Bayesian adaptive determination of the sample size required to assure acceptably low adverse event risk

A Lawrence Gould1, Xiaohua Douglas Zhang

  • 1BARDS, Merck Research Laboratories, North Wales, PA, U.S.A.

Statistics in Medicine
|October 15, 2013
PubMed

Insights

This study introduces a Bayesian adaptive method to determine if more data is needed for new type 2 diabetes drugs to ensure cardiovascular safety. It helps confirm new treatments do not significantly increase adverse event risks.

Area of Science:

  • Biostatistics
  • Clinical Trial Design
  • Pharmacovigilance

Background:

  • New therapeutic agents, particularly for type 2 diabetes, raise concerns about potential cardiovascular adverse events.
  • Regulatory bodies require evidence that new treatments do not significantly increase event risks compared to controls.

Purpose of the Study:

  • To present a Bayesian adaptive procedure for sample size adjustments in drug development.
  • To ensure new agents meet regulatory requirements for limited cardiovascular risk.

Main Methods:

  • Utilizes a Bayesian adaptive approach based on predictive likelihoods.
  • Assesses the posterior probability of relative risk being within specified bounds.
  • Accommodates within-center and between-center variability, and covariates.

Main Results:

  • The procedure determines the necessity and extent of sample size increases.
  • It provides assurance of limited risk based on accumulating data.
  • Explores statistical properties under various conditions and design alternatives.

Conclusions:

  • The Bayesian adaptive procedure offers a robust method for sample size optimization in drug development.
  • It aids in meeting regulatory demands for cardiovascular safety assessments.
  • Facilitates informed decisions on data acquisition for new therapeutic agents.

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