Crl activates transcription by stabilizing active conformation of the master stress transcription initiation factor.

Xu, Juncao; Cui, Kaijie; Shen, Liqiang; Shi, Jing; Li, Lingting; You, Linlin; Fang, Chengli; Zhao, Guoping et al. · Elife · 2019

basic_science · Level V

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Abstract

σ<sup>S</sup> is a master transcription initiation factor that protects bacterial cells from various harmful environmental stresses including antibiotic pressure. Although its mechanism remains unclear, it is known that full activation of σ<sup>S</sup>-mediated transcription requires a σ<sup>S</sup>-specific activator, Crl. In this study, we determined a 3.80 Å cryo-EM structure of an <i>Escherichia coli</i> transcription activation complex (<i>E. coli</i> Crl-TAC) comprising <i>E. coli</i> σ<sup>S</sup>-RNA polymerase (σ<sup>S</sup>-RNAP) holoenzyme, Crl, and a nucleic-acid scaffold. The structure reveals that Crl interacts with domain 2 of σ<sup>S</sup> (σ<sup>S</sup><sub>2</sub>) and the RNAP core enzyme, but does not contact promoter DNA. Results from subsequent hydrogen-deuterium exchange mass spectrometry (HDX-MS) indicate that Crl stabilizes key structural motifs within σ<sup>S</sup><sub>2</sub> to promote the assembly of the σ<sup>S</sup>-RNAP holoenzyme and also to facilitate formation of an RNA polymerase-promoter DNA open complex (RPo). Our study demonstrates a unique DNA contact-independent mechanism of transcription activation, thereby defining a previously unrecognized mode of transcription activation in cells.

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