首页> 外文期刊>Molecular and Cellular Biochemistry: An International Journal for Chemical Biology >The m6A methyltransferase METTL3 cooperates with demethylase ALKBH5 to regulate osteogenic differentiation through NF-kappa B signaling
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The m6A methyltransferase METTL3 cooperates with demethylase ALKBH5 to regulate osteogenic differentiation through NF-kappa B signaling

机译:M6A甲基转移酶MetT13与脱甲基酶AlkBH5配合,以通过NF-Kappa B信号调节骨质发生分化

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摘要

As a m6A methylation modifier, METTL3 is functionally involved in various biological processes. Nevertheless, the role of METTL3 in osteogenesis is not determined up to date. In the current study, METTL3 is identified as a crucial regulator in the progression of osteogenic differentiation. Loss of METTL3 significantly augments calcium deposition and enhances alkaline phosphatase activity of mesenchymal stem cells, uncovering an inhibitory role of METTL3 in osteogenesis. More importantly, the underlying molecular basis by which METTL3 regulates osteogenesis is illustrated. We find that METTL3 positively regulates expression of MYD88, a critical upstream regulator of NF-kappa B signaling, by facilitating m6A methylation modification to MYD88-RNA, subsequently inducing the activation of NF-kappa B which is widely regarded as a repressor of osteogenesis and therefore suppressing osteogenic progression. Moreover, the METTL3-mediated m6A methylation is found to be dynamically reversed by the demethylase ALKBH5. In summary, this study highlights the functional importance of METTL3 in osteogenic differentiation and METTL3 may serve as a promising molecular target in regenerative medicine, as well as in the field of bone tissue engineering.
机译:作为M6A甲基化改性剂,MetT13在功能上涉及各种生物过程。然而,MetT13在成骨中的作用未确定迄今为止。在目前的研究中,MetT13被鉴定为骨质发生分化进展中的关键调节剂。 MetT1的丧失显着增强了钙沉积并增强了间充质干细胞的碱性磷酸酶活性,揭示了MetT13在骨质发生中的抑制作用。更重要的是,MetT13调节骨发生的潜在分子基础进行说明。我们发现MetT13通过促进M6A甲基化改性对MyD88-RNA促进M6A甲基化改性,促使NF-Kappa B信号传导的关键上游调节剂的表达持续调节MyD88的表达,随后诱导NF-Kappa B的激活,这被广泛地被视为骨肉的阻遏物和骨质发生的阻遏物和因此抑制了骨质发生的进展。此外,发现MetT13介导的M6A甲基化被去甲基酶ALKBH5动态反转。总之,本研究强调了MetT13在成骨分化中的功能重要性,MetT13可以作为再生医学的有希望的分子靶点,以及骨组织工程领域。

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