The hypothesis that the expression of p75NTR, the low affinity neurotrophin receptor, induces apoptosis which is inhibited by the binding of ligand, is put forth, and studies to explore the mechanism by which this may be achieved are proposed. New data have defined the requirement for a carboxyterminal death domain in the induction of apoptosis by p75NTR, TNFR I, and FAS. Deletion of this region in p75NTR results in conversion of the wild type, pro-apoptotic p75NTR to an anti-apoptotic mutant. Point mutants W359A and E348A abolish the apoptotic activity of p75NTR, just as corresponding mutations in TNFR I (W378A and E369A) abolish its activity as a pro-apoptotic receptor. These findings argue that p75NTR induces apoptosis by a mechanism that is biochemically similar to that of TNFR I. Because of recent findings of intracytoplasmic proteins with death domains that interact with TNFR I and FAS, a similar model is proposed for p75NTR, with the single difference being that the interacting protein is anti-apoptotic rather than pro-apoptotic. The proposal to evaluate this model includes (1) Mutagenesis studies, which will help to define the aminoterminal and carboxyterminal extents of the death domain; (2) Chimeric studies using EGFR-p75 and PDGFR-p75, which will help to determine the requirement for transmembrane and extracellular sequences of p75; and (3) 2-hybrid studies to identify proteins that interact with the intracytoplasmic domain of p75NTR. In sum, these studies should help to define the mechanism by which the expression of p75NTR leads to neural apoptosis.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Program Projects (P01)
Project #
5P01CA069381-04
Application #
6203361
Study Section
Project Start
1999-08-20
Project End
2000-06-30
Budget Start
1997-10-01
Budget End
1998-09-30
Support Year
4
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Sanford-Burnham Medical Research Institute
Department
Type
DUNS #
009214214
City
La Jolla
State
CA
Country
United States
Zip Code
92037
Xu, X-P; Zhai, D; Kim, E et al. (2013) Three-dimensional structure of Bax-mediated pores in membrane bilayers. Cell Death Dis 4:e683
Fujikura, D; Ito, M; Chiba, S et al. (2012) CLIPR-59 regulates TNF-?-induced apoptosis by controlling ubiquitination of RIP1. Cell Death Dis 3:e264
Chipuk, Jerry E; McStay, Gavin P; Bharti, Archana et al. (2012) Sphingolipid metabolism cooperates with BAK and BAX to promote the mitochondrial pathway of apoptosis. Cell 148:988-1000
Zervoudi, Efthalia; Papakyriakou, Athanasios; Georgiadou, Dimitra et al. (2011) Probing the S1 specificity pocket of the aminopeptidases that generate antigenic peptides. Biochem J 435:411-20
Pop, Cristina; Oberst, Andrew; Drag, Marcin et al. (2011) FLIP(L) induces caspase 8 activity in the absence of interdomain caspase 8 cleavage and alters substrate specificity. Biochem J 433:447-457
Cheung, Timothy C; Ware, Carl F (2011) The canonical and unconventional ligands of the herpesvirus entry mediator. Adv Exp Med Biol 691:353-62
Garrison, Jason B; Correa, Ricardo G; Gerlic, Motti et al. (2011) ARTS and Siah collaborate in a pathway for XIAP degradation. Mol Cell 41:107-16
Lu, Jennifer V; Weist, Brian M; van Raam, Bram J et al. (2011) Complementary roles of Fas-associated death domain (FADD) and receptor interacting protein kinase-3 (RIPK3) in T-cell homeostasis and antiviral immunity. Proc Natl Acad Sci U S A 108:15312-7
Ponder, Elizabeth L; Albrow, Victoria E; Leader, Brittany A et al. (2011) Functional characterization of a SUMO deconjugating protease of Plasmodium falciparum using newly identified small molecule inhibitors. Chem Biol 18:711-21
Timmer, John C; Salvesen, Guy S (2011) N-terminomics: a high-content screen for protease substrates and their cleavage sites. Methods Mol Biol 753:243-55

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