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将磷-31核磁共振中的同位素(氧-18)位移应用于酶催化的磷酸-磷酸交换和磷酸(氧)-水交换反应的研究。

Isotopic (18O) shift in 31P nuclear magnetic resonance applied to a study of enzyme-catalyzed phosphate--phosphate exchange and phosphate (oxygen)--water exchange reactions.

作者信息

Cohn M, Hu A

出版信息

Proc Natl Acad Sci U S A. 1978 Jan;75(1):200-3. doi: 10.1073/pnas.75.1.200.

Abstract

An isotopic shift of the (31)P nuclear magnetic resonance due to (18)O bonded to phosphorus of 0.0206 ppm has been observed in inorganic orthophosphate and adenine nucleotides. Thus, the separation between the resonances of (31)P(18)O(4) and (31)P(16)O(4) at 145.7 MHz is 12 Hz and, in a randomized sample containing approximately 50% (18)O, all five (16)O-(18)O species are resolved and separated from each other by 3 Hz. Not only does this yield the (18)O/(16)O ratio of the phosphate but, more important, the (18)O-labeled phosphate in effect can serve as a double label in following phosphate reactions, for oxygen in all cases and for phosphorus, provided the oxygen does not exchange with solvent water. Thus, it becomes possible to follow labeled phosphorus or labeled oxygen continuously as reactions proceed. Rate studies involving (i) phosphorus and (ii) oxygen are illustrated by continuous monitoring of the exchange reactions between (i) the beta phosphate of ADP and inorganic phosphate catalyzed by polynucleotide phosphorylase and (ii) inorganic orthophosphate and water catalyzed by yeast inorganic pyrophosphatase. In the ADP-P(i) exchange, the P(i) ((18)O(4)) yielded an alpha P((16)O(3) (18)O) and a beta P((18)O(4)), proving that bond cleavage occurs between the alpha P and the alpha-beta bridge oxygen. Among the many additional potential uses of this labeling technique and its spectroscopic observation are: (i) different labeling of each phosphate group of ATP, (ii) to follow rate of transfer of (18)O from a nonphosphate compound such as a carboxylic acid to a phosphate compound, and (iii) to follow the rate of scrambling (for example, of the beta-gamma bridge oxygen of ATP to nonbridge beta P positions) and simultaneously the rate of exchange of the gamma P nonbridge oxygens with solvent water in various ATPase reactions.

摘要

在无机正磷酸盐和腺嘌呤核苷酸中,观察到由于与磷键合的(18)O导致的(31)P核磁共振的同位素位移为0.0206 ppm。因此,在145.7 MHz下,(31)P(18)O(4)和(31)P(16)O(4)的共振之间的间隔为12 Hz,并且在含有约50% (18)O的随机样品中,所有五种(16)O-(18)O物种都能分辨出来,彼此间隔3 Hz。这不仅能得出磷酸盐的(18)O/(16)O比率,更重要的是,(18)O标记的磷酸盐实际上可以作为双标记物来跟踪磷酸盐反应,在所有情况下跟踪氧,在氧不与溶剂水交换的情况下跟踪磷。因此,随着反应的进行,可以连续跟踪标记的磷或标记的氧。涉及(i)磷和(ii)氧的速率研究通过对以下交换反应的连续监测来说明:(i)多核苷酸磷酸化酶催化的ADP的β-磷酸与无机磷酸盐之间的交换反应,以及(ii)酵母无机焦磷酸酶催化的无机正磷酸盐与水之间的交换反应。在ADP-P(i)交换中,P(i) ((18)O(4))产生了一个α-P((16)O(3) (18)O)和一个β-P((18)O(4)),证明在α-P和α-β桥氧之间发生了键断裂。这种标记技术及其光谱观测的许多其他潜在用途包括:(i)对ATP的每个磷酸基团进行不同标记,(ii)跟踪(18)O从非磷酸盐化合物(如羧酸)转移到磷酸盐化合物的速率,以及(iii)跟踪重排速率(例如,ATP的β-γ桥氧到非桥β-P位置的重排速率),同时跟踪各种ATP酶反应中γ-P非桥氧与溶剂水的交换速率。

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