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Updated: Oct 22, 2025

Three-Dimensional Bone Extracellular Matrix Model for Osteosarcoma
Published on: April 12, 2019
Novel bone microenvironment model of castration-resistant prostate cancer with chitosan fiber matrix and osteoblasts
Masahiro Samoto1, Hideyasu Matsuyama1, Hiroaki Matsumoto1
1Department of Urology, Graduate School of Medicine, Yamaguchi University, Ube, Yamaguchi 755-8505, Japan.
Abstract:
The interaction between prostate cancer cells and osteoblasts is essential for the development of bone metastasis. Previously, novel androgen receptor axis-targeted agents (ARATs) were approved for metastatic castration-naïve and non-metastatic castration-resistant prostate cancer (CRPC); both of which are pivotal for investigating the association between the bone microenvironment and tumors. The present study established a novel in vitro 3D microenvironment model that simulated the bone microenvironment of CRPC, and evaluated the drug susceptibility of ARATs and the efficacy of the combination of abiraterone and dutasteride. Green fluorescent protein-transferred C4-2 cells (a CRPC cell line) and red fluorescent protein-transferred human osteoblasts differentiated from human mesenchymal stem cells were co-cultured in chitosan nanofiber matrix-coated culture plates to simulate the 3D scaffold of the bone microenvironment. The growth of C4-2 was quantified using live-cell imaging and the Cell3 iMager duos analysis system. The growth of C4-2 colonies were quantified for a maximum of 30 days. The expression of TGF-β increased and promoted EMT in C4-2 cells co-cultured with osteoblasts, indicating resistance to ARATs. The IC50 of each drug and the combination effect of abiraterone and dutasteride were evaluated using this model. Combination treatment with abiraterone and dutasteride synergistically inhibited the growth of C2-4 colonies compared with individual investigational agents. This could be attributed to the reduction of 3-keto-5α-abiraterone, an androgen receptor agonist. The bone microenvironment model of the present study is unique and useful for evaluating new drug susceptibility testing in prostate cancer cells. This model may help to reveal the unknown mechanisms underlying micro- to clinical bone metastasis in prostate cancer.
Insights
A new 3D model simulates the bone microenvironment for castration-resistant prostate cancer (CRPC). This model shows ARAT drug resistance and demonstrates combination therapy with abiraterone and dutasteride effectively inhibits CRPC growth.
Area of Science:
- Oncology
- Cell Biology
- Biotechnology
Background:
- Prostate cancer bone metastasis involves interactions between cancer cells and osteoblasts.
- Androgen receptor axis-targeted agents (ARATs) are used for metastatic castration-naïve and castration-resistant prostate cancer (CRPC).
- Understanding the bone tumor microenvironment is crucial for ARAT efficacy.
Purpose of the Study:
- To establish a novel in vitro 3D bone microenvironment model for CRPC.
- To evaluate ARAT drug susceptibility and combination therapy efficacy in this model.
- To investigate the role of the bone microenvironment in ARAT resistance.
Main Methods:
- Co-culture of GFP-C4-2 (CRPC cells) and RFP-osteoblasts in a chitosan nanofiber matrix.
- Quantification of C4-2 cell growth using live-cell imaging and Cell3 iMager duos.
- Evaluation of drug susceptibility (IC50) and combination effects of abiraterone and dutasteride.
Main Results:
- The 3D model successfully simulated the CRPC bone microenvironment.
- Increased TGF-β expression in co-cultured cells promoted epithelial-mesenchymal transition (EMT), indicating ARAT resistance.
- Combination treatment with abiraterone and dutasteride synergistically inhibited C4-2 colony growth more effectively than individual agents.
Conclusions:
- The novel 3D bone microenvironment model is effective for evaluating drug susceptibility in CRPC.
- The bone microenvironment, through TGF-β and EMT, contributes to ARAT resistance.
- Combination therapy with abiraterone and dutasteride shows promising synergistic efficacy against CRPC in a simulated bone microenvironment.
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