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Updated: Feb 11, 2026

Modeling Breast Cancer in Human Breast Tissue using a Microphysiological System
Published on: April 23, 2021
Precision Medicine with Imprecise Therapy: Computational Modeling for Chemotherapy in Breast Cancer
Matthew T McKenna1, Jared A Weis2, Amy Brock3
1Vanderbilt University Institute of Imaging Science, Nashville, TN; Department of Biomedical Engineering, Vanderbilt University, Nashville, TN.
Abstract:
Medical oncology is in need of a mathematical modeling toolkit that can leverage clinically-available measurements to optimize treatment selection and schedules for patients. Just as the therapeutic choice has been optimized to match tumor genetics, the delivery of those therapeutics should be optimized based on patient-specific pharmacokinetic/pharmacodynamic properties. Under the current approach to treatment response planning and assessment, there does not exist an efficient method to consolidate biomarker changes into a holistic understanding of treatment response. While the majority of research on chemotherapies focus on cellular and genetic mechanisms of resistance, there are numerous patient-specific and tumor-specific measures that contribute to treatment response. New approaches that consolidate multimodal information into actionable data are needed. Mathematical modeling offers a solution to this problem. In this perspective, we first focus on the particular case of breast cancer to highlight how mathematical models have shaped the current approaches to treatment. Then we compare chemotherapy to radiation therapy. Finally, we identify opportunities to improve chemotherapy treatments using the model of radiation therapy. We posit that mathematical models can improve the application of anticancer therapeutics in the era of precision medicine. By highlighting a number of historical examples of the contributions of mathematical models to cancer therapy, we hope that this contribution serves to engage investigators who may not have previously considered how mathematical modeling can provide real insights into breast cancer therapy.
Insights
Mathematical modeling can optimize cancer treatment delivery by integrating patient-specific data. This approach enhances precision medicine by consolidating multimodal information for better treatment response assessment.
Area of Science:
- Oncology
- Mathematical Biology
- Biomedical Engineering
Background:
- Medical oncology requires advanced tools to optimize cancer therapeutics based on individual patient characteristics.
- Current treatment response assessment lacks efficient methods to integrate diverse biomarker data.
- Patient-specific pharmacokinetic/pharmacodynamic properties are crucial for optimizing drug delivery.
Purpose of the Study:
- To highlight the role of mathematical modeling in optimizing cancer treatment selection and scheduling.
- To explore the application of mathematical models in breast cancer therapy and compare chemotherapy with radiation therapy.
- To identify opportunities for improving chemotherapy using insights from radiation therapy modeling.
Main Methods:
- Review of historical contributions of mathematical models in cancer therapy.
- Focus on breast cancer as a case study for treatment optimization.
- Comparative analysis of chemotherapy and radiation therapy models.
Main Results:
- Mathematical models can integrate multimodal patient data for a holistic understanding of treatment response.
- Patient-specific pharmacokinetic/pharmacodynamic properties can guide therapeutic delivery optimization.
- Insights from radiation therapy modeling can inform improvements in chemotherapy.
Conclusions:
- Mathematical modeling is essential for advancing precision medicine in oncology.
- Integrating diverse patient-specific data through modeling can enhance anticancer therapeutic efficacy.
- Further development and application of mathematical models are needed to improve cancer treatment strategies.
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