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Advances in Characterizing the Transport Systems of and Resistance to EntDD14, A Leaderless Two-Peptide Bacteriocin
Adrián Pérez-Ramos1, Rabia Ladjouzi1, Marius Mihasan2
1ICV-Institut Charles Viollette, UMR Transfrontalière BioEcoAgro 1158, University Lille, INRAE, University Liège, UPJV, YNCREA, University Artois, University Littoral Côte d'Opale, 59000 Lille, France.
Abstract:
Enterocin DD14 (EntDD14) is a two-peptide leaderless bacteriocin produced by the Enterococcus faecalis 14 strain previously isolated from meconium. This bacteriocin is mainly active against Gram-positive bacteria. Leaderless bacteriocins do not undergo post-translational modifications and are therefore immediately active after their synthesis. As a result, the cells that produce such bacteriocins have developed means of protection against them which often involve transport systems. In this and our previous work, we constructed different mutants deleted in the genes involved in the transport functions, thus covering all the supposed components of this transport system, using Listeria innocua ATCC 33090 as the indicator strain to assess the activity of externalized EntDD14. We also assessed the self-resistance of the WT and all its engineered derivative mutants against EntDD14, provided extracellularly, in order to evaluate their self-resistance. The results obtained highlight that the ABC transporter constituted by the DdG, H, I, and J proteins contributes to EntDD14 export as well as resistance to an external supply of EntDD14. Our results also have established the essential role of the DdE and DdF proteins as primary transporters dedicated to the externalization of EntDD14. Moreover, the in silico data showed that DdE and DdF appear to assemble in a formation that forms an essential channel for the exit of EntDD14. This channel DdEF may interact with the ABC transporter DdGHIJ in order to control the flow of bacteriocin across the membrane, although the nature of this interaction remains to be elucidated.
Insights
Enterocin DD14 (EntDD14), a bacteriocin from Enterococcus faecalis, uses DdE and DdF proteins for export and the DdGHIJ ABC transporter for resistance. This system is crucial for bacteriocin function and self-protection.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Leaderless bacteriocins, like Enterocin DD14 (EntDD14), are immediately active post-synthesis.
- Bacteriocin-producing bacteria require self-protection mechanisms, often involving transport systems.
- Enterococcus faecalis 14 produces EntDD14, active against Gram-positive bacteria.
Purpose of the Study:
- To elucidate the transport system responsible for EntDD14 export.
- To investigate the self-resistance mechanisms of EntDD14-producing bacteria.
- To identify the specific proteins involved in bacteriocin externalization and protection.
Main Methods:
- Construction and analysis of gene deletion mutants in Enterococcus faecalis.
- Assessment of EntDD14 activity using Listeria innocua as an indicator strain.
- Evaluation of bacterial self-resistance to extracellular EntDD14.
- In silico analysis of protein interactions and channel formation.
Main Results:
- The ABC transporter (DdGHIJ) is essential for both EntDD14 export and self-resistance.
- DdE and DdF proteins function as primary transporters for EntDD14 externalization.
- In silico data suggest DdE and DdF form a channel (DdEF) for bacteriocin exit.
- The DdEF channel may interact with the DdGHIJ transporter to regulate bacteriocin flow.
Conclusions:
- The DdEF channel and DdGHIJ ABC transporter form a coordinated system for EntDD14 transport and resistance.
- Understanding these mechanisms is key to harnessing bacteriocins for antimicrobial applications.
- Further research is needed to clarify the interaction between the DdEF channel and DdGHIJ transporter.
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