Folic acid protects against age-associated apoptosis and telomere attrition of neural stem cells in senescence-accelerated mouse prone 8.

IF 2.4 4区 医学 Q3 NUTRITION & DIETETICS Applied Physiology, Nutrition, and Metabolism Pub Date : 2023-05-01 DOI:10.1139/apnm-2022-0111
Zhenshu Li, Ke Cai, Yue Sun, Dezheng Zhou, Jing Yan, Suhui Luo, Guowei Huang, Yuxia Gao, Wen Li
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Abstract

Folic acid (FA) could improve cognitive performance and attenuate brain cell injury in the aging brain; FA supplementation is also associated with inhibiting neural stem cell (NSC) apoptosis. However, its role in age-associated telomere attrition remains unclear. We hypothesized that FA supplementation attenuates age-associated apoptosis of NSCs in mice via alleviating telomere attrition in senescence-accelerated mouse prone 8 (SAMP8). In this study, 4-month-old male SAMP8 mice were assigned equal numbers to four different diet groups (n = 15). Fifteen age-matched senescence-accelerated mouse resistant 1 mice, fed with the FA-normal diet, were used as the standard aging control group. After FA treatment for 6 months, all mice were sacrificed. NSC apoptosis, proliferation, oxidative damage, and telomere length were evaluated by immunofluorescence and Q-fluorescent in situ hybridization. The results showed that FA supplementation inhibited age-associated NSC apoptosis and prevented telomere attrition in the cerebral cortex of SAMP8 mice. Importantly, this effect might be explained by the decreased levels of oxidative damage. In conclusion, we demonstrate it may be one of the mechanisms by which FA inhibits age-associated NSC apoptosis by alleviating telomere length shortening.

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叶酸可防止衰老加速小鼠神经干细胞的衰老相关凋亡和端粒磨损8。
叶酸(FA)能改善衰老大脑的认知能力,减轻脑细胞损伤;补充FA还与抑制神经干细胞(NSC)凋亡有关。然而,它在与年龄相关的端粒磨损中的作用仍不清楚。我们假设补充FA通过减轻衰老加速小鼠的端粒磨损8 (SAMP8)来减轻小鼠NSCs的年龄相关凋亡。在这项研究中,4个月大的雄性SAMP8小鼠被分配到四个不同的饮食组(n = 15)。15只年龄匹配的抗衰老加速小鼠,饲喂FA-normal饮食,作为标准衰老对照组。FA治疗6个月后,处死所有小鼠。采用免疫荧光和q -荧光原位杂交技术观察细胞的凋亡、增殖、氧化损伤和端粒长度。结果表明,补充FA可抑制SAMP8小鼠大脑皮层中与年龄相关的NSC凋亡,防止端粒磨损。重要的是,这种影响可以用氧化损伤水平的降低来解释。总之,我们证明这可能是FA通过减轻端粒长度缩短来抑制年龄相关的NSC凋亡的机制之一。
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来源期刊
CiteScore
6.50
自引率
2.90%
发文量
113
审稿时长
4-8 weeks
期刊介绍: Applied Physiology, Nutrition, and Metabolism publishes original research articles, reviews, and commentaries, focussing on the application of physiology, nutrition, and metabolism to the study of human health, physical activity, and fitness. The published research, reviews, and symposia will be of interest to exercise physiologists, physical fitness and exercise rehabilitation specialists, public health and health care professionals, as well as basic and applied physiologists, nutritionists, and biochemists.
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