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NIS-Centered Reporter Gene Imaging and Radionuclide-Integrated Nanoplatforms for Quantitative Tracking of Immune Cell
Sang Bong Lee1,2,3,4
1SimVista Inc., Cheongju-si 28161, Republic of Korea.
Abstract:
Cell-based immunotherapies require noninvasive tools that can quantify the migration, biodistribution, and persistence of administered immune cells. This review focuses primarily on oncologic immune cell therapy, while also considering selected inflammatory disease models in which immune-cell trafficking is biologically relevant. We critically compare direct radionuclide labeling, sodium iodide symporter (NIS)-based reporter gene imaging, radionuclide-integrated nanoplatforms, and Cerenkov-based hybrid optical conversion strategies. Direct labeling with agents such as [89Zr]Zr-oxine, [111In]In-oxine, and [99ᵐTc]Tc-HMPAO enables early positron emission tomography (PET)/single-photon emission computed tomography (SPECT) biodistribution assessment, usually within hours to several days after cell administration. NIS reporter imaging with [124I]NaI, [123I]NaI, [99ᵐTc]TcO4-, or [18F]TFB supports repeated viability-dependent imaging, because signal generation depends on active transporter expression in living engineered cells. Radionuclide-integrated gold nanoplatforms can improve intracellular retention and offer theranostic potential through combined imaging, photothermal, radiotherapeutic, or immunomodulatory functions. We further discuss PET/SPECT balance, radiopharmaceutical nomenclature, nanoparticle stabilization, ethical aspects of genetic modification, tumor-on-a-chip systems for preclinical testing, and limitations of narrative evidence synthesis. Together, these platforms provide complementary strategies for image-guided immune cell therapy, with translational relevance for patient selection, treatment optimization, safety monitoring, and oncology practice. In conclusion, NIS-centered nuclear imaging and radionuclide-integrated nanoplatforms represent complementary, clinically actionable tools for quantitative immune-cell tracking, therapeutic optimization, and safety monitoring in translational oncology and inflammatory disease research.
Insights
This review compares noninvasive imaging tools for tracking immune cells in cancer therapy. Sodium iodide symporter (NIS) imaging and nanoplatforms offer complementary strategies for quantitative immune cell tracking and treatment optimization.
Area of Science:
- Nuclear Medicine and Molecular Imaging
- Immunotherapy
- Nanotechnology
Background:
- Cell-based immunotherapies are crucial for cancer treatment.
- Noninvasive tools are needed to monitor immune cell migration, biodistribution, and persistence.
- Understanding immune cell trafficking is vital in oncology and inflammatory diseases.
Purpose of the Study:
- To critically compare various noninvasive imaging strategies for immune cell tracking in oncologic and inflammatory diseases.
- To evaluate the translational relevance of these platforms for image-guided immune cell therapy.
- To highlight clinically actionable tools for quantitative immune cell tracking and therapeutic optimization.
Main Methods:
- Review of direct radionuclide labeling techniques (e.g., [89Zr]Zr-oxine, [111In]In-oxine).
- Analysis of sodium iodide symporter (NIS)-based reporter gene imaging (e.g., [124I]NaI).
- Evaluation of radionuclide-integrated nanoplatforms and Cerenkov-based hybrid optical conversion strategies.
Main Results:
- Direct labeling allows early biodistribution assessment within days.
- NIS reporter imaging enables repeated, viability-dependent tracking of engineered cells.
- Radionuclide-integrated nanoplatforms offer theranostic potential and improved intracellular retention.
Conclusions:
- NIS-centered nuclear imaging and radionuclide-integrated nanoplatforms are complementary, clinically actionable tools.
- These platforms are essential for quantitative immune cell tracking, therapeutic optimization, and safety monitoring in translational research.
- The reviewed strategies have significant translational relevance for patient selection, treatment optimization, and oncology practice.

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