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Updated: Nov 7, 2025

A Quantitative Cell Migration Assay for Murine Enteric Neural Progenitors
Published on: September 18, 2013
Enteric mesenchymal cells support the growth of postnatal enteric neural stem cells
Rhian Stavely1, Sukhada Bhave1, Wing Lam N Ho1
1Department of Pediatric Surgery, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts, USA.
Insights
Enteric mesenchymal cells (EMCs) support enteric neural stem cells (ENSCs) expansion and differentiation, crucial for developing Hirschsprung disease (HSCR) therapies. This finding aids in expanding patient-derived ENSCs for cell transplantation.
Area of Science:
- Developmental biology
- Stem cell biology
- Gastroenterology
Background:
- Interactions between embryonic enteric neural stem cells (ENSCs) and enteric mesenchymal cells (EMCs) are vital for enteric nervous system development.
- Disrupted interactions contribute to Hirschsprung disease (HSCR) pathogenesis.
- The role of mesenchymal signals in postnatal ENSC survival and expansion for therapy is largely unknown.
Purpose of the Study:
- To investigate the influence of EMCs on postnatal ENSC expansion and differentiation.
- To determine the therapeutic potential of EMC-supported ENSCs for HSCR.
Main Methods:
- Co-culture of enteric neural crest-derived cells (ENCDCs) with EMCs from Wnt1-Rosa26-tdTomato mice.
- Analysis of ENSC properties (Nes, Sox10, Sox2, Ngfr expression) and neurosphere formation.
- Generation and characterization of ENSCs from Ednrb-/- HSCR mouse models.
- In vivo transplantation of ENSCs into aganglionic colon.
Main Results:
- EMCs significantly promoted ENCDC expansion (9.5-fold) and induced ENSC properties via paracrine factors.
- EMC-conditioned ENSCs exhibited enhanced neurosphere formation.
- ENSCs derived from Ednrb-/- HSCR mice showed comparable proliferation, migration, and functional neuronal differentiation to wild-type ENSCs.
- Transplanted Ednrb-/- ENSCs survived in aganglionic recipient colons.
Conclusions:
- Postnatal EMCs support ENSC expansion and function through synergistic paracrine signaling.
- This supportive role is critical for developing cell-based therapies for HSCR.
- Autologous ENSCs from HSCR patients can be expanded using EMC-derived factors for potential therapeutic applications.
Abstract:
Interplay between embryonic enteric neural stem cells (ENSCs) and enteric mesenchymal cells (EMCs) in the embryonic gut is essential for normal development of the enteric nervous system. Disruption of these interactions underlies the pathogenesis of intestinal aganglionosis in Hirschsprung disease (HSCR). ENSC therapy has been proposed as a possible treatment for HSCR, but whether the survival and development of postnatal-derived ENSCs similarly rely on signals from the mesenchymal environment is unknown and has important implications for developing protocols to expand ENSCs for cell transplantation therapy. Enteric neural crest-derived cells (ENCDCs) and EMCs were cultured from the small intestine of Wnt1-Rosa26-tdTomato mice. EMCs promoted the expansion of ENCDCs 9.5-fold by inducing ENSC properties, including expression of Nes, Sox10, Sox2, and Ngfr. EMCs enhanced the neurosphere-forming ability of ENCDCs, and this persisted after withdrawal of the EMCs. These effects were mediated by paracrine factors and several ligands known to support neural stem cells were identified in EMCs. Using the optimized expansion procedures, neurospheres were generated from small intestine of the Ednrb-/- mouse model of HSCR. These ENSCs had similar proliferative and migratory capacity to Ednrb+/+ ENSCs, albeit neurospheres contained fewer neurons. ENSCs derived from Ednrb-/- mice generated functional neurons with similar calcium responses to Ednrb+/+ ENSCs and survived after transplantation into the aganglionic colon of Ednrb-/- recipients. EMCs act as supporting cells to ENSCs postnatally via an array of synergistically acting paracrine signaling factors. These properties can be leveraged to expand autologous ENSCs from patients with HSCR mutations for therapeutic application.
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