In vivo tracking of CAR-T cells in tumors via nanobubble-based contrast enhanced ultrasound

Abstract

CAR-T cell therapy has led to remarkable advances in the outcomes of patients with acute lymphoblastic leukemia (ALL), B cell lymphomas, and multiple myeloma. Given these successes in hematologic malignancies, extensive efforts are now focused on developing CAR-T cell therapies to treat solid tumors. The treatment of solid tumors poses significant hurdles with cell trafficking necessary to achieve efficacy and minimize off-tumor side effects. The development of simple, safe and inexpensive modalities for tracking CAR-T cell distribution in clinical use in vivo could provide critical insights to facilitate the development of improved CAR-T products for solid tumors. Here, we demonstrate a strategy to monitor CAR-T cells in vivo using ultrasound imaging of nanobubble (NB) labeled cells. NBs are ultrasound contrast agents composed of a lipid shell and a C4F10 gas core that can be efficiently internalized into cells. This approach enables us to image the CAR-T cells using nonlinear contrast-enhanced ultrasound (CEUS). Utilizing this method, we found that CAR-T cells can be visualized after injection into both tumor-bearing and non-tumor bearing mice. In summary, our ultrasound-based tracking approach can effectively monitor the trafficking of CAR-T cells in vivo, offering a valuable new strategy that can further enable the development of new CAR-T products and strategies to modulate cell trafficking.

Graphical abstract: In vivo tracking of CAR-T cells in tumors via nanobubble-based contrast enhanced ultrasound

Supplementary files

Article information

Article type
Communication
Submitted
22 Oct 2025
Accepted
22 Dec 2025
First published
27 Jan 2026
This article is Open Access
Creative Commons BY-NC license

Nanoscale Horiz., 2026, Advance Article

In vivo tracking of CAR-T cells in tumors via nanobubble-based contrast enhanced ultrasound

D. Durig, J. Franklin, R. Perera, Z. Jackson, S. H. Vasanna, M. C. Kolios, D. N. Wald and A. A. Exner, Nanoscale Horiz., 2026, Advance Article , DOI: 10.1039/D5NH00708A

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