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微流控中电制造的独立壳聚糖膜的可编程物理性质

Programmable Physical Properties of Freestanding Chitosan Membranes Electrofabricated in Microfluidics.

作者信息

Ly Khanh L, Hu Piao, Raub Christopher B, Luo Xiaolong

机构信息

Department of Biomedical Engineering, School of Engineering, Catholic University of America, Washington, DC 20064, USA.

Department of Mechanical Engineering, School of Engineering, Catholic University of America, Washington, DC 20064, USA.

出版信息

Membranes (Basel). 2023 Feb 28;13(3):294. doi: 10.3390/membranes13030294.

Abstract

Microfluidic-integrated freestanding membranes with suitable biocompatibility and tunable physicochemical properties are in high demand for a wide range of life science and biological studies. However, there is a lack of facile and rapid methods to integrate such versatile membranes into microfluidics. A recently invented interfacial electrofabrication of chitosan membranes offers an in-situ membrane integration strategy that is flexible, controllable, simple, and biologically friendly. In this follow-up study, we explored the ability to program the physical properties of these chitosan membranes by varying the electrofabrication conditions (e.g., applied voltage and pH of alginate). We found a strong association between membrane growth rate, properties, and fabrication parameters: high electrical stimuli and pH of alginate resulted in high optical retardance and low permeability, and vice versa. This suggests that the molecular alignment and density of electrofabricated chitosan membranes could be actively tailored according to application needs. Lastly, we demonstrated that this interfacial electrofabrication could easily be expanded to produce chitosan membrane arrays with higher uniformity than the previously well-established flow assembly method. This study demonstrates the tunability of the electrofabricated membranes' properties and functionality, thus expanding the utility of such membranes for broader applications in the future.

摘要

具有合适生物相容性和可调物理化学性质的微流体集成独立膜在广泛的生命科学和生物学研究中需求很高。然而,缺乏将这种多功能膜集成到微流体中的简便快速方法。最近发明的壳聚糖膜界面电制造提供了一种原位膜集成策略,该策略灵活、可控、简单且对生物友好。在这项后续研究中,我们探索了通过改变电制造条件(例如施加电压和藻酸盐的pH值)来调控这些壳聚糖膜物理性质的能力。我们发现膜的生长速率、性质和制造参数之间存在很强的关联:高电刺激和藻酸盐的pH值导致高光学延迟和低渗透性,反之亦然。这表明可以根据应用需求主动调整电制造壳聚糖膜的分子排列和密度。最后,我们证明这种界面电制造可以轻松扩展以生产比先前成熟的流动组装方法具有更高均匀性的壳聚糖膜阵列。这项研究证明了电制造膜的性质和功能的可调性,从而扩展了此类膜在未来更广泛应用中的效用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db9b/10052736/108f09355af8/membranes-13-00294-g001.jpg

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