The efficacy evaluation in pediatric population is an important component of drug development and is generally required by the regulatory agencies. It is often challenging to enroll pediatric subjects for a large trial especially when the incidence rate is low in certain disease areas. Bayesian framework can provide analytic avenues to effectively utilize historical information of the treatment effect and help make pediatric trials more efficient by reducing the sample size when there is evidence to suggest similarity of the treatment responses between the populations. Schoenfeld et al. (Clin Trials 6(4):297–304, 2009) proposed a Bayesian hierarchical model for efficacy extrapolation for continuous endpoints, which connects a single historical trial and the current trial by a variance parameter in the prior distribution. In this manuscript, we extend the existing model to borrow strength from multiple historical trials under the same assumptions and develop a quantitative method to borrow historical information more efficiently. Furthermore, we extend Schoenfeld’s method based on continuous endpoints to binary endpoints with a hierarchical binomial model to extrapolate efficacy. Sensitivity analyses for the underlying assumptions are discussed with simulations and the methods are illustrated with a real case study, along with some practical considerations about how to choose the prior distribution.
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Pfizer R&D Japan, Clin Stat, Shibuya Ku, 3-22-7 Yoyogi, Tokyo 1518589, JapanPfizer R&D Japan, Clin Stat, Shibuya Ku, 3-22-7 Yoyogi, Tokyo 1518589, Japan
Isogawa, Naoki
Takeda, Kentaro
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Astellas Pharma Global Dev Inc, Data Sci, Northbrook, IL USAPfizer R&D Japan, Clin Stat, Shibuya Ku, 3-22-7 Yoyogi, Tokyo 1518589, Japan
Takeda, Kentaro
Maruo, Kazushi
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Univ Tsukuba, Fac Med, Tsukuba, Ibaraki, JapanPfizer R&D Japan, Clin Stat, Shibuya Ku, 3-22-7 Yoyogi, Tokyo 1518589, Japan
Maruo, Kazushi
Daimon, Takashi
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Hyogo Coll Med, Dept Biostat, Nishinomiya, Hyogo, JapanPfizer R&D Japan, Clin Stat, Shibuya Ku, 3-22-7 Yoyogi, Tokyo 1518589, Japan
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Univ Hong Kong, Dept Stat & Actuarial Sci, Hong Kong, Hong Kong, Peoples R ChinaUniv Hong Kong, Dept Stat & Actuarial Sci, Hong Kong, Hong Kong, Peoples R China
Shi, Haolun
Yin, Guosheng
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Univ Hong Kong, Dept Stat & Actuarial Sci, Hong Kong, Hong Kong, Peoples R ChinaUniv Hong Kong, Dept Stat & Actuarial Sci, Hong Kong, Hong Kong, Peoples R China
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Univ Kansas, Dept Biostat & Data Sci, Med Ctr, Robinson 5028,3901 Rainbow Blvd, Kansas City, KS 66160 USAUniv Kansas, Dept Biostat & Data Sci, Med Ctr, Robinson 5028,3901 Rainbow Blvd, Kansas City, KS 66160 USA
Wang, Yu
Travis, James
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US FDA, Div Biometr 2, Ctr Drug Evaluat & Res, Off Translat Sci,Off Biostat, Silver Spring, MD 20993 USAUniv Kansas, Dept Biostat & Data Sci, Med Ctr, Robinson 5028,3901 Rainbow Blvd, Kansas City, KS 66160 USA