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December 1, 2025Cell Genomics4 citationsOpen Access

A genome-scale single-cell CRISPRi map of trans gene regulation across human pluripotent stem cell lines

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CFClaudia FengYZYan ZhouLCLuca Crepaldi

Key Points

  • Genome-scale CRISPR interference analysis reveals dynamic gene regulation in single-cell contexts, enhancing our understanding of human genetic variability.
  • Single-cell RNA sequencing data supports insights on expression quantitative trait loci linked to genetic modulation in diverse genetic backgrounds.
  • Observational analysis across multiple human pluripotent stem cell lines provides a rich resource for future cellular disease modulation efforts.
  • Findings highlight the potential of high-dimensional readouts to uncover complex genetic interactions influencing cellular phenotypes.

Abstract

Population-scale resources of genetic, molecular, and cellular information form the basis for understanding human genomes, charting the heritable basis of disease and tracing the effects of mutations. Pooled perturbation assays, probing the effect of many perturbations coupled with single-cell RNA sequencing (scRNA-seq) readout, are especially potent references for interpreting disease-linked mutations or gene-expression changes. However, the utility of existing maps has been limited by the comprehensiveness of perturbations conducted and the relevance of their cell-line context. Here, we present a genome-scale CRISPR interference perturbation map with scRNA-seq readout across many genetic backgrounds in human pluripotent cells. We map trans expression changes induced by knockdowns and characterize their variation across donors, with expression quantitative trait loci linked to higher genetic modulation of perturbation effects. This study pioneers population-scale CRISPR perturbations with high-dimensional readouts, which will fuel the future of effective modulation of cellular disease phenotypes.

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Cite This Study

Feng et al. (2025) studied this question.

synapsesocial.com/papers/694028d52d562116f2900ac6https://doi.org/10.1016/j.xgen.2025.101076
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