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Updated: May 10, 2026

Preparation and Morphological Analysis of Chick Cranial Neural Crest Cell Cultures
Published on: June 27, 2022
Nuanced but significant: how ethanol perturbs avian cranial neural crest cell actin cytoskeleton, migration and
Olusegun O Oyedele1, Beverley Kramer
1School of Anatomical Sciences, Faculty of Health Sciences, University of the Witwatersrand Johannesburg, 7 York Road, Parktown 2193, South Africa. olusegun.oyedele@ubc.ca
Insights
Ethanol exposure alters avian cranial neural crest cells (cNCCs) morphology, migration, and cytoskeleton. These findings in cNCCs provide insights into fetal alcohol syndrome (FAS) craniofacial abnormalities.
Area of Science:
- Developmental biology
- Toxicology
- Cell biology
Background:
- Fetal alcohol syndrome (FAS) is characterized by craniofacial abnormalities.
- Craniofacial abnormalities in FAS are linked to cranial neural crest cells (cNCCs).
- The precise mechanisms and teratogenic doses of ethanol affecting cNCCs are under investigation.
Purpose of the Study:
- To investigate the effects of ethanol on avian cNCCs.
- To examine ethanol's impact on cNCC actin cytoskeleton, migration, and proliferation ex vivo.
- To determine dose-dependent effects of ethanol on cNCC development.
Main Methods:
- Avian cNCCs were cultured with ethanol (0.2% and 0.4% v/v).
- Cell migration distances were measured at 24 and 48 hours.
- Phalloidin immunocytochemistry was used to analyze cytoskeletal changes, proliferation, and apoptosis.
Main Results:
- Ethanol disrupted cNCC spindle-like shapes and actin cytoskeleton organization.
- Significant stage-dependent effects on cNCC migration were observed at 24 hours.
- Ethanol exposure increased proliferation but not apoptosis, with effects more pronounced at 0.4% concentration.
Conclusions:
- Ethanol exposure induces subtle but significant changes in cNCC morphology, migration, and proliferation.
- These cNCC alterations may contribute to craniofacial abnormalities observed in fetal alcohol syndrome.
- Avian models offer valuable insights into ethanol's teratogenic effects on cNCCs.
Abstract:
Children with fetal alcohol syndrome (FAS) display striking craniofacial abnormalities. These features are proposed to result from perturbations in the morphology and function of cranial neural crest cells (cNCCs), which contribute significantly to the craniofacial complex. While certain pathways by which this may occur have been suggested, precise teratogenic mechanisms remain intensely investigated, as does the question of the teratogenic dose. The present study focused on examining how avian cNCC actin cytoskeleton, migratory distance, and proliferation are affected ex vivo by exposure to ethanol concentrations that simulate maternal intoxication. Chick cNCCs were cultured in 0.2% and 0.4% v/v ethanol. Distances migrated by both ethanol-treated and control cells at 24 and 48 h were recorded. Following phalloidin immunocytochemistry, treated and control cNCCs were compared morphologically and quantitatively. Apoptosis and proliferation in control versus treated cNCCs were also studied. Chick cNCCs cultured in ethanol lost their spindle-like shapes and their ordered cytoskeleton. There was a significant stage-dependent effect on cNCC migration at 24 h (p = 0.035), which was greatest at stage 10 (HH). Ethanol treatment for 48 h revealed a significant main effect for ethanol, chiefly at the 0.4% level. There was also an interaction effect between ethanol dose and stage of development (stage 9 HH). Actin microfilament disruption was quantitatively increased by ethanol at the doses studied while cNCC proliferation was increased but not significantly. Ethanol had no effect on cNCC apoptosis. At ethanol levels likely to induce human FAS, avian cNCCs exhibit various subtle, potentially significant changes in morphology, migration, and proliferation, with possible consequences for fated structures.
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