GENIUS-MAWII: for robust Mendelian randomization with many weak invalid instruments

Author:

Ye Ting1ORCID,Liu Zhonghua2ORCID,Sun Baoluo3ORCID,Tchetgen Tchetgen Eric4

Affiliation:

1. Department of Biostatistics, University of Washington , Seattle , USA

2. Department of Biostatistics, Columbia University , New York City , USA

3. Department of Statistics and Data Science, National University of Singapore , Singapore , Singapore

4. Department of Statistics and Data Science, The Wharton School, University of Pennsylvania , Philadelphia , USA

Abstract

Abstract Mendelian randomization (MR) addresses causal questions using genetic variants as instrumental variables. We propose a new MR method, G-Estimation under No Interaction with Unmeasured Selection (GENIUS)-MAny Weak Invalid IV, which simultaneously addresses the 2 salient challenges in MR: many weak instruments and widespread horizontal pleiotropy. Similar to MR-GENIUS, we use heteroscedasticity of the exposure to identify the treatment effect. We derive influence functions of the treatment effect, and then we construct a continuous updating estimator and establish its asymptotic properties under a many weak invalid instruments asymptotic regime by developing novel semiparametric theory. We also provide a measure of weak identification, an overidentification test, and a graphical diagnostic tool.

Funder

NIH

Singapore MOE Tier 1

Publisher

Oxford University Press (OUP)

Reference84 articles.

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