Xu Yilan, Lin Honglu, Xiao Boyang, Tanoto Hutomo, Berinstein Joel, Khoshnaw Alend, Young Simon, Zhou Yuxiao, Dong Xiaoguang
Department of Mechanical Engineering, Vanderbilt University, Nashville, TN, 37212, USA.
Vanderbilt Institute for Surgery and Engineering, Vanderbilt University, Nashville, TN, 37212, USA.
Adv Healthc Mater. 2024 Dec;13(31):e2402373. doi: 10.1002/adhm.202402373. Epub 2024 Aug 7.
Enabling minimally invasive and precise control of liquid release in dental implants is crucial for therapeutic functions such as delivering antibiotics to prevent biofilm formation, infusing stem cells to promote osseointegration, and administering other biomedicines. However, achieving controllable liquid cargo release in dental implants remains challenging due to the lack of wireless and miniaturized fluidic control mechanisms. Here wireless miniature pumps and valves that allow remote activation of liquid cargo delivery in dental implants, actuated and controlled by external magnetic fields (<65 mT), are reported. A magnet-screw mechanism in a fluidic channel to function as a piston pump, alongside a flexible magnetic valve designed to open and close the fluidic channel, is proposed. The mechanisms are showcased by storing and releasing of liquid up to 52 µL in a dental implant. The liquid cargos are delivered directly to the implant-bone interface, a region traditionally difficult to access. On-demand liquid delivery is further showed by a metal implant inside both dental phantoms and porcine jawbones. The mechanisms are promising for controllable liquid release after implant placement with minimal invasion, paving the way for implantable devices that enable long-term and targeted delivery of therapeutic agents in various bioengineering applications.
实现牙科植入物中液体释放的微创和精确控制对于诸如递送抗生素以防止生物膜形成、注入干细胞以促进骨整合以及施用其他生物药物等治疗功能至关重要。然而,由于缺乏无线和小型化的流体控制机制,在牙科植入物中实现可控的液体载药释放仍然具有挑战性。在此,报道了一种无线微型泵和阀门,可通过外部磁场(<65 mT)驱动和控制,实现牙科植入物中液体载药的远程激活。提出了一种在流体通道中的磁螺杆机构作为活塞泵,以及一个设计用于打开和关闭流体通道的柔性磁阀。通过在牙科植入物中存储和释放高达52 μL的液体展示了这些机制。液体载药直接输送到植入物 - 骨界面,这是一个传统上难以到达的区域。在牙科模型和猪颌骨内的金属植入物上进一步展示了按需液体输送。这些机制有望在植入后以最小的侵入实现可控的液体释放,为在各种生物工程应用中实现治疗剂的长期和靶向递送的可植入设备铺平道路。