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核碱基特异性 RNase MC1 和 Cusativin 的 RNA 切割特性由酶活性位点中的二核苷酸结合相互作用决定。

RNA Cleavage Properties of Nucleobase-Specific RNase MC1 and Cusativin Are Determined by the Dinucleotide-Binding Interactions in the Enzyme-Active Site.

机构信息

Rieveschl Laboratories for Mass Spectrometry, Department of Chemistry, University of Cincinnati, Cincinnati, OH 45221, USA.

出版信息

Int J Mol Sci. 2022 Jun 24;23(13):7021. doi: 10.3390/ijms23137021.

Abstract

Knowledge of the cleavage specificity of ribonucleases is critical for their application in RNA modification mapping or RNA-protein binding studies. Here, we detail the cleavage specificity and efficiency of ribonuclease MC1 and cusativin using a customized RNA sequence that contained all dinucleotide combinations and homopolymer sequences. The sequencing of the oligonucleotide digestion products by a semi-quantitative liquid chromatography coupled with mass spectrometry (LC-MS) analysis documented as little as 0.5-1% cleavage levels for a given dinucleotide sequence combination. While RNase MC1 efficiently cleaved the [A/U/C]pU dinucleotide bond, no cleavage was observed for the GpU bond. Similarly, cusativin efficiently cleaved Cp[U/A/G] dinucleotide combinations along with UpA and [A/U]pU, suggesting a broader specificity of dinucleotide preferences. The molecular interactions between the substrate and active site as determined by the dinucleotide docking studies of protein models offered additional evidence and support for the observed substrate specificity. Targeted alteration of the key amino acid residues in the nucleotide-binding site confirms the utility of this approach for the identification of key interactions. Taken together, the use of bioanalytical and computational approaches, involving LC-MS and ligand docking of tertiary structural models, can form a powerful combination to help explain the RNA cleavage behavior of RNases.

摘要

核糖核酸酶的切割特异性知识对于它们在 RNA 修饰图谱或 RNA-蛋白质结合研究中的应用至关重要。在这里,我们详细描述了核糖核酸酶 MC1 和 cusativin 的切割特异性和效率,使用了一种定制的 RNA 序列,其中包含了所有二核苷酸组合和均聚物序列。通过半定量液相色谱与质谱(LC-MS)分析对寡核苷酸消化产物进行测序,记录到给定二核苷酸序列组合的切割水平低至 0.5-1%。虽然 RNase MC1 有效地切割 [A/U/C]pU 二核苷酸键,但 GpU 键没有被切割。同样,cusativin 有效地切割 Cp[U/A/G]二核苷酸组合以及 UpA 和 [A/U]pU,表明其具有更广泛的二核苷酸偏好特异性。通过蛋白模型的二核苷酸对接研究确定的底物和活性位点之间的分子相互作用提供了额外的证据和支持,证实了观察到的底物特异性。靶定核苷酸结合位点中的关键氨基酸残基的改变证实了这种方法对于鉴定关键相互作用的有效性。总之,生物分析和计算方法的使用,包括 LC-MS 和三级结构模型的配体对接,可以形成一种强大的组合,有助于解释核糖核酸酶的 RNA 切割行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7202/9266746/35565e944c1b/ijms-23-07021-g001.jpg

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