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Published on: July 14, 2010
Unconjugated bilirubin exposure impairs hippocampal long-term synaptic plasticity
Fang-Yu Chang1, Cheng-Che Lee, Chiung-Chun Huang
1Department of Pharmacology, College of Medicine, National Cheng Kung University, Tainan, Taiwan.
Insights
Unconjugated bilirubin (UCB) impairs hippocampal synaptic plasticity in developing brains. This neurotoxicity involves NMDA receptor degradation via calpain, offering potential therapeutic targets for bilirubin-induced brain damage.
Area of Science:
- Neuroscience
- Molecular Biology
- Developmental Pediatrics
Background:
- Neonatal jaundice, often due to immature bilirubin processing, can lead to severe hyperbilirubinemia.
- Severe hyperbilirubinemia may cause bilirubin encephalopathy or kernicterus, impacting cognitive and motor functions.
- The precise molecular mechanisms of unconjugated bilirubin (UCB) neurotoxicity remain unclear.
Purpose of the Study:
- To investigate the impact of prolonged UCB exposure on long-term synaptic plasticity in rat hippocampal slice cultures.
- To elucidate the molecular pathways involved in UCB-induced neurotoxicity.
Main Methods:
- Electrophysiological recordings were used to assess long-term potentiation (LTP) and long-term depression (LTD) in hippocampal slices.
- UCB concentrations and exposure times were varied to determine dose- and time-dependent effects.
- Levels of NMDA receptor subunits and inflammatory cytokines were analyzed; calpain activity was assessed.
Main Results:
- UCB exposure impaired LTP and LTD induction in a time- and concentration-dependent manner.
- UCB treatment decreased NMDA receptor subunit levels (NR1, NR2A, NR2B) via calpain-mediated proteolysis.
- No significant changes were observed in pro-inflammatory cytokine secretion or propidium iodide uptake.
Conclusions:
- Calpain-mediated degradation of NMDA receptor subunits is a key mechanism in UCB-induced impairment of hippocampal synaptic plasticity.
- These findings offer novel insights into UCB neurotoxicity and suggest potential therapeutic targets for managing bilirubin-induced brain injury.
Background:
Jaundice is one of the most common problems encountered in newborn infants, due to immaturity of hepatic conjugation and transport processes for bilirubin. Although the majority of neonatal jaundice is benign, some neonates with severe hyperbilirubinemia develop bilirubin encephalopathy or kernicterus. Accumulation of unconjugated bilirubin (UCB) in selected brain regions may result in temporary or permanent impairments of auditory, motor, or cognitive function; however, the molecular mechanisms by which UCB elicits such neurotoxicity are still poorly understood. The present study is undertaken to investigate whether prolonged exposure of rat organotypic hippocampal slice cultures to UCB alters the induction of long-term synaptic plasticity.
Methodology/Principal Findings:
Using electrophysiological recording techniques, we find that exposure of hippocampal slice cultures to clinically relevant concentrations of UCB for 24 or 48 h results in an impairment of CA1 long-term potentiation (LTP) and long-term depression (LTD) induction in a time- and concentration-dependent manner. Hippocampal slice cultures stimulated with UCB show no changes in the secretion profiles of the pro-inflammatory cytokines, interleukin-1beta and tumor necrosis factor-alpha, or the propidium ioide uptake. UCB treatment produced a significant decrease in the levels of NR1, NR2A and NR2B subunits of N-methyl-D-aspartate (NMDA) receptors through a calpain-mediated proteolytic cleavage mechanism. Pretreatment of the hippocampal slice cultures with NMDA receptor antagonist or calpain inhibitors effectively prevented the UCB-induced impairment of LTP and LTD.
Conclusion/Significance:
Our results indicate that the proteolytic cleavage of NMDA receptor subunits by calpain may play a critical role in mediating the UCB-induced impairment of long-term synaptic plasticity in the hippocampus. These observations provide new insights into the molecular mechanisms underlying UCB-induced impairment of hippocampal synaptic plasticity which, in turn, might provide opportunities for the development of novel therapeutic strategies that targets these pathways for treatment.
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