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Updated: Aug 2, 2025

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
A Transcriptome-Based Precision Oncology Platform for Patient-Therapy Alignment in a Diverse Set of
Prabhjot S Mundi1,2, Filemon S Dela Cruz3, Adina Grunn1
1Department of Systems Biology, Columbia University Irving Medical Center, New York, New York.
Abstract:
Predicting in vivo response to antineoplastics remains an elusive challenge. We performed a first-of-kind evaluation of two transcriptome-based precision cancer medicine methodologies to predict tumor sensitivity to a comprehensive repertoire of clinically relevant oncology drugs, whose mechanism of action we experimentally assessed in cognate cell lines. We enrolled patients with histologically distinct, poor-prognosis malignancies who had progressed on multiple therapies, and developed low-passage, patient-derived xenograft models that were used to validate 35 patient-specific drug predictions. Both OncoTarget, which identifies high-affinity inhibitors of individual master regulator (MR) proteins, and OncoTreat, which identifies drugs that invert the transcriptional activity of hyperconnected MR modules, produced highly significant 30-day disease control rates (68% and 91%, respectively). Moreover, of 18 OncoTreat-predicted drugs, 15 induced the predicted MR-module activity inversion in vivo. Predicted drugs significantly outperformed antineoplastic drugs selected as unpredicted controls, suggesting these methods may substantively complement existing precision cancer medicine approaches, as also illustrated by a case study.
Significance:
Complementary precision cancer medicine paradigms are needed to broaden the clinical benefit realized through genetic profiling and immunotherapy. In this first-in-class application, we introduce two transcriptome-based tumor-agnostic systems biology tools to predict drug response in vivo. OncoTarget and OncoTreat are scalable for the design of basket and umbrella clinical trials. This article is highlighted in the In This Issue feature, p. 1275.
Insights
Two new transcriptome-based methods, OncoTarget and OncoTreat, accurately predict patient response to cancer drugs. OncoTreat showed a 91% disease control rate, significantly outperforming controls in clinical trials.
Area of Science:
- Oncology
- Systems Biology
- Pharmacogenomics
Background:
- Predicting patient response to antineoplastic drugs is a significant challenge in cancer medicine.
- Existing precision cancer medicine approaches can be expanded through novel predictive methodologies.
Purpose of the Study:
- To evaluate two novel transcriptome-based systems biology tools, OncoTarget and OncoTreat, for predicting in vivo tumor response to oncology drugs.
- To assess the clinical utility of these predictive methods in patients with advanced, poor-prognosis malignancies.
Main Methods:
- Developed patient-derived xenograft models for 35 drug predictions.
- Assessed drug mechanisms of action in cell lines.
- Validated 35 patient-specific drug predictions using xenograft models.
Main Results:
- OncoTarget achieved a 68% disease control rate, while OncoTreat achieved a 91% disease control rate.
- OncoTreat-predicted drugs successfully inverted master regulator (MR) module activity in 15 out of 18 cases.
- Predicted drugs demonstrated significantly better outcomes compared to unpredicted control drugs.
Conclusions:
- Transcriptome-based methods like OncoTarget and OncoTreat show promise for predicting drug response in cancer.
- These tools can complement existing precision cancer medicine strategies and facilitate clinical trial design.
- OncoTreat demonstrated high efficacy and potential for personalized cancer therapy.
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