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March 6, 2026International Journal of Surgery0 citationsOpen Access

Proteome-wide genetic study identified therapeutic targets for early-onset and late-onset Alzheimer’s disease

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LCLin ChenSuizhou Central HospitalHSHongxu SunAnhui University of Traditional Chinese MedicineMFMing-juan FangAnhui University of Traditional Chinese Medicine

Key Points

  • This research aims to identify therapeutic targets for early-onset Alzheimer’s disease (EOAD) and late-onset Alzheimer’s disease (LOAD).
  • Performed proteome-wide Mendelian randomization and colocalization analysis.
  • Conducted protein-protein interaction network analysis and GO/KEGG enrichment analyses.
  • Evaluated druggability of candidate proteins and conducted phenome-wide association study.
  • Used high-throughput molecular docking and molecular dynamics simulations.
  • Identified three proteins (APOE, NECTIN2, PVR) as targets for both EOAD and LOAD.
  • Found nine proteins associated with LOAD risk, among them EPHB4 and BTN1A1 prioritized as critical targets.
  • Demonstrated strong binding affinity of the small molecule cucurbit[8]uril with EPHB4 and BTN1A1.

Abstract

Backgrounds: Given the distinct pathogenic mechanisms of early-onset Alzheimer’s disease (EOAD) and late-onset Alzheimer’s disease (LOAD), identifying disease-specific therapeutic targets for each subtype is particularly critical. Methods: We performed proteome-wide Mendelian randomization (MR), colocalization analysis, summary-data-based MR, and Heterogeneity in Dependent Instruments (HEIDI) tests to identify the causal roles of candidate proteins in EOAD and LOAD. Further analyses included protein-protein interaction network analysis, GO/KEGG enrichment analyses, and single-cell RNA sequencing annotation. Druggability evaluation of the target proteins, Phenome-wide association study was conducted to systematically evaluate the potential adverse effects associated with druggable proteins. High-throughput molecular docking and molecular dynamics simulations were conducted to target the top therapeutic targets. Results: Genetically predicted levels of three proteins (APOE, NECTIN2, and PVR) were associated with EOAD risk, nine proteins (APOE, NECTIN2, PVR, EPHB4, SEMA3F, RNASET2, BTN1A1, PSAPL1, and GRN) were associated with LOAD risk, three proteins (APOE, NECTIN2, and PVR) were colocalized with EOAD, and six proteins (APOE, NECTIN2, PVR, SEMA3F, BTN1A1, and EPHB4) were colocalized with LOAD. Three of the proteins (APOE, NECTIN2, and PVR) serve as common targets for both EOAD and LOAD. EPHB4 and BTN1A1 were prioritized for LOAD with the most convincing evidence. The small molecule cucurbit8uril exhibits excellent binding affinity with both EPHB4 and BTN1A1 target proteins for the treatment of Alzheimer’s disease. Conclusions: This study pinpointed APOE, NECTIN2, and PVR as shared therapeutic targets for EOAD and LOAD, and EPHB4 and BTN1A1 singled out as a priority target for LOAD.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69aa70f8531e4c4a9ff5b416https://doi.org/10.1097/js9.0000000000005020
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