ArticleNucleic acids research2018
Active site closure stabilizes the backtracked state of RNA polymerase.
Article in Nucleic acids research, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Concerted transformation of a hyper-paused transcription complex and its reinforcing protein.Nature communications · 2024Article
- Structural Studies of HNA Substrate Specificity in Mutants of an Archaeal DNA Polymerase Obtained by Directed Evolution.Biomolecules · 2020Article
- High intrinsic hydrolytic activity of cyanobacterial RNA polymerase compensates for the absence of transcription proofreading factors.Nucleic acids research · 2020Article
- Oxazinomycin arrests RNA polymerase at the polythymidine sequences.Nucleic acids research · 2019Article
- The Mechanisms of Substrate Selection, Catalysis, and Translocation by the Elongating RNA Polymerase.Journal of molecular biology · 2019Review
- Structural Basis of Transcription: RNA Polymerase Backtracking and Its Reactivation.Molecular cell · 2019Article
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Authors and funding
3 authors.
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Abstract
All cellular RNA polymerases (RNAP) occasionally backtrack along the template DNA as part of transcriptional proofreading and regulation. Here, we studied the mechanism of RNAP backtracking by one nucleotide using two complementary approaches that allowed us to precisely measure the occupancy and lifetime of the backtracked state. Our data show that the stability of the backtracked state is critically dependent on the closure of the RNAP active site by a mobile domain, the trigger loop (TL). The lifetime and occupancy of the backtracked state measurably decreased by substitutions of the TL residues that interact with the nucleoside triphosphate (NTP) substrate, whereas amino acid substitutions that stabilized the closed active site increased the lifetime and occupancy. These results suggest that the same conformer of the TL closes the active site during catalysis of nucleotide incorporation into the nascent RNA and backtracking by one nucleotide. In support of this hypothesis, we construct a model of the 1-nt backtracked complex with the closed active site and the backtracked nucleotide in the entry pore area known as the E-site. We further propose that 1-nt backtracking mimics the reversal of the NTP substrate loading into the RNAP active site during on-pathway elongation.
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