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腺嘌呤激酶 1 导致的异常 DNA N6-甲基腺嘌呤掺入被 ADAL 脱氨酶依赖的 2’-脱氧核苷酸池净化所抑制。

Aberrant DNA N -methyladenine incorporation via adenylate kinase 1 is suppressed by ADAL deaminase-dependent 2'-deoxynucleotide pool sanitation.

机构信息

The State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing, China.

School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing, China.

出版信息

EMBO J. 2023 Aug 1;42(15):e113684. doi: 10.15252/embj.2023113684. Epub 2023 Jun 27.

Abstract

Intracellular decay of N -methyladenine (m6A)-containing RNA potentially induces aberrant N -methyl-2'-adenine (6mdA) misincorporation into DNA. Biophysically, misincorporated 6mdA may destabilize the DNA duplex in a manner similar to bona fide methylated 6mdA DNA, thereby affecting DNA replication and transcription. Utilizing heavy stable isotope labeling and ultrasensitive UHPLC-MS/MS assay, we demonstrate that intracellular m6A-RNA decay does not generate free 6mdA species, nor lead to any misincorporated DNA 6mdA in most mammalian cell lines tested, unveiling the existence of a sanitation mechanism that prevents 6mdA misincorporation. Depletion of deaminase ADAL increases the levels of free 6mdA species, concomitant with the presence of DNA-misincorporated 6mdA resulting from intracellular RNA m6A decay, suggesting that ADAL catabolizes 6mdAMP in vivo. Furthermore, we show that the overexpression of adenylate kinase 1 (AK1) promotes 6mdA misincorporation, while AK1 knockdown diminishes 6mdA incorporation, in ADAL-deficient cells. We conclude that ADAL together with other factors (such as MTH1) contributes to 2'-deoxynucleotide pool sanitation in most cells but compromised sanitation (e.g., in NIH3T3 cells) and increased AK1 expression may facilitate aberrant 6mdA incorporation. This sanitation mechanism may provide a framework for the maintenance of the epigenetic 6mdA landscape.

摘要

细胞内 N -甲基腺嘌呤(m6A)含量的 RNA 衰变可能会导致异常的 N -甲基-2'-腺嘌呤(6mdA)错误掺入 DNA 中。从生物物理角度来看,错误掺入的 6mdA 可能以类似于真正甲基化的 6mdA DNA 的方式使 DNA 双链不稳定,从而影响 DNA 复制和转录。利用重稳定同位素标记和超灵敏 UHPLC-MS/MS 检测,我们证明细胞内 m6A-RNA 衰变不会产生游离的 6mdA 物质,也不会导致大多数测试的哺乳动物细胞系中任何错误掺入的 DNA 6mdA,揭示了存在一种清除机制,可以防止 6mdA 错误掺入。脱氨酶 ADAL 的耗竭会增加游离 6mdA 物质的水平,同时伴随着细胞内 RNA m6A 衰变导致的 DNA 错误掺入 6mdA,表明 ADAL 在体内代谢 6mdAMP。此外,我们还表明,在 ADAL 缺陷细胞中,腺苷酸激酶 1(AK1)的过表达会促进 6mdA 错误掺入,而 AK1 的敲低会减少 6mdA 的掺入。我们得出结论,ADAL 与其他因素(如 MTH1)一起有助于大多数细胞中的 2'-脱氧核苷酸池的清除,但清除功能受损(例如,在 NIH3T3 细胞中)和 AK1 表达增加可能会促进异常的 6mdA 掺入。这种清除机制可能为维持表观遗传 6mdA 景观提供了一个框架。

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