Journal article
HyperSTAR: Unveiling Tissue Structure and Tumor Microenvironment from Spatial Omics by Hypergraph Learning
Y Liao, C Zhang, Z Wang, F Qi, W Huang, S Cai, J Li, J Chen, RB Gasser, Z Yuan, J Song, H Cai
Genomics Proteomics and Bioinformatics | Published : 2026
Open access
Abstract
Spatial omics technologies have revolutionized life sciences by enabling the simultaneous acquisition of biomolecular and spatial information. Identifying spatial patterns is crucial for understanding organ development and tumor microenvironments. However, the emergence of diverse spatial omics resolutions in these technologies has made it challenging to accurately characterize spatial domains at finer resolutions. To address this, we propose HyperSTAR, a hypergraph-based method designed to precisely identify spatial domains across varying resolutions by leveraging higher-order relationships among spatially adjacent tissue programs. Specifically, a gene expression-guided hyperedge decomposit..
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Grants
Awarded by Monash University