Shell trace elemental fingerprints of the deep-sea methane seep mussel Gigantidas childressi vary by depth, site, and shell growth region

dc.contributor.author

Grace, IJ

dc.contributor.author

Génio, L

dc.contributor.author

Eggleston, DB

dc.contributor.author

Puckett, BJ

dc.contributor.author

Fodrie, FJ

dc.contributor.author

Smith, ANH

dc.contributor.author

Young, CM

dc.date.accessioned

2026-07-14T12:57:12Z

dc.date.available

2026-07-14T12:57:12Z

dc.date.issued

2026-04-01

dc.description.abstract

Larval dispersal is a key driver of population persistence and resilience of numerous metapopulations and communities in marine ecosystems. Determining where and how larvae disperse in the deep sea is one of the most vexing challenges in deep-sea ecology. Laser ablation inductively coupled plasma mass spectrometry was used to evaluate the potential role of trace elemental fingerprints (TEFs) of deep-sea methane seep mussel Gigantidas childressi (n = 92 valves) in discriminating among collection depths, geographic regions (Gulf of Mexico and West Atlantic Margin; GOM and WAM), methane seep sites, and shell growth regions (larval VS settler shell). A priori permutational analyses of variance (PERMANOVA) discriminated among mussel valve TEFs across a depth gradient (650 m–2206 m), among eight methane seep sites, and among shell growth regions. A priori canonical analyses of principal coordinates (CAP) generally matched and additionally discriminated TEFs among geographic regions. Results for post-hoc analyses on individual shell growth regions varied by statistical approach (PERMANOVA VS CAP) and by shell growth region (larval prodissoconch I and prodissoconch II VS settler dissoconch shell). Broadly, post-hoc PERMANOVA discriminated only among sites, while post-hoc CAP discriminated among all study factors. Discrimination among depths was mainly driven by the elemental ratio Ba:Ca. Discrimination among geographic regions was mainly by Ba:Ca and Sr:Ca. Discrimination among sites and shell growth regions was driven by all three elemental ratios analyzed (Ba:Ca, Sr:Ca, and Mg:Ca). Overall, shell TEFs show potential to discern spatial distribution of larval population pools.

dc.identifier.issn

0967-0637

dc.identifier.uri

https://hdl.handle.net/10161/35380

dc.language

en

dc.publisher

Elsevier BV

dc.relation.ispartof

Deep Sea Research Part I Oceanographic Research Papers

dc.relation.isversionof

10.1016/j.dsr.2026.104655

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.title

Shell trace elemental fingerprints of the deep-sea methane seep mussel Gigantidas childressi vary by depth, site, and shell growth region

dc.type

Journal article

duke.contributor.orcid

Fodrie, FJ|0000-0001-8253-9648

pubs.begin-page

104655

pubs.end-page

104655

pubs.organisational-group

Duke

pubs.organisational-group

Nicholas School of the Environment

pubs.organisational-group

Marine Science and Conservation

pubs.publication-status

Published

pubs.volume

228

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