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Body size and intracranial volume interact with the structure of the central nervous system: A multi-center in vivo neuroimaging study

7Citations signalées, ce qui n’est pas une note de qualité
81Institutions déclarées
13Pays d’affiliation déclarés

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Le résumé fourni par la source

Clinical research emphasizes the implementation of rigorous and reproducible study designs that rely on between-group matching or controlling for sources of biological variation such as subject's sex and age. However, corrections for body size (i.e., height and weight) are mostly lacking in clinical neuroimaging designs. This study investigates the importance of body size parameters in their relationship with spinal cord (SC) and brain magnetic resonance imaging (MRI) metrics. Data were derived from a cosmopolitan population of 267 healthy human adults (age 30.1 ± 6.6 years old, 125 females). We show that body height correlates with brain gray matter (GM) volume, cortical GM volume, total cerebellar volume, brainstem volume, and cross-sectional area (CSA) of cervical SC white matter (CSA-WM; 0.44 ≤ r ≤ 0.62). Intracranial volume (ICV) correlates with body height (r = 0.46) and the brain volumes and CSA-WM (0.37 ≤ r ≤ 0.77). In comparison, age correlates with cortical GM volume, precentral GM volume, and cortical thickness (-0.21 ≥ r ≥ -0.27). Body weight correlates with magnetization transfer ratio in the SC WM, dorsal columns, and lateral corticospinal tracts (-0.20 ≥ r ≥ -0.23). Body weight further correlates with the mean diffusivity derived from diffusion tensor imaging (DTI) in SC WM (r = -0.20) and dorsal columns (-0.21), but only in males. CSA-WM correlates with brain volumes (0.39 ≤ r ≤ 0.64), and with precentral gyrus thickness and DTI-based fractional anisotropy in SC dorsal columns and SC lateral corticospinal tracts (-0.22 ≥ r ≥ -0.25). Linear mixture of age, sex, or sex and age, explained 2 ± 2%, 24 ± 10%, or 26 ± 10%, of data variance in brain volumetry and SC CSA. The amount of explained variance increased to 33 ± 11%, 41 ± 17%, or 46 ± 17%, when body height, ICV, or body height and ICV were added into the mixture model. In females, the explained variances halved suggesting another unidentified biological factor(s) determining females' central nervous system (CNS) morphology. In conclusion, body size and ICV are significant biological variables. Along with sex and age, body size should therefore be included as a mandatory variable in the design of clinical neuroimaging studies examining SC and brain structure; and body size and ICV should be considered as covariates in statistical analyses. Normalization of different brain regions with ICV diminishes their correlations with body size, but simultaneously amplifies ICV-related variance (r = 0.72 ± 0.07) and suppresses volume variance of the different brain regions (r = 0.12 ± 0.19) in the normalized measurements.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Body size and intracranial volume interact with the structure of the central nervous system: A multi-center in vivo neuroimaging study
Date Crossref
01/01/2025
Éditeur
MIT Press
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

University of MinnesotaPolytechnique MontréalSwiss Paraplegic CenterCentre Hospitalier Universitaire Sainte-JustineUniversité de MontréalThe University of QueenslandUniversity of British ColumbiaHarvard UniversityMassachusetts General HospitalHarvard–MIT Division of Health Sciences and TechnologyAthinoula A. Martinos Center for Biomedical ImagingMassachusetts Institute of TechnologyQueen Mary University of LondonNational Hospital for Neurology and NeurosurgeryUniversity College LondonUniversität HamburgUniversity Medical Center Hamburg-EppendorfMedical College of WisconsinMilwaukee VA Medical CenterCentre National de la Recherche ScientifiqueCentre de Résonance Magnétique Biologique et MédicaleHôpital de la TimoneUniversité de SherbrookeUniversité de StrasbourgMasaryk UniversityUniversity Hospital BrnoMontreal Neurological Institute and HospitalMcGill UniversityMax Planck Institute for Human Cognitive and Brain SciencesStanford UniversityWellcome Centre for Human NeuroimagingUniversity of ZurichIstituto di NanotecnologiaFondazione Santa LuciaJuntendo UniversityUniversity of PaviaCARE CanadaPhilips (Canada)Centro Ricerche Enrico FermiVall d'Hebron Hospital UniversitariVall d'Hebron Institute of OncologyResonance Research (United States)Central European Institute of TechnologyToho UniversityToho University Omori Medical CenterUniversity of California, San FranciscoUniversity of BirminghamBaylor College of MedicineIcahn School of Medicine at Mount SinaiUniversity of GenevaÉcole Polytechnique Fédérale de LausanneUniversity Hospital Carl Gustav CarusTechnische Universität DresdenInstitute of Psychology, Chinese Academy of SciencesUniversity of Chinese Academy of SciencesSt. Anne's University Hospital BrnoCracow University of TechnologyInternational Collaboration On Repair DiscoveriesCapital Medical UniversityBeijing Tian Tan HospitalHospital Clínic de BarcelonaFundació Clínic per a la Recerca BiomèdicaUniversitat de BarcelonaNeurological SurgeryUniversity of California, DavisVanderbilt University Medical CenterUniversity of OxfordWellcome Centre for Integrative NeuroimagingNorthwestern UniversityUniversitat Oberta de CatalunyaHumanitas UniversityIRCCS Humanitas Research HospitalVanderbilt UniversityOklahoma City UniversityUniversity of OklahomaUniversity of Tokyo HospitalCardiff UniversityMila - Quebec Artificial Intelligence InstitutePalacký University OlomoucLeipzig UniversityUniversity of Chieti-Pescara

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

Les sujets associés

Advanced Neuroimaging Techniques and ApplicationsFunctional Brain Connectivity StudiesTraumatic Brain Injury and Neurovascular Disturbances

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