Down syndrome (DS) confers a developmentally rooted predisposition to both myeloid and lymphoid leukemias, particularly myeloid leukemia associated with DS (ML-DS) and acute lymphoblastic leukemia associated with DS (ALL-DS). While trisomy 21-driven gene dosage imbalance is central to this risk, DS leukemogenesis cannot be fully explained by recurrent mutations alone; it reflects a dynamic interplay between altered hematopoietic development, cell-intrinsic programs, and tissue microenvironmental cues. In this perspective, we argue that the field should move beyond cataloging cellular heterogeneity and adopt a topographic, multi-omic framework of DS leukemogenesis. We discuss how fetal niche biology shapes pre-leukemic evolution in ML-DS, including the developmental context of GATA1 -mutant clones, and how therapy-driven bottlenecks may promote persistence of spatially protected residual disease in ALL-DS. We further highlight the translational potential of integrating spatially resolved transcriptomics with single-cell and protein-aware multi-omics to identify compartment-specific signaling programs and clinically actionable vulnerabilities. A spatially informed model of DS leukemia may improve biological stratification, clarify mechanisms of relapse and toxicity, and support the development of more effective and less toxic therapeutic strategies.
Peroni et al. (Thu,) studied this question.
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