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Accès ouvert déclaré 2022 article

A comparison of methods to harmonize cortical thickness measurements across scanners and sites

53Citations signalées, ce qui n’est pas une note de qualité
69Institutions déclarées
9Pays d’affiliation déclarés

Rattachement africain : us, hk, nl, de, au, cn, Afrique du Sud, be, nz. Niveau de preuve : code pays fourni par la source.

Le résumé fourni par la source

Results of neuroimaging datasets aggregated from multiple sites may be biased by site-specific profiles in participants’ demographic and clinical characteristics, as well as MRI acquisition protocols and scanning platforms. We compared the impact of four different harmonization methods on results obtained from analyses of cortical thickness data: (1) linear mixed-effects model (LME) that models site-specific random intercepts (LMEINT), (2) LME that models both site-specific random intercepts and age-related random slopes (LMEINT+SLP), (3) ComBat, and (4) ComBat with a generalized additive model (ComBat-GAM). Our test case for comparing harmonization methods was cortical thickness data aggregated from 29 sites, which included 1,340 cases with posttraumatic stress disorder (PTSD) (6.2–81.8 years old) and 2,057 trauma-exposed controls without PTSD (6.3–85.2 years old). We found that, compared to the other data harmonization methods, data processed with ComBat-GAM was more sensitive to the detection of significant case-control differences (Χ2(3) = 63.704, p < 0.001) as well as case-control differences in age-related cortical thinning (Χ2(3) = 12.082, p = 0.007). Both ComBat and ComBat-GAM outperformed LME methods in detecting sex differences (Χ2(3) = 9.114, p = 0.028) in regional cortical thickness. ComBat-GAM also led to stronger estimates of age-related declines in cortical thickness (corrected p-values < 0.001), stronger estimates of case-related cortical thickness reduction (corrected p-values < 0.001), weaker estimates of age-related declines in cortical thickness in cases than controls (corrected p-values < 0.001), stronger estimates of cortical thickness reduction in females than males (corrected p-values < 0.001), and stronger estimates of cortical thickness reduction in females relative to males in cases than controls (corrected p-values < 0.001). Our results support the use of ComBat-GAM to minimize confounds and increase statistical power when harmonizing data with non-linear effects, and the use of either ComBat or ComBat-GAM for harmonizing data with linear effects.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
A comparison of methods to harmonize cortical thickness measurements across scanners and sites
Date Crossref
01/11/2022
Éditeur
Elsevier BV
Type
journal-article

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

Les institutions déclarées

Duke UniversityEducation University of Hong KongDurham VA Medical CenterBoston UniversityVA Boston Healthcare SystemNational Center for PTSDUniversity of ToledoBrigham and Women's HospitalProMedica Toledo HospitalUniversity of UtahStanford MedicineRadboud University NijmegenAmsterdam UMC Location University of AmsterdamRadboud University Medical CenterAmsterdam University Medical CentersUniversity of AmsterdamColumbia University Irving Medical CenterNew York Psychoanalytic Society and InstituteUniversity of Rochester MedicineNew York State Psychiatric InstituteCenter for Occupational Research and DevelopmentCharité - Universitätsmedizin BerlinEmory UniversityUniversity of California San DiegoLudwig-Maximilians-Universität MünchenLeiden UniversityLeiden University Medical CenterHeidelberg UniversityUniversity Hospital HeidelbergCentral Institute of Mental HealthHarvard UniversityMcLean HospitalUniversity of MünsterThe University of SydneyWestmead InstituteChinese Academy of SciencesInstitute of Psychology, Chinese Academy of SciencesUniversity of Chinese Academy of SciencesSouth African Medical Research CouncilUniversity of Cape TownGhent University HospitalUniversity of WashingtonWashington University in St. LouisUniversity of South DakotaSioux Falls VA Health Care SystemUniversity of OtagoUniversity of IowaStanford UniversityStellenbosch UniversityMinneapolis VA Health Care SystemUniversity of Wisconsin–MadisonMedical College of WisconsinMarquette UniversityArq Psychotrauma Expert GroupWayne State UniversityUniversity of GroningenSignature Healthcare Brockton HospitalUNSW SydneyUniversity of Illinois ChicagoJesse Brown VA Medical CenterUniversity of Wisconsin–MilwaukeeBaylor UniversityThe University of Texas at DallasPennsylvania State UniversityVA Palo Alto Health Care SystemTexas A&M UniversityUniversity of California, IrvineNeuroscience Research AustraliaDuke University Hospital

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

Les sujets associés

Functional Brain Connectivity StudiesAdvanced MRI Techniques and ApplicationsAdvanced Neuroimaging Techniques and Applications

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