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668 results for “Mussels”
Figure 1 in Hidden in the hills: phylogeny of the freshwater mussel genus Alasmidonta (Bivalvia: Unionidae) and description of a new species
Figure 1. Terrain map of survey locations and the known range of Alasmidonta uwharriensis sp. nov. Red stream segments indicate the known range of the species from element occurrence data (North Carolina Wildlife Resources Commission and North Carolina Museum of Natural Sciences records) with ~1 km up- and downstream buffers. Black circles indicate survey locations where the species has not been recorded. Green shading represents conserved or protected land boundaries; grey shading represents developed areas. Inset A, the boundaries of North Carolina and surrounding states (grey shading represents the Yadkin–Pee Dee River basin; red shading represents the Uwharrie and Little River watersheds). Inset B, an example of typical habitat preferred by the species in Barnes Creek (September 2020; photograph credit M. A. Perkins).
Figure 5 in Hidden in the hills: phylogeny of the freshwater mussel genus Alasmidonta (Bivalvia: Unionidae) and description of a new species
Figure 5. Species tree of Alasmidonta s.s. inferred with STARBEAST. Nodes are labelled with posterior probabilities, and the scale is in substitutions per site.
Figure 6 in Hidden in the hills: phylogeny of the freshwater mussel genus Alasmidonta (Bivalvia: Unionidae) and description of a new species
Figure 6. External view of Alasmidonta uwharriensis sp. nov. shell from across its range. A, NCSM 102870 from Densons Creek. B, NCSM 47178 from Densons Creek. C, NCSM 29538 from Barnes Creek. D, NCSM 45651 from Densons Creek.
Figure 3 in Hidden in the hills: phylogeny of the freshwater mussel genus Alasmidonta (Bivalvia: Unionidae) and description of a new species
Figure 3. Concatenated tree inferred with the dataset mtDNA + ITS1. Terminal tips have been collapsed for visualization purposes. Nodes are labelled with ultrafast bootstrap support. A full tree is available in the Supporting Information (File S1). The scale is in substitutions per site.
Figure 4. ITS1 gene tree. Terminal tips have been collapsed for visualization purposes. Nodes are labelled with ultrafast bootstrap support. A in Hidden in the hills: phylogeny of the freshwater mussel genus Alasmidonta (Bivalvia: Unionidae) and description of a new species
Figure 4. ITS1 gene tree. Terminal tips have been collapsed for visualization purposes. Nodes are labelled with ultrafast bootstrap support. A full tree is available in the Supporting Information (File S1). The scale is in substitutions per site.
Figure 7 in Hidden in the hills: phylogeny of the freshwater mussel genus Alasmidonta (Bivalvia: Unionidae) and description of a new species
Figure 7. Images showing pseudocardinal teeth of Alasmidonta uwharriensis sp. nov. Arrows point to pseudocardinal teeth. A, USNM 1675683, left valve, umbo pointing away from camera. B, USNM 1675683, right valve, umbo away from camera. C, USNM 1675683, right valve, umbo towards camera. D, USNM 1675685, left valve, umbo pointing away from camera. E, USNM 1675685, right valve, umbo away from camera. F, USNM 1675685, right valve, umbo towards camera.
The effect of simulated marine heatwaves on green-lipped mussels, Perna canaliculus: A near-natural experimental approach
<p>Marine heatwaves (MHW) are projected for the foreseeable future, affecting aquaculture species, such as the New Zealand green-lipped mussel (<em>Perna canaliculus</em>). Thermal stress alters mussel physiology highlighting the adaptive capacity that allows survival in the face of heatwaves. Within this study, adult mussels were subjected to three different seawater temperature regimes: 1) low (sustained 18°C), 2) medium MHW (18 - 24°C, using a +1°C per week ramp) and high MHW (18 - 24°C, using a +2°C per week ramp). Sampling was performed over 11 weeks to establish the effects of temperature on <em>P. canaliculus</em> survival, condition, specific immune response parameters, and the haemolymph metabolome. The transient 25.5-26.5°C exposure resulted in 61% mortality, with surviving animals showing a metabolic adjustment within the aerobic energy production system, enabling the activation of molecular defence mechanisms. Utilisation of immune functions were seen within the cytology results where temperature stress affected the percentage of superoxide-positive haemocytes and haemocyte counts. From the metabolomics results an increase in antioxidant metabolites was seen in the high MHW survivors, possibly to counteract molecular damage. In the high MHW exposure group, mussels utilised anaerobic metabolism in conjunction with aerobic metabolism to produce energy, to uphold biological functions and survival. The effect of exposure time was mainly seen on very long-, and long chain fatty acids, with increases observed at weeks seven and eight. These changes were likely due to the membrane storage functions of fatty acids, with decreases at week eleven attributed to energy metabolism functions. This study supports the use of integrated analytical tools to investigate the response of marine organisms to heatwaves. Indeed, specific metabolic pathways and cellular markers are now highlighted for future investigations aimed at targeted measures. This research contributes to a larger program aimed to identify resilient mussel traits and support aquaculture management.</p>
Raw data: Validation of a method for surveillance of nanoparticles in mussels using single particle inductively coupled plasma mass spectrometry
<p>The compressed archive contains SP-ICP-MS data to reproduce results for the paper with the working title "Validation of a method for surveillance of nanoparticles in mussels using single particle inductively coupled plasma mass spectrometry"".</p> <p>The remaining data to produce all other results, visualizations and statistics for the paper is included in the supplementary or GitHub. Associated code is deposited in a GitHub repository, github.com/arebruvold/mussel_validation .</p>
Pelletizing of agricultural lime obtained from shellfish (mussel) shells
<p>The dataset documents the results from the process of preparing agricultural lime (primarily calcium carbonate) pellets for application in the agricultural industry, and to determine the best processing methods for i) size reduction of the lime and ii) the appropriate preparation methods of the lime pellets using agglomeration. The data set is from a thesis on the re-utilization of by-products that originate in aquaculture in other agricultural sectors. </p>
Study Evaluating the Efficacy of Thick Shell Mussel Lipid Extract in Chinese Subjects With Rheumatoid Arthritis
ClinicalTrials.gov study NCT02173587. IPD Sharing: Not stated. Countries: 1. Publications: 1.
A single heat stress bout induces rapid and prolonged heat acclimation in the California mussel, Mytilus californianus
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Data from: Rapid divergence of mussel populations despite incomplete barriers to dispersal
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Data from: The 5S rDNA gene family in mollusks: characterization of transcriptional regulatory regions, prediction of secondary structures, and long-term evolution, with special attention to Mytilidae mussels
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Data from: Linking genotype to phenotype in a changing ocean: inferring the genomic architecture of a blue mussel stress response with genome-wide association
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Data from: Connectivity and zebra mussel invasion offer short‐term buffering of eutrophication impacts on floodplain lake landscape biodiversity
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Data from: Glacial history of the European marine mussels Mytilus, inferred from distribution of mitochondrial DNA lineages
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Genetic diversity in the threatened freshwater mussel Lampsilis powellii
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Data from: Phylogeographic and population genetic analyses reveal Pleistocene isolation followed by high gene flow in a wide- ranging, but endangered, freshwater mussel
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Data from: Impacts of mussel invasions on the prey preference of two native predators
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Evaluating the role of predatory fish controlling the invasion of the Asian golden mussel (Limnoperna fortunei) in a subtropical river
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International Brain Laboratory public data
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OpenNeuro
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