Fertilization, the fusion of male and female gametes, is fundamental to sexual reproduction, yet the molecular mechanisms that mediate gamete recognition and enforce species specificity remain poorly understood, and only a handful of proteins are known to act as core fertilization factors across eukaryotes. Here, we identify PICKINESS-ASSOCIATED PROTEIN (PKN), a female gamete-specific transmembrane protein, as an essential determinant of fertilization in brown algae. CRISPR-Cas-mediated knockout of PKN abolishes successful male-female gamete interactions and prevents fertilization without affecting earlier mating behaviors, such as gamete attraction. Remarkably, PKN also enforces reproductive isolation by preventing interspecific fertilization, establishing it as a molecular gatekeeper of species specificity. Structural analyses reveal extracellular β-propeller and mucin-like domains enriched in predicted glycosylation sites and displaying rapid sequence evolution. Functional and comparative analyses suggest that PKN-dependent recognition mechanisms are conserved across diverse brown algal lineages. Because PKN originated within brown algae, its dual role in mediating both male-female gamete recognition and species-specific fertilization reveals a striking conceptual parallel with fertilization factors described in animals, suggesting that evolution repeatedly converges on lineage-specific gamete-expressed membrane proteins as key arbiters of reproductive recognition.
Abstract Surface layers (S-layers) are paracrystalline protein lattices that form the outermost layer of the cell envelope in most archaea, providing structural support, protecting against external insults, and co-ordinating interactions with their environment. Despite their widespread occurrence, the molecular and structural details of S-layer architecture in hyperthermophilic archaea remain largely unknown. Here, we report the structure and cellular architecture of the S-layer from the hyperthermophilic archaeon Pyrobaculum arsenaticum by combining in situ electron cryotomography with single-particle electron cryomicroscopy, AlphaFold modelling, and peptide-fingerprinting mass spectrometry. We show that the S-layer is formed by an uncharacterised 292-kDa S-layer protein (SLP) extending 37 nm from the cytoplasmic membrane, making it, to our knowledge, the largest SLP structurally characterised to date. This SLP has a remarkable multidomain architecture comprising 19 immunoglobulin-like domains, 14 canonical and five non-canonical, organised into a lattice-forming core, a stalk, and a unique crown domain that stabilise the S-layer. Comparative genomic analyses unearthed homologous colossal SLP candidates across Thermoproteota, indicating that this distinctive architecture is conserved across diverse archaeal lineages. Together, our findings provide a structural framework for understanding the cell-surface organisation in hyperthermophilic archaea and suggest that these colossal S-layers represent a specialised adaptation to life at high temperatures.
ARGONAUTE (AGO) proteins are a highly conserved family of RNA-binding proteins that play central roles in gene regulation and developmental processes across eukaryotes. Although AGO family members have been extensively studied in animals and plants, where they are typically encoded by multiple genes, their function in brown algae, a diverse and complex group of multicellular algae, remains largely unknown. Here, we show that the genomes of several brown algae encode only a single AGO protein, containing the conserved functional domains characteristic of the family. Using the model brown alga Ectocarpus and a combination of cell biology, genetic, and transcriptomic approaches, we demonstrate that AGO is essential for the transition from vegetative growth to sexual reproductive development and for germline establishment. Our results further suggest that AGO functions in concert with microRNAs to regulate target genes primarily at the posttranscriptional level, likely through translational repression. Ectocarpus thus represents a rare example of a complex multicellular organism that relies on a single AGO protein to regulate key developmental processes, pointing to a minimalistic model of RNA-based regulation in brown algae.
Ribosome hibernation helps cells survive stress by reversibly silencing translation and limiting degradation of ribosomal complexes. Although well characterized in bacteria and eukaryotes, archaeal hibernation remains poorly understood. Using cryoEM to analyze lysates from a model archaeon, we identified AHA (AMPKγ-HPF from Archaea), a broadly conserved ribosome-associated protein factor composed of two distinct modules. Structural analyses showed that AHA's C-terminal domain binds the small subunit, while its N-terminal region recognizes the large subunit, occluding the mRNA channel and the A- and P-tRNA binding sites and thereby enforcing translational silencing. Consistent with this proposed function, ΔAHA cells displayed reduced viability, depletion of ribosomal proteins during stationary phase, and impaired recovery upon return to growth. Phylogenetic analyses revealed that AHA's C-terminal domain shares homology with the bacterial Hibernation Promoting Factor (HPF), indicating an origin in the last universal common ancestor (LUCA) and thereby identifying HPF as a universal hibernation module. Strikingly, we observed two AMP molecues bound to AHA's N-terminal CBS-tetrad, which we found was structurally and evolutionary related to the eukaryotic energy sensor AMPKγ, thus linking energy sensing between archaea and eukaryotes. Together, these findings uncover a widespread archaeal ribosome hibernation factor and establish a direct evolutionary link between prokaryotic translational silencing and eukaryotic energy sensing.
Endogenous viral elements inserted in host genomes are often regarded as inert relics of past infections. Whether they can retain infective potential and contribute to active viral cycles has remained largely unresolved. Here we demonstrate that giant viral elements in the multicellular alga Ectocarpus can reactivate and drive productive viral infections. Using long-read sequencing and transcriptomics, we identify full-length, transcriptionally active phaeoviruses integrated within the host genome, and we use classical genetics and CRISPR-Cas to demonstrate that these elements are stably inherited through the germline, while their reactivation is precisely regulated by developmental and environmental cues including temperature. We resolve the genomic integration sites and propose a mechanism for phaeovirus integration and replication. Our work provides direct evidence and uncovers the mechanisms by which giant viral elements can reactivate, replicate and transmit both horizontally and vertically in a multicellular eukaryote, establishing a new model of latency, inheritance and evolutionary impact of giant dsDNA viruses.
Histones are important organizers of chromatin in eukaryotes and archaea. In eukaryotes, the core histones assemble with DNA to form the octameric nucleosome. In archaea, histones form hypernucleosomes that are not restricted to an octameric histone core but can extend to variable lengths. We previously identified face-to-face (FtF) histones as a widely distributed group of archaeal histones that assemble into toroidal tetramer structures, distinct from nucleosomal histones. Here, we characterize the FtF histone HTkC from Thermococcus kodakarensis , which also encodes the canonical histones HTkA and HTkB. We show that HTkC wraps DNA around its toroidal tetramer and forms highly compact nucleoprotein complexes, achieving a level of compaction approximately twice that of hypernucleosomes. Consistent with a major chromatin-organizing role, htkC is among the most highly expressed genes in T. kodakarensis and its deletion leads to impaired growth. Together, these findings establish FtF histones as important organizers of archaeal chromatin alongside classical histones. ### Competing Interest Statement The authors have declared no competing interest. Dutch Research Council, OCENW.GROOT.2019.012 Max Planck Society
The advent of clonal multicellularity is a critical evolutionary milestone, seen often in eukaryotes, rarely in bacteria, and only once in archaea. We show that uniaxial compression induces clonal multicellularity in haloarchaea, forming tissue-like structures. These archaeal tissues are mechanically and molecularly distinct from their unicellular lifestyle, mimicking several eukaryotic features. Archaeal tissues undergo a multinucleate stage followed by tubulin-independent cellularization, orchestrated by active membrane tension at a critical cell size. After cellularization, tissue junction elasticity becomes akin to that of animal tissues, giving rise to two cell types-peripheral (Per) and central scutoid (Scu) cells-with distinct actin and protein glycosylation polarity patterns. Our findings highlight the potential convergent evolution of a biophysical mechanism in the emergence of multicellular systems across domains of life.
Histones are fundamental chromatin-organizing proteins in eukaryotes and archaea, where they assemble into (hyper)nucleosomes that wrap DNA. Recent studies have expanded the known repertoire of histones, identifying new variants in both prokaryotes and large DNA viruses. In prokaryotes, histones exhibit a range of DNA-binding modes, including wrapping, bending, and bridging, rather than exclusively forming nucleosomes. Notably, large DNA viruses encode histone paralogs that structurally resemble eukaryotic core histones and assemble into nucleosome-like complexes. This review summarizes recent discoveries on canonical archaeal nucleosomal histones and newly identified histones in archaea, bacteria, and viruses, highlighting their structural and functional diversity in genome organization.
Endogenous viral elements (EVEs) inserted in host genomes are often regarded as inert relics of past infections. Whether they can retain infective potential and contribute to active viral cycles has remained unresolved. Here, we demonstrate that EVEs in the brown alga Ectocarpus can reactivate and drive productive viral infections. Using long-read sequencing and transcriptomics, we identify full-length, transcriptionally active giant viruses integrated within the host genome. Reactivation of these elements is specific to reproductive cells, transforming gametangia into virus-producing structures, and viral symptoms strictly correlate to the presence of active EVEs. Genetic analyses show that these elements are stably inherited, while their activation is precisely regulated by developmental and environmental cues. By resolving the genomic integration sites, we propose a mechanism for Phaeovirus integration and replication. This work provides the first direct evidence that giant EVEs can reactivate, replicate, and transmit both horizontally and vertically in a multicellular eukaryote, establishing a new model to explore latency, inheritance and the evolutionary impact of large dsDNA viruses. ### Competing Interest Statement The authors have declared no competing interest. European Research Council, https://ror.org/0472cxd90
Corynebacterium glutamicum is a diderm bacterium extensively used in the industrial-scale production of amino acids. Corynebacteria belong to the bacterial family Mycobacteriaceae, which is characterized by a highly unusual cell envelope with an outer membrane consisting of mycolic acids, called mycomembrane. The mycomembrane is further coated by a surface (S-)layer array in C. glutamicum, making this cell envelope highly distinctive. Despite the biotechnological significance of C. glutamicum and biomedical significance of mycomembrane-containing pathogens, ultrastructural and molecular details of its distinctive cell envelope remain poorly characterized. To address this, we investigated the cell envelope of C. glutamicum using electron cryotomography and cryomicroscopy of focused ion beam-milled single and dividing cells. Our cellular imaging allowed us to map the different components of the cell envelope onto the tomographic density. Our data reveal that C. glutamicum has a variable cell envelope, with the S-layer decorating the mycomembrane in a patchy manner. We further isolated and resolved the structure of the S-layer at 3.1 Å-resolution using single particle electron cryomicroscopy. Our structure shows that the S-layer of C. glutamicum is composed of a hexagonal array of the PS2 protein, which interacts directly with the mycomembrane via an anchoring segment containing a coiled-coil motif. Bioinformatic analyses revealed that the PS2 S-layer is sparsely yet exclusively present within the Corynebacterium genus and absent in other genera of the Mycobacteriaceae family, suggesting distinct evolutionary pathways in the development of their cell envelopes. Our structural and cellular data collectively provide a topography of the unusual C. glutamicum cell surface, features of which are shared by many pathogenic and microbiome-associated bacteria, as well as by several industrially significant bacterial species.
Cannulae are structurally rigid tubular protein filaments that accumulate on the extracellular surface of archaea within the family Pyrodictiaceae during cell growth. These obligate anaerobes propagate under hyperthermophilic conditions in which cannulae form a biomatrix that interconnects and sustains cells. The persistence of cannulae in this environment suggests that these filaments display significant thermostability, which has attracted technological interest in their development as synthetic protein-based biomaterials. Here, we report cryoEM structural analyses of ex vivo and in vitro assembled recombinant cannulae. We demonstrate that the interactions between protomers in native and recombinant cannulae is based on donor strand complementation (DSC), a form of non-covalent polymerization previously observed for bacterial chaperone-usher pili. Unexpectedly, calcium ion coordination at the subunit interfaces reinforces the network of donor strand interactions in the cannulae. This study provides insight into the mechanism of assembly of cannulae and the structural origin of their high stability and rigidity.
Histones are conserved DNA-packaging proteins found across all domains of life. In eukaryotes, canonical histones form octamers that wrap ~147 base pairs (bp) of DNA into nucleosomes, while in archaea they form dimers that polymerize into extended hypernucleosomes. Although bacteria were long thought to lack histones, homologs have now been identified in diverse lineages. We previously characterized the histone HBb from Bdellovibrio bacteriovorus, which binds and bends DNA as a dimer. Here, we describe HLp from Leptospira perolatii and show by crystallographic and biophysical analyses that, unlike HBb, it forms stable tetramers and binds DNA nonspecifically, wrapping ~60 bp of DNA around its core. Molecular dynamics simulations, DNA-binding assays, and heterologous expression in Escherichia coli, where HLp reorganizes the nucleoid, support a role in bacterial chromatin organization. These findings expand the repertoire of bacterial histone-DNA interactions and highlight the diversity of histone-based genome organization across the tree of life.
Many prokaryotic cells are encased in a para-crystalline sheath composed of lattice-forming proteins, collectively known as the surface layer (S-layer). S-layer proteins are among the most abundant proteins in archaea and bacteria. They exhibit remarkable sequence and structural diversity, while performing essential structural, protective and physiological functions. Recent advances in structural biology, cell biology and bioinformatics have reshaped our understanding of S-layer biogenesis and organization, while also revealing that S-layers are far more widespread among prokaryotes than previously envisaged. In addition, it has become increasingly clear that S-layers have crucial roles in microbial interactions and community dynamics. In this Review, we explore the architectural principles and self-assembly mechanisms that govern S-layers and examine their diverse functional roles in mediating interactions with the external environment of prokaryotes. We argue that deeper insights into these abundant surface structures are critical for understanding how they mediate multicellular interactions; a key step towards deciphering the organization of biofilms and microbiomes, which are fundamental modes of microbial life on Earth. Surface layers (S-layers) are ubiquitous protein assemblies that coat prokaryotic cells, with their functional roles increasingly coming into focus. In this Review, Isbilir and colleagues discuss recent insights into S-layer architecture, assembly and function, highlighting the importance of S-layers in microbial interactions and community organization.
Cyclic dimeric-GMP (c-di-GMP) is a ubiquitous bacterial second messenger that regulates a variety of cellular processes, including motility, biofilm formation, secretion, cell cycle progression, and development, and also contributes to the virulence of many bacterial pathogens. While the genes encoding c-di-GMP cyclases and hydrolases are readily identifiable in microbial genomes, known c-di-GMP receptor domains are quite few, with only PilZ and MshEN broadly distributed across bacterial phyla. Recently, a new c-di-GMP receptor, named CdgR or ComFB, has been identified in cyanobacteria and shown to regulate cell size and natural competence. We demonstrated that CdgR proteins exhibit sequence and structural similarity to the Bacillus subtilis late competence development protein ComFB, a conserved protein of unknown function associated with bacterial competence. This prompted us to hypothesize that ComFB and ComFB-like proteins could also serve as c-di-GMP receptors. Here, we comprehensively investigated the ComFB protein family and demonstrated that ComFB proteins are evolutionarily widespread among bacteria and function as a novel family of c-di-GMP receptors. We showed that ComFB proteins from Gram-positive bacteria (B. subtilis, Thermoanaerobacter brockii) and Gram-negative pathogens (Vibrio cholerae, Treponema denticola) bind c-di-GMP with high affinity. Several ComFB proteins also bind cyclic di-adenosine monophosphate (c-di-AMP), suggesting that ComFB represents a widely distributed bacterial protein family with dual specificity for c-di-GMP and c-di-AMP. Our physiological studies further showed that ComFB plays vital roles in controlling motility in a c-di-GMP-dependent manner in two phylogenetically distant bacteria, B. subtilis and the gram-negative Shewanella oneidensis, attesting to the biological relevance of ComFB as a c-di-GMP binding protein.
Nitrosopumilus maritimus is an ammonia-oxidizing archaeon that is crucial to the global nitrogen cycle1,2. A critical step for nitrogen oxidation is the entrapment of ammonium ions from a dilute marine environment at the cell surface and their subsequent channelling to the cell membrane of N. maritimus. Here we elucidate the structure of the molecular machinery responsible for this process, comprising the surface layer (S-layer), using electron cryotomography and subtomogram averaging from cells. We supplemented our in situ structure of the ammonium-binding S-layer array with a single-particle electron cryomicroscopy structure, revealing detailed features of this immunoglobulin-rich and glycan-decorated S-layer. Biochemical analyses showed strong ammonium binding by the cell surface, which was lost after S-layer disassembly. Sensitive bioinformatic analyses identified similar S-layers in many ammonia-oxidizing archaea, with conserved sequence and structural characteristics. Moreover, molecular simulations and structure determination of ammonium-enriched specimens enabled us to examine the cation-binding properties of the S-layer, revealing how it concentrates ammonium ions on its cell-facing side, effectively acting as a multichannel sieve on the cell membrane. This in situ structural study illuminates the biogeochemically essential process of ammonium binding and channelling, common to many marine microorganisms that are fundamental to the nitrogen cycle.
Histones are essential for genome compaction and transcription regulation in eukaryotes, where they assemble into octamers to form the nucleosome core. In contrast, archaeal histones assemble into dimers that form hypernucleosomes upon DNA binding. Although histone homologs have been identified in bacteria recently, their DNA-binding characteristics remain largely unexplored. Our study reveals that the bacterial histone HBb (Bd0055) is indispensable for the survival of Bdellovibrio bacteriovorus, suggesting critical roles in DNA organization and gene regulation. By determining crystal structures of free and DNA-bound HBb, we unveil its distinctive dimeric assembly, diverging from those of eukaryotic and archaeal histones, while also elucidating how it binds and bends DNA through interaction interfaces reminiscent of eukaryotic and archaeal histones. Building on this, by employing various biophysical and biochemical approaches, we further substantiated the ability of HBb to bind and compact DNA by bending in a sequence-independent manner. Finally, using DNA affinity purification and sequencing, we reveal that HBb binds along the entire genomic DNA of B. bacteriovorus without sequence specificity. These distinct DNA-binding properties of bacterial histones, showcasing remarkable similarities yet significant differences from their archaeal and eukaryotic counterparts, highlight the diverse roles histones play in DNA organization across all domains of life.
Surface layers (S-layers) are two-dimensional (2D) crystalline lattices that frequently coat prokaryotic cells, playing a crucial role in protection, maintaining cellular integrity, and mediating environmental interactions. However, the molecular landscape of these abundant proteins has remained underexplored due to a lack of structural data. By employing AlphaFold2multimer together with planar symmetry constraints in a workflow validated by electron cryomicroscopy structure determination, we have elucidated the lattice structures of over 150 S-layers from diverse archaea and bacteria. Our findings unveil a multifaceted evolutionary landscape for S-layer proteins, highlighting key differences in the evolution of bacterial and archaeal S-layers. Our study allows us to discover underlying patterns in S-layer structure, organisa-tion, and cell anchoring mechanisms across the prokaryotic tree of life, deepening our understanding of the intricately complex microbial cell surfaces, which appear to have evolved proteinaceous S-layers independently on multiple occasions. This work will open avenues for rational manipulation of prokaryotic cellular interactions in multicellular microbiomes, as well as for innovative 2D biomaterial design. ### Competing Interest Statement The authors have declared no competing interest.
Histones are important chromatin-organizing proteins in eukaryotes and archaea. They form superhelical structures around which DNA is wrapped. Recent studies have shown that some archaea and bacteria contain alternative histones that exhibit different DNA binding properties, in addition to highly divergent sequences. However, the vast majority of these histones are identified in metagenomes and thus are difficult to study in vivo. The recent revolutionary breakthroughs in computational protein structure prediction by AlphaFold2 and RoseTTAfold allow for unprecedented insights into the potential function and structure of previously uncharacterized proteins. Here, we categorize the prokaryotic histone space into 17 distinct groups based on AlphaFold2 predictions. We identify a superfamily of histones, termed α3 histones, which are common in archaea and present in several bacteria. Importantly, we establish the existence of a large family of histones throughout archaea and in some bacteriophages that, instead of wrapping DNA, bridge DNA, thereby diverging from conventional nucleosomal histones.
Cyclic dimeric GMP (c-di-GMP) is a widespread bacterial second messenger that controls a variety of cellular functions, including protein and polysaccharide secretion, motility, cell division, cell development, and biofilm formation, and contributes to the virulence of some important bacterial pathogens. While the genes for diguanylate cyclases and c-di-GMP hydrolases (active or mutated) can be easily identified in microbial genomes, the list of c-di-GMP receptor domains is quite limited, and only two of them, PliZ and MshEN, are found across multiple bacterial phyla. Recently, a new c-di-GMP receptor protein, named CdgR or ComFB, has been identified in cyanobacteria and shown to regulate their cell size and, more recently, natural competence. Sequence and structural analysis indicated that CdgR is part of a widespread ComFB protein family, named after the "late competence development protein ComFB" from Bacillus subtilis. This prompted the suggestion that ComFB and ComFB-like proteins could also be c-di-GMP receptors. Indeed, we revealed that ComFB proteins from Gram-positive B. subtilis and Thermoanaerobacter brockii were able to bind c-di-GMP with high-affinity. The ability to bind c-di-GMP was also demonstrated for the ComFB proteins from clinically relevant Gram-negative bacteria Vibrio cholerae and Treponema denticola. These observations indicate that the ComFB family serves as yet another widespread family of bacterial c-di-GMP receptors. Incidentally, some ComFB proteins were also capable of c-di-AMP binding, identifying them as a unique family of c-di-NMP receptor proteins. The overexpression of comFB in B. subtilis, combined with an elevated concentration of c-di-GMP, suppressed motility, attesting to the biological relevance of ComFB as a c-di-GMP binding protein.