Related Experiment Video
Updated: May 18, 2026

Combined Optogenetic and Freeze-fracture Replica Immunolabeling to Examine Input-specific Arrangement of Glutamate Receptors in the Mouse Amygdala
Published on: April 15, 2016
Isoflurane facilitates synaptic NMDA receptor endocytosis in mice primary neurons
1Department of Anesthesia, Critical Care and Pain Medicine, Massachusetts General Hospital and Harvard Medical School, Charlestown, MA 02129-2060, USA.
Abstract:
Inhalation anesthetic isoflurane has been reported to induce caspase activation and accumulation of β-amyloid (Aβ), however, the down-stream consequences of these effects are largely unknown. Isoflurane has also been shown to impair learning and memory, however, the up-stream mechanisms of these effects remain largely to be determined. Facilitation of synaptic NMDA receptor endocytosis can reduce synaptic function, leading to learning and memory impairment. We therefore set out to determine the effects of isoflurane on synaptic NMDA receptor endocytosis. Primary neurons from wild-type and Alzheimer's disease transgenic mice were treated with 2% isoflurane for six hours. Synaptic surface levels of NMDA receptor 2B (NR2B) and NR2B internalization were determined by surface and cleavable biotinylation assay, western blot analysis and immunofluorescence. Here we show that isoflurane can induce caspase-3 activation, increase levels of β-site amyloid precursor protein-cleaving enzyme and cause accumulation of Aβ in the primary neurons. Isoflurane facilitates synaptic NR2B endocytosis as evidenced by reducing surface NR2B levels, increasing NR2B internalization, and decreasing the ratio of synaptic surface NR2B to synapsin in mice primary neurons. Moreover, caspase activation inhibitor Z-VAD and γ-secretase inhibitor L-685,458 attenuated the isoflurane-facilitated NR2B endocytosis. These results suggest that isoflurane induces caspase activation and Aβ accumulation, leading to facilitation of synaptic NMDA receptor endocytosis, which potentially serve as the upstream mechanism of the isoflurane-induced impairment of learning and memory. These findings will encourage further studies to determine the underlying mechanism by which isoflurane and other anesthetics promote Alzheimer's disease neuropathogenesis and induce cognitive dysfunction.
Insights
Inhalation anesthetic isoflurane triggers caspase activation and beta-amyloid (Aβ) buildup, leading to enhanced NMDA receptor endocytosis. This mechanism may explain isoflurane-induced learning and memory deficits.
Area of Science:
- Neuroscience
- Anesthesiology
- Alzheimer's Disease Research
Background:
- Inhalation anesthetic isoflurane is linked to caspase activation and beta-amyloid (Aβ) accumulation.
- Isoflurane impairs learning and memory, but upstream mechanisms are unclear.
- Synaptic NMDA receptor endocytosis can reduce synaptic function and impair cognition.
Purpose of the Study:
- To investigate the effects of isoflurane on synaptic NMDA receptor endocytosis.
- To determine if isoflurane-induced caspase activation and Aβ accumulation contribute to NR2B endocytosis.
Main Methods:
- Primary neurons from wild-type and Alzheimer's disease transgenic mice were exposed to 2% isoflurane.
- Surface NR2B levels and NR2B internalization were measured using biotinylation assays, western blots, and immunofluorescence.
- Effects of caspase and gamma-secretase inhibitors on isoflurane-treated neurons were assessed.
Main Results:
- Isoflurane induced caspase-3 activation, increased BACE1 levels, and promoted Aβ accumulation in neurons.
- Isoflurane facilitated synaptic NR2B endocytosis, indicated by reduced surface NR2B and increased internalization.
- Caspase inhibitor Z-VAD and gamma-secretase inhibitor L-685,458 attenuated isoflurane-induced NR2B endocytosis.
Conclusions:
- Isoflurane promotes synaptic NR2B endocytosis via caspase activation and Aβ accumulation.
- This NR2B endocytosis may be an upstream mechanism for isoflurane-induced cognitive impairment.
- Findings suggest a potential link between isoflurane, Alzheimer's neuropathogenesis, and cognitive dysfunction.
