The SAR11 clade, also known as the order Candidatus Pelagibacterales, is among the most abundant bacterial lineages in the ocean and plays central roles in marine biogeochemical cycles. However, many SAR11 genes remain functionally uncharacterized, highlighting the need for a comprehensive, integrated catalog that supports genomic, functional, and ecological analyses across the clade. Here, we present the SAR11 Genome Atlas, an interactive ortholog group (OG)-centered web resource that integrates 542 SAR11 genomes, including all 132 cultured strain genomes, with functional annotations, synteny, phylogenetic distribution, metatranscriptomic expression, and predicted protein structure information. To demonstrate its utility, we used environmental expression profiles to identify OGs associated with high-latitude environments, recovering OGs known to be involved in cold adaptation and proposing a hypothesis for the function of uncharacterized protein. We further analyzed phylogenetic distribution patterns to identify mutually exclusive functional modules, including candidate alternative systems for Mn/Zn homeostasis and phosphate acquisition, and to associate these modules with distinct oceanographic environments. Together, these case studies demonstrate that the SAR11 Genome Atlas supports complementary analyses that connect environmental signals to genes of interest and use phylogenetic or functional distributions to generate hypotheses about ecological specialization. Through a user-friendly web interface, the SAR11 Genome Atlas enables researchers to explore genomic, environmental, and structural information without specialized computational expertise. All data and analysis outputs are freely accessible online at [https://stsnsn.github.io/SAR11_Atlas/]. The SAR11 Genome Atlas thus provides a scalable framework for generating and testing hypotheses that connect SAR11 genomic variation to protein function and oceanographic context, supporting advances in marine microbial ecology and biogeochemistry.
Subcuticular bacteria (SCB) are widespread symbionts of echinoderms and often dominate the body-wall microbiome, suggesting important roles in host physiology. However, their diversity, metabolic properties, and host associations remain poorly characterized. Here, we report a novel dominant SCB lineage associated with deep-sea holothurians, Scotoplanes spp. collected from the Northwest Pacific. We recovered two high-quality genomes, including a 649-kb complete circular genome, and propose a new genus and species, “Candidatus Abyssoplasma scotoplanesicola”, within Mycoplasmatota. The two genomes showed a highly reduced metabolic repertoire, lacking central pathways including glycolysis. In contrast, acidic cell-surface-associated proteins, including large proteins exceeding 5,000 amino acids, accounted for 27.6% of the complete genome and clustered near defense islands. Localized genome plasticity in these regions, revealed by comparison between the two closely related genomes, suggests a possible mechanism for diversification of cell-surface proteins at the host-symbiont interface. “Candidatus Abyssoplasma scotoplanesicola” occupied 76.4–98.9% of the body-wall microbiome of the Scotoplanes specimens. Fluorescence in situ hybridization analysis confirmed that these bacteria formed aggregates on the epidermal side of the body wall. Overall, this study provides genome-and spatially resolved views of dominant SCB in holothurians and offers evolutionary insights into host-interface diversification in the deep-sea holothurian body wall.