Neonatal Sevoflurane Exposure Impairs Learning and Memory by the Hypermethylation of Hippocampal Synaptic Genes

Xin-Yu Fan1, Guang Shi2, Ping Zhao3

  • 1Department of Anesthesiology, Shengjing Hospital of China Medical University, No. 36 Sanhao Street, Shenyang, 110004, China.

Molecular Neurobiology
|October 14, 2020
PubMed

Insights

Neonatal exposure to sevoflurane anesthesia impairs learning and memory in rats by altering hippocampal DNA methylation of synaptic genes. Pretreatment with a DNA methyltransferase inhibitor improved cognitive function.

Area of Science:

  • Neuroscience
  • Anesthesiology
  • Epigenetics

Background:

  • Sevoflurane anesthesia is common in pediatric patients.
  • Early-life exposure to general anesthesia is linked to memory deficits.
  • DNA methylation regulates synaptic plasticity and gene transcription.

Purpose of the Study:

  • To investigate if neonatal sevoflurane exposure affects learning and memory.
  • To examine the role of hippocampal DNA methylation of synaptic genes in sevoflurane-induced cognitive impairment.

Main Methods:

  • Neonatal Sprague-Dawley rats were exposed to sevoflurane or air from postnatal day 7 to 9.
  • 5-aza-2-deoxycytidine (5-AZA), a DNMT inhibitor, was administered before exposure.
  • Cognitive function was assessed using behavioral tests (Morris water maze, novel object recognition, intruder test).
  • Hippocampal DNA methylation, gene expression (DNMTs, TETs), synaptic protein levels, and synaptic density were analyzed.

Main Results:

  • Sevoflurane exposure impaired cognitive, social, and spatial memory.
  • This impairment correlated with increased DNA methyltransferases (DNMTs) and 5-methylcytosine, and decreased TET1 and 5-hydromethylcytosine.
  • Sevoflurane induced hypermethylation of synaptic genes (Shank2, Psd95, Syn1, Syp), downregulating synaptic protein expression and reducing synaptic density.
  • 5-AZA pretreatment mitigated the learning and memory deficits.

Conclusions:

  • Neonatal sevoflurane exposure impairs learning and memory via epigenetic modifications in the hippocampus.
  • The mechanism involves altered DNA methylation of critical synaptic genes, leading to reduced synaptic plasticity.
  • Targeting DNA methylation may offer a therapeutic strategy to prevent sevoflurane-induced cognitive deficits.