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Nucleotide Recognition and Phosphate Linkage Hydrolysis at a Lipid Cubic Interface

机译:脂质立方界面上的核苷酸识别和磷酸键水解。

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Mononucleotides, when entrapped within a mono-olein-based cubic Ia3d liquid crystalline phase, have been found to undergo hydrolysis at the sugar−phosphate ester bond in spite of their natural inertness toward hydrolysis. Here, kinetics of the hydrolysis reaction and interactions between the lipid matrix and the mononucleotide adenosine 5′-monophosphate disodium salt (AMP) and its 2′-deoxy derivative (dAMP) are thoroughly investigated in order to shed some light on the mechanism of the nucleotide recognition and phosphate ester hydrolysis. Experiments evidenced that molecular recognition occurs essentially through the sn-2 and the sn-3 alcoholic OH groups of mono-olein. As deduced from the apparent activation energies, the mechanism underlying the hydrolysis reaction is the same for AMP and dAMP. Nevertheless, the reaction proceeds slower for the latter, highlighting a substantial difference in the chemical behavior of the two nucleotides. A model that explains the hydrolysis reaction is presented. Remarkably, the hydrolysis mechanism appears to be highly specific for the Ia3d phase.
机译:当单核苷酸被困在基于单油精的立方Ia3d液晶相中时,尽管它们对水解具有天然惰性,但仍被发现在糖磷酸酯键处进行了水解。在此,对水解反应的动力学以及脂质基质与单核苷酸腺苷5'-单磷酸二钠盐(AMP)及其2'-脱氧衍生物(dAMP)之间的相互作用进行了深入研究,以阐明其机理。核苷酸识别和磷酸酯水解。实验证明,分子识别基本上是通过单油精的sn-2和sn-3醇羟基进行的。从表观活化能推论,对于AMP和dAMP,水解反应的机理是相同的。然而,后者的反应进行得较慢,突显了两个核苷酸的化学行为的实质性差异。提出了解释水解反应的模型。值得注意的是,水解机理似乎对Ia3d相具有高度特异性。

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