Cell cycle transition from S-phase to G1 in Caulobacter is mediated by ancestral virulence regulators.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 24939058.
- Also identified by DOI 10.1038/ncomms5081 and PMC identifier 4083442.
- Licence recorded as CC BY-NC-ND.
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Abstract
Zinc-finger domain transcriptional regulators regulate a myriad of functions in eukaryotes. Interestingly, ancestral versions (MucR) from Alpha-proteobacteria control bacterial virulence/symbiosis. Whether virulence regulators can also control cell cycle transcription is unknown. Here we report that MucR proteins implement a hitherto elusive primordial S→G1 transcriptional switch. After charting G1-specific promoters in the cell cycle model Caulobacter crescentus by comparative ChIP-seq, we use one such promoter as genetic proxy to unearth two MucR paralogs, MucR1/2, as constituents of a quadripartite and homeostatic regulatory module directing the S→G1 transcriptional switch. Surprisingly, MucR orthologues that regulate virulence and symbiosis gene transcription in Brucella, Agrobacterium or Sinorhizobium support this S→G1 switch in Caulobacter. Pan-genomic ChIP-seq analyses in Sinorhizobium and Caulobacter show that this module indeed targets orthologous genes. We propose that MucR proteins and possibly other virulence regulators primarily control bacterial cell cycle (G1-phase) transcription, rendering expression of target (virulence) genes periodic and in tune with the cell cycle.
Medical subject headings
- Bacterial Proteins
- Caulobacter
- G1 Phase
- Gene Expression Regulation, Bacterial
- Models, Biological
- Repressor Proteins
- S Phase Cell Cycle Checkpoints