4.8 Article

Structural basis of RNA polymerase inhibition by viral and host factors

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-021-25666-5

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资金

  1. Wellcome Trust [EM20287]
  2. Medical Research Council UK [EM20287]
  3. Biotechnology and Biological Sciences Research Council [EM20287]
  4. Wellcome [202679/Z/16/Z, 206166/Z/17/Z, 207446/Z/17/Z]
  5. Wellcome Investigator Award in Science [WT 207446/Z/17/Z]
  6. Wellcome Trust [206166/Z/17/Z, 202679/Z/16/Z, 207446/Z/17/Z] Funding Source: Wellcome Trust

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The study investigates two complexes that inhibit RNA polymerase, from Acidianus two-tailed virus and Sulfolobus Turreted Icosahedral Virus, revealing their mechanisms of transcription inhibition. The findings are important for understanding the inhibitory effects of archaeal eukaryotic-like RNA polymerases in virus infection.
RNA polymerase inhibition plays an important role in the regulation of transcription in response to environmental changes and in the virus-host relationship. Here we present the high-resolution structures of two such RNAP-inhibitor complexes that provide the structural bases underlying RNAP inhibition in archaea. The Acidianus two-tailed virus encodes the RIP factor that binds inside the DNA-binding channel of RNAP, inhibiting transcription by occlusion of binding sites for nucleic acid and the transcription initiation factor TFB. Infection with the Sulfolobus Turreted Icosahedral Virus induces the expression of the host factor TFS4, which binds in the RNAP funnel similarly to eukaryotic transcript cleavage factors. However, TFS4 allosterically induces a widening of the DNA-binding channel which disrupts trigger loop and bridge helix motifs. Importantly, the conformational changes induced by TFS4 are closely related to inactivated states of RNAP in other domains of life indicating a deep evolutionary conservation of allosteric RNAP inhibition. Understanding the structural basis for the inhibition of archaeal eukaryotic-like RNA polymerases (RNAPs) during virus infection is of interest for drug design. Here, the authors present the cryo-EM structures of apo Sulfolobus acidocaldarius RNAP and the RNAP complex structures with two regulatory factors, RIP and TFS4 that inhibit transcription and discuss their inhibitory mechanisms.

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