The U937 human promyelocytic leukemia cell line has provided a valuable model for studying the mechanism of action of established and prospective treatment modalities in the laboratory. The U937 cell model has been used extensively for examining the mechanisms mediating the cytotoxic effects of chemotherapeutic agents as well as other forms of genotoxic stress, including UV radiation. Recent findings suggest that DNA damaging chemotherapeutics and UV radiation elicit their cytotoxic effects by triggering a sequence of events referred to as programmed cell death or apoptosis. Furthermore, the recently characterized protein cascade, termed the stress-activated protein kinase (SAPK) signal transduction pathway, has been implicated in mediating this response. To address this issue, a U937 cell model has been established in which the conditional expression of the dual-specificity protein phosphatase, MKP-1, functionally inhibits activation of the stress- activated signaling pathway. Preliminary studies indicate that conditional expression of MKP-1 provides cytoprotection against UV radiation-induced apoptosis. Thus, we have defined a novel anti- apoptotic role for MKP-1 in mediating cell survival in response to genotoxic stress stimuli. These findings provide the basis for a molecular model inwhich physiological resistance to genotoxic stress- induced apoptosis may be mediated by the induction of MKP-1, which attenuates signaling through the stress-activated protein kinase pathway. It is the goal of this proposal to determine the biochemical and genetic events regulating MKP-1-mediated resistance to genotoxic stress-induced apoptosis in the U937 cell model. It is our hypothesis that MKP-1 provides cytoprotection against genotoxic stress-induced apoptosis in U937 cells by attenuating the activation of SAPK or a SAPK- like protein kinase. Further, we hypothesize that this might provide a molecular basis for cellular resistance to chemotherapy.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
First Independent Research Support & Transition (FIRST) Awards (R29)
Project #
7R29CA075316-02
Application #
6031726
Study Section
Hematology Subcommittee 2 (HEM)
Program Officer
Mccarthy, Susan A
Project Start
1998-06-01
Project End
2003-05-31
Budget Start
1998-06-03
Budget End
1999-05-31
Support Year
2
Fiscal Year
1998
Total Cost
Indirect Cost
Name
University of Washington
Department
Pathology
Type
Schools of Medicine
DUNS #
135646524
City
Seattle
State
WA
Country
United States
Zip Code
98195
Backos, Donald S; Fritz, Kristofer S; Roede, James R et al. (2011) Posttranslational modification and regulation of glutamate-cysteine ligase by the ?,?-unsaturated aldehyde 4-hydroxy-2-nonenal. Free Radic Biol Med 50:14-26
Thompson, James A; Franklin, Christopher C (2010) Enhanced glutathione biosynthetic capacity promotes resistance to As3+-induced apoptosis. Toxicol Lett 193:33-40
Thompson, James A; White, Collin C; Cox, David P et al. (2009) Distinct Nrf1/2-independent mechanisms mediate As 3+-induced glutamate-cysteine ligase subunit gene expression in murine hepatocytes. Free Radic Biol Med 46:1614-25
Krzywanski, David M; Dickinson, Dale A; Iles, Karen E et al. (2004) Variable regulation of glutamate cysteine ligase subunit proteins affects glutathione biosynthesis in response to oxidative stress. Arch Biochem Biophys 423:116-25
Botta, Dianne; Franklin, Christopher C; White, Collin C et al. (2004) Glutamate-cysteine ligase attenuates TNF-induced mitochondrial injury and apoptosis. Free Radic Biol Med 37:632-42
Franklin, Christopher C; Rosenfeld-Franklin, Maryland E; White, Collin et al. (2003) TGFbeta1-induced suppression of glutathione antioxidant defenses in hepatocytes: caspase-dependent post-translational and caspase-independent transcriptional regulatory mechanisms. FASEB J 17:1535-7
Franklin, Christopher C; Krejsa, Cecile M; Pierce, Robert H et al. (2002) Caspase-3-Dependent Cleavage of the Glutamate-L-Cysteine Ligase Catalytic Subunit during Apoptotic Cell Death. Am J Pathol 160:1887-94
Siitonen, T; Alaruikka, P; Mantymaa, P et al. (1999) Protection of acute myeloblastic leukemia cells against apoptotic cell death by high glutathione and gamma-glutamylcysteine synthetase levels during etoposide-induced oxidative stress. Ann Oncol 10:1361-7