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Detecting Behavioral Deficits in Rats After Traumatic Brain Injury
Published on: January 30, 2018
Mdivi-1 pretreatment mitigates isoflurane-induced cognitive deficits in developmental rats
Jie Gao1, Ailin Luo1, Jing Yan1
1Department of Anesthesiology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology1095 Jiefang Avenue, Wuhan 430030, Hubei, China.
Abstract:
Accumulating evidence indicates that general anesthetics can cause acute neuroapoptosis and long-term cognitive deficit in models exposed to anesthetics during the brain growth-spurt period. Anesthetics-induced imbalance of mitochondrial fusion and fission preceded and contributed to developmental neuroapoptosis. Accordingly, the imbalance was accompanied by activation of dynamin-related protein (Drp)1 which was closely associated with synaptic degeneration in neurodegenerative diseases. Based on the neuroprotective role of mitochondrial division inhibitor-1 (mdivi-1) in neurodegeneration and stroke, we set out to examine whether mdivi-1 can mitigate developmental neurotoxicity induced by isoflurane. In the present study, we showed that 2% isoflurane exposure for 2 h triggered Drp1 dephosphorylation at serine 656 and increased translocation of Drp1 and Bax from cytosol to mitochondria, concomitant with cytochrome C leakage into the cytosol. Remarkably, pretreatment with mdivi-1 not only alleviated isoflurane-induced disturbed mitochondrial translocation of Drp1 and Bax and almost restored morphological changes, but also inhibited cytochrome C release, caspase9 and caspase3 activation in hippocampi. Furthermore, mdivi-1 mitigated the loss of synaptic proteins and long-lasting cognitive deficit in later life of rats neonatally exposed to isoflurane. Taken together, isoflurane-induced Drp1 activation and translocation led to excessive mitochondrial fission and subsequently contributed to the synaptic injury and long-term cognitive impairment. However, mdivi-1 pretreatment prevented Drp1-dependent excessive mitochondrial fission and mitigated neuro-apoptosis and synaptic injury, and improved the long-term cognitive function. Thus mdivi-1 holds far-reaching insight for prophylaxis of developmental neurotoxicity induced by isoflurane.
Insights
General anesthetics like isoflurane can harm developing brains, causing neuroapoptosis and cognitive deficits. Mitochondrial division inhibitor-1 (mdivi-1) protected against isoflurane-induced brain injury and cognitive impairment in young rats.
Area of Science:
- Neuroscience
- Toxicology
- Pharmacology
Background:
- General anesthetics can induce neuroapoptosis and cognitive deficits during critical brain development periods.
- Anesthetic-induced mitochondrial dysfunction, specifically an imbalance in fusion and fission, contributes to neurodegeneration.
- Dynamin-related protein 1 (Drp1) activation is implicated in synaptic degeneration.
Purpose of the Study:
- To investigate if mitochondrial division inhibitor-1 (mdivi-1) can mitigate isoflurane-induced developmental neurotoxicity.
- To explore the role of Drp1 activation and mitochondrial dynamics in anesthetic neurotoxicity.
Main Methods:
- Neonatal rats were exposed to isoflurane (2% for 2 h) with or without mdivi-1 pretreatment.
- Mitochondrial translocation of Drp1 and Bax, cytochrome C release, and caspase activation were assessed.
- Synaptic protein levels and long-term cognitive function were evaluated.
Main Results:
- Isoflurane exposure increased Drp1 and Bax translocation to mitochondria, leading to cytochrome C release and apoptosis.
- Mdivi-1 pretreatment inhibited these changes, preserved mitochondrial morphology, and reduced apoptosis.
- Mdivi-1 mitigated synaptic protein loss and improved long-term cognitive deficits in rats exposed to isoflurane.
Conclusions:
- Isoflurane-induced Drp1 activation and excessive mitochondrial fission contribute to synaptic injury and cognitive impairment.
- Mdivi-1 pretreatment offers a potential prophylactic strategy against isoflurane-induced developmental neurotoxicity by preventing Drp1-dependent mitochondrial dysfunction.
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