One-carbon metabolism supports S-adenosylmethionine and m6A methylation to control the osteogenesis of bone marrow stem cells and bone formation.

IF 5.1 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM Journal of Bone and Mineral Research Pub Date : 2024-09-02 DOI:10.1093/jbmr/zjae121
Wenjie Zhang, Yujia Bai, Lili Hao, Yiqing Zhao, Lujin Zhang, Wenqian Ding, Yipin Qi, Qiong Xu
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Abstract

The skeleton is a metabolically active organ undergoing continuous remodeling initiated by bone marrow stem cells (BMSCs). Recent research has demonstrated that BMSCs adapt the metabolic pathways to drive the osteogenic differentiation and bone formation, but the mechanism involved remains largely elusive. Here, using a comprehensive targeted metabolome and transcriptome profiling, we revealed that one-carbon metabolism was promoted following osteogenic induction of BMSCs. Methotrexate (MTX), an inhibitor of one-carbon metabolism that blocks S-adenosylmethionine (SAM) generation, led to decreased N6-methyladenosine (m6A) methylation level and inhibited osteogenic capacity. Increasing intracellular SAM generation through betaine addition rescued the suppressed m6A content and osteogenesis in MTX-treated cells. Using S-adenosylhomocysteine (SAH) to inhibit the m6A level, the osteogenic activity of BMSCs was consequently impeded. We also demonstrated that the pro-osteogenic effect of m6A methylation mediated by one-carbon metabolism could be attributed to HIF-1α and glycolysis pathway. This was supported by the findings that dimethyloxalyl glycine rescued the osteogenic potential in MTX-treated and SAH-treated cells by upregulating HIF-1α and key glycolytic enzymes expression. Importantly, betaine supplementation attenuated MTX-induced m6A methylation decrease and bone loss via promoting the abundance of SAM in rat. Collectively, these results revealed that one-carbon metabolite SAM was a potential promoter in BMSC osteogenesis via the augmentation of m6A methylation, and the cross talk between metabolic reprogramming, epigenetic modification, and transcriptional regulation of BMSCs might provide strategies for bone regeneration.

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一碳代谢支持 s-腺苷蛋氨酸和 m6A 甲基化,从而控制 BMSCs 的成骨和骨形成。
骨骼是一个新陈代谢活跃的器官,正在经历由骨髓干细胞(BMSCs)引发的持续重塑。最近的研究表明,骨髓干细胞通过调整代谢途径来驱动成骨分化和骨形成,但其中的机制在很大程度上仍然难以捉摸。在这里,我们利用全面的靶向代谢组和转录组图谱分析发现,一碳代谢在诱导 BMSCs 成骨后得到了促进。甲氨蝶呤(MTX)是一碳代谢的抑制剂,可阻断S-腺苷蛋氨酸(SAM)的生成,导致N6-甲基腺苷(m6A)甲基化水平下降,抑制成骨能力。通过添加甜菜碱来增加细胞内 SAM 的生成,可以缓解 MTX 处理细胞中被抑制的 m6A 含量和成骨能力。使用 S-腺苷高半胱氨酸(SAH)抑制 m6A 水平,BMSCs 的成骨活性也会因此受到阻碍。我们还证明,一碳代谢介导的 m6A 甲基化的促成骨作用可归因于 HIF-1α 和糖酵解途径。二甲基环氧甘氨酸(DMOG)通过上调HIF-1α和关键糖酵解酶的表达,挽救了MTX处理和SAH处理细胞的成骨潜能,这一发现也支持了上述观点。重要的是,补充甜菜碱可通过促进大鼠体内 SAM 的丰度,减轻 MTX 诱导的 m6A 甲基化下降和骨质流失。总之,这些结果揭示了一碳代谢物SAM通过增强m6A甲基化在BMSC成骨过程中的潜在促进作用,而BMSC的代谢重编程、表观遗传修饰和转录调控之间的交叉对话可能为骨再生提供策略。
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来源期刊
Journal of Bone and Mineral Research
Journal of Bone and Mineral Research 医学-内分泌学与代谢
CiteScore
11.30
自引率
6.50%
发文量
257
审稿时长
2 months
期刊介绍: The Journal of Bone and Mineral Research (JBMR) publishes highly impactful original manuscripts, reviews, and special articles on basic, translational and clinical investigations relevant to the musculoskeletal system and mineral metabolism. Specifically, the journal is interested in original research on the biology and physiology of skeletal tissues, interdisciplinary research spanning the musculoskeletal and other systems, including but not limited to immunology, hematology, energy metabolism, cancer biology, and neurology, and systems biology topics using large scale “-omics” approaches. The journal welcomes clinical research on the pathophysiology, treatment and prevention of osteoporosis and fractures, as well as sarcopenia, disorders of bone and mineral metabolism, and rare or genetically determined bone diseases.
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