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The Effect of Glutathione Deficit During Early Postnatal Brain Development on the Prepulse Inhibition and Monoamine
Zofia Rogóż1, Marta A Lech1, Katarzyna Chamera2
1Department of Pharmacology, Maj Institute of Pharmacology, Polish Academy of Sciences, 12 Smętna Street, Kraków, Poland.
Insights
Impaired glutathione synthesis and dopamine system function are linked to schizophrenia. Combined treatment with a glutathione synthesis inhibitor (BSO) and a dopamine uptake inhibitor (GBR 12,909) did not significantly impair prepulse inhibition in rats.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Schizophrenia pathophysiology involves impaired glutathione synthesis and dopaminergic transmission.
- Oxidative stress in neurons may contribute to cognitive and memory deficits.
Purpose of the Study:
- To investigate the effects of glutathione synthesis inhibition and dopamine uptake inhibition on prepulse inhibition (PPI) in rats.
- To assess the impact of these treatments on monoamine levels in the rat brain.
Main Methods:
- Postnatal administration of L-buthionine-(S,R)-sulfoximine (BSO) and GBR 12,909 to male rat pups.
- Evaluation of prepulse inhibition of the acoustic startle response in adult rats.
- Measurement of monoamine levels in the cortex and hippocampus at different ages.
Main Results:
- BSO administration alone showed a tendency to decrease PPI.
- Combined BSO and GBR 12,909 treatment did not induce significant PPI deficits.
- Individual treatments weakly increased monoamine system activity; combined treatment maintained normal activity.
- The frontal cortex of young rats was most sensitive to glutathione deficiency-induced oxidative stress.
Conclusions:
- Combined inhibition of glutathione synthesis and dopamine uptake may mitigate negative effects on PPI and monoamine systems.
- Early-life glutathione deficiency, particularly in the frontal cortex, can lead to oxidative stress and potential cognitive impairments.
Abstract:
Recent studies suggest that impaired glutathione synthesis and distorted dopaminergic transmission are important factors in the pathophysiology of schizophrenia. In the present study, on the postnatal days p5-p16, male pups were treated with the inhibitor of glutathione synthesis, L-buthionine-(S,R)- sulfoximine (BSO, 3.8 or 7.6 mmol/kg), and the dopamine uptake inhibitor, GBR 12,909 (5 mg/kg) alone or in combination, and prepulse inhibition of the acoustic startle response (PPI) was evaluated in adult 90-day-old rats. Moreover, the monoamine levels in the cortex and hippocampus of 16-day-old rats or 91-day-old rats were measured. The present results showed that administration of BSO at 3.8 mmol/kg led to a decreasing tendency in PPI for all tested prepulse intensities. In contrast, a combined treatment with BSO in both studied doses and GBR 12,909 did not induce significant deficits in PPI. Moreover, the results of biochemical studies indicated that treatment with BSO or GBR 12,909 alone induced a weak increase in the activity of dopaminergic, serotonergic, and noradrenergic systems in the frontal cortex and hippocampus of 16-day-old rats and 91-day-old rats. However, the combined administration of both substances allowed for maintaining the normal activity of monoaminergic systems in the rat brain. The most significant changes in the functioning of monoaminergic systems were observed in the frontal cortex of 16-day-old rats. Therefore, it seems that the frontal cortex of rat puppies is most sensitive to glutathione deficiencies resulting in increased oxidative stress in neurons. As a result, it can lead to cognitive and memory impairment.
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