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Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer

BACKGROUND & AIMS: The successful culture of intestinal organoids has greatly enhanced our understanding of intestinal stem cell physiology and enabled the generation of novel intestinal disease models. Although of tremendous value, intestinal organoid culture systems have not yet fully recapitu...

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Autores principales: Wang, Yuli, Kim, Raehyun, Gunasekara, Dulan B., Reed, Mark I., DiSalvo, Matthew, Nguyen, Daniel L., Bultman, Scott J., Sims, Christopher E., Magness, Scott T., Allbritton, Nancy L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5904049/
https://www.ncbi.nlm.nih.gov/pubmed/29693040
http://dx.doi.org/10.1016/j.jcmgh.2017.10.007
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author Wang, Yuli
Kim, Raehyun
Gunasekara, Dulan B.
Reed, Mark I.
DiSalvo, Matthew
Nguyen, Daniel L.
Bultman, Scott J.
Sims, Christopher E.
Magness, Scott T.
Allbritton, Nancy L.
author_facet Wang, Yuli
Kim, Raehyun
Gunasekara, Dulan B.
Reed, Mark I.
DiSalvo, Matthew
Nguyen, Daniel L.
Bultman, Scott J.
Sims, Christopher E.
Magness, Scott T.
Allbritton, Nancy L.
author_sort Wang, Yuli
collection PubMed
description BACKGROUND & AIMS: The successful culture of intestinal organoids has greatly enhanced our understanding of intestinal stem cell physiology and enabled the generation of novel intestinal disease models. Although of tremendous value, intestinal organoid culture systems have not yet fully recapitulated the anatomy or physiology of the in vivo intestinal epithelium. The aim of this work was to re-create an intestinal epithelium with a high density of polarized crypts that respond in a physiologic manner to addition of growth factors, metabolites, or cytokines to the basal or luminal tissue surface as occurs in vivo. METHODS: A self-renewing monolayer of human intestinal epithelium was cultured on a collagen scaffold microfabricated with an array of crypt-like invaginations. Placement of chemical factors in either the fluid reservoir below or above the cell-covered scaffolding created a gradient of that chemical across the growing epithelial tissue possessing the in vitro crypt structures. Crypt polarization (size of the stem/proliferative and differentiated cell zones) was assessed in response to gradients of growth factors, cytokines, and bacterial metabolites. RESULTS: Chemical gradients applied to the shaped human epithelium re-created the stem/proliferative and differentiated cell zones of the in vivo intestine. Short-chain fatty acids applied as a gradient from the luminal side confirmed long-standing hypotheses that butyrate diminished stem/progenitor cell proliferation and promoted differentiation into absorptive colonocytes. A gradient of interferon-γ and tumor necrosis factor-α significantly suppressed the stem/progenitor cell proliferation, altering crypt formation. CONCLUSIONS: The in vitro human colon crypt array accurately mimicked the architecture, luminal accessibility, tissue polarity, cell migration, and cellular responses of in vivo intestinal crypts.
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spelling pubmed-59040492018-04-24 Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer Wang, Yuli Kim, Raehyun Gunasekara, Dulan B. Reed, Mark I. DiSalvo, Matthew Nguyen, Daniel L. Bultman, Scott J. Sims, Christopher E. Magness, Scott T. Allbritton, Nancy L. Cell Mol Gastroenterol Hepatol Original Research BACKGROUND & AIMS: The successful culture of intestinal organoids has greatly enhanced our understanding of intestinal stem cell physiology and enabled the generation of novel intestinal disease models. Although of tremendous value, intestinal organoid culture systems have not yet fully recapitulated the anatomy or physiology of the in vivo intestinal epithelium. The aim of this work was to re-create an intestinal epithelium with a high density of polarized crypts that respond in a physiologic manner to addition of growth factors, metabolites, or cytokines to the basal or luminal tissue surface as occurs in vivo. METHODS: A self-renewing monolayer of human intestinal epithelium was cultured on a collagen scaffold microfabricated with an array of crypt-like invaginations. Placement of chemical factors in either the fluid reservoir below or above the cell-covered scaffolding created a gradient of that chemical across the growing epithelial tissue possessing the in vitro crypt structures. Crypt polarization (size of the stem/proliferative and differentiated cell zones) was assessed in response to gradients of growth factors, cytokines, and bacterial metabolites. RESULTS: Chemical gradients applied to the shaped human epithelium re-created the stem/proliferative and differentiated cell zones of the in vivo intestine. Short-chain fatty acids applied as a gradient from the luminal side confirmed long-standing hypotheses that butyrate diminished stem/progenitor cell proliferation and promoted differentiation into absorptive colonocytes. A gradient of interferon-γ and tumor necrosis factor-α significantly suppressed the stem/progenitor cell proliferation, altering crypt formation. CONCLUSIONS: The in vitro human colon crypt array accurately mimicked the architecture, luminal accessibility, tissue polarity, cell migration, and cellular responses of in vivo intestinal crypts. Elsevier 2017-11-03 /pmc/articles/PMC5904049/ /pubmed/29693040 http://dx.doi.org/10.1016/j.jcmgh.2017.10.007 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research
Wang, Yuli
Kim, Raehyun
Gunasekara, Dulan B.
Reed, Mark I.
DiSalvo, Matthew
Nguyen, Daniel L.
Bultman, Scott J.
Sims, Christopher E.
Magness, Scott T.
Allbritton, Nancy L.
Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer
title Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer
title_full Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer
title_fullStr Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer
title_full_unstemmed Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer
title_short Formation of Human Colonic Crypt Array by Application of Chemical Gradients Across a Shaped Epithelial Monolayer
title_sort formation of human colonic crypt array by application of chemical gradients across a shaped epithelial monolayer
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5904049/
https://www.ncbi.nlm.nih.gov/pubmed/29693040
http://dx.doi.org/10.1016/j.jcmgh.2017.10.007
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