Poisson latent factor model for normalization, which borrows information across cells and regions to estimate bias, using in silico identified negative control cells; (2) an expectation-maximization algorithm embedded in the normalization step, which accounts for the aberrant copy-number changes and allows direct ploidy estimation without the need for post hoc adjustment; and (3) a cross-sample segmentation procedure to identify breakpoints that are shared across cells with the same genetic background. We evaluate SCOPE on a diverse set of scDNA-seq data in cancer genomics and show that SCOPE offers accurate copy-number estimates and successfully reconstructs subclonal structure. A record of this paper’s transparent peer review process is included in the Supplemental Information.

Keywords

single-cell DNA sequencing
copy number aberration
copy number variation
normalization
tumor heterogeneity
cancer genomics

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