Bacteriophages (phages) infecting Gram-positive bacteria must bind to host receptors across thick cell walls to initiate infection, yet the underlying structural mechanisms remain unclear. Here, we report cryo-electron microscopy structures of the Oenococcus oeni siphophage OE33PA, providing the first atomic resolution view of a phage infecting this bacterium important for the wine industry. While the overall virion architecture is conserved, the adhesion device displays distinctive features. Its receptor-binding proteins adopt multiple orientations, revealing an intrinsically dynamic assembly. In situ cryo-electron tomography captures distinct conformations upon host attachment, providing rare structural insight into interactions with Gram-positive hosts. Additionally, functional assays show that a highly mobile carbohydrate-binding module in the distal tail protein mediates host-specific binding. Furthermore, the tape measure protein, central to phage assembly and infectivity, adopts a hexameric organization, updating the prevailing trimeric model in siphophages. Together, these findings reveal a dynamic adhesion device in a phage infecting Gram-positive bacteria and highlight the structural and functional diversity of phages.
Lactococcus lactis and Lactococcus cremoris are cornerstone bacterial species employed in the production of fermented dairy products such as cheese. However, the non-sterile dairy processing environment regularly exposes these lactococci to phage infection. To counteract this phage threat, bacteria have evolved a wide range of defence mechanisms, including so-called abortive infection Abi(-like) systems, of which many (AbiA to AbiZ) were originally discovered in Lactococcus. Recent discoveries have expanded the list of Abi-like systems in Lactococcus species. In this review, we focus on systems historically, phenotypically, or mechanistically classified as Abi, critically examine and revisit their antiphage activity spectrum and interference with the phage lytic cycle, as well as mechanistic insights of lactococcal Abi-like systems as obtained through the study of phage escape mutants. Furthermore, we group various Abi-like systems based on structural superimposition and use predicted domain information to explore or expand on their mechanism of action. Finally, we show that despite many Abi-like systems being discovered due to their presence on plasmids, most anti-phage defence systems appear to be chromosomally encoded in sequenced Lactococcus strains. Our findings support the notion that co-evolution of Lactococcus species with their phages, possibly accelerated by the extensive application of these bacteria in dairy fermentations, has resulted in the acquisition of a diverse array of phage defence mechanisms, including Abi-like systems.
Exploring bacteriophage structural diversity is essential for understanding phage biology and for advancing phage-based therapies. Here, we determine the cryo-electron microscopy structure of Jabs, providing, to our knowledge, the first high-resolution view of a phage infecting the multidrug-resistant human pathogen Mycobacterium abscessus. Although Jabs displays the canonical organization of a siphophage, its virion combines several unusual architectural features. The T=9 icosahedral capsid is assembled from two distinct major capsid proteins, with one forming the hexons and the other the pentons, revealing an unprecedented capsid assembly strategy among icosahedral phages. An extensive network of ~1,700 disulfide bonds stabilize individual structural components and covalently links the capsid, connector, tail, and adhesion device into a continuous assembly. At the distal end of the tail, an elaborate and conformationally dynamic adhesion device comprises multiple candidate receptor-binding proteins organized into complex multidomain architectures, including carbohydrate-binding modules and β-sandwich hetero- and homotrimers resembling the receptor-binding proteins of phages infecting lactic acid bacteria. Together, these findings expand our understanding of phage structural diversity and provide a framework for investigating phage-host interactions and guiding the engineering of therapeutic phages.
Skunavirus is the most frequently encountered Lactococcus-infecting (bacterio)phage genus in dairy fermentations and may cause milk acidification failure or inefficiencies. During phage infection, DNA packaging into the phage prohead is a crucial step for the successful maturation of phage progeny. In the Skunavirus genus of lactococcal phages, a predicted HNH endonuclease-encoding gene adjacent to two putative DNA packaging genes is highly conserved. In the current study, we show that this gene, designated here as hrdP (HNH endonuclease related to DNA packaging), is essential for the production of infective Skunavirus sk1 virions. HrdP exhibits non-specific endonuclease activity, while deletion of hrdP from the sk1 genome results in loss of plaque-forming ability without hindering its DNA replication or protein production. Transmission electron microscopy analysis showed that the hrdP deletion mutant in sk1 is unable to produce intact virions. However, the proheads in this mutant displayed conformational changes associated with capsid expansion, suggesting that DNA packaging had initiated and progressed to a certain extent. This study provides valuable insights into the specific role of HrdP in Skunavirus members, highlighting it as a potential target for developing anti-phage strategies to enhance starter culture robustness.
Homing, a biological phenomenon involving enzyme-mediated genetic exchange by homologous recombination, has been highlighted as a potential driver of phage genome evolution. In the current study, 18 lactococcal phages, belonging to the Skunavirus genus, were isolated from Dutch dairy facilities, and their genomes were sequenced. Together with 71 phages from previous studies involving Dutch dairy fermentation facilities, a total of 89 Skunavirus genomes were analysed, revealing a strong correlation between phage diversity and the applied starter culture. These analysed Skunavirus genomes were predicted to encode a total of 212 intact HNH endonucleases (HNHEs), which were classified into families based on structural homology and their insertion locations on the genome. Members of the I-HmuI-like HNHE family were observed to be present among most analysed genomes, though they varied in individual Skunavirus phages in both their number and genomic locations. Phylogenetic analysis revealed that these I-HmuI-like HNHEs cluster together according to their insertion locations and the corresponding starter cultures. Furthermore, the so-called genetic marker exclusion activity of particular expressed HNHEs against Skunavirus sk1 infection was observed, indicative of their role in phage genome evolution and associated adaptation processes.
Oenococcus oeni is the predominant lactic acid bacteria species in wine, where it performs the malolactic fermentation, which helps to secure and preserve wine quality. Here, we describe the morphological, biological, and genomic characterization of siphophage Krappator X27, a strictly lytic phage that was previously isolated from Merlot wines. Several aspects of the life cycle of the phage were investigated using the sensitive strain IOEBS277 under optimal growth conditions. X27 has a large burst size (149 Plaque Forming unit [PFU] per infected cell) and targets industrially relevant strains of O. oeni used for production of wines. X27 also shows lytic activity against its host in red and white grape juice media. The phage genome consists of 41,633 nucleotides. Structure prediction of the viral adhesion devices reveals elongated multi-domain machinery containing carbohydrate-binding modules likely involved in host recognition and binding. Genome-based phylogeny revealed that X27 has less than 30% intergenomic similarities with its most similar phages and represents a new species in a yet unassigned genus, for which we propose the name « Krappavirus ». Aiming to expand the available collection of genomes in this genus, we sequenced two independently isolated phage homologs from Merlot wines. Modular protein evolution may play a role in the diversification of this specific phage lineage, and naturally occurring domain combinations were found in three crucial proteins of known function: the small terminase subunit, the endolysin, and the replisome organizer.IMPORTANCEOenococcus oeni is commonly used for wine and cider production. Characterizing strictly lytic oenophages, understanding their genetic relationships, and studying their interactions with various hosts are the necessary steps for preventing and controlling phage attacks that occur along the fermentation process.
The genomes of 43 distinct lactococcal strains were reconstructed by a combination of long- and short-read sequencing, resolving the plasmid complement and methylome of these strains. The genomes comprised 43 chromosomes of approximately 2.5 Mb each and 269 plasmids ranging from 2 to 211 kb (at an average occurrence of 6 per strain). A total of 953 antiphage genes representing 538 phage defence systems were identified in the 43 strains and were catalogued and cross-correlated with co-occurrent mobile elements, which indicated that almost 60% of these systems are predicted to be mobile. Detailed analysis established that restriction-modification (R-M) systems form a significant portion of this mobile phage defensome. As such, all detected Type I, II, and III-associated methylated motifs (46 of which were unique to this study) were matched to their corresponding methylating enzymes by homology detection or molecular cloning. The cumulative antiphage activity of selected systems and the ability of truncated R-M genes to contribute to methylation were demonstrated. This study reveals, for the first time, the dairy lactococcal plasmidome to be a rich reservoir of orphan HsdS-encoding genes, in a comprehensive survey of (mobile) phage defence systems in lactic acid bacteria.
Bacteriophage research has experienced a renaissance in recent years, owing to their therapeutic potential and versatility in biotechnology, particularly in combating antibiotic resistant-bacteria along the farm-to-fork continuum. However, certain pathogens remain underexplored as targets for phage therapy, including the zoonotic pathogen Streptococcus suis which causes infections in pigs and humans. Despite global efforts, the genome of only one infective S. suis phage has been described. Here, we report the isolation of two phages that infect S. suis: Bonnie and Clyde. The phages infect 58% of 100 S. suis strains tested, including representatives of seven different serotypes and thirteen known sequence types from diverse geographical origins. Clyde suppressed bacterial growth in vitro within two multi-strain mixes designed to simulate a polyclonal S. suis infection. Both phages demonstrated stability across various temperatures and pH levels, highlighting their potential to withstand storage conditions and maintain viability in delivery formulations. Genome comparisons revealed that neither phage shares significant nucleotide identity with any cultivated phages in the NCBI database and thereby represent novel species belonging to two distinct novel genera. This study is the first to investigate the adhesion devices of S. suis infecting phages. Structure prediction and analysis of adhesion devices with AlphaFold2 revealed two distinct lineages of S. suis phages: Streptococcus thermophilus-like (Bonnie) and S. suis-like (Clyde). The structural similarities between the adhesion devices of Bonnie and S. thermophilus phages, despite the lack of nucleotide similarity and differing ecological niches, suggest a common ancestor or convergent evolution, highlighting evolutionary links between pathogenic and non-pathogenic streptococcal species. These findings provide valuable insights into the genetic and phenotypic characteristics of phages that can infect S. suis, providing new data for the therapeutic application of phages in a One Health context.
Mesophilic starter cultures rely on the activity of lactic acid bacteria such as Lactococcus lactis and Lactococcus cremoris to acidify milk in dairy fermentations. Bacteriophage infection of starter bacteria remains one of the most significant threats to a successful fermentation, as they may cause costly disruptions and loss of production. The exclusively virulent skunaviruses represent one of the most problematic lactococcal phage genera in dairy fermentation facilities and have consequently been studied extensively in recent decades. In the present study, the diversity of lactococcal phages in whey samples originating from fermentations employing undefined mesophilic starter cultures was assessed by culture-dependent phage screening, targeted isolation based on predicted receptor binding protein specificity, and phage RBP-activated cell sorting (PhRACS). Through these approaches, 26 distinct Skunavirus isolates were characterized and their genomes were sequenced. A comparative genomic analysis and structure predictions of the proteins encoded by these 26 phages identified genes that encode tail-associated proteins with novel carbohydrate-binding domains. Furthermore, host range analysis revealed a clear correlation between specific Skunavirus receptor binding protein phylogroups and the cell wall polysaccharide-associated genotype of the corresponding host strain. Finally, phageome-derived Skunavirus contigs were analysed to determine the diversity of phages present in the dairy fermentation facilities.
Dairy fermentations using mesophilic starter cultures rely on the activity of specific lactic acid bacteria (LAB) such as Lactococcus lactis and Lactococcus cremoris for the acidification of milk. This biotechnological process can be affected by bacteriophage infection of LAB starter strains, which may result in delayed or even failed fermentations. Most studied lactococcal phages commence infection with the binding of a tail-associated receptor-binding protein (RBP) to a host cell surface-exposed cell wall polysaccharide (CWPS). In the present study, phage prevalence and diversity in whey samples originating from fermentations performed in various European countries employing undefined mesophilic starter cultures were investigated using phageome analysis. The range of Skunavirus RBP genotypes present in the phageomes and associated RBP-CWPS binding abilities were evaluated, resulting in the refinement and expansion of the Skunavirus RBP grouping system and the identification of several heretofore unknown Skunavirus RBP (sub)groups. These findings substantially expand our knowledge on lactococcal Skunavirus RBP diversity and their binding specificity towards CWPS receptor structures, thereby improving the predictability of fermentation outcomes and robustness of starter culture rotations and blends.
Cell movement on surfaces relies on focal adhesion complexes (FAs), which connect cytoskeletal motors to the extracellular matrix to produce traction forces. The soil bacterium Myxococcus xanthus uses a bacterial FA (bFA), for surface movement and predation. The bFA system, known as Agl-Glt, is a complex network of at least 17 proteins spanning the cell envelope. Despite understanding the system dynamics, its molecular structure and protein interactions remain unclear. In this study, we utilize AlphaFold to generate models based on the known interactions and dynamics of gliding motility proteins. This approach provides us with a comprehensive view of the interactions across the entire complex. Our structural insights show the connection of essential functional modules throughout the cell envelope and offer an inspiring view of the force transduction mechanism from the inner molecular motor to the exterior of the cell. The structural model of a bacterial focal adhesion complex reveals the connection of essential functional modules throughout the cell envelope and offer an inspiring view of the force transduction mechanism from the inner molecular motor to the exterior of the cell, resulting in cell gliding.
The type IX secretion system (T9SS) is a protein secretion machinery unique to the Bacteroidetes-Chlorobi-Fibrobacteres superphylum, which plays crucial roles in bacterial pathogenesis and gliding motility. It is composed of >15 proteins, including the proton-motive force-dependent PorLM motor, the PorKN ring anchored to the outer membrane, and the Sov translocon. Here, we present the cryo-electron microscopy (EM) structure of the PorKN ring complex from Porphyromonas gingivalis at 3.2 Å resolution. Our structural analysis reveals that PorK contains a repurposed formylglycine-generating enzyme-like fold, which serves as a structural hub for complex assembly rather than enzymatic activity. The complex exhibits a 33-fold symmetry with PorK and PorN assembling two tightly packed and wedged subrings. The structure reveals previously uncharacterized N- and C-terminal helices in PorN that are crucial for PorK binding and complex stability. By combining our high-resolution structure with in situ cryo-electron tomography data, we propose a mechanism whereby PorKN undergoes conformational changes during substrate transport, transitioning between 50° and 90° states relative to the membrane plane. Finally, structural predictions coupled to site-directed disulfide cross-linking identified contacts between PorM and the PorKN ring. Collectively, these findings provide crucial insights into the molecular architecture and dynamic behavior of the T9SS machinery, advancing our understanding of bacterial protein secretion mechanisms.IMPORTANCEThe bacterial type IX secretion system (T9SS) is essential for processes such as gliding motility and secretion of virulence factors. In Porphyromonas gingivalis, a major periodontal pathogen, the T9SS transports over 30 virulence-associated proteins, making it central to disease development. The T9SS core is composed of PorLM motors that are thought to energize the PorKN outer membrane-associated ring. However, the molecular architecture of the PorKN ring has remained unresolved. Here, we present its atomic-resolution cryo-EM structure, revealing a formylglycine-generating enzyme-like fold in PorK that mediates PorK-PorN interactions through specific insertion motifs. Our results show that the ring exhibits intrinsic structural plasticity, including dynamic flexibility and variable stoichiometry. AlphaFold models and disulfide cross-linking experiments further provide information on how PorLM motors are connected to the PorKN ring. These insights redefine our understanding of the T9SS mechanism of action and offer a structural framework for the development of targeted antimicrobial strategies.
In recent years, the number of newly discovered systems that bacteria use to combat bacteriophages is increasing at an impressive rate. To obtain mechanistic insights into several antiphage systems identified in previous studies, we isolated 66 phage escape mutants which had become insensitive to 13 distinct, plasmid-encoded lactococcal phage resistance systems (i.e. Rhea, Kamadhenu, Rugutis, Audmula, PARIS, type II CBASS, Septu, AbiA, AbiB, AbiD/F, AbiG, AbiJ, AbiP). Genome analysis of these phage escape mutants identified a total of 15 mutated genes. Six of the encoded proteins appear to activate specific antiphage systems. Furthermore, AbiA escape mutants were found to be insensitive to AbiJ, while distinct antiphage systems (AbiG and AbiP) were observed to be activated by a major phage tail protein, indicating mechanistic commonalities. PARIS homologues encoded by members of different bacterial genera appear to share similar sensing mechanisms, whereas our data indicate mechanistic differences between Septu homologues from different genera. Based on our escape mutant sequence analysis, previously predicted domains, and experimental data using the purified endolysin of phage c2, we propose that Audmula modifies the cell wall of the host bacterium, delaying cell lysis and release of progeny phages, protecting the host cell by a heretofore unknown mode of action. The obtained advances in our understanding of lactococcal antiphage mechanisms provide fundamental insights into phage–host interactions, which undoubtedly benefits the dairy industry but may also be useful for biotechnological or biomedical applications.
Bacteriophages, or phages, are sophisticated nanomachines that efficiently infect bacteria. Their infection of lactic acid bacteria (LAB) used in fermentation can lead to significant industrial losses. Among phages that infect monoderm bacteria, those with siphovirion morphology characterized by a long, non-contractile tail are predominant. The initial stage of phage infection involves precise host recognition and binding. To achieve this, phages feature host adhesion devices (HADs) located at the distal end of their tails, which have evolved to recognize specific proteinaceous or saccharidic receptors on the host cell wall. Ceduovirus represents a group of unique lytic siphophages that specifically infect the LAB Lactococcus lactis by targeting proteinaceous receptors. Despite having compact genomes, most of their structural genes are poorly annotated and the architecture and function of their HADs remain unknown. Here we used AlphaFold3 to explore the Ceduovirus HADs and their interaction with the host. We show that Ceduovirus HADs exhibit unprecedented features among bacteriophages infecting Gram+, share structural similarities with bacterial secretion system VI, and combine both saccharide and protein-binding modules. Moreover, we could annotate the majority of Ceduovirus genes encoding structural proteins by leveraging their predicted structures, highlighting AlphaFold’s significant contribution to phage genome annotation.
Plasmids pNP40 and pUC11B encode two prevalent yet divergent conjugation systems, which have been characterized in detail recently. Here, we report the elucidation of the putative adhesins of the pNP40 and pUC11B conjugation systems, encoded by traAd and trsAd, respectively. Despite their significant sequence divergence, TraAd and TrsAd represent the most conserved component between the pNP40- and the pUC11B-encoded conjugation systems and share similar peptidoglycan-hydrolase domains. Protein structure prediction using AlphaFold2 highlighted the structural similarities between their predicted domains, as well as the potential homo-dimeric state of both proteins. Expression of the putative surface adhesins resulted in a cell clumping phenotype not only among cells expressing these surface adhesins but also between adhesin-expressing and non-producing cells. Furthermore, mutant derivatives of plasmids pNP40 or pUC11B carrying a mutation in traAd or trsAd, respectively, were shown to act as efficient donors provided the corresponding recipient expresses either traAd or trsAd, thus demonstrating in trans reciprocal complementarity of these proteins in conjugation systems.
Bacteria possess (bacterio)phage defence systems to ensure their survival. The thermophilic lactic acid bacterium, Streptococcus thermophilus, which is used in dairy fermentations, harbours multiple CRISPR-Cas and restriction and modification (R/M) systems to protect itself against phage attack, with limited reports on other types of phage-resistance. Here, we describe the systematic identification and functional analysis of the phage resistome of S. thermophilus using a collection of 27 strains as representatives of the species. In addition to CRISPR-Cas and R/M systems, we uncover nine distinct phage-resistance systems including homologues of Kiwa, Gabija, Dodola, defence-associated sirtuins and classical lactococcal/streptococcal abortive infection systems. The genes encoding several of these newly identified S. thermophilus antiphage systems are located in proximity to the genetic determinants of CRISPR-Cas systems thus constituting apparent Phage Defence Islands. Other phage-resistance systems whose encoding genes are not co-located with genes specifying CRISPR-Cas systems may represent anchors to identify additional Defence Islands harbouring, as yet, uncharacterised phage defence systems. We estimate that up to 2.5% of the genetic material of the analysed strains is dedicated to phage defence, highlighting that phage-host antagonism plays an important role in driving the evolution and shaping the composition of dairy streptococcal genomes.
Until the late 2000s, lactococci substantially contributed to the discovery of various plasmid-borne phage defence systems, rendering these bacteria an excellent antiphage discovery resource. Recently, there has been a resurgence of interest in identifying novel antiphage systems in lactic acid bacteria owing to recent reports of so-called ‘defence islands’ in diverse bacterial genera. Here, 321 plasmid sequences from 53 lactococcal strains were scrutinized for the presence of antiphage systems. Systematic evaluation of 198 candidates facilitated the discovery of seven not previously described antiphage systems, as well as five systems, of which homologues had been described in other bacteria. All described systems confer resistance against the most prevalent lactococcal phages, and act post phage DNA injection, while all except one behave like abortive infection systems. Structure and domain predictions provided insights into their mechanism of action and allow grouping of several genetically distinct systems. Although rare within our plasmid collection, homologues of the seven novel systems appear to be widespread among bacteria. This study highlights plasmids as a rich repository of as yet undiscovered antiphage systems.
Temperate P335 phage TP901-1 represents one of the best-characterized Gram-positive phages regarding its structure and host interactions. Following its reversible adsorption to the polysaccharidic side-chain of the cell wall polysaccharide of its host Lactococcus cremoris 3107, TP901-1 requires a glucosylated cell envelope moiety to trigger its genome delivery into the host cytoplasm. Here, we demonstrate that three distinct single amino acid substitutions in the Tal protein of TP901-1 baseplate are sufficient to overcome the TP901-1 resistance of three L. cremoris 3107 derivatives, whose resistance is due to impaired DNA release of the phage. All of these Tal alterations are located in the N-terminally located gp27-like domain of the protein, conserved in many tailed phages. AlphaFold2 predictions of the Tal mutant proteins suggest that these mutations favor conformational changes necessary to reposition the Tal fiber and thus facilitate release of the tape measure protein from the tail tube and subsequent DNA ejection in the absence of the trigger otherwise required for phage genome release. IMPORTANCE:Understanding the molecular mechanisms involved in phage-host interactions is essential to develop phage-based applications in the food and probiotic industries, yet also to reduce the risk of phage infections in fermentations. Lactococcus, extensively used in dairy fermentations, has been widely employed to unravel such interactions. Phage infection commences with the recognition of a suitable host followed by the release of its DNA into the bacterial cytoplasm. Details on this latter, irreversible step are still very scarce in lactococci and other Gram-positive bacteria. We demonstrate that a component of the baseplate of the lactococcal phage TP901-1, the tail-associated lysin (Tal), is involved in the DNA delivery into its host, L. cremoris 3107. Specifically, we have found that three amino acid changes in Tal appear to facilitate structural rearrangements in the baseplate necessary for the DNA release process, even in the absence of an otherwise required host trigger.