AI Article Synopsis

  • Intrinsic termination in bacteria occurs when RNA forms a hairpin near a weak RNA-DNA hybrid in RNA polymerase, leading to disassembly of the transcription complex after RNA synthesis.
  • The role of the polymorphous trigger loop (TL) in RNA polymerase is crucial, as it may promote termination by changing conformations and interacting with the hairpin structure.
  • Experimental findings indicate that while the TL aids in termination, stabilizing its conformation can slow down the termination rate; instead, fluctuations in TL conformations enhance the diversity of the transcription complex needed for effective termination pathways.

Article Abstract

In bacteria, intrinsic termination signals cause disassembly of the highly stable elongating transcription complex (EC) over windows of two to three nucleotides after kilobases of RNA synthesis. Intrinsic termination is caused by the formation of a nascent RNA hairpin adjacent to a weak RNA-DNA hybrid within RNA polymerase (RNAP). Although the contributions of RNA and DNA sequences to termination are largely understood, the roles of conformational changes in RNAP are less well described. The polymorphous trigger loop (TL), which folds into the trigger helices to promote nucleotide addition, also is proposed to drive termination by folding into the trigger helices and contacting the terminator hairpin after invasion of the hairpin in the RNAP main cleft [Epshtein V, Cardinale CJ, Ruckenstein AE, Borukhov S, Nudler E (2007) 28:991-1001]. To investigate the contribution of the TL to intrinsic termination, we developed a kinetic assay that distinguishes effects of TL alterations on the rate at which ECs terminate from effects of the TL on the nucleotide addition rate that indirectly affect termination efficiency by altering the time window in which termination can occur. We confirmed that the TL stimulates termination rate, but found that stabilizing either the folded or unfolded TL conformation decreased termination rate. We propose that conformational fluctuations of the TL (TL dynamics), not TL-hairpin contact, aid termination by increasing EC conformational diversity and thus access to favorable termination pathways. We also report that the TL and the TL sequence insertion (SI3) increase overall termination efficiency by stimulating pausing, which increases the flux of ECs into the termination pathway.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5676890PMC
http://dx.doi.org/10.1073/pnas.1706247114DOI Listing

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