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Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design

The heart of higher vertebrates is a structurally complicated multi-chambered pump that contracts synchronously. For its proper function a number of distinct integrated components have to be generated, including force-generating compartments, unidirectional valves, septa and a system in charge of th...

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Detalles Bibliográficos
Autores principales: Hoogaars, W. M. H., Barnett, P., Moorman, A. F. M., Christoffels, V. M.
Formato: Texto
Lenguaje:English
Publicado: Birkhäuser-Verlag 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2778635/
https://www.ncbi.nlm.nih.gov/pubmed/17380306
http://dx.doi.org/10.1007/s00018-007-6518-z
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author Hoogaars, W. M. H.
Barnett, P.
Moorman, A. F. M.
Christoffels, V. M.
author_facet Hoogaars, W. M. H.
Barnett, P.
Moorman, A. F. M.
Christoffels, V. M.
author_sort Hoogaars, W. M. H.
collection PubMed
description The heart of higher vertebrates is a structurally complicated multi-chambered pump that contracts synchronously. For its proper function a number of distinct integrated components have to be generated, including force-generating compartments, unidirectional valves, septa and a system in charge of the initiation and coordinated propagation of the depolarizing impulse over the heart. Not surprisingly, a large number of regulating factors are involved in these processes that act in complex and intertwined pathways to regulate the activity of target genes responsible for morphogenesis and function. The finding that mutations in T-box transcription factor-encoding genes in humans lead to congenital heart defects has focused attention on the importance of this family of regulators in heart development. Functional and genetic analyses in a variety of divergent species has demonstrated the critical roles of multiple T-box factor gene family members, including Tbx11, −2, −3, −5, −18 and −20, in the patterning, recruitment, specification, differentiation and growth processes underlying formation and integration of the heart components. Insight into the roles of T-box factors in these processes will enhance our understanding of heart formation and the underlying molecular regulatory pathways.
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spelling pubmed-27786352009-11-20 Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design Hoogaars, W. M. H. Barnett, P. Moorman, A. F. M. Christoffels, V. M. Cell Mol Life Sci Multi-Author Review The heart of higher vertebrates is a structurally complicated multi-chambered pump that contracts synchronously. For its proper function a number of distinct integrated components have to be generated, including force-generating compartments, unidirectional valves, septa and a system in charge of the initiation and coordinated propagation of the depolarizing impulse over the heart. Not surprisingly, a large number of regulating factors are involved in these processes that act in complex and intertwined pathways to regulate the activity of target genes responsible for morphogenesis and function. The finding that mutations in T-box transcription factor-encoding genes in humans lead to congenital heart defects has focused attention on the importance of this family of regulators in heart development. Functional and genetic analyses in a variety of divergent species has demonstrated the critical roles of multiple T-box factor gene family members, including Tbx11, −2, −3, −5, −18 and −20, in the patterning, recruitment, specification, differentiation and growth processes underlying formation and integration of the heart components. Insight into the roles of T-box factors in these processes will enhance our understanding of heart formation and the underlying molecular regulatory pathways. Birkhäuser-Verlag 2007-02-13 2007-03 /pmc/articles/PMC2778635/ /pubmed/17380306 http://dx.doi.org/10.1007/s00018-007-6518-z Text en © Birkhäuser Verlag, Basel 2007
spellingShingle Multi-Author Review
Hoogaars, W. M. H.
Barnett, P.
Moorman, A. F. M.
Christoffels, V. M.
Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design
title Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design
title_full Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design
title_fullStr Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design
title_full_unstemmed Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design
title_short Cardiovascular development: towards biomedical applicability: T-box factors determine cardiac design
title_sort cardiovascular development: towards biomedical applicability: t-box factors determine cardiac design
topic Multi-Author Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2778635/
https://www.ncbi.nlm.nih.gov/pubmed/17380306
http://dx.doi.org/10.1007/s00018-007-6518-z
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