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Adaptation of Microelectrode Array Technology for the Study of Anesthesia-induced Neurotoxicity in the Intact Piglet Brain
Published on: May 12, 2018
Long-term effects of single or multiple neonatal sevoflurane exposures on rat hippocampal ultrastructure
Levana G Amrock1, Mathew L Starner, Kathy L Murphy
1From the Department of Anesthesiology (L.G.A.), Department of Neuroscience (M.L.S.), Departments of Neuroscience, Anesthesiology, and Geriatrics and Palliative Medicine (M.G.B.), the Icahn School of Medicine at Mount Sinai, New York, New York; and the Department of Biomedical Services, University of Oxford, Oxford, United Kingdom (K.L.M.).
Insights
Neonatal anesthesia can harm brain development. Repeated anesthetic exposures in young rats caused significant synaptic loss, suggesting a threshold effect for neurotoxicity.
Area of Science:
- Neuroscience
- Developmental Biology
- Anesthesiology
Background:
- Neonatal exposure to general anesthetics is linked to neurocognitive risks.
- Epidemiological studies show learning disabilities in children with multiple anesthesia exposures.
- This study investigates the histological basis of these observations in a rat model.
Purpose of the Study:
- To examine long-term histological differences in the hippocampus following neonatal anesthetic exposure.
- To assess the impact of single versus repeated sevoflurane exposure on synaptic density, mitochondrial density, and dendritic spine morphology.
Main Methods:
- Twenty male rat pups were divided into four groups.
- Groups received either single 2-h or 6-h sevoflurane exposure, or repeated 2-h exposures on postnatal days 7, 10, and 13.
- A control group was exposed to 30% oxygen.
Main Results:
- Repeated anesthetic exposures caused significantly greater synaptic loss than a single 2-h exposure.
- Mitochondrial toxicity correlated with the cumulative duration of anesthetic exposure.
- Both repeated and single prolonged exposures reduced the fraction of presynaptic terminals with mitochondria.
Conclusions:
- Neonatal anesthesia exhibits a threshold effect for neurotoxicity.
- Even brief exposures can cause lasting neuronal alterations and sensitize synapses to further damage.
- Findings support a histological correlate for population-based observations of learning disabilities.
Background:
Neonatal exposure to general anesthetics may pose significant neurocognitive risk. Human epidemiological studies demonstrate higher rates of learning disability among children with multiple, but not single, exposures to anesthesia. The authors employ a rat model to provide a histological correlate for these population-based observations. The authors examined long-term differences in hippocampal synaptic density, mitochondrial density, and dendritic spine morphology.
Methods:
Twenty male rat pups (n = 5/condition) were exposed to 2.5% sevoflurane under one of four conditions: single 2-h exposure on postnatal day 7 (P7); single 6-h exposure on P7; repeated 2-h exposures on P7, P10, and P13 for a cumulative 6 h of general anesthetics; or control exposure to 30% oxygen on P7, P10, and P13.
Results:
Repeated exposure to general anesthetics resulted in greater synaptic loss relative to a single 2-h exposure (P < 0.001). The magnitude of synaptic loss induced by three 2-h exposures (1.977 ± 0.040 μm [mean ± SEM]) was more profound than that of a single 6-h exposure (2.280 ± 0.045 μm, P = 0.022). Repeated exposures did not alter the distribution of postsynaptic density length, indicating a uniform pattern of loss across spine types. In contrast, mitochondrial toxicity was best predicted by the cumulative duration of exposure. Relative to control (0.595 ± 0.017), both repeated 2-h exposures (0.479 ± 0.015) and a single 6-h exposure (0.488 ± 0.013) were associated with equivalent reductions in the fraction of presynaptic terminals containing mitochondria (P < 0.001).
Conclusion:
This suggests a "threshold effect" for general anesthetic-induced neurotoxicity, whereby even brief exposures induce long-lasting alterations in neuronal circuitry and sensitize surviving synapses to subsequent loss.
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