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Confocal Raman Microscopy for in Situ Measurement of Phospholipid-Water Partitioning into Model Phospholipid Bilayers within Individual Chromatographic Particles

机译:共聚焦拉曼显微镜用于磷脂 - 水分配到单个色谱颗粒中模型磷脂双层的测量

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摘要

The phospholipid-water partition coefficient is a commonly measured parameter that correlates with drug efficacy, small-molecule toxicity, and accumulation of molecules in biological systems in the environment. Despite the utility of this parameter, methods for measuring phospholipid water partition coefficients are limited. This is due to the difficulty of making quantitative measurements in vesicle membranes or supported phospholipid bilayers, both of which are small-volume phases that challenge the sensitivity of many analytical techniques. In this work, we employ in situ confocal Raman microscopy to probe the partitioning of a model membrane-active compound, 2-(4-isobutylphenyl) propionic acid or ibuprofen, into both hybrid- and supported-phospholipid bilayers deposited on the pore walls of individual chromatographic particles. The large surface-area-to-volume ratio of chromatographic silica allows interrogation of a significant lipid bilayer area within a very small volume. The local phospholipid concentration within a confocal probe volume inside the particle can be as high as 0.5 M, which overcomes the sensitivity limitations of making measurements in the limited membrane areas of single vesicles or planar supported bilayers. Quantitative determination of ibuprofen partitioning is achieved by using the phospholipid aryl-chains of the within-particle bilayer as an internal standard. This approach is tested for measurements of pH-dependent partitioning of ibuprofen into both hybrid-lipid and supported-lipid bilayers within silica particles, and the results are compared with octanol water partitioning and with partitioning into individual optically trapped phospholipid vesicle membranes. Additionally, the impact of ibuprofen partitioning on bilayer structure is evaluated for both within-particle model membranes and compared with the structural impacts of partitioning into vesicle lipid bilayers.
机译:磷脂 - 水分配系数是一种常见的参数,其与环境中生物系统中分子的药效,小分子毒性和分子的积累相关。尽管该参数效用,但是测量磷脂水分配系数的方法是有限的。这是由于囊泡膜或负载型磷脂双层进行定量测量,这两种都是小体积阶段,攻击许多分析技术的敏感性。在这项工作中,我们采用原位共聚焦拉曼显微镜,以探测模型膜 - 活性化合物,2-(4-异丁基苯基)丙酸或布洛芬的分配到沉积在孔壁上的杂交和负载磷脂双层中单个色谱颗粒。色谱二氧化硅的大表面积到体积比允许在非常小的体积内询问显着的脂质双层区域。颗粒内的共焦探针体积内的局部磷脂浓度可以高达0.5米,这克服了在单个囊泡或平面支撑的双层的有限膜区域中进行测量的灵敏度限制。通过使用内部双层的磷脂芳基链作为内标,通过作为内标的磷脂芳基链来实现布洛芬分配的定量测定。测试该方法以测量对二氧化硅颗粒内的杂化 - 脂质和负载脂质双层的pH依赖性分配到二氧化硅颗粒中的pH依赖性分配,并将结果与​​辛醇水分配和分配到单独的光学捕获的磷脂囊泡膜中。另外,对粒子模型膜进行评价双层结构对双层结构的影响,并与分配到囊泡脂双层的结构冲击相比。

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  • 来源
    《Analytical chemistry》 |2018年第11期|共8页
  • 作者单位

    Univ Utah Dept Chem 315 South 1400 East Salt Lake City UT 84112 USA;

    Univ Utah Dept Chem 315 South 1400 East Salt Lake City UT 84112 USA;

    Univ Utah Dept Chem 315 South 1400 East Salt Lake City UT 84112 USA;

    Univ Utah Dept Chem 315 South 1400 East Salt Lake City UT 84112 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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