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首页> 外文期刊>ACS applied materials & interfaces >Highly Carbonylated Cellulose Nanofibrous Membranes Utilizing Maleic Anhydride Grafting for Efficient Lysozyme Adsorption
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Highly Carbonylated Cellulose Nanofibrous Membranes Utilizing Maleic Anhydride Grafting for Efficient Lysozyme Adsorption

机译:高度碳酸化纤维素纳米纤维膜利用马来酸酐接枝有效溶菌酶吸附。

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Construction of adsorptive materials for simple, efficient, and high-throughput adsorption of proteins is critical to meet the great demands of highly purified proteins in biotechnological and biopharmaceutical industry; however, it has proven extremely challenging. Here, we report a cost-effective strategy to create carbonyl groups surface-functionalized nanofibrous membranes under mild conditions for positively charged protein adsorption. Our approach allows maleic anhydride to in situ graft on cellulose nanofibrous membranes (CMA) to construct adsorptive membranes with large surface area and tortuous porous structure. Thereby, the resultant CMA membranes exhibited high adsorption capacity of 160 mg g(-1), fast equilibrium within 12 h, and good reversibility to lysozyme. Moreover, the dynamic adsorption was performed under low pressure-drops (750 Pa), with a relatively high saturation adsorption amount of 118 mg g(-1), which matched well with the requirements for proteins purification. Considering the excellent adsorption performance of the as-prepared adsorptive membranes, this simple and intriguing approach may pave a way for the design and development of robust and cost-effective adsorption membranes to meet the great demands for fast and efficient adsorption of positively charged proteins.
机译:构建用于简单,高效和高通量蛋白质吸附的吸附材料,对于满足生物技术和生物制药行业对高纯度蛋白质的巨大需求至关重要。然而,事实证明这是极具挑战性的。在这里,我们报告了在温和条件下产生带正电荷的蛋白质吸附的羰基基团表面官能化纳米纤维膜的高性价比策略。我们的方法允许顺丁烯二酸酐原位接枝到纤维素纳米纤维膜(CMA)上,以构建具有大表面积和曲折多孔结构的吸附膜。因此,所得的CMA膜表现出160 mg g(-1)的高吸附容量,在12 h内快速平衡以及对溶菌酶的良好可逆性。此外,动态吸附是在低压差(750 Pa)下进行的,相对较高的饱和吸附量为118 mg g(-1),非常适合蛋白质纯化的要求。考虑到所制备的吸附膜具有出色的吸附性能,这种简单而有趣的方法可以为设计和开发结实且具有成本效益的吸附膜铺平道路,以满足对快速高效吸附带正电荷蛋白质的巨大需求。

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