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Enterococcus faecalis Maltodextrin Gene Regulation by Combined Action of Maltose Gene Regulator MalR and Pleiotropic
Maxime Grand1, Eliette Riboulet-Bisson1, Josef Deutscher2,3
1Normandie University, UNICAEN, U2RM Stress/Virulence, Caen, France.
Abstract:
Enterococci are Gram-positive bacteria present in the healthy human microbiota, but they are also a leading cause of nosocomial infections. Maltodextrin utilization by Enterococcus faecalis has been identified as an important factor for colonization of mammalians hosts. Here, we show that the LacI/GalR transcriptional regulator MalR, the maltose gene regulator, is also the main regulator of the operons encoding an ABC transporter (mdxEFG) and three metabolic enzymes (mmdH-gmdH-mmgT) required for the uptake and catabolism of maltotetraose and longer maltodextrins. The utilization of maltose and maltodextrins is consequently coordinated and induced by the disaccharide maltose, which binds to MalR. Carbon catabolite repression of the mdxEFG and mmdH-gmdH-mmgT operons is mediated by both P-Ser-HPr/MalR and P-Ser-HPr/CcpA. The latter complex exerts only moderate catabolite repression, which became visible when comparing maltodextrin operon expression levels of a malR- mutant (with a mutant allele for the malR gene) and a malR- ΔccpA double mutant grown in the presence of maltose, which is transported via a phosphotransferase system and, thus, favors the formation of P-Ser-HPr. Moreover, maltodextrin transport via MdxEFG slows rapidly when glucose is added, suggesting an additional regulation via inducer exclusion. This complex regulation of metabolic operons likely allows E. faecalis to fine-tune gene expression in response to changing environmental conditions.IMPORTANCEEnterococcus faecalis represents a leading cause of hospital-acquired infections worldwide. Several studies highlighted the importance of carbohydrate metabolism in the infection process of this bacterium. The genes required for maltodextrin metabolism are particularly induced during mouse infection and, therefore, should play an important role for pathogenesis. Since no data were hitherto available concerning the regulation of expression of the maltodextrin operons, we have conducted experiments to study the underlying mechanisms.
Insights
Enterococcus faecalis uses maltodextrin for host colonization. The regulator MalR controls maltodextrin uptake and breakdown, coordinating its use with maltose. This metabolism is finely tuned by complex regulatory mechanisms.
Area of Science:
- Microbiology
- Bacterial Physiology
- Gene Regulation
Background:
- Enterococci are common bacteria, but also cause significant nosocomial infections.
- Maltodextrin utilization by Enterococcus faecalis is crucial for host colonization.
- The regulation of maltodextrin metabolism in E. faecalis was previously uncharacterized.
Purpose of the Study:
- To elucidate the regulatory mechanisms governing maltodextrin utilization in Enterococcus faecalis.
- To identify the key transcriptional regulator(s) involved in maltodextrin operon expression.
- To understand how maltodextrin metabolism is integrated with other carbon source utilization pathways.
Main Methods:
- Genetic analysis of the transcriptional regulator MalR and its role in maltodextrin operon regulation.
- Construction and characterization of mutant strains (malR single mutant, malR ΔccpA double mutant).
- Analysis of gene expression under various growth conditions, including the presence of maltose and glucose.
Main Results:
- MalR is identified as the primary regulator of maltodextrin uptake (mdxEFG) and catabolism (mmdH-gmdH-mmgT) operons.
- Maltose induces the expression of these operons by binding to MalR, coordinating maltose and maltodextrin utilization.
- Carbon catabolite repression involves P-Ser-HPr/MalR and P-Ser-HPr/CcpA complexes, with additional regulation by inducer exclusion.
Conclusions:
- Enterococcus faecalis employs a complex regulatory network, primarily orchestrated by MalR, to control maltodextrin metabolism.
- This intricate regulation allows the bacterium to adapt gene expression to environmental nutrient availability.
- Understanding these mechanisms provides insights into E. faecalis pathogenesis and potential therapeutic targets.
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