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RNA 辅因子缀合物的合成及 m6A RNA 甲基转移酶对 RNA 识别的结构探索。

Synthesis of RNA-cofactor conjugates and structural exploration of RNA recognition by an m6A RNA methyltransferase.

机构信息

Expression Génétique Microbienne, UMR 8261, CNRS, Université Paris Cité, Institut de Biologie Physico-Chimique (IBPC), 75005, Paris, France.

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

出版信息

Nucleic Acids Res. 2022 Jun 10;50(10):5793-5806. doi: 10.1093/nar/gkac354.

Abstract

Chemical synthesis of RNA conjugates has opened new strategies to study enzymatic mechanisms in RNA biology. To gain insights into poorly understood RNA nucleotide methylation processes, we developed a new method to synthesize RNA-conjugates for the study of RNA recognition and methyl-transfer mechanisms of SAM-dependent m6A RNA methyltransferases. These RNA conjugates contain a SAM cofactor analogue connected at the N6-atom of an adenosine within dinucleotides, a trinucleotide or a 13mer RNA. Our chemical route is chemo- and regio-selective and allows flexible modification of the RNA length and sequence. These compounds were used in crystallization assays with RlmJ, a bacterial m6A rRNA methyltransferase. Two crystal structures of RlmJ in complex with RNA-SAM conjugates were solved and revealed the RNA-specific recognition elements used by RlmJ to clamp the RNA substrate in its active site. From these structures, a model of a trinucleotide bound in the RlmJ active site could be built and validated by methyltransferase assays on RlmJ mutants. The methyl transfer by RlmJ could also be deduced. This study therefore shows that RNA-cofactor conjugates are potent molecular tools to explore the active site of RNA modification enzymes.

摘要

RNA 缀合物的化学合成为研究 RNA 生物学中的酶促机制开辟了新的策略。为了深入了解了解甚少的 RNA 核苷酸甲基化过程,我们开发了一种新的方法来合成用于研究 SAM 依赖性 m6A RNA 甲基转移酶的 RNA 识别和甲基转移机制的 RNA 缀合物。这些 RNA 缀合物包含在二核苷酸、三核苷酸或 13 mer RNA 中的腺嘌呤的 N6-原子上连接的 SAM 辅因子类似物。我们的化学途径具有化学和区域选择性,并允许灵活修饰 RNA 的长度和序列。这些化合物用于与细菌 m6A rRNA 甲基转移酶 RlmJ 的结晶测定。解决了 RlmJ 与 RNA-SAM 缀合物复合物的两个晶体结构,并揭示了 RlmJ 用于在其活性部位夹住 RNA 底物的 RNA 特异性识别元件。根据这些结构,可以构建并通过 RlmJ 突变体上的甲基转移酶测定来验证三核苷酸结合在 RlmJ 活性部位的模型。还可以推断出 RlmJ 的甲基转移。因此,这项研究表明,RNA-辅因子缀合物是探索 RNA 修饰酶活性部位的有效分子工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1fe/9178011/0c32f0b9e06f/gkac354fig1.jpg

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