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Adaptive Cancer Therapy in the Age of Generative Artificial Intelligence
1Ted Rogers School of Information Technology Management, Toronto Metropolitan University, Toronto, ON, Canada.
Abstract:
Therapeutic resistance is a major challenge facing the design of effective cancer treatments. Adaptive cancer therapy is in principle the most viable approach to manage cancer's adaptive dynamics through drug combinations with dose timing and modulation. However, there are numerous open issues facing the clinical success of adaptive therapy. Chief among these issues is the feasibility of real-time predictions of treatment response which represent a bedrock requirement of adaptive therapy. Generative artificial intelligence has the potential to learn prediction models of treatment response from clinical, molecular, and radiomics data about patients and their treatments. The article explores this potential through a proposed integration model of Generative Pre-Trained Transformers (GPTs) in a closed loop with adaptive treatments to predict the trajectories of disease progression. The conceptual model and the challenges facing its realization are discussed in the broader context of artificial intelligence integration in oncology.
Insights
Adaptive cancer therapy requires real-time treatment response predictions. This study proposes using generative artificial intelligence (AI), specifically Generative Pre-Trained Transformers (GPTs), integrated with adaptive treatments to predict disease progression for improved cancer care.
Area of Science:
- Oncology
- Artificial Intelligence
- Computational Biology
Background:
- Therapeutic resistance poses a significant challenge to developing effective cancer treatments.
- Adaptive cancer therapy, utilizing drug combinations with modulated timing and dosage, is a promising strategy to manage cancer's dynamic nature.
- Clinical success of adaptive therapy is hindered by the lack of real-time treatment response prediction capabilities.
Purpose of the Study:
- To explore the potential of generative artificial intelligence (AI) in predicting cancer treatment response.
- To propose an integrated model combining Generative Pre-Trained Transformers (GPTs) with adaptive cancer therapy.
- To address the critical need for real-time disease progression predictions in adaptive treatment protocols.
Main Methods:
- Conceptualizing an integration model of Generative Pre-Trained Transformers (GPTs) within a closed-loop system for adaptive cancer therapy.
- Leveraging clinical, molecular, and radiomics data for training AI prediction models.
- Discussing the challenges associated with implementing AI-driven adaptive treatment strategies.
Main Results:
- Generative AI, particularly GPTs, shows potential for learning complex prediction models of treatment response.
- The proposed model aims to predict disease progression trajectories by integrating GPTs with adaptive treatment regimens.
- Identified key challenges in realizing AI-driven adaptive therapy in clinical oncology.
Conclusions:
- Generative AI offers a promising avenue for overcoming the limitations of current adaptive cancer therapy approaches.
- Real-time prediction of treatment response using AI is crucial for the successful clinical implementation of adaptive therapy.
- Further research and development are needed to integrate AI effectively into oncology for personalized cancer treatment.
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