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Glyoxals as in vivo RNA structural probes of guanine base-pairing

机译:血管碱基配对的体内RNA结构探针如体内RNA结构探针

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Elucidation of the folded structures that RNA forms in vivo is vital to understanding its functions. Chemical reagents that modify the Watson-Crick (WC) face of unprotected nucleobases are particularly useful in structure elucidation. Dimethyl sulfate penetrates cell membranes and informs on RNA base-pairing and secondary structure but only modifies the WC face of adenines and cytosines. We present glyoxal, methylglyoxal, and phenylglyoxal as potent in vivo reagents that target the WC face of guanines as well as cytosines and adenines. Tests on rice (Oryza sativa) 5.8S rRNA in vitro read out by reverse transcription and gel electrophoresis demonstrate specific modification of almost all guanines in a time-and pH-dependent manner. Subsequent in vivo tests on rice, a eukaryote, and Bacillus subtilis and Escherichia coli, Gram-positive and Gram-negative bacteria, respectively, showed that all three reagents enter living cells without prior membrane permeabilization or pH adjustment of the surrounding media and specifically modify solvent-exposed guanine, cytosine, and adenine residues.
机译:阐明折叠结构的RNA形式体内的形式对于理解其功能至关重要。改变未受保护的核碱基的Watson-Crick(WC)面的化学试剂在结构阐明中特别有用。二甲基硫酸酯穿透细胞膜,并向RNA碱基配对和二级结构通知,但仅改变腺嘌呤和胞嘧啶的WC面。我们将乙二醛,甲基乙二醛和苯基乙二醛聚在体内试剂中,其靶向舌骨的WC面部以及胞嘧啶和腺嘌呤。通过逆转录读出水稻(Oryza Sativa)5.8s rRNA的rRNA,凝胶电泳读出几乎所有鸟嘌呤的特异性修饰,并采用pH依赖性方式。在水稻,真核生物和枯草芽孢杆菌和大肠杆菌的体内试验中,分别分别分别进行了枯草芽孢杆菌和大肠杆菌,革兰氏阳性和革兰氏阴性细菌,表明所有三种试剂进入没有现有膜透氧或周围介质的pH调节的活细胞,并特别修改溶剂暴露的鸟嘌呤,胞嘧啶和腺嘌呤残基。

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