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Controlled and Tunable Loading and Release of Vesicles by Using Gigahertz Acoustics

机译:通过使用千兆赫声学来控制和调整囊泡的加载和释放

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摘要

Controllable exchange of molecules between the interior and the external environment of vesicles is critical in drug delivery and microano‐reactors. While many approaches exist to trigger release from vesicles, controlled loading remains a challenge. Herein, we show that gigahertz acoustic streaming generated by a nanoelectromechanical resonator can control the loading and release of cargo into and from vesicles. Polymer‐shelled vesicles showed loading and release of molecules both in solution and on a solid substrate. We observed deformation of individual giant unilamellar vesicles and propose that the shear stress generated by gigahertz acoustic streaming induces the formation of transient nanopores, with diameters on the order of 100 nm, in the vesicle membranes. This provides a non‐invasive method to control material exchange across membranes of different types of vesicles, which could allow site‐specific release of therapeutics and controlled loading into cells, as well as tunable microreactors.
机译:在囊的内部和外部环境之间可控的分子交换对于药物输送和微/纳米反应器至关重要。尽管存在许多触发从囊泡释放的方法,但是控制负荷仍然是一个挑战。在这里,我们表明,纳米机电谐振器产生的千兆赫兹声流可以控制货物进出囊泡的负载和释放。带有聚合物壳的囊泡在溶液和固体基质上均显示出分子的负载和释放。我们观察到单个巨型单层囊泡的变形,并提出由千兆赫兹声流产生的剪切应力诱导了囊泡膜中直径为100 nm数量级的瞬态纳米孔的形成。这提供了一种非侵入性的方法来控制跨不同类型囊泡膜的物质交换,从而可以实现治疗剂的定点释放并控制细胞以及可调微反应器的负载。

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