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13 results for “Galeocerdo”

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Figure 2 in Diet of the bull shark, Carcharhinus leucas, and the tiger shark, Galeocerdo cuvier, in the eastern Pacific Ocean

Figure 2. Trophic spectrum of the bull shark, Carcharhinus leucas, and tiger shark, Galeocerdo cuvier, in Ecuadorian waters.

opencc-by-4.0Aug 2017View details →
zenodo40/100

Figure 1 in Diet of the bull shark, Carcharhinus leucas, and the tiger shark, Galeocerdo cuvier, in the eastern Pacific Ocean

Figure 1. Landing port of the bull shark, Carcharhinus leucas, and tiger shark, Galeocerdo cuvier, caught in Ecuadorian waters.

opencc-by-4.0Aug 2017View details →
dryad32/100

Evolution, diversity, and disparity of the tiger shark lineage Galeocerdo in deep time

<p>Sharks have a long and rich fossil record that consists predominantly of isolated teeth due to the poorly mineralized cartilaginous skeleton. Tiger sharks (<i>Galeocerdo</i>), which represent apex predators in modern oceans, have a known fossil record extending back into the early Eocene (ca. 56 Ma) and comprise 22 recognised extinct and one extant species to date. However, many of the fossil species remain dubious, resulting in a still unresolved evolutionary history of the tiger shark genus. Here, we present a revision of the fossil record of <i>Galeocerdo</i> by examining the morphological diversity and disparity of teeth in deep time. We use landmark-based geometric morphometrics to quantify tooth shapes and qualitative morphological characters for species discrimination. Employing this combined approach on fossil and extant tiger shark teeth, our results only support six species to represent valid taxa. Furthermore, the disparity analysis revealed that diversity and disparity are not implicitly correlated and that <i>Galeocerdo</i> retained a relatively high dental disparity since the Miocene despite its decrease from four to one species. With this study, we demonstrate that the combined approach of quantitative geometric morphometric techniques and qualitative morphological comparisons on isolated shark teeth provides a useful tool to distinguish between species with highly similar tooth morphologies.</p>

opencc-zeroJan 2021View details →
dryad32/100

Data from: Extracting DNA from 'jaws': high yield and quality from archived tiger shark (Galeocerdo cuvier) skeletal material

Archived specimens are highly valuable sources of DNA for retrospective genetic/genomic analysis. However, often limited effort has been made to evaluate and optimize extraction methods, which may be crucial for downstream applications. Here, we assessed and optimized the usefulness of abundant archived skeletal material from sharks as a source of DNA for temporal genomic studies. Six different methods for DNA extraction, encompassing two different commercial kits and three different protocols, were applied to material, so-called bio-swarf, from contemporary and archived jaws and vertebrae of tiger sharks (Galeocerdo cuvier). Protocols were compared for DNA yield and quality using a qPCR approach. For jaw swarf, all methods provided relatively high DNA yield and quality, while large differences in yield between protocols were observed for vertebrae. Similar results were obtained from samples of white shark (Carcharodon carcharias). Application of the optimized methods to 38 museum and private angler trophy specimens dating back to 1912 yielded sufficient DNA for downstream genomic analysis for 68% of the samples. No clear relationships between age of samples, DNA quality and quantity were observed, likely reflecting different preparation and storage methods for the trophies. Trial sequencing of DNA capture genomic libraries using 20 000 baits revealed that a significant proportion of captured sequences were derived from tiger sharks. This study demonstrates that archived shark jaws and vertebrae are potential high-yield sources of DNA for genomic-scale analysis. It also highlights that even for similar tissue types, a careful evaluation of extraction protocols can vastly improve DNA yield.

opencc-zeroDec 2015View details →
dryad32/100

Genomic assessment of global population structure in a highly migratory and habitat versatile apex predator, the tiger shark (Galeocerdo cuvier)

<p>Understanding the population dynamics of highly mobile, widely distributed, oceanic sharks, many of which are overexploited, is necessary to aid their conservation management.  We investigated the global population genomics of tiger sharks (<i>Galeocerdo cuvier</i>), a circumglobally distributed, apex predator displaying remarkable behavioral versatility in its diet, habitat use (near coastal, coral reef, pelagic), and individual movement patterns (spatially resident to long-distance migrations).  We genotyped 242 tiger sharks from 10 globally distributed locations at more than 2000 single nucleotide polymorphisms. Although this species often conducts massive distance migrations, the data show strong genetic differentiation at both neutral (<i>F</i><sub>ST</sub>=0.125-0.144) and candidate outlier loci (<i>F</i><sub>ST</sub>=0.570-0.761) between western Atlantic and Indo-Pacific sharks, suggesting the potential for adaptation to the environments specific to these oceanic regions. Within these regions, there was mixed support for population differentiation between northern and southern hemispheres in the western Atlantic, and none for structure within the Indian Ocean. Notably, the results demonstrate a low level of population differentiation of tiger sharks from the remote Hawaiian archipelago compared to sharks from the Indian Ocean (<i>F</i><sub>ST</sub>=0.003-0.005, <i>P</i>&lt;0.01). Given concerns about biodiversity loss and marine ecosystem impacts caused by overfishing of oceanic sharks in the midst of rapid environmental change, our results suggest it imperative that international fishery management prioritize conservation of the evolutionary potential of the highly genetically differentiated Atlantic and Indo-Pacific populations of this unique apex predator. Furthermore, we suggest targeted management attention to tiger sharks in the Hawaiian archipelago based on a precautionary biodiversity conservation perspective.</p>

opencc-zeroAug 2021View details →
dryad32/100

Data from: Genetic population structure and demography of an apex predator, the tiger shark Galeocerdo cuvier

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publicMay 2019View details →
dryad32/100

Data from: Extracting DNA from ‘jaws’: high yield and quality from archived tiger shark (Galeocerdo cuvier) skeletal material

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publicJul 2016View details →
dryad32/100

Evolution, diversity, and disparity of the tiger shark lineage Galeocerdo in deep time

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publicFeb 2021View details →
dryad32/100

Genomic assessment of global population structure in a highly migratory and habitat versatile apex predator, the tiger shark (Galeocerdo cuvier)

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publicAug 2021View details →
zenodo28/100

Fig. 36. Galeocerdo clarkensis White, 1956, teeth. A–E. MSC 188.68 in Taxonomy and biostratigraphy of the elasmobranchs and bony fishes (Chondrichthyes and Osteichthyes) of the lower-to-middle Eocene (Ypresian to Bartonian) Claiborne Group in Alabama, USA, including an analysis of otoliths

Fig. 36. Galeocerdo clarkensis White, 1956, teeth. A–E. MSC 188.68, lateral tooth, basal Gosport Sand. A. Labial view. B. Close–up of distal notch. C. Lingual view. D. Close–up of mesial compound serrations. E. Mesial view. F–J. MSC 188.272, lateral tooth, basal Gosport Sand. F. Labial view. G. Close–up of mesial compound serrations. H. Lingual view. I. Close–up of distal notch. J. Mesial view. K–O. MSC 2382.4, lateral tooth, Gosport Sand. K. Labial view. L. Close–up of distal notch. M. Lingual view. N. Close–up of mesial serrations. O. Mesial view. P–T. MSC 37592, anterolateral tooth, basal Gosport Sand. P. Labial view. Q. Close–up of mesial compound serrations. R. Lingual view. S. Close–up of distal notch. T. Mesial view. Scale bars = 5 mm.

opencc-by-4.0Dec 2019View details →
zenodo28/100

Fig. 35. Galeocerdo eaglesomei White, 1955, teeth. A–E in Taxonomy and biostratigraphy of the elasmobranchs and bony fishes (Chondrichthyes and Osteichthyes) of the lower-to-middle Eocene (Ypresian to Bartonian) Claiborne Group in Alabama, USA, including an analysis of otoliths

Fig. 35. Galeocerdo eaglesomei White, 1955, teeth. A–E. MMNS VP–7496.1, anterolateral tooth, "upper" Lisbon Formation. A. Labial view. B. Close–up of distal notch. C. Lingual view. D. Close–up of simple mesial serrations. E. Mesial view. F–J. MMNS VP–7496.2, lateral tooth, "upper" Lisbon Formation. F. Labial view. G. Close–up of distal notch. H. Lingual view. I. Close–up of simple mesial serrations. J. Mesial view. K–O. MSC 37619.1, lateral tooth, "upper" Lisbon Formation, reversed for comparison, courtesy of James Lowery. K. Labial view. L. Close–up of distal notch. M. Lingual view. N. Close–up of simple mesial serrations. O. Mesial view. Scale bars = 5 mm.

opencc-by-4.0Dec 2019View details →
dryad28/100

Regularized satellite tracks from: Ocean warming alters the distributional range, migratory timing, and spatial protections of an apex predator, the tiger shark (Galeocerdo cuvier)

<p>Data are regularized tiger shark satellite tracks used in "Ocean warming alters the distributional range, migratory timing, and spatial protections of an apex predator, the tiger shark (Galeocerdo cuvier)" published in Global Change Biology. Paper abstract below:</p> <p>Given climate change threats to ecosystems, it is critical to understand responses of species to warming. This is especially important in the case of apex predators since they exhibit relatively high extinction risk and changes to their distribution could impact predator-prey interactions that can initiate trophic cascades. Here we used a combined analysis of animal tracking, remotely sensed environmental data, habitat modeling, and capture data to evaluate the effects of climate variability and change on the distributional range and migratory phenology of an ectothermic apex predator, the tiger shark (Galeocerdo cuvier). Tiger sharks satellite tracked in the western North Atlantic between 2010 and 2019 revealed significant annual variability in the geographic extent and timing of their migrations to northern latitudes from ocean warming. Specifically, tiger shark migrations have extended farther poleward and arrival times to northern latitudes have occurred earlier in the year during periods with anomalously high sea-surface temperatures. A complementary analysis of nearly 40 years of tiger shark captures in the region revealed decadal-scale changes in the distribution and timing of shark captures in parallel with long-term ocean warming. Specifically, areas of highest catch densities have progressively increased poleward and catches have occurred earlier in the year off the North American shelf. During periods of anomalously high sea-surface temperatures, movements of tracked sharks shifted beyond spatial management zones that had been affording them protection from commercial fishing and bycatch. Taken together, these study results have implications for fisheries management, human-wildlife conflict, and ecosystem functioning.</p>

opencc-zeroDec 2021View details →
dryad28/100

Regularized satellite tracks from: Ocean warming alters the distributional range, migratory timing, and spatial protections of an apex predator, the tiger shark (Galeocerdo cuvier)

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publicDec 2021View details →

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