PQBP1-dependent alternative RNA splicing underlies high calorie diet-induced cognitive impairment

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-presynapse 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.

Authors

Institutions

Publication Details

Journal
Molecular Psychiatry
Published
2026-09-12
DOI
https://doi.org/10.1038/s41380-026-03868-x
Primary Topic
RNA Research and Splicing
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

PQBP1-dependent alternative RNA splicing underlies high calorie diet-induced cognitive impairment

Xigui Chen, Hikari Tanaka, Hidenori Homma, Hiroki Shiwaku et al.
Molecular Psychiatry
RNA Research and Splicing
article

PQBP1-dependent alternative RNA splicing underlies high calorie diet-induced cognitive impairment

Xigui Chen, Hikari Tanaka, Hidenori Homma, Hiroki Shiwaku, Takaki Watanabe, Kyota Fujita, Hitoshi Okazawa, Masanobu Kano, Yuki Yoshioka, Shuhei Fujino, Yong Huang, Kyoko Matsuyama, Albert R. La Spada
article en

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-presynapse 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.

Molecular Psychiatry
Kanazawa University (JP), Tokyo Medical and Dental University (JP), University of California, Irvine (US), Life Science Institute (JP), Japan Space Forum (JP), National Institute of Advanced Industrial Science and Technology (JP), The University of Tokyo (JP), Teikyo University (JP)
Japan Agency for Medical Research and Development, Ministry of Education, Culture, Sports, Science and Technology, Foundation of Synapse and Neurocircuit Pathology, National Institutes of Health, Japan Society for the Promotion of Science
Zero hunger
Openalex Percentile: Top 18%
RNA Research and Splicing
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.