Loss of Katnal2 leads to ependymal ciliary hyperfunction and autism-related phenotypes in mice.
Ryeonghwa KangKyungdeok KimYewon JungSang-Han ChoiChanhee LeeGeun Ho ImMiram ShinKwangmin RyuSubin ChoiEsther YangWangyong ShinSeungjoon LeeSuho LeeZachary PapadopoulosJi Hoon AhnGou Young KohJonathan KipnisHyojin KangHyun KimWon-Ki ChoSoochul ParkSeong-Gi KimEunjoon KimPublished in: PLoS biology (2024)
Autism spectrum disorders (ASD) frequently accompany macrocephaly, which often involves hydrocephalic enlargement of brain ventricles. Katnal2 is a microtubule-regulatory protein strongly linked to ASD, but it remains unclear whether Katnal2 knockout (KO) in mice leads to microtubule- and ASD-related molecular, synaptic, brain, and behavioral phenotypes. We found that Katnal2-KO mice display ASD-like social communication deficits and age-dependent progressive ventricular enlargements. The latter involves increased length and beating frequency of motile cilia on ependymal cells lining ventricles. Katnal2-KO hippocampal neurons surrounded by enlarged lateral ventricles show progressive synaptic deficits that correlate with ASD-like transcriptomic changes involving synaptic gene down-regulation. Importantly, early postnatal Katnal2 re-expression prevents ciliary, ventricular, and behavioral phenotypes in Katnal2-KO adults, suggesting a causal relationship and a potential treatment. Therefore, Katnal2 negatively regulates ependymal ciliary function and its deletion in mice leads to ependymal ciliary hyperfunction and hydrocephalus accompanying ASD-related behavioral, synaptic, and transcriptomic changes.
Keyphrases
- autism spectrum disorder
- intellectual disability
- attention deficit hyperactivity disorder
- high fat diet induced
- multiple sclerosis
- traumatic brain injury
- heart failure
- white matter
- wild type
- healthcare
- subarachnoid hemorrhage
- left ventricular
- resting state
- cerebral ischemia
- induced apoptosis
- single cell
- preterm infants
- mental health
- poor prognosis
- gene expression
- insulin resistance
- minimally invasive
- cell death
- transcription factor
- working memory
- spinal cord
- small molecule
- cell proliferation
- functional connectivity
- cell cycle arrest
- copy number
- genome wide identification