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一种用于快速且经济高效地大规模生产5' 帽化RNA的通用方法。

A general method for rapid and cost-efficient large-scale production of 5' capped RNA.

作者信息

Fuchs Anna-Lisa, Neu Ancilla, Sprangers Remco

机构信息

Max Planck Institute for Developmental Biology, 72076 Tübingen, Germany.

出版信息

RNA. 2016 Sep;22(9):1454-66. doi: 10.1261/rna.056614.116. Epub 2016 Jul 1.

Abstract

The eukaryotic mRNA 5' cap structure is indispensible for pre-mRNA processing, mRNA export, translation initiation, and mRNA stability. Despite this importance, structural and biophysical studies that involve capped RNA are challenging and rare due to the lack of a general method to prepare mRNA in sufficient quantities. Here, we show that the vaccinia capping enzyme can be used to produce capped RNA in the amounts that are required for large-scale structural studies. We have therefore designed an efficient expression and purification protocol for the vaccinia capping enzyme. Using this approach, the reaction scale can be increased in a cost-efficient manner, where the yields of the capped RNA solely depend on the amount of available uncapped RNA target. Using a large number of RNA substrates, we show that the efficiency of the capping reaction is largely independent of the sequence, length, and secondary structure of the RNA, which makes our approach generally applicable. We demonstrate that the capped RNA can be directly used for quantitative biophysical studies, including fluorescence anisotropy and high-resolution NMR spectroscopy. In combination with (13)C-methyl-labeled S-adenosyl methionine, the methyl groups in the RNA can be labeled for methyl TROSY NMR spectroscopy. Finally, we show that our approach can produce both cap-0 and cap-1 RNA in high amounts. In summary, we here introduce a general and straightforward method that opens new means for structural and functional studies of proteins and enzymes in complex with capped RNA.

摘要

真核生物mRNA的5'帽结构对于前体mRNA加工、mRNA输出、翻译起始以及mRNA稳定性而言不可或缺。尽管其具有如此重要性,但由于缺乏一种大量制备mRNA的通用方法,涉及带帽RNA的结构和生物物理研究颇具挑战性且较为罕见。在此,我们表明痘苗病毒加帽酶可用于生产大规模结构研究所需数量的带帽RNA。因此,我们设计了一种针对痘苗病毒加帽酶的高效表达及纯化方案。采用这种方法,反应规模能够以经济高效的方式得以扩大,其中带帽RNA的产量仅取决于可用的未加帽RNA靶标的量。使用大量RNA底物,我们表明加帽反应的效率在很大程度上与RNA的序列、长度和二级结构无关,这使得我们的方法具有普遍适用性。我们证明带帽RNA可直接用于定量生物物理研究,包括荧光偏振和高分辨率核磁共振波谱学。结合(13)C-甲基标记的S-腺苷甲硫氨酸,RNA中的甲基可被标记用于甲基TROSY核磁共振波谱学。最后,我们表明我们的方法能够大量生产帽-0和帽-1 RNA。总之,我们在此介绍了一种通用且直接的方法,为与带帽RNA结合的蛋白质和酶的结构与功能研究开辟了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d659/4986899/8c2eeb718cbc/1454F1.jpg

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