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Ultrasound effects on brain-targeting mannosylated liposomes: in vitro and blood–brain barrier transport investigations

机译:超声对靶向脑的甘露糖基脂质体的影响:体外和血脑屏障转运研究

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Abstract: Delivering drugs to intracerebral regions can be accomplished by improving the capacity of transport through blood–brain barrier. Using sertraline as model drug for brain targeting, the current study aimed at modifying its liposomal vesicles with mannopyranoside. Box-Behnken design was employed to statistically optimize the ultrasound parameters, namely ultrasound amplitude, time, and temperature, for maximum mannosylation capacity, sertraline entrapment, and surface charge while minimizing vesicular size. Moreover, in vitro blood–brain barrier transport model was established to assess the transendothelial capacity of the optimized mannosylated vesicles. Results showed a dependence of vesicular size, mannosylation capacity, and sertraline entrapment on cavitation and bubble implosion events that were related to ultrasound power amplitude, temperature. However, short ultrasound duration was required to achieve >90% mannosylation with nanosized vesicles (<200?nm) of narrow size distribution. Optimized ultrasound parameters of 65°C, 27%, and 59?seconds for ultrasound temperature, amplitude, and time were elucidated to produce 81.1%, 46.6?nm, and 77.6% sertraline entrapment, vesicular size, and mannosylation capacity, respectively. Moreover, the transendothelial ability was significantly increased by 2.5-fold by mannosylation through binding with glucose transporters. Hence, mannosylated liposomes processed by ultrasound could be a promising approach for manufacturing and scale-up of brain-targeting liposomes.
机译:摘要:通过提高血脑屏障的运输能力,可以实现将药物运送到脑内区域。使用舍曲林作为用于脑部靶向的模型药物,当前的研究旨在用甘露吡喃糖苷修饰其脂质体囊泡。采用Box-Behnken设计在统计学上优化超声参数,即超声幅度,时间和温度,以最大程度地提高甘露糖基化能力,舍曲林截留和表面电荷,同时最小化囊泡尺寸。此外,建立了体外血脑屏障运输模型来评估优化的甘露糖基化囊泡的跨内皮能力。结果显示,囊泡大小,甘露糖基化能力和舍曲林截留对空化和气泡破裂事件的影响与超声功率幅度,温度有关。然而,需要短的超声持续时间以实现具有窄尺寸分布的纳米尺寸囊泡(<200?nm)的甘露糖基化> 90%。阐明了超声温度,振幅和时间的最佳超声参数分别为65°C,27%和59?s,分别产生了81.1%,46.6?nm和77.6%的舍曲林包封,囊泡大小和甘露糖基化能力。此外,通过与葡萄糖转运蛋白结合的甘露糖基化,跨内皮能力显着提高了2.5倍。因此,超声处理的甘露糖基化脂质体可能是用于制造和扩大脑靶向脂质体的一种有前途的方法。

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