Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, New Jersey 08544, USA.
Nano Lett. 2013 Jun 12;13(6):2634-9. doi: 10.1021/nl4007744.
The ability to three-dimensionally interweave biological tissue with functional electronics could enable the creation of bionic organs possessing enhanced functionalities over their human counterparts. Conventional electronic devices are inherently two-dimensional, preventing seamless multidimensional integration with synthetic biology, as the processes and materials are very different. Here, we present a novel strategy for overcoming these difficulties via additive manufacturing of biological cells with structural and nanoparticle derived electronic elements. As a proof of concept, we generated a bionic ear via 3D printing of a cell-seeded hydrogel matrix in the anatomic geometry of a human ear, along with an intertwined conducting polymer consisting of infused silver nanoparticles. This allowed for in vitro culturing of cartilage tissue around an inductive coil antenna in the ear, which subsequently enables readout of inductively-coupled signals from cochlea-shaped electrodes. The printed ear exhibits enhanced auditory sensing for radio frequency reception, and complementary left and right ears can listen to stereo audio music. Overall, our approach suggests a means to intricately merge biologic and nanoelectronic functionalities via 3D printing.
将生物组织与功能电子设备进行三维交织的能力可以实现仿生器官的创造,使其具有超越人类对应器官的增强功能。传统的电子设备本质上是二维的,这使得它们无法与合成生物学进行无缝的多维集成,因为这两个过程和使用的材料非常不同。在这里,我们通过使用具有结构和纳米颗粒衍生电子元件的生物细胞的增材制造提出了一种克服这些困难的新策略。作为概念验证,我们通过在人体耳朵的解剖几何形状中打印细胞接种水凝胶基质,并交织由注入的银纳米颗粒组成的导电聚合物,生成了仿生耳朵。这使得可以在耳朵中的感应线圈天线周围培养软骨组织,从而可以从耳蜗形电极读取感应耦合信号。打印的耳朵对射频接收具有增强的听觉感应功能,并且左右互补的耳朵可以收听立体声音乐。总的来说,我们的方法通过 3D 打印提出了一种将生物和纳米电子功能巧妙融合的方法。