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Published on: May 27, 2022
The design, analysis and application of mouse clinical trials in oncology drug development
Sheng Guo1, Xiaoqian Jiang2, Binchen Mao2
1Crown Bioscience Inc., Suzhou Industrial Park, 218 Xinghu Street, Jiangsu, 215028, China. guosheng@crownbio.com.
Background:
Mouse clinical trials (MCTs) are becoming wildly used in pre-clinical oncology drug development, but a statistical framework is yet to be developed. In this study, we establish such as framework and provide general guidelines on the design, analysis and application of MCTs.
Methods:
We systematically analyzed tumor growth data from a large collection of PDX, CDX and syngeneic mouse tumor models to evaluate multiple efficacy end points, and to introduce statistical methods for modeling MCTs.
Results:
We established empirical quantitative relationships between mouse number and measurement accuracy for categorical and continuous efficacy endpoints, and showed that more mice are needed to achieve given accuracy for syngeneic models than for PDXs and CDXs. There is considerable disagreement between methods on calling drug responses as objective response. We then introduced linear mixed models (LMMs) to describe MCTs as clustered longitudinal studies, which explicitly model growth and drug response heterogeneities across mouse models and among mice within a mouse model. Case studies were used to demonstrate the advantages of LMMs in discovering biomarkers and exploring drug's mechanisms of action. We introduced additive frailty models to perform survival analysis on MCTs, which more accurately estimate hazard ratios by modeling the clustered mouse population. We performed computational simulations for LMMs and frailty models to generate statistical power curves, and showed that power is close for designs with similar total number of mice. Finally, we showed that MCTs can explain discrepant results in clinical trials.
Conclusions:
Methods proposed in this study can make the design and analysis of MCTs more rational, flexible and powerful, make MCTs a better tool in oncology research and drug development.
Insights
This study introduces a statistical framework for mouse clinical trials (MCTs) in oncology drug development. New methods improve the design, analysis, and interpretation of MCT data, enhancing preclinical research accuracy.
Area of Science:
- Preclinical oncology research
- Translational medicine
- Biostatistics
Background:
- Mouse clinical trials (MCTs) are increasingly vital in preclinical oncology drug development.
- A robust statistical framework for MCTs is currently lacking.
- This study establishes a statistical framework and guidelines for MCTs.
Purpose of the Study:
- To develop a comprehensive statistical framework for the design, analysis, and application of MCTs.
- To provide general guidelines for conducting reliable preclinical oncology studies.
- To enhance the utility of MCTs in drug development.
Main Methods:
- Systematic analysis of tumor growth data from PDX, CDX, and syngeneic mouse models.
- Evaluation of multiple efficacy endpoints and introduction of statistical modeling methods.
- Application of linear mixed models (LMMs) and additive frailty models for longitudinal and survival analyses.
Main Results:
- Established quantitative relationships between mouse numbers and measurement accuracy for efficacy endpoints.
- Demonstrated that syngeneic models require more mice than PDX/CDX models for similar accuracy.
- Introduced LMMs to model heterogeneity and frailty models for accurate survival analysis, with simulations confirming statistical power.
- Showcased MCTs' ability to explain discrepancies in clinical trial results.
Conclusions:
- The proposed statistical methods enhance the rationality, flexibility, and power of MCT design and analysis.
- These advancements position MCTs as a more effective tool in oncology research and drug development.
- The framework aids in biomarker discovery and understanding drug mechanisms of action.
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