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Some drop-the-loser designs for monitoring multiple doses
Y H Joshua Chen1, David L Demets, K K Gordon Lan
1Merck Research Laboratories, North Wales, PA 19454, USA. joshua_chen@merck.com
Abstract:
A scenario not uncommon at the end of a Phase II clinical development is that although choices are narrowed down to two to three doses, the project team cannot make a recommendation of one single dose for the Phase III confirmatory study based upon the available data. Several 'drop-the-loser' designs to monitor multiple doses of an experimental treatment compared with a control in a pivotal Phase III study are considered. Ineffective and/or toxic doses compared with the control may be dropped at the interim analyses as the study continues, and when the accumulated data have demonstrated convincing efficacy and an acceptable safety profile for one dose, the corresponding dose or the study may be stopped to make the experimental treatment available to patients. A decision to drop a toxic dose is usually based upon a comprehensive review of all the available safety data and also a risk/benefit assessment. For dropping ineffective doses, a non-binding futility boundary may be used as guidance. The desired futility boundary can be derived by using an appropriate combination of risk level (i.e. error rate for accepting null hypothesis when the dose is truly efficacious) and spending strategy (dropping a dose aggressively in early analyses versus late). For establishing convincing evidence of the treatment efficacy, three methods for calculating the efficacy boundary are discussed: the Joint Monitoring (JM) approach, the Marginal Monitoring method with Bonferroni correction (MMB), and the Marginal Monitoring method with Adjustment for correlation (MMA). The JM approach requires intensive computation especially when there are several doses and multiple interim analyses. The marginal monitoring methods are computationally more attractive and also more flexible since each dose is monitored separately by its own alpha-spending function. The JM and MMB methods control the false positive rate. The MMA method tends to protect the false positive rate and is more powerful than the Bonferroni-based MMB method. The MMA method offers a practical and flexible solution when there are several doses and multiple interim looks.
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Area of Science:
- Biostatistics
- Clinical Trial Design
- Pharmaceutical Development
Background:
- Phase II trials often yield multiple promising doses without a clear Phase III candidate.
- Selecting a single optimal dose for Phase III is crucial for drug development efficiency.
Purpose of the Study:
- To evaluate 'drop-the-loser' designs for Phase III clinical trials.
- To compare methods for interim dose selection and efficacy assessment.
Main Methods:
- Consideration of 'drop-the-loser' designs with interim analyses.
- Evaluation of futility boundaries for dropping ineffective doses.
- Comparison of Joint Monitoring (JM), Marginal Monitoring with Bonferroni (MMB), and Marginal Monitoring with Adjustment (MMA) for efficacy boundaries.
Main Results:
- 'Drop-the-loser' designs allow early termination of ineffective or toxic doses.
- Marginal monitoring methods are computationally efficient and flexible.
- The MMA method offers improved power and false positive rate control compared to MMB.
Conclusions:
- 'Drop-the-loser' designs facilitate efficient Phase III dose selection.
- The MMA method provides a practical and powerful approach for interim efficacy monitoring in multi-dose trials.
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