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人血清白蛋白在二氧化硅上的吸附动力学:蛋白质溶液稳定性的影响。

Human Serum Albumin Adsorption Kinetics on Silica: Influence of Protein Solution Stability.

机构信息

Jerzy Haber Institute of Catalysis and Surface Chemistry , Polish Academy of Science , Niezapominajek 8 , 30-239 Cracow , Poland.

出版信息

Langmuir. 2019 Feb 19;35(7):2639-2648. doi: 10.1021/acs.langmuir.8b03266. Epub 2019 Feb 7.

Abstract

Adsorption kinetics of human serum albumin (HSA) on silica substrates was studied using optical waveguide lightmode spectroscopy (OWLS) and quartz microbalance (QCM) techniques. Measurements were performed at pH 3.5, 5.6, and 7.4 for various bulk suspension concentrations and ionic strengths. The diffusion coefficient measurements showed that for pH 3.5 the HSA molecules are stable for NaCl concentrations from 10 to 0.15 M. This allowed us to precisely determine the mass transfer rate coefficients for the OWLS and QCM cells. The experimental data were adequately interpreted in terms of a hybrid random sequential adsorption model. The OWLS maximum coverage of HSA at pH 3.5, which is equal to 1.3 mg m, agrees with the QCM result and with previous results derived from streaming potential measurements. Thus, the results obtained at pH 3.5 served as reference data for the analysis of adsorption kinetics at higher pHs. In this way, it was confirmed that the adsorption kinetics of HSA molecules at pH 5.6 and 7.4 was considerably slower than at pH 3.5. This effect was attributed to aggregation of HSA solutions and interpreted in terms of a theoretical model combining the Smoluchowski aggregation theory with the convective diffusion mass transfer theory. New analytical equations were derived that can be used for the interpretation of other protein adsorption from unstable solutions.

摘要

采用光波导光模态光谱(OWLS)和石英晶体微天平(QCM)技术研究了人血清白蛋白(HSA)在硅胶基底上的吸附动力学。在 pH 3.5、5.6 和 7.4 下,针对不同的本体悬浮浓度和离子强度进行了测量。扩散系数测量表明,在 pH 3.5 下,HSA 分子在 NaCl 浓度从 10 到 0.15 M 时稳定。这使得我们能够精确确定 OWLS 和 QCM 细胞的传质速率系数。实验数据根据混合随机顺序吸附模型得到了很好的解释。在 pH 3.5 下,OWLS 对 HSA 的最大覆盖度为 1.3 mg m,与 QCM 结果和先前从流动电势测量中得出的结果一致。因此,在 pH 3.5 下获得的结果被用作分析更高 pH 值下吸附动力学的参考数据。这样,就证实了 HSA 分子在 pH 5.6 和 7.4 时的吸附动力学明显比在 pH 3.5 时慢。这种效应归因于 HSA 溶液的聚集,并根据将 Smoluchowski 聚集理论与对流扩散传质理论相结合的理论模型进行了解释。推导出了新的分析方程,可用于解释其他从不稳定溶液中吸附的蛋白质。

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