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Combinatorial Synthesis of and High-throughput Protein Release from Polymer Film and Nanoparticle Libraries

机译:聚合物膜和纳米颗粒库的组合合成和高通量蛋白质释放

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摘要

Polyanhydrides are a class of biomaterials with excellent biocompatibility and drug delivery capabilities. While they have been studied extensively with conventional one-sample-at-a-time synthesis techniques, a more recent high-throughput approach has been developed enabling the synthesis and testing of large libraries of polyanhydrides1. This will facilitate more efficient optimization and design process of these biomaterials for drug and vaccine delivery applications. The method in this work describes the combinatorial synthesis of biodegradable polyanhydride film and nanoparticle libraries and the high-throughput detection of protein release from these libraries. In this robotically operated method (>Figure 1), linear actuators and syringe pumps are controlled by LabVIEW, which enables a hands-free automated protocol, eliminating user error. Furthermore, this method enables the rapid fabrication of micro-scale polymer libraries, reducing the batch size while resulting in the creation of multivariant polymer systems. This combinatorial approach to polymer synthesis facilitates the synthesis of up to 15 different polymers in an equivalent amount of time it would take to synthesize one polymer conventionally. In addition, the combinatorial polymer library can be fabricated into blank or protein-loaded geometries including films or nanoparticles upon dissolution of the polymer library in a solvent and precipitation into a non-solvent (for nanoparticles) or by vacuum drying (for films). Upon loading a fluorochrome-conjugated protein into the polymer libraries, protein release kinetics can be assessed at high-throughput using a fluorescence-based detection method (>Figures 2 and >3) as described previously1. This combinatorial platform has been validated with conventional methods2 and the polyanhydride film and nanoparticle libraries have been characterized with 1H NMR and FTIR. The libraries have been screened for protein release kinetics, stability and antigenicity; in vitro cellular toxicity, cytokine production, surface marker expression, adhesion, proliferation and differentiation; and in vivo biodistribution and mucoadhesion1-11. The combinatorial method developed herein enables high-throughput polymer synthesis and fabrication of protein-loaded nanoparticle and film libraries, which can, in turn, be screened in vitro and in vivo for optimization of biomaterial performance.
机译:聚酸酐是一类具有优异的生物相容性和药物传递能力的生物材料。尽管已使用常规的一次一次采样合成技术对它们进行了广泛的研究,但已开发出一种最新的高通量方法,该方法能够合成和测试大型的酸酐 1 库。这将有助于更有效地优化和设计用于药物和疫苗输送应用的生物材料。这项工作中的方法描述了可生物降解的聚酐薄膜和纳米颗粒文库的组合合成,以及从这些文库中释放蛋白质的高通量检测。在这种由机器人操作的方法中(>图1 ),线性执行器和注射泵由LabVIEW控制,从而实现了免提自动协议,从而消除了用户错误。此外,该方法能够快速制造微型聚合物库,减小批次大小,同时导致创建多变量聚合物系统。这种用于聚合物合成的组合方法有助于在与常规合成一种聚合物所需的等量时间内合成多达15种不同的聚合物。另外,在将聚合物文库溶解在溶剂中并沉淀成非溶剂时(对于纳米颗粒)或通过真空干燥(对于膜),可以将组合的聚合物库制备成包括膜或纳米颗粒的空白或蛋白质加载的几何形状。将荧光染料偶联的蛋白质加载到聚合物库中后,可以使用基于荧光的检测方法(>图2 和> 3 )以高通量评估蛋白质的释放动力学,方法如下:之前 1 中所述。该组合平台已通过常规方法 2 进行了验证,并通过 1 1 H NMR和FTIR对聚酸酐膜和纳米颗粒库进行了表征。已筛选文库中的蛋白质释放动力学,稳定性和抗原性;体外细胞毒性,细胞因子产生,表面标志物表达,粘附,增殖和分化;以及体内的生物分布和粘膜粘附 1-11 。本文开发的组合方法可实现高通量聚合物的合成以及载有蛋白质的纳米颗粒和膜文库的制备,然后可以在体外和体内筛选以优化生物材料的性能。

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