Integrative spatial profiling of 3D genome organization and gene expression in tissue.

Guo, Pengfei; Cui, Yan; He, Jincan; Waldman, Abraham J; Zhu, Jiaxin; Chen, Yufan; Huang, Zhi; Zhou, Jingtian et al. · Cell · 2026

basic_science · Level V

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Abstract

Three-dimensional genome organization shapes transcriptional regulation, yet measuring its spatial coordination in situ within intact tissues remains challenging. We present Spatial Hi-C-RNA, a multimodal platform that simultaneously maps genome-wide chromatin contacts and transcriptomes from the same tissue section at near-single-cell resolution. Across the mouse brain, developing embryos, and human melanoma, Spatial Hi-C-RNA generated multimodal maps that aligned with tissue anatomy while revealing complementary chromatin- and RNA-defined spatial patterns. Multiscale features, including A/B compartments, topologically associating domains, and chromatin loops, were associated with region- and cell-type-specific transcriptional programs. In mouse embryos, Spatial Hi-C-RNA resolved coordinated chromatin and transcriptional remodeling during neuronal maturation across developmental stages. In human melanoma, chromatin architecture delineated intratumoral subregions not detected by RNA alone and linked tumor-state transitions to changes in compartments, domain boundaries, and regulatory programs. Spatial Hi-C-RNA thus provides a broadly applicable framework for investigating genome structure-function relationships in development and disease within native tissue environments.