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Models of Models: A Translational Route for Cancer Treatment and Drug Development
Lesley A Ogilvie1, Aleksandra Kovachev1, Christoph Wierling1
1Alacris Theranostics GmbH, Berlin, Germany.
Abstract:
Every patient and every disease is different. Each patient therefore requires a personalized treatment approach. For technical reasons, a personalized approach is feasible for treatment strategies such as surgery, but not for drug-based therapy or drug development. The development of individual mechanistic models of the disease process in every patient offers the possibility of attaining truly personalized drug-based therapy and prevention. The concept of virtual clinical trials and the integrated use of in silico, in vitro, and in vivo models in preclinical development could lead to significant gains in efficiency and order of magnitude increases in the cost effectiveness of drug development and approval. We have developed mechanistic computational models of large-scale cellular signal transduction networks for prediction of drug effects and functional responses, based on patient-specific multi-level omics profiles. However, a major barrier to the use of such models in a clinical and developmental context is the reliability of predictions. Here we detail how the approach of using "models of models" has the potential to impact cancer treatment and drug development. We describe the iterative refinement process that leverages the flexibility of experimental systems to generate highly dimensional data, which can be used to train and validate computational model parameters and improve model predictions. In this way, highly optimized computational models with robust predictive capacity can be generated. Such models open up a number of opportunities for cancer drug treatment and development, from enhancing the design of experimental studies, reducing costs, and improving animal welfare, to increasing the translational value of results generated.
Insights
Personalized cancer treatment is now possible through advanced computational models. These "models of models" improve drug development efficiency and reliability, leading to better patient outcomes.
Area of Science:
- Computational biology
- Pharmacology
- Oncology
Background:
- Current drug development faces challenges in personalization due to technical limitations.
- Individualized patient data is crucial for tailored therapeutic strategies.
Purpose of the Study:
- To develop and validate mechanistic computational models for personalized drug therapy and cancer treatment.
- To enhance the efficiency and cost-effectiveness of drug development and approval processes.
Main Methods:
- Developed mechanistic computational models of cellular signal transduction networks using patient-specific multi-level omics data.
- Employed an iterative refinement process using experimental data to train and validate model parameters.
- Utilized a "models of models" approach to enhance prediction reliability.
Main Results:
- Created highly optimized computational models with robust predictive capacity for drug effects and functional responses.
- Demonstrated the potential of these models to significantly improve efficiency and cost-effectiveness in drug development.
- Showcased the application of these models in enhancing experimental design and translational value.
Conclusions:
- Mechanistic computational models, refined through iterative experimental validation, offer a pathway to truly personalized drug-based therapy and prevention.
- The "models of models" approach addresses the reliability barrier, paving the way for impactful applications in cancer treatment and drug development.
- This strategy promises to reduce costs, improve animal welfare, and increase the translational value of research findings.
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