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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Agent-based modeling of the prostate tumor microenvironment uncovers spatial tumor growth constraints and
Maisa N G van Genderen1,2, Jeroen Kneppers2, Anniek Zaalberg2
1Department of Biomedical Engineering, Eindhoven University of Technology, PO Box 513, 5600MB, Eindhoven, The Netherlands.
Abstract:
Inhibiting androgen receptor (AR) signaling through androgen deprivation therapy (ADT) reduces prostate cancer (PCa) growth in virtually all patients, but response may be temporary, in which case resistance develops, ultimately leading to lethal castration-resistant prostate cancer (CRPC). The tumor microenvironment (TME) plays an important role in the development and progression of PCa. In addition to tumor cells, TME-resident macrophages and fibroblasts express AR and are therefore also affected by ADT. However, the interplay of different TME cell types in the development of CRPC remains largely unexplored. To understand the complex stochastic nature of cell-cell interactions, we created a PCa-specific agent-based model (PCABM) based on in vitro cell proliferation data. PCa cells, fibroblasts, "pro-inflammatory" M1-like and "pro-tumor" M2-like polarized macrophages are modeled as agents from a simple set of validated base assumptions. PCABM allows us to simulate the effect of ADT on the interplay between various prostate TME cell types. The resulting in vitro growth patterns mimic human PCa. Our PCABM can effectively model hormonal perturbations by ADT, in which PCABM suggests that CRPC arises in clusters of resistant cells, as is observed in multifocal PCa. In addition, fibroblasts compete for cellular space in the TME while simultaneously creating niches for tumor cells to proliferate in. Finally, PCABM predicts that ADT has immunomodulatory effects on macrophages that may enhance tumor survival. Taken together, these results suggest that AR plays a critical role in the cellular interplay and stochastic interactions in the TME that influence tumor cell behavior and CRPC development.
Insights
Androgen deprivation therapy resistance in prostate cancer (PCa) involves complex interactions within the tumor microenvironment (TME). Our model suggests androgen receptor (AR) signaling in TME cells influences PCa progression to castration-resistant prostate cancer (CRPC).
Area of Science:
- Oncology
- Computational Biology
- Cancer Research
Background:
- Androgen deprivation therapy (ADT) is a primary treatment for prostate cancer (PCa), but resistance leading to castration-resistant prostate cancer (CRPC) is common.
- The tumor microenvironment (TME), including macrophages and fibroblasts, plays a role in PCa progression and is affected by ADT.
- The complex interplay between TME cell types in CRPC development is not fully understood.
Purpose of the Study:
- To develop a computational model simulating the TME's role in PCa and CRPC development under ADT.
- To investigate the impact of ADT on cell-cell interactions within the PCa TME.
- To explore how TME components contribute to ADT resistance and CRPC emergence.
Main Methods:
- Developed a prostate cancer-specific agent-based model (PCABM) using in vitro cell proliferation data.
- Modeled PCa cells, fibroblasts, and M1/M2 macrophages as interacting agents.
- Simulated the effects of ADT on these TME components and their interactions.
Main Results:
- PCABM simulations replicated in vitro growth patterns observed in human PCa.
- The model suggests CRPC emerges from clusters of resistant cells, consistent with multifocal PCa.
- Fibroblasts were shown to compete for space and create niches for tumor cell proliferation.
- ADT was predicted to have immunomodulatory effects on macrophages, potentially enhancing tumor survival.
Conclusions:
- Androgen receptor (AR) signaling is critical for cellular interplay within the TME.
- Interactions among TME cells, influenced by AR, significantly impact PCa cell behavior and CRPC development.
- The PCABM provides a framework for understanding TME dynamics in PCa progression and therapeutic resistance.
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