ASD mutation of Katnal2 impairs ependymal ciliary motion and causes hydrocephalus
Qiu, S.; Cao, H.; Xue, Y.; Zhao, W.; Xie, S.; Wu, N.; Song, M.; Pan, Y.-H.; Baas, P. W.; Ma, J.; Yuan, X.-B.
Show abstract
Katanin catalytic subunit A1 like 2 (KATNAL2) is a high-risk gene associated with autism spectrum disorders (ASD), however its impact on brain development and disease remains unclear. The present study revealed an unexpected role of KATNAL2 in regulating ependymal ciliary motion and cerebrospinal fluid flow during brain development, an important contributing factor for ASD. We discovered a distinct expression pattern of KATNAL2 in multiciliated ependymal cells of both human and mouse brains. Notably, an ASD-associated mutation of Katnal2 disrupted its molecular function and resulted in ASD-related behavioral deficits in mice. Additionally, this mutation affected the polarized organization and beating of ependymal cilia, leading to delayed cerebrospinal fluid flow and sustained ventricular enlargement from the early postnatal stage. Conditional ablation of Katnal2 specifically in the ependymal cells of neonatal mice is sufficient to cause ventricular dilation, whereas no such effect was observed in adult mice. Our findings highlight the importance of ependymal motile cilia and hydrocephalus in ASD, offering insights into its pathogenesis and potential intervention.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Single cell analysis of dup15q syndrome reveals developmental and postnatal molecular changes in autism 98%
- Partial rescue of neuronal genes deregulated in Cornelia de Lange Syndrome by cohesin 97%
- A neuron type-specific microexon in Ank3/ankyrin-G modulates calcium activity and neuronal excitability 97%
Similar papers in this journal
Similar papers in this journal
- linc-mipep and linc-wrb encode micropeptides that regulate chromatin accessibility in vertebrate-specific neural cells 97%
- Transcriptional Control Of Calmodulin By CAMTA Regulates Neural Excitability 96%
- Growth Cone-Localized Microtubule Organizing Center Establishes Microtubule Orientation in Dendrites 96%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.