Rethinking the cilia hypothesis of hydrocephalus

纤毛 运动纤毛 纤毛病 脑积水 原发性睫状体运动障碍 生物 脑脊液 室管膜细胞 神经科学 睫状体病 导水管狭窄 侧脑室 解剖 病理 医学 细胞生物学 基因 中枢神经系统 遗传学 内科学 表型 支气管扩张 放射科
作者
Phan Q. Duy,Ana B.W. Greenberg,William E. Butler,Kristopher T. Kahle
出处
期刊:Neurobiology of Disease [Elsevier BV]
卷期号:175: 105913-105913 被引量:19
标识
DOI:10.1016/j.nbd.2022.105913
摘要

Dysfunction of motile cilia in ependymal cells has been proposed to be a pathogenic cause of cerebrospinal fluid (CSF) overaccumulation leading to ventricular expansion in hydrocephalus, primarily based on observations of enlarged ventricles in mouse models of primary ciliary dyskinesia. Here, we review human and animal evidence that warrants a rethinking of the cilia hypothesis in hydrocephalus. First, we discuss neuroembryology and physiology data that do not support a role for ependymal cilia as the primary propeller of CSF movement across the ventricles in the human brain, particularly during in utero development prior to the functional maturation of ependymal cilia. Second, we highlight that in contrast to mouse models, motile ciliopathies infrequently cause hydrocephalus in humans. Instead, gene mutations affecting motile cilia function impact not only ependymal cilia but also motile cilia found in other organ systems outside of the brain, causing a clinical syndrome of recurrent respiratory infections and situs inversus, symptoms that do not typically accompany most cases of human hydrocephalus. Finally, we postulate that certain cases of hydrocephalus associated with ciliary gene mutations may arise not necessarily just from loss of cilia-generated CSF flow but also from altered neurodevelopment, given the potential functions of ciliary genes in signaling and neural stem cell fate beyond generating fluid flow. Further investigations are needed to clarify the link between motile cilia, CSF physiology, and brain development, the understanding of which has implications for the care of patients with hydrocephalus and other related neurodevelopmental disorders.
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