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Xingyan Liu

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#gene editing Open access Sep 2026

Spatially guided in vivo single-cell functional genomics of postnatal heart

Understanding how spatial organization and cell−cell interactions shape gene regulatory programs is central to decoding tissue development and function. The transition at birth, marked by increased circulatory demands and rapid tissue growth, requires precise spatiotemporal coordination of cardiac maturation. In this study, we generated a high-resolution spatial and temporal atlas of the postnatal mouse heart by integrating single-nucleus RNA sequencing with image-based spatial transcriptomics. This framework revealed dynamic cellular interactions, niche-specific signaling and transcriptional programs guiding cardiomyocyte maturation. To functionally test prioritized regulators in vivo and at scale, we developed PIP-seq (probe-based indel-detectable Perturb-seq), a high-throughput platform that detects single guide RNA identity, infers gene editing and profiles transcription from fixed nuclei. Applying PIP-seq to the developing postnatal heart, we identified 21 previously uncharacterized regulators of cardiomyocyte maturation, including genes essential for sarcomere assembly, metabolic reprogramming and electrophysiological transitions. Together, our findings define how microenvironmental signals and intrinsic gene programs cooperate to guide heart maturation and establish a broadly applicable framework for functional genomics in complex tissues. By integrating single-nucleus RNA sequencing and spatial transcriptomics, Wang, Dong, Song et al. generated a high-resolution spatiotemporal atlas of the postnatal mouse heart, identifying 21 regulators of cardiomyocyte maturation and a spatially coordinated regulatory network underlying heart development.

Haofei Wang, Yanhan Dong, Yiran Song et al. · 0 citations

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