Self-organizing models of human trunk organogenesis recapitulate spinal cord and spine co-morphogenesis

Publication date

2024-08

Authors

Gribaudo, Simona
Robert, Rémi
van Sambeek, Björn
Mirdass, Camil
Lyubimova, Anna
Bouhali, Kamal
Ferent, Julien
Morin, Xavier
van Oudenaarden, AlexanderORCID 0000-0002-9442-3551ISNI 0000000042369843
Nedelec, Stéphane

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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.

Keywords

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