Virtual Clinical Trials of BMP4 Differentiation Therapy: Digital Twins to Aid Successful Glioblastoma Trial Design
Nicholas Harbour1, Lee Curtin2, Loizos Michaelides3
1Centre for Mathematical Medicine and Biology, School of Mathematical Sciences, University of Nottingham, Nottingham, UK.
Abstract:
Glioma stem cells (GSCs) are considered a major driver of glioblastoma (GBM) progression and are highly resistant to standard cytotoxic treatments. BMP4 has been shown to drive differentiation of GSCs, increase sensitivity to radiotherapy, slow growth and increase survival times in animal models. To assess the potential of BMP4 as a differentiation therapy, we develop a mathematical model that describes the growth of a GBM tumor via a hierarchy of GSCs, progenitor cells and terminally differentiated cells. We parametrize our model using experimental data from twelve patient-derived GSC lines, on which we measured response to radiotherapy and population growth with and without exposure to BMP4. Cell lines were typically more sensitive to radiotherapy after two days of BMP4 treatment but population growth can either increase or decrease after seven days of exposure to BMP4. To identify key parameters that drive successful treatment we perform global sensitivity analysis which identifies key parameters for BMP4 efficacy including proliferation rate and self-renewal sensitivity of GSCs. We then compare two treatment schedules: a single dose of BMP4 at resection and continuous delivery of BMP4 from resection till the end of radiotherapy. Due to the short half-life of BMP4 and its synergy with radiotherapy, continuous delivery of BMP4 during radiotherapy is more effective than a single dose prior to radiotherapy. We then perform a series of virtual clinical trials, stratified by tumor proliferation rate and GSC self-renewal sensitivity, which allows us to estimate the probability of observing a successful early-phase clinical trial for various virtual patient cohorts. We find that trials that selected the subset of patients with more proliferative GBMs were more likely to lead to significant improvements in survival.
Insights
Bone morphogenetic protein 4 (BMP4) can enhance glioblastoma (GBM) radiotherapy by promoting glioma stem cell (GSC) differentiation. Continuous BMP4 delivery during radiotherapy is more effective than a single dose, especially in proliferative GBMs.
Area of Science:
- Oncology
- Biomedical Engineering
- Mathematical Biology
Background:
- Glioma stem cells (GSCs) drive glioblastoma (GBM) progression and resist treatment.
- Bone morphogenetic protein 4 (BMP4) shows potential in GSC differentiation and enhancing radiotherapy efficacy.
- Mathematical modeling is crucial for understanding complex biological systems like GBM growth and treatment response.
Purpose of the Study:
- To develop and utilize a mathematical model to assess BMP4 as a differentiation therapy for GBM.
- To investigate the impact of BMP4 on GSC growth, differentiation, and sensitivity to radiotherapy.
- To compare different BMP4 treatment schedules and predict clinical trial success.
Main Methods:
- Development of a mathematical model simulating GBM tumor growth with GSCs, progenitor, and differentiated cells.
- Parametrization of the model using experimental data from twelve patient-derived GSC lines.
- Global sensitivity analysis to identify key parameters influencing BMP4 efficacy.
- Simulation of virtual clinical trials to estimate treatment success probabilities.
Main Results:
- BMP4 treatment generally increased GSC sensitivity to radiotherapy.
- GSC population growth varied (increase or decrease) after prolonged BMP4 exposure.
- Continuous BMP4 delivery during radiotherapy proved more effective than a single dose due to BMP4's short half-life and synergy with radiotherapy.
- Virtual trials indicated higher success probability for trials focusing on patients with more proliferative GBMs.
Conclusions:
- BMP4 holds promise as a differentiation therapy for GBM, particularly when combined with radiotherapy.
- Continuous delivery of BMP4 during radiotherapy maximizes its therapeutic benefit.
- Patient stratification based on tumor proliferation rate can improve the likelihood of successful clinical trials for GBM treatment.


