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Multilamellar nanovesicles show distinct mechanical properties depending on their degree of lamellarity

机译:Multilamellar nanovesicles显示不同的机械性能取决于他们的学位

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Small multilamellar vesicles may have benefits over unilamellar vesicles for drug delivery, such as an increased volume for hydrophobic drugs. In addition, their altered mechanical properties might be beneficial for cellular uptake. Here, we show how atomic force microscopy (AFM) can be used to detect and characterize multilamellar vesicles. We quantify the size of each break event occurring during AFM nanoindentations, which shows good agreement with the thickness of supported lipid bilayers. Analyzing the size and number of these events for individual vesicles allows us to distinguish between vesicles consisting of 1 up to 5 bilayers. We validate these results by comparison with correlative cryo-electron microscopy (cryo-EM) data at the vesicle population level. Finally, we quantify the vesicle geometry and mechanical properties, and show that with additional bilayers adherent vesicles are more spherical and stiffer. Surprisingly, at similar to 20 stiffening for each additional bilayer, the vesicle stiffness scales only weakly with lamellarity. Our results show the potential of AFM for studying liposomal nanoparticles and suggest that small multilamellar vesicles may have beneficial mechanical properties for cellular uptake.
机译:小multilamellar囊泡可能的好处在单膜囊泡药,等作为疏水性药物增加体积。此外,他们的力学性能改变可能有利于细胞吸收。展示了原子力显微镜(AFM)用于检测和描述multilamellar囊泡。事件发生在AFM nanoindentations,显示良好的协议的厚度支持脂质影响。这些事件对个人囊泡的数量让我们区分囊泡1到5组成的影响。这些结果与相关相比低温电子显微镜(低温电子显微镜)数据泡人口水平。囊泡的几何和力学性能,和显示额外的影响附着囊泡是更多的球形和严厉的。令人惊讶的是,在类似于20%的加强每个额外的双分子层,泡刚度尺度与lamellarity只有较弱的。表明AFM研究脂质体的潜力纳米颗粒和小建议multilamellar囊泡可能有益机械性能的细胞吸收。

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