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September 21, 2022Frontiers in Cellular Neuroscience29 citationsOpen Access

Sevoflurane exposure induces neurotoxicity by regulating mitochondrial function of microglia due to NAD insufficiency

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RZRuilou ZhuSZShuang ZengNLNingning Li

Key Points

  • To investigate the cellular and metabolic mechanisms through which sevoflurane exposure causes developmental neurotoxicity via microglial activation.
  • Assessed microglial activation phenotypes, proinflammatory cytokine secretion, and phagocytic capacity following sevoflurane exposure.
  • Evaluated microglial mitochondrial metabolism, focusing on ATP synthesis and NAD availability during central nervous system development.
  • Sevoflurane exposure stimulated microglial release of proinflammatory cytokines while inhibiting microglial phagocytic function, preventing the clearance and promoting the accumulation of damaged neurons.
  • Sevoflurane impaired microglial mitochondrial metabolism, resulting in NAD deficiency and insufficient ATP generation to meet the energy demands required for neuroprotective phagocytosis.

Abstract

Developmental neurons received with sevoflurane, the commonly used inhalational anesthetic agent in clinical surgery, several times tend to be destroyed. Microglia, the resident immune cells of the central nervous system (CNS), are activated after sevoflurane exposure, accompanied by releasing proinflammatory cytokines that damage developing neurons. The sevoflurane-induced neurotoxicity could be attributed to activated microglia presenting proinflammatory and anti-inflammatory functions. Proinflammatory microglia release cytokines to impair the CNS, while anti-inflammatory microglia engulf damaged neurons to maintain CNS homeostasis. Sevoflurane exposure promotes the secretion of proinflammatory cytokines by microglia, inhibiting the microglial phagocytic function. Microglia with poor phagocytic function cannot engulf damaged neurons, leading to the accumulation of damaged neurons. The mechanism underlying poor phagocytic function may be attributed to mitochondrial dysfunction of microglia induced by sevoflurane exposure, in which affected mitochondria cannot generate adequate ATP and NAD to satisfy the energy demand. We discovered that sevoflurane treatment impaired the mitochondrial metabolism of microglia, which resulted in NAD deficiency and couldn't produce sufficient energy to clear damaged neurons to maintain CNS development. Our findings provide an explanation of a new mechanism underlying sevoflurane-induced neurotoxicity.

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Cite This Study

Zhu et al. (2022) studied this question.

synapsesocial.com/papers/6a01d935897643a80dcb1353https://doi.org/10.3389/fncel.2022.914957
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