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Designer matrices for intestinal stem cell and organoid culture

Gjorevski, Nikolce; Sachs, Norman; Manfrin, Andrea; Giger, Sonja; Bragina, Maiia E.; Ord��ez-Mor�n, Paloma; Clevers, Hans; Lutolf, Matthias P.

Authors

Nikolce Gjorevski

Norman Sachs

Andrea Manfrin

Sonja Giger

Maiia E. Bragina

Hans Clevers

Matthias P. Lutolf



Abstract

Epithelial organoids recapitulate multiple aspects of real organs, making them promising models of organ development, function and disease. However, the full potential of organoids in research and therapy has remained unrealized, owing to the poorly defined animal-derived matrices in which they are grown. Here we used modular synthetic hydrogel networks to define the key extracellular matrix (ECM) parameters that govern intestinal stem cell (ISC) expansion and organoid formation, and show that separate stages of the process require different mechanical environments and ECM components. In particular, fibronectin-based adhesion was sufficient for ISC survival and proliferation. High matrix stiffness significantly enhanced ISC expansion through a yes-associated protein 1 (YAP)-dependent mechanism. ISC differentiation and organoid formation, on the other hand, required a soft matrix and laminin-based adhesion. We used these insights to build a fully defined culture system for the expansion of mouse and human ISCs. We also produced mechanically dynamic matrices that were initially optimal for ISC expansion and subsequently permissive to differentiation and intestinal organoid formation, thus creating well-defined alternatives to animal-derived matrices for the culture of mouse and human stem-cell-derived organoids. Our approach overcomes multiple limitations of current organoid cultures and greatly expands their applicability in basic and clinical research. The principles presented here can be extended to identify designer matrices that are optimal for long-term culture of other types of stem cells and organoids.

Citation

Gjorevski, N., Sachs, N., Manfrin, A., Giger, S., Bragina, M. E., Ordóñez-Morán, P., …Lutolf, M. P. (2016). Designer matrices for intestinal stem cell and organoid culture. Nature, 539(7630), 560-564. https://doi.org/10.1038/nature20168

Journal Article Type Article
Acceptance Date Oct 18, 2016
Online Publication Date Nov 16, 2016
Publication Date Nov 24, 2016
Deposit Date Jan 15, 2021
Journal Nature
Print ISSN 0028-0836
Electronic ISSN 1476-4687
Publisher Nature Publishing Group
Peer Reviewed Peer Reviewed
Volume 539
Issue 7630
Pages 560-564
DOI https://doi.org/10.1038/nature20168
Keywords Multidisciplinary
Public URL https://nottingham-repository.worktribe.com/output/5228950
Publisher URL https://www.nature.com/articles/nature20168