AI Article Synopsis

  • Clustering is vital in analyzing single-cell data, with unsupervised methods relying on gene expression and supervised methods using a reference of labeled transcriptomes, both offering unique advantages and limitations.
  • SCCONSENSUS is a new framework that combines both clustering approaches to create a consensus clustering, enhancing results by integrating unsupervised and supervised findings and refining clusters through differential gene expression.
  • The framework improves cluster separation and consistency, resulting in more accurate cell type identification, and is available for free on GitHub.

Article Abstract

Background: Clustering is a crucial step in the analysis of single-cell data. Clusters identified in an unsupervised manner are typically annotated to cell types based on differentially expressed genes. In contrast, supervised methods use a reference panel of labelled transcriptomes to guide both clustering and cell type identification. Supervised and unsupervised clustering approaches have their distinct advantages and limitations. Therefore, they can lead to different but often complementary clustering results. Hence, a consensus approach leveraging the merits of both clustering paradigms could result in a more accurate clustering and a more precise cell type annotation.

Results: We present SCCONSENSUS, an [Formula: see text] framework for generating a consensus clustering by (1) integrating results from both unsupervised and supervised approaches and (2) refining the consensus clusters using differentially expressed genes. The value of our approach is demonstrated on several existing single-cell RNA sequencing datasets, including data from sorted PBMC sub-populations.

Conclusions: SCCONSENSUS combines the merits of unsupervised and supervised approaches to partition cells with better cluster separation and homogeneity, thereby increasing our confidence in detecting distinct cell types. SCCONSENSUS is implemented in [Formula: see text] and is freely available on GitHub at https://github.com/prabhakarlab/scConsensus .

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8042883PMC
http://dx.doi.org/10.1186/s12859-021-04028-4DOI Listing

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