H3K4me3
甜菜碱
神经保护
生物
表观遗传学
甲基转移酶
组蛋白H3
染色质免疫沉淀
细胞生物学
生物化学
神经科学
甲基化
基因表达
基因
发起人
作者
Naveen Kumar Singhal,Sarah Sternbach,Sheila M. Fleming,Kholoud Alkhayer,John Shelestak,Daniela C. Popescu,Alyx Weaver,Robert J. Clements,Brandi Wasek,Teodoro Bottiglieri,Ernest J. Freeman,Jennifer McDonough
出处
期刊:Epigenetics
[Landes Bioscience]
日期:2020-02-25
卷期号:15 (8): 871-886
被引量:42
标识
DOI:10.1080/15592294.2020.1735075
摘要
Methionine metabolism is dysregulated in multiple sclerosis (MS). The methyl donor betaine is depleted in the MS brain where it is linked to changes in levels of histone H3 trimethylated on lysine 4 (H3K4me3) and mitochondrial impairment. We investigated the effects of replacing this depleted betaine in the cuprizone mouse model of MS. Supplementation with betaine restored epigenetic control and alleviated neurological disability in cuprizone mice. Betaine increased the methylation potential (SAM/SAH ratio), levels of H3K4me3, enhanced neuronal respiration, and prevented axonal damage. We show that the methyl donor betaine and the betaine homocysteine methyltransferase (BHMT) enzyme can act in the nucleus to repair epigenetic control and activate neuroprotective transcriptional programmes. ChIP-seq data suggest that BHMT acts on chromatin to increase the SAM/SAH ratio and histone methyltransferase activity locally to increase H3K4me3 and activate gene expression that supports neuronal energetics. These data suggest that the methyl donor betaine may provide neuroprotection in MS where mitochondrial impairment damages axons and causes disability.
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