Literature DB >> 29251351

3D stromal tissue equivalent affects intestinal epithelium morphogenesis in vitro.

Vincenza De Gregorio1, Giorgia Imparato1, Francesco Urciuolo1, Paolo A Netti1,2,3.   

Abstract

Current in vitro models of human intestine commonly fail to mimic the complex intestinal functions and features required for drug development and disease research. Here, we deeply investigate the interaction existing between epithelium and the underneath stroma, and its role in the epithelium morphogenesis. We cultured human intestinal subepithelial myofibroblasts (ISEMFs) in two different 3D configurations: 3D-collagen gel equivalent (3D-CGE) and 3D cell-synthetized stromal equivalent (3D-CSSE). The 3D-CGEs were obtained by means of the traditional collagen-based cell technique and the 3D-CSSE were obtained by bottom-up tissue engineering strategy. The biophysical properties of both 3D models with regard to cell growth and composition (via histological analysis, immunofluorescence, and multiphoton imaging) were assessed. Then, human colorectal adenocarcinoma cell line (CaCo-2) was cultured on both the 3D constructs in order to produce the intestinal model. We identified higher levels of matrix-associated proteins from ISEMFs cultured in 3D-CSSE compared to 3D-CGE. Furthermore, multiphoton investigation revealed differences in the collagen network architecture in both models. At last, the more physiologically relevant stromal environment of the 3D-CSSE drove the CaCo-2 cell differentiation toward the four different type of intestinal epithelial cells (absorptive, mucus-secretory, enteroendocrine, and Paneth) phenotype and promotes, in contrast to the 3D-CGE, the production of the basement membrane. Taken together, these results highlight a fundamental role of the 3D stromal environment in addressing a correct epithelium morphogenesis as well as epithelial-stromal interface establishment.
© 2017 Wiley Periodicals, Inc.

Entities:  

Keywords:  bottom-up tissue engineering; epithelial-stromal interaction; extracellular matrix (ECM); intestinal subepithelial myofibroblasts (ISEMFs); organotypic intestine model

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Year:  2018        PMID: 29251351     DOI: 10.1002/bit.26522

Source DB:  PubMed          Journal:  Biotechnol Bioeng        ISSN: 0006-3592            Impact factor:   4.530


  2 in total

1.  Patient-derived small intestinal myofibroblasts direct perfused, physiologically responsive capillary development in a microfluidic Gut-on-a-Chip Model.

Authors:  Kristen M Seiler; Adam Bajinting; David M Alvarado; Mahama A Traore; Michael M Binkley; William H Goo; Wyatt E Lanik; Jocelyn Ou; Usama Ismail; Micah Iticovici; Cristi R King; Kelli L VanDussen; Elzbieta A Swietlicki; Vered Gazit; Jun Guo; Cliff J Luke; Thaddeus Stappenbeck; Matthew A Ciorba; Steven C George; J Mark Meacham; Deborah C Rubin; Misty Good; Brad W Warner
Journal:  Sci Rep       Date:  2020-03-02       Impact factor: 4.379

2.  Effect of peristaltic-like movement on bioengineered intestinal tube.

Authors:  S Sibilio; V De Gregorio; F Urciuolo; P A Netti; G Imparato
Journal:  Mater Today Bio       Date:  2019-09-19
  2 in total

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