bioRxiv · 10.1101/2022.07.04.498644
Structural basis of the mycobacterial stress-response RNA polymerase auto-inhibition via oligomerization
Abstract
Self-assembly of macromolecules into higher-order symmetric structures is fundamental for the regulation of biological processes. Higher-order symmetric structure self-assembly by the gene expression machinery, such as bacterial DNA-dependent RNA polymerase (RNAP), has never been reported before. Here, we show that the stress-response {sigma}B factor from the human pathogen, Mycobacterium tuberculosis, induces the RNAP holoenzyme oligomerization into a supramolecular complex composed of eight RNAP units. Cryo-electron microscopy revealed a pseudo-symmetric structure of the RNAP octamer in which RNAP protomers are captured in an auto-inhibited state and display an open-clamp conformation. The structure shows that {sigma}B is sequestered by the RNAP flap and clamp domains. The transcriptional activator RbpA prevented octamer formation by promoting the initiation-competent RNAP conformation. Our results revealed that nonconserved region of {sigma} is an allosteric controller of transcription initiation and demonstrated how basal transcription factors can regulate gene expression by modulating the RNAP holoenzyme assembly and hibernation.
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Morichaud, Z., Trapani, S., Vishwakarma, R., Chaloin, L., Lionne, C., Lai-Kee-Him, J., Bron, P., Brodolin, K.. 2022-07-04. Structural basis of the mycobacterial stress-response RNA polymerase auto-inhibition via oligomerization. https://doi.org/10.1101/2022.07.04.498644
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