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用于实现细胞外囊泡亲和分离的温敏磁性纳米颗粒。

Temperature-Responsive Magnetic Nanoparticles for Enabling Affinity Separation of Extracellular Vesicles.

出版信息

ACS Appl Mater Interfaces. 2018 Oct 10;10(40):33847-33856. doi: 10.1021/acsami.8b09751. Epub 2018 Sep 27.

DOI:10.1021/acsami.8b09751
PMID:30152229
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6538933/
Abstract

Small magnetic nanoparticles that have surfaces decorated with stimuli-responsive polymers can be reversibly aggregated via a stimulus, such as temperature, to enable efficient and rapid biomarker separation. To fully realize the potential of these particles, the synthesis needs to be highly reproducible and scalable to large quantity. We have developed a new synthesis for temperature-responsive magnetic nanoparticles via an in situ co-precipitation process of Fe/Fe salts at room temperature with poly(acrylic acid)- block-poly( N-isopropylacrylamide) diblock co-polymer template, synthesized via the reversible addition-fragmentation chain-transfer polymerization method. These particles were 56% polymer by weight with a 6.5:1 Fe/COOH ratio and demonstrated remarkable stability over a 2 month period. The hydrodynamic diameter remained constant at ∼28 nm with a consistent transition temperature of 34 °C, and the magnetic particle separation efficiency at 40 °C was ≥95% over the 2 month span. These properties were maintained for all large-scale synthesis batches. To demonstrate the practical utility of the stimuli-responsive magnetic nanoparticles, the particles were incorporated into a temperature-responsive binary reagent system and efficiently separated a model protein biomarker (mouse IgG) as well as purified extracellular vesicles derived from a human biofluid, seminal plasma. The ease of using these particles will prove beneficial for various biomedical applications.

摘要

表面修饰有刺激响应聚合物的小磁性纳米粒子可以通过刺激(如温度)可逆聚集,从而实现高效快速的生物标志物分离。为了充分发挥这些粒子的潜力,合成需要具有高度重现性和可扩展性,以适应大量生产。我们通过室温下的原位共沉淀法,以 Fe/Fe 盐与聚(丙烯酸)-嵌段-聚(N-异丙基丙烯酰胺)两亲性嵌段共聚物模板的形式,开发了一种新的温度响应磁性纳米粒子合成方法,该共聚物模板是通过可逆加成-断裂链转移聚合方法合成的。这些粒子的聚合物重量含量为 56%,Fe/COOH 比为 6.5:1,在 2 个月的时间内表现出显著的稳定性。水动力直径在 28nm 左右保持不变,一致的转变温度为 34°C,在 2 个月的时间内,40°C 时的磁性粒子分离效率≥95%。所有大规模合成批次均保持这些特性。为了证明刺激响应磁性纳米粒子的实际应用,将这些粒子纳入温度响应二元试剂系统中,有效地分离了模型蛋白生物标志物(小鼠 IgG)以及源自人生物体液(精液)的纯化细胞外囊泡。这些粒子易于使用,将有益于各种生物医学应用。