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Bayesian predictive probability for binary outcomes in neurodegenerative diseases
Carmen Viada1, Martha Fors2, Eliseo Capote1
1Center of Molecular Immunology, Habana, Cuba.
Abstract:
BackgroundAdaptive clinical trials enable modifications to the study design based on accumulating evidence. The Bayesian predictive probability approach offers a framework for estimating the likelihood of achieving a successful outcome in a future analysis, based on current interim data.ObjectiveTo estimate the predictive probability of success for binary outcomes in patients with Alzheimer's disease or Ataxia treated with NeuroEPO plus.MethodsA retrospective Bayesian analysis was conducted using data from exploratory phase II trials as prior information for confirmatory phase III trials in Alzheimer's disease. Predictive probabilities were calculated at interim points with sample sizes of 50, 100, 150, and 176 patients.ResultsThe analysis demonstrated that the trial could have been stopped early due to a high probability of success or failures before reaching the full planned sample size.ConclusionsBayesian predictive probability is a valuable tool for decision-making in rare diseases, particularly when alternative treatments are limited or ineffective, or when baseline heterogeneity affects outcomes unevenly. This approach enhances interim evaluations by incorporating historical or non-informative priors, allowing for more accurate and efficient trial designs.
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