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Lung Surfactant Microbubbles Increase Lipophilic Drug Payload for Ultrasound-Targeted Delivery

机译:肺表面活性剂微泡增加了超声靶向递送的亲脂药物有效载荷

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摘要

The cavitation response of circulating microbubbles to targeted ultrasound can be used for noninvasive, site-specific delivery of shell-loaded materials. One challenge for microbubble-mediated delivery of lipophilic compounds is the limitation of drug loading into the microbubble shell, which is commonly a single phospholipid monolayer. In this study, we investigated the use of natural lung surfactant extract (Survanta®, Abbott Nutrition) as a microbubble shell material in order to improve drug payload and delivery. Pulmonary surfactant extracts such as Survanta contain hydrophobic surfactant proteins (SP-B and SP-C) that facilitate lipid folding and retention on lipid monolayers. Here, we show that Survanta-based microbubbles exhibit wrinkles in bright-field microscopy and increased lipid retention on the microbubble surface in the form of surface-associated aggregates observed with fluorescence microscopy. The payload of a model lipophilic drug (DiO), measured by flow cytometry, increased by over 2-fold compared to lipid-coated microbubbles lacking SP-B and SP-C. Lung surfactant microbubbles were highly echogenic to contrast enhanced ultrasound imaging at low acoustic intensities. At higher ultrasound intensity, excess lipid was observed to be acoustically cleaved for localized release. To demonstrate targeting, a biotinylated lipopolymer was incorporated into the shell, and the microbubbles were subjected to a sequence of radiation force and fragmentation pulses as they passed through an avidinated hollow fiber. Lung surfactant microbubbles showed a 3-fold increase in targeted deposition of the model fluorescent drug compared to lipid-only microbubbles. Our results demonstrate that lung surfactant microbubbles maintain the acoustic responsiveness of lipid-coated microbubbles with the added benefit of increased lipophilic drug payload.
机译:循环微泡对定向超声的空化反应可用于无创,特定于位点的壳载材料输送。微泡介导的亲脂性化合物的传递的一个挑战是限制药物装载到微泡壳中的限制,该微泡壳通常是单个磷脂单层。在这项研究中,我们研究了使用天然肺表面活性物质提取物(Survanta ®,雅培营养公司(Abbott Nutrition))作为微泡壳材料,以改善药物有效载荷和递送。肺表面活性剂提取物(例如Survanta)包含疏水性表面活性剂蛋白(SP-B和SP-C),可促进脂质折叠并保留在脂质单层上。在这里,我们显示基于Survanta的微泡在明视野显微镜下显示出皱纹,并以荧光显微镜观察到的表面相关聚集体的形式增加了脂质在微泡表面上的滞留。与缺乏SP-B和SP-C的脂质包裹微泡相比,通过流式细胞仪测量的模型亲脂性药物(DiO)的有效载荷增加了2倍以上。肺表面活性剂微泡高度回声,可在低声强下对比增强超声成像。在较高的超声强度下,观察到过量的脂质被声裂解以局部释放。为了证明靶向,将生物素化的脂聚合物掺入壳中,并使微泡在经过抗生物素化的中空纤维时经受一系列的辐射力和破碎脉冲。与仅脂质的微泡相比,肺表面活性剂微泡显示模型荧光药物的靶向沉积增加了3倍。我们的结果表明,肺表面活性剂微泡可保持脂质包覆的微泡的声学响应性,并具有增加亲脂性药物有效负载的额外好处。

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