Li Zhiyu, Yu Lingzhu, Lan Fang, Wu Yao
National Engineering Research Center for Biomaterials, Sichuan University, Chengdu 610064, P. R. China.
J Mater Chem B. 2021 Jan 21;9(2):453-463. doi: 10.1039/d0tb01901a.
Abnormal protein glycosylation is associated with many diseases including cardiovascular disease, diabetes, and cancer. Therefore, selective capturing of glycoproteins under physiological or weak acid conditions (tumor microenvironment) is vital for disease diagnosis and further comprehensive analysis. Here, we propose a strategy of intermolecular B-N bond-based phenylboronic acid affinity to capture glycoproteins under neutral and slightly acidic conditions. Surprisingly, the captured glycoproteins were released in alkaline solution. This is contrary to the traditional phenylboric acid affinity, and we studied this from the perspective of materials, proteins, and incubation conditions. We identified the synergistic effect of intermolecular B-N bond-based phenylboronic acid affinity, electrostatic interaction, and polymer brush structure-based glycoprotein adsorption under slightly acidic conditions. The electrostatic repulsion between Fe3O4@SiO2@poly (2-aminoethyl methacrylate hydrochloride)-4-carboxyphenylboronic acid (Fe3O4@SiO2@PAMA-CPBA) nanoparticles and transferrin (TRF) was far greater than the specific binding between phenylboric acid of CPBA and glycosylation residues of TRF resulting in the release of the captured glycoproteins in alkaline solution. Fe3O4@SiO2@PAMA-CPBA nanoparticles exhibited different selectivity capabilities toward different glycoproteins in multiprotein solutions due to protein interactions. These results may pave a new way for the design of phenylboric acid-based materials towards glycoprotein adsorption in a physiological environment.
异常的蛋白质糖基化与包括心血管疾病、糖尿病和癌症在内的多种疾病相关。因此,在生理条件或弱酸条件(肿瘤微环境)下选择性捕获糖蛋白对于疾病诊断和进一步的综合分析至关重要。在此,我们提出一种基于分子间B-N键的苯基硼酸亲和力策略,用于在中性和微酸性条件下捕获糖蛋白。令人惊讶的是,捕获的糖蛋白在碱性溶液中会释放出来。这与传统的苯基硼酸亲和力相反,我们从材料、蛋白质和孵育条件的角度对此进行了研究。我们确定了在微酸性条件下基于分子间B-N键的苯基硼酸亲和力、静电相互作用和基于聚合物刷结构的糖蛋白吸附的协同效应。Fe3O4@SiO2@聚(甲基丙烯酸2-氨基乙酯盐酸盐)-4-羧基苯基硼酸(Fe3O4@SiO2@PAMA-CPBA)纳米颗粒与转铁蛋白(TRF)之间的静电排斥力远大于CPBA的苯基硼酸与TRF的糖基化残基之间的特异性结合,导致捕获的糖蛋白在碱性溶液中释放。由于蛋白质相互作用,Fe3O4@SiO2@PAMA-CPBA纳米颗粒在多蛋白溶液中对不同的糖蛋白表现出不同的选择性能力。这些结果可能为设计用于在生理环境中吸附糖蛋白的苯基硼酸基材料开辟一条新途径。