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The influence of the C5 substituent on the 2-thiouridine desulfuration pathway and the conformational analysis of the resulting 4-pyrimidinone products

机译:C5取代基对2-硫胺脱硫途径的影响及其4-嘧啶酮产品的构象分析

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摘要

In recent years, increasing attention has been focused on the posttranscriptional modifications present in transfer RNAs (tRNAs), which have been suggested to constitute another level of regulation of gene expression. The most representative among them are the 5-substituted 2-thiouridines (R5S2U), which are located in the wobble position of the anticodon and play a fundamental role in the tuning of the translation process. On the other hand, sulfur-containing biomolecules are the primary site for the attack of reactive oxygen species (ROS). We have previously demonstrated that under in vitro conditions that mimic oxidative stress in the cell, the S2U alone or bound to an RNA chain undergoes desulfuration to yield uridine and 4-pyrimidinone nucleoside (H2U) products. The reaction is pH-and concentration-dependent. In this study, for the first time, we demonstrate that the substituent at the C5 position of the 2-thiouracil ring of R5S2Us influences the desulfuration pathway, and thus the products ratio. As the substituent R changes, the amount of R5H2U increases in the order H- > CH3O- > CH3OC(O)CH2- > HOC(O)CH2NHCH2- approximate to CH3NHCH2-, and this effect is more pronounced at lower pH. The conformational analysis of the resulting R5H2U products indicates that independent of the nature of the R5 substituent, the R5H2U nucleosides predominantly adopt a C2'-endo sugar ring conformation, as opposed to the preferred C3'-endo conformation of the parent R5S2Us. (C) 2015 Elsevier Ltd. All rights reserved.
机译:近年来,越来越关注的关注于转移RNA(TrNAS)中存在的前剖视修正案,这已经提出了构成基因表达的另一个调控水平。它们中最具代表性的是5-取代的2-硫氨酸(R5S2U),其位于抗oryon的摆动位置,并在调整翻译过程中发挥基本作用。另一方面,含硫的生物分子是用于反应性氧(ROS)的攻击的主要部位。我们之前已经证明,在体外条件下,在细胞中模拟氧化应激的情况下,单独的S2U或与RNA链结合的脱硫化以产生尿苷和4-嘧啶醌核苷(H2U)产物。反应是pH-和浓度依赖性。在这项研究中,我们首次证明了R5S2US的2-硫齐根环的C5位置的取代基影响脱硫途径,从而影响产品比例。随着取代基的变化,R5H 2 U的量在H-> CH 3 O-> CH3OC(O)CH 2-> HOC(O)CH 2-> HOC(O)CH 2 NHCH 2-接近CH 3 NHCH 2-,并且这种效果在较低的pH下更明显。得到的R5H2U产品的构象分析表明,与R5取代基的性质无关,R5H 2U核苷主要采用C2'- endo糖环构象,而不是母R5S2US的优选C3'-Endo构象相反。 (c)2015 Elsevier Ltd.保留所有权利。

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