Minocycline protects against neuronal mitochondrial dysfunction and cognition impairment.

IF 1.4 4区 医学 Q4 NEUROSCIENCES
Majid Motaghinejad, Manijeh Motevalian, Luis Ulloa, Neda Kaviani, Emre Hamurtekin
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引用次数: 0

Abstract

The potential of minocycline to protect against methylphenidate‑induced neurodegeneration has been extensively reported in the literature but the mechanism of action is still unknown. This study aims to determine the role of mitochondrial chain enzymes and redox homeostasis on the neuroprotective effects of minocycline in methylphenidate‑induced neurodegeneration. Wistar adult male rats were randomly assigned to the seven experimental groups: Group 1 received saline solution; Group 2 received methylphenidate (10 mg/kg, i.p.); Groups 3, 4, 5, and 6 received methylphenidate and minocycline for 21 days; Group 7 received minocycline alone. Cognition was evaluated with the Morris water maze test. Activity of the hippocampal mitochondrial quadruple complexes I, II, III and IV, mitochondrial membrane potential, adenosine triphosphate (ATP) levels, total antioxidant capacity, and reactive oxygen species were determined. Treatment with minocycline inhibited methylphenidate‑induced cognitive dysfunction. Minocycline treatment increased mitochondrial quadruple complex activities, mitochondrial membrane potential, total antioxidant capacity, and ATP levels in the dentate gyrus and cornu ammonis‑1 (CA1) areas of the hippocampus. Minocycline is likely to confer neuroprotection against methylphenidate‑induced neurodegeneration and cognition impairment by regulating mitochondrial activity and oxidative stress.

二甲胺四环素可防止神经元线粒体功能障碍和认知障碍。
米诺环素对哌醋甲酯诱导的神经退行性疾病的潜在保护作用已在文献中广泛报道,但其作用机制尚不清楚。本研究旨在确定线粒体链酶和氧化还原稳态在米诺环素对哌甲酯诱导的神经变性的神经保护作用中的作用。Wistar成年雄性大鼠随机分为7个实验组:1组给予生理盐水;2组给予哌甲酯(10 mg/kg, ig);3、4、5、6组分别给予哌甲酯和米诺环素治疗,疗程21 d;第7组单独使用米诺环素。用Morris水迷宫测验评估认知能力。测定海马线粒体四重复合体I、II、III和IV的活性、线粒体膜电位、三磷酸腺苷(ATP)水平、总抗氧化能力和活性氧种类。米诺环素治疗可抑制哌甲酯诱导的认知功能障碍。米诺环素处理增加了海马齿状回和角氨1 (CA1)区的线粒体四重复合物活性、线粒体膜电位、总抗氧化能力和ATP水平。米诺环素可能通过调节线粒体活性和氧化应激,对哌醋甲酯诱导的神经变性和认知障碍具有神经保护作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.20
自引率
7.10%
发文量
40
审稿时长
>12 weeks
期刊介绍: Acta Neurobiologiae Experimentalis (ISSN: 0065-1400 (print), eISSN: 1689-0035) covers all aspects of neuroscience, from molecular and cellular neurobiology of the nervous system, through cellular and systems electrophysiology, brain imaging, functional and comparative neuroanatomy, development and evolution of the nervous system, behavior and neuropsychology to brain aging and pathology, including neuroinformatics and modeling.
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