Literature DB >> 36258783

Harmonization of Multi-Center Diffusion Tensor Tractography in Neonates with Congenital Heart Disease: Optimizing Post-Processing and Application of ComBat.

Benjamin Meyers1, Vincent K Lee1, Lauren Dennis1, Julia Wallace1, Vanessa Schmithorst1, Jodie K Votava-Smith2, Vidya Rajagopalan3, Elizabeth Herrup4, Tracy Baust4, Nhu N Tran2, Jill Hunter5, Daniel J Licht6, J William Gaynor7, Dean B Andropoulos8, Ashok Panigrahy1,9, Rafael Ceschin1,9.   

Abstract

Advanced brain imaging of neonatal macrostructure and microstructure, which has prognosticating importance, is more frequently being incorporated into multi-center trials of neonatal neuroprotection. Multicenter neuroimaging studies, designed to overcome small sample sized clinical cohorts, are essential but lead to increased technical variability. Few harmonization techniques have been developed for neonatal brain microstructural (diffusion tensor) analysis. The work presented here aims to remedy two common problems that exist with the current state of the art approaches: 1) variance in scanner and protocol in data collection can limit the researcher's ability to harmonize data acquired under different conditions or using different clinical populations. 2) The general lack of objective guidelines for dealing with anatomically abnormal anatomy and pathology. Often, subjects are excluded due to subjective criteria, or due to pathology that could be informative to the final analysis, leading to the loss of reproducibility and statistical power. This proves to be a barrier in the analysis of large multi-center studies and is a particularly salient problem given the relative scarcity of neonatal imaging data. We provide an objective, data-driven, and semi-automated neonatal processing pipeline designed to harmonize compartmentalized variant data acquired under different parameters. This is done by first implementing a search space reduction step of extracting the along-tract diffusivity values along each tract of interest, rather than performing whole-brain harmonization. This is followed by a data-driven outlier detection step, with the purpose of removing unwanted noise and outliers from the final harmonization. We then use an empirical Bayes harmonization algorithm performed at the along-tract level, with the output being a lower dimensional space but still spatially informative. After applying our pipeline to this large multi-site dataset of neonates and infants with congenital heart disease (n= 398 subjects recruited across 4 centers, with a total of n=763 MRI pre-operative/post-operative time points), we show that infants with single ventricle cardiac physiology demonstrate greater white matter microstructural alterations compared to infants with bi-ventricular heart disease, supporting what has previously been shown in literature. Our method is an open-source pipeline for delineating white matter tracts in subject space but provides the necessary modular components for performing atlas space analysis. As such, we validate and introduce Diffusion Imaging of Neonates by Group Organization (DINGO), a high-level, semi-automated framework that can facilitate harmonization of subject-space tractography generated from diffusion tensor imaging acquired across varying scanners, institutions, and clinical populations. Datasets acquired using varying protocols or cohorts are compartmentalized into subsets, where a cohort-specific template is generated, allowing for the propagation of the tractography mask set with higher spatial specificity. Taken together, this pipeline can reduce multi-scanner technical variability which can confound important biological variability in relation to neonatal brain microstructure.

Entities:  

Keywords:  Congenital Heart Disease; Diffusion Tensor Imaging; Neonatal Imaging

Year:  2022        PMID: 36258783      PMCID: PMC9575513          DOI: 10.1016/j.ynirp.2022.100114

Source DB:  PubMed          Journal:  Neuroimage Rep        ISSN: 2666-9560


  43 in total

1.  Quantitative evaluation of 10 tractography algorithms on a realistic diffusion MR phantom.

Authors:  Pierre Fillard; Maxime Descoteaux; Alvina Goh; Sylvain Gouttard; Ben Jeurissen; James Malcolm; Alonso Ramirez-Manzanares; Marco Reisert; Ken Sakaie; Fatima Tensaouti; Ting Yo; Jean-François Mangin; Cyril Poupon
Journal:  Neuroimage       Date:  2011-01-20       Impact factor: 6.556

2.  An anatomically curated fiber clustering white matter atlas for consistent white matter tract parcellation across the lifespan.

Authors:  Fan Zhang; Ye Wu; Isaiah Norton; Laura Rigolo; Yogesh Rathi; Nikos Makris; Lauren J O'Donnell
Journal:  Neuroimage       Date:  2018-06-18       Impact factor: 6.556

3.  Randomized Controlled Trial of Working Memory Intervention in Congenital Heart Disease.

Authors:  Johanna Calderon; David Wypij; Valerie Rofeberg; Christian Stopp; Alexandra Roseman; Daniel Albers; Jane W Newburger; David C Bellinger
Journal:  J Pediatr       Date:  2020-08-19       Impact factor: 4.406

Review 4.  Neuroimaging biomarkers of preterm brain injury: toward developing the preterm connectome.

Authors:  Ashok Panigrahy; Jessica L Wisnowski; Andre Furtado; Natasha Lepore; Lisa Paquette; Stefan Bluml
Journal:  Pediatr Radiol       Date:  2012-03-06

Review 5.  Genetics of congenital heart disease.

Authors:  Jonathan J Edwards; Bruce D Gelb
Journal:  Curr Opin Cardiol       Date:  2016-05       Impact factor: 2.161

6.  DTI registration in atlas based fiber analysis of infantile Krabbe disease.

Authors:  Yi Wang; Aditya Gupta; Zhexing Liu; Hui Zhang; Maria L Escolar; John H Gilmore; Sylvain Gouttard; Pierre Fillard; Eric Maltbie; Guido Gerig; Martin Styner
Journal:  Neuroimage       Date:  2011-01-19       Impact factor: 6.556

7.  The effect of duration of deep hypothermic circulatory arrest in infant heart surgery on late neurodevelopment: the Boston Circulatory Arrest Trial.

Authors:  David Wypij; Jane W Newburger; Leonard A Rappaport; Adre J duPlessis; Richard A Jonas; Gil Wernovsky; Ming Lin; David C Bellinger
Journal:  J Thorac Cardiovasc Surg       Date:  2003-11       Impact factor: 5.209

8.  Multiple testing with minimal assumptions.

Authors:  Peter H Westfall; James F Troendle
Journal:  Biom J       Date:  2008-10       Impact factor: 2.207

9.  Construction of a consistent high-definition spatio-temporal atlas of the developing brain using adaptive kernel regression.

Authors:  Ahmed Serag; Paul Aljabar; Gareth Ball; Serena J Counsell; James P Boardman; Mary A Rutherford; A David Edwards; Joseph V Hajnal; Daniel Rueckert
Journal:  Neuroimage       Date:  2011-10-01       Impact factor: 6.556

10.  A DTI-based template-free cortical connectome study of brain maturation.

Authors:  Olga Tymofiyeva; Christopher P Hess; Etay Ziv; Patricia N Lee; Hannah C Glass; Donna M Ferriero; A James Barkovich; Duan Xu
Journal:  PLoS One       Date:  2013-05-13       Impact factor: 3.240

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