Malformations of the cardiovascular system are among the most common birth defects in humans. Members of the evolutionary conserved TGF-beta superfamily of secreted growth factors have been shown to play important roles during normal heart development. They all signal through several different type I receptors (called Activin Receptor-Like Kinases; Alks), which are the primary determinants of signaling specificity. Among these receptors AIk2 is of particular interest, since it appears that AIk2 mediates both BMP, Activin and TGFbeta signals. AIk2 is strongly expressed in the heart, and our preliminary experiments demonstrate that AIk2 is required for normal cardiac development. Therefore, we hypothesize that AIk2 plays a key role in cardiac outflow tract development by regulating differentiation, proliferation and/or survival of cardiac neural crest cells. We will test this hypothesis by three Specific Aims by utilizing a genetically manipulated mouse strain we recently developed that allows inactivation of AIk2 specifically in neural crest cells.
In Aim 1, defects in valves, septa and outflow tracts will be analyzed in detail.
In Aim 2, we will define the specific process controlled by AIk2 during cardiac outflow tract morphogenesis, and in Aim 3 we will identify the relevant downstream signaling molecules, Smads, and transcriptional targets in the AIk2-mediated pathway. Our experimental strategy will allow us to determine the biological role of AIk2 in cardiac outflow tract development. The results of these studies are likely to be of critical importance in attempting to reach our long-term goal to understand the molecular basis of life-threatening congenital heart defects in humans.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
1R01HL074862-01
Application #
6702655
Study Section
Human Embryology and Development Subcommittee 1 (HED)
Program Officer
Schramm, Charlene A
Project Start
2004-02-01
Project End
2008-01-31
Budget Start
2004-02-01
Budget End
2005-01-31
Support Year
1
Fiscal Year
2004
Total Cost
$292,720
Indirect Cost
Name
Children's Hospital of Los Angeles
Department
Type
DUNS #
052277936
City
Los Angeles
State
CA
Country
United States
Zip Code
90027
Rajderkar, Sudha; Panaretos, Christopher; Kaartinen, Vesa (2017) Trim33 regulates early maturation of mouse embryoid bodies in vitro. Biochem Biophys Rep 12:185-192
Thomas, Penny S; Rajderkar, Sudha; Lane, Jamie et al. (2014) AcvR1-mediated BMP signaling in second heart field is required for arterial pole development: implications for myocardial differentiation and regional identity. Dev Biol 390:191-207
Thomas, Penny S; Sridurongrit, Somyoth; Ruiz-Lozano, Pilar et al. (2012) Deficient signaling via Alk2 (Acvr1) leads to bicuspid aortic valve development. PLoS One 7:e35539
Bogenmann, Emil; Thomas, Penny S; Li, Qianfeng et al. (2011) Generation of mice with a conditional allele for the p75(NTR) neurotrophin receptor gene. Genesis 49:862-9
Komatsu, Yoshihiro; Kaartinen, Vesa; Mishina, Yuji (2011) Cell cycle arrest in node cells governs ciliogenesis at the node to break left-right symmetry. Development 138:3915-20
Conway, Simon J; Kaartinen, Vesa (2011) TGFýý superfamily signaling in the neural crest lineage. Cell Adh Migr 5:232-6
Thomas, Penny S; Kim, Jieun; Nunez, Stephanie et al. (2010) Neural crest cell-specific deletion of Rac1 results in defective cell-matrix interactions and severe craniofacial and cardiovascular malformations. Dev Biol 340:613-25
Rajagopal, Ramya; Huang, Jie; Dattilo, Lisa K et al. (2009) The type I BMP receptors, Bmpr1a and Acvr1, activate multiple signaling pathways to regulate lens formation. Dev Biol 335:305-16
Rajagopal, Ramya; Dattilo, Lisa K; Kaartinen, Vesa et al. (2008) Functions of the type 1 BMP receptor Acvr1 (Alk2) in lens development: cell proliferation, terminal differentiation, and survival. Invest Ophthalmol Vis Sci 49:4953-60
De Langhe, Stijn P; Carraro, Gianni; Tefft, Denise et al. (2008) Formation and differentiation of multiple mesenchymal lineages during lung development is regulated by beta-catenin signaling. PLoS One 3:e1516

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