Abstract
<jats:p>The acquisition of totipotency in vitro remains a major challenge, limiting our understanding of early embryogenesis and its clinical and translational applications. Here, we reported a robust and rapid chemical reprogramming system that converts mouse embryonic stem cells (mESCs) into totipotent-like cells (TLCs) within 36 hours, with efficiencies exceeding 70%. The induced cells exhibit transcriptomic, epigenomic, and functional features closely resembling 2-cell (2C) stage embryos, as confirmed by scRNA-seq, ATAC-seq, and chimeric embryo analyses. Single-cell trajectory construction revealed a branching reprogramming process that yields both successful totipotent-like and alternative, non-reprogrammed fates. Mechanistically, we identified the transcription factor SP2 as a barrier to totipotency acquisition, promoting lineage-specific gene expression while repressing totipotency networks. Collectively, our study has established a highly efficient in vitro model for totipotency induction and highlighted molecular barriers shaping cell fate decisions, providing a platform to dissect the mechanisms governing the pluripotency-to-totipotency transition.</jats:p>