Physical Intelligence Department, Max Planck Institute for Intelligent Systems, Stuttgart, 70569, Germany.
Grup d'Enginyeria de Materials, Institut Químic de Sarrià, Universitat Ramon Llull, Barcelona, 08017, Spain.
Adv Mater. 2020 Oct;32(42):e2003013. doi: 10.1002/adma.202003013. Epub 2020 Aug 30.
Microrobots offer transformative solutions for non-invasive medical interventions due to their small size and untethered operation inside the human body. However, they must face the immune system as a natural protection mechanism against foreign threats. Here, non-immunogenic stealth zwitterionic microrobots that avoid recognition from immune cells are introduced. Fully zwitterionic photoresists are developed for two-photon polymerization 3D microprinting of hydrogel microrobots with ample functionalization: tunable mechanical properties, anti-biofouling and non-immunogenic properties, functionalization for magnetic actuation, encapsulation of biomolecules, and surface functionalization for drug delivery. Stealth microrobots avoid detection by macrophage cells of the innate immune system after exhaustive inspection (>90 hours), which has not been achieved in any microrobotic platform to date. These versatile zwitterionic materials eliminate a major roadblock in the development of biocompatible microrobots, and will serve as a toolbox of non-immunogenic materials for medical microrobot and other device technologies for bioengineering and biomedical applications.
微机器人由于其体积小且能够在人体内自由操作,为非侵入性医学干预提供了变革性的解决方案。然而,它们必须面对免疫系统,这是一种天然的防御机制,用于抵御外来威胁。在这里,我们引入了非免疫原性的隐形两性离子微机器人,它们可以避免被免疫细胞识别。我们开发了全两性离子光致抗蚀剂,用于双光子聚合 3D 微打印水凝胶微机器人,具有充分的功能化:可调的机械性能、抗生物污损和非免疫原性、用于磁驱动的功能化、生物分子的封装以及用于药物输送的表面功能化。隐形微机器人在经过彻底检查(超过 90 小时)后,能够避免先天免疫系统的巨噬细胞的检测,这在任何微机器人平台上都尚未实现。这些多功能两性离子材料消除了开发生物相容性微机器人的主要障碍,并将成为用于医学微机器人和其他用于生物工程和生物医学应用的设备技术的非免疫原性材料工具箱。