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钠化葡萄糖的碰撞诱导解离及异头物构型的鉴定

Collision-induced dissociation of sodiated glucose and identification of anomeric configuration.

作者信息

Chen Jien-Lian, Nguan Hock Seng, Hsu Po-Jen, Tsai Shang-Ting, Liew Chia Yen, Kuo Jer-Lai, Hu Wei-Ping, Ni Chi-Kung

机构信息

Institute of Atomic and Molecular Sciences, Academia Sinica, P. O. Box 23-166, Taipei 10617, Taiwan.

出版信息

Phys Chem Chem Phys. 2017 Jun 14;19(23):15454-15462. doi: 10.1039/c7cp02393f.

Abstract

Collision-induced dissociation (CID) of sodiated glucose was investigated using electronic structure calculations and resonance excitation in a low-pressure linear ion trap. The major dissociation channels in addition to desodiation are dehydration and CHO elimination reactions which the barrier heights are near to or lower than the sodiation energy of glucose. Dehydration reaction involves the transfer of the H atom from the O2 atom to the O1 atom, followed by the cleavage of the C1-O1 bond. Notably, α-glucose has a dehydration barrier lower than that of β-glucose. This difference results in the larger branching ratio of dehydration reactions involving α-glucose, which provides a simple and fast method for identifying the anomeric configurations of glucose. The CHO elimination starts from the H atom transfer from the O1 atom to the O0 atom, followed by the cleavage of the C1-O0 bond. These results were further confirmed by experimental study using O-isotope-labeled compounds. Both the experimental data and theoretical calculations suggest that the dehydration reaction and cross-ring dissociation of sodiated carbohydrates mainly occur at the reducing end during low-energy CID.

摘要

利用电子结构计算和低压线性离子阱中的共振激发,研究了钠化葡萄糖的碰撞诱导解离(CID)。除去钠反应外,主要的解离通道是脱水反应和CHO消除反应,其势垒高度接近或低于葡萄糖的钠化能。脱水反应涉及H原子从O2原子转移到O1原子,随后C1 - O1键断裂。值得注意的是,α-葡萄糖的脱水势垒低于β-葡萄糖。这种差异导致涉及α-葡萄糖的脱水反应具有更大的分支比,这为鉴定葡萄糖的异头构型提供了一种简单快速的方法。CHO消除反应从H原子从O1原子转移到O0原子开始,随后C1 - O0键断裂。使用O-同位素标记化合物的实验研究进一步证实了这些结果。实验数据和理论计算均表明,在低能量CID过程中,钠化碳水化合物的脱水反应和跨环解离主要发生在还原端。

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