Woodington Ben J, Curto Vincenzo F, Yu Yi-Lin, Martínez-Domínguez Héctor, Coles Lawrence, Malliaras George G, Proctor Christopher M, Barone Damiano G
Department of Engineering, University of Cambridge, Trumpington Street, Cambridge, UK.
Department of Clinical Neurosciences, University of Cambridge, Cambridge Biomedical Campus, Cambridge, UK.
Sci Adv. 2021 Jun 25;7(26). doi: 10.1126/sciadv.abg7833. Print 2021 Jun.
Spinal cord stimulation is one of the oldest and most established neuromodulation therapies. However, today, clinicians need to choose between bulky paddle-type devices, requiring invasive surgery under general anesthetic, and percutaneous lead-type devices, which can be implanted via simple needle puncture under local anesthetic but offer clinical drawbacks when compared with paddle devices. By applying photo- and soft lithography fabrication, we have developed a device that features thin, flexible electronics and integrated fluidic channels. This device can be rolled up into the shape of a standard percutaneous needle then implanted on the site of interest before being expanded in situ, unfurling into its paddle-type conformation. The device and implantation procedure have been validated in vitro and on human cadaver models. This device paves the way for shape-changing bioelectronic devices that offer a large footprint for sensing or stimulation but are implanted in patients percutaneously in a minimally invasive fashion.
脊髓刺激是最古老且最成熟的神经调节疗法之一。然而如今,临床医生需要在两种设备之间做出选择:一种是体积较大的片状设备,需要在全身麻醉下进行侵入性手术;另一种是经皮导线型设备,可在局部麻醉下通过简单的针刺植入,但与片状设备相比存在临床缺陷。通过应用光刻和软光刻制造技术,我们开发出了一种具有薄而灵活的电子元件和集成流体通道的设备。该设备可以卷成标准经皮针的形状,然后在感兴趣的部位植入,随后在原位展开,展开成其片状结构。该设备和植入程序已在体外和人体尸体模型上得到验证。该设备为可变形生物电子设备铺平了道路,这种设备可为传感或刺激提供较大的作用面积,但以微创方式经皮植入患者体内。