Sep 2026· Proceedings of the National Academy of Sciences of the United States of America· Vol 123 37, pp.
e2615477123
· 0 citations· 38 references
Medicine
TL;DR
It is demonstrated that central nervous system-specific inactivation of Tmem216 results in severe postnatal hydrocephalus and is identified as a critical TZ protein essential for ciliogenesis during ependymal development and establishing ependymal planar cell polarity.
Abstract
Defects in multiciliated ependymal cells (ECs), which line the cerebral ventricular walls and generate unidirectional cerebrospinal fluid (CSF) flow through coordinated ciliary beating, can lead to CSF accumulation and hydrocephalus. TMEM216, a ciliopathy-associated gene mutated in Joubert, Meckel, and related syndromes, encodes an essential component of the protein complexes that form the transition zone (TZ) at the base of primary cilia. Here, we demonstrate that central nervous system-specific inactivation of Tmem216 results in severe postnatal hydrocephalus. TMEM216 localizes to the TZ of motile cilia in ECs and the TZ of primary cilia in radial glia cells (RGCs), the embryonic precursors of ECs. While Tmem216-deficient ECs differentiate normally, TZ structure and ciliogenesis in both ECs and RGCs are severely disrupted, as shown by reduced cilia abundance and disrupted ciliary ultrastructure. These defective cilia exhibit immobility or dyskinetic movement, resulting in significantly slower CSF flow in Tmem216 mutants than controls. In addition to aberrant ciliogenesis and ciliary dysfunction, Tmem216 ablation disrupts both translational polarity (asymmetric positioning of cilia on the apical area) in RGCs and ECs, as well as rotational polarity (unidirectional orientation of basal bodies within individual ECs and intercellular rotational alignment of motile cilia) in ECs. These findings identify TMEM216 as a critical TZ protein essential for ciliogenesis during ependymal development and establishing ependymal planar cell polarity.
The structural and functional organization of the ependymal cilia is described and how ciliary defects range from severe developmental disruptions causing neonatal hydrocephalus to subtle maintenance defects underlying late-onset forms of the disease are discussed.
Shinya Ohata, Maki Takagishi· Biological and Pharmaceutica...· 0 citations
A developmental increase in cerebrospinal fluid (CSF) production during development is essential for neuronal growth and ventricular expansion. A key regulator of CSF production is the specialized sensory multicilia of the choroid plexus (ChP), which mediate non-canonical Sonic hedgehog (Shh) signaling to suppress wate...
Sui-Fang Mao, Rui Song, Aleksandra Jovanović et al.· bioRxiv· 0 citations
ADAMTS9 mutations cause the ciliopathies nephronophthisis and Joubert syndrome. Here we demonstrated that deletion of ADAMTS9 in the proximal nephron led to polycystic kidney development in mice. In males, Adamts9 deletion caused kidneys to become highly cystic while remaining small without undergoing enlargement. In c...
Sydney Fischer, Karyn L. Robert, Manu Ahmed et al.· JCI Insight· 0 citations
Background Sensory hair cells (HCs) rely on a highly polarized apical apparatus, composed of actin-rich stereocilia and a microtubule-based kinocilium, to detect mechanical stimuli. Although tektins are conserved microtubule-associated proteins enriched in cilia and flagella, their roles in sensory HC morphogenesis and...
Biao Li, Po Xue, Jie Sun et al.· Frontiers in Cell and Develo...· 0 citations
Purpose Defects in primary cilia and ciliary signaling are associated with an array of neurodegenerative diseases. Primary cilia are sensory organelles that transmit and regulate various cellular communication pathways, including the significant Sonic hedgehog and Wnt signal pathways. Extensive studies have shown that...
Ke Ning, Matthew Tran, Xin Xia et al.· Investigative Ophthalmology...· 0 citations
A distinct population of ependymal cells (E2) in the forebrain of mice and humans are described, identified as a novel CSF-sensing ependymal cell type and provide a cellular target for the CSF signaling.
A. Cebrian-Silla, Fiona Dale-Huang, Stephanie A. Redmond et al.· bioRxiv· 0 citations
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