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Interference-free Microanoparticle Cell Engineering by Use of High-Throughput Microfluidic Separation

机译:高通量微流分离技术实现无干扰的微/纳米细胞工程

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Engineering cells with active-ingredient-loaded microanoparticles is becoming increasingly popular for imaging and therapeutic applications. A critical yet inadequately addressed issue during its implementation concerns the significant number of particles that remain unbound following the engineering process, which inadvertently generate signals and impart transformative effects onto neighboring nontarget cells. Here we demonstrate that those unbound microanoparticles remaining in solution can be efficiently separated from the particle-labeled cells by implementing a fast, continuous, and high-throughput Dean flow fractionation (DFF) microfluidic device. As proof-of-concept, we applied the DFF microfluidic device for buffer exchange to sort labeled suspension cells (THP-1) from unbound fluorescent dye and dye-loaded microanoparticles. Compared to conventional centrifugation, the depletion efficiency of free dyes or particles was improved 20-fold and the mislabeling of nontarget bystander cells by free particles was minimized. The microfluidic device was adapted to further accommodate heterogeneous-sized mesenchymal stem cells (MSCs). Complete removal of unbound nanoparticles using DFF led to the usage of engineered MSCs without exerting off-target transformative effects on the functional properties of neighboring endothelial cells. Apart from its effectiveness in removing free particles, this strategy is also efficient and scalable. It could continuously process cell solutions with concentrations up to 10(7) cells.mL(-1) (cell densities commonly encountered during cell therapy) without observable loss of performance. Successful implementation of this technology is expected to pave the way for interference-free clinical application of microanoparticle engineered cells.
机译:具有活性成分负载的微米/纳米颗粒的工程细胞在成像和治疗应用中变得越来越受欢迎。在实施过程中一个关键但尚未充分解决的问题涉及工程过程后仍未结合的大量颗粒,这些颗粒无意间产生信号并将转化效应赋予邻近的非靶细胞。在这里,我们证明了通过实施快速,连续和高通量的迪安流动分级分离(DFF)微流体装置,可以将溶液中残留的未结合的微米/纳米颗粒有效地与颗粒标记的细胞分离。作为概念验证,我们将DFF微流控设备用于缓冲液交换,以从未结合的荧光染料和载有染料的微米/纳米颗粒中分选出标记的悬浮细胞(THP-1)。与常规离心相比,游离染料或颗粒的消耗效率提高了20倍,并且游离颗粒对非目标旁观者细胞的错误标记最小化。该微流体装置适于进一步容纳异质大小的间充质干细胞(MSC)。使用DFF完全去除未结合的纳米粒子导致工程化MSC的使用,而不会对邻近内皮细胞的功能特性产生脱靶转化效应。除了有效去除游离颗粒外,该策略也是有效且可扩展的。它可以连续处理浓度最高为10(7)个细胞.mL(-1)(细胞治疗中通常会遇到的细胞密度)的细胞溶液,而不会出现性能损失。预期该技术的成功实施将为微/纳米工程细胞的无干扰临床应用铺平道路。

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