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三唑连接的 SAM-腺苷缀合物的合成:无保护基在 N-1 或 N-6 位对腺苷进行功能化。

Synthesis of Triazole-Linked SAM-Adenosine Conjugates: Functionalization of Adenosine at N-1 or N-6 Position without Protecting Groups.

机构信息

Laboratoire de Chimie et Biochimie Pharmacologiques et Toxicologiques, Université de Paris, CNRS UMR 8601, F-75006 Paris, France.

出版信息

Molecules. 2020 Jul 16;25(14):3241. doi: 10.3390/molecules25143241.

Abstract

More than 150 RNA chemical modifications have been identified to date. Among them, methylation of adenosine at the N-6 position (mA) is crucial for RNA metabolism, stability and other important biological events. In particular, this is the most abundant mark found in mRNA in mammalian cells. The presence of a methyl group at the N-1 position of adenosine (mA) is mostly found in ncRNA and mRNA and is mainly responsible for stability and translation fidelity. These modifications are installed by mA and mA RNA methyltransferases (RNA MTases), respectively. In human, deregulation of mA RNA MTases activity is associated with many diseases including cancer. To date, the molecular mechanism involved in the methyl transfer, in particular substrate recognition, remains unclear. We report the synthesis of new SAM-adenosine conjugates containing a triazole linker branched at the N-1 or N-6 position of adenosine. Our methodology does not require protecting groups for the functionalization of adenosine at these two positions. The molecules described here were designed as potential bisubstrate analogues for mA and mA RNA MTases that could be further employed for structural studies. This is the first report of compounds mimicking the transition state of the methylation reaction catalyzed by mA RNA MTases.

摘要

迄今为止,已经鉴定出超过 150 种 RNA 化学修饰。其中,腺苷在 N-6 位的甲基化(m6A)对 RNA 代谢、稳定性和其他重要的生物学事件至关重要。特别是,这是在哺乳动物细胞的 mRNA 中发现的最丰富的标记。在腺苷的 N-1 位上存在甲基(m1A)主要存在于 ncRNA 和 mRNA 中,主要负责稳定性和翻译保真度。这些修饰分别由 mA 和 mA RNA 甲基转移酶(RNA MTases)安装。在人类中,mA RNA MTases 活性的失调与包括癌症在内的许多疾病有关。迄今为止,涉及甲基转移的分子机制,特别是底物识别,仍然不清楚。我们报告了新的 SAM-腺苷缀合物的合成,这些缀合物在腺苷的 N-1 或 N-6 位上带有三唑连接子。我们的方法不需要对腺苷的这两个位置进行保护基团的功能化。这里描述的分子被设计为 mA 和 mA RNA MTases 的潜在双底物类似物,可进一步用于结构研究。这是首次报道模拟 mA RNA MTases 催化的甲基化反应过渡态的化合物。

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