Programmed cell death plays critical roles in a wide variety of physiological processes, including fetal development, tissue homeostasis, immune cell education, and elimination or virus- infected cells. Defects in the regulation of cell suicide mechanisms contribute to the pathogenesis of multiple diseases, including those characterized by insufficient (cancer; autoimmunity) and excessive cell death (stroke, myocardial infarction, AIDS). CED-4 family proteins are central regulators of apoptosis, which bind to and trigger the activation of caspase-family cell death proteases. These proteins contain an ATP-binding protein oligomerization domain (NB-ARC) coupled with domains that bind the pro-forms of particular caspases. The focus of this proposal is the biochemical and biological characterization of novel mammalian CED-4-like proteins, recently discovered by our research team: NAC, CARD-X, and DAP-3. NAC contains an NB-ARC domain together with a Caspase-Associated Recruitment Domain (CARD). CARD-X is another CARD-containing protein, which lacks a NB-ARC domain thus disqualifying it from CED-4-family membership, but which is a candidate regulator of caspase-activation pathways controlled by these proteins. DAP-3 is a regulator of apoptosis pathways induced by Tumor Necrosis Factor (TNF)-family death receptors, which contains a NB-ARC-like domain and a Death Effector Domain (DED)-like region that binds DED-containing pro-caspases. The goals of this proposal are to elucidate in full-detail the mechanisms by which these proteins control apoptosis pathways and to explore their in vivo roles using gene knock-out approaches in mice. The information provided by these investigations may provide insights into human diseases where dysregulation of programmed cell death is known to occur and may lead to new strategies for therapeutic intervention.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM061694-02
Application #
6387209
Study Section
Cell Development and Function Integrated Review Group (CDF)
Program Officer
Zatz, Marion M
Project Start
2000-09-01
Project End
2004-08-31
Budget Start
2001-09-01
Budget End
2002-08-31
Support Year
2
Fiscal Year
2001
Total Cost
$331,500
Indirect Cost
Name
Sanford-Burnham Medical Research Institute
Department
Type
DUNS #
009214214
City
La Jolla
State
CA
Country
United States
Zip Code
92037
Li, H-M; Fujikura, D; Harada, T et al. (2009) IPS-1 is crucial for DAP3-mediated anoikis induction by caspase-8 activation. Cell Death Differ 16:1615-21
Kim, Hyung-Ryong; Chae, Han-Jung; Thomas, Michael et al. (2007) Mammalian dap3 is an essential gene required for mitochondrial homeostasis in vivo and contributing to the extrinsic pathway for apoptosis. FASEB J 21:188-96
Wang, Xin; Narayanan, Malini; Bruey, Jean-Marie et al. (2006) Protective role of Cop in Rip2/caspase-1/caspase-4-mediated HeLa cell death. Biochim Biophys Acta 1762:742-54
Wang, Xin; Wang, Hongyan; Figueroa, Bryan E et al. (2005) Dysregulation of receptor interacting protein-2 and caspase recruitment domain only protein mediates aberrant caspase-1 activation in Huntington's disease. J Neurosci 25:11645-54
Miyazaki, Tadaaki; Shen, Min; Fujikura, Daisuke et al. (2004) Functional role of death-associated protein 3 (DAP3) in anoikis. J Biol Chem 279:44667-72
Thomas, Lance R; Henson, Adrianna; Reed, John C et al. (2004) Direct binding of Fas-associated death domain (FADD) to the tumor necrosis factor-related apoptosis-inducing ligand receptor DR5 is regulated by the death effector domain of FADD. J Biol Chem 279:32780-5
Damiano, Jason S; Newman, Ruchi M; Reed, John C (2004) Multiple roles of CLAN (caspase-associated recruitment domain, leucine-rich repeat, and NAIP CIIA HET-E, and TP1-containing protein) in the mammalian innate immune response. J Immunol 173:6338-45
Thomas, Lance R; Johnson, Ronald L; Reed, John C et al. (2004) The C-terminal tails of tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) and Fas receptors have opposing functions in Fas-associated death domain (FADD) recruitment and can regulate agonist-specific mechanisms of receptor activation. J Biol Chem 279:52479-86
Damiano, Jason S; Oliveira, Vasco; Welsh, Kate et al. (2004) Heterotypic interactions among NACHT domains: implications for regulation of innate immune responses. Biochem J 381:213-9
Stehlik, Christian; Reed, John C (2004) The PYRIN connection: novel players in innate immunity and inflammation. J Exp Med 200:551-8

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