Shortwave-infrared-light-emitting probes for the in vivo tracking of cancer vaccines and the elicited immune responses.

Ren, Fuqiang; Wang, Feifei; Baghdasaryan, Ani; Li, Ying; Liu, Haoran; Hsu, RuSiou; Wang, Chuchu; Li, Jiachen et al. · Nat Biomed Eng · 2024

basic_science · Level V

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Abstract

Tracking and imaging immune cells in vivo non-invasively would offer insights into the immune responses induced by vaccination. Here we report a cancer vaccine consisting of polymer-coated NaErF<sub>4</sub>/NaYF<sub>4</sub> core-shell down-conversion nanoparticles emitting luminescence in the near-infrared spectral window IIb (1,500-1,700 nm in wavelength) and with surface-conjugated antigen (ovalbumin) and electrostatically complexed adjuvant (class-B cytosine-phosphate-guanine). Whole-body wide-field imaging of the subcutaneously injected vaccine in tumour-bearing mice revealed rapid migration of the nanoparticles to lymph nodes through lymphatic vessels, with two doses of the vaccine leading to the complete eradication of pre-existing tumours and to the prophylactic inhibition of tumour growth. The abundance of antigen-specific CD8<sup>+</sup> T lymphocytes in the tumour microenvironment correlated with vaccine efficacy, as we show via continuous-wave imaging and lifetime imaging of two intravenously injected near-infrared-emitting probes (CD8<sup>+</sup>-T-cell-targeted NaYbF<sub>4</sub>/NaYF<sub>4</sub> nanoparticles and H-2K<sup>b</sup>/ovalbumin<sub>257-264</sub> tetramer/PbS/CdS quantum dots) excited at different wavelengths, and by volumetrically visualizing the three nanoparticles via light-sheet microscopy with structured illumination. Nanoparticle-based vaccines and imaging probes emitting infrared light may facilitate the design and optimization of immunotherapies.

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