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Vitamin E and Its Molecular Effects in Experimental Models of Neurodegenerative Diseases
Bianca Caroline da Cunha Germano1, Lara Cristina Carlos de Morais2,3, Francisca Idalina Neta3,4
1Postgraduate Program in Science Applied to Women's Health, Federal University of Rio Grande do Norte (UFRN), Natal 59072-970, Brazil.
Abstract:
With the advancement of in vivo studies and clinical trials, the pathogenesis of neurodegenerative diseases has been better understood. However, gaps still need to be better elucidated, which justifies the publication of reviews that explore the mechanisms related to the development of these diseases. Studies show that vitamin E supplementation can protect neurons from the damage caused by oxidative stress, with a positive impact on the prevention and progression of neurodegenerative diseases. Thus, this review aims to summarize the scientific evidence of the effects of vitamin E supplementation on neuroprotection and on neurodegeneration markers in experimental models. A search for studies published between 2000 and 2023 was carried out in the PubMed, Web of Science, Virtual Health Library (BVS), and Embase databases, in which the effects of vitamin E in experimental models of neurodegeneration were investigated. A total of 5669 potentially eligible studies were identified. After excluding the duplicates, 5373 remained, of which 5253 were excluded after checking the titles, 90 articles after reading the abstracts, and 11 after fully reviewing the manuscripts, leaving 19 publications to be included in this review. Experiments with in vivo models of neurodegenerative diseases demonstrated that vitamin E supplementation significantly improved memory, cognition, learning, motor function, and brain markers associated with neuroregeneration and neuroprotection. Vitamin E supplementation reduced beta-amyloid (Aβ) deposition and toxicity in experimental models of Alzheimer's disease. In addition, it decreased tau-protein hyperphosphorylation and increased superoxide dismutase and brain-derived neurotrophic factor (BDNF) levels in rodents, which seems to indicate the potential use of vitamin E in preventing and delaying the progress of degenerative lesions in the central nervous system.
Insights
Vitamin E supplementation shows promise in protecting brain cells from oxidative stress and improving cognitive functions. This review highlights its potential in preventing and slowing neurodegenerative diseases like Alzheimer's.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Neurodegenerative diseases pathogenesis is increasingly understood through in vivo studies and clinical trials.
- Oxidative stress contributes to neuronal damage in neurodegenerative conditions.
- Vitamin E demonstrates neuroprotective properties against oxidative stress.
Purpose of the Study:
- To review scientific evidence on vitamin E supplementation's effects on neuroprotection.
- To evaluate vitamin E's impact on neurodegeneration markers in experimental models.
Main Methods:
- Systematic literature search conducted in PubMed, Web of Science, BVS, and Embase databases.
- Studies published between 2000 and 2023 investigating vitamin E in experimental neurodegeneration models were included.
- Rigorous exclusion criteria applied, resulting in 19 publications for the review.
Main Results:
- Vitamin E supplementation improved memory, cognition, learning, and motor function in vivo models.
- It reduced beta-amyloid (Aβ) deposition and toxicity in Alzheimer's disease models.
- Vitamin E decreased tau-protein hyperphosphorylation and increased superoxide dismutase and BDNF levels.
Conclusions:
- Vitamin E supplementation exhibits significant neuroprotective effects in experimental models.
- It holds potential for preventing and delaying the progression of central nervous system degenerative lesions.
- Further research into vitamin E's therapeutic role in neurodegenerative diseases is warranted.
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