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Biology subjects

Dunton, K. H.

Publications and source records attributed to Dunton, K. H..

2 recordsLinked to original sources

High cryptic diversity of invertebrates in varying nearshore habitats of the Beaufort Sea

The Alaskan Beaufort Sea lagoon system supports a diverse invertebrate community shaped by a complex glacial and biogeographic history, yet it remains severely understudied relative to the rapid environmental changes it is experiencing. As Arctic amplification accelerates habitat loss, shifts dispersal pathways, and facilitates the introduction of boreal and invasive species, accurately documenting current biodiversity is increasingly urgent. In this study, we used DNA barcoding of the mitochondrial cox1 gene for various invertebrates, and the nuclear 28S rRNA gene for Porifera, to examine invertebrate genera across coastal sites in the Alaskan Beaufort Sea, including the unique Boulder Patch kelp community in Stefansson Sound. We sequenced specimens belonging to five phyla: Annelida, Arthropoda, Mollusca, Porifera, and Priapulida. Specimens were identified by morphology, and their cox1 or 28S rRNA gene sequences were matched against the GenBank and Barcode of Life Data Systems (BOLD) databases. Molecular identification revealed substantially higher species diversity than morphology alone in three of five phyla: Annelida (12 versus six species), Arthropoda (14 versus 11), and Mollusca (five versus four). In Porifera and Priapulida the number of species were the same for morphological and molecular identification; however, we still found different species identifications between the two methods. Other notable findings include the discovery of multiple cryptic species within Terebellides sp., Pontoporeia femorata, Onisimus litoralis, and Micronephthys minuta, as well as the first published sequences for Acanthostepheia incarinata, Haliclona gracilis, Onisimus affinis, and Saduria sibirica. Our results highlight the extent to which morphology-based surveys underestimate invertebrate diversity in Arctic ecosystems and underscore the need for comprehensive surveys and molecular reference databases to support future molecular-based biodiversity monitoring in this rapidly changing region.

ecology↗

Infrared gas analysis as a method of measuring seagrass photosynthetic rate in the face of desiccation stress

Photosynthesis, a core autotrophic metabolic process for aquatic and terrestrial organisms, is the backbone of the global carbon biogeochemical cycle. Inorganic assimilation of carbon in photosynthesis is relative difficult to measure in an aqueous medium since carbon readily reacts with ions in water. Therefore, aquatic photosynthesis is often measured using secondary methods that introduce uncertainty into measurements (e.g., oxygen evolution). One technique, infrared gas analysis (IRGA), uses a closed gas loop to calculate an accurate carbon budget. Multiple studies have successfully used IRGA with intertidal seagrasses, but it remains unknown how applicable the technology is for underwater plants. Here, we evaluate the potential of IRGA to mea-sure carbon assimilation of subtidal seagrasses temporarily removed from seawater, and evaluate how carbon fixation rates and chlorophyll fluorescence characteristics of subtidal seagrasses change as they desiccate. We use IRGA for four common seagrass species from the Western Gulf of Mexico (Halophila engelmannii, Halodule wrightii, Syringodium filiforme, and Thalassia testudinum) paired with pulse amplitude modulated fluorometry to measure desiccation stress. Halophila had the highest maximum carbon assimilation rate (6.06 {micro}mol C m-2s-1), followed by Thalassia (5.58 {micro}mol C m-2 s-1), Halodule (4.75 {micro}mol C m-2 s-1), and Syringodium (3.63 {micro}mol C m-2 s-1). Thalassia was most resistant to desiccation stress as reflected by the plants ability to maintain high maximum leaf quantum efficiency (Fv/Fm) while the other species were not. Additionally, Thalassia had a slower desiccation rate (2.3% min-1 cm-2) than 4.79% Syringodium filiforme (4.79% min-1 cm-2) and Halodule wrightii (30.17% min-1 cm-2). Together, our provide reasonable measures of carbon assimilation and support previous studies of seagrass desiccation stress gradients along depth. Overall, we recognize IRGA as a promising direction for future studies of seagrass productivity and recommend further investigation.

plant biology↗