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首页> 外文期刊>Journal of Controlled Release: Official Journal of the Controlled Release Society >Red blood cells affect the margination of microparticles in synthetic microcapillaries and intravital microcirculation as a function of their size and shape
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Red blood cells affect the margination of microparticles in synthetic microcapillaries and intravital microcirculation as a function of their size and shape

机译:红细胞根据其大小和形状影响合成微毛细管中微粒的边缘化和玻璃体内微循环

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摘要

A key step in particle-based drug delivery through microcirculation is particle migration from blood flow to vessel walls, also known as "margination", which promotes particle contact and adhesion to the vessel wall. Margination and adhesion should be independently addressed as two distinct phenomena, considering that the former is a fundamental prerequisite to achieve particle adhesion and subsequent extravasation. Although margination has been modeled by numerical simulations and investigated in model systems in vitro, experimental studies including red blood cells (RBCs) are lacking. Here, we evaluate the effect of RBCs on margination through microfluidic studies in vitro and by intravital microscopy in vivo. We show that margination, which is almost absent when particles are suspended in a cell-free medium, is drastically enhanced by RBCs. This effect is size-and shape-dependent, larger spherical/discoid particles being more effectively marginated both in vitro and in vivo. Our findings can be explained by the collision of particles with RBCs that induces the drifting of the particles towards the vessel walls where they become trapped in the cell-free layer. These results are relevant for the design of drug delivery strategies based on systemically administered carriers. (c) 2015 Elsevier B.V. All rights reserved.
机译:通过微循环进行的基于颗粒的药物递送的关键步骤是颗粒从血流向血管壁的迁移,也称为“边缘化”,其促进了颗粒与血管壁的接触和粘附。考虑到前者是实现颗粒粘附和随后渗出的基本前提,因此应单独解决边缘化和粘附是两个不同的现象。尽管已通过数值模拟对边际化进行了建模,并在体外模型系统中进行了研究,但仍缺乏包括红细胞(RBC)在内的实验研究。在这里,我们通过体外微流体研究和体内活体显微术评估红细胞对切缘的影响。我们显示,当红细胞悬浮在无细胞培养基中时,几乎没有边缘化,而RBC则大大增强了边缘化。这种作用是尺寸和形状相关的,较大的球形/粘性颗粒在体外和体内均更有效地被边缘化。我们的发现可以通过颗粒与RBC的碰撞来解释,RBC引起颗粒向血管壁的漂移,在该处壁壁被困在无细胞层中。这些结果与基于全身施用的载体的药物递送策略的设计有关。 (c)2015 Elsevier B.V.保留所有权利。

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