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January 22, 2026Nature Communications3 citationsOpen Access

Endothelin-3 and T-type Ca2+ channels drive enteric neural crest cell calcium activity, contractility and migration

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NCNicolas R. ChevalierFGFanny GaydaInsermNBNadège BondurandInserm

Key Points

  • The central aim is to explore how endothelin-3 and T-type Ca2+ channels affect the movement and function of enteric neural crest cells during development.
  • Analyzed calcium activity in migrating enteric neural crest cells in mouse models.
  • Investigated the role of chloride channels and T-type Ca2+ channels in calcium signaling.
  • Examined the effects of calcium inhibition on ENCC migration and contractility.
  • Inhibition of calcium activity led to migration defects in enteric neural crest cells.
  • Exciting calcium activity enhanced cell migration by boosting contractility and traction force.
  • Identified a connection between rare mutations in CACNA1H and Hirschsprung disease.

Abstract

Abstract Enteric neural crest cells (ENCCs) colonize the gut during embryogenesis and migration defects give rise to Hirschsprung disease (HD). Mutations in GDNF/RET and EDN3/EDNRB are known to be causal in HD. Here, we show that migrating ENCCs in mice exhibit endogenous EDN3/EDNRB-gated calcium activity, mediated by chloride channels, T-type Ca 2+ channels and inositol trisphosphate-sensitive intracellular-store release. We find that inhibiting Ca 2+ activity results in ENCC migration defects, while exciting it promotes migration by increasing ENCC contractility and traction force to the extracellular matrix. Our study demonstrates that embryonic endothelin-mediated neural crest migration and adult endothelin-mediated vasoconstriction is one and the same phenomenon, taking place in different cell types. Our results suggest a functional link between rare mutations of CACNA1H (the gene encoding CaV3.2) and HD, and pave the way for understanding neurocristopathies in terms of neural crest cell bioelectric activity deficits.

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Cite This Study

Chevalier et al. (2026) studied this question.

synapsesocial.com/papers/6971be8d642b1836717e3246https://doi.org/10.1038/s41467-025-68121-5
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