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氧化钛表面混合脂质双层膜的简化制备:单尾和双尾自组装单分子层分子的比较

Streamlined Fabrication of Hybrid Lipid Bilayer Membranes on Titanium Oxide Surfaces: A Comparison of One- and Two-Tail SAM Molecules.

作者信息

Sut Tun Naw, Tan Sue Woon, Jeon Won-Yong, Yoon Bo Kyeong, Cho Nam-Joon, Jackman Joshua A

机构信息

School of Chemical Engineering and Translational Nanobioscience Research Center, Sungkyunkwan University, Suwon 16419, Korea.

School of Healthcare and Biomedical Engineering, Chonnam National University, Yeosu 59626, Korea.

出版信息

Nanomaterials (Basel). 2022 Mar 30;12(7):1153. doi: 10.3390/nano12071153.

Abstract

There is broad interest in fabricating cell-membrane-mimicking, hybrid lipid bilayer (HLB) coatings on titanium oxide surfaces for medical implant and drug delivery applications. However, existing fabrication strategies are complex, and there is an outstanding need to develop a streamlined method that can be performed quickly at room temperature. Towards this goal, herein, we characterized the room-temperature deposition kinetics and adlayer properties of one- and two-tail phosphonic acid-functionalized molecules on titanium oxide surfaces in various solvent systems and identified optimal conditions to prepare self-assembled monolayers (SAMs), upon which HLBs could be formed in select cases. Among the molecular candidates, we identified a two-tail molecule that formed a rigidly attached SAM to enable HLB fabrication via vesicle fusion for membrane-based biosensing applications. By contrast, vesicles adsorbed but did not rupture on SAMs composed of one-tail molecules. Our findings support that two-tail phosphonic acid SAMs offer superior capabilities for rapid HLB coating fabrication at room temperature, and these streamlined capabilities could be useful to prepare durable lipid bilayer coatings on titanium-based materials.

摘要

在医学植入物和药物递送应用中,人们对在二氧化钛表面制备模拟细胞膜的混合脂质双层(HLB)涂层有着广泛的兴趣。然而,现有的制备策略很复杂,迫切需要开发一种可以在室温下快速完成的简化方法。为了实现这一目标,在此我们表征了单尾和双尾膦酸功能化分子在各种溶剂体系中在二氧化钛表面的室温沉积动力学和吸附层性质,并确定了制备自组装单分子层(SAMs)的最佳条件,在某些情况下可以在其上形成HLB。在候选分子中,我们鉴定出一种双尾分子,它形成了牢固附着的SAM,能够通过囊泡融合制备HLB,用于基于膜的生物传感应用。相比之下,囊泡吸附在由单尾分子组成的SAM上,但不会破裂。我们的研究结果表明,双尾膦酸SAM在室温下具有快速制备HLB涂层的卓越能力,这些简化的能力对于在钛基材料上制备耐用的脂质双层涂层可能很有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a202/9000636/bf6ecd40ba0b/nanomaterials-12-01153-g001.jpg

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