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Magnetic resonance imaging of tumor-associated-macrophages (TAMs) with a nanoparticle contrast agent
Junhan Zhou1, Vijaykumar S Meli2, Esther Yu-Tin Chen2
1Chemistry Graduate Group, University of California Davis CA 95616 USA aylouie@ucdavis.edu.
Abstract:
In the tumor micro-environment, tumor associated macrophages (TAMs) represent a predominant component of the total tumor mass, and TAMs play a complex and diverse role in cancer pathogenesis with potential for either tumor suppressive, or tumor promoting biology. Thus, understanding macrophage localization and function are essential for cancer diagnosis and treatment. Typically, tissue biopsy is used to evaluate the density and polarization of TAMs, but provides a limited "snapshot" in time of a dynamic and potentially heterogeneous tumor immune microenvironment. Imaging has the potential for three-dimensional mapping; however, there is a paucity of macrophage-targeted contrast agents to specifically detect TAM subtypes. We have previously found that sulfated-dextran coated iron oxide nanoparticles (SDIO) can target macrophage scavenger receptor A (SR-A, also known as CD204). Since CD204 (SR-A) is considered a biomarker for the M2 macrophage polarization, these SDIO might provide M2-specific imaging probes for MRI. In this work, we investigate whether SDIO can label M2-polarized cells in vitro. We evaluate the effect of degree of sulfation on uptake by primary cultured bone marrow derived macrophages (BMDM) and found that a higher degree of sulfation led to higher uptake, but there were no differences across the subtypes. Further analysis of the BMDM showed similar SR-A expression across stimulation conditions, suggesting that this classic model for macrophage subtypes may not be ideal for definitive M2 subtype marker expression, especially SR-A. We further examine the localization of SDIO in TAMs in vivo, in the mammary fat pad mouse model of breast cancer. We demonstrate that uptake by TAMs expressing SR-A scales with degree of sulfation, consistent with the in vitro studies. The TAMs demonstrate M2-like function and secrete Arg-1 but not iNOS. Uptake by these M2-like TAMs is validated by immunohistochemistry. SDIO show promise as a valuable addition to the toolkit of imaging probes targeted to different biomarkers for TAMs.
Insights
Sulfated-dextran coated iron oxide nanoparticles (SDIO) show promise for imaging M2-like tumor-associated macrophages (TAMs) expressing scavenger receptor A (SR-A). Higher sulfation improved nanoparticle uptake in TAMs, offering a potential new tool for cancer diagnosis and treatment.
Area of Science:
- Nanotechnology and Biomedical Imaging
- Cancer Biology and Immunology
Background:
- Tumor-associated macrophages (TAMs) are key components of the tumor microenvironment, influencing cancer progression.
- Current methods like tissue biopsy offer limited insights into the dynamic nature of TAMs.
- There is a need for targeted imaging agents to detect specific TAM subtypes for improved cancer diagnosis and treatment.
Purpose of the Study:
- To investigate the potential of sulfated-dextran coated iron oxide nanoparticles (SDIO) as MRI contrast agents for M2-like TAMs.
- To evaluate the effect of sulfation degree on SDIO uptake by macrophages.
- To assess SDIO localization and uptake in TAMs in vivo within a breast cancer model.
Main Methods:
- In vitro studies using bone marrow-derived macrophages (BMDM) to assess SDIO uptake and scavenger receptor A (SR-A) expression.
- In vivo studies in a mouse model of breast cancer to evaluate SDIO localization in TAMs.
- Immunohistochemistry was used to validate TAM uptake of SDIO and M2-like phenotype.
Main Results:
- SDIO uptake by macrophages in vitro increased with a higher degree of sulfation.
- SR-A expression was similar across different macrophage stimulation conditions.
- In vivo studies confirmed that SDIO uptake by TAMs expressing SR-A scaled with the degree of sulfation, targeting M2-like TAMs.
Conclusions:
- SDIO demonstrate potential as targeted imaging probes for M2-like TAMs expressing SR-A.
- The degree of sulfation is a critical factor influencing SDIO uptake by TAMs.
- SDIO represent a promising addition to the imaging toolkit for characterizing TAMs in cancer.
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