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Inferring super-resolution tissue architecture by integrating spatial transcriptomics with histology

  • Daiwei Zhang,
  • Amelia Schroeder,
  • Hanying Yan,
  • Haochen Yang,
  • Jian Hu,
  • Michelle Y. Y. Lee,
  • Kyung S. Cho,
  • Katalin Susztak,
  • George X. Xu,
  • Michael D. Feldman,
  • Edward B. Lee,
  • Emma E. Furth,
  • Linghua Wang,
  • Mingyao Li

摘要

Spatial transcriptomics (ST) has demonstrated enormous potential for generating intricate molecular maps of cells within tissues. Here we present iStar, a method based on hierarchical image feature extraction that integrates ST data and high-resolution histology images to predict spatial gene expression with super-resolution. Our method enhances gene expression resolution to near-single-cell levels in ST and enables gene expression prediction in tissue sections where only histology images are available.