In bacteria, the 450 kDa RNA polymerase (RNAP) holoenzyme, comprising the evolutionarily conserved catalytic core (subunit composition alpha2betabeta'somega) combined with the initiation-specific sigma subunit, directs transcription initiation. Bacterial transcription depends on a primary sigma factor that is essential for viability, as well as alternative sigma's that control specific regulons. A major mechanism to control transcription initiation is through regulation of sigma activity. Dramatic insights have come from structural studies of sigma's and holoenzymes. Nevertheless many challenges remain. In this competing continuation, we propose studies to further our understanding of sigma factor structure and function, and interactions of accessory factors. Specifically, we propose to: 1. Characterize sigma factor structure and function. We will: a) Determine the structural basis for sigma interactions with the -10 element, b) Determine the structural basis for -35 element recognition by an alternative sigma, c) Probe the solution conformation of free ? using disulfide crosslinking, and d) Probe interdomain interactions of free sigma using segmental labeling and solution NMR. 2. Structurally characterize sigma/anti-sigma complexes. We will determine structures of: a) R. sphaeroides sigma/E/ChrR, and b) E. coli sigma/32/DnaK. 3. Structurally characterize interactions involved in transcription activation. We will: a) Investigate the bacteriophage lambda cl protein and the mechanism of activation, b) Investigate the role of the bacteriophage lambda cll protein in activation, and c) Determine the structure of the B. subtilis Spx/alpha-C-terminal-domain complex. 4. Structurally characterize the sigmaF regulatory system (sigmaF/SpollAA/SpollAB/SpollE) controlling the initiation of sporulation in Bacillus.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
2R01GM053759-10
Application #
6929622
Study Section
Prokaryotic Cell and Molecular Biology Study Section (PCMB)
Program Officer
Tompkins, Laurie
Project Start
1996-03-01
Project End
2009-04-30
Budget Start
2005-05-01
Budget End
2006-04-30
Support Year
10
Fiscal Year
2005
Total Cost
$469,886
Indirect Cost
Name
Rockefeller University
Department
Physiology
Type
Other Domestic Higher Education
DUNS #
071037113
City
New York
State
NY
Country
United States
Zip Code
10065
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Bae, Brian; Nayak, Dhananjaya; Ray, Ananya et al. (2015) CBR antimicrobials inhibit RNA polymerase via at least two bridge-helix cap-mediated effects on nucleotide addition. Proc Natl Acad Sci U S A 112:E4178-87
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Feklistov, Andrey (2013) RNA polymerase: in search of promoters. Ann N Y Acad Sci 1293:25-32
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Bae, Brian; Davis, Elizabeth; Brown, Daniel et al. (2013) Phage T7 Gp2 inhibition of Escherichia coli RNA polymerase involves misappropriation of ?70 domain 1.1. Proc Natl Acad Sci U S A 110:19772-7

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