4.8 Article

Modulation of designer biomimetic matrices for optimized differentiated intestinal epithelial cultures

期刊

BIOMATERIALS
卷 282, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2022.121380

关键词

Long-term primary cell cultures; Intestinal organoids; Substrate stiffness; 3D scaffold; Tissue engineering; Epithelial differentiation

资金

  1. French National Research Agency [ANR-10-INSB-04]
  2. PRESTIGE [PRESTIGE-2016-4-0007]
  3. Marie Sklodowska-Curie Actions [846449]
  4. Institut Pierre-Gilles de Gennes (laboratoire dexcellence, Investissements davenir program) [ANR-10-IDEX-0001-02 PSL, ANR-10-LABX-31]
  5. Mission for Transversal and Interdisciplinary Initiatives (MiTi, CNRS) - Biomimetism Challenge 2019
  6. Groupama Foundation - Research Prize for Rare Diseases 2017
  7. LabEx Who Am I? [ANR-11-LABX-0071]
  8. Universite de Paris IdEx - French Government through its Investments for the Future program [ANR-18-IDEX-0001]
  9. Human Frontier Science Program [RGP0038/2018]
  10. Marie Curie Actions (MSCA) [846449] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

This study developed hydrogel scaffolds with different elasticities and investigated their influence on the expansion, organization, and differentiation of intestinal epithelial cells. The results showed that cells on soft substrates exhibited improved characteristics resembling in vivo intestinal tissue, which is of significant importance for the design of biomaterials for ex vivo intestinal models.
The field of intestinal biology is thirstily searching for different culture methods that complement the limitations of organoids, particularly the lack of a differentiated intestinal compartment. While being recognized as an important milestone for basic and translational biological studies, many primary cultures of intestinal epithelium (IE) rely on empirical trials using hydrogels of various stiffness, whose mechanical impact on epithelial organization remains vague until now. Here, we report the development of hydrogel scaffolds with a range of elasticities and their influence on IE expansion, organization, and differentiation. On stiff substrates (>5 kPa), mouse IE cells adopt a flat cell shape and detach in the short-term. In contrast, on soft substrates (80-500 Pa), they sustain for a long-term, pack into high density, develop columnar shape with improved apical-basal polarity and differentiation marker expression, a phenotype reminiscent of features in vivo mouse IE. We then developed a soft gel molding process to produce 3D Matrigel scaffolds of close-to-nature stiffness, which support and maintain a culture of mouse IE into crypt-villus architecture. Thus, the present work is up-to-date informative for the design of biomaterials for ex vivo intestinal models, offering self-renewal in vitro culture that emulates the mouse IE.

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