甲磺酸倍他司汀可减少蓝光照射对果蝇模型的伤害

IF 3.9 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of photochemistry and photobiology. B, Biology Pub Date : 2024-08-10 DOI:10.1016/j.jphotobiol.2024.113009
Xiangyu Li, Zhiwei Zhao, Jianan He, Jie Shen
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引用次数: 0

摘要

以往的研究表明,甲磺酸倍他司汀在治疗眩晕和血管神经性头痛、增强微循环和促进组胺释放方面具有疗效。然而,有关该药物在减轻蓝光诱导的损伤方面的潜力的研究还很有限。因此,本研究以果蝇为模式生物,采用 Siler 模型,研究在 3000 lx 蓝光照射下,不同浓度的甲磺酸倍他司汀对果蝇寿命的影响。同时,我们还测量了果蝇的食物摄入量、自发活动和睡眠时间。研究结果表明,高浓度的甲磺酸倍他司汀能降低雄蝇的初始死亡率(b0),减轻蓝光对果蝇的伤害。因此,这可以延缓雄果蝇的衰老过程,延长其平均寿命。摄入甲磺酸倍他司汀后,雄果蝇在蓝光照射下的运动活动显著减少。总之,这项研究为研究甲磺酸倍他司汀对寿命的调节机制及其潜在的抗蓝光效应提供了初步证据。
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Betahistine mesylate reduces the damage of blue light exposure in Drosophila model

Previous studies have demonstrated the efficacy of betahistine mesylate in treating vertigo and angioneurotic headache, enhancing microcirculation, and facilitating histamine release. However, limited research has been conducted on the drug's potential in mitigating blue light-induced damage. Thus, this study utilized Drosophila as the model organism and employed the Siler model to investigate the impact of various concentrations of betahistine mesylate on the lifespan, under 3000 lx blue light irradiation. At the same time we measure food intake, spontaneous activity, and sleep duration of Drosophila. The findings of this study indicate that a high concentration of betahistine mesylate can decrease the initial mortality (b0) in male flies, mitigating the damage of blue light to Drosophila. Consequently, this delays the aging process in male Drosophila and extends their average lifespan. After betahistine mesylate ingestion, locomotor activity upon blue light exposure decreased significantly in male Drosophila. In conclusion, this study offers initial evidence supporting the investigation of the regulatory mechanisms of betahistine mesylate on lifespan and its potential anti-blue light effects.

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来源期刊
CiteScore
12.10
自引率
1.90%
发文量
161
审稿时长
37 days
期刊介绍: The Journal of Photochemistry and Photobiology B: Biology provides a forum for the publication of papers relating to the various aspects of photobiology, as well as a means for communication in this multidisciplinary field. The scope includes: - Bioluminescence - Chronobiology - DNA repair - Environmental photobiology - Nanotechnology in photobiology - Photocarcinogenesis - Photochemistry of biomolecules - Photodynamic therapy - Photomedicine - Photomorphogenesis - Photomovement - Photoreception - Photosensitization - Photosynthesis - Phototechnology - Spectroscopy of biological systems - UV and visible radiation effects and vision.
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