The deep sea is home to a vast and largely unexplored microbial biosphere, along with large amounts of complex organic matter (COM). However, the functional capacity of the deep-sea microbiome to metabolize organic matter across diverse regions remains poorly understood. Here, we combine 16S rRNA gene amplicon sequencing, metagenomics, and metatranscriptomics to comprehensively characterize prokaryotic communities across different years (2018 and 2022) and habitats (cold seeps, hydrothermal vents, and seamounts). Our results reveal spatio-temporal community heterogeneity driven by geochemical gradients, alongside a widespread genetic potential for organic matter metabolism. Notably, the PVC (Planctomycetota-Verrucomicrobiota-Chlamydiota) superphylum exhibits extensive polysaccharide degradation capabilities, exemplified by the isolation of Planctomycetota strain WC338 and Lentisphaerota strain WC36 via laminarin enrichment. Growth experiments and transcriptomics confirm their strict laminarin dependence and characterize the underlying catabolic machinery—specifically, the deployment of different glycoside hydrolase (GH) families, which are broadly distributed and prevalent across the PVC superphylum. Furthermore, we demonstrate that laminarin acts as an effective selective substrate for enriching and isolating the deep-sea PVC superphylum bacteria. Collectively, these findings reveal that PVC bacteria—an overlooked group in laminarin degradation—possess specialized adaptations for polysaccharide breakdown and actively participate in laminarin turnover in deep-sea environments. In this study, the authors used multi-omics and cultivation approaches to show that deep-sea PVC bacteria have the capacity to degrade polysaccharides. Two PVC strains isolated via laminarin enrichment showcase specialized adaptations, highlighting their role in marine carbon cycling.
Hydrothermal systems contain diverse alkanes derived from biological and geological processes, providing potential carbon and energy sources for microorganisms. However, cultivated thermophilic alkane-utilizing bacteria from hydrothermal environments remain poorly characterized. In this study, a strain L01 was isolated from a deep-sea hydrothermal vent and identified as an alkane-degrading bacterium. The strain L01 grew at 55 °C and pH 7.0 in medium supplemented with n-hexadecane under microoxic conditions. Cells were elongated rods approximately 10–20 μm long and ~0.2 μm wide. Phylogenetic analyses based on 16S rRNA gene sequence similarity (93.11% to the closest described relative), average amino acid identity (AAI, 66.27–66.58%), average nucleotide identity (ANI, 80.80–83.05%), and digital DNA-DNA hybridization (dDDH, 12.5–20.8%) demonstrated that strain L01 represents a previously unrecognized genus within the family Symbiobacteriaceae, for which the provisional name “Thermalkanevorax longiformis” is proposed. An isotope tracing experiment together with genomics and transcriptomics revealed coordinated physiological and metabolic responses associated with n-hexadecane utilization by strain L01. These findings provide a cultivated representative of the family Symbiobacteriaceae with physiological and metabolic responses to n-hexadecane, thereby providing a basis for further investigation of hydrocarbon metabolism.
Huilin Wen, Ge Liu, Chaomin Sun et al.· Microorganisms· 0 citations