Regulation of gene expression by noncoding RNAs (ncRNAs) is an emerging paradigm in biology. ncRNAs regulate a variety of processes, including transcription, translation, RNA modification, mRNA stability, RNA splicing, chromatin structure, and protein stability and activity, in a wide variety of organisms from bacteriophages to humans. Eukaryotic and prokaryotic genomes contain hundreds of uncharacterized ncRNAs, and these genes have been increasingly identified as the loci of mutations that cause developmental defects and several human diseases. ? ? One of the most interesting of these ncRNAs is tmRNA, a molecule with properties of both a tRNA and an mRNA, which intervenes in selected translation reactions; tmRNA recognizes selected translation complexes and enters the ribosome to mediate the addition of a peptide tag to the nascent polypeptide, targeting the protein for rapid degradation and releasing the ribosome and mRNA. This unique activity functions both in a translational quality control mechanism and in regulation of gene expression, tmRNA is conserved throughout the bacterial kingdom, and is required for processes such as pathogenesis, symbiosis, stress tolerance, and bacterial development. The long-term objective of this application is to understand the mechanism of action and physiological role of tmRNA in bacteria. ? ? This application focuses on the role of tmRNA in the development and cell cycle regulation of Caulobacter crescentus. C. crescentus is the organism of choice for these studies because the extensive knowledge of the molecular events that control its cell cycle and developmental program provide a unique opportunity to determine the influence of tmRNA activity on cellular differentiation and DNA replication, tmRNA is required for proper timing of DNA replication and the coincident differentiation from swarmer cell to stalked cell in C. crescentus. The primary goals of this application are: to identify substrates for tmRNA in C. crescentus that are important for control of DNA replication, to determine how tmRNA activity on these substrates affects DNA replication, and to understand how the activity of tmRNA is controlled by the genetic regulatory network of the cell. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM068720-02
Application #
6884070
Study Section
Special Emphasis Panel (ZRG1-MBC-2 (01))
Program Officer
Rhoades, Marcus M
Project Start
2004-05-01
Project End
2009-04-30
Budget Start
2005-05-01
Budget End
2006-04-30
Support Year
2
Fiscal Year
2005
Total Cost
$287,075
Indirect Cost
Name
Pennsylvania State University
Department
Biochemistry
Type
Schools of Arts and Sciences
DUNS #
003403953
City
University Park
State
PA
Country
United States
Zip Code
16802
Dillon, Nicholas A; Peterson, Nicholas D; Feaga, Heather A et al. (2017) Anti-tubercular Activity of Pyrazinamide is Independent of trans-Translation and RpsA. Sci Rep 7:6135
Keiler, Kenneth C; Jackson, Kathy L; Jaworski, Leslie et al. (2017) Teaching broader impacts of science with undergraduate research. PLoS Biol 15:e2001318
Alumasa, John N; Manzanillo, Paolo S; Peterson, Nicholas D et al. (2017) Ribosome Rescue Inhibitors Kill Actively Growing and Nonreplicating Persister Mycobacterium tuberculosis Cells. ACS Infect Dis 3:634-644
Alumasa, John N; Goralski, Tyler D P; Keiler, Kenneth C (2017) Tetrazole-Based trans-Translation Inhibitors Kill Bacillus anthracis Spores To Protect Host Cells. Antimicrob Agents Chemother 61:
Feaga, Heather A; Quickel, Michael D; Hankey-Giblin, Pamela A et al. (2016) Human Cells Require Non-stop Ribosome Rescue Activity in Mitochondria. PLoS Genet 12:e1005964
Goralski, Tyler D P; Dewan, Kalyan K; Alumasa, John N et al. (2016) Inhibitors of Ribosome Rescue Arrest Growth of Francisella tularensis at All Stages of Intracellular Replication. Antimicrob Agents Chemother 60:3276-82
El-Mowafi, S A; Sineva, E; Alumasa, J N et al. (2015) Identification of inhibitors of a bacterial sigma factor using a new high-throughput screening assay. Antimicrob Agents Chemother 59:193-205
Keiler, Kenneth C (2015) Mechanisms of ribosome rescue in bacteria. Nat Rev Microbiol 13:285-97
Feaga, Heather A; Viollier, Patrick H; Keiler, Kenneth C (2014) Release of nonstop ribosomes is essential. MBio 5:e01916
Keiler, Kenneth C; Feaga, Heather A (2014) Resolving nonstop translation complexes is a matter of life or death. J Bacteriol 196:2123-30

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