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Accès ouvert déclaré 2025 article

Multiple polygenic score approach in colorectal cancer risk prediction

1Citations signalées — pas une note de qualité
51Institutions déclarées
12Pays d’affiliation déclarés

Résumé fourni par la source

Recent studies have demonstrated that for various diseases, incorporating polygenic risk scores (PRSs) for other traits and diseases into the PRS-based risk prediction model may improve predictive performance - known as Multiple Polygenic Score (MPS) approach. We aimed to examine whether the MPS approach improves colorectal cancer (CRC) risk prediction. We included 2,187 non-CRC PRSs from the polygenic Score (PGS) Catalog and used machine learning (ML) models to select the most predictive non-CRC PRSs, utilizing individual-level data from 31,257 CRC cases and 33,408 controls. An independent dataset from the Genetic Epidemiology Research in Adult Health and Aging (GERA) cohort (4,852 cases and 67,939 controls) was randomly split into subsets for model estimation and validation. The model combined MPS with two existing CRC-PRSs based on known loci and genome-wide genotyping. We then assessed model performance by calculating the area under the receiver operating curve (AUC) in the validation set and performed 1,000 bootstrapped iterations to evaluate AUC improvements. The ML model selected 337 non-CRC PRSs predictive of CRC risk. Adding MPS to the CRC-PRSs significantly improved AUC by 0.017 (95% CI: 0.011-0.022, p < 0.0001) when combined with known-loci CRC-PRS, 0.005 (95% CI: 0.002-0.007, p = 0.0005) with genome-wide CRC-PRS, and 0.004 (95% CI: 0.002-0.006, p = 0.0005) with both the known loci and genome-wide CRC-PRSs. These findings demonstrate MPS's potential to refine CRC risk prediction models and highlight opportunities for further advancements in risk prediction.

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DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Multiple polygenic score approach in colorectal cancer risk prediction
Date Crossref
30/10/2025
Éditeur
Springer Science and Business Media LLC
Type
journal-article

Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude et ne compte pas comme une seconde source scientifique indépendante.

Institutions déclarées

University of WashingtonFred Hutch Cancer CenterUniversity of Washington Medical CenterKaiser PermanenteKaiser Permanente Bernard J. Tyson School of MedicineWageningen University & ResearchIntermountain HealthcareUniversity of North Carolina at Chapel HillNational Institutes of HealthNational Cancer InstituteUniversity of LeedsCentro de Investigación Biomédica en Red de Enfermedades Hepáticas y DigestivasBroad InstituteBrigham and Women's HospitalHarvard UniversityMassachusetts General HospitalUniversity Health NetworkPrincess Margaret Cancer CentreUniversity of Colorado AnschutzComprehensive Cancer Center ViennaMedical University of ViennaCentre international de recherche sur le cancerImperial College LondonUniversity of Southern CaliforniaGerman Cancer Research CenterHeidelberg UniversityThe University of MelbourneGénétique Médicale & Génomique FonctionelleNantes UniversitéUniversity of California, San FranciscoKaiser Permanente San Francisco Medical CenterUniversity of Hawaiʻi at MānoaUniversity of Hawaii SystemCancer Center of HawaiiUniversity of Hawaii Cancer CenterInstitut d'Investigació Biomédica de BellvitgeInstitut Català d'OncologiaCentro de Investigación Biomédica en Red de Epidemiología y Salud PúblicaUniversitat de BarcelonaAmerican Cancer SocietyInstitute of Science TokyoBoston UniversityThe Ohio State UniversityUniversity of Pittsburgh Medical CenterUmeå UniversityJohns Hopkins UniversityCharles UniversityCzech Academy of Sciences, Institute of Experimental MedicineMemorial University of NewfoundlandSidney Kimmel Comprehensive Cancer CenterErasmus MC

Une affiliation ne permet pas de déduire la nationalité d’un auteur.

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