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Updated: Feb 8, 2026

Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
Naringin Mitigates Synergistic Brain Aging Model Induced by D-Galactose and Gamma Radiation via Targeting Oxidative
Mahmoud E Habieb1, Fatma Y Abdou1, Marwa A Mohamed1
1Drug Radiation Research Department, National Center for Radiation Research and Technology (NCRRT), Egyptian Atomic Energy Authority (EAEA), Cairo, Egypt.
Abstract:
Brain aging is a multifactorial process driven by oxidative stress, chronic inflammation, and cellular senescence, culminating in neurodegeneration and cognitive decline. In this study, we established a robust aging model by synergistically combining d-galactose and acute gamma-irradiation (6 Gy), intensified senescence-associated phenotypes in rat brain tissue. Rats were divided into four groups: Group I: negative control; group II (naringin-treated): rats were given naringin (50 mg/kg; p.o.) for 1 week; group III (Rad+ D-galactose): rats were exposed to whole-body gamma radiation (6 Gy) and then received D-galactose (300 mg/kg b. wt. i.p.) for 7 days; group IV (Rad+ D-galactose+ naringin): as in group III, then naringin (50 mg/kg b. wt. p.o.) for 1 week. This model exhibited elevated levels in IL-6, TNF-α, p16INK4A, p21CIP1 and retinoblastoma protein (Rb) levels, as well as upregulated NF-κBp65 protein expression in brain tissue. Remarkably, naringin supplementation reversed the pathological signatures, restoring antioxidant balance, suppressing inflammatory mediators, and modulating apoptotic pathways. Histological hallmarks such as gliosis, neurophagia, and pyknosis, as well as immunohistological staining of caspase-3 and p53 expression, confirmed the aforementioned consequences. Collectively, these findings highlight naringin's therapeutic potential in mitigating brain aging by targeting oxidative stress, inflammation, and apoptosis. This study offers a robust experimental framework for investigating senescence and supports naringin as a promising candidate for intervention in age-related neurodegenerative disorders.
Insights
Naringin effectively combats brain aging by reducing oxidative stress, inflammation, and apoptosis in a rat model. This study highlights naringin
Area of Science:
- Neuroscience and Aging Research
- Pharmacology and Therapeutics
- Cellular Biology and Senescence
Background:
- Brain aging involves oxidative stress, inflammation, and senescence, leading to neurodegeneration.
- A robust rat model for brain aging was developed using D-galactose and gamma irradiation.
- This model exhibits key senescence-associated phenotypes and molecular markers.
Purpose of the Study:
- To investigate the therapeutic potential of naringin in mitigating age-related brain damage.
- To evaluate naringin's effects on oxidative stress, inflammation, and apoptosis in an aging rat model.
- To establish a reliable experimental framework for studying brain senescence.
Main Methods:
- Rats were divided into control, naringin-treated, radiation+D-galactose, and radiation+D-galactose+naringin groups.
- The aging model involved synergistic administration of D-galactose and gamma irradiation (6 Gy).
- Naringin (50 mg/kg) was administered orally to assess its protective effects.
Main Results:
- The aging model showed increased levels of IL-6, TNF-α, p16INK4A, p21CIP1, Rb, and NF-κBp65.
- Naringin supplementation reversed these pathological changes, restoring antioxidant balance and suppressing inflammation.
- Histological analysis confirmed reduced gliosis, neurophagia, pyknosis, and modulated caspase-3 and p53 expression.
Conclusions:
- Naringin demonstrates significant therapeutic potential in counteracting brain aging.
- Naringin mitigates brain aging by targeting key pathways including oxidative stress, inflammation, and apoptosis.
- This research supports naringin as a promising candidate for interventions in age-related neurodegenerative disorders.
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