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Drug-Loaded Nanoemulsions/Microbubbles for Combined Tumor Imaging and Therapy

机译:用于组合肿瘤成像和治疗的药物负载纳米乳液/微泡

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A new class of multifunctional nanoparticles that combine properties of polymeric drug carriers, ultrasound imaging contrast agents, and enhancers of ultrasound-mediated intracellular drug delivery was developed. At room temperature, the developed systems comprise perfluorocarbon nanodroplets stabilized by the walls made of biodegradable block copolymers. The nanodroplets convert into microbubbles upon heating to physiological temperatures. The phase state of the systems and nanodroplet size may be controlled by the copolymer/perfluorocarbon volume ratio. Three areas observed in phase diagrams correspond to micelles; micelle/microbubble coexistence; and nano/microbubble coexistence. These systems manifest a relatively high drug loading capacity (about 15 % wt/wt). As indicated by biodistribution measurements and ultrasound imaging, the micelles and nanobubbles extravasate selectively into the tumor interstitia. Microbubble cavitate and collapse under the action of tumor-directed ultrasound, resulting in a dramatically enhanced intracellular drug uptake by the tumor cells. Upon intravenous injections, a long-lasting, strong and selective ultrasound contrast is observed in the tumor volume confirming nanobubble extravasation through the defected tumor microvasculature and suggesting their coalescence into larger, highly echogenic microbubbles in the tumor tissue. This effect is tumor-selective; no accumulation of echogenic microbubbles is observed in other organs. Tumor contrast increases in time confirming gradual accumulation of echogenic microbubbles in the tumor tissue, presumably via the enhanced penetration and retention (EPR) effect.
机译:一种新的多功能纳米粒子,其结合聚合物药物载体,超声成像造影剂和超声介导的细胞内药物递送的增强剂的性质。在室温下,开发系统包括由由可生物降解的嵌段共聚物制成的壁稳定的全氟化碳纳米坯。在加热到生理温度时,纳米坯在微泡转化为微泡。可以通过共聚物/全氟碳体积比来控制系统和纳米射线尺寸的相位状态。在相图中观察到的三个区域对应于胶束;胶束/微泡共存;和纳米/微泡共存。这些系统表现出相对高的药物负载能力(约15%wt / wt)。如生物分布测量和超声成像所示,胶束和纳米泡选择性地将肿瘤插形状进入肿瘤。微胶质空穴和肿瘤定向超声的作用下的塌陷,导致肿瘤细胞显着增强的细胞内药物吸收。在静脉注射时,在肿瘤体积中观察到通过缺陷的肿瘤微血管确定纳米泡外渗并在肿瘤组织中表明它们的聚结成更大的高度回声微泡来观察到延长持久的强和选择性的超声对比度。这种效果是肿瘤选择性的;在其他器官中没有观察到回声微泡的积累。肿瘤对比度随着时间的推移而增加,确认肿瘤组织中的回声微泡的逐渐积累,可能通过增强的渗透和保留(EPR)效应。

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