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Biology subjects

Frates, E.

Publications and source records attributed to Frates, E..

2 recordsLinked to original sources

Depth-dependent eDNA abundances across ecosystems inform deep-sea sampling strategies

Environmental DNA (eDNA) surveys are increasingly used to assess marine biodiversity and inform deep-sea environmental decision-making, including mineral resource management and fisheries oversight. Yet standard low-volume protocols inherited from coastal work may be inadequate at depth, and recent findings indicate that depth- and productivity-aware sampling, often requiring high-volume in situ filtration, is needed, but no quantitative framework links depth and ecosystem context to defensible filtration volume targets. We compiled 841 eDNA samples from eight expeditions across the North Atlantic, Wider Caribbean, and Pacific (surface to 4000 m) to quantify how recoverable eDNA scales with depth and surface productivity, and to derive depth- and productivity-aware sampling targets. Total eDNA concentration declined with depth as a power law, with attenuation exponents (b) modulated by surface productivity: most gradual in eutrophic waters (b = 0.67), intermediate in mesotrophic (b = 0.90), and steepest in oligotrophic systems (b = 1.25); volume-weighted models explained 66 to 88% of the variance. At a fixed extract-concentration target, required filtration volumes diverged ~7-fold between oligotrophic and eutrophic systems at 200 m and ~38-fold at 4000 m. Conventional Niskin sampling therefore undersamples deep-sea biodiversity, particularly in mid- to low-productivity systems. Among laboratory parameters, the assay-specific extract-concentration target exerted greater leverage on required volume than extraction efficiency or elution volume. Volume-aware sampling paired with optimized recovery should be routine in deep-sea eDNA surveys.

ecology↗

A meta-analysis of environmental sequencing data reveals the global distribution and hidden diversity of marine anaerobic ciliates

Anaerobic protists are diverse, ecologically important members of anoxic microbial communities, acting as grazers, nutrient cyclers, and partners in multi-domain associations, yet remain understudied relative to anaerobic prokaryotes. Ciliates are particularly abundant and diverse in anoxia, but their global diversity and distribution are largely unknown. Here, we conducted a meta-analysis of public 18S rDNA datasets, along with one dataset generated here, to assess the global diversity and ecology of marine anaerobic ciliates. Using a novel pipeline, we processed 2854 samples from 42 studies spanning 19 habitat types. We recovered 3196 anaerobic ciliate amplicon sequence variants (ASVs) across all described lineages. Based on clade-specific divergence thresholds derived from phylogenetic distances, 28.4-46.3% of ASVs qualified as novel. Most sequences belonged to the poorly described plagiopylean family Epalxellidae, suggesting a large reservoir of undescribed diversity in this clade. Community comparisons revealed close phylogenetic similarities between some shallow-water and deep-sea assemblages, suggesting that shared redox conditions may shape communities more than water depth. Our results demonstrate that marine anaerobic ciliates are globally distributed, taxonomically diverse, and rich in novel lineages. This study provides a framework for leveraging environmental sequencing data to better understand the diversity and ecology of neglected protist lineages and under-sampled habitats.

microbiology↗