Department of Chemistry, Johns Hopkins University , 3400 North Charles Street, Baltimore, Maryland 21218, United States.
J Org Chem. 2016 Oct 7;81(19):9199-9205. doi: 10.1021/acs.joc.6b01760. Epub 2016 Sep 26.
The C2'-carbon-hydrogen bond in ribonucleotides is significantly weaker than other carbohydrate carbon-hydrogen bonds in RNA or DNA. Independent generation of the C2'-uridine radical (1) in RNA oligonucleotides via Norrish type I photocleavage of a ketone-substituted nucleotide yields direct strand breaks via cleavage of the β-phosphate. The reactivity of 1 in different sequences and under a variety of conditions suggests that the rate constant for strand scission is significantly greater than 10 s at pH 7.2. The initially formed C2'-radical (1) is not trapped under a variety of conditions, consistent with computational studies ( Chem.-Eur. J. 2009 , 15 , 2394 ) that suggest that the barrier to strand scission is very low and that synchronous proton transfer from the 2'-hydroxyl to the departing phosphate group facilitates cleavage. The C2'-radical could be a significant contributor to RNA strand scission by the hydroxyl radical, particularly under anaerobic conditions where 1 can be produced from nucleobase radicals.
核苷酸中的 C2'-碳氢键明显弱于 RNA 或 DNA 中其他糖碳氢键。通过酮取代核苷酸的 Norrish 型 I 光解,在 RNA 寡核苷酸中独立生成尿嘧啶自由基 (1),可通过β-磷酸酯的断裂产生直接的链断裂。1 在不同序列和多种条件下的反应性表明,在 pH 值为 7.2 时,链断裂的速率常数明显大于 10 s。在各种条件下,最初形成的 C2'-自由基(1)不会被捕获,这与计算研究一致(Chem.-Eur. J. 2009, 15, 2394),表明链断裂的势垒非常低,并且从 2'-羟基到离去的磷酸基团的同步质子转移有助于断裂。C2'-自由基可能是羟基自由基导致 RNA 链断裂的重要因素,特别是在厌氧条件下,1 可以从碱基自由基中产生。