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Updated: Jan 28, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Imaging and Characterization of Macrophage Distribution in Mouse Models of Human Prostate Cancer
Ben T Copeland1,2, Hassan Shallal1, Chentian Shen1
1The Russell H Morgan Department of Radiology and Radiological Science, Johns Hopkins University School of Medicine, Baltimore, MD, 21287, USA.
Purpose:
Prostate carcinoma consists of tumor epithelium and malignant stroma. Until recently, diagnostic and therapeutic efforts have focused exclusively on targeting characteristics of the tumor epithelium, ignoring opportunities to target inflammatory infiltrate and extracellular matrix components. Prostate tumors are rich in tumor-associated macrophages (TAMs), which can be either of the cytotoxic M1 or protumorigenic M2 phenotype. We have quantified the proportion of each in seven common human prostate tumor lines grown subcutaneously in athymic nude mice and have imaged macrophage densities in vivo in xenografts derived from these lines.
Procedures:
A panel of seven human prostate cancer xenografts was generated in intact male athymic nude mice reflecting variable expression of the androgen receptor (AR) and prostate-specific membrane antigen (PSMA). Mice were imaged ex vivo using near-infrared fluorescence (NIRF) imaging for PSMA expression and total macrophage densities to enable direct comparison between the two. Tumors were harvested for sectioning and additional staining to delineate M1 and M2 phenotype along with vascular density.
Results:
Macrophage polarization analysis of sections revealed that all xenografts were > 94% M2 phenotype, and the few M1-polarized macrophages present were confined to the periphery. Xenografts displaying the fastest growth were associated with the highest densities of macrophages while the slowest growing tumors were characterized by focal, tumor-infiltrating macrophage densities. Xenograft sections displayed a strong positive spatial relationship between macrophages, vasculature, and PSMA expression.
Conclusions:
Prostate TAM disposition can be imaged ex vivo and is associated with growth characteristics of a variety of tumor subtypes regardless of PSMA or AR expression.
Insights
Tumor-associated macrophages (TAMs) in prostate cancer xenografts are predominantly M2-polarized and linked to tumor growth. Imaging TAMs may offer insights into prostate tumor characteristics.
Area of Science:
- Oncology
- Immunology
Background:
- Prostate carcinoma involves tumor cells, stroma, and inflammatory infiltrate.
- Tumor-associated macrophages (TAMs) in prostate tumors can be M1 (cytotoxic) or M2 (protumorigenic).
- Current research often overlooks TAMs in prostate cancer diagnostics and therapeutics.
Purpose of the Study:
- To quantify M1 and M2 TAM phenotypes in human prostate cancer xenografts.
- To image macrophage densities in vivo and ex vivo.
- To correlate TAM disposition with tumor growth characteristics and biomarkers like PSMA and AR.
Main Methods:
- Generated seven human prostate cancer xenografts in athymic nude mice.
- Utilized near-infrared fluorescence (NIRF) imaging for PSMA expression and macrophage densities.
- Performed histological analysis for M1/M2 polarization, vascular density, and spatial relationships.
Main Results:
- All xenografts showed over 94% M2-polarized TAMs, with M1 TAMs at the periphery.
- Higher macrophage densities correlated with faster tumor growth.
- A positive spatial relationship was observed between TAMs, vasculature, and PSMA expression.
Conclusions:
- TAM phenotype and density in prostate cancer xenografts can be imaged ex vivo.
- TAM disposition is associated with tumor growth rates across various subtypes.
- Findings suggest TAM imaging as a potential tool for understanding prostate tumor biology.
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