用于柔性生物电子学在神经弹性中的应用的活性氧清除剂的喷墨打印

A. Shafiee, E. Ghadiri, M. Salleh, M. Yahaya, A. Atala
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引用次数: 0

摘要

活性氧(ROS)引起的神经损伤可引发多种急性或慢性疾病,如阿尔茨海默氏症、亨廷顿氏症和帕金森病。然而,活性氧清除剂在神经元中修复DNA方面有很大的前景;在涂有活性氧清除剂的表面上生长的受损细胞可能能够恢复其功能和弹性。然而,这种表面的特性,以及清道夫沉积技术,可能会影响细胞正确粘附的能力。此外,在神经应用的生物电子学中,具有足够性能的薄膜对于电子设备的适当性能至关重要。因此,在制造与细胞系统集成的生物电子器件时,能够控制薄膜特性的精确可靠的沉积技术是必不可少的。因此,喷墨打印是一种很有前途的方法,具有计算机辅助协议和材料高效消耗等独特优势。我们报道了使用改进的喷墨打印机打印出具有活性氧清除行为的功能电子材料(锰[III] 5,10,15,20 -四[4-吡啶基]-21H, 23h -氯化卟啉四[甲氯])。基于顺序液滴之间的重叠量设计了不同的印刷图案方案,用于调整喷墨印刷薄膜的表面形貌,其粗糙度范围为8.84 ~ 41.20 nm。此外,打印后处理(如等离子体处理)将表面的接触角降低到20°,以增加受损细胞对ROS清除剂薄膜的粘附,增强其修复能力。这种功能电子材料的喷墨打印方法可以同时用作活性氧清除剂,增强了生物电子学在神经研究中的应用。
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Inkjet Printing Of A Reactive Oxygen Species Scavenger For Flexible Bioelectronics Applications In Neural Resilience
Neural damage caused by reactive oxygen species (ROS) can trigger several acute or chronic conditions such as Alzheimer’s, Huntington’s, and Parkinson’s diseases. However, ROS scavengers hold great promise for enabling DNA repair in neurons; damaged cells grown on surfaces coated with ROS-scavenging agents may be able to recover their functionality and resilience. Nevertheless, the properties of such surfaces, as well as the scavenger deposition technique, may influence the ability of cells to properly adhere. Moreover, in bioelectronics for neural applications, thin films with adequate properties are crucial for the proper performance of an electronic device. Therefore, precise and reliable deposition techniques that can control the characteristics of thin films are imperative when fabricating bioelectronic devices integrated with cellular systems. To that end, inkjet printing is a promising method with unique advantages such as computer-assisted protocols and efficient consumption of materials. We report the printing of a functional electronic material that exhibits ROS scavenging behavior (Manganese [III] 5, 10, 15, 20-tetra [4-pyridyl]-21H, 23H-porphine chloride tetrakis [methochloride]) using a modified inkjet printer. Different printed pattern schemes that were designed based on the amount of overlap among sequential droplets were used to tune the surface morphology of the inkjet-printed thin films with a wide range of roughness (8.84 to 41.20 nm). Furthermore, post-printing processes (such as plasma treatment) reduced the contact angle of the surface to 20° to increase the adhesion of the damaged cells to the ROS scavenger thin film and enhanced their repair. Such inkjet printing methods of functional electronics materials that can simultaneously be used as ROS scavengers enhance the role of bioelectronics applications in neural studies.
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