Riverine plastic litter restructures microbial vitamin B12 metabolism and generates functional heterogeneity
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Rivers transport most land-derived plastic waste to the ocean, yet how this reshapes microbial metabolic potential remains poorly resolved. We characterized plastisphere and water-column communities across 14 stations along the River Rhine, integrating ATR-FTIR polymer characterization, 16S/18S rRNA amplicon profiles, and 120 metagenome-assembled genomes. Plastisphere communities were taxonomically distinct from water communities (PERMANOVA R = 0.258, p = 0.0001) and, despite no overall shift in functional centroid (R = 0.245, p = 0.125), were markedly more heterogeneous in functional composition across sites (permutest p = 0.0047). Aerobic corrin ring synthesis, the core B12 biosynthetic pathway, was among the most differentially dispersed functions and enriched on plastic at all seven paired stations (Wilcoxon exact test, W = 3, p = 0.004079). This signal coincided with a diatom-dominated eukaryotic plastisphere community; diatoms cannot synthesize B12 and depend on bacterial provisioning, linking functional and taxonomic restructuring via a plausible cross-domain mechanism. Plastisphere communities were also less tightly coupled to the river's dissolved nutrient gradient than water communities (envfit R = 0.64 vs. 0.82). Together, these results indicate that riverine plastic litter does not merely accumulate biomass passively but actively restructures specific metabolic capacities of its colonizers, exemplified by vitamin B12 metabolism.