Sevoflurane leads to learning and memory dysfunction via breaking the balance of tPA/PAI-1

Yunxia Dong1, Wei Hong2, Zhiyin Tang1

  • 1Department of Anesthesiology, Shengjing Hospital of China Medical University, Shenyang, China.

Insights

Sevoflurane anesthesia in young rats impairs learning and memory by disrupting the tPA/PAI-1 system, reducing brain-derived neurotrophic factor (BDNF) cleavage and synaptic plasticity. Treatment with tPA or a PAI-1 inhibitor partially restored cognitive function and synaptic health.

Area of Science:

  • Neuroscience
  • Anesthesiology
  • Molecular Biology

Background:

  • General anesthesia in early childhood may negatively impact adolescent neurocognition.
  • The precise mechanisms linking sevoflurane exposure to long-term cognitive deficits require elucidation.

Purpose of the Study:

  • To investigate the long-term effects of multiple sevoflurane inhalations on learning and memory in developing rats.
  • To explore the role of the tissue plasminogen activator (tPA)/plasminogen activator inhibitor-1 (PAI-1) system in sevoflurane-induced neurotoxicity.
  • To examine the regulatory relationship between the tPA/PAI-1 system, brain-derived neurotrophic factor (BDNF), and tropomysin related kinase B (TrkB) signaling.

Main Methods:

  • Rats inhaled sevoflurane (2 h/d for 3 days), followed by assessments of learning and memory (Morris water maze) and synaptic plasticity (Golgi staining) after 28 days.
  • Expression levels of tPA, PAI-1, BDNF, proBDNF, TrkB, and p-TrkB were measured.
  • Intervention with exogenous tPA or a PAI-1 inhibitor (TM5275) was performed, with subsequent blockade by a TrkB inhibitor.

Main Results:

  • Sevoflurane exposure induced learning and memory dysfunction, decreased hippocampal dendritic spine density, and reduced expression of synaptic proteins, BDNF, and p-TrkB.
  • Increased levels of proBDNF and PAI-1 were observed following sevoflurane exposure.
  • Administration of tPA or TM5275 partially reversed cognitive deficits and synaptic impairments, modulating proBDNF, PAI-1, BDNF, and p-TrkB levels.

Conclusions:

  • Multiple sevoflurane inhalations disrupt the tPA/PAI-1 balance, inhibiting proBDNF cleavage and consequently impairing the downstream TrkB signaling pathway.
  • This disruption leads to reduced hippocampal synaptic plasticity and long-term learning and memory dysfunction.
  • Targeting the tPA/PAI-1 system offers a potential therapeutic strategy to mitigate sevoflurane-induced cognitive deficits.

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