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Lightsey, S.

Publications and source records attributed to Lightsey, S..

2 recordsLinked to original sources

Towards Reliable Tracking of Natural Killer Cells Using Commercial Iron Oxide Nanoparticles and Magnetic Particle Imaging

Non-invasive tracking of natural killer (NK) cells remains a major challenge in cancer immunotherapy, limiting our understanding of their in vivo migration and persistence. Magnetic particle imaging (MPI) offers a quantitative, real-time method for visualizing labeled cells, yet optimal labeling protocols for NK cells have not been established. Here, we evaluate commercially available iron oxide nanoparticles (IONPs) for MPI labeling of both NK92MI cells and primary human NK cells. Labeled cells retained viability and cytotoxicity, including activity against three-dimensional tumor spheroids, and were detectable by MPI. To further examine imaging performance in a biologically relevant context, we employed mouse phantoms that recapitulate organ-specific signal distributions, enabling evaluation of quantification and liver spillover effects. We identify key tradeoffs between particle colloidal stability and per-cell iron content: VivoTrax and VivoTrax Plus provided higher MPI signal but required post-labeling purification, reducing cell recovery, whereas Synomag-D and Perimag were more stable and preserved cell yield despite lower signal intensity per cell. These results provide a framework for selecting nanoparticles that balance detection sensitivity, cell viability, and workflow practicality, advancing non-invasive NK cell tracking.

bioengineering↗

3D Chemotaxis Chip for Investigating Natural Killer Cell Migration Mechanisms

IntroductionNatural killer (NK) cells are a promising tool for cancer immunotherapy, as they can rapidly recognize and kill cancer cells without prior knowledge of tumor-specific antigens while leaving healthy cells unharmed. However, a major challenge in NK cell-based therapies is their inadequate infiltration and function within solid tumors. Advancements in NK cell therapies for solid malignancies require a better understanding of the various factors that influence NK cell migration to and within the tumor microenvironment. MethodsThe objective of this study was to develop a chemotaxis chip with a tunable 3D hydrogel that enables the spatiotemporal analysis of NK cell migration. Results/DiscussionBy manipulating the 3D hydrogel or inhibiting key integrin and protease interactions, we found that NK cells heavily relied on protease-dependent migration but could leverage other mechanisms for faster migration. Additionally, when hyaluronic acid, an important extracellular matrix component in tumors, was incorporated into the hydrogel, NK cells migrated faster and farther in the chemotaxis chip. ConclusionThis study establishes a novel migration assay to observe NK cell behavior in real-time, providing a platform for investigating the mechanisms of NK cell migration and identifying strategies to improve NK cell trafficking within solid tumors.

bioengineering↗