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  4. Sigma Factor F does not Prevent Rifampin Inhibition of RNA Polymerase or Cause Rifampin Tolerance in Mycobacterium tuberculosis
 
research article

Sigma Factor F does not Prevent Rifampin Inhibition of RNA Polymerase or Cause Rifampin Tolerance in Mycobacterium tuberculosis

Hartkoorn, Ruben C  
•
Sala, Claudia  
•
Magnet, Sophie J  
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2010
Journal of bacteriology

The tolerance of Mycobacterium tuberculosis to anti-tuberculosis drugs is a major reason for the lengthy therapy needed to treat a tuberculosis infection. Rifampin is a potent inhibitor of RNA polymerase (RNAP) in vivo, but has been shown to be less effective against stationary phase bacteria. Sigma factor F is associated with bacteria entering stationary phase and has been proposed to impact rifampin activity. Here we investigate whether RNAP containing SigF is more resistant to rifampin inhibition in vitro, and whether over-expression of sigF renders M. tuberculosis more tolerant to rifampin. Real-time and radiometric in vitro transcription assays revealed that rifampin equally inhibits transcription by RNAP containing sigma factors SigA and SigF, therefore ruling out the hypothesis that SigF may be responsible for increased resistance of the enzyme to rifampin in vitro. In addition, over-expression or deletion of sigF did not alter rifampin susceptibility in axenic cultures of M. tuberculosis, indicating that SigF does not affect rifampin tolerance in vivo.

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Type
research article
DOI
10.1128/JB.00687-10
Web of Science ID

WOS:000282281000020

PubMed ID

20729364

Author(s)
Hartkoorn, Ruben C  
•
Sala, Claudia  
•
Magnet, Sophie J  
•
Chen, Jeffrey M
•
Pojer, Florence  
•
Cole, Stewart T  
Date Issued

2010

Published in
Journal of bacteriology
Volume

192

Issue

10

Start page

5472

End page

5479

Subjects

In-Vitro Transcription

•

Nonreplicating Persistence

•

Mutant Lacking

•

Gene

•

Smegmatis

•

Resistance

•

Protein

•

Promoters

•

Stress

•

Model

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
UPCOL  
Available on Infoscience
September 7, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/53072
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