An information‐theoretic approach for the assessment of a continuous outcome as a surrogate for a binary true endpoint based on causal inference: Application to vaccine evaluation

Author:

Alonso Abad Ariel1,Ong Fenny2ORCID,Stijven Florian1,Van der Elst Wim3ORCID,Molenberghs Geert12ORCID,Van Keilegom Ingrid4,Verbeke Geert1,Callegaro Andrea5ORCID

Affiliation:

1. I‐BioStat KU Leuven Leuven Belgium

2. I‐BioStat Universiteit Hasselt Diepenbeek Belgium

3. The Janssen Pharmaceutical Companies of Johnson & Johnson Beerse Belgium

4. ORSTAT KU Leuven Leuven Belgium

5. GSK Vaccines Rixensart Belgium

Abstract

Within the causal association paradigm, a method is proposed to assess the validity of a continuous outcome as a surrogate for a binary true endpoint. The methodology is based on a previously introduced information‐theoretic definition of surrogacy and has two main steps. In the first step, a new model is proposed to describe the joint distribution of the potential outcomes associated with the putative surrogate and the true endpoint of interest. The identifiability issues inherent to this type of models are handled via sensitivity analysis. In the second step, a metric of surrogacy new to this setting, the so‐called individual causal association is presented. The methodology is studied in detail using theoretical considerations, some simulations, and data from a randomized clinical trial evaluating an inactivated quadrivalent influenza vaccine. A user‐friendly R package Surrogate is provided to carry out the evaluation exercise.

Funder

GlaxoSmithKline Biologicals

Janssen Pharmaceuticals

Bijzonder Onderzoeksfonds UGent

Fonds Wetenschappelijk Onderzoek

Publisher

Wiley

Reference30 articles.

1. The Evaluation of Surrogate Endpoints

2. Related Causal Frameworks for Surrogate Outcomes

3. Evaluating Candidate Principal Surrogate Endpoints

4. A Bayesian approach to surrogacy assessment using principal stratification in clinical trials;Li Y;Biometrics,2010

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