Super-Resolution Ultrasound Based Cell Tracking With Polymeric Nanobubbles

Junlin, Chen, Xiaoyu, Wang, Jilin, Fan, Bi, Wang, Hanghang, Fang, Yurui, Wang, Hao, Cui, Mohammad, Roufarshbaf, Ekaterina, Savina, Alexandra, Valeske, Quim, Peña, Yang, Shi, Andreas, Herrmann, Twan, Lammers, Mathias, Hornef, Roman, Barmin, Thomas, Lisson, Georg, Schmitz, Anne, Rix, Fabian, Kiessling

Advanced Materials |

Tracking the fate of transplanted cells in vivo remains a major challenge for the development and monitoring of cell-based therapies. Here, we report a nanobubble (NB) based acoustic labeling strategy that enables ultrasound localization microscopy (ULM) to track transplanted cells in tumors with single-cell-scale sensitivity and super-resolution spatial precision. We developed stable, biocompatible poly(butyl cyanoacrylate) NB that are efficiently internalized by cells and generate strong intracellular ultrasound signals. Furthermore, ULM allows the real-time visualization of individual cells, their localization, and trajectory reconstruction in flow phantoms and murine breast cancers. In the latter, NB-labeled bone marrow-derived mononuclear cells were tracked in vivo following intra-arterial injection, whereas unlabeled cells remained undetectable. By integrating cell trajectories with microbubble-based super-resolution vascular maps, our approach allows identification of the blood vessels that delivered the cells. This clinically compatible imaging strategy expands the application of ULM beyond vascular mapping and provides a platform for high-resolution, dynamic monitoring of cell-based therapies.