Abstract
<jats:p>Neuromesodermal progenitors (NMPs) drive vertebrate posterior axis elongation, but the lineage hierarchy of human NMP derivatives remains poorly defined. Here, we integrated a CRISPR/Cas9-based single-cell lineage tracing system with paired multiomics profiling -including scRNA-seq and scATAC-seq - in human pluripotent stem cell-derived neuromesodermal organoids (NMOs) to reconstruct high-resolution lineage relationships spanning 50 days of differentiation. Our data analysis reveal that intermediate mesoderm (IM) and paraxial mesoderm (PM) originate from a shared presomitic mesoderm (PSM) progenitor downstream of NMPs, whereas lateral plate mesoderm (LPM) segregates early from committed mesodermal progenitors. Notably, TBX6 ablation disrupts both IM and somite development, demonstrating that TBX6 functions as an upstream regulator of these two lineages. Mechanistically, TBX6 loss arrests PSM at the progenitor stage and abolishes activation of development programs required for IM maturation. We further delineate neural crest differentiation pathways from NMPs, identifying pre-bifurcation molecular signatures that predict neural crest fate. This work provides a clonal-resolution lineage map of human NMP differentiation and advances our understanding of human posterior trunk development and the etiology of TBX6-associated congenital disorders affecting both the spine and the kidney.</jats:p>