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Localization of Fatty Acyl and Double Bond Positions in Phosphatidylcholines Using a Dual Stage CID Fragmentation Coupled with Ion Mobility Mass Spectrometry

机译:脂酰胆碱中脂肪酰基和双键位置的定位采用双级CID碎裂结合离子淌度质谱

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摘要

A high content molecular fragmentation for the analysis of phosphatidylcholines (PC) was achieved utilizing a two-stage [trap (first generation fragmentation) and transfer (second generation fragmentation)] collision-induced dissociation (CID) in combination with travelling-wave ion mobility spectrometry (TWIMS). The novel aspects of this work reside in the fact that a TWIMS arrangement was used to obtain a high level structural information including location of fatty acyl substituents and double bonds for PCs in plasma, and the presence of alkali metal adduct ions such as [M + Li]+ was not required to obtain double bond positions. Elemental compositions for fragment ions were confirmed by accurate mass measurements. A very specific first generation fragment ion m/z 577 (M-phosphoryl choline) from the PC [16:0/18:1 (9Z)] was produced, which by further CID generated acylium ions containing either the fatty acyl 16:0 (C15H31CO+, m/z 239) or 18:1 (9Z) (C17H33CO+, m/z 265) substituent. Subsequent water loss from these acylium ions was key in producing hydrocarbon fragment ions mainly from the α-proximal position of the carbonyl group such as the hydrocarbon ion m/z 67 (+H2C-HC = CH-CH = CH2). Formation of these ions was of important significance for determining double bonds in the fatty acyl chains. In addition to this, and with the aid of 13C labeled lyso-phosphatidylcholine (LPC) 18:1 (9Z) in the ω-position (methyl) TAP fragmentation produced the ion at m/z 57. And was proven to be derived from the α-proximal (carboxylate) or distant ω-position (methyl) in the LPC.Electronic supplementary materialThe online version of this article (doi:10.1007/s13361-011-0172-2) contains supplementary material, which is available to authorized users.
机译:利用两阶段[捕集(第一代裂解和转移(第二代裂解))碰撞诱导解离(CID)结合行波离子迁移率,实现了分析磷脂酰胆碱(PC)的高含量分子裂解光谱法(TWIMS)。这项工作的新颖之处在于,使用TWIMS装置来获得高级结构信息,包括血浆中PC的脂肪酰基取代基和双键的位置以及碱金属加成离子(例如[M +] Li] + 不需要获得双键位置。碎片离子的元素组成已通过精确的质量测量得到证实。从PC [16:0/18:1(9Z)]产生了非常特殊的第一代碎片离子m / z 577(M-磷酰基胆碱),通过进一步CID生成的containing离子,其含有脂肪酰基16:0 (C15H31CO + ,m / z 239)或18:1(9Z)(C17H33CO + ,m / z 265)取代基。这些酰基鎓离子随后的失水是主要从羰基的α-近端产生烃碎片离子的关键,例如烃离子m / z 67(+ H2C-HC = CH-CH = CH2)。这些离子的形成对于确定脂肪酰基链中的双键具有重要意义。除此之外,借助 13 C标记的ω-位置(甲基)TAP上的溶血磷脂酰胆碱(LPC)18:1(9Z),TAP裂解在m / z 57处产生离子并被证明是源自LPC中的α-近端(羧酸盐)或遥远的ω-位置(甲基)。电子补充材料本文的在线版本(doi:10.1007 / s13361-011-0172-2)包含补充资料,可供授权用户使用。

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