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BASS: multi-scale and multi-sample analysis enables accurate cell type clustering and spatial domain detection in spatial transcriptomic studies

Zheng Li, Xiang Zhou

2022Genome biology182 citationsDOIOpen Access PDF

Abstract

Spatial transcriptomic studies are reaching single-cell spatial resolution, with data often collected from multiple tissue sections. Here, we present a computational method, BASS, that enables multi-scale and multi-sample analysis for single-cell resolution spatial transcriptomics. BASS performs cell type clustering at the single-cell scale and spatial domain detection at the tissue regional scale, with the two tasks carried out simultaneously within a Bayesian hierarchical modeling framework. We illustrate the benefits of BASS through comprehensive simulations and applications to three datasets. The substantial power gain brought by BASS allows us to reveal accurate transcriptomic and cellular landscape in both cortex and hypothalamus.

Topics & Concepts

Bass (fish)Cluster analysisBiologySpatial analysisSpatial ecologyTranscriptomeHierarchical clusteringComputational biologyData miningComputer sciencePattern recognition (psychology)Artificial intelligenceStatisticsGeneticsMathematicsEcologyGene expressionGeneSingle-cell and spatial transcriptomicsCell Image Analysis TechniquesImmune cells in cancer
BASS: multi-scale and multi-sample analysis enables accurate cell type clustering and spatial domain detection in spatial transcriptomic studies | Litcius