Structural basis for transcription activation by Crl through tethering of σ<sup>S</sup> and RNA polymerase.
basic_science · Level V
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- Record sourced from PubMed, PMID 31484766.
- Also identified by DOI 10.1073/pnas.1910827116 and PMC identifier 6754549.
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Abstract
In bacteria, a primary σ-factor associates with the core RNA polymerase (RNAP) to control most transcription initiation, while alternative σ-factors are used to coordinate expression of additional regulons in response to environmental conditions. Many alternative σ-factors are negatively regulated by anti-σ-factors. In <i>Escherichia coli</i>, <i>Salmonella enterica</i>, and many other γ-proteobacteria, the transcription factor Crl positively regulates the alternative σ<sup>S</sup>-regulon by promoting the association of σ<sup>S</sup> with RNAP without interacting with promoter DNA. The molecular mechanism for Crl activity is unknown. Here, we determined a single-particle cryo-electron microscopy structure of Crl-σ<sup>S</sup>-RNAP in an open promoter complex with a σ<sup>S</sup>-regulon promoter. In addition to previously predicted interactions between Crl and domain 2 of σ<sup>S</sup> (σ<sup>S</sup><sub>2</sub>), the structure, along with <i>p</i>-benzoylphenylalanine cross-linking, reveals that Crl interacts with a structural element of the RNAP β'-subunit that we call the β'-clamp-toe (β'CT). Deletion of the β'CT decreases activation by Crl without affecting basal transcription, highlighting the functional importance of the Crl-β'CT interaction. We conclude that Crl activates σ<sup>S</sup>-dependent transcription in part through stabilizing σ<sup>S</sup>-RNAP by tethering σ<sup>S</sup><sub>2</sub> and the β'CT. We propose that Crl, and other transcription activators that may use similar mechanisms, be designated σ-activators.
Medical subject headings
- Bacterial Proteins
- DNA-Directed RNA Polymerases
- Sigma Factor
- Transcription Factors
- Transcriptional Activation