The genetics of isoflurane-induced developmental neurotoxicity

Hyo-Seok Na1, Nicole L Brockway1, Katherine R Gentry1

  • 1Department of Anesthesiology and Pain Medicine, University of Washington and Center for Developmental Therapeutics, Seattle Children's Research Institute, Seattle, WA, USA.

Abstract

Insights

Anesthetic-induced neurotoxicity (AIN) in developing organisms can be prevented by understanding its mechanisms. This study identified two conserved pathways regulating AIN, offering potential targets for prevention strategies.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Toxicology

Background:

  • Early developmental exposure to volatile anesthetics causes neurotoxicity across species.
  • Understanding the mechanisms of anesthetic-induced neurotoxicity (AIN) is crucial for prevention.
  • No genetic screens have identified pathways involved in AIN.

Purpose of the Study:

  • To identify critical pathways affected in anesthetic-induced neurotoxicity (AIN) using forward genetic screens.
  • To characterize mechanisms that could eliminate isoflurane-induced AIN in mammals.

Main Methods:

  • Chemotaxis in C. elegans after larval exposure to isoflurane was used to measure AIN.
  • Genetic mutations and pharmacologic manipulations were employed.
  • Gene activation was visualized using fluorescent markers.

Main Results:

  • Two conserved pathways regulating AIN were identified through 44 mutations and pharmacologic interventions.
  • Activation of a stress-protective pathway (DAF-2 dependent) eliminated AIN.
  • Activation of an endoplasmic reticulum (ER) stress pathway caused AIN; mTOR inhibition blocked this.
  • Isoflurane preconditioning inhibited AIN.

Conclusions:

  • Isoflurane exposure inhibits mitochondrial function, leading to ER-stress and AIN.
  • AIN can be prevented by manipulating identified pathways at multiple points.
  • Endogenous signaling pathways can be leveraged for protection against anesthetic neurotoxicity.