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A novel jakobid genus from the soil of an indoor plant.

Jakobids are a group of free-living heterotrophic flagellates that hold a key phylogenetic position for understanding early eukaryote evolution and are particularly notable for their gene-rich, bacteria-like mitochondrial genomes. Although the number of formally described species is small, jakobids are frequently detected in anoxic marine habitats. However, their edaphic diversity remains unexplored, with the few documented isolations from soil over the past two decades, each yielding a new genus. Here, we describe a novel jakobid, Celatomonas quasimodo gen. et sp. nov., isolated from commercial potting soil used for cultivating indoor plants. The organism was characterised by light and scanning electron microscopy, and its phylogenetic position was inferred using 18S rRNA gene phylogenetic analysis. While exhibiting typical jakobid features, the cells adopt a highly unusual curved-triangular morphology during division, which has not been reported for any other jakobid. Phylogenetic analysis placed C. quasimodo as the firmly supported sister lineage of Moramonas marocensis within the family Moramonadidae (suborder Histionina). Despite this close affinity, the two taxa present a level of 18S rRNA gene divergence comparable to that between already recognised genera of Moramonadidae. Together, these data support the recognition of Celatomonas quasimodo as a new genus and species within Moramonadidae. Furthermore, screening of soil environmental DNA datasets revealed the presence of multiple novel jakobid lineages, alongside a novel jakobid clade (JENV-1) of uncertain phylogenetic position from equatorial environments. This newly described jakobid genus provides a valuable model for future comparative studies of cellular ultrastructure and the evolution of jakobid mitochondrial genomes. Combined with the environmental DNA screening results, our findings underscore the importance of soil habitats as reservoirs of unexplored eukaryotic diversity and provide new insights into jakobid systematics.

Phylogeny

Infection cycles of viruses of the phylum Nucleocytoviricota.

The phylum Nucleocytoviricota, formerly known as nucleocytoplasmic large DNA viruses (NCLDVs), comprises evolutionarily related viruses with remarkably diverse genome sizes, coding capacities and virion morphologies. These viruses infect hosts across the eukaryotic tree of life, from protists to humans, and are believed to have emerged during the early stages of eukaryotic evolution. How the basic aspects of virus-host interaction have evolved in different lineages and whether they share a conserved infection cycle remain unclear. In this Review, we synthesize the information on the infection cycles of model representatives from the major orders within the phylum, revealing both shared traits and lineage-specific innovations. We compare the information available for the extensively studied poxviruses, asfiviruses, iridoviruses and chloroviruses with insights from the rapidly expanding literature on the mimiviruses, pandoraviruses, marseilleviruses and pithoviruses. We provide an overview of the molecular details underlying the key stages of Nucleocytoviricota infection cycles: entry via membrane fusion, formation of viral factories organized via phase separation, genome replication, virion morphogenesis through a crescent intermediate, and egress. We highlight outstanding questions in the field, unify concepts across traditionally separated research areas, and provide a conceptual framework to guide future cell biology studies on large double-stranded DNA viruses.

DNA Viruses

Foraging mechanisms in excavate flagellates shed light on the functional ecology of early eukaryotes.

The phagotrophic flagellates described as "typical excavates" have been hypothesized to be morphologically similar to the Last Eukaryotic Common Ancestor and understanding the functional ecology of excavates may therefore help shed light on the ecology of these early eukaryotes. Typical excavates are characterized by a posterior flagellum equipped with a vane that beats in a ventral groove. Here, we combined flow visualization and observations of prey capture in representatives of the three clades of excavates with computational fluid dynamic modeling, to understand the functional significance of this cell architecture. We record substantial differences amongst species in the orientation of the vane and the beat plane of the posterior flagellum. Clearance rate magnitudes estimated from flow visualization and modeling are both like that of other similarly sized flagellates. The interaction between a vaned flagellum beating in a confinement is modeled to produce a very efficient feeding current at low energy costs, irrespective of the beat plane and vane orientation and of all other morphological variations. Given this predicted uniformity of function, we suggest that the foraging systems of typical excavates studied here may be good proxies to understand those potentially used by our distant ancestors more than 1 billion years ago.

Flagella

Histones of Neurospora crassa.

Neurospora crassa chromatin isolated by a rapid method minimizing proteolytic degradation contains approximately one weight of acid-extractable basic protein per weight of DNA. This basic protein consists of five major polypeptide species which are similar in size to the histone proteins of higher eukaryotes and are present in approximately the same molar ratios. These five polypeptides have been purified by polyacrylamide gel electrophoresis in the presence of sodium dodecyl sulfate. Their electrophoretic mobilities in polyacrylamide gels and their amino acid compositions indicate that they are histones homologous, although not identical, to the H1, H2A, H2B, H3, and H4 histones of mammals. The first 3 residues in the amino acid sequence of Neurospora H3 histone are identical to the first 3 residues in calf and pea H3; Neurospora H1, H2A, and H4 histones have blocked NH2 termini, like their mammalian counterparts. The finding of recognizable H1, H2A, H2B, H3, and H4 histones in Neurospora extends the range of eukaryotes now shown to contain a full complement of these strongly conserved chromosomal proteins, and supports the view that histones became involved in chromosome structure at a very early point in the evolution of eukaryotes.

Amino Acids

A choanoflagellate cGLR-STING pathway reveals evolutionary links between bacterial and animal immunity.

Animal innate immunity evolved from ancient pathways in bacterial anti-phage defense. How bacterial immune components were first acquired and adapted within eukaryotic cells remains poorly understood. Here we identify a complete cGLR-STING signaling axis in choanoflagellates, the closest living relatives of animals, that exhibits a mosaic of features from both bacterial and animal immunity. Comparative genomics reveals choanoflagellate cGLR and STING genes organized in operon-like arrangements reminiscent of bacterial defense loci. Reconstitution of choanoflagellate cGLR-STING signaling in vitro demonstrates that activation occurs through the conserved nucleotide immune signal 2'3'-cGAMP. Structural analysis of a choanoflagellate STING-2'3'-cGAMP complex explains how retention of bacterial-like features in early eukaryotic proteins shapes ligand specificity and receptor activation. We analyze cGLR and STING evolution in unicellular eukaryotes and identify further STING homologs in choanoflagellates and fungi that support additional independent acquisition events. Our results reveal molecular fossils that bridge bacterial and animal immunity and illuminate early eukaryotic immune system evolution.

Journal Article

Phylogenomic Analyses Reveal that Panguiarchaeum Is a Clade of Genome-Reduced Asgard Archaea Within the Njordarchaeia.

The Asgard archaea are a diverse archaeal phylum important for our understanding of cellular evolution because they include the lineage that gave rise to eukaryotes. Recent phylogenomic work has focused on characterizing the diversity of Asgard archaea in an effort to identify the closest extant relatives of eukaryotes. However, resolving archaeal phylogeny is challenging, and the positions of 2 recently described lineages-Njordarchaeales and Panguiarchaeales-are uncertain, in ways that directly bear on hypotheses of early evolution. In initial phylogenetic analyses, these lineages branched either with Asgards or with the distantly related Korarchaeota, and it has been suggested that their genomes may be affected by metagenomic contamination. Resolving this debate is important because these clades include genome-reduced lineages that may help inform our understanding of the evolution of symbiosis within Asgard archaea. Here, we performed phylogenetic analyses revealing that the Njordarchaeales and Panguiarchaeales constitute the new class Njordarchaeia within Asgard archaea. We found no evidence of metagenomic contamination affecting phylogenetic analyses. Njordarchaeia exhibit hallmarks of adaptations to (hyper-)thermophilic lifestyles, including biased sequence compositions that can induce phylogenetic artifacts unless adequately modeled. Panguiarchaeum is metabolically distinct from its relatives, with reduced metabolic potential and various auxotrophies. Phylogenetic reconciliation recovers a complex common ancestor of Asgard archaea that encoded the Wood-Ljungdahl pathway. The subsequent loss of this pathway during the reductive evolution of Panguiarchaeum may have been associated with the switch to a symbiotic lifestyle, potentially based on H2-syntrophy. Thus, Panguiarchaeum may contain the first obligate symbionts within Asgard archaea besides the lineage leading to eukaryotes.

Phylogeny

Evolution of promoter-proximal pausing enabled a new layer of transcription control.

Promoter-proximal pausing of RNA polymerase (Pol) II is a key regulatory step during transcription. Despite the central role of pausing in gene regulation, we do not understand the evolutionary processes that led to the emergence of Pol II pausing or its transition to a rate-limiting step actively controlled by transcription factors. Here, we analyzed transcription in species across the tree of life. Unicellular eukaryotes display an accumulation of Pol II near transcription start sites, which we propose transitioned to the longer-lived, focused pause observed in metazoans. This transition coincided with the evolution of new subunits in the negative elongation factor (NELF) and 7SK complexes. Depletion of NELF in mammals shifted the promoter-proximal buildup of Pol II from the pause site into the early gene body and compromised transcriptional activation for a set of heat-shock genes. Our work details the evolutionary history of Pol II pausing and sheds light on how new transcriptional regulatory mechanisms evolve.

RNA Polymerase II

Biological Parts in Yeast Synthetic Biology: From Regulatory Elements to Predictive Design Platforms.

Yeasts, particularly Saccharomyces cerevisiae, are important eukaryotic chassis for synthetic biology because of their tractable genetics, versatile toolkits, and broad utility in metabolic engineering and functional genomics. Progress in this field has been driven by biological parts that enable programmable control of gene expression and cellular behavior. Early efforts focused mainly on promoters, terminators, and other regulatory elements for tuning individual genes. However, as engineering expanded to multigene pathways, genetic circuits, and dynamic regulatory systems, the limits of part-centric design became clear. Part performance is often shaped by genomic context, chromatin state, host physiology, and interactions with other components, which restricts modularity and predictability. In response, yeast synthetic biology is shifting toward integrated design frameworks combining multilayer regulation, standardized assembly, automated experimentation, and computational modeling. This review provides an integrated perspective on the evolution of biological parts across DNA-, RNA-, and protein-level regulation, connecting these advances with assembly frameworks, biofoundries, and machine learning to trace the trajectory from part-centric engineering toward predictive, system-level design in yeast synthetic biology.

Biofoundry

Crawling under the radar: Two novel Paulinella species expand knowledge about the ecology and evolution of a primary plastid-containing amoeba lineage.

The genus Paulinella represents a rare, independent case of primary endosymbiosis, providing a unique system to study the early stages of organelle evolution. Here, we expand current understanding of primary plastid endosymbiosis through the discovery and characterization of two novel photosynthetic amoebae, Paulinella marae sp. nov. and Paulinella murrayi sp. nov., isolated from a brackish water habitat in North Carolina, United States. Complete chromatophore genomes and mitochondrial data revealed conserved gene content but notable structural variation, including genome rearrangements and inversion events. Phylogenetic analyses uncovered significant discordance between nuclear and organelle datasets, likely driven by substitution saturation, limited taxon sampling, and differing evolutionary signals across loci. Ecological observations over multiple years indicate that both species are in low abundance but consistently present, and when coupled with hobbyist data, support the hypothesis that photosynthetic Paulinella species are globally distributed yet under-sampled. These results increase known species diversity within the clade from four to six and highlight the importance of integrating field-based observations with genomic approaches. Overall, this work advances Paulinella as a model for studying ongoing primary endosymbiosis, lineage divergence, and the ecological strategies of low-abundance microbial eukaryotes.

Paulinella

Expansion of satellite DNAs derived from transposable elements in beetles with reduced diploid numbers.

Repetitive DNA sequences are ubiquitous in eukaryotic genomes, significantly influencing their structure, function, and evolution. They can facilitate genomic rearrangements, contributing to chromosomal and genomic diversity. Chrysomelidae (Coleoptera) beetles are known for their highly diverse karyotypes and heterochromatin distribution. In this study, we advanced the understanding of the intricate relationship between satellite DNA-like sequences (named here solely as satDNA) and genome organization/reshuffling using three species of Eumolpinae chrysomelids. We investigated the satellitomes of three species with divergent karyotypes that had undergone independent chromosomal fusions: Colaspis laeta (2n = 22, Xyp), with a conserved karyotype; Endocephalus bigatus (2n = 10, neo-XY); and Iphimeis dives (2n = 14, neo-XY). Our comparative analysis revealed highly divergent patterns of satDNA origin, organization, and evolution. In species with reduced chromosome numbers and neo-sex chromosomes, we observed a high abundance of transposable element-related (TE-related) satDNAs. In Colaspis laeta, the sex chromosomes (Xyp) showed an advanced level of differentiation. However, in the species with a reduction in diploid number, such a level of differential enrichment of repetitive DNAs was not observed in the sex chromosomes, indicating an early stage of differentiation. Our findings support the hypothesis that chromosomal rearrangements and reorganization of repetitive DNA sequences are connected, with extensive reshuffling observed in species with reduced diploid numbers. Moreover, the data reinforce the involvement of TEs in satDNA origin, which could spread widely throughout the genome, including euchromatic areas. This study provides new insights into the evolutionary dynamics of repetitive DNAs in non-model species, emphasizing the impact of chromosomal rearrangements on genome architecture and evolution.

Animals

Satellite DNAs in Drosophila koepferae (repleta group) reveal patterns of origin, chromosomal organization, transcription, and turnover in the buzzatii cluster.

Satellite DNAs (satDNAs) are non-coding tandem repeats that can comprise more than 20% of eukaryotic genomes. They contribute to structural and regulatory processes in the genome and often evolve rapidly, shaping early stages of genetic differentiation between populations and species. Although Drosophila has long served as a model for studying satDNA biology, little is known about satDNAs in non-model Drosophila species, particularly within the repleta group, one of the most species-rich lineages in the genus. To reduce such bias, several studies have focused on the buzzatii cluster (repleta group). However, D. koepferae remained the only species lacking comprehensive satDNA data, limiting comparative analyses. Here, we used publicly available genomic sequencing data from two D. koepferae populations (Argentina and Bolivia) to characterize their satDNA content. Both populations share the same set of five satDNAs (CDSTR8, CDSTR138, CDSTR230, DBC-150 and CDSTR177), which together account for ~ 0,9% of the genomic DNA. We show that CDSTR177 originated through amplification of an internal segment of the Galileo transposable element, an event restricted to D. koepferae. All satDNAs localize to heterochromatic regions, with CDSTR138 most likely associated to the centromeres of most chromosomes. Transcripts from all satDNAs were detected, although at low levels. Our results provide new insights into the origin, genomic contribution, expression and evolution of satDNAs in the buzzatii cluster, support incipient differentiation between Argentinean and Bolivian populations of D. koepferae and contribute to clarifying the phylogenetic position of this species within the buzzatii cluster.

Animals

DNA methylation reprogramming in teleosts.

Early embryonic development is crucially important but also remarkably diverse among animal taxa. Axis formation and cell lineage specification occur due to both spatial and temporal control of gene expression. This complex system involves various signaling pathways and developmental genes such as transcription factors as well as other molecular interactants that maintain cellular states, including several types of epigenetic marks. 5mC DNA methylation, the chemical modification of cytosines in eukaryotes, represents one such mark. By influencing the compaction of chromatin (a high-order DNA structure), DNA methylation can either repress or induce transcriptional activity. Mammals exhibit a reprogramming of DNA methylation from the parental genomes in the zygote following fertilization, and later in primordial germ cells (PGCs). Whether these periods of methylation reprogramming are evolutionarily conserved, or an innovation in mammals, is an emerging question. Looking into these processes in other vertebrate lineages is thus important, and teleost fish, with their extensive species richness, phenotypic diversity, and multiple rounds of whole genome duplication, provide the perfect research playground for answering such a question. This review aims to present a concise state of the art of DNA methylation reprogramming in early development in fish by summarizing findings from different research groups investigating methylation reprogramming patterns in teleosts, while keeping in mind the ramifications of the methodology used, then comparing those patterns to reprogramming patterns in mammals.

Animals