<?xml version="1.0" encoding="UTF-8" standalone="yes"?>
<STUDY_SET>
    <STUDY accession="DRP002239" center_name="UT-AQUA" alias="DRP002239">
        <IDENTIFIERS>
            <PRIMARY_ID label="BioProject ID">PRJDB2530</PRIMARY_ID>
        </IDENTIFIERS>
        <DESCRIPTOR>
            <STUDY_TITLE>A metagenetic approach for revealing community structure of marine planktonic copepods</STUDY_TITLE>
            <STUDY_TYPE existing_study_type="Metagenomics"/>
            <STUDY_ABSTRACT>Marine planktonic copepods are an ecologically important group with high species richness and abundance. Here, we propose a new metagenetic approach for revealing the community structure of marine planktonic copepods using 454 pyrosequencing of nuclear large subunit ribosomal DNA. We developed a method for clustering pyrosequencing data into molecular operational taxonomic units (MOTUs) through analysis of an artificial copepod community containing 33 morphologically identified species. The 99% similarity threshold had high species-level resolution for MOTU clustering but overestimated species richness. The artificial community was appropriately clustered into MOTUs at 97% similarity, with little inflation in MOTU numbers and with relatively high species-level resolution. The number of sequence reads per MOTU was correlated with dry weight of that taxon, suggesting that sequence reads could be used as a proxy for biomass. Next, we applied the method to field-collected samples, and the results corresponded reasonably well with morphological analysis of these communities. Numbers of MOTUs were well correlated with species richness at 97% similarity, and large numbers of sequence reads were generally observed in MOTUs derived from species with large biomass. MOTUs were successfully classified at the family level at 97% similarity; similar patterns of species richness and biomass within families were revealed with metagenetic and morphological analyses. At the 99% similarity threshold, MOTUs with high proportions of sequence reads were identified as biomass-dominant species in each field-collected sample. The metagenetic approach reported here can be an effective tool for rapid and comprehensive assessment of copepod community structure.</STUDY_ABSTRACT>
            <CENTER_PROJECT_NAME>The New Ocean Paradigm on its Biogeochemistry, Ecosystem, and Sustainable Use</CENTER_PROJECT_NAME>
        </DESCRIPTOR>
    </STUDY>
</STUDY_SET>
