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Phospholipid decoration of microcapsules containing perfluorooctyl bromide used as ultrasound contrast agents.

机译:包含全氟辛基溴化物的微胶囊的磷脂修饰,用作超声造影剂。

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摘要

We present here an easy method to modify the surface chemistry of polymeric microcapsules of perfluorooctyl bromide used as ultrasound contrast agents (UCAs). Capsules were obtained by a solvent emulsification-evaporation process with phospholipids incorporated in the organic phase before emulsification. Several phospholipids were reviewed: fluorescent, pegylated and biotinylated phospholipids. The influence of phospholipid concentration on microcapsule size and morphology was evaluated. Only a fraction of the phospholipids is associated to microcapsules, the rest being dissolved with the surfactant in the aqueous phase. Microscopy shows that phospholipids are present within the shell and that the core/shell structure is preserved up to 0.5 mg fluorescent phospholipids, up to about 0.25 mg pegylated phospholipids or biotinylated phospholipids (for 100 mg of polymer, poly(lactide-co-glycolide) (PLGA)). HPLC allows quantifying phospholipids associated to capsules: they correspond to 10% of pegylated phospholipids introduced in the organic phase. The presence of pegylated lipids at the surface of capsules was confirmed by X-ray photon electron spectroscopy (XPS). The pegylation did not modify the echographic signal arising from capsules. Finally biotinylated microcapsules incubated with neutravidin tend to aggregate, which confirms the presence of biotin at the surface. These results are encouraging and future work will consist of nanocapsule surface modification for molecular imaging.
机译:我们在这里介绍一种简单的方法来修改用作超声造影剂(UCA)的全氟辛基溴化物聚合物微囊的表面化学。通过溶剂乳化-蒸发过程获得胶囊,其中在乳化之前将磷脂掺入有机相中。综述了几种磷脂:荧光的,聚乙二醇化的和生物素化的磷脂。评估了磷脂浓度对微胶囊大小和形态的影响。仅有一部分磷脂与微胶囊缔合,其余则与表面活性剂一起溶解在水相中。显微镜显示,壳内存在磷脂,并且核/壳结构最多保留0.5 mg荧光磷脂,最多约0.25 mg聚乙二醇化磷脂或生物素化磷脂(对于100 mg聚合物,聚(丙交酯-共-乙交酯)) (PLGA))。 HPLC可以量化与胶囊相关的磷脂:它们对应于有机相中引入的聚乙二醇化磷脂的10%。通过X射线光子电子光谱法(XPS)证实了在胶囊表面上聚乙二醇化脂质的存在。聚乙二醇化没有改变由胶囊引起的回波信号。最终,与中性亲和素孵育的生物素化微囊倾向于聚集,这证实了生物素在表面上的存在。这些结果令人鼓舞,未来的工作将包括用于分子成像的纳米胶囊表面修饰。

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