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通过锰加成和电子诱导解离测定脂肪酸中的双键位置。

Determination of double bond location in fatty acids by manganese adduction and electron induced dissociation.

机构信息

Department of Chemistry, University of Michigan, 930 North University Avenue, Ann Arbor, Michigan 48109-1055, USA.

出版信息

Anal Chem. 2010 Aug 15;82(16):6940-6. doi: 10.1021/ac101217x.

Abstract

Double bond locations in fatty acids can be determined from characteristic charge-remote fragmentation patterns of alkali metal-adducted fatty acids following high energy collision activated dissociation (CAD). With low energy CAD, several chemical derivatization methods, including ozonization, epoxidation, and hydroxylation, have been used to generate characteristic fragments. However, high energy CAD is not universally available and involves a high degree of scattering, causing product ion loss. Further, derivatization reactions involve side reactions and sample loss. Here, we analyzed metal-adducted fatty acids to investigate the utility of electron induced dissociation (EID) for determining double bond location. EID has been proposed to involve both electronic excitation, similar to high energy CAD, and vibrational excitation. Various metals (Li, Zn, Co, Ni, Mg, Ca, Fe, and Mn) were investigated to fix one charge at the carboxylate end of fatty acids to promote charge-remote fragmentation. EID of Mn(II)-adducted fatty acids allowed determination of all double bond locations of arachidonic acid, linolenic acid, oleic acid, and stearic acid. For Mn(II)-adducted fatty acids, reduced characteristic charge-remote product ion abundances at the double bond positions are indicative of double bond locations. However, other metal adducts did not generally provide characteristic product ion abundances at all double bond locations.

摘要

脂肪酸中的双键位置可以通过特征性的电荷远程碎裂模式来确定,这些模式是在高能碰撞激活解离(CAD)后,碱金属加合脂肪酸的结果。在低能 CAD 下,已经使用了几种化学衍生化方法,包括臭氧化、环氧化和羟化,以生成特征片段。然而,高能 CAD 并非普遍可用,并且涉及高度散射,导致产物离子丢失。此外,衍生化反应涉及副反应和样品损失。在这里,我们分析了金属加合脂肪酸,以研究电子诱导解离(EID)用于确定双键位置的实用性。EID 被提议涉及电子激发,类似于高能 CAD,以及振动激发。研究了各种金属(Li、Zn、Co、Ni、Mg、Ca、Fe 和 Mn)以将一个电荷固定在脂肪酸的羧酸盐端,促进电荷远程碎裂。Mn(II)-加合脂肪酸的 EID 允许确定花生四烯酸、亚麻酸、油酸和硬脂酸的所有双键位置。对于 Mn(II)-加合脂肪酸,双键位置的特征性电荷远程产物离子丰度降低表明双键位置。然而,其他金属加合物通常不能在所有双键位置提供特征性产物离子丰度。

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