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Updated: Aug 11, 2026

A Quantitative Cell Migration Assay for Murine Enteric Neural Progenitors
Published on: September 18, 2013
Fetal endoderm primarily holds the temporal and positional information required for mammalian intestinal development
I Duluc1, J N Freund, C Leberquier
1INSERM U381, Strasbourg, France.
Insights
Fetal rat intestinal segments possess intrinsic developmental programs for regionalization, primarily determined by endoderm, even before cell differentiation. This study reveals how early developmental cues dictate intestinal development and cell fate in xenograft models.
Area of Science:
- Developmental Biology
- Gastroenterology
- Stem Cell Biology
Background:
- The intestinal tract exhibits progressive regionalization during postnatal development in rodents.
- Understanding the origins of this regionalization is crucial for developmental biology and regenerative medicine.
Purpose of the Study:
- To investigate the ontogenic potencies of fetal rat intestinal segments before endoderm cytodifferentiation.
- To determine the roles of endoderm and mesenchyme in establishing intestinal regionalization and cell fate.
Main Methods:
- Xenografting of fetal rat intestinal segments (jejunum, ileum, colon) into nude mice and chick embryos.
- Analysis of lactase-phlorizin hydrolase (LPH) and sucrase-isomaltase (SI) expression at protein and mRNA levels.
- Heterotopic cross-associations of endoderm and mesenchyme from different origins.
Main Results:
- Fetal jejunum and ileum segments developed correct spatial and temporal patterns of LPH expression in vivo.
- Colon segments showed transient LPH expression in chick embryos, mimicking neonatal rat colon.
- Endoderm primarily carried intrinsic temporal and positional information, influencing mesenchyme differentiation and maintaining its origin-specific expression patterns.
Conclusions:
- Intrinsic developmental programs are fixed in fetal mammalian endoderm prior to cytodifferentiation, dictating intestinal ontogeny.
- Endoderm plays a primary role in carrying developmental information and can direct mesodermal cell fate.
- Small intestinal mesenchyme can provide instructive cues to endoderm, but this effect is limited with non-intestinal endoderms.
Abstract:
In rodents, the intestinal tract progressively acquires a functional regionalization during postnatal development. Using lactase-phlorizin hydrolase as a marker, we have analyzed in a xenograft model the ontogenic potencies of fetal rat intestinal segments taken prior to endoderm cytodifferentiation. Segments from the presumptive proximal jejunum and distal ileum grafted in nude mice developed correct spatial and temporal patterns of lactase protein and mRNA expression, which reproduced the normal pre- and post-weaning conditions. Segments from the fetal colon showed a faint lactase immunostaining 8-10 d after transplantation in chick embryos but not in mice; it is consistent with the transient expression of this enzyme in the colon of rat neonates. Heterotopic cross-associations comprising endoderm and mesenchyme from the presumptive proximal jejunum and distal ileum developed as xenografts in nude mice, and they exhibited lactase mRNA and protein expression patterns that were typical of the origin of the endodermal moiety. Endoderm from the distal ileum also expressed a normal lactase pattern when it was associated to fetal skin fibroblasts, while the fibroblasts differentiated into muscle layers containing alpha-smooth-muscle actin. Noteworthy, associations comprising colon endoderm and small intestinal mesenchyme showed a typical small intestinal morphology and expressed the digestive enzyme sucrase-isomaltase normally absent in the colon. However, in heterologous associations comprising lung or stomach endoderm and small intestinal mesenchyme, the epithelial compartment expressed markers in accordance to their tissue of origin but neither intestinal lactase nor sucrase-isomaltase. A thick intestinal muscle coat in which cells expressed alpha-smooth-muscle actin surrounded the grafts. The results demonstrate that: (a) the temporal and positional information needed for intestinal ontogeny up to the post-weaning stage results from an intrinsic program that is fixed in mammalian fetuses prior to endoderm cytodifferentiation; (b) this temporal and positional information is primarily carried by the endodermal moiety which is also able to change the fate of heterologous mesodermal cells to form intestinal mesenchyme; and (c) the small intestinal mesenchyme in turn may deliver instructive information as shown in association with colonic endoderm; yet this effect is not obvious with nonintestinal endoderms.
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