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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Strategically Designing a Pumpless Microfluidic Device on an 'Inert' Polypropylene Substrate with Potential Application in Biosensing and Diagnostics
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Strategically Designing a Pumpless Microfluidic Device on an 'Inert' Polypropylene Substrate with Potential Application in Biosensing and Diagnostics

机译:在“惰性”聚丙烯基材上,在生物传感和诊断中的潜在应用,战略性地设计浮肿微流体装置

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摘要

This study is an attempt to make a step forward to implement the very immature concept of pumpless transportation of liquid into a real miniaturized device or lab-on-chip (LOC) on a plastic substrate. "Inert" plastic materials such as polypropylene (PP) are used in a variety of biomedical applications but their surface engineering is very challenging. Here, it was demonstrated that with a facile innovative wettability patterning route using fluorosilanized UV-independent TiO2 nanoparticle coating it is possible to create wedge-shaped open microfluidic tracks on inert solid surfaces for low-cost biomedical devices (lab-on-plastic). For the future miniaturization and integration of the tracks into a device, a variety of characterization techniques were used to not only systematically study the surface patterning chemistry and topography but also to have a clear knowledge of its biological interactions and performance. The effect of such surface architecture on the biological performance was studied in terms of static/dynamic protein (bovine serum albumin) adsorption, bacterial (Staphylococcus aureus and Staphylococcus epidermidis) adhesion, cell viability (using HeLa and MCF-7 cancer cell lines as well as noncancerous human fibroblast cells), and cell patterning (Murine embryonic fibroblasts). Strategies are discussed for incorporating such a confined track into a diagnostic device in which its sensing portion is based on protein, microorganism, or cells. Finally, for the proof-of-principle of biosensing application, the well-known high-affinity molecular couple of BSA-antiBSA as a biological model was employed.
机译:该研究是一种努力向前迈出液体液体浮气输送到真实的小型化装置或塑料基材上的实验室(LOC)的一步。 “惰性”塑料材料如聚丙烯(PP)用于各种生物医学应用,但它们的表面工程非常具有挑战性。这里,证明使用氟硅化UV独立的TiO2纳米粒子涂层的容易创新的润湿性图案化途径,可以在惰性固体表面上为低成本生物医学装置(实验室塑料)产生楔形开放的微流体轨道。对于未来轨道的小型化和整合到一种装置中,使用各种特征技术来不仅系统地研究表面图案化化学和地形,而且还可以清楚地了解其生物相互作用和性能。在静态/动态蛋白(牛血清白蛋白)吸附,细菌(金黄色葡萄球菌和葡萄球菌)粘附,细胞活力(使用HeLa和MCF-7癌细胞系中,研究了这种表面架构对生物学性能的影响作为非癌症人的成纤维细胞),和细胞图案化(鼠胚胎成纤维细胞)。讨论策略以将这种密度轨道掺入诊断装置中,其中其感测部分基于蛋白质,微生物或细胞。最后,对于生物传感应用的原理原理,采用了作为生物学模型的众所周知的高亲和力分子耦合。

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