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Published on: February 24, 2023
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.
Introduction:
Neurotoxicity induced by early developmental exposure to volatile anesthetics is a characteristic of organisms across a wide range of species, extending from the nematode C. elegans to mammals. Prevention of anesthetic-induced neurotoxicity (AIN) will rely upon an understanding of its underlying mechanisms. However, no forward genetic screens have been undertaken to identify the critical pathways affected in AIN. By characterizing such pathways, we may identify mechanisms to eliminate isoflurane induced AIN in mammals.
Methods:
Chemotaxis in adult C. elegans after larval exposure to isoflurane was used to measure AIN. We initially compared changes in chemotaxis indices between classical mutants known to affect nervous system development adding mutants in response to data. Activation of specific genes was visualized using fluorescent markers. Animals were then treated with rapamycin or preconditioned with isoflurane to test effects on AIN.
Results:
Forty-four mutations, as well as pharmacologic manipulations, identified two pathways, highly conserved from invertebrates to humans, that regulate AIN in C. elegans. Activation of one stress-protective pathway (DAF-2 dependent) eliminates AIN, while activation of a second stress-responsive pathway (endoplasmic reticulum (ER) associated stress) causes AIN. Pharmacologic inhibition of the mechanistic Target of Rapamycin (mTOR) blocks ER-stress and AIN. Preconditioning with isoflurane prior to larval exposure also inhibited AIN.
Discussion:
Our data are best explained by a model in which isoflurane acutely inhibits mitochondrial function causing activation of responses that ultimately lead to ER-stress. The neurotoxic effect of isoflurane can be completely prevented by manipulations at multiple points in the pathways that control this response. Endogenous signaling pathways can be recruited to protect organisms from the neurotoxic effects of isoflurane.
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.
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