Structural basis of promoter recognition by Staphylococcus aureus RNA polymerase.

Yuan, Linggang; Liu, Qingyang; Xu, Liqiao; Wu, Bing; Feng, Yu · Nat Commun · 2024

basic_science · Level V

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Abstract

Bacterial RNAP needs to form holoenzyme with σ factors to initiate transcription. While Staphylococcus aureus σ<sup>A</sup> controls housekeeping functions, S. aureus σ<sup>B</sup> regulates virulence, biofilm formation, persistence, cell internalization, membrane transport, and antimicrobial resistance. Besides the sequence difference, the spacers between the -35 element and -10 element of σ<sup>B</sup> regulated promoters are shorter than those of σ<sup>A</sup> regulated promoters. Therefore, how σ<sup>B</sup> recognizes and initiates transcription from target promoters can not be inferred from that of the well studied σ. Here, we report the cryo-EM structures of S. aureus RNAP-promoter open complexes comprising σ<sup>A</sup> and σ<sup>B</sup>, respectively. Structural analyses, in combination with biochemical experiments, reveal the structural basis for the promoter specificity of S. aureus transcription. Although the -10 element of σ<sup>A</sup> regulated promoters is recognized by domain σ<sup>A</sup><sub>2</sub> as single-stranded DNA, the -10 element of σ<sup>B</sup> regulated promoters is co-recognized by domains σ<sup>B</sup><sub>2</sub> and σ<sup>B</sup><sub>3</sub> as double-stranded DNA, accounting for the short spacers of σ<sup>B</sup> regulated promoters. S. aureus RNAP is a validated target of antibiotics, and our structures pave the way for rational drug design targeting S. aureus RNAP.

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