Abstract Temperate Bacillus phages use arbitrium peptides to coordinate lysis–lysogeny decisions, but whether the mature communication peptide can be sensed directly by Bacillus subtilis and affect its physiology and behavior is unknown. Here we show that the φ3T arbitrium peptide SAIRGA elicits a sequence– and stereochemistry-dependent response in Bacillus subtilis that is strongly expressed in surface-grown colony biofilms but is not accompanied by comparable changes in planktonic growth or static-liquid pellicle morphology. The response persists in the absence of AimR, the canonical arbitrium receptor. Within colonies, SAIRGA alters spatial PtapA activity and increases heat-resistant spore formation without increasing total viable cell yield. Untargeted metabolomics reveals broad dose-dependent remodeling that tracks peptide activity, while program-level proteomics independently converges on late-sporulation and mature-spore-associated states. This study highlights how a phage-derived peptide may act as a signal, enabling the host to pivot toward a survival-focused developmental state.
As a single cell grows and multiplies, at what stage does it constitute a swarm? Here, we provide an answer for Bacillus subtilis. We place single planktonic cells onto agar and monitor the biological and physical phases as they transition into an active, swarming cohort. We identify four distinct, nonoverlapping stages enroute to swarming. Using different mutants, we pinpoint the roles of specific cellular processes in the buildup of collective motion. Our results provide a detailed description of the transition from planktonic to a swarming lifestyle-a hallmark of bacterial adaptability to changing environments.
Many temperate Bacillus phages use the arbitrium peptide-based signaling system to regulate lysis-lysogeny decisions. In this system, the secreted AimP peptide inhibits the AimR receptor to promote lysogeny. However, the downstream mechanism of AimR-mediated lysis control remains unclear for most systems. Here, we identify that ∼75% of arbitrium systems possess an extended five-gene module, including the aimX, aimC, and aimL genes. AimX encodes a small AimR-regulated antirepressor protein that binds the phage repressor AimC, preventing its oligomerization and DNA binding, thereby activating the pro-lytic aimL gene and additional lytic genes. This mechanism was validated across multiple phages and structurally characterized, revealing that AimX mimics the AimC oligomerization domain to prevent oligomerization and inhibit repressor function. These findings elucidate the predominant molecular strategy by which arbitrium systems control phage lysis-lysogeny transitions and highlight the central role of small proteins in phage decision-making.
Temperate phages integrate multiple information sources to regulate lysis-lysogeny transitions. SPbeta-like phages use arbitrium signaling and DNA damage to control repressor activity during lytic induction, but how the repressor functions and is inactivated by the SOS response remains unclear. Here, we show that SroF, the SPbeta-like phage repressor, binds DNA via a mechanism involving its integrase-like fold, enabling stable prophage repression. Upon DNA damage, the host SOS response triggers derepression of an antirepressor, Sar. Sar binds SroF by mimicking the DNA structure recognized by the repressor, thereby inactivating its function and inducing phage. This mechanism is conserved across SPbeta-like phages, which encode multiple, specific SroF-Sar pairs. Surprisingly, repressor inactivation alone is insufficient for efficient induction when arbitrium levels are high. Our results uncover the mechanism underlying a double layer of control that ensures phage induction occurs only under SOS conditions and in the absence of neighboring prophages.
Abstract Bacterial toxin-antitoxin (TA) systems are classically viewed as stress-activated toxic switches. Specifically, ribonucleolytic toxins are thought to indiscriminately cleave RNA to halt cellular growth. We recently showed that the MazF toxin of Bacillus subtilis targets an unusually strict 6bp RNA cleavage sequence, but the implications of this stringent specificity were unknown. Here, we demonstrate that the MazEF system functions as a non-lethal post-transcriptional regulator in B. subtilis . Using a specialized single cell fluorescent reporter and transcriptome profiling, we show that MazF is uniformly activated across the population upon entry into the stationary phase, where it cleaves a narrow mRNA regulon to reshape gene expression. Rather than inhibiting growth, MazF activation tunes down the Spo0A stress response by repressing the mRNA level of its kinases. Reduced stress leads to an adaptive shortening of the lag phase upon nutrient replenishment. Furthermore, MazEF’s structural architecture, cleavage specificity, and impact on growth recovery are highly conserved across Gram-positive bacteria. Altogether, our findings redefine a paradigmatic toxin as a precision global mRNA stress regulator that primes cells for rapid regrowth. Graphical abstract
Many temperate Bacillus phages utilize the arbitrium signaling system to control lysis/lysogeny decisions. While the function of the arbitrium signal AimP and its receptor AimR are well known, it is unclear how they control lysis in most arbitrium systems. Here, we show that a large majority of arbitrium systems are embedded in an extended module with three additional components; A small antirepressor protein (AimX), the phage repressor (AimC) and an adjacent cro-like protein (AimL). AimR-dependent activation of AimX is necessary for lysis both during infection and lytic induction. Molecular analysis suggests that AimX directly binds AimC and prevents its oligomerization and binding to its regulated aimL promoter. Our work therefore uncovers the main mechanism by which arbitrium systems regulate lysis and point to the central role of small proteins in phage decision making. ### Competing Interest Statement The authors have declared no competing interest. Israel Science Foundation to A.E, No. 2288/2021 Spanish Government (Ministerio de Ciencia e Innovación), PID2022-137201NB-I00 Valencian Government, CIPROM/2023/30 European Commission NextGenerationEU, EU 2020/2094 European Research Council Grant, 101118890
Temperate phages integrate multiple information sources to regulate lysis-lysogeny transitions. SPBeta-like phages use arbitrium signalling and DNA damage to control repressor activity during lytic induction, but how the repressor functions and is inactivated by the SOS response remains unclear. Here, we show that SroF, the SPBeta-like phage repressor, binds DNA via a novel mechanism involving its integrase-like fold, enabling stable prophage repression. Upon DNA damage, the host SOS response triggers derepression of a newly identified antirepressor, Sar. Sar binds SroF by mimicking the DNA structure recognised by the repressor, inactivating its function and inducing phage. This mechanism is conserved across SPβ-like phages, which encode multiple, specific SroF-Sar pairs. Surprisingly, repressor inactivation alone is insufficient for induction when arbitrium levels are high. Our results uncover the mechanism underlying the double layer of control that ensures phage induction occurs only under SOS conditions and in the absence of neighbouring prophages. ### Competing Interest Statement The authors have declared no competing interest. Spanish Government (Ministerio de Ciencia e Innovación), PID2022-137201NB-I00 Valencian Government, CIPROM/2023/30 European Commission NextGenerationEU fund, EU 2020/2094 Medical Research Council (UK), MR/X020223/1, MR/M003876/1, MR/V000772/1, MR/S00940X/1 Biotechnology and Biological Sciences Research Council (BBSRC, UK), BB/V002376/1, BB/V009583/1 Engineering and Physical Sciences Research Council (EPSRC, UK), EP/X026671/1 European Research Council, 101118890 (TalkingPhages)
The evolutionary arms race between bacteria and phages has given rise to elaborate anti-phage defence mechanisms. Although many of these systems have been characterized at the molecular level, the general principles and constraints at play are underexplored. It is broadly recognized that in addition to the protection they provide, these systems also bear a substantial cost. Here we identify an expression-dependent trade-off between the protection range of defence systems and the fitness burden they impose. We first focus on the SpbK system of Bacillus subtilis and then generalize to other systems across a range of bacteria. We show that increasing expression of defence systems enhances their protection range, and provide evidence that this is achieved by overwhelming phage strategies for circumventing bacterial defence. However, for most systems tested, increased expression also leads to self-inflicted toxicity. This trade-off between protection and autoimmunity may shape the evolution of regulatory strategies and favour the coexistence of multiple systems within a single genome.
Temperate Bacillus phages often utilize arbitrium communication to control lysis/lysogeny decisions, but the mechanisms by which this control is exerted remains largely unknown. Here we find that the arbitrium system of Bacillus subtilis phage ϕ3T modulates the host-encoded MazEF toxin-antitoxin system to this aim. Upon infection, the MazF ribonuclease is activated by three phage genes. At low arbitrium signal concentrations, MazF is inactivated by two phage-encoded MazE homologues: the arbitrium-controlled AimX and the later-expressed YosL proteins. At high signal, MazF remains active, promoting lysogeny without harming the bacterial host. MazF cleavage sites are enriched on transcripts of phage lytic genes but absent from the phage repressor in ϕ3T and other Spβ-like phages. Combined with low activation levels of MazF during infections, this pattern explains the phage-specific effect. Our results show how a bacterial toxin-antitoxin system has been co-opted by a phage to control lysis/lysogeny decisions without compromising host viability.
Bacterial interactions are vital for adapting to changing environments, with quorum sensing (QS) systems playing a central role in coordinating behaviors through small signaling molecules. The RRNPPA family is the prevalent QS systems in Bacillota and mediating communication through secreted oligopeptides, which are processed into active pheromones by extracellular proteases. Notably, in several cases the propeptides show the presence of multiple putative pheromones within their sequences, which has been proposed as a mechanism to diversify peptide-receptor specificity and potentially facilitate new functions. However, neither the processes governing the maturation of propeptides containing multiple pheromones, nor their functional significance has been evaluated. Here, using 2 Rap systems from bacteriophages infecting Bacillus subtilis that exhibit different types of pheromone duplication in their propeptides, we investigate the maturation process and the molecular and functional activities of the produced pheromones. Our results reveal that distinct maturation processes generate multiple mature pheromones, which bind to receptors with varying affinities but produce identical structural and biological responses. These findings add additional layers in the complexity of QS communication and regulation, opening new possibilities for microbial social behaviors, highlighting the intricate nature of bacterial interactions and adaptation.
Bacterial swarming is a complex phenomenon in which thousands of self-propelled rod-shaped cells move coherently on surfaces, providing an excellent example of active matter. However, bacterial swarming is different from most studied examples of active systems because single isolated cells do not move, while clusters do. The biophysical aspects underlying this behavior are unclear. In this work we explore the case of low local cell densities, where single cells become temporarily immobile. We show that immobility is related to local depletion of liquid. In addition, it is also associated with the state of the flagella. Specifically, the flagellar bundles at (temporarily) liquid depleted regions are completely spread-out. Our results suggest that dry models of self-propelled agents, which only consider steric alignments and neglect hydrodynamic effects, are oversimplified and are not sufficient to describe swarming bacteria.
Arbitrium-coding phages use peptides to communicate and coordinate the decision between lysis and lysogeny. However, the mechanism by which these phages establish lysogeny remains unknown. Here, focusing on the SPbeta phage family's model phages phi3T and SPβ, we report that a six-gene operon called the "SPbeta phages repressor operon" (sro) expresses not one but two master repressors, SroE and SroF, the latter of which folds like a classical phage integrase. To promote lysogeny, these repressors bind to multiple sites in the phage genome. SroD serves as an auxiliary repressor that, with SroEF, forms the repression module necessary for lysogeny establishment and maintenance. Additionally, the proteins SroABC within the operon are proposed to constitute the transducer module, connecting the arbitrium communication system to the activity of the repression module. Overall, this research sheds light on the intricate and specialized repression system employed by arbitrium SPβ-like phages in making lysis-lysogeny decisions.
Bacteria have evolved a wide array of mechanisms that allow them to eliminate phage infection. 'Abortive infection' (abi) systems are an expanding category of such mechanisms, defined as those which induce programmed cell death (or dormancy) upon infection, and thus halt phage propagation within a bacterial population. This definition entails two requirements - a phenotypic observation (cell death upon infection), and a mechanistic determination of its sources (system-induced death). The phenotypic and mechanistic aspects of abi are often implicitly assumed to be tightly linked, and studies regularly tend to establish one and deduce the other. However, recent evidence points to a complicated relationship between the mechanism of defense and the phenotype observed upon infection. We argue that rather than viewing the abi phenotype as an inherent quality of a set of defense systems, it should be more appropriately thought of as an attribute of interactions between specific phages and bacteria under given conditions. Consequently, we also point to potential pitfalls in the prevailing methods for ascertaining the abi phenotype. Overall, we propose an alternative framework for parsing interactions between attacking phages and defending bacteria.
Bacterial temperate viruses (phages) have to decide between a quiescent (lysogenic) and virulent (lytic) lifestyle in the face of a variety of phage defense systems. Multiple Bacilli phage families have been shown to use the arbitrium communication system, but the mechanism by which the arbitrium system exerts its function remains largely unknown. Here we study phage ɸ3T, in which arbitrium was originally identified, and find that arbitrium communication controls the phage life-cycle through interactions with a host-encoded defense system. Under lytic conditions, the arbitrium system expresses an anti-toxin, AimX, which blocks the RNA ribonuclease activity of MazF, part of the MazEF toxin-antitoxin system. When arbitrium signal concentration is high, AimX is not expressed and MazF remains active. We find that this activity is necessary for lysogenization. Finally, we show that MazEF acts as a defense system, and protects bacteria against a lytic ɸ3T mutant which lacks AimX and an additional later-expressed MazE-like antitoxin, YosL. Altogether, our results show how a bacterial defense system has been co-opted by phages to control their lysis/lysogeny decision-making.
The evolutionary arms race between bacteria and their phage viruses has given rise to elaborate anti-phage defense mechanisms. Major advances have been made in revealing the molecular details underlying diverse defense systems, but general principles and constraints are largely unkown. Defense systems are often tested against a diverse set of phages, revealing widely varying protection ranges. While these disparities are usually attributed to differences in mechanism, here we show that increasing expression of defense systems can greatly enhance their protection range. This holds true for disparate mechanisms, and is achieved by circumventing phage strategies for overcoming bacterial defense. However, increased defense system expression comes with a heavy cost of autoimmunity. Therefore, the expression level of defense systems controls a tradeoff between protection range on the one hand and autoimmunity on the other. We discuss how this tradeoff may drive the regulation of defense systems expression and the acquisition of multiple systems within the same genome.
Oligopeptide-permeases (Opps) are used by bacteria to import short peptides. In addition to their metabolic benefit, imported short peptides are used in many Gram-positive bacteria as signalling molecules of the RRNPP super-family of quorum-sensing systems, making Opps an integral part of cell–cell communication. In some Gram-positive bacteria there exist multiple Opps and the relative importance of those to RRNPP quorum sensing are not fully clear. Specifically, in Bacillus subtilis , the Gram-positive model species, there exist two homologous oligopeptide permeases named Opp and App. Previous work showed that the App system is mutated in lab strain 168 and its recovery partially complements an Opp mutation for several developmental processes. Yet, the nature of the impact of App on signalling and development in wild-type strains, where both permeases are active was not studied. Here we re-examine the impact of the two permease systems. We find that App has a minor contribution to biofilm formation, surfactin production and phage infection compared to the effect of Opp. This reduced effect is also reflected in its lower ability to import the signals of four different Rap-Phr RRNPP systems. Further analysis of the App system revealed that, unlike Opp, some App genes have undergone horizontal transfer, resulting in two distinct divergent alleles of this system in B. subtilis strains. We found that both alleles were substantially better adapted than the Opp system to import an exogenous RRNPP signal of the Bacillus cereus group PlcR-PapR system. In summary, we find that the App system has only a minor role in signalling but may still be crucial for the import of other peptides.
Bacteria organize in a variety of collective states, from swarming-rapid surface exploration, to biofilms-highly dense immobile communities attributed to stress resistance. It has been suggested that biofilm and swarming are oppositely controlled, making this transition particularly interesting for understanding the ability of bacterial colonies to adapt to challenging environments. Here, the swarm to biofilm transition is studied in Bacillus subtilis by analyzing the bacterial dynamics both on the individual and collective scales. We show that both biological and physical processes facilitate the transition. A few individual cells that initiate the biofilm program cause nucleation of large, approximately scale-free, stationary aggregates of trapped swarm cells. Around aggregates, cells continue swarming almost unobstructed, while inside, trapped cells are added to the biofilm. While our experimental findings rule out previously suggested purely physical effects as a trigger for biofilm formation, they show how physical processes, such as clustering and jamming, accelerate biofilm formation.
Horizontal gene transfer is a major force in bacterial evolution. Mobile genetic elements are responsible for much of horizontal gene transfer and also carry beneficial cargo genes. Uncovering strategies used by mobile genetic elements to benefit host cells is crucial for understanding their stability and spread in populations. We describe a benefit that ICEBs1, an integrative and conjugative element of Bacillus subtilis, provides to its host cells. Activation of ICEBs1 conferred a frequency-dependent selective advantage to host cells during two different developmental processes: biofilm formation and sporulation. These benefits were due to inhibition of biofilm-associated gene expression and delayed sporulation by ICEBs1-containing cells, enabling them to exploit their neighbors and grow more prior to development. A single ICEBs1 gene, devI (formerly ydcO), was both necessary and sufficient for inhibition of development. Manipulation of host developmental programs allows ICEBs1 to increase host fitness, thereby increasing propagation of the element.
Temperate bacterial viruses (phages) can transition between lysis-replicating and killing the host-and lysogeny, that is, existing as dormant prophages while keeping the host viable. Recent research showed that on invading a naïve cell, some phages communicate using a peptide signal, termed arbitrium, to control the decision of entering lysogeny. Whether communication can also serve to regulate exit from lysogeny (known as phage induction) is unclear. Here we show that arbitrium-coding prophages continue to communicate from the lysogenic state by secreting and sensing the arbitrium signal. Signalling represses DNA damage-dependent phage induction, enabling prophages to reduce the induction rate when surrounded by other lysogens. We show that in certain phages, DNA damage and communication converge to regulate the expression of the arbitrium-responsive gene aimX, while in others integration of DNA damage and communication occurs downstream of aimX expression. Additionally, signalling by prophages tilts the decision of nearby infecting phages towards lysogeny. Altogether, we find that phages use small-molecule communication throughout their entire life cycle to sense the abundance of lysogens in the population, thus avoiding lysis when they are likely to encounter established lysogens rather than permissive uninfected hosts.