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Updated: Oct 3, 2025

A Combined 3D Tissue Engineered In Vitro/In Silico Lung Tumor Model for Predicting Drug Effectiveness in Specific Mutational Backgrounds
Published on: April 6, 2016
Patient-specific Boolean models of signalling networks guide personalised treatments
Arnau Montagud1,2,3,4, Jonas Béal1,2,3, Luis Tobalina5
1Institut Curie, PSL Research University, Paris, France.
Abstract:
Prostate cancer is the second most occurring cancer in men worldwide. To better understand the mechanisms of tumorigenesis and possible treatment responses, we developed a mathematical model of prostate cancer which considers the major signalling pathways known to be deregulated. We personalised this Boolean model to molecular data to reflect the heterogeneity and specific response to perturbations of cancer patients. A total of 488 prostate samples were used to build patient-specific models and compared to available clinical data. Additionally, eight prostate cell line-specific models were built to validate our approach with dose-response data of several drugs. The effects of single and combined drugs were tested in these models under different growth conditions. We identified 15 actionable points of interventions in one cell line-specific model whose inactivation hinders tumorigenesis. To validate these results, we tested nine small molecule inhibitors of five of those putative targets and found a dose-dependent effect on four of them, notably those targeting HSP90 and PI3K. These results highlight the predictive power of our personalised Boolean models and illustrate how they can be used for precision oncology.
Insights
We developed personalized mathematical models of prostate cancer to identify new treatment strategies. These models pinpointed actionable targets, with drug inhibitors showing dose-dependent effects, paving the way for precision oncology.
Area of Science:
- Computational Biology
- Oncology
- Systems Biology
Background:
- Prostate cancer is a leading global cancer in men.
- Understanding tumorigenesis and treatment response requires sophisticated models.
- Deregulated signaling pathways are key in prostate cancer progression.
Purpose of the Study:
- To develop and personalize a mathematical model of prostate cancer.
- To investigate mechanisms of tumorigenesis and predict treatment responses.
- To identify actionable therapeutic targets for precision oncology.
Main Methods:
- Developed a personalized Boolean mathematical model of prostate cancer.
- Utilized molecular data from 488 prostate samples for model personalization.
- Validated models using prostate cell line data and drug dose-response experiments.
Main Results:
- Created patient-specific and cell line-specific prostate cancer models.
- Identified 15 actionable intervention points in a cell line model.
- Validated drug targets (HSP90, PI3K) with dose-dependent effects.
Conclusions:
- Personalized Boolean models accurately predict patient-specific responses.
- The models offer a powerful tool for precision oncology in prostate cancer.
- Identified novel therapeutic targets for prostate cancer treatment.
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