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Abstracts from the International Congress of Parkinson’s and Movement Disorders.

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How large must a Parkinson’s disease trial be to detect pharmacogenomic interactions? Power benchmarks derived from the Exenatide PD3 clinical trial

R. Gurney, C. Girges, N. Vijiaratnam, C. Carroll, M. Hu, G. Duncan, M. Silverdale, T. Foltynie (London, United Kingdom)

Meeting: 2026 International Congress

Keywords: Parkinson’s, Pharmacotherapy

Category: Parkinson's Disease: Genetics

Objective: To investigate whether genetic variation in the GLP1R gene modifies treatment response to the GLP1 agonist exenatide in the Exenatide-PD3 trial, and to characterise the power constraints of post hoc Pharmacogenomic (PGx) analysis in clinical trials.

Background: The biological heterogeneity of Parkinson’s disease (PD) contributes to successive failures of disease-modifying clinical trials. To address this, stratified approaches are warranted. PGx offers a framework for identifying individuals who respond differentially to a therapy based on genetic factors and may be applied to clinical trial datasets in post hoc analyses.

Method: The Exenatide-PD3 trial (N=194) showed no benefit for its primary endpoint, MDS-UPDRS Part III. We performed post hoc PGx analyses using genotype-by-treatment (G×T) interaction models. Two candidate GLP1R polymorphisms (rs10305420, rs6923761) were tested for interaction with treatment on change in MDS-UPDRS Part III and 124 plasma biomarkers. Simulation-based power analyses quantified the minimum detectable G×T interaction across a range of sample sizes and variant frequencies.

Results: No significant G×T interaction was demonstrated for the primary motor outcome, and no G×T interaction survived FDR correction across 124 plasma biomarkers. The strongest signal was for rs10305420, where each additional variant allele was associated with a greater rise in plasma neurofilament light chain on exenatide compared to placebo (β= 0.234, nominal p = 0.033, FDR = 0.94). Exploratory follow-up suggested a per-allele effect in the exenatide arm (p = 0.015) but not placebo (p = 0.321), though this did not reach significance after covariate adjustment (p = 0.092). Power simulations demonstrated that a trial of N=194 can only detect G×T effects exceeding 5.8 UPDRS points per allele for a common variant and >10 points at 10% carrier frequency. Detecting a clinically meaningful interaction of 3.25 UPDRS points requires N≈500 for common variants and N>3,000 at GBA1-like carrier frequencies.

Conclusion: Post hoc PGx analyses in clinical trials are constrained by insufficient power to detect meaningful G×T interactions. Larger clinical trials, genotype-stratified designs and consortium-level meta-analysis offer alternatives to overcome this limitation.

References: Exenatide once a week versus placebo as a potential disease-modifying treatment for people with Parkinson’s disease in the UK: a phase 3, multicentre, double-blind, parallel-group, randomised, placebo-controlled trial. Vijiaratnam, Nirosen et al. The Lancet, Volume 405, Issue 10479, 627 – 636.

To cite this abstract in AMA style:

R. Gurney, C. Girges, N. Vijiaratnam, C. Carroll, M. Hu, G. Duncan, M. Silverdale, T. Foltynie. How large must a Parkinson’s disease trial be to detect pharmacogenomic interactions? Power benchmarks derived from the Exenatide PD3 clinical trial [abstract]. Mov Disord. 2026; 41 (suppl 1). https://www.mdsabstracts.org/abstract/how-large-must-a-parkinsons-disease-trial-be-to-detect-pharmacogenomic-interactions-power-benchmarks-derived-from-the-exenatide-pd3-clinical-trial/. Accessed October 1, 2026.
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