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Impact of Carrier Fluid Composition on Recovery of Nanoparticles and Proteins in Flow Field Flow Fractionation

机译:载体流体组成对流场流量分馏中纳米粒子和蛋白质回收的影响

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摘要

Flow field flow fractionation (F4) is an invaluable separation tool for large analytes, including nanoparticles and biomolecule complexes. However, sample loss due to analyte-channel membrane interaction limits extensive usage of F4 at present, which could be strongly affected by the carrier fluid composition. This work studied the impacts of carrier fluid (CF) composition on nanoparticle (NP) recovery in F4, with focus on high ionic strength conditions. Successful analysis of NPs in a biomolecules-friendly environment could expand the applicability of F4 to the developing field of nanobiotechnology. Recovery of the unfunctionalized polystyrene NPs of 199-, 102-, and 45-nm in CFs with various pH (6.2, 7.4 and 8.2), increasing ionic strength (0–0.1 M), and different types of co- and counter-ions, were investigated. Additionally, elution of the 85-nm carboxylate NPs and two proteins, human serum albumin (HSA) and immunoglobulin (IgG), at high ionic strengths (0–0.15 M) was investigated. Our results suggested that; 1) Electrostatic repulsion between the negatively charged NPs and the regenerated cellulose membrane was the main force to avoid particle adsorption on the membrane; 2) Larger particles experienced higher attractive force and thus were influenced more by variation in CF composition; and 3) Buffers containing weak anions or NPs with weak anion as the surface functional groups provided higher tolerance to the increase in ionic strength, owing to more anions being trapped inside the NP porous structure. Protein adsorption onto the membrane was also briefly investigated in salted CFs, using human serum albumin and immunoglobulin. We believe our findings could help to identify the basic carrier fluid composition for higher sample recovery in F4 analysis of nanoparticles in a protein-friendly environment, which will be useful for applying F4 in bioassays and in nanotoxicology studies.
机译:流场流分离(F4)是用于大型分析物(包括纳米颗粒和生物分子复合物)的宝贵分离工具。然而,由于分析物-通道膜相互作用而导致的样品损失目前限制了F4的广泛使用,这可能会受到载液成分的强烈影响。这项工作研究了载液(CF)组成对F4中纳米颗粒(NP)回收的影响,重点是高离子强度条件。在生物分子友好的环境中成功分析NP可以将F4的适用性扩展到纳米生物技术的发展领域。在各种pH(6.2、7.4和8.2),增加的离子强度(0-0.1 M)以及不同类型的共离子和抗衡离子的CF中回收199-,102-和45-nm的未官能化聚苯乙烯NP ,进行了调查。此外,还研究了在高离子强度(0–0.15 M)下洗脱85 nm的羧酸盐NP和两种蛋白(人血清白蛋白(HSA)和免疫球蛋白(IgG))的方法。我们的结果表明: 1)带负电荷的NP与再生纤维素膜之间的静电排斥力是避免颗粒吸附在膜上的主要动力; 2)较大的颗粒具有较高的吸引力,因此受CF组成变化的影响更大; 3)包含弱阴离子或具有弱阴离子作为表面官能团的NP的缓冲液,由于更多的阴离子被捕获在NP多孔结构内,因此对离子强度的增加具有更高的耐受性。还使用人血清白蛋白和免疫球蛋白在盐析CF中简要研究了蛋白质在膜上的吸附。我们相信我们的发现可以帮助确定基本载液成分,以便在蛋白质友好的环境中对纳米颗粒进行F4分析时获得更高的样品回收率,这对于在生物测定和纳米毒理学研究中应用F4很有用。

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