In response to external and internal signals, mammalian cells elicit changes in gene expression patterns that profoundly influence the global cellular response. The transcriptional events that regulate gene expression changes have been thoroughly studied, but less-well understood post-transcriptional processes are emerging as major regulatory mechanisms. Post-transcriptional gene regulation includes pre-mRNA processing and maturation, mRNA transport, stability and translation, as well as protein processing, modification and degradation. We are keenly interested in investigating the mechanisms that regulate the expression of proliferative, cell cycle-regulatory, and stress-response proteins.? Over the past 10 years, this Project has examined mRNAs encoding various stress-response and proliferative proteins. During this funding period, we have focused our attention on mRNAs encoding the hypoxia-inducible factor (HIF)-1 and the MAP Kinase phosphatase (MKP)-1. We have reported that RBPs HuR and PTB associate with HIF-1 mRNA and promote its translation in response to treatment with hypoxia and with the hypoxia mimetic CoCl2. We also reported that the post-transcriptional regulation of MKP-1 expression is mediated by HuR and NF90; both RBPs stabilized the MKP-1 mRNA, although only HuR promoted MKP-1 translation.? Ongoing studies are examining the regulation of HO-1 mRNA expression in response to nitric oxide. This process was found to be robustly regulated by stabilization of the HO-1 mRNA through the association of RBPs.

Agency
National Institute of Health (NIH)
Institute
National Institute on Aging (NIA)
Type
Intramural Research (Z01)
Project #
1Z01AG000511-11
Application #
7732247
Study Section
Project Start
Project End
Budget Start
Budget End
Support Year
11
Fiscal Year
2008
Total Cost
$408,331
Indirect Cost
Name
National Institute on Aging
Department
Type
DUNS #
City
State
Country
United States
Zip Code
Anantharaman, Aparna; Gholamalamdari, Omid; Khan, Abid et al. (2017) RNA-editing enzymes ADAR1 and ADAR2 coordinately regulate the editing and expression of Ctn RNA. FEBS Lett 591:2890-2904
Durie, D; Lewis, S M; Liwak, U et al. (2011) RNA-binding protein HuR mediates cytoprotection through stimulation of XIAP translation. Oncogene 30:1460-9
Wang, Peng-Yuan; Rao, Jaladanki N; Zou, Tongtong et al. (2010) Post-transcriptional regulation of MEK-1 by polyamines through the RNA-binding protein HuR modulating intestinal epithelial apoptosis. Biochem J 426:293-306
Abdelmohsen, Kotb; Gorospe, Myriam (2010) Posttranscriptional regulation of cancer traits by HuR. Wiley Interdiscip Rev RNA 1:214-29
Costantino, Christina L; Witkiewicz, Agnieszka K; Kuwano, Yuki et al. (2009) The role of HuR in gemcitabine efficacy in pancreatic cancer: HuR Up-regulates the expression of the gemcitabine metabolizing enzyme deoxycytidine kinase. Cancer Res 69:4567-72
de Silanes, Isabel Lopez; Gorospe, Myriam; Taniguchi, Hiroaki et al. (2009) The RNA-binding protein HuR regulates DNA methylation through stabilization of DNMT3b mRNA. Nucleic Acids Res 37:2658-71
Hucl, Tomas; Rago, Carlo; Gallmeier, Eike et al. (2008) A syngeneic variance library for functional annotation of human variation: application to BRCA2. Cancer Res 68:5023-30
Ishmael, Faoud T; Fang, Xi; Galdiero, Maria Rosaria et al. (2008) Role of the RNA-binding protein tristetraprolin in glucocorticoid-mediated gene regulation. J Immunol 180:8342-53
Kim, Hyeon Ho; Yang, Xiaoling; Kuwano, Yuki et al. (2008) Modification at HuR(S242) alters HuR localization and proliferative influence. Cell Cycle 7:3371-7
Kim, Hyeon Ho; Gorospe, Myriam (2008) Phosphorylated HuR shuttles in cycles. Cell Cycle 7:3124-6

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