Article Synopsis

  • nnSVG is a new method for finding genes that change in expression based on their spatial location in tissue samples.
  • It leverages nearest-neighbor Gaussian processes to continuously identify these spatially variable genes and improves precision with gene-specific estimates.
  • The method is efficient and scales well with increasing spatial data, and its effectiveness has been validated through real experiments and simulations.

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Article Abstract

Feature selection to identify spatially variable genes or other biologically informative genes is a key step during analyses of spatially-resolved transcriptomics data. Here, we propose nnSVG, a scalable approach to identify spatially variable genes based on nearest-neighbor Gaussian processes. Our method (i) identifies genes that vary in expression continuously across the entire tissue or within a priori defined spatial domains, (ii) uses gene-specific estimates of length scale parameters within the Gaussian process models, and (iii) scales linearly with the number of spatial locations. We demonstrate the performance of our method using experimental data from several technological platforms and simulations. A software implementation is available at https://bioconductor.org/packages/nnSVG .

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10333391PMC
http://dx.doi.org/10.1038/s41467-023-39748-zDOI Listing

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