Caffeine improves mitochondrial dysfunction in the white matter of neonatal rats with hypoxia-ischemia through deacetylation: a proteomic analysis of lysine acetylation

IF 3.5 3区 医学 Q2 NEUROSCIENCES Frontiers in Molecular Neuroscience Pub Date : 2024-04-30 DOI:10.3389/fnmol.2024.1394886
Yajun Zhang, Yuqian Wang, Haiping Dou, Shanshan Wang, Danyang Qu, Xin Peng, Ning Zou, Liu Yang
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Abstract

AimsWhite matter damage (WMD) is linked to both cerebral palsy and cognitive deficits in infants born prematurely. The focus of this study was to examine how caffeine influences the acetylation of proteins within the neonatal white matter and to evaluate its effectiveness in treating white matter damage caused by hypoxia-ischemia.Main methodsWe employed a method combining affinity enrichment with advanced liquid chromatography and mass spectrometry to profile acetylation in proteins from the white matter of neonatal rats grouped into control (Sham), hypoxic-ischemic (HI), and caffeine-treated (Caffeine) groups.Key findingsOur findings included 1,999 sites of lysine acetylation across 1,123 proteins, with quantifiable changes noted in 1,342 sites within 689 proteins. Analysis of these patterns identified recurring sequences adjacent to the acetylation sites, notably YKacN, FkacN, and G *** GkacS. Investigation into the biological roles of these proteins through Gene Ontology analysis indicated their involvement in a variety of cellular processes, predominantly within mitochondrial locations. Further analysis indicated that the acetylation of tau (Mapt), a protein associated with microtubules, was elevated in the HI condition; however, caffeine treatment appeared to mitigate this over-modification, thus potentially aiding in reducing oxidative stress, inflammation in the nervous system, and improving mitochondrial health. Caffeine inhibited acetylated Mapt through sirtuin 2 (SITR2), promoted Mapt nuclear translocation, and improved mitochondrial dysfunction, which was subsequently weakened by the SIRT2 inhibitor, AK-7.SignificanceCaffeine-induced changes in lysine acetylation may play a key role in improving mitochondrial dysfunction and inhibiting oxidative stress and neuroinflammation.
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咖啡因通过去乙酰化改善缺氧缺血新生大鼠白质线粒体功能障碍:赖氨酸乙酰化的蛋白质组学分析
目的早产儿白质损伤(WMD)与脑瘫和认知障碍有关。本研究的重点是探讨咖啡因如何影响新生儿白质中蛋白质的乙酰化,并评估咖啡因治疗缺氧缺血引起的白质损伤的效果。主要方法我们采用亲和富集与高级液相色谱法和质谱法相结合的方法,对新生大鼠白质中的蛋白质进行乙酰化分析,将其分为对照组(Sham)、缺氧缺血组(HI)和咖啡因处理组(Caffeine)。主要发现我们的研究结果包括1,123个蛋白质中的1,999个赖氨酸乙酰化位点,其中689个蛋白质中的1,342个位点发生了可量化的变化。对这些模式的分析发现了邻近乙酰化位点的重复序列,特别是 YKacN、FkacN 和 G *** GkacS。通过基因本体分析对这些蛋白质生物学作用的研究表明,它们参与了多种细胞过程,主要是在线粒体位置。进一步的分析表明,与微管相关的蛋白质 tau(Mapt)的乙酰化在 HI 条件下升高;然而,咖啡因治疗似乎减轻了这种过度修饰,从而可能有助于减少氧化应激、神经系统炎症和改善线粒体健康。咖啡因通过sirtuin 2 (SITR2)抑制乙酰化的Mapt,促进Mapt核转位,改善线粒体功能障碍,随后SIRT2抑制剂AK-7削弱了线粒体功能障碍。
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来源期刊
CiteScore
5.70
自引率
2.10%
发文量
669
审稿时长
14 weeks
期刊介绍: Frontiers in Molecular Neuroscience is a first-tier electronic journal devoted to identifying key molecules, as well as their functions and interactions, that underlie the structure, design and function of the brain across all levels. The scope of our journal encompasses synaptic and cellular proteins, coding and non-coding RNA, and molecular mechanisms regulating cellular and dendritic RNA translation. In recent years, a plethora of new cellular and synaptic players have been identified from reduced systems, such as neuronal cultures, but the relevance of these molecules in terms of cellular and synaptic function and plasticity in the living brain and its circuits has not been validated. The effects of spine growth and density observed using gene products identified from in vitro work are frequently not reproduced in vivo. Our journal is particularly interested in studies on genetically engineered model organisms (C. elegans, Drosophila, mouse), in which alterations in key molecules underlying cellular and synaptic function and plasticity produce defined anatomical, physiological and behavioral changes. In the mouse, genetic alterations limited to particular neural circuits (olfactory bulb, motor cortex, cortical layers, hippocampal subfields, cerebellum), preferably regulated in time and on demand, are of special interest, as they sidestep potential compensatory developmental effects.
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