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Single-particle tracking discloses binding-mediated rocking diffusion of rod-shaped biological particles on lipid membranes

机译:单粒子跟踪揭示了棒状生物粒子在脂质膜上的结合介导的摇摆扩散

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It has been demonstrated that rod-shaped particles can achieve a high translocation efficiency for gene and drug delivery in biological samples. Previous theoretical calculations also confirmed that rod-shaped particles display higher diffusivity than their spherical counterparts in biological porous media. Understanding the diffusion dynamics of biological and non-biological rod-shaped particles in biological solutions as well as close to the lipid membrane is therefore fundamentally significant for the rational design of efficient cargos. With dark-field optical microscopy, the translational and three-dimensional (3D) orientational diffusion dynamics of individual rod-shaped particles ( i.e. , E. coli and upconversion microrods, UCMRs) in phosphate buffered saline (PBS) and on the lipid membrane are tracked at the single-particle level. In the buffer solution, faster rotation of E. coli in the z direction was observed even though its dynamics in the x – y plane is comparable with that of UCMRs. Interestingly, on the lipid membrane, distinct from the confined motion of UCMRs, anomalous rocking diffusion was observed, which might facilitate the subsequent survey of stronger association sites on the two-dimensional (2D) surface. These results would afford deep insight into the better understanding of the translocation mechanism by using rod-shaped particles as a delivery cargo in biological samples.
机译:已经证明,棒状颗粒可以在生物样品中实现高的基因和药物转运效率。先前的理论计算还证实,在生物多孔介质中,棒状颗粒比球形颗粒具有更高的扩散率。因此,了解生物和非生物棒状颗粒在生物溶液中以及靠近脂质膜的扩散动力学对于合理设计有效货物具有根本意义。使用暗场光学显微镜,在磷酸盐缓冲液(PBS)中和脂质膜上的单个杆状颗粒(即大肠杆菌和上转换微棒,UCMR)的平移和三维(3D)定向扩散动力学为在单粒子级别跟踪。在缓冲溶液中,即使在x – y平面上的动力学与UCMR相当,也可以观察到大肠杆菌在z方向上更快的旋转。有趣的是,在脂质膜上,不同于UCMR的局限运动,观察到异常的岩石扩散,这可能有助于随后在二维(2D)表面上更强的缔合位点的研究。这些结果将通过使用棒状颗粒作为生物样品中的传递货物,为更好地理解转运机制提供深刻的见识。

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