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Published on: September 24, 2020
mTORC1-Dependent and GSDMD-Mediated Pyroptosis in Developmental Sevoflurane Neurotoxicity
Wang Wen-Yuan1, Yi Wan-Qing2, Hu Qi-Yun2
1Center for Rehabilitation Medicine, Department of Anesthesiology, Zhejiang Provincial People's Hospital (Affiliated People's Hospital, Hangzhou Medical College), Hangzhou, 310014, Zhejiang, China. Neuro-anesth@hotmail.com.
Abstract:
Developmental sevoflurane exposure leads to neuronal cell death, and subsequent learning and memory cognitive defects. The underlyi\ng mechanism remains to be elucidated. Gasdermin D (GSDMD)-mediated pyroptosis is a form of inflammatory cell death and participates in a variety of neurodegenerative diseases. Several studies illustrated that dysregulation of mTOR activity is involved in pyroptotic cell death. The current study was designed to interrogate the role of GSDMD-mediated pyroptosis and mTOR activity in developmental sevoflurane exposure. We found that inhibition of GSDMD pore formation with Disulfiram (DSF) or Necrosulfonamide (NSA) significantly attenuated sevoflurane neurotoxicity in vitro. In addition, treatment with DSF or NSA also mitigated damage-associated molecular patterns (DAMPs) release and subsequent plasma membrane rupture (PMR) induced by sevoflurane challenge. Further investigation showed that the overactivation of mTOR signaling is involved in sevoflurane induced pyroptosis both in vivo and in vitro. Intriguingly, we found that the DAMPs release and subsequent PMR triggered by developmental sevoflurane priming were compromised by knocking down the expression of mTORC1 component Raptor, but not mTORC2 component Rictor. Moreover, sevoflurane induced pyroptosis could also be restored by suppressing mTOR activity or knocking down the expressions of Ras-related small GTPases RagA or RagC. Finally, administration of DSF or NSA dramatically improved the spatial and emotional cognitive disorders without alternation of locomotor activity. Taken together, these results indicate that mTORC1-dependent and GSDMD-mediated pyroptosis contributes to the developmental sevoflurane neurotoxicity. Characterizing these processes may provide experimental evidence for the possible prevention of developmental sevoflurane neurotoxicity.
Insights
Developmental sevoflurane exposure causes brain damage via Gasdermin D (GSDMD)-mediated pyroptosis and mTOR signaling. Inhibiting these pathways improved cognitive function in animal models.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Developmental exposure to sevoflurane can cause neuronal cell death and cognitive deficits.
- The underlying mechanisms, particularly inflammatory cell death pathways like pyroptosis, are not fully understood.
- Dysregulation of the mTOR signaling pathway is implicated in pyroptotic cell death.
Purpose of the Study:
- To investigate the role of Gasdermin D (GSDMD)-mediated pyroptosis and mTOR activity in developmental sevoflurane neurotoxicity.
- To explore potential therapeutic strategies targeting these pathways.
Main Methods:
- In vitro and in vivo models of developmental sevoflurane exposure.
- Inhibition of GSDMD pore formation using Disulfiram (DSF) or Necrosulfonamide (NSA).
- Assessment of damage-associated molecular patterns (DAMPs) release and plasma membrane rupture (PMR).
- Analysis of mTOR signaling pathway activation, including mTORC1 and mTORC2 components, and RagA/RagC GTPases.
- Evaluation of cognitive functions (spatial and emotional) and locomotor activity.
Main Results:
- Inhibition of GSDMD pore formation with DSF or NSA attenuated sevoflurane-induced neurotoxicity, DAMPs release, and PMR.
- Overactivation of mTOR signaling was observed in sevoflurane-induced pyroptosis.
- Knocking down Raptor (mTORC1 component) but not Rictor (mTORC2 component) compromised sevoflurane-induced DAMPs release and PMR.
- Suppression of mTOR activity or knockdown of RagA/RagC restored sevoflurane-induced pyroptosis.
- DSF or NSA administration improved cognitive deficits without affecting locomotor activity.
Conclusions:
- Developmental sevoflurane neurotoxicity is mediated by mTORC1-dependent and GSDMD-mediated pyroptosis.
- Targeting GSDMD and mTORC1 pathways offers a potential strategy for preventing sevoflurane-induced neurodevelopmental and cognitive impairments.

