Biofilm Research Laboratories, Center for Innovation & Precision Dentistry, School of Dental Medicine, University of Pennsylvania, Philadelphia, PA, USA.
Department of Endodontics, School of Dental Medicine, University of Pennsylvania, Philadelphia, PA, USA.
J Dent Res. 2022 Aug;101(9):1009-1014. doi: 10.1177/00220345221087149. Epub 2022 Apr 21.
Advances in small-scale robotics and nanotechnology are providing previously unimagined opportunities for new diagnostic and therapeutic approaches with high precision, control, and efficiency. We designed microrobots for tetherless biofilm treatment and retrieval using iron oxide nanoparticles (NPs) with dual catalytic-magnetic functionality as building blocks. We show 2 distinct microrobotic platforms. The first system is formed from NPs that assemble into aggregated microswarms under magnetic fields that can be controlled to disrupt and retrieve biofilm samples for microbial analysis. The second platform is composed of 3-dimensional (3D) micromolded opacifier-infused soft helicoids with embedded catalytic-magnetic NPs that can be visualized via existing radiographic imaging techniques and controlled magnetically inside the root canal, uninterrupted by the soft and hard tissues surrounding the teeth in an ex vivo model. These microrobots placed inside the root canal can remove biofilms and be efficiently guided with microscale precision. The proof-of-concept paradigm described here can be adapted to target difficult-to-reach anatomical spaces in other natural and implanted surfaces in an automated and tether-free manner.
小型机器人技术和纳米技术的进步为新的诊断和治疗方法提供了前所未有的机会,这些方法具有高精度、高控制和高效率。我们设计了用于无系留生物膜处理和回收的微型机器人,使用具有双重催化-磁性功能的氧化铁纳米颗粒 (NPs) 作为构建块。我们展示了 2 种不同的微型机器人平台。第一个系统由 NPs 组成,这些 NPs 在磁场下组装成聚集的微群,可以控制这些微群来破坏和回收生物膜样本进行微生物分析。第二个平台由 3D 微成型不透明剂注入软螺旋体组成,其中嵌入了催化-磁性 NPs,可以通过现有的射线照相成像技术进行可视化,并在根管内进行磁性控制,不受牙齿周围软硬组织的影响在体外模型中。这些放在根管内的微型机器人可以去除生物膜,并可以在微尺度精度上进行高效引导。这里描述的概念验证范例可以以自动化和无系留的方式适应其他自然和植入表面的难以到达的解剖空间。