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Tissue Engineering of a Human 3D in vitro Tumor Test System
Published on: August 6, 2013
Tissue-Engineered Bone Tumor as a Reproducible Human in Vitro Model for Studies of Anticancer Drugs
Courtney Sakolish1, John S House2, Alan Chramiec3
1Department of Veterinary Integrative Biosciences, Texas A&M University, College Station, Texas 77843.
Abstract:
Studies of anticancer therapies in traditional cell culture models can demonstrate efficacy of direct-acting compounds but lack the 3-dimensional arrangement of the tumor cells and their tissue-specific microenvironments, both of which are important modulators of treatment effects in vivo. Bone cells reside in complex environments that regulate their fate and function. A bioengineered human bone-tumor model has been shown to provide a microphysiological niche for studies of cancer cell behavior. Here, we demonstrate successful transfer between 2 laboratories and utility of this model in efficacy studies using well-established chemotherapeutic agents. The bioengineered human bone-tumor model consisted of Ewing sarcoma (RD-ES) cancer cell aggregates infused into tissue-engineered bone that was grown from human mesenchymal stem cell-derived differentiated into osteoblasts within mineralized bone scaffolds. The tumor model was maintained in culture for over 5 weeks and subjected to clinically relevant doses of linsitinib, doxorubicin, cisplatin, methotrexate, vincristine, dexamethasone, or MAP (methotrexate, doxorubicin, and cisplatin combination). Drug administration cycles were designed to mimic clinical treatment regimens. The bioengineered tumors were evaluated days to weeks after the cessation of treatment to monitor the potential for relapse, using bioengineered bone and ES cell monolayers as controls. Drug binding to the scaffolds and media proteins and gene expression were also evaluated. We show that a bioengineered human bone tumor can be used as a microphysiological model for preclinical studies of anticancer drugs. We found that anticancer efficacy was achieved at concentrations approximating the human Cmax, in contrast to traditional ES cell monolayers. These studies show that the bone-tumor model can be successfully transferred between laboratories and has predictive power in preclinical studies. The effects of drugs on the bone tumors and healthy bone were studied in parallel, in support of the utility of this model for identification of new therapeutic targets.
Insights
This study introduces a novel bioengineered human bone-tumor model for preclinical cancer drug testing. The model accurately predicts anticancer drug efficacy, offering a more reliable alternative to traditional cell cultures.
Area of Science:
- Biomedical Engineering
- Oncology
- Pharmacology
Background:
- Traditional cell culture models lack the complex tumor microenvironment crucial for evaluating anticancer therapies.
- Bone cells exist in intricate environments that influence their function and response to treatment.
- A bioengineered human bone-tumor model offers a microphysiological niche for studying cancer cell behavior.
Purpose of the Study:
- To demonstrate the successful transfer and utility of a bioengineered human bone-tumor model for preclinical anticancer drug efficacy studies.
- To evaluate the predictive power of this model compared to traditional cell cultures.
- To assess the impact of chemotherapeutic agents on both tumor and healthy bone tissue.
Main Methods:
- Constructed a bioengineered human bone-tumor model using Ewing sarcoma (RD-ES) cancer cell aggregates within tissue-engineered bone.
- Maintained the model for over 5 weeks and administered clinically relevant doses of various chemotherapeutic agents.
- Evaluated drug efficacy, potential for relapse, drug binding, and gene expression, comparing results to controls.
Main Results:
- The bioengineered bone-tumor model demonstrated successful transfer between laboratories and showed predictive power in preclinical studies.
- Anticancer efficacy was achieved at concentrations approximating human Cmax, outperforming traditional Ewing sarcoma cell monolayers.
- The model allowed for parallel study of drug effects on both bone tumors and healthy bone tissue.
Conclusions:
- A bioengineered human bone-tumor model serves as a valuable microphysiological system for preclinical anticancer drug evaluation.
- This model exhibits enhanced predictive capability for drug efficacy compared to conventional cell cultures.
- The model supports the identification of new therapeutic targets by enabling parallel assessment of drug effects on tumor and bone microenvironments.
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