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Updated: Mar 30, 2026

Adapting Human Videofluoroscopic Swallow Study Methods to Detect and Characterize Dysphagia in Murine Disease Models
Published on: March 1, 2015
Hard to swallow: Developmental biological insights into pediatric dysphagia
Anthony-Samuel LaMantia1, Sally A Moody2, Thomas M Maynard1
1Institute for Neuroscience, The George Washington University School of Medicine and Health Sciences, Washington D.C., USA; Department of Pharmacology and Physiology, George Washington University, School of Medicine and Health Sciences, Washington D.C., USA.
Insights
Pediatric dysphagia, common in developmental disorders, may stem from altered prenatal hindbrain development. This impacts neural circuits crucial for feeding and swallowing, offering new therapeutic targets.
Area of Science:
- Neuroscience
- Developmental Biology
- Pediatrics
Background:
- Pediatric dysphagia involves feeding and swallowing difficulties, often seen in children with developmental disorders.
- It is a common yet poorly understood complication, persisting from infancy through adulthood.
Purpose of the Study:
- To investigate the role of altered hindbrain patterning in prenatal development as a cause of pediatric dysphagia.
- To explore the link between hindbrain development, craniofacial structures, and neural circuits in feeding and swallowing.
Main Methods:
- Examined pediatric dysphagia in the context of DiGeorge/22q11.2 Deletion Syndrome (22q11DS).
- Utilized infant mouse models with deletions parallel to 22q11DS to study feeding and swallowing behaviors.
- Investigated hindbrain patterning, craniofacial development, and cranial nerve growth in affected models.
Main Results:
- Infant mice with 22q11DS-like deletions exhibited feeding and swallowing difficulties.
- Altered hindbrain patterning, craniofacial malformations, and cranial nerve changes were observed.
- These neural and structural changes preceded the onset of feeding and swallowing deficits.
Conclusions:
- Pediatric dysphagia can arise from disrupted hindbrain patterning during prenatal development.
- This disruption affects craniofacial structures and the development of neural circuits essential for feeding and swallowing.
- Understanding these mechanisms may lead to novel therapeutic strategies for pediatric dysphagia.
Abstract:
Pediatric dysphagia-feeding and swallowing difficulties that begin at birth, last throughout childhood, and continue into maturity--is one of the most common, least understood complications in children with developmental disorders. We argue that a major cause of pediatric dysphagia is altered hindbrain patterning during pre-natal development. Such changes can compromise craniofacial structures including oropharyngeal muscles and skeletal elements as well as motor and sensory circuits necessary for normal feeding and swallowing. Animal models of developmental disorders that include pediatric dysphagia in their phenotypic spectrum can provide mechanistic insight into pathogenesis of feeding and swallowing difficulties. A fairly common human genetic developmental disorder, DiGeorge/22q11.2 Deletion Syndrome (22q11DS) includes a substantial incidence of pediatric dysphagia in its phenotypic spectrum. Infant mice carrying a parallel deletion to 22q11DS patients have feeding and swallowing difficulties that approximate those seen in pediatric dysphagia. Altered hindbrain patterning, craniofacial malformations, and changes in cranial nerve growth prefigure these difficulties. Thus, in addition to craniofacial and pharyngeal anomalies that arise independently of altered neural development, pediatric dysphagia may result from disrupted hindbrain patterning and its impact on peripheral and central neural circuit development critical for feeding and swallowing. The mechanisms that disrupt hindbrain patterning and circuitry may provide a foundation to develop novel therapeutic approaches for improved clinical management of pediatric dysphagia.
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