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Updated: Jan 31, 2026

Evaluation of Synapse Density in Hippocampal Rodent Brain Slices
Published on: October 6, 2017
Developmental lead (Pb)-induced deficits in hippocampal protein translation at the synapses are ameliorated by
Faraz Ahmad1, Mohammad Salahuddin2, Khaldoon Alsamman3
1School of Life Science, BS Abdur Rahman Crescent Institute of Science & Technology, Vandulur, Chennai 600048, India, farazahmad.sls@crescent.education.
Insights
Developmental lead (Pb) exposure impairs synapse-specific protein translation, impacting brain function. Ascorbic acid (vitamin C) supplementation shows promise in mitigating these Pb-induced neurotoxic effects.
Area of Science:
- Neuroscience
- Developmental Biology
- Toxicology
Background:
- Lead (Pb) is a potent neurotoxin, particularly harmful to the developing brain, causing lasting cognitive and behavioral deficits.
- Pb exposure disrupts neuronal signaling via oxidative stress, neurotransmitter alterations, and mitochondrial dysfunction.
- Synaptic function relies on localized protein translation, a process potentially disrupted by Pb.
Purpose of the Study:
- To investigate the impact of developmental lead exposure on synapse-specific protein translation.
- To evaluate the efficacy of ascorbic acid supplementation in counteracting lead-induced deficits in synaptic translation.
Main Methods:
- Assessed in vitro protein translation rates in hippocampal synaptoneurosomes of rat pups exposed to lead.
- Utilized a puromycin incorporation assay to measure de novo protein synthesis.
- Administered ascorbic acid to assess its therapeutic effects on lead-induced translational impairments.
Main Results:
- Lead exposure significantly reduced de novo protein translation rates in synaptoneurosomes.
- Ascorbic acid supplementation partially restored lead-induced deficits in synaptic protein translation.
- A significant correlation was observed between increased blood lead levels and impaired activity-dependent synaptic translation.
Conclusions:
- Disruption of synapse-localized protein translation is a key mechanism underlying lead-induced neurotoxicity and associated behavioral deficits.
- Ascorbic acid (vitamin C) emerges as a potential therapeutic agent for mitigating lead's neurotoxic effects.
Background:
Lead (Pb) is a persistent environmental neurotoxin and its exposure even in minute quantities has been known to induce neuronal defects. The immature brain is singularly sensitive to Pb neurotoxicity, and its exposure during development has permanent detrimental effects on the brain developmental trajectory and neuronal signaling and plasticity, culminating into compromises in the cognitive and behavioral attributes which persists even later in adulthood. Several molecular pathways have been implicated in the Pb-mediated disruption of neuronal signaling, including elevated oxidative stress, alterations in neurotransmitter biology, and mitochondrial dysfunction. Nevertheless, the neuronal targets and biochemical pathways underlying these Pb-mediated alterations in synaptic development and function have not been completely deduced. In this respect, recent studies have shown that synaptic signaling and its maintenance and plasticity are critically dependent on localized de novo protein translation at the synaptic terminals.
Materials And Methods:
The present study hence aimed to assess the alterations in the synapse-specific translation induced by developmental Pb exposure. To this end, in vitro protein translation rate was analyzed in the hippocampal synaptoneurosomal fractions of rat pups pre- and postnatally exposed to Pb using a puromycin incorporation assay. Moreover, we evaluated the therapeutic effects of ascorbic acid supplementation against Pb-induced deficits in synapse-localized protein translation.
Results:
We observed a significant loss in the rates of de novo protein translation in synaptoneurosomes of Pb-exposed pups compared to age-matched control pups. Interestingly, ascorbate supplementation lead to an appreciable recovery in Pb-induced translational deficits. Moreover, the deficit in activity-dependent synaptic protein translation was found to correlate significantly with the increase in the blood Pb levels.
Conclusion:
Dysregulation of synapse-localized de novo protein translation is a potentially critical determinant of Pb-induced synaptic dysfunction and the consequent deficits in behavioral, social, and psychological attributes of the organisms. In addition, our study establishes ascorbate supplementation as a key ameliorative agent against Pb-induced neurotoxicity.
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