Department of Chemistry, University of Basel, Mattenstrasse 24a, BPR 1096, Basel 4058, Switzerland.
Nano Lett. 2022 Jul 13;22(13):5077-5085. doi: 10.1021/acs.nanolett.2c00332. Epub 2022 Jun 30.
Domain separation is crucial for proper cellular function and numerous biomedical technologies, especially artificial cells. While phase separation in hybrid membranes containing lipids and copolymers is well-known, the membranes' overall stability, limited by the lipid part, is hindering the technological applications. Here, we introduce a fully synthetic planar membrane undergoing phase separation into domains embedded within a continuous phase. The mono- and bilayer membranes are composed of two amphiphilic diblock copolymers (PEO--PEHOx and PMOXA--PDMS) with distinct properties and mixed at various concentrations. The molar ratio of the copolymers in the mixture and the nature of the solid support were the key parameters inducing nanoscale phase separation of the planar membranes. The size of the domains and resulting morphology of the nanopatterned surfaces were tailored by adjusting the molar ratios of the copolymers and transfer conditions. Our approach opens new avenues for the development of biomimetic planar membranes with a nanoscale texture.
域分离对于正常的细胞功能和许多生物医学技术至关重要,特别是人工细胞。虽然含有脂质和共聚物的混合膜中的相分离是众所周知的,但由于脂质部分的限制,膜的整体稳定性阻碍了技术应用。在这里,我们引入了一种完全由两种两亲性嵌段共聚物(PEO-PEHOx 和 PMOXA-PDMS)组成的单相和双层膜,这些共聚物具有不同的性质,并以不同的浓度混合。混合物中两种共聚物的摩尔比和固体支撑物的性质是诱导平面膜纳米相分离的关键参数。通过调节共聚物的摩尔比和转移条件,可以控制畴的大小和纳米图案表面的形貌。我们的方法为具有纳米纹理的仿生平面膜的发展开辟了新途径。