Catabolite repression control protein antagonist, a novel player in Pseudomonas aeruginosa carbon catabolite
Elisabeth Sonnleitner1, Flavia Bassani1, Anastasia Cianciulli Sesso1,2
1Department of Microbiology, Immunobiology and Genetics, Max Perutz Labs, Center of Molecular Biology, Vienna Biocenter, University of Vienna, Vienna, Austria.
Insights
A newly discovered protein, CrcA, antagonizes carbon catabolite repression (CCR) in Pseudomonas aeruginosa by binding to Crc, promoting the use of less preferred carbon sources and impacting bacterial growth.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Carbon catabolite repression (CCR) in *Pseudomonas aeruginosa* controls nutrient utilization and affects virulence.
- The RNA chaperone Hfq and Crc protein form repressive complexes on mRNAs, hindering the metabolism of less preferred carbon sources.
- The regulatory RNA CrcZ relieves this repression by sequestering Hfq.
Purpose of the Study:
- To investigate if Crc action can be modulated to relieve CCR after preferred carbon source depletion.
- To identify proteins interacting with Crc to understand its regulatory mechanism.
Main Methods:
- *In vivo* co-purification studies
- Co-immunoprecipitation assays
- Biophysical assays
- Structural studies
- Bioinformatics analysis
- Ectopic gene expression studies
Main Results:
- Crc was found to bind to *Pae* strain O1 protein PA1677, identified as belonging to the isochorismatase-like superfamily.
- Ectopic expression of PA1677 led to de-repression of Hfq/Crc-controlled genes.
- Absence of PA1677 resulted in an extended lag phase during diauxic growth, indicating impaired metabolism of non-preferred carbon sources.
- PA1677 acts as a Crc antagonist, likely by titrating Crc and diminishing repressive Hfq/Crc complex formation.
Conclusions:
- PA1677, proposed as CrcA (catabolite repression control protein antagonist), modulates CCR in *P. aeruginosa*.
- CrcA's antagonism of Crc facilitates the utilization of non-preferred carbon sources.
- This finding offers a new target for manipulating bacterial growth and virulence.
Abstract:
In the opportunistic human pathogen Pseudomonas aeruginosa (Pae), carbon catabolite repression (CCR) orchestrates the hierarchical utilization of N and C sources, and impacts virulence, antibiotic resistance and biofilm development. During CCR, the RNA chaperone Hfq and the catabolite repression control protein Crc form assemblies on target mRNAs that impede translation of proteins involved in uptake and catabolism of less preferred C sources. After exhaustion of the preferred C-source, translational repression of target genes is relieved by the regulatory RNA CrcZ, which binds to and acts as a decoy for Hfq. Here, we asked whether Crc action can be modulated to relieve CCR after exhaustion of a preferred carbon source. As Crc does not bind to RNA per se, we endeavored to identify an interacting protein. In vivo co-purification studies, co-immunoprecipitation and biophysical assays revealed that Crc binds to Pae strain O1 protein PA1677. Our structural studies support bioinformatics analyzes showing that PA1677 belongs to the isochorismatase-like superfamily. Ectopic expression of PA1677 resulted in de-repression of Hfq/Crc controlled target genes, while in the absence of the protein, an extended lag phase is observed during diauxic growth on a preferred and a non-preferred carbon source. This observations indicate that PA1677 acts as an antagonist of Crc that favors synthesis of proteins required to metabolize non-preferred carbon sources. We present a working model wherein PA1677 diminishes the formation of productive Hfq/Crc repressive complexes on target mRNAs by titrating Crc. Accordingly, we propose the name CrcA (catabolite repression control protein antagonist) for PA1677.
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