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Emerging Anti-Fouling Methods: Towards Reusability of 3D-Printed Devices for Biomedical Applications

机译:新兴的防污方法:面向生物医学应用的3D打印设备的可重用性

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Microfluidic devices are used in a myriad of biomedical applications such as cancer screening, drug testing, and point-of-care diagnostics. Three-dimensional (3D) printing offers a low-cost, rapid prototyping, efficient fabrication method, as compared to the costly—in terms of time, labor, and resources—traditional fabrication method of soft lithography of poly(dimethylsiloxane) (PDMS). Various 3D printing methods are applicable, including fused deposition modeling, stereolithography, and photopolymer inkjet printing. Additionally, several materials are available that have low-viscosity in their raw form and, after printing and curing, exhibit high material strength, optical transparency, and biocompatibility. These features make 3D-printed microfluidic chips ideal for biomedical applications. However, for developing devices capable of long-term use, fouling—by nonspecific protein absorption and bacterial adhesion due to the intrinsic hydrophobicity of most 3D-printed materials—presents a barrier to reusability. For this reason, there is a growing interest in anti-fouling methods and materials. Traditional and emerging approaches to anti-fouling are presented in regard to their applicability to microfluidic chips, with a particular interest in approaches compatible with 3D-printed chips.
机译:微流控设备用于多种生物医学应用中,例如癌症筛查,药物测试和即时诊断。与昂贵的时间,人工和资源相比,三维(3D)打印提供了一种低成本,快速的原型制作,高效的制造方法,而传统的聚二甲基硅氧烷(PDMS)软光刻方法。适用各种3D打印方法,包括熔融沉积建模,立体光刻和光敏聚合物喷墨打印。此外,有几种材料的原始形式的粘度低,并且在印刷和固化后具有高的材料强度,光学透明性和生物相容性。这些功能使3D打印的微流控芯片非常适合生物医学应用。但是,对于能够长期使用的设备,由于大多数3D打印材料固有的疏水性,由于非特异性蛋白质吸收和细菌粘附而造成的结垢,对可重复使用性构成了障碍。因此,对防污方法和材料的兴趣与日俱增。关于防污垢对微流体芯片的适用性,提出了传统的和新兴的防污方法,特别是对与3D打印芯片兼容的方法感兴趣。

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