Phase III Precision Medicine Clinical Trial Designs That Integrate Treatment and Biomarker Evaluation
Mei-Yin C Polley1, Edward L Korn2, Boris Freidlin2
1Mayo Clinic, Rochester, MN.
Abstract:
Recent advances in biotechnology and cancer genomics have afforded enormous opportunities for development of more effective anticancer therapies. A key thrust of this modern drug development paradigm is successful identification of predictive biomarkers that can distinguish patients who might be sensitive to new targeted therapies. To respond to this challenge, a number of phase III cancer trial designs integrating biomarker-based objectives have been proposed and implemented in oncology drug development. In this article, we provide an updated review of commonly used biomarker-based randomized clinical trial designs, with a particular focus on design efficiency. When the efficacy of a new therapy may be limited to a biomarker-defined subgroup, the choice of an appropriate randomized clinical trial design should be guided by the strength of the biomarker's credentials. If compelling evidence indicates that a targeted therapy is beneficial only in a particular biomarker-defined subgroup, an enrichment design should be used. If there is strong evidence that the treatment is likely to be more beneficial in the biomarker-positive patients but a meaningful benefit is also possible in the biomarker-negative patients, then a properly powered biomarker-stratified design (eg, a subgroup-specific or Marker Sequential Test strategy) would provide the most rigorous determination of the sensitive populations. If the evidence supporting the predictive value of the biomarker is weak and the treatment is expected to work in the overall population, then a fallback design could be used. Careful selection of an appropriate phase III design strategy that integrates evaluation of a new anticancer therapy and its companion diagnostic is critical to the success of precision medicine in oncology.
Insights
Choosing the right clinical trial design is crucial for developing targeted cancer therapies. Biomarker-based designs, like enrichment or stratified trials, ensure new drugs benefit the right patients effectively.
Area of Science:
- Oncology
- Biotechnology
- Genomics
Background:
- Advances in cancer genomics and biotechnology offer new targeted therapies.
- Identifying predictive biomarkers is key to distinguishing patient subgroups sensitive to these therapies.
Purpose of the Study:
- To review commonly used biomarker-based randomized clinical trial designs in oncology drug development.
- To focus on the efficiency of these designs based on biomarker evidence strength.
Main Methods:
- Review of existing phase III cancer trial designs integrating biomarker objectives.
- Analysis of how biomarker credentials guide the selection of appropriate trial designs.
Main Results:
- Enrichment designs are suitable when efficacy is limited to a specific biomarker subgroup.
- Biomarker-stratified designs (e.g., subgroup-specific, Marker Sequential Test) are best when a treatment benefits biomarker-positive patients more but may also benefit others.
- Fallback designs can be used when biomarker predictive value is weak and the drug is expected to work in the general population.
Conclusions:
- The selection of phase III trial designs must align with the strength of biomarker evidence.
- Appropriate design choices, integrating therapy and companion diagnostics, are critical for precision medicine success in oncology.
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