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SORC: an integrated spatial omics resource in cancer

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NUCLEIC ACIDS RESEARCH
卷 -, 期 -, 页码 -

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OXFORD UNIV PRESS
DOI: 10.1093/nar/gkad820

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This study developed an integrated spatial omics resource for visualizing and analyzing spatial transcriptomics data in cancer. Currently available datasets from 17 types of cancer were manually curated, and reference single-cell RNA sequencing data were matched in the majority of datasets. The resource provides multiple analytical modules to meet the primary requirements of spatial transcriptomics analysis.
The interactions between tumor cells and the microenvironment play pivotal roles in the initiation, progression and metastasis of cancer. The advent of spatial transcriptomics data offers an opportunity to unravel the intricate dynamics of cellular states and cell-cell interactions in cancer. Herein, we have developed an integrated spatial omics resource in cancer (SORC, http://bio-bigdata.hrbmu.edu.cn/SORC), which interactively visualizes and analyzes the spatial transcriptomics data in cancer. We manually curated currently available spatial transcriptomics datasets for 17 types of cancer, comprising 722 899 spots across 269 slices. Furthermore, we matched reference single-cell RNA sequencing data in the majority of spatial transcriptomics datasets, involving 334 379 cells and 46 distinct cell types. SORC offers five major analytical modules that address the primary requirements of spatial transcriptomics analysis, including slice annotation, identification of spatially variable genes, co-occurrence of immune cells and tumor cells, functional analysis and cell-cell communications. All these spatial transcriptomics data and in-depth analyses have been integrated into easy-to-browse and explore pages, visualized through intuitive tables and various image formats. In summary, SORC serves as a valuable resource for providing an unprecedented spatially resolved cellular map of cancer and identifying specific genes and functional pathways to enhance our understanding of the tumor microenvironment. Graphical Abstract

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