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Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data

Imaging genetic analyses use heritability calculations to measure the fraction of phenotypic variance attributable to additive genetic factors. We tested the agreement between heritability estimates provided by four methods that are used for heritability estimates in neuroimaging traits. SOLAR-Eclip...

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Autores principales: Kochunov, Peter, Patel, Binish, Ganjgahi, Habib, Donohue, Brian, Ryan, Meghann, Hong, Elliot L., Chen, Xu, Adhikari, Bhim, Jahanshad, Neda, Thompson, Paul M., Van’t Ent, Dennis, den Braber, Anouk, de Geus, Eco J. C., Brouwer, Rachel M., Boomsma, Dorret I., Hulshoff Pol, Hilleke E., de Zubicaray, Greig I., McMahon, Katie L., Martin, Nicholas G., Wright, Margaret J., Nichols, Thomas E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6422938/
https://www.ncbi.nlm.nih.gov/pubmed/30914942
http://dx.doi.org/10.3389/fninf.2019.00016
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author Kochunov, Peter
Patel, Binish
Ganjgahi, Habib
Donohue, Brian
Ryan, Meghann
Hong, Elliot L.
Chen, Xu
Adhikari, Bhim
Jahanshad, Neda
Thompson, Paul M.
Van’t Ent, Dennis
den Braber, Anouk
de Geus, Eco J. C.
Brouwer, Rachel M.
Boomsma, Dorret I.
Hulshoff Pol, Hilleke E.
de Zubicaray, Greig I.
McMahon, Katie L.
Martin, Nicholas G.
Wright, Margaret J.
Nichols, Thomas E.
author_facet Kochunov, Peter
Patel, Binish
Ganjgahi, Habib
Donohue, Brian
Ryan, Meghann
Hong, Elliot L.
Chen, Xu
Adhikari, Bhim
Jahanshad, Neda
Thompson, Paul M.
Van’t Ent, Dennis
den Braber, Anouk
de Geus, Eco J. C.
Brouwer, Rachel M.
Boomsma, Dorret I.
Hulshoff Pol, Hilleke E.
de Zubicaray, Greig I.
McMahon, Katie L.
Martin, Nicholas G.
Wright, Margaret J.
Nichols, Thomas E.
author_sort Kochunov, Peter
collection PubMed
description Imaging genetic analyses use heritability calculations to measure the fraction of phenotypic variance attributable to additive genetic factors. We tested the agreement between heritability estimates provided by four methods that are used for heritability estimates in neuroimaging traits. SOLAR-Eclipse and OpenMx use iterative maximum likelihood estimation (MLE) methods. Accelerated Permutation inference for ACE (APACE) and fast permutation heritability inference (FPHI), employ fast, non-iterative approximation-based methods. We performed this evaluation in a simulated twin-sibling pedigree and phenotypes and in diffusion tensor imaging (DTI) data from three twin-sibling cohorts, the human connectome project (HCP), netherlands twin register (NTR) and BrainSCALE projects provided as a part of the enhancing neuro imaging genetics analysis (ENIGMA) consortium. We observed that heritability estimate may differ depending on the underlying method and dataset. The heritability estimates from the two MLE approaches provided excellent agreement in both simulated and imaging data. The heritability estimates for two approximation approaches showed reduced heritability estimates in datasets with deviations from data normality. We propose a data homogenization approach (implemented in solar-eclipse; www.solar-eclipse-genetics.org) to improve the convergence of heritability estimates across different methods. The homogenization steps include consistent regression of any nuisance covariates and enforcing normality on the trait data using inverse Gaussian transformation. Under these conditions, the heritability estimates for simulated and DTI phenotypes produced converging heritability estimates regardless of the method. Thus, using these simple suggestions may help new heritability studies to provide outcomes that are comparable regardless of software package.
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spelling pubmed-64229382019-03-26 Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data Kochunov, Peter Patel, Binish Ganjgahi, Habib Donohue, Brian Ryan, Meghann Hong, Elliot L. Chen, Xu Adhikari, Bhim Jahanshad, Neda Thompson, Paul M. Van’t Ent, Dennis den Braber, Anouk de Geus, Eco J. C. Brouwer, Rachel M. Boomsma, Dorret I. Hulshoff Pol, Hilleke E. de Zubicaray, Greig I. McMahon, Katie L. Martin, Nicholas G. Wright, Margaret J. Nichols, Thomas E. Front Neuroinform Neuroscience Imaging genetic analyses use heritability calculations to measure the fraction of phenotypic variance attributable to additive genetic factors. We tested the agreement between heritability estimates provided by four methods that are used for heritability estimates in neuroimaging traits. SOLAR-Eclipse and OpenMx use iterative maximum likelihood estimation (MLE) methods. Accelerated Permutation inference for ACE (APACE) and fast permutation heritability inference (FPHI), employ fast, non-iterative approximation-based methods. We performed this evaluation in a simulated twin-sibling pedigree and phenotypes and in diffusion tensor imaging (DTI) data from three twin-sibling cohorts, the human connectome project (HCP), netherlands twin register (NTR) and BrainSCALE projects provided as a part of the enhancing neuro imaging genetics analysis (ENIGMA) consortium. We observed that heritability estimate may differ depending on the underlying method and dataset. The heritability estimates from the two MLE approaches provided excellent agreement in both simulated and imaging data. The heritability estimates for two approximation approaches showed reduced heritability estimates in datasets with deviations from data normality. We propose a data homogenization approach (implemented in solar-eclipse; www.solar-eclipse-genetics.org) to improve the convergence of heritability estimates across different methods. The homogenization steps include consistent regression of any nuisance covariates and enforcing normality on the trait data using inverse Gaussian transformation. Under these conditions, the heritability estimates for simulated and DTI phenotypes produced converging heritability estimates regardless of the method. Thus, using these simple suggestions may help new heritability studies to provide outcomes that are comparable regardless of software package. Frontiers Media S.A. 2019-03-12 /pmc/articles/PMC6422938/ /pubmed/30914942 http://dx.doi.org/10.3389/fninf.2019.00016 Text en Copyright © 2019 Kochunov, Patel, Ganjgahi, Donohue, Ryan, Hong, Chen, Adhikari, Jahanshad, Thompson, Van’t Ent, den Braber, de Geus, Brouwer, Boomsma, Hulshoff Pol, de Zubicaray, McMahon, Martin, Wright and Nichols. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Kochunov, Peter
Patel, Binish
Ganjgahi, Habib
Donohue, Brian
Ryan, Meghann
Hong, Elliot L.
Chen, Xu
Adhikari, Bhim
Jahanshad, Neda
Thompson, Paul M.
Van’t Ent, Dennis
den Braber, Anouk
de Geus, Eco J. C.
Brouwer, Rachel M.
Boomsma, Dorret I.
Hulshoff Pol, Hilleke E.
de Zubicaray, Greig I.
McMahon, Katie L.
Martin, Nicholas G.
Wright, Margaret J.
Nichols, Thomas E.
Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data
title Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data
title_full Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data
title_fullStr Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data
title_full_unstemmed Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data
title_short Homogenizing Estimates of Heritability Among SOLAR-Eclipse, OpenMx, APACE, and FPHI Software Packages in Neuroimaging Data
title_sort homogenizing estimates of heritability among solar-eclipse, openmx, apace, and fphi software packages in neuroimaging data
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6422938/
https://www.ncbi.nlm.nih.gov/pubmed/30914942
http://dx.doi.org/10.3389/fninf.2019.00016
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