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Diffusion MRI Tractography of the Developing Human Fetal Heart

OBJECTIVE: Human myocardium has a complex and anisotropic 3D fiber pattern. It remains unknown, however, when in fetal life this anisotropic pattern develops and whether the human heart is structurally fully mature at birth. We aimed here to use diffusion tensor MRI (DTI) tractography to characteriz...

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Autores principales: Mekkaoui, Choukri, Porayette, Prashob, Jackowski, Marcel P., Kostis, William J., Dai, Guangping, Sanders, Stephen, Sosnovik, David E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3753231/
https://www.ncbi.nlm.nih.gov/pubmed/23991152
http://dx.doi.org/10.1371/journal.pone.0072795
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author Mekkaoui, Choukri
Porayette, Prashob
Jackowski, Marcel P.
Kostis, William J.
Dai, Guangping
Sanders, Stephen
Sosnovik, David E.
author_facet Mekkaoui, Choukri
Porayette, Prashob
Jackowski, Marcel P.
Kostis, William J.
Dai, Guangping
Sanders, Stephen
Sosnovik, David E.
author_sort Mekkaoui, Choukri
collection PubMed
description OBJECTIVE: Human myocardium has a complex and anisotropic 3D fiber pattern. It remains unknown, however, when in fetal life this anisotropic pattern develops and whether the human heart is structurally fully mature at birth. We aimed here to use diffusion tensor MRI (DTI) tractography to characterize the evolution of fiber architecture in the developing human fetal heart. METHODS: Human fetal hearts (n = 5) between 10–19 weeks of gestation were studied. The heart from a 6-day old neonate and an adult human heart served as controls. The degree of myocardial anisotropy was measured by calculating the fractional anisotropy (FA) index. In addition, fiber tracts were created by numerically integrating the primary eigenvector field in the heart into coherent streamlines. RESULTS: At 10–14 weeks the fetal hearts were highly isotropic and few tracts could be resolved. Between 14–19 weeks the anisotropy seen in the adult heart began to develop. Coherent fiber tracts were well resolved by 19 weeks. The 19-week myocardium, however, remained weakly anisotropic with a low FA and no discernable sheet structure. CONCLUSIONS: The human fetal heart remains highly isotropic until 14–19 weeks, at which time cardiomyocytes self-align into coherent tracts. This process lags 2–3 months behind the onset of cardiac contraction, which may be a prerequisite for cardiomyocyte maturation and alignment. No evidence of a connective tissue scaffold guiding this process could be identified by DTI. Maturation of the heart’s sheet structure occurs late in gestation and evolves further after birth.
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spelling pubmed-37532312013-08-29 Diffusion MRI Tractography of the Developing Human Fetal Heart Mekkaoui, Choukri Porayette, Prashob Jackowski, Marcel P. Kostis, William J. Dai, Guangping Sanders, Stephen Sosnovik, David E. PLoS One Research Article OBJECTIVE: Human myocardium has a complex and anisotropic 3D fiber pattern. It remains unknown, however, when in fetal life this anisotropic pattern develops and whether the human heart is structurally fully mature at birth. We aimed here to use diffusion tensor MRI (DTI) tractography to characterize the evolution of fiber architecture in the developing human fetal heart. METHODS: Human fetal hearts (n = 5) between 10–19 weeks of gestation were studied. The heart from a 6-day old neonate and an adult human heart served as controls. The degree of myocardial anisotropy was measured by calculating the fractional anisotropy (FA) index. In addition, fiber tracts were created by numerically integrating the primary eigenvector field in the heart into coherent streamlines. RESULTS: At 10–14 weeks the fetal hearts were highly isotropic and few tracts could be resolved. Between 14–19 weeks the anisotropy seen in the adult heart began to develop. Coherent fiber tracts were well resolved by 19 weeks. The 19-week myocardium, however, remained weakly anisotropic with a low FA and no discernable sheet structure. CONCLUSIONS: The human fetal heart remains highly isotropic until 14–19 weeks, at which time cardiomyocytes self-align into coherent tracts. This process lags 2–3 months behind the onset of cardiac contraction, which may be a prerequisite for cardiomyocyte maturation and alignment. No evidence of a connective tissue scaffold guiding this process could be identified by DTI. Maturation of the heart’s sheet structure occurs late in gestation and evolves further after birth. Public Library of Science 2013-08-26 /pmc/articles/PMC3753231/ /pubmed/23991152 http://dx.doi.org/10.1371/journal.pone.0072795 Text en © 2013 Mekkaoui et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Mekkaoui, Choukri
Porayette, Prashob
Jackowski, Marcel P.
Kostis, William J.
Dai, Guangping
Sanders, Stephen
Sosnovik, David E.
Diffusion MRI Tractography of the Developing Human Fetal Heart
title Diffusion MRI Tractography of the Developing Human Fetal Heart
title_full Diffusion MRI Tractography of the Developing Human Fetal Heart
title_fullStr Diffusion MRI Tractography of the Developing Human Fetal Heart
title_full_unstemmed Diffusion MRI Tractography of the Developing Human Fetal Heart
title_short Diffusion MRI Tractography of the Developing Human Fetal Heart
title_sort diffusion mri tractography of the developing human fetal heart
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3753231/
https://www.ncbi.nlm.nih.gov/pubmed/23991152
http://dx.doi.org/10.1371/journal.pone.0072795
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