Transcription activation mechanism of a noncanonical DNA damage response pathway by the WYL-activator, DriD.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41861017.
- Also identified by DOI 10.1126/sciadv.aec6337 and PMC identifier 13004042.
- Licence recorded as CC BY-NC.
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Abstract
DNA damage repair mechanisms are vital for cell survival. In the bacterium, <i>Caulobacter crescentus</i>, DriD is the master regulator of a unique, noncanonical DNA damage pathway. DriD binding to ssDNA, produced upon DNA damage, stimulates its ability to activate transcription from several promoters involved in DNA damage responses. However, the mechanism by which DriD interfaces with the RNAP holoenzyme to activate transcription from its multiple promoters has been unclear. Here, we describe cryo-EM structures of DriD-ssDNA bound to RNAP-holoenzyme and three DriD-regulated promoters. Each subunit of homodimeric DriD contains an DNA binding <i>N</i>-terminal winged helix-turn-helix (wHTH) connected to WYL domains by a linker 3-helix bundle (3HB) module. The structures reveal a mechanism of assembly on promoters whereby DriD's 3HBs bind the RNAP α-CTD and β domains, anchoring the RNAP-holoenzyme to regulated promoters. The 3HBs form autoinhibitory contacts with DNABDs in apo DriD and therefore acts as an ssDNA-driven trigger domain, switching between DNABD-bound apo and RNAP-bound forms upon ssDNA-mediated activation. Thus, the structures reveal a unique transcription activation mechanism, likely conserved among the large family of homodimeric WYL activators.
Medical subject headings
- DNA Damage
- Caulobacter crescentus
- Bacterial Proteins
- Transcriptional Activation
- DNA-Binding Proteins
- Transcription Factors