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人类 80S 核糖体中完整 RNA 化学修饰的全景。

Landscape of the complete RNA chemical modifications in the human 80S ribosome.

机构信息

Department of Chemistry, Graduate School of Science, Tokyo Metropolitan University, Minami-osawa 1-1, Hachioji-shi, Tokyo 192-0397, Japan.

Department of Applied Biological Science, Graduate School of Agriculture, Tokyo University of Agriculture and Technology, Saiwai-cho 3-5-8, Fuchu-shi, Tokyo 183-8509, Japan.

出版信息

Nucleic Acids Res. 2018 Oct 12;46(18):9289-9298. doi: 10.1093/nar/gky811.

Abstract

During ribosome biogenesis, ribosomal RNAs acquire various chemical modifications that ensure the fidelity of translation, and dysregulation of the modification processes can cause proteome changes as observed in cancer and inherited human disorders. Here, we report the complete chemical modifications of all RNAs of the human 80S ribosome as determined with quantitative mass spectrometry. We assigned 228 sites with 14 different post-transcriptional modifications, most of which are located in functional regions of the ribosome. All modifications detected are typical of eukaryotic ribosomal RNAs, and no human-specific modifications were observed, in contrast to a recently reported cryo-electron microscopy analysis. While human ribosomal RNAs appeared to have little polymorphism regarding the post-transcriptional modifications, we found that pseudouridylation at two specific sites in 28S ribosomal RNA are significantly reduced in ribosomes of patients with familial dyskeratosis congenita, a genetic disease caused by a point mutation in the pseudouridine synthase gene DKC1. The landscape of the entire epitranscriptomic ribosomal RNA modifications provides a firm basis for understanding ribosome function and dysfunction associated with human disease.

摘要

在核糖体生物发生过程中,核糖体 RNA 获得了各种化学修饰,这些修饰确保了翻译的保真度,而修饰过程的失调会导致蛋白质组的变化,如在癌症和遗传性人类疾病中观察到的那样。在这里,我们使用定量质谱法报告了人 80S 核糖体所有 RNA 的完整化学修饰。我们确定了 228 个位点的 14 种不同的转录后修饰,其中大多数位于核糖体的功能区域。所有检测到的修饰都是典型的真核核糖体 RNA 的修饰,与最近报道的冷冻电镜分析不同,没有观察到人类特有的修饰。虽然人类核糖体 RNA 在转录后修饰方面似乎没有太多的多态性,但我们发现,在家族性角化不良先天性患者的核糖体中,28S 核糖体 RNA 中两个特定位置的假尿嘧啶化显著减少,这种疾病是由假尿嘧啶合酶基因 DKC1 的点突变引起的。整个转录后 RNA 修饰的全景提供了一个坚实的基础,用于理解与人类疾病相关的核糖体功能和功能障碍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47fd/6182160/cbd374a39eff/gky811fig1.jpg

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