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通过动态自组装胶束沉积工程化两性离子纳米球共聚物复合膜实现精确的蛋白质-蛋白质分离。

Zwitterionic nanospheres engineered co-polymer composite membrane for precise protein-protein separation via dynamic self-assembly micelle deposition.

机构信息

Chemistry Department, Zhejiang University, Hangzhou 310027, P. R. China.

MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310027, P. R. China.

出版信息

Colloids Surf B Biointerfaces. 2024 Nov;243:114118. doi: 10.1016/j.colsurfb.2024.114118. Epub 2024 Jul 21.

DOI:10.1016/j.colsurfb.2024.114118
PMID:39079187
Abstract

The accurate protein-protein separation is important but technically challenging. Achieving such a precise separation using membrane requires the selective channels with appropriate pore geometry structure and high anti-fouling property. In this study, polyethersulfone-b-poly(sulfobetaine methyl methacrylate) (PES-b-PSBMA) was synthesized and engineered onto polysulfone (PSF) ultrafiltration (UF) membrane to fabricate zwitterionic nanospheres engineered co-polymer (ZN-e-CoP) composite membrane via dynamic self-assembly micelle deposition. On the one hand, self-assembly zwitterionic nanospheres were used as blocks to construct hydrophilic layers with size-dependent sieving channels, endowing ZN-e-CoP composite membranes with enhanced permselectivity and protein-protein separation abilities, meanwhile zwitterionic groups from nanospheres reinforced the structure stability of nanospheres/nanospheres and nanospheres/membrane via multiple intermolecular interactions. On the other hand, zwitterionic nanospheres can induce to produce the hydration layer enveloping themselves by binding water molecules, where hydration layer acts as a protective barrier on the membrane surface, impeding the protein adhesion. Hence, ZN-e-CoP_1a composite membrane exhibited superior separation properties with Lysozyme/Bovine Serum Albumin (BSA) separation factor of 18.1 and 95.4 % rejection against BSA, 10.1 and 2.3 times, respectively, higher these of pristine PSF membrane (1.8 and 42.1 %), without obviously sacrificing water flux. Simultaneously, hydration layer enables the ZN-e-CoP_1a membrane with enhanced anti-fouling performance and durability during the long-term operations. The proposed approach opens new pathways to fabricate excellent anti-fouling membranes for precise protein-protein separation.

摘要

准确的蛋白质-蛋白质分离是重要的,但技术上具有挑战性。使用膜实现这种精确的分离需要具有适当的孔几何结构和高抗污染性能的选择性通道。在这项研究中,合成了聚醚砜-b-聚(磺酸甜菜碱甲基甲基丙烯酸酯)(PES-b-PSBMA),并通过动态自组装胶束沉积将其工程化到聚砜(PSF)超滤(UF)膜上,以制造两性离子纳米球工程共聚物(ZN-e-CoP)复合膜。一方面,自组装两性离子纳米球被用作构建具有尺寸依赖性筛分通道的亲水层的块,赋予 ZN-e-CoP 复合膜增强的渗透选择性和蛋白质-蛋白质分离能力,同时纳米球中的两性离子基团通过多种分子间相互作用增强了纳米球/纳米球和纳米球/膜的结构稳定性。另一方面,两性离子纳米球可以通过结合水分子诱导产生包裹自身的水合层,其中水合层在膜表面充当保护屏障,阻止蛋白质附着。因此,ZN-e-CoP_1a 复合膜表现出优异的分离性能,对溶菌酶/牛血清白蛋白(BSA)的分离因子为 18.1 和 95.4%,分别比原始 PSF 膜(1.8 和 42.1%)高 10.1 和 2.3 倍,而水通量没有明显降低。同时,水合层使 ZN-e-CoP_1a 膜在长期运行过程中具有增强的抗污染性能和耐久性。该方法为精确的蛋白质-蛋白质分离开辟了制造优异抗污染膜的新途径。

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