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Gas-phase acidity studies of multiple sites of adenine and adenine derivatives

机译:腺嘌呤和腺嘌呤衍生物多个位点的气相酸性研究

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The acidities of multiple sites in the purine nucleobase adenine (1) and adenine alkyl derivatives 9-ethyladenine (2), 3-methyladenine (3), 1-methyladenine (4), and N,N-dimethyladenine (5) have been investigated for the first time, using computational and experimental methods to provide an understanding of adenine reactivity. We have previously measured two acidic sites on adenine, with the N9 site being 19 kcal mol(-1) more acidic than the N10 site (333 +/- 2 versus 352 +/- 4 kcal mol(-1), respectively). In this work, we have established that 9-ethyladenine has two sites more acidic than water: the N10 (352 +/- 4 kcal mol(-1)) and the C8 (374 +/- 2 kcal mol(-1)). We have likewise measured two acidities for 3-methyladenine, the N10 (347 +/- 4 kcal mol(-1)) and the C2 (370 +/- 3 kcal mol(-1)). For 1-methyladenine and N,N-dimethyladenine, we measure the N9H acidity to be 331 +/- 2 and 333 +/- 2 kcal mol(-1), respectively. We believe that the bracketing of only one site for the latter species is a kinetic effect, which we discuss further in the paper. Computationally, we have found the interesting result that some of the vinylic C-H sites in these purine bases are predicted to be much more acidic than water (DeltaH(acid) = 390.7 kcal mol(-1)) in the gas phase, on the order of 373 kcal mol(-1). The acidic vinylic C-H sites are always adjacent to an N-R group, and this pattern is maintained regardless of whether the site is on the five- or six-membered ring of the purine. Vinylic C-H sites elsewhere on the purine have calculated acidities of about 400 kcal mol(-1). The differing acidities are interpreted through electrostatic potential calculations. We also relate our results to the intriguing biochemical decarboxylation of orotate ribose monophosphate, which involves a vinylic anion adjacent to an N-R group; this decarboxylation is the last step in the de novo biosynthesis of pyrimidine nucleotides, and the enzyme that catalyzes the reaction, orotate ribose monophosphate decarboxylase, has been the subject of intense study recently, as its mechanism remains elusive.
机译:研究了嘌呤核碱基腺嘌呤(1)和腺嘌呤烷基衍生物9-乙基腺嘌呤(2),3-甲基腺嘌呤(3),1-甲基腺嘌呤(4)和N,N-二甲基腺嘌呤(5)中多个位点的酸度首次使用计算和实验方法来了解腺嘌呤反应性。我们先前已经测量了腺嘌呤上的两个酸性位点,其中N9位点比N10位点酸性高19 kcal mol(-1)(分别为333 +/- 2和352 +/- 4 kcal mol(-1))。在这项工作中,我们已经确定9-乙基腺嘌呤有两个比水更酸性的位点:N10(352 +/- 4 kcal mol(-1))和C8(374 +/- 2 kcal mol(-1))。 。我们同样测量了3-甲基腺嘌呤的两种酸度,即N10(347 +/- 4 kcal mol(-1))和C2(370 +/- 3 kcal mol(-1))。对于1-甲基腺嘌呤和N,N-二甲基腺嘌呤,我们测量的N9H酸度分别为331 +/- 2和333 +/- 2 kcal mol(-1)。我们相信后一种物种的仅一个位点的包围是动力学效应,我们将在本文中进一步讨论。通过计算,我们发现了一个有趣的结果,即在这些嘌呤碱中,某些乙烯基CH位置在气相中的酸性比水高得多(DeltaH(酸)= 390.7 kcal mol(-1)),按顺序373 kcal mol(-1)。酸性乙烯基C-H位点始终与N-R基团相邻,并且无论该位点在嘌呤的五元环还是六元环上,都可以保持这种模式。嘌呤上其他位置的乙烯基C-H位点计算出的酸度约为400 kcal mol(-1)。不同的酸度通过静电势计算来解释。我们还将我们的结果与乳清蛋白核糖一磷酸有趣的生化脱羧反应有关,其中涉及与N-R基团相邻的乙烯基阴离子。这种脱羧作用是嘧啶核苷酸从头进行生物合成的最后一步,催化反应的酶乳清酸核糖一磷酸脱羧酶由于其机理尚不清楚,因此近年来已成为研究的热点。

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