Cyclic-di-GMP interferes with DNA-MucR-DNA bridging to derepress genes targeted by the xenogeneic silencer MucR

Ning-Ning Liu1,2,3, Meng-Lin Li1,2,4, Wen-Tao Shi1,2,5

  • 1State Key Laboratory of Plant Environmental Resilience, and College of Biological Sciences, China Agricultural University, Beijing 100193, China.

Nucleic Acids Research
|October 28, 2025
PubMed

Insights

Cyclic-di-GMP (c-di-GMP) regulates costly bacterial genes by binding MucR1, a silencer protein. This interaction disrupts gene silencing, enabling expression of accessory functions like exopolysaccharide biosynthesis.

Area of Science:

  • Bacterial Ecology and Evolution
  • Molecular Microbiology
  • Bacterial Genetics

Background:

  • Maintaining AT-rich accessory genes presents a significant tradeoff between benefits and costs in bacterial ecology.
  • MucR is a conserved silencer of AT-rich accessory genes in α-proteobacteria, but its anti-silencing mechanisms are not well understood.

Purpose of the Study:

  • To elucidate the anti-silencing mechanisms of MucR in *Sinorhizobium fredii*.
  • To investigate the role of cyclic-di-GMP (c-di-GMP) in regulating MucR-targeted genes.

Main Methods:

  • Investigated gene expression changes in response to elevated c-di-GMP levels.
  • Analyzed the interaction between c-di-GMP, MucR1, and target gene promoters.
  • Characterized the role of transcriptional activator CuxR in the anti-silencing process.

Main Results:

  • Elevated c-di-GMP promotes expression of MucR1 targets, including costly exopolysaccharide biosynthesis genes.
  • c-di-GMP directly binds MucR1, disrupting DNA-MucR1-DNA complexes and alleviating gene silencing.
  • This process involves the activation of transcriptional activator CuxR, forming a CuxR-c-di-GMP complex that enhances transcription.

Conclusions:

  • c-di-GMP acts as a global regulator, integrating energy status with the expression of specific accessory functions via a global-local signaling pathway.
  • The MucR1-c-di-GMP-CuxR pathway allows bacteria to dynamically control energetically expensive functions based on environmental cues.

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