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

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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