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Updated: Jun 13, 2025

Quantitative Analysis of Alternative Pre-mRNA Splicing in Mouse Brain Sections Using RNA In Situ Hybridization Assay
Published on: August 26, 2018
PQBP1-dependent alternative RNA splicing underlies high calorie diet-induced cognitive impairment
Abstract:
High calorie-high fat diet (HFD) has been implicated as a pathological modifier of brain diseases including neurodegenerative dementias, but the detailed molecular mechanisms remain largely unknown. Here we report that HFD suppresses PPARγ-mediated transcriptional expression of PQBP1 , a RNA splicing factor implicated in human intellectual disability and Alzheimer's disease. RNAseq-based comprehensive analyses of alternative RNA splicing (AS) in HFD-fed mice for 1 or 6 weeks and in PQBP1-cKO mice reveal their common changes, which weigh on synapse-related genes. Betweenness-based extraction of core molecules from the common changes reveals CASK, Cacnb1 and Cyfip2 as key molecules of the network. Both CASK and Cacnb1 regulate STXBP1, a causative gene for infantile epilepsy syndrome and an essential factor for synapse vesicle release, via their direct interaction. In addition, our analysis suggests that Syt1 plays a role specifically in HFD for 1 week. HFD-induced AS isoforms of CASK, Cacnb1, Cyfip2 and Syt1 impair pre-synapse vesicle release in primary neurons. AAV-PQBP1, AAV-CASK, AAV-Cacnb1, AAV-Cyfip2 or AAV-Syt1 rescues synapse and/or cognitive dysfunctions in HFD mice, genetically supporting the pathological PQBP1-presynase axis in HFD. Moreover, immunohistochemistry experiments suggest that the pathological axis plays roles not only in excitatory neurons, but also in inhibitory neurons of the brain. Collectively, our results unravel a novel molecular mechanism for brain dysfunction when mice are exposed to a HFD.
Insights
A high-fat diet (HFD) disrupts brain function by suppressing PQBP1, a gene linked to intellectual disability and Alzheimer's disease, impacting synapse health.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- High-calorie, high-fat diets (HFD) are linked to brain diseases, but molecular mechanisms are unclear.
- PQBP1, a splicing factor, is implicated in intellectual disability and Alzheimer's disease.
Purpose of the Study:
- To elucidate the molecular mechanisms by which HFD affects brain function.
- To investigate the role of PQBP1 and its associated pathways in HFD-induced brain dysfunction.
Main Methods:
- RNA sequencing (RNAseq) to analyze alternative RNA splicing (AS) in HFD-fed mice and PQBP1-conditional knockout (cKO) mice.
- Network analysis to identify key molecules and pathways.
- In vitro experiments with primary neurons.
- In vivo rescue experiments using adeno-associated virus (AAV) vectors.
- Immunohistochemistry.
Main Results:
- HFD suppresses PPARγ-mediated transcription of PQBP1.
- Common AS changes in HFD and PQBP1-cKO mice affect synapse-related genes, identifying CASK, Cacnb1, and Cyfip2 as key molecules.
- HFD-induced AS isoforms of CASK, Cacnb1, Cyfip2, and Syt1 impair presynaptic vesicle release.
- AAV-mediated delivery of PQBP1, CASK, Cacnb1, Cyfip2, or Syt1 rescued synapse and/or cognitive deficits in HFD mice.
- The pathological axis operates in both excitatory and inhibitory neurons.
Conclusions:
- HFD induces brain dysfunction through a PQBP1-presynapse axis involving altered RNA splicing.
- This pathway impacts synaptic vesicle release and cognitive function.
- The findings reveal a novel molecular mechanism underlying HFD-induced brain pathology.
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