Chin Che-Lun, Huang Lu-Jan, Lu Zheng-Xian, Weng Wei-Chun, Chao Ling
Department of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.
Gels. 2023 Sep 15;9(9):751. doi: 10.3390/gels9090751.
The formation of supported lipid bilayers (SLBs) on hydrogels can act as a biocompatible anti-fouling interface. However, generating continuous and mobile SLBs on materials other than conventional glass or mica remains a significant challenge. The interaction between lipid membrane vesicles and a typical hydrogel is usually insufficient to induce membrane vesicle rupture and form a planar lipid membrane. In this study, we demonstrate that the water absorption ability of a dried polyacrylamide (PAAm) hydrogel could serve as a driving force to facilitate the formation of the hydrogel-SLBs. The absorption driving force vanishes after the hydrogels are fully hydrated, leaving no extra interaction hindering lipid lateral mobility in the formed SLBs. Our fluorescence recovery after photobleaching (FRAP) results show that SLBs only form on hydrogels with adequate absorption abilities. Moreover, we discovered that exposure to oxygen during drying could lead to the formation of an oxidized crust on the PAAm hydrogel surface, impeding SLB formation. Therefore, minimizing oxygen exposure during drying is crucial to achieving high-quality hydrogel surfaces for SLB formation. This water absorption method enables the straightforward fabrication of hydrogel-SLBs without the need for additional substrates or charges, thereby expanding their potential applications.
在水凝胶上形成支撑脂质双层(SLB)可作为生物相容性防污界面。然而,在传统玻璃或云母以外的材料上生成连续且可移动的SLB仍然是一项重大挑战。脂质膜囊泡与典型水凝胶之间的相互作用通常不足以诱导膜囊泡破裂并形成平面脂质膜。在本研究中,我们证明干燥的聚丙烯酰胺(PAAm)水凝胶的吸水能力可作为驱动力促进水凝胶-SLB的形成。水凝胶完全水合后,吸收驱动力消失,不会留下额外的相互作用来阻碍所形成SLB中脂质的横向移动。我们的光漂白后荧光恢复(FRAP)结果表明,SLB仅在具有足够吸收能力的水凝胶上形成。此外,我们发现干燥过程中暴露于氧气会导致PAAm水凝胶表面形成氧化硬壳,从而阻碍SLB的形成。因此,在干燥过程中尽量减少氧气暴露对于获得用于SLB形成的高质量水凝胶表面至关重要。这种吸水方法能够直接制备水凝胶-SLB,无需额外的底物或电荷,从而扩展了它们的潜在应用。