{"dp_type": "Project", "free_text": "BINOCULAR"}
[{"awards": "2535120 Ballard, Grant; 2535122 Bowie, Rauri; 2535124 Varsani, Arvind; 2535121 Cimino, Megan", "bounds_geometry": "POLYGON((-180 -60,-163 -60,-146 -60,-129 -60,-112 -60,-95 -60,-78 -60,-61 -60,-44 -60,-27 -60,-10 -60,-10 -61.8,-10 -63.6,-10 -65.4,-10 -67.2,-10 -69,-10 -70.8,-10 -72.6,-10 -74.4,-10 -76.2,-10 -78,-27 -78,-44 -78,-61 -78,-78 -78,-95 -78,-112 -78,-129 -78,-146 -78,-163 -78,180 -78,175.5 -78,171 -78,166.5 -78,162 -78,157.5 -78,153 -78,148.5 -78,144 -78,139.5 -78,135 -78,135 -76.2,135 -74.4,135 -72.6,135 -70.8,135 -69,135 -67.2,135 -65.4,135 -63.6,135 -61.8,135 -60,139.5 -60,144 -60,148.5 -60,153 -60,157.5 -60,162 -60,166.5 -60,171 -60,175.5 -60,-180 -60))", "dataset_titles": null, "datasets": null, "date_created": "Wed, 09 Sep 2026 00:00:00 GMT", "description": "Non-technical abstract \r\n\r\nAd\u00e9lie penguins are an early indicator of change in Antarctica. One study population in the Ross Sea is stable or growing, while another near the Antarctic Peninsula is declining quickly, even though both face a warming climate. This project asks a question that matters for conservation and for our broader understanding of how species adapt to environmental change: what allows some penguin populations to cope while others do not? Researchers will follow penguins from the two regions through the parts of their lives that are hardest to observe. Small tracking tags placed on young penguins just before they leave their colonies will reveal where they travel on their first trips to sea and how many survive. Recording devices retrieved from adult penguins will show where and when they molt their feathers and how deep and how often they dive for food through the winter. Blood samples will map how penguins from the two regions are related ancestrally and whether the populations mix regularly. Together these measurements show how each population feeds, travels, and survives, and whether differences in behavior help explain why the two are heading in opposite directions, informing how Antarctic wildlife is understood and protected as the region changes. The tracking and recording devices collect temperature and other ocean data from a remote region during the season when it is most difficult to study, adding to the information available for understanding and managing the Southern Ocean. The project also trains the next generation of polar scientists, supporting a doctoral student and a field apprentice, and it continues long-term monitoring that reaches back decades. Education and public outreach will include \"Live From the Penguins\" video calls and updates on penguin colony and breeding behavior through the PenguinScience.com website and social media.\r\n\r\n\r\nTechnical abstract\r\n\r\nAd\u00e9lie penguins are a key Antarctic mesopredator and a useful model for studying the limits of biological adaptation under rapid environmental change. This two-year project unites two of the longest-running United States Ad\u00e9lie penguin research programs (a stable-to-increasing population in the Ross Sea and a declining population near Palmer Station on the western Antarctic Peninsula) as a natural experiment in adaptive capacity. The work centers on three traits measurable from one intensive field season combined with existing biologging and multi-decadal monitoring data. Satellite-linked transmitters deployed on fledglings before colony departure in both regions will quantify juvenile dispersal routes, habitat use, and at-sea survival. Archival geolocating dive recorders recovered from adults will characterize molt timing and location (sea ice versus land). The same instruments yield year-long dive, light, and temperature profiles, allowing foraging performance and environmental thresholds to be compared across contrasting breeding and wintering regions. A genetic component addresses population structure: whether mitochondrial lineages sort by colony, how genetically contained the Ross Sea population is, and how prevalent the Ross Sea lineage is in the under-sampled Palmer region. Together these provide a framework against which trait differences can be interpreted. A second field season supports instrument retrieval and continued long-term monitoring. The project trains one doctoral student and one field apprentice and extends datasets that reach back decades in both regions.\r\n\r\nThis award reflects NSF\u0027\u0027s statutory mission and has been deemed worthy of support through evaluation using the Foundation\u0027\u0027s intellectual merit and broader impacts review criteria.", "east": 135.0, "geometry": "POINT(-117.5 -69)", "instruments": "EARTH REMOTE SENSING INSTRUMENTS \u003e PASSIVE REMOTE SENSING \u003e POSITIONING/NAVIGATION \u003e RADIO; EARTH REMOTE SENSING INSTRUMENTS \u003e PASSIVE REMOTE SENSING \u003e POSITIONING/NAVIGATION \u003e GPS \u003e GPS; EARTH REMOTE SENSING INSTRUMENTS \u003e PASSIVE REMOTE SENSING \u003e POSITIONING/NAVIGATION \u003e GPS \u003e GPS RECEIVERS; IN SITU/LABORATORY INSTRUMENTS \u003e RECORDERS/LOGGERS; IN SITU/LABORATORY INSTRUMENTS \u003e RECORDERS/LOGGERS \u003e GLS; IN SITU/LABORATORY INSTRUMENTS \u003e PHOTON/OPTICAL DETECTORS \u003e BINOCULAR; IN SITU/LABORATORY INSTRUMENTS \u003e PHOTON/OPTICAL DETECTORS \u003e CAMERAS; IN SITU/LABORATORY INSTRUMENTS \u003e PHOTON/OPTICAL DETECTORS \u003e VISUAL OBSERVATIONS", "is_usap_dc": true, "keywords": "Survival Rates; Population Dynamics; FIELD SURVEYS; FIELD INVESTIGATION; UNCREWED AERIAL VEHICLES; Evolutionary Adaptation; Post-Breeding Periods; Antarctica; PELAGIC; SPECIES/POPULATION INTERACTIONS; Migratory Rates/Routes; RADIO TRANSMITTERS; UAV; Use/Feeding Habitats", "locations": "Antarctica", "north": -60.0, "nsf_funding_programs": "Antarctic Organisms and Ecosystems; Antarctic Organisms and Ecosystems; Antarctic Organisms and Ecosystems; Antarctic Organisms and Ecosystems", "paleo_time": null, "persons": "Ballard, Grant; Schmidt, Annie; Lescroel, Amelie; Cimino, Megan; Varsani, Arvind", "platforms": "AIR-BASED PLATFORMS \u003e UNCREWED AERIAL VEHICLES; AIR-BASED PLATFORMS \u003e UNCREWED AERIAL VEHICLES \u003e UAV; LAND-BASED PLATFORMS \u003e FIELD SITES \u003e FIELD INVESTIGATION; LAND-BASED PLATFORMS \u003e FIELD SITES \u003e FIELD SURVEYS; LAND-BASED PLATFORMS \u003e FIELD SITES \u003e RADIO TRANSMITTERS", "repositories": null, "science_programs": null, "south": -78.0, "title": "Collaborative Research: Beyond the Black-and-White: Uncovering Hidden Keys to Success in Adelie Penguins", "uid": "p0010584", "west": -10.0}, {"awards": "0732450 Van Dover, Cindy; 0732917 McCormick, Michael; 0732983 Vernet, Maria; 0732711 Smith, Craig", "bounds_geometry": "POLYGON((-60.5 -63.1,-59.99 -63.1,-59.48 -63.1,-58.97 -63.1,-58.46 -63.1,-57.95 -63.1,-57.44 -63.1,-56.93 -63.1,-56.42 -63.1,-55.91 -63.1,-55.4 -63.1,-55.4 -63.29,-55.4 -63.48,-55.4 -63.67,-55.4 -63.86,-55.4 -64.05,-55.4 -64.24,-55.4 -64.43,-55.4 -64.62,-55.4 -64.81,-55.4 -65,-55.91 -65,-56.42 -65,-56.93 -65,-57.44 -65,-57.95 -65,-58.46 -65,-58.97 -65,-59.48 -65,-59.99 -65,-60.5 -65,-60.5 -64.81,-60.5 -64.62,-60.5 -64.43,-60.5 -64.24,-60.5 -64.05,-60.5 -63.86,-60.5 -63.67,-60.5 -63.48,-60.5 -63.29,-60.5 -63.1))", "dataset_titles": "Abrupt Environmental Change in the Larsen Ice Shelf System (LARISSA) - Marine Ecosystems; LARISSA: Impact of ice-shelf loss on geochemical profiles and microbial community composition in marine sediments of the Larsen A embayment, Antarctic Peninsula; NBP1001 cruise data; NBP1203 cruise data; Quantitative Foraminiferal Assemblage Data from Barilari Bay, Antarctic Peninsula acquired during expedition NBP1001; Species Abundance Data from the Larsen Ice Shelf Ice acquired during R/V Nathaniel B. Palmer expedition NBP1203", "datasets": [{"dataset_uid": "000142", "doi": "", "keywords": null, "people": null, "repository": "R2R", "science_program": null, "title": "NBP1001 cruise data", "url": "https://www.rvdata.us/search/cruise/NBP1001"}, {"dataset_uid": "000143", "doi": "", "keywords": null, "people": null, "repository": "R2R", "science_program": null, "title": "NBP1203 cruise data", "url": "https://www.rvdata.us/search/cruise/NBP1203"}, {"dataset_uid": "600073", "doi": "10.15784/600073", "keywords": "Antarctica; Antarctic Peninsula; Araon1304; Biota; LARISSA; Larsen B Ice Shelf; NBP1001; NBP1203; Oceans; Physical Oceanography; Southern Ocean; Weddell Sea", "people": "Vernet, Maria", "repository": "USAP-DC", "science_program": "LARISSA", "title": "Abrupt Environmental Change in the Larsen Ice Shelf System (LARISSA) - Marine Ecosystems", "url": "https://www.usap-dc.org/view/dataset/600073"}, {"dataset_uid": "601304", "doi": null, "keywords": "Antarctica; Antarctic Peninsula; Biota; Box Corer; LARISSA; Larsen Ice Shelf; Macrofauna; Megafauna; NBP1203; Oceans; R/v Nathaniel B. Palmer; Seafloor Sampling; Species Abundance", "people": "Smith, Craig", "repository": "USAP-DC", "science_program": "LARISSA", "title": "Species Abundance Data from the Larsen Ice Shelf Ice acquired during R/V Nathaniel B. Palmer expedition NBP1203", "url": "https://www.usap-dc.org/view/dataset/601304"}, {"dataset_uid": "602000", "doi": "10.15784/602000", "keywords": "Antarctica; Antarctic Peninsula; Cryosphere; Foraminifera; Holocene; NBP1001; Paleoclimate; Sediment Corer; Sedimentology", "people": "Ishman, Scott", "repository": "USAP-DC", "science_program": "LARISSA", "title": "Quantitative Foraminiferal Assemblage Data from Barilari Bay, Antarctic Peninsula acquired during expedition NBP1001", "url": "https://www.usap-dc.org/view/dataset/602000"}, {"dataset_uid": "601073", "doi": "10.15784/601073", "keywords": "Antarctica; Antarctic Peninsula; Chemistry:ice; Chemistry:Ice; Geochemistry; Glaciers/ice Sheet; Glaciers/Ice Sheet; Glaciology; Ice Core Records; LARISSA; Microbiology", "people": "McCormick, Michael", "repository": "USAP-DC", "science_program": null, "title": "LARISSA: Impact of ice-shelf loss on geochemical profiles and microbial community composition in marine sediments of the Larsen A embayment, Antarctic Peninsula", "url": "https://www.usap-dc.org/view/dataset/601073"}], "date_created": "Fri, 09 Oct 2020 00:00:00 GMT", "description": "A profound transformation in ecosystem structure and function is occurring in coastal waters of the western Weddell Sea, with the collapse of the Larsen B ice shelf. This transformation appears to be yielding a redistribution of energy flow between chemoautotrophic and photosynthetic production, and to be causing the rapid demise of the extraordinary seep ecosystem discovered beneath the ice shelf. This event provides an ideal opportunity to examine fundamental aspects of ecosystem transition associated with climate change. We propose to test the following hypotheses to elucidate the transformations occurring in marine ecosystems as a consequence of the Larsen B collapse: (1) The biogeographic isolation and sub-ice shelf setting of the Larsen B seep has led to novel habitat characteristics, chemoautotrophically dependent taxa and functional adaptations. (2) Benthic communities beneath the former Larsen B ice shelf are fundamentally different from assemblages at similar depths in the Weddell sea-ice zone, and resemble oligotrophic deep-sea communities. Larsen B assemblages are undergoing rapid change. (3) The previously dark, oligotrophic waters of the Larsen B embayment now support a thriving phototrophic community, with production rates and phytoplankton composition similar to other productive areas of the Weddell Sea. To document rapid changes occurring in the Larsen B ecosystem, we will use a remotely operated vehicle, shipboard samplers, and moored sediment traps. We will characterize microbial, macrofaunal and megafaunal components of the seep community; evaluate patterns of surface productivity, export flux, and benthic faunal composition in areas previously covered by the ice shelf, and compare these areas to the open sea-ice zone. These changes will be placed within the geological, glaciological and climatological context that led to ice-shelf retreat, through companion research projects funded in concert with this effort. Together these projects will help predict the likely consequences of ice-shelf collapse to marine ecosystems in other regions of Antarctica vulnerable to climate change. The research features international collaborators from Argentina, Belgium, Canada, Germany, Spain and the United Kingdom. The broader impacts include participation of a science writer; broadcast of science segments by members of the Jim Lehrer News Hour (Public Broadcasting System); material for summer courses in environmental change; mentoring of graduate students and postdoctoral fellows; and showcasing scientific activities and findings to students and public through podcasts.", "east": -55.4, "geometry": "POINT(-57.95 -64.05)", "instruments": "NOT APPLICABLE \u003e NOT APPLICABLE \u003e NOT APPLICABLE", "is_usap_dc": true, "keywords": "NBP1203; USAP-DC; Amd/Us; LARISSA; Larsen Ice Shelf; Species Abundance Data; R/V NBP; Antarctic Peninsula; NBP1001; USA/NSF; AMD; Antarctica; MARINE ECOSYSTEMS", "locations": "Antarctica; Antarctic Peninsula; Larsen Ice Shelf", "north": -63.1, "nsf_funding_programs": "Antarctic Integrated System Science; Antarctic Integrated System Science; Antarctic Organisms and Ecosystems; Antarctic Integrated System Science; Antarctic Organisms and Ecosystems; Antarctic Integrated System Science", "paleo_time": null, "persons": "McCormick, Michael; Vernet, Maria; Van Dover, Cindy; Smith, Craig", "platforms": "WATER-BASED PLATFORMS \u003e VESSELS \u003e SURFACE \u003e R/V NBP", "repo": "R2R", "repositories": "R2R; USAP-DC", "science_programs": "LARISSA", "south": -65.0, "title": "Collaborative Research in IPY: Abrupt Environmental Change in the Larsen Ice Shelf System, a Multidisciplinary Approach - Marine Ecosystems.", "uid": "p0010135", "west": -60.5}]
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| Project Title/Abstract/Map | NSF Award(s) | Date Created | PIs / Scientists | Dataset Links and Repositories | Abstract | Bounds Geometry | Geometry | Selected | Visible | |
|---|---|---|---|---|---|---|---|---|---|---|
|
Collaborative Research: Beyond the Black-and-White: Uncovering Hidden Keys to Success in Adelie Penguins
|
2535120 2535122 2535124 2535121 |
2026-09-09 | Ballard, Grant; Schmidt, Annie; Lescroel, Amelie; Cimino, Megan; Varsani, Arvind | No dataset link provided | Non-technical abstract Adélie penguins are an early indicator of change in Antarctica. One study population in the Ross Sea is stable or growing, while another near the Antarctic Peninsula is declining quickly, even though both face a warming climate. This project asks a question that matters for conservation and for our broader understanding of how species adapt to environmental change: what allows some penguin populations to cope while others do not? Researchers will follow penguins from the two regions through the parts of their lives that are hardest to observe. Small tracking tags placed on young penguins just before they leave their colonies will reveal where they travel on their first trips to sea and how many survive. Recording devices retrieved from adult penguins will show where and when they molt their feathers and how deep and how often they dive for food through the winter. Blood samples will map how penguins from the two regions are related ancestrally and whether the populations mix regularly. Together these measurements show how each population feeds, travels, and survives, and whether differences in behavior help explain why the two are heading in opposite directions, informing how Antarctic wildlife is understood and protected as the region changes. The tracking and recording devices collect temperature and other ocean data from a remote region during the season when it is most difficult to study, adding to the information available for understanding and managing the Southern Ocean. The project also trains the next generation of polar scientists, supporting a doctoral student and a field apprentice, and it continues long-term monitoring that reaches back decades. Education and public outreach will include "Live From the Penguins" video calls and updates on penguin colony and breeding behavior through the PenguinScience.com website and social media. Technical abstract Adélie penguins are a key Antarctic mesopredator and a useful model for studying the limits of biological adaptation under rapid environmental change. This two-year project unites two of the longest-running United States Adélie penguin research programs (a stable-to-increasing population in the Ross Sea and a declining population near Palmer Station on the western Antarctic Peninsula) as a natural experiment in adaptive capacity. The work centers on three traits measurable from one intensive field season combined with existing biologging and multi-decadal monitoring data. Satellite-linked transmitters deployed on fledglings before colony departure in both regions will quantify juvenile dispersal routes, habitat use, and at-sea survival. Archival geolocating dive recorders recovered from adults will characterize molt timing and location (sea ice versus land). The same instruments yield year-long dive, light, and temperature profiles, allowing foraging performance and environmental thresholds to be compared across contrasting breeding and wintering regions. A genetic component addresses population structure: whether mitochondrial lineages sort by colony, how genetically contained the Ross Sea population is, and how prevalent the Ross Sea lineage is in the under-sampled Palmer region. Together these provide a framework against which trait differences can be interpreted. A second field season supports instrument retrieval and continued long-term monitoring. The project trains one doctoral student and one field apprentice and extends datasets that reach back decades in both regions. This award reflects NSF''s statutory mission and has been deemed worthy of support through evaluation using the Foundation''s intellectual merit and broader impacts review criteria. | POLYGON((-180 -60,-163 -60,-146 -60,-129 -60,-112 -60,-95 -60,-78 -60,-61 -60,-44 -60,-27 -60,-10 -60,-10 -61.8,-10 -63.6,-10 -65.4,-10 -67.2,-10 -69,-10 -70.8,-10 -72.6,-10 -74.4,-10 -76.2,-10 -78,-27 -78,-44 -78,-61 -78,-78 -78,-95 -78,-112 -78,-129 -78,-146 -78,-163 -78,180 -78,175.5 -78,171 -78,166.5 -78,162 -78,157.5 -78,153 -78,148.5 -78,144 -78,139.5 -78,135 -78,135 -76.2,135 -74.4,135 -72.6,135 -70.8,135 -69,135 -67.2,135 -65.4,135 -63.6,135 -61.8,135 -60,139.5 -60,144 -60,148.5 -60,153 -60,157.5 -60,162 -60,166.5 -60,171 -60,175.5 -60,-180 -60)) | POINT(-117.5 -69) | false | false | |
|
Collaborative Research in IPY: Abrupt Environmental Change in the Larsen Ice Shelf System, a Multidisciplinary Approach - Marine Ecosystems.
|
0732450 0732917 0732983 0732711 |
2020-10-09 | McCormick, Michael; Vernet, Maria; Van Dover, Cindy; Smith, Craig | A profound transformation in ecosystem structure and function is occurring in coastal waters of the western Weddell Sea, with the collapse of the Larsen B ice shelf. This transformation appears to be yielding a redistribution of energy flow between chemoautotrophic and photosynthetic production, and to be causing the rapid demise of the extraordinary seep ecosystem discovered beneath the ice shelf. This event provides an ideal opportunity to examine fundamental aspects of ecosystem transition associated with climate change. We propose to test the following hypotheses to elucidate the transformations occurring in marine ecosystems as a consequence of the Larsen B collapse: (1) The biogeographic isolation and sub-ice shelf setting of the Larsen B seep has led to novel habitat characteristics, chemoautotrophically dependent taxa and functional adaptations. (2) Benthic communities beneath the former Larsen B ice shelf are fundamentally different from assemblages at similar depths in the Weddell sea-ice zone, and resemble oligotrophic deep-sea communities. Larsen B assemblages are undergoing rapid change. (3) The previously dark, oligotrophic waters of the Larsen B embayment now support a thriving phototrophic community, with production rates and phytoplankton composition similar to other productive areas of the Weddell Sea. To document rapid changes occurring in the Larsen B ecosystem, we will use a remotely operated vehicle, shipboard samplers, and moored sediment traps. We will characterize microbial, macrofaunal and megafaunal components of the seep community; evaluate patterns of surface productivity, export flux, and benthic faunal composition in areas previously covered by the ice shelf, and compare these areas to the open sea-ice zone. These changes will be placed within the geological, glaciological and climatological context that led to ice-shelf retreat, through companion research projects funded in concert with this effort. Together these projects will help predict the likely consequences of ice-shelf collapse to marine ecosystems in other regions of Antarctica vulnerable to climate change. The research features international collaborators from Argentina, Belgium, Canada, Germany, Spain and the United Kingdom. The broader impacts include participation of a science writer; broadcast of science segments by members of the Jim Lehrer News Hour (Public Broadcasting System); material for summer courses in environmental change; mentoring of graduate students and postdoctoral fellows; and showcasing scientific activities and findings to students and public through podcasts. | POLYGON((-60.5 -63.1,-59.99 -63.1,-59.48 -63.1,-58.97 -63.1,-58.46 -63.1,-57.95 -63.1,-57.44 -63.1,-56.93 -63.1,-56.42 -63.1,-55.91 -63.1,-55.4 -63.1,-55.4 -63.29,-55.4 -63.48,-55.4 -63.67,-55.4 -63.86,-55.4 -64.05,-55.4 -64.24,-55.4 -64.43,-55.4 -64.62,-55.4 -64.81,-55.4 -65,-55.91 -65,-56.42 -65,-56.93 -65,-57.44 -65,-57.95 -65,-58.46 -65,-58.97 -65,-59.48 -65,-59.99 -65,-60.5 -65,-60.5 -64.81,-60.5 -64.62,-60.5 -64.43,-60.5 -64.24,-60.5 -64.05,-60.5 -63.86,-60.5 -63.67,-60.5 -63.48,-60.5 -63.29,-60.5 -63.1)) | POINT(-57.95 -64.05) | false | false |

