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Modeling Encephalopathy of Prematurity Using Prenatal Hypoxia-ischemia with Intra-amniotic Lipopolysaccharide in Rats
Published on: November 20, 2015
Preconditioning triggered by carbon monoxide (CO) provides neuronal protection following perinatal hypoxia-ischemia
Cláudia S F Queiroga1, Simone Tomasi, Marius Widerøe
1Chronic Diseases Research Center (CEDOC), Faculdade de Ciências Médicas, Universidade Nova de Lisboa, Lisboa, Portugal.
Insights
Carbon monoxide (CO) preconditioning protects neurons from cell death in neonatal hypoxia-ischemia. This neuroprotective effect involves reduced apoptosis and increased Bcl-2 expression, offering a potential therapeutic strategy for at-risk newborns.
Area of Science:
- Neuroscience
- Biochemistry
- Cell Biology
Background:
- Perinatal hypoxia-ischemia (HI) is a leading cause of neonatal mortality and long-term neurological deficits.
- Cerebral HI induces excitotoxicity and cell death, with mitochondria playing a critical role.
- Preconditioning with subtle insults can enhance neuronal resistance to damage.
Purpose of the Study:
- To investigate the neuroprotective role of carbon monoxide (CO)-induced preconditioning against excitotoxicity and hypoxia-ischemia.
- To elucidate the molecular mechanisms underlying CO's protective effects on neurons.
Main Methods:
- In vitro: Glutamate-induced apoptosis in cerebellar granule cells treated with CO.
- In vivo: Rice-Vannucci model of neonatal hypoxia-ischemia in rat pups with CO preconditioning.
- Assays: Neuronal death markers, Bcl-2 expression (mRNA and protein), caspase-3 activation, cytochrome c release.
Main Results:
- CO inhibited glutamate-induced excitotoxicity and increased Bcl-2 mRNA in primary neuronal cultures.
- In vivo, CO preconditioning significantly reduced hippocampal apoptosis and cleaved caspase-3 activation.
- CO limited mitochondrial cytochrome c release and increased Bcl-2 protein levels in the hippocampus.
Conclusions:
- CO preconditioning elicits a protective molecular cascade that mitigates neuronal apoptosis.
- CO demonstrates potential as an innovative therapeutic strategy for neonatal cerebral hypoxia-ischemia.
Abstract:
Perinatal hypoxia-ischemia is a major cause of acute mortality in newborns and cognitive and motor impairments in children. Cerebral hypoxia-ischemia leads to excitotoxicity and necrotic and apoptotic cell death, in which mitochondria play a major role. Increased resistance against major damage can be achieved by preconditioning triggered by subtle insults. CO, a toxic molecule that is also generated endogenously, may have a role in preconditioning as low doses can protect against inflammation and apoptosis. In this study, the role of CO-induced preconditioning on neurons was addressed in vitro and in vivo. The effect of 1 h of CO treatment on neuronal death (plasmatic membrane permeabilization and chromatin condensation) and bcl-2 expression was studied in cerebellar granule cells undergoing to glutamate-induced apoptosis. CO's role was studied in vivo in the Rice-Vannucci model of neonatal hypoxia-ischemia (common carotid artery ligature +75 min at 8% oxygen). Apoptotic cells, assessed by Nissl staining were counted with a stereological approach and cleaved caspase 3-positive profiles in the hippocampus were assessed. Apoptotic hallmarks were analyzed in hippocampal extracts by Western Blot. CO inhibited excitotoxicity-induced cell death and increased Bcl-2 mRNA in primary cultures of neurons. In vivo, CO prevented hypoxia-ischemia induced apoptosis in the hippocampus, limited cytochrome c released from mitochondria and reduced activation of caspase-3. Still, Bcl-2 protein levels were higher in hippocampus of CO pre-treated rat pups. Our results show that CO preconditioning elicits a molecular cascade that limits neuronal apoptosis. This could represent an innovative therapeutic strategy for high-risk cerebral hypoxia-ischemia patients, in particular neonates.
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