Allosteric control of the RNA polymerase by the elongation factor RfaH
Open Access
- 21 August 2007
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 35 (17) , 5694-5705
- https://doi.org/10.1093/nar/gkm600
Abstract
Efficient transcription of long polycistronic operons in bacteria frequently relies on accessory proteins but their molecular mechanisms remain obscure. RfaH is a cellular elongation factor that acts as a polarity suppressor by increasing RNA polymerase (RNAP) processivity. In this work, we provide evidence that RfaH acts by reducing transcriptional pausing at certain positions rather than by accelerating RNAP at all sites. We show that ‘fast’ RNAP variants are characterized by pause-free RNA chain elongation and are resistant to RfaH action. Similarly, the wild-type RNAP is insensitive to RfaH in the absence of pauses. In contrast, those enzymes that may be prone to falling into a paused state are hypersensitive to RfaH. RfaH inhibits pyrophosphorolysis of the nascent RNA and reduces the apparent Michaelis–Menten constant for nucleotides, suggesting that it stabilizes the post-translocated, active RNAP state. Given that the RfaH-binding site is located 75 Å away from the RNAP catalytic center, these results strongly indicate that RfaH acts allosterically. We argue that despite the apparent differences in the nucleic acid targets, the time of recruitment and the binding sites on RNAP, unrelated antiterminators (such as RfaH and λ Q) utilize common strategies during both recruitment and anti-pausing modification of the transcription complex.Keywords
This publication has 44 references indexed in Scilit:
- A Central Role of the RNA Polymerase Trigger Loop in Active-Site Rearrangement during Transcriptional PausingMolecular Cell, 2007
- Structural Basis for Converting a General Transcription Factor into an Operon-Specific Virulence RegulatorPublished by Elsevier ,2007
- Structural Basis of Transcription: Role of the Trigger Loop in Substrate Specificity and CatalysisCell, 2006
- RNA-Mediated Destabilization of the σ70 Region 4/β Flap Interaction Facilitates Engagement of RNA Polymerase by the Q AntiterminatorMolecular Cell, 2006
- The regulatory roles and mechanism of transcriptional pausingBiochemical Society Transactions, 2006
- Escherichia coli RNA Polymerase Mutations Located Near the Upstream Edge of an RNA:DNA Hybrid and the Beginning of the RNA-exit Channel are Defective for Transcription Antitermination by the N Protein from Lambdoid Phage H-19BJournal of Molecular Biology, 2005
- Thinking quantitatively about transcriptional regulationNature Reviews Molecular Cell Biology, 2005
- A Ratchet Mechanism of Transcription Elongation and Its ControlCell, 2005
- Determination of Intrinsic Transcription Termination Efficiency by RNA Polymerase Elongation RateScience, 1994
- The replication time of the Escherichia coli K12 chromosome as a function of cell doubling timeJournal of Molecular Biology, 1975