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Melatonin Attenuates Histopathological Changes in the Hippocampus of Infantile Rats with Kaolin-Induced Hydrocephalus
Mehmet Turgut1, Meral Baka2, Yiğit Uyanıkgil2,3
1Department of Neurosurgery, Adnan Menderes University School of Medicine, Aydın, Turkey.
Insights
Melatonin treatment partially reversed hydrocephalus-induced hippocampal damage in infantile rats. This neuroprotective effect suggests melatonin may help mitigate neurological disorders like hydrocephalus.
Area of Science:
- Neuroscience
- Pediatric Neurology
- Pharmacology
Background:
- Hydrocephalus is a neurological disorder causing ventricular enlargement in children.
- The impact of melatonin on hydrocephalus has not been fully understood.
- Investigating melatonin's effects on hydrocephalus-induced hippocampal changes is crucial.
Purpose of the Study:
- To investigate the effects of exogenous melatonin on hydrocephalus-induced hippocampal changes in infantile rats.
- To assess melatonin's neuroprotective potential in a pediatric hydrocephalus model.
Main Methods:
- 45 infantile rats were divided into control, hydrocephalus (kaolin-induced), and hydrocephalus plus melatonin groups.
- Melatonin (0.5 mg/100 g) was administered to the treatment group.
- Immunohistochemistry (GFAP) and TUNEL assay were used to evaluate histopathological and apoptotic changes in the hippocampus.
Main Results:
- Melatonin significantly reduced histopathological changes in the hippocampus of hydrocephalic rats.
- Melatonin treatment decreased apoptotic cells and pyknotic index values compared to saline treatment (p < 0.001).
Conclusions:
- Melatonin demonstrated neuroprotective effects, partially reversing hydrocephalus-induced hippocampal damage in infantile rats.
- These findings suggest melatonin's therapeutic potential for hydrocephalus.
- Further experimental studies and clinical trials are needed to confirm these results.
Objective/Aim:
Hydrocephalus is defined as an incapacitating neurological disorder characterized by ventricular enlargement in children, but the effects of melatonin on this hydrocephalus have not yet been fully elucidated. In the present experiment, we attempted to investigate the effects of exogenous melatonin administration on hydrocephalus-induced hippocampal changes in infantile rats.
Methods:
In this study, we randomly divided 45 Swiss albino rats aged 2 weeks into 3 groups: group I, the control group received a sham injection with needle insertion only; groups II and III were given kaolin injections before treatment - group II, the hydrocephalus group, was treated with an isotonic NaCl solution, and group III, the hydrocephalus plus melatonin group, was treated with 0.5 mg/100 g body weight of exogenous melatonin. Both immunohistochemical and histological analyses were performed after hydrocephalus induction and melatonin administration. Immunohistochemical staining consisted anti-glial fibrillary acidic protein staining. The TUNEL technique was used for defining quantitate apoptosis.
Results:
Melatonin administration significantly attenuated chronic hydrocephalus-induced histopathological changes in the hippocampal subregions of infantile rats. Compared to hydrocephalic rats treated with saline solution, melatonin significantly decreased the number of apoptotic cells and pyknotic index values of each hippocampal subregion after the kaolin-induced hydrocephalus (p < 0.001).
Conclusion:
The present results demonstrate that the chronic hydrocephalus-induced histopathological changes in the hippocampus were partially reversible with melatonin treatment, suggesting its neuroprotective effects in infantile rats. However, these findings need to be confirmed by further experimental studies and clinical trials.
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