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Updated: Jan 6, 2026

In Vitro Selection of Engineered Transcriptional Repressors for Targeted Epigenetic Silencing
Published on: May 5, 2023
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.
Abstract:
The tradeoff between the benefits and costs of maintaining AT-rich accessory genes is vital in bacterial ecology and evolution. MucR is a conserved xenogeneic silencer for AT-rich accessory genes within α-proteobacteria, but its anti-silencing mechanisms remain unknown. By focusing on Sinorhizobium fredii, a facultative nitrogen-fixing microsymbiont of diverse legumes, this work reports that elevated c-di-GMP promotes the condition-dependent expression of various MucR1-targets, while downregulating the energy production and conversion pathway and reducing the NAD+/NADH ratio under both free-living and symbiotic conditions. Among the MucR1 targets responsive to c-di-GMP, an accessory module directing the biosynthesis of costly exopolysaccharides has been further studied. This anti-silencing process involves the sequential disruption of the DNA-MucR1-DNA bridging complex and the activation of a local transcriptional activator, CuxR. c-di-GMP directly binds to the C-terminal DNA-binding domain of MucR1, thereby facilitating intra- and inter-molecular interactions of MucR1. These interactions effectively alleviate the DNA-MucR-DNA bridging in the promoter region of target genes. This consequently enables the recruitment of the CuxR-c-di-GMP complex to the specific CuxR binding sites, which subsequently activates gene transcription. Collectively, accessory functions that are energetically costly and repressed by MucR1 can be harnessed by the ubiquitous messenger c-di-GMP through an integrated global-local signaling pathway.
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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