Dynamic Proteome Changes in Cuprizone-Induced Demyelination and Remyelination in the Mouse Brain.

IF 3.8 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Rong-Fang Gu, Xiaoping Hronowski, Zhaohui Shao, Benbo Gao, Kayla Soucey, Fangxu Sun, Hui-Hsin Tsai, Ru Wei
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引用次数: 0

Abstract

This study aimed to gain insights into the dynamic proteome changes and underlying molecular mechanisms of de/remyelination in a cuprizone model, a widely used preclinical model of multiple sclerosis (MS). Longitudinal sampling of control or cuprizone-treated mouse brains was executed at 6 time points over 6 weeks. Data analysis included 8489 quantified proteins. Differential proteomic and GO analyses revealed that 5.9% of the quantified proteome was altered, including reported and novel de/remyelination-relevant protein changes and underlying pathways. We found that oligodendrocyte proteins (Fa2h and Ugt8) were significantly changed during demyelination, suggesting that dysregulated sphingolipid metabolism in MS may stem from oligodendrocyte pathology. Importantly, we showed that the cholesterol biosynthesis pathway was the most enriched biological process in a subset of significantly changed proteins, where myelination was highly enriched. We further validated the changes in the cholesterol biosynthesis pathway through targeted GC-MS analysis of intermediate sterols, supporting the critical role of cholesterol biosynthesis in de/remyelination. Unexpectedly, changes of myelin-associated proteins, Mbp and Plp1, were minimal, while Ermn showed significant reduction tracking with demyelination, indicating that some myelin protein changes are more sensitive to demyelination. Together with a list of significantly altered proteins, the results of this study could benefit future remyelination research.

铜酮诱导小鼠大脑脱髓鞘和再髓鞘的动态蛋白质组变化。
本研究旨在深入了解cuprizone模型(一种广泛应用于多发性硬化症(MS)的临床前模型)中脱髓鞘的动态蛋白质组变化和潜在的分子机制。在6周内的6个时间点对对照或铜酮处理的小鼠大脑进行纵向采样。数据分析包括8489个定量蛋白。差异蛋白质组学和氧化石墨烯分析显示,5.9%的定量蛋白质组发生了改变,包括报道的和新的脱髓鞘相关的蛋白质变化和潜在的途径。我们发现少突胶质细胞蛋白(Fa2h和Ugt8)在脱髓鞘过程中发生显著变化,提示MS鞘脂代谢失调可能源于少突胶质细胞病理。重要的是,我们发现胆固醇生物合成途径是显著改变的蛋白质子集中最富集的生物过程,其中髓鞘形成高度富集。我们通过对中间甾醇的靶向GC-MS分析进一步验证了胆固醇生物合成途径的变化,支持胆固醇生物合成在脱髓鞘/再髓鞘形成中的关键作用。出乎意料的是,髓磷脂相关蛋白Mbp和Plp1的变化很小,而Ermn在脱髓鞘过程中表现出明显的减少,这表明一些髓磷脂蛋白的变化对脱髓鞘更敏感。与一系列显著改变的蛋白质一起,这项研究的结果可能有益于未来的髓鞘再生研究。
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来源期刊
Journal of Proteome Research
Journal of Proteome Research 生物-生化研究方法
CiteScore
9.00
自引率
4.50%
发文量
251
审稿时长
3 months
期刊介绍: Journal of Proteome Research publishes content encompassing all aspects of global protein analysis and function, including the dynamic aspects of genomics, spatio-temporal proteomics, metabonomics and metabolomics, clinical and agricultural proteomics, as well as advances in methodology including bioinformatics. The theme and emphasis is on a multidisciplinary approach to the life sciences through the synergy between the different types of "omics".
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