Genetic mechanisms controlling cardiovascular development.

Congenital heart disease (CHD) is a major cause of childhood morbidity and death in the West; the incidence is approximately 1 in 145 live births. Mendelian and chromosomal syndromes account for approximately 20% of CHD. The genetic mechanisms underlying non-chromosomal or non-Mendelian "sporad...

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Main Authors: Bentham, J, Bhattacharya, S
Format: Journal article
Language:English
Published: 2008
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author Bentham, J
Bhattacharya, S
author_facet Bentham, J
Bhattacharya, S
author_sort Bentham, J
collection OXFORD
description Congenital heart disease (CHD) is a major cause of childhood morbidity and death in the West; the incidence is approximately 1 in 145 live births. Mendelian and chromosomal syndromes account for approximately 20% of CHD. The genetic mechanisms underlying non-chromosomal or non-Mendelian "sporadic" CHD, which account for the remaining 80%, are poorly understood. The genetic architecture of sporadic CHD likely includes accumulation of rare nonsynonymous variants in cardiac developmental genes leading to mutational loading of cardiac developmental networks, copy number variation in cardiac developmental genes, and common variants that may not be obviously linked to cardiac development but may alter genetic buffering pathways (e.g., folate metabolism). The rare mutations typically associated with sporadic CHD likely arise from the severe decrease in reproductive fitness selecting against any CHD-causing gene variant. The resulting allelic heterogeneity reduces the power of genome-wide association studies for CHD. A complementary approach to the genetic analysis of CHD is to resequence candidate genes that have been shown to be necessary for mouse heart development. The number of such genes likely exceeds 1700. To identify these genes, we have developed an enabling technology (high-throughput magnetic resonance imaging of mouse embryos), which is used in combination with N-ethyl-N-nitrosourea/transposon mutagenesis and knockout techniques. Key future challenges now involve translating discoveries made in mouse models to human CHD genetics and understanding the mechanisms that create and disrupt genetic buffering. A long-term goal in CHD is to manipulate these pathways to enhance buffering and prevent disease in a manner analogous to the use of folate in preventing neural tube defects.
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spelling oxford-uuid:7de0ee6c-e9b8-4181-8440-1dbcaa468e1a2022-03-26T21:06:28ZGenetic mechanisms controlling cardiovascular development.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:7de0ee6c-e9b8-4181-8440-1dbcaa468e1aEnglishSymplectic Elements at Oxford2008Bentham, JBhattacharya, SCongenital heart disease (CHD) is a major cause of childhood morbidity and death in the West; the incidence is approximately 1 in 145 live births. Mendelian and chromosomal syndromes account for approximately 20% of CHD. The genetic mechanisms underlying non-chromosomal or non-Mendelian "sporadic" CHD, which account for the remaining 80%, are poorly understood. The genetic architecture of sporadic CHD likely includes accumulation of rare nonsynonymous variants in cardiac developmental genes leading to mutational loading of cardiac developmental networks, copy number variation in cardiac developmental genes, and common variants that may not be obviously linked to cardiac development but may alter genetic buffering pathways (e.g., folate metabolism). The rare mutations typically associated with sporadic CHD likely arise from the severe decrease in reproductive fitness selecting against any CHD-causing gene variant. The resulting allelic heterogeneity reduces the power of genome-wide association studies for CHD. A complementary approach to the genetic analysis of CHD is to resequence candidate genes that have been shown to be necessary for mouse heart development. The number of such genes likely exceeds 1700. To identify these genes, we have developed an enabling technology (high-throughput magnetic resonance imaging of mouse embryos), which is used in combination with N-ethyl-N-nitrosourea/transposon mutagenesis and knockout techniques. Key future challenges now involve translating discoveries made in mouse models to human CHD genetics and understanding the mechanisms that create and disrupt genetic buffering. A long-term goal in CHD is to manipulate these pathways to enhance buffering and prevent disease in a manner analogous to the use of folate in preventing neural tube defects.
spellingShingle Bentham, J
Bhattacharya, S
Genetic mechanisms controlling cardiovascular development.
title Genetic mechanisms controlling cardiovascular development.
title_full Genetic mechanisms controlling cardiovascular development.
title_fullStr Genetic mechanisms controlling cardiovascular development.
title_full_unstemmed Genetic mechanisms controlling cardiovascular development.
title_short Genetic mechanisms controlling cardiovascular development.
title_sort genetic mechanisms controlling cardiovascular development
work_keys_str_mv AT benthamj geneticmechanismscontrollingcardiovasculardevelopment
AT bhattacharyas geneticmechanismscontrollingcardiovasculardevelopment