Nozdriukhin Daniil, Lyu Shuxin, Bonvin Jérôme, Reiss Michael, Razansky Daniel, Deán-Ben Xosé Luís
Institute for Biomedical Engineering and Institute of Pharmacology and Toxicology, Faculty of Medicine, University of Zürich, Winterthurerstrasse 190, Zurich, 8057, Switzerland.
Institute for Biomedical Engineering, Department of Information Technology and Electrical Engineering, ETH Zürich, Rämistrasse 101, Zurich, 8093, Switzerland.
Adv Healthc Mater. 2025 Mar;14(7):e2404242. doi: 10.1002/adhm.202404242. Epub 2025 Jan 24.
Efficient drug delivery remains a significant challenge in modern medicine and pharmaceutical research. Micrometer-scale robots have recently emerged as a promising solution to enhance the precision of drug administration through remotely controlled navigation within microvascular networks. Real-time tracking is crucial for accurate guidance and confirmation of target arrival. However, deep-tissue monitoring of microscopic structures in vivo is limited by the sensitivity and spatiotemporal resolution of current bioimaging techniques. In this study, biocompatible microrobots are synthesized by incorporating indocyanine green and iron oxide nanoparticles onto copper phosphate microflowers using a layer-by-layer approach, enhancing optoacoustic contrast and enabling magnetic navigation. Magnetic control of these particles under optoacoustic guidance is demonstrated in vivo. Furthermore, super-resolution optoacoustic imaging, achieved through individual particle tracking, is shown to enable the characterization of microvascular structures and quantification of blood flow. The combination of the microflowers' high carrying capacity, in vivo actuation, and high-resolution tracking capabilities opens new opportunities for precise microvascular targeting and localized administration of theranostic agents via intravascular routes.
在现代医学和制药研究中,高效的药物递送仍然是一个重大挑战。微米级机器人最近作为一种有前景的解决方案出现,通过在微血管网络内进行远程控制导航来提高药物给药的精度。实时跟踪对于准确引导和确认到达目标至关重要。然而,体内微观结构的深层组织监测受到当前生物成像技术的灵敏度和时空分辨率的限制。在本研究中,通过逐层方法将吲哚菁绿和氧化铁纳米颗粒结合到磷酸铜微花上,合成了生物相容性微机器人,增强了光声对比度并实现了磁导航。在体内证明了在光声引导下对这些颗粒进行磁控。此外,通过单个颗粒跟踪实现的超分辨率光声成像显示能够表征微血管结构并量化血流。微花的高载药量、体内驱动和高分辨率跟踪能力的结合为通过血管内途径精确微血管靶向和局部给药治疗诊断剂开辟了新机会。