Self-organizing models of human trunk organogenesis recapitulate spinal cord and spine co-morphogenesis
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2024-08
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taverne
Abstract
Integrated in vitro models of human organogenesis are needed to elucidate the multi-systemic events underlying development and disease. Here we report the generation of human trunk-like structures that model the co-morphogenesis, patterning and differentiation of the human spine and spinal cord. We identified differentiation conditions for human pluripotent stem cells favoring the formation of an embryo-like extending antero-posterior (AP) axis. Single-cell and spatial transcriptomics show that somitic and spinal cord differentiation trajectories organize along this axis and can self-assemble into a neural tube surrounded by somites upon extracellular matrix addition. Morphogenesis is coupled with AP patterning mechanisms, which results, at later stages of organogenesis, in in vivo-like arrays of neural subtypes along a neural tube surrounded by spine and muscle progenitors contacted by neuronal projections. This integrated system of trunk development indicates that in vivo-like multi-tissue co-morphogenesis and topographic organization of terminal cell types can be achieved in human organoids, opening windows for the development of more complex models of organogenesis.
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Taverne, Biotechnology, Bioengineering, Applied Microbiology and Biotechnology, Molecular Medicine, Biomedical Engineering
Citation
Gribaudo, S, Robert, R, van Sambeek, B, Mirdass, C, Lyubimova, A, Bouhali, K, Ferent, J, Morin, X, van Oudenaarden, A & Nedelec, S 2024, 'Self-organizing models of human trunk organogenesis recapitulate spinal cord and spine co-morphogenesis', Nature Biotechnology, vol. 42, no. 8, pp. 1243-1253. https://doi.org/10.1038/s41587-023-01956-9