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163 results for “Alligator”
Species Photos.zip Archive of fish species images for the publication of: Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.
<p>Species Photos.zip </p> <p>Archive of fish species images for the publication of:</p> <p>Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p> <p>323 images, 318 species total,(5 species of Pomacentridae have pictures of both juvenile and adult phases)</p> <p>Carcharodon carcharias screen grab from video*<br> Centropristis ocyurus photo by C.Wangen<br> Dasyatis centroura screen grab from video by Ed. Martin<br> Diapterus sp. photo by Ed Martin. </p> <p>All other photos taken by Carlos Estapé and Allison Estapé in the study area (319 images of 314 species)</p> <p>*YouTube video - Snorkelers Spot Great White Shark Off Islamorada, https://www.youtube.com/watch?v=50l2grfaNQ4</p>
AR-St Croix comparison.xlsx: a table of shorefish species from Alligator Reef vs. St. Croix, from Smith-Vaniz & Jelks (2014).
<p>AR-St Croix comparison.xlsx: a table of shorefish species from Alligator Reef vs. St. Croix, from Smith-Vaniz & Jelks (2014).<br> </p> <p>data from Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the<br> Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p>
AR-St Croix comparison summary.docx: a summary of shorefish species-list differences between Alligator Reef and St. Croix, from Smith-Vaniz & Jelks (2014).
<p>AR-St Croix comparison summary.docx: a summary of shorefish species-list differences between Alligator Reef and St. Croix, from Smith-Vaniz & Jelks (2014).</p> <p>data from Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the<br> Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p>
Families w10+ spp at AR StC and Belize.docx: a summary of shorefish species-list differences between Alligator Reef vs. St. Croix, from Smith-Vaniz & Jelks (2014) and the Belize list from 2008.
<p>Families w10+ spp at AR StC and Belize.docx: a summary of shorefish species-list differences between Alligator Reef vs. St. Croix, from Smith-Vaniz & Jelks (2014) and the Belize list from 2008.</p> <p>data from Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the<br> Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p>
STRI spp. for 0.5º Square for Alligator Reef.xls: a table of the shorefish species list for the square including Alligator Reef from Robertson & Van Tassell (2015) compared to listing from Alligator Reef.
<p>Smithsonian Tropical Research Institute shorefishes of the Greater Caribbean guide: all spp. for 0.5º Square for Alligator Reef.xls: a table of the shorefish species list for the square including Alligator Reef from Robertson & Van Tassell (2015) compared to listing from Alligator Reef.</p> <p>data from Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the<br> Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p>
GC-AR fishes summary tables.docx: a summary of shorefish species-list differences between Alligator Reef and the Greater Caribbean from Floeter et al. (2008).
<p>GC-AR fishes summary tables.docx: a summary of shorefish species-list differences between Alligator Reef and the Greater Caribbean from Floeter et al. (2008).</p> <p>data from Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the<br> Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p>
GreaterCaribbeanSpeciesSpreadsheet.xlsx: a table of the shorefish species list of the Greater Caribbean from Floeter et al. (2008) compared to listing from Alligator Reef.
<p>GreaterCaribbeanSpeciesSpreadsheet.xlsx: a table of the shorefish species list of the Greater Caribbean from Floeter et al. (2008) compared to listing from Alligator Reef.<br> </p> <p>data from Starck, W.A., Estapé C.J. & Morgan Estapé, A. (2017) The fishes of Alligator Reef and environs in the<br> Florida Keys: a half-century update. Journal of the Ocean Science Foundation, 27, 74–117.</p>
Fig. 2 in Thermal ecology of the Pygmy Alligator Lizard, Gerrhonotus parvus Knight and Scudday, 1985 (Squamata: Anguidae), in Nuevo Léon, Mexico
Fig. 2. Seasonal pattern of daily activity of Gerrhonotus parvus in Sierra Madre Oriental.
Fig. 3 in Thermal ecology of the Pygmy Alligator Lizard, Gerrhonotus parvus Knight and Scudday, 1985 (Squamata: Anguidae), in Nuevo Léon, Mexico
Fig. 3. Proportions of microhabitats used by Gerrhonotus parvus.
Fig. 1 in Gastric nematode diversity between estuarine and inland freshwater populations of the American alligator (Alligator mississippiensis, daudin 1802), and the prediction of intermediate hosts
Fig. 1. Collecting localities of alligators in Georgia and Florida.
Fig. 4 in Gastric nematode diversity between estuarine and inland freshwater populations of the American alligator (Alligator mississippiensis, daudin 1802), and the prediction of intermediate hosts
Fig. 4. Prey stomach contents categorized to taxonomic class levels.
Body size measurements and stomach contents of Alligator mississippiensis on Jekyll Island, Georgia
<p>Human-driven land use change can fundamentally alter ecological communities, especially the diversity and abundance of large-bodied predators. Yet despite the important roles large-bodied predators play in structuring communities through feeding, there have been only a few investigations of how the feeding patterns of large-bodied predators change in human-dominated landscapes. One group of large-bodied predators that has been largely overlooked in the context of land use change is the crocodilians. To help fill these gaps we studied the feeding patterns of juvenile American alligators (<em>Alligator mississippiensis</em>) on neighboring barrier islands on the southeast coast of Georgia, USA. Jekyll Island has multiple golf courses and substantial amounts of human activity, while Sapelo Island does not have any golf courses and a much smaller amount of human activity. We found that juvenile alligator populations on both islands ate the same types of prey but in vastly different quantities. Sapelo Island alligators primarily consumed crustaceans while alligators that lived on Jekyll Island's golf courses ate mostly insects/arachnids. Furthermore, the Jekyll Island alligators exhibited a much more generalist feeding pattern (individuals mostly ate the same types of prey in the same quantities) than the more specialized Sapelo Island alligators (diets were more varied across individuals). The most likely explanation for our results is that alligators living on golf courses have different habitat use patterns and have access to different prey communities relative to alligators in more natural habitats. Thus, land use change can strongly alter the feeding patterns of large-bodied predators and, as a result, may affect their body condition, exposure to human-made chemicals, and role within ecological communities.</p>
Transcriptional networks underlying a primary ovarian insufficiency disorder in alligators naturally exposed to EDCs: Transformed read counts and supplementary materials
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Sexual dimorphism of the gut microbiota in the Chinese alligator and its convergence in the wild environment
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Data from: Does the unusual phenomenon of sustained force circumvent the speed-endurance trade off in the jaw muscle of the southern alligator lizard (Elgaria multicarinata)?
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SNP data for Northern Alligator Lizards
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Body size measurements and stomach contents of Alligator mississippiensis on Jekyll Island, Georgia
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Population structure and genetic differentiation in extant alligator snapping turtles (genus Macrochelys) with implications for taxonomy and conservation
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Georgia Coastal Ecosystems site, station Georgia Coastal Ecosystem LTER Study Site 8, Alligator Creek, GA, study of plant biomass of Juncus roemerianus in units of gramsPerSquareMeter on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from Georgia Coastal Ecosystems (GCE) contains plant biomass of Juncus roemerianus measurements in gramsPerSquareMeter units and were aggregated to a yearly timescale.
Georgia Coastal Ecosystems site, station Georgia Coastal Ecosystem LTER Study Site 8, Alligator Creek, GA, study of plant biomass of Panicum in units of gramsPerSquareMeter on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from Georgia Coastal Ecosystems (GCE) contains plant biomass of Panicum measurements in gramsPerSquareMeter units and were aggregated to a yearly timescale.
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