Cytoplasmic receptors of the RRNPPA superfamily mediate peptide-based quorum sensing in Gram-positive bacteria and are thought to be activated exclusively by short, unmodified pheromones. Here, we show that the RRNPPA regulator ComR in the human commensal Streptococcus salivarius can also be activated by a distinct class of non-peptide metabolites. A screen of ~200 organic compounds identified hydroxyphenylacetic acid (HPAA)-a microbial dysbiosis-associated catabolite-as a potent activator of ComR. Using biochemical and genetic approaches, we demonstrate that HPAA and related aromatic carboxylic acids bind the canonical pheromone pocket and induce sustained expression of predatory bacteriocins, while bypassing the competence program triggered by the native peptide signal (XIP). We further show that the oral pathogen Porphyromonas gingivalis produces physiologically relevant amounts of (H)PAA, enabling metabolite-driven activation of predation in S. salivarius. These findings reveal an unexpected capacity of RRNPPA receptors to sense both peptide and metabolite cues, uncovering a chemical mode of interspecies communication that links dysbiosis to predatory behavior in the oral microbiome.
Aim We explored in silico and in vitro the complete bacteriocin profile of the oral probiotic Streptococcus oralis subsp. dentisani strain 7746 with the primary objective of providing a descriptive analysis of bacteriocin genomic organization, regulatory context, and transcriptional expression.Methods The recently closed genome of 7746 was subjected to genome mining searches for bacteriocin biosynthetic gene clusters with BAGEL4 and antiSMASH. Orthology conservation analyses were performed to distinguish between bacteriocin-like peptides (Blp) and competence (Com) related peptides. We assessed bacteriocins’ transcription by non-quantitative cross-gene RT-PCR.Results Three new bacteriocin-coding genes were identified, which increased to 14 the number of bacteriocins encoded by S. dentisani 7746. We proved that all 14 identified bacteriocins are transcriptionally expressed. We have assigned names to bacteriocins with unnamed orthologs in other species, proposing the name Denticins (from Denticin A to Denticin H). Our analysis led us to propose a model for competence and bacteriocin regulation in this strain, ruled by complete sets of Com and Blp-like quorum sensing systems.Conclusion Our results suggest that S. dentisani 7746 is the bacterial isolate with the largest repertoire of bacteriocin genes known to date and that part of its blp-like region might have been acquired by horizontal gene transfer from pneumococci.
Bacteria inhabiting competitive microbial environments must rapidly detect and neutralize antimicrobial peptides (AMPs) produced by rivals. The activation of defense pathways relies on dedicated sensors and complex regulatory cascades. Here, we uncover a streamlined, membrane-embedded mechanism in Gram-positive bacteria that directly links detection to transcriptional control. We show that a YtrA-family transcriptional repressor is regulated through an unconventional direct physical interaction with its cognate ABC transporter. In Streptococcus salivarius , the MbrAB efflux pump sequesters the YtrA-like repressor MbrR through a competitive binding mechanism. Upon bacteriocin sensing, MbrR shifts from promoter-proximal DNA repression sites to membrane-associated sequestration via interaction with MbrA, thereby activating the bacteriocin defense system. ATP binding by MbrA facilitates MbrR recruitment, whereas ATP hydrolysis promotes its release, providing a dynamic, flux-responsive feedback loop finely tuned to environmental threat. Structural modeling, synteny, and conservation analyses reveal that this transporter-mediated sequestration mechanism is highly conserved across Gram-positive bacteria, suggesting a widespread and efficient strategy for AMP resistance that bypasses the need for classical sensor kinases. These findings expand the known repertoire of bacterial sensing and resistance systems and provide new insight into how Gram-positive bacteria swiftly adapt to interbacterial antagonism. Bacteria in crowded microbial communities face constant chemical warfare, yet how they sense and counteract antimicrobial peptides (AMPs) remains incompletely understood. Here we uncover a minimalist sensing-response module in streptococci in which YtrA-family transcriptional repressors are directly regulated by their partner ABC transporters. In Streptococcus salivarius , the MbrAB transporter detects incoming bacteriocins and physically sequesters the MbrR repressor, triggering rapid induction of a multi-gene defense program. ATP binding drives MbrR capture, while hydrolysis resets the system, providing a fast, energy-coupled switch that bypasses canonical two-component signaling. Comparative genomics shows that this transporter-repressor circuit is highly conserved across Bacillota , pointing to a broadly distributed and efficient strategy for AMP resistance. These findings reveal a direct physical link between membrane transport and transcriptional control, redefining how Gram-positive bacteria can sense and respond to microbial threats. We identify a conserved transporter-repressor module in streptococci that directly couples bacteriocin detection to transcriptional activation, revealing a minimalist and rapid mechanism for antimicrobial peptide resistance.
Bacteriocins are underexplored yet promising candidates to combat antimicrobial resistance (AMR) and enable targeted therapy due to their natural origin, abundance and narrow spectrum of activity. In this study, we used a collection of engineered DNA devices and cell-free gene expression (CFE) to rapidly produce combinations (cocktails) of bacteriocins comprising both linear and circular proteins. Other cocktails were designed to target a specific bacterial species by leveraging insights into bacteriocin pathways for cell envelope penetration. These tailored combinations eradicated bacteria effectively while preventing resistance development. The synthesis of bacteriocins was optimized by using continuous exchange CFE, reengineering DNA parts, and adjusting conditions for disulfide bond formation. Also, we illustrate the efficacy of these bacteriocin mixtures against various multidrug-resistant human pathogens and highlight their potential through in vivo testing in the animal model Galleria mellonella. Our bacteriocin cocktail expression and test platform underscores the potential of bacteriocins for innovative treatments against multidrug-resistant infections.
Cell-to-cell communication in Gram-positive bacteria is predominantly orchestrated by cytoplasmic sensors of the RRNPPA family. To date, all characterized members of this family are activated by small, unmodified peptide pheromones that mediate bacterial signaling. In the human commensal Streptococcus salivarius , the RRNPPA sensor ComR controls both competence (DNA transformation) and predation (bacteriocin production). Here, we reveal that ComR can be dually activated by its cognate peptide (XIP) and a distinct class of small organic molecules. A targeted screen of ∼200 organic compounds identified hydroxyphenylacetic acid (HPAA), a bacterial dysbiosis byproduct accumulating in human fluids, as a potent inducer of ComR. Using in vivo and in vitro approaches, we demonstrated that HPAA and structurally related carboxylic acids derived from bulky hydrophobic amino acids bind the pheromone-accommodating pocket, leading to ComR activation. Strikingly, while XIP-mediated activation is transient and regulates both competence and predation, HPAA induces a sustained, predation-oriented response. Furthermore, we showed that Porphyromonas gingivalis , an oral pathogen, produces sufficient (H)PAA quantity to trigger bacteriocin production in S. salivarius , revealing a previously unrecognized chemical interplay between oral microbiota members. These findings highlight the remarkable versatility of cytoplasmic sensors to integrate diverse environmental cues, shedding new light on bacterial peptide-based communication and microbial homeostasis in the human microbiome. IMPORTANCE Bacterial communication through quorum sensing (QS) is crucial for coordinating key physiological processes. While QS in Gram-positive bacteria has been predominantly associated with peptide pheromones, our study uncovers an undescribed alternative signaling mechanism. We demonstrate that ComR, a cytoplasmic receptor of the RRNPPA family, can be activated by its canonical peptide signal and by small organic molecules derived from the anaerobic breakdown of hydrophobic amino acids. This alternative activation pathway enhances the ability of S. salivarius to respond to microbial dysbiosis, maintaining ecological balance in the digestive tract. Beyond revealing a novel layer of bacterial communication, our findings suggest that many RRNPPA-family receptors previously considered “orphan” may respond to yet-undiscovered chemical signals. This work expands our understanding of bacterial sensing and opens new avenues for modulating microbial interactions in health and disease. ### Competing Interest Statement LLG, JM, and PH declare that they are listed as inventors on patent(s) or patent application(s) related to bacteriocin production and uses. Belgian National Fund for Scientific Research, PDR T.0110.18, PDR T.0111.22, CDR J.0090.21 Federation Wallonia-Brussels, ARC 17/22-084, ARC 22/27-120 European Union’s Horizon 2020, MSC 101018461
Lactococcus lactis is a lactic acid bacterium of major importance for food fermentation and biotechnological applications. The ability to manipulate its genome quickly and easily through competence for DNA transformation would accelerate its general use as a platform for a variety of applications. Natural transformation in this species requires the activation of the master regulator ComX. However, the growth conditions that lead to spontaneous transformation, as well as the regulators that control ComX production, are unknown. Here, we identified the carbon source, nitrogen supply, and pH as key factors controlling competence development in this species. Notably, we showed that these conditions are sensed by three global regulators (i.e., CcpA, CodY, and CovR), which repress comX transcription directly. Furthermore, our systematic inactivation of known signaling systems suggests that classical pheromone-sensing regulators are not involved. Finally, we revealed that the ComX-degrading MecA-ClpCP machinery plays a predominant role based on the identification of a single amino-acid substitution in the adaptor protein MecA of a highly transformable strain. Contrasting with closely-related streptococci, the master competence regulator in L. lactis is regulated both proximally by general sensors and distantly by the Clp degradation machinery. This study not only highlights the diversity of regulatory networks for competence control in Gram-positive bacteria, but it also paves the way for the use of natural transformation as a tool to manipulate this biotechnologically important bacterium.
ABSTRACT Facing the surge of antibiotic resistance, the medical field has a critical need for alternatives to treat bacterial infections. Among these, the use of bacteriocins, ribosomally-synthesized antimicrobial peptides produced by bacteria, is considered to be a promising route. In the human commensal Streptococcus salivarius , the production of unmodified class II bacteriocins is directly controlled at the transcriptional level by the quorum-sensing ComRS system. Here, we used an integrated approach combining bioinformatics and synthetic biology to identify novel bacteriocins from salivarius streptococci active against human pathogens. We developed a bioinformatic pipeline that combines conservation of DNA motifs for genetic regulation and features of bacteriocin primary sequences to uncover cryptic class II bacteriocins. Notably, we discovered more than 50 novel bacteriocin candidates clustered into 21 groups from 100 genomes of S. salivarius . Strain-based analysis of bacteriocin cocktails revealed an important diversity restricted to seven distinct loci, probably resulting from bacteriocin intra- and inter- species exchanges. Using in vitro or in vivo production and synthetic biology tools, we showed that most of them are active against a panel of Gram-positive bacteria, including clinically- relevant pathogens. Overall, this work provides a new search-to-test generic pipeline for the discovery of novel bacteriocins in Gram-positive bacteria that could be used in cocktails for broad applications in the food and biomedical fields. IMPORTANCE To survive in highly challenging environments, streptococci have evolved a competence- predation coupling mechanism for genome plasticity. This developmental process is highly regulated at the transcriptional level, masking the predation killing effects in usual laboratory conditions. Here, we present a general strategy that combines bioinformatics and synthetic biology to unveil class II bacteriocins in streptococci. Its implementation to the beneficial species Streptococcus salivarius revealed around 40 class II salivaricin cocktails explained by the plasticity of seven independent loci. Notably, the salivaricin predatiome includes a subtle blend of fratricins, sobrinicins, and broad-spectrum bacteriocins with overlapping activities against a wide spectrum of low-GC Gram-positive bacteria, including notorious pathogens. Furthermore, most of those bacteriocins are predicted to be variants of a common α-hairpin structure, indicating that their mode of action evolved convergently. Finally, the discovery of ca. 50 novel bacteriocins offers perspectives for the rational assembly of potent cocktails active against pathogenic staphylococci, streptococci or enterococci.
Facing the antibiotic resistance crisis, bacteriocins are considered as a promising alternative to treat bacterial infections. In the human commensal Streptococcus salivarius, the production of unmodified bacteriocins (or salivaricins) is directly controlled at the transcriptional level by quorum-sensing. To discover hidden bacteriocins, we harnessed here the unique molecular signatures of salivaricins not yet used in available computational pipelines and performed genome mining followed by orthogonal reconstitution and expression. From 100 genomes of S. salivarius, we identified more than 50 bacteriocin candidates clustered into 21 groups. Strain-based analysis of bacteriocin combinations revealed significant diversity, reflecting the plasticity of seven independent loci. Activity tests showed both narrow and broad-spectrum bacteriocins with overlapping activities against a wide panel of Gram-positive bacteria, including notorious multidrug-resistant pathogens. Overall, this work provides a search-to-test generic pipeline for bacteriocin discovery with high impact for bacterial ecology and broad applications in the food and biomedical fields. Class II bacteriocins in the Streptococcus salivarius pan-genome were bioinformatically identified based on conserved sequence properties. These diverse “salivaricins” show antibacterial activity against Gram-positive pathogens.
Facing the surge of antibiotic resistance, the medical field has a critical need for alternatives to treat bacterial infections. Among these, the use of bacteriocins is considered to be a promising route. In the human commensal Streptococcus salivarius, the production of unmodified bacteriocins is directly controlled at the transcriptional level by the quorum-sensing ComRS system. Here, we used an integrated approach combining bioinformatics and synthetic biology to discover bacteriocins from salivarius streptococci active against human pathogens. We developed a bioinformatic pipeline that combines conservation of DNA regulatory motifs and features of bacteriocin primary sequences to uncover cryptic class II bacteriocins. Notably, we identified more than 50 bacteriocin candidates clustered into 21 groups from 100 genomes of S. salivarius. Strain-based analysis of bacteriocin cocktails revealed an important diversity restricted to seven distinct loci, probably resulting from bacteriocin intra- and inter-species exchanges. Using in vitro or in vivo production and synthetic biology tools, we showed that most of them are active against a panel of Gram-positive bacteria, including clinically-relevant pathogens. Overall, this work provides a search-to-test generic pipeline for the discovery of uncharacterized bacteriocins in Gram-positive bacteria that could be used in cocktails for broad applications in the food and biomedical fields.
Nowadays, the growing human population exacerbates the need for sustainable resources. Inspiration and achievements in nutrient production or human/animal health might emanate from microorganisms and their adaptive strategies. Here, we exemplify the benefits of lactic acid bacteria (LAB) for numerous biotechnological applications and showcase their natural transformability as a fast and robust method to hereditarily influence their phenotype/traits in fundamental and applied research contexts. We described the biogenesis of the transformation machinery and we analyzed the genome of hundreds of LAB strains exploitable for human needs to predict their transformation capabilities. Finally, we provide a stepwise rational path to stimulate and optimize natural transformation with standard and synthetic biology techniques. A comprehensive understanding of the molecular mechanisms driving natural transformation will facilitate and accelerate the improvement of bacteria with properties that serve broad societal interests.
Competence for DNA transformation is a major strategy for bacterial adaptation and survival. Yet, this successful tactic is energy-consuming, shifts dramatically the metabolism, and transitory impairs the regular cell-cycle. In streptococci, complex regulatory pathways control competence deactivation to narrow its development to a sharp window of time, a process known as competence shut-off. Although characterized in streptococci whose competence is activated by the ComCDE signaling pathway, it remains unclear for those controlled by the ComRS system. In this work, we investigate competence shut-off in the major human gut commensal Streptococcus salivarius. Using a deterministic mathematical model of the ComRS system, we predicted a negative player under the control of the central regulator ComX as involved in ComS/XIP pheromone degradation through a negative feedback loop. The individual inactivation of peptidase genes belonging to the ComX regulon allowed the identification of PepF as an essential oligoendopeptidase in S. salivarius. By combining conditional mutants, transcriptional analyses, and biochemical characterization of pheromone degradation, we validated the reciprocal role of PepF and XIP in ComRS shut-off. Notably, engineering cleavage site residues generated ultra-resistant peptides producing high and long-lasting competence activation. Altogether, this study reveals a proteolytic shut-off mechanism of competence in the salivarius group and suggests that this mechanism could be shared by other ComRS-containing streptococci.
In bacteria, phenotypic heterogeneity in an isogenic population compensates for the lack of genetic diversity and allows concomitant multiple survival strategies when choosing only one is too risky. This powerful tactic is exploited for competence development in streptococci where only a subset of the community triggers the pheromone signaling system ComR-ComS, resulting in a bimodal activation. However, the regulatory cascade and the underlying mechanisms of this puzzling behavior remained partially understood. Here, we show that CovRS, a well-described virulence regulatory system in pathogenic streptococci, directly controls the ComRS system to generate bimodality in the gut commensal Streptococcus salivarius and the closely related species Streptococcus thermophilus. Using single-cell analysis of fluorescent reporter strains together with regulatory mutants, we revealed that the intracellular concentration of ComR determines the proportion of competent cells in the population. We also showed that this bimodal activation requires a functional positive-feedback loop acting on ComS production, as well as its exportation and reinternalization via dedicated permeases. As the intracellular ComR concentration is critical in this process, we hypothesized that an environmental sensor could control its abundance. We systematically inactivated all two-component systems and identified CovRS as a direct repression system of comR expression. Notably, we showed that the system transduces its negative regulation through CovR binding to multiple sites in the comR promoter region. Since CovRS integrates environmental stimuli, we suggest that it is the missing piece of the puzzle that connects environmental conditions to (bimodal) competence activation in salivarius streptococci. IMPORTANCE Combining production of antibacterial compounds and uptake of DNA material released by dead cells, competence is one of the most efficient survival strategies in streptococci. Yet, this powerful tactic is energy consuming and reprograms the metabolism to such an extent that cell proliferation is transiently impaired. To circumvent this drawback, competence activation is restricted to a subpopulation, a process known as bimodality. In this work, we explored this phenomenon in salivarius streptococci and elucidated the molecular mechanisms governing cell fate. We also show that an environmental sensor controlling virulence in pathogenic streptococci is diverted to control competence in commensal streptococci. Together, those results showcase how bacteria can sense and transmit external stimuli to complex communication devices for fine-tuning collective behaviors.
Competence is one of the most efficient bacterial evolutionary and adaptative strategies by synchronizing production of antibacterial compounds and integration of DNA released by dead cells. In most streptococci, this tactic is orchestrated by the ComRS system, a pheromone communication device providing a short time window of activation in which only part of the population is responsive. Understanding how this developmental process integrates multiple inputs to fine-tune the adequate response is a long-standing question. However, essential genes involved in the regulation of ComRS have been challenging to study. In this work, we built a conditional mutant library using CRISPR interference and performed three complementary screens to investigate competence genetic regulation in the human commensal Streptococcus salivarius. We show that initiation of competence increases upon cell wall impairment, suggesting a connection between cell envelope stress and competence activation. Notably, we report a key role for StkP, a serine-threonine kinase known to regulate cell wall homeostasis. We show that StkP controls competence by a mechanism that reacts to peptidoglycan fragments. Together, our data suggest a key cell wall sensing mechanism coupling competence to cell envelope integrity. IMPORTANCE Survival of human commensal streptococci in the digestive tract requires efficient strategies which must be tightly and collectively controlled for responding to competitive pressure and drastic environmental changes. In this context, the autocrine signaling system ComRS controlling competence for natural transformation and predation in salivarius streptococci could be seen as a multi-input device integrating a variety of environmental stimuli. In this work, we revealed novel positive and negative competence modulators by using a genome-wide CRISPR interference strategy. Notably, we highlighted an unexpected connection between bacterial envelope integrity and competence activation that involves several cell wall sensors. Together, these results showcase how commensal streptococci can fine-tune the pheromone-based competence system by responding to multiple inputs affecting their physiological status in order to calibrate an appropriate collective behavior.
Competence for natural transformation extensively contributes to genome evolution and the rapid adaptability of bacteria dwelling in challenging environments. In most streptococci, this process is tightly controlled by the ComRS signaling system, which is activated through the direct interaction between the (R)RNPP-type ComR sensor and XIP pheromone (mature ComS). The overall mechanism of activation and the basis of pheromone selectivity have been previously reported in Gram-positive salivarius streptococci; however, detailed 3D-remodeling of ComR leading up to its activation remains only partially understood. Here, we identified using a semirational mutagenesis approach two residues in the pheromone XIP that bolster ComR sensor activation by interacting with two aromatic residues of its XIP-binding pocket. Random and targeted mutagenesis of ComR revealed that the interplay between these four residues remodels a network of aromatic-aromatic interactions involved in relaxing the sequestration of the DNA-binding domain. Based on these data, we propose a comprehensive model for ComR activation based on two major conformational changes of the XIP-binding domain. Notably, the stimulation of this newly identified trigger point by a single XIP substitution resulted in higher competence and enhanced transformability, suggesting that pheromone-sensor coevolution counter-selects for hyperactive systems in order to maintain a trade-off between competence and bacterial fitness. Overall, this study sheds new light on the ComRS activation mechanism and how it could be exploited for biotechnological and biomedical purposes.
Isomerization reactions are fundamental in biology. Lactate racemase, which isomerizes L- and D-lactate, is composed of the LarA protein and a nickel-containing cofactor, the nickel-pincer nucleotide (NPN). In this study, we show that LarA is part of a superfamily containing many different enzymes. We overexpressed and purified 13 lactate racemase homologs, incorporated the NPN cofactor, and assayed the isomerization of different substrates guided by gene context analysis. We discovered two malate racemases, one phenyllactate racemase, one α-hydroxyglutarate racemase, two D-gluconate 2-epimerases, and one short-chain aliphatic α-hydroxyacid racemase among the tested enzymes. We solved the structure of a malate racemase apoprotein and used it, along with the previously described structures of lactate racemase holoprotein and D-gluconate epimerase apoprotein, to identify key residues involved in substrate binding. This study demonstrates that the NPN cofactor is used by a diverse superfamily of α-hydroxyacid racemases and epimerases, widely expanding the scope of NPN-dependent enzymes.
Competence allows bacteria to internalize exogenous DNA fragments for the acquisition of new phenotypes such as antibiotic resistance or virulence traits. In most streptococci, competence is regulated by ComRS signaling, a system based on the mature ComS pheromone (XIP), which is internalized to activate the (R)RNPP-type ComR sensor by triggering dimerization and DNA binding. Cross-talk analyses demonstrated major differences of selectivity between ComRS systems and raised questions concerning the mechanism of pheromone-sensor recognition and coevolution. Here, we decipher the molecular determinants of selectivity of the closely related ComRS systems from Streptococcus thermophilus and Streptococcus vestibularis Despite high similarity, we show that the divergence in ComR-XIP interaction does not allow reciprocal activation. We perform the structural analysis of the ComRS system from S. vestibularis. Comparison with its ortholog from S. thermophilus reveals an activation mechanism based on a toggle switch involving the recruitment of a key loop by the XIP C terminus. Together with a broad mutational analysis, we identify essential residues directly involved in peptide binding. Notably, we generate a ComR mutant that displays a fully reversed selectivity toward the heterologous pheromone with only five point mutations, as well as other ComR variants featuring XIP bispecificity and/or neofunctionalization for hybrid XIP peptides. We also reveal that a single XIP mutation relaxes the strictness of ComR activation, suggesting fast adaptability of molecular communication phenotypes. Overall, this study is paving the way toward the rational design or directed evolution of artificial ComRS systems for a range of biotechnological and biomedical applications.
Competence for natural transformation is a widespread developmental process of streptococci. By allowing the uptake and recombination of exogenous naked DNA into the genome, natural transformation, as transposable elements, plays a key role in the plasticity of bacterial genomes. We previously analysed the insertion sites of IS1548, an insertion sequence present in Streptococcus agalactiae and S. pyogenes, and showed that some targeted loci are involved in competence induction. In this work, we investigated on a large scale if loci coding for early competence factors (ComX and the two pheromone-dependent signalling systems ComCDE and ComRS) of streptococci are especially targeted by transposable elements. The transposable elements inserted in regions surrounding these genes and housekeeping genes used for Multilocus Sequence Typing (MLST) were systematically searched for. We found numerous insertion events in the close vicinity of early competence genes, but only very few into the MLST loci. The incidence of transposable elements, mainly insertion sequences, is particularly high in the intergenic regions surrounding comX alleles in numerous species belonging to most streptococcal groups. The identification of scarce disruptive insertions inside early competence genes indicates that the maintenance of competence is essential for streptococci. The specific association of transposable elements with intergenic regions bordering the main regulatory genes of competence may impact on the induction of transformability and so, on the genome plasticity and adaptive evolution of streptococci. This widespread phenomenon brings new perspectives on our understanding of competence regulation and its role in the bacterial life cycle.
Constantly surrounded by kin or alien organisms in nature, eukaryotes and prokaryotes developed various communication systems to coordinate adaptive multi-entity behavior. In complex and overcrowded environments, they require to discriminate relevant signals in a myriad of pheromones to execute appropriate responses. In the human gut commensal Streptococcus salivarius, the cytoplasmic Rgg/RNPP regulator ComR couples competence to bacteriocin-mediated predation. Here, we describe a paralogous sensor duo, ScuR and SarF, which circumvents ComR in order to disconnect these two physiological processes. We highlighted the recurring role of Rgg/RNPP in the production of antimicrobials and designed a robust genetic screen to unveil potent/optimized peptide pheromones. Further mutational and biochemical analyses dissected the modifiable selectivity toward their pheromone and operating sequences at the subtle molecular level. Additionally, our results highlight how we might mobilize antimicrobial molecules while silencing competence in endogenous populations of human microflora and temper gut disorders provoked by bacterial pathogens.