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Silk protein nanowires patterned using electron beam lithography

机译:丝蛋白纳米线使用电子束光刻图案化

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Nanofabrication approaches to pattern proteins at the nanoscale are useful in applications ranging from organic bioelectronics to cellular engineering. Specifically, functional materials based on natural polymers offer sustainable and environment-friendly substitutes to synthetic polymers. Silk proteins (fibroin and sericin) have emerged as an important class of biomaterials for next generation applications owing to excellent optical and mechanical properties, inherent biocompatibility, and biodegradability. However, the ability to precisely control their spatial positioning at the nanoscale via high throughput tools continues to remain a challenge. In this study electron beam lithography (EBL) is used to provide nanoscale patterning using methacrylate conjugated silk proteins that are photoreactive 'photoresists' materials. Very low energy electron beam radiation can be used to pattern silk proteins at the nanoscale and over large areas, whereby such nanostructure fabrication can be performed without specialized EBL tools. Significantly, using conducting polymers in conjunction with these silk proteins, the formation of protein nanowires down to 100 nm is shown. These wires can be easily degraded using enzymatic degradation. Thus, proteins can be precisely and scalably patterned and doped with conducting polymers and enzymes to form degradable, organic bioelectronic devices.
机译:纳米尺度在纳米级蛋白质的纳米制备方法可用于从有机生物电体到细胞工程的应用。具体地,基于天然聚合物的功能材料为合成聚合物提供可持续和环保的替代品。由于光学和机械性能优异,生物相容性和生物降解性,丝蛋白(纤维蛋白和硅蛋白)作为下一代应用的重要应用。然而,通过高吞吐工工具精确地控制纳米级在纳米级的空间定位的能力仍然是挑战。在本研究中,电子束光刻(EBL)用于使用甲基丙烯酸酯共轭丝蛋白提供纳米级图案,其是光反应性的“光致抗蚀剂”材料。非常低的能量电子束辐射可用于在纳米级和大面积上进行丝蛋白,由此可以进行这种纳米结构制造,而无需专门的EBL工具。显着地,使用导电聚合物与这些丝蛋白结合,显示蛋白质纳米线的形成降至100nm。可以使用酶促劣化容易地降解这些电线。因此,蛋白质可以精确地且缩放地图案化并掺杂有传导聚合物和酶以形成可降解的有机生物电气器件。

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