Department of Chemistry, Case Western Reserve University, Cleveland, OH 44106, USA.
Circ Res. 2012 Sep 14;111(7):930-46. doi: 10.1161/CIRCRESAHA.112.275388.
Free radical-induced oxidation of membrane phospholipids generates complex mixtures of oxidized phospholipids (oxPLs). The combinatorial operation of a few dozen reaction types on a few dozen phospholipid structures results in the production of a dauntingly vast diversity of oxPL molecular species. Structural identification of the individual oxPL in these mixtures is a redoubtable challenge that is absolutely essential to allow determination of the biological activities of individual species. With an emphasis on cardiovascular consequences, this Review focuses on biological activities of oxPLs whose molecular structures are known and highlights 2 diametrically opposite approaches that were used to determine those structures, that is, (1) the classic approach from bioactivity of a complex mixture to isolation and structural characterization of the active molecule followed by confirmation of the structure by unambiguous chemical synthesis and (2) hypothesis of products that are likely to be generated by lipid oxidation, followed by synthesis, and then detection in vivo guided by the availability of authentic standards, and last, characterization of biological activities. Especially important for the application of the second paradigm is the capability of LC-MS/MS and derivatizations to selectively detect and quantify specific oxPL in complex mixtures, without the need for their isolation or complete separation. This technology can provide strong evidence for identity by comparisons with pure, well-characterized samples available by chemical syntheses. Those pure samples are critical for determining the biological activities attributable to specific molecular species of oxPLs in the complex mixtures generated in vivo as a consequence of oxidative stress.
自由基诱导的膜磷脂氧化生成复杂的氧化磷脂混合物(oxPL)。几十种反应类型在几十种磷脂结构上的组合操作导致产生了令人望而生畏的大量 oxPL 分子种类。在这些混合物中鉴定单个 oxPL 的结构是一项艰巨的挑战,这对于确定单个物种的生物学活性绝对必要。本文重点介绍了已知分子结构的 oxPL 的生物学活性,并强调了两种截然不同的方法,即(1)从复杂混合物的生物活性到活性分子的分离和结构表征的经典方法,然后通过明确的化学合成来确认结构,以及(2)假设可能由脂质氧化生成的产物,然后进行合成,最后根据真实标准的可用性在体内进行检测,并对生物活性进行表征。对于第二个范例的应用来说,特别重要的是 LC-MS/MS 和衍生化技术能够选择性地检测和定量复杂混合物中的特定 oxPL,而无需对其进行分离或完全分离。通过与通过化学合成获得的纯、充分表征的样品进行比较,该技术可以为鉴定提供有力证据。这些纯样品对于确定在体内氧化应激产生的复杂混合物中特定 oxPL 分子种类归因于的生物学活性至关重要。