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Published on: September 23, 2014
CHD7 regulates cardiovascular development through ATP-dependent and -independent activities
Shun Yan1, Rassarin Thienthanasit1, Dongquan Chen2
1Department of Genetics, University of Alabama at Birmingham, Birmingham, AL 35294.
Insights
CHD7 is crucial for heart development in neural crest cells (NCCs). This study shows CHD7 has both ATP-dependent and independent roles in regulating gene networks essential for preventing congenital heart defects.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- CHD7 mutations cause CHARGE syndrome, a disorder with frequent conotruncal heart defects.
- The precise role of CHD7 in conotruncal development has been a long-standing question.
- Neural crest cells (NCCs) are vital for forming the conotruncal region of the heart.
Purpose of the Study:
- To elucidate the role of CHD7 in cardiac neural crest cell development.
- To investigate the molecular mechanisms by which CHD7 regulates conotruncal development.
- To explore the therapeutic implications for CHD7-related congenital disorders.
Main Methods:
- Generated a mouse model with Chd7 deletion specifically in neural crest cells (NCCs).
- Performed transcriptomic analysis to identify CHD7-regulated gene networks in cardiac NCCs.
- Conducted protein-protein interaction assays and generated an ATPase-deficient CHD7 mouse model.
Main Results:
- Deletion of Chd7 in NCCs led to severe conotruncal defects and perinatal lethality, confirming cell-autonomous regulation.
- CHD7 fine-tunes a critical gene network essential for cardiac NCC development.
- CHD7 directly interacts with WDR5 and recruits H3K4 methyltransferase activity independently of its ATPase function.
Conclusions:
- CHD7 plays a critical, cell-autonomous role in cardiac NCC development through both ATP-dependent and independent mechanisms.
- Understanding these dual functions provides insight into the etiology of CHD7-related congenital heart defects.
- Different mutation types in CHD7 may necessitate personalized therapeutic strategies for patients.
Abstract:
CHD7 encodes an ATP-dependent chromatin remodeling factor. Mutation of this gene causes multiple developmental disorders, including CHARGE (Coloboma of the eye, Heart defects, Atresia of the choanae, Retardation of growth/development, Genital abnormalities, and Ear anomalies) syndrome, in which conotruncal anomalies are the most prevalent form of heart defects. How CHD7 regulates conotruncal development remains unclear. In this study, we establish that deletion of Chd7 in neural crest cells (NCCs) causes severe conotruncal defects and perinatal lethality, thus providing mouse genetic evidence demonstrating that CHD7 cell-autonomously regulates cardiac NCC development, thereby clarifying a long-standing controversy in the literature. Using transcriptomic analyses, we show that CHD7 fine-tunes the expression of a gene network that is critical for cardiac NCC development. To gain further molecular insights into gene regulation by CHD7, we performed a protein-protein interaction screen by incubating recombinant CHD7 on a protein array. We find that CHD7 directly interacts with several developmental disorder-mutated proteins including WDR5, a core component of H3K4 methyltransferase complexes. This direct interaction suggested that CHD7 may recruit histone-modifying enzymes to target loci independently of its remodeling functions. We therefore generated a mouse model that harbors an ATPase-deficient allele and demonstrates that mutant CHD7 retains the ability to recruit H3K4 methyltransferase activity to its targets. Thus, our data uncover that CHD7 regulates cardiovascular development through ATP-dependent and -independent activities, shedding light on the etiology of CHD7-related congenital disorders. Importantly, our data also imply that patients carrying a premature stop codon versus missense mutations will likely display different molecular alterations; these patients might therefore require personalized therapeutic interventions.
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