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Aquaporin-Containing Proteopolymersomes in Polyelectrolyte Multilayer Membranes

机译:聚电解质多层膜中含有水通道蛋白的蛋白聚合物体

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摘要

The field of membranes saw huge developments in the last decades with the introduction of both polyelectrolyte multilayer (PEM)-based membranes and biomimetic membranes. In this work, we combine these two promising systems and demonstrate that proteopolymersomes (PP+) with the incorporated aquaporin protein can be distributed in a controlled fashion using PEMs, even on the inner surface of a hollow fiber membrane. In this way, various proteopolymersome multilayers (PPMs) are fabricated using PP+ as the positively charged species in combination with the polyanions poly(styrene 4-sulfonate) (PSS) and poly(acrylic acid) (PAA). It is shown by reflectometry through alternately adsorbing the polyanions and PP+ that, for both PAA and PSS, a good layer growth is possible. However, when the multilayers are imaged by SEM, the PAA-based PPMs show dewetting, whereas vesicular structures can only be clearly observed in and on the PSS-based PPMs. In addition, membrane permeability decreases upon coating the PPMs to 2.6 L∙m ∙h ∙bar for PAA/PP+ and 7.7 L∙m ∙h ∙bar for PSS/PP+. Salt retentions show that PAA/PP+ layers are defective (salt retentions <10% and high molecular weight cut-off (MWCO)), in line with the observed dewetting behavior, while PPMs based on PSS show 80% MgSO retention in combination with a low MWCO. The PSS/PP+ membranes show a Donnan-exclusion behavior with moderate MgCl retention (50%–55%) and high Na SO retention (85%–90%) indicating a high amount of negative charge present within the PPMs. The corresponding PEMs, on the other hand, are predominately positively charged with MgCl retention of 97%–98% and Na SO retention of 57%–80%. This means that the charge inside the multilayer and, thus, its separation behavior can be changed when PP+ is used instead of a polycation. When comparing the PPM membranes to the literature, similar performances are observed with other biomimetic membranes that are not based on interfacial polymerization, but these are the only ones prepared using a desired hollow fiber geometry. Combining PEMs and biomimetic approaches can, thus, lead to relevant membranes, especially adding to the versatility of both systems.
机译:在过去的几十年中,膜领域发生了巨大的发展,同时引入了基于聚电解质多层(PEM)的膜和仿生膜。在这项工作中,我们结合了这两个有前途的系统,并证明了蛋白聚合物小体(PP +)与掺入的水通道蛋白可以使用PEM以受控方式分布,甚至可以在中空纤维膜的内表面上分布。以这种方式,使用PP +作为带正电荷的物质,并与聚阴离子聚(苯乙烯4-磺酸盐)(PSS)和聚(丙烯酸)(PAA)结合,制造了各种蛋白聚合体多层(PPM)。通过反射法显示,通过交替吸附聚阴离子和PP +,对于PAA和PSS而言,可以实现良好的层生长。但是,当多层通过SEM成像时,基于PAA的PPM表现出去湿性,而只能在基于PSS的PPM之中和之上清楚地观察到囊泡结构。此外,涂布PPM时,膜渗透性降低,PAA / PP +为2.6 L∙m∙h∙bar,PSS / PP +为7.7 L∙m∙h∙bar。盐保留表明,PAA / PP +层是有缺陷的(盐保留<10%,并且具有高分子量截留值(MWCO)),与观察到的去湿行为一致,而基于PSS的PPM表现出80%的MgSO保留,与低MWCO。 PSS / PP +膜显示出Donnan排斥行为,其中MgCl保留适中(50%–55%)和NaSO保留高(85%–90%),表明PPM中存在大量负电荷。另一方面,相应的PEM主要带正电荷,MgCl保留率为97%–98%,NaSO保留率为57%–80%。这意味着当使用PP +代替聚阳离子时,可以改变多层内部的电荷及其分离行为。当将PPM膜与文献进行比较时,使用其他不基于界面聚合的仿生膜可观察到相似的性能,但这是使用所需中空纤维几何形状制备的仅有的那些。因此,将PEM和仿生方法相结合可以产生相关的膜,特别是增加两个系统的多功能性。

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