Project Grant 2337532
- This National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) Project Grant award of $240,000 provides funding for a 3-year postdoctoral research fellowship to study the dynamics of the marsh-forest ecotone in the Chesapeake Bay region. The key objectives are to: Employ remote sensing techniques to track the migration rates of the leading and lagging edges of the marsh-forest ecotone. Use vegetation monitoring to explore how plant communities respond to varying migration...
- This National Science Foundation Project Grant award of $240,000 provides funding from August 1, 2023 through July 31, 2026 to support research investigating the genomics of local adaptation of larval settlement in the marine invertebrate Ectopleura crocea. The award is made under the Biological Sciences program (CFDA 47.074) to further the program's goals of advancing biological sciences knowledge and understanding major challenges. The fellow will conduct laboratory and field experiments...
- This CAREER award from the National Science Foundation's Division of Ocean Sciences under the Geosciences program (CFDA 47.050) provides $913,292 in funding to the University of Washington from September 1, 2025 through August 31, 2030. The grant supports fundamental research investigating submesoscale density fronts—narrow oceanographic features measuring hundreds of meters to tens of kilometers in width—that significantly influence heat exchange, energy transfers, and biological processes in...
- This National Science Foundation project grant of $298,357 supports research investigating coral demographic processes and their interaction with climate change and local stressors to influence coral recovery trajectories. Funded under the Geosciences program (CFDA 47.050), the award will support analysis of time series coral size-frequency data across four Pacific regions to assess demographic rates following bleaching events and evaluate their importance in driving recovery dynamics....
- This two-year, $638,646 National Science Foundation project grant aims to uncover the drivers of marine metapopulation synchrony and resilience under climate change through the Geosciences program (CFDA 47.050). Led by the University of Kansas Center for Research, Inc., the grantee will combine emerging quantitative methods with large-scale fisheries and environmental monitoring data to identify biological and environmental features preventing large-scale declines in species abundance currently....
- This National Science Foundation (NSF) Project Grant award under the Geosciences program (CFDA 47.050) will quantify the temporal patterns and drivers of fish-mediated ecosystem functions, such as biomass production, nutrient cycling, and piscivory, across six European Large Marine Ecosystems over a 40-year period. The $393,925 award to the University of North Carolina at Wilmington will integrate fish monitoring data, bioenergetics modeling, and statistical inference to map the spatiotemporal...
- This $716,649 National Science Foundation Project Grant through the Geosciences program (CFDA 47.050) will fund research at the University of Rhode Island to quantify changes in ocean acidification (OA) in Narragansett Bay, Rhode Island resulting from reductions in nutrient inputs. Over the past few decades, management agencies have reduced nutrient loads to coastal waters by over one-third to improve water quality, which could lower OA levels even though that was not the initial goal....
- The National Science Foundation (NSF) awarded a $305,576.00 Project Grant to the Woods Hole Oceanographic Institution to study the influence of mesoscale eddies on deep-sea dynamics and larval connectivity along mid-ocean ridges. This research is funded through NSF's Geosciences program (CFDA 47.050), which supports basic research to expand fundamental knowledge and understanding of the integrated Earth system. The project will utilize a multi-scale numerical ocean model in comparison with...
- This $255,423 National Science Foundation project grant under the Biological Sciences program (CFDA 47.074) will support research to incorporate secondary foundation species into coastal restoration efforts conducted by Duke University from May 2023 through April 2026. The research aims to test approaches that restore secondary foundation species to increase growth of primary foundation species, biodiversity, and ecosystem functions like climate resistance at restored sites. Key products include...
- This five-year, $3 million Project Grant from the National Science Foundation's Biological Sciences program (CFDA 47.074) will fund research at the University of Colorado Boulder, Cornell University, Florida Atlantic University, and the University of New Mexico to develop methods for understanding how the functioning and dynamics of complex ecological interaction networks emerge and respond to environmental change. The researchers will measure multivalent interactions among fish and other...
CAREER: SOURCE-SINK DYNAMICS IN A RESTORED OYSTER METAPOPULATION -POPULATIONS OF ORGANISMS IN DIFFERENT LOCATIONS ARE CONNECTED BY THE DISPERSAL OF OFFSPRING, SUCH AS SEEDS OR LARVAE. DISPERSAL FROM POPULATIONS IN FAVORABLE ENVIRONMENTS ('SOURCES') TO POPULATIONS IN POOR ENVIRONMENTS ('SINKS') CAN ALLOW THE LATTER TO PERSIST WHERE THEY WOULD OTHERWISE FAIL TO SURVIVE. KNOWLEDGE ABOUT SOURCE-SINK DYNAMICS IS IMPORTANT TO CONSERVATION AND NATURAL RESOURCE MANAGEMENT. FOR INSTANCE, PROTECTING IMPORTANT SOURCE HABITATS OR RESTORING HABITATS IN LOCATIONS THAT ENHANCE CONNECTIVITY WITH SINKS CAN IMPROVE REGIONAL POPULATION STABILITY AND RESILIENCE. ENVIRONMENTAL VARIABILITY AND CLIMATE CHANGE MAY ALTER THE DYNAMICS OF SOURCE-SINK POPULATIONS, BUT THE EFFECTS OF THESE CHANGES ARE NOT WELL RESOLVED, CHALLENGING EFFECTIVE DECISION-MAKING FOR HABITAT CONSERVATION AND RESTORATION. THIS CAREER PROJECT IS USING LONG-TERM DATA, MULTIYEAR FIELD EXPERIMENTS, BIOPHYSICAL DISPERSAL SIMULATIONS, AND MATHEMATICAL POPULATION MODELS TO ADDRESS SEVERAL GAPS IN THE UNDERSTANDING OF SOURCE-SINK DYNAMICS IN OYSTERS. BY PARTNERING WITH RESTORATION PRACTITIONERS, THE INVESTIGATOR IS GENERATING KNOWLEDGE TO OPTIMIZE OYSTER REEF MANAGEMENT IN VIRGINIA COASTAL BAYS, WHERE THE MARINE ENVIRONMENT IS RAPIDLY CHANGING. RESEARCH METHODS, DATA, AND SPECIMENS ARE BEING USED TO DEVELOP A 5TH-GRADE LESSON PLAN ON OYSTER RESTORATION ECOLOGY AND A 7TH-GRADE FIELD-TRIP MODULE ON OYSTER BIOLOGY FOR PUBLIC-SCHOOL STUDENTS IN A RURAL, HIGH-POVERTY AREA OF COASTAL VIRGINIA. RESEARCH IS ALSO INCORPORATED INTO AN UNDERGRADUATE RESTORATION ECOLOGY CLASS AND A COURSE-BASED RESEARCH EXPERIENCE FOR COMMUNITY COLLEGE STUDENTS. RESEARCH AND TEACHING IN THIS CAREER AWARD ARE INTEGRATED SUCH THAT STUDENTS GENERATE DATA USED TO ADVANCE THE SCIENCE, STUDENTS RECEIVE HANDS-ON TRAINING IN MARINE ECOLOGY, AND SCIENTIFIC SAMPLES AND FINDINGS ARE USED TO DEVELOP CLASSROOM LESSON PLANS. TEMPORAL VARIATION IN THE DEMOGRAPHY AND CONNECTIVITY OF SOURCE-SINK POPULATIONS HAS RARELY BEEN EXPLORED EMPIRICALLY BEYOND STRAIGHTFORWARD LAB STUDIES. IN THIS CAREER PROJECT, THE INVESTIGATOR IS RESOLVING THE PATTERNS, CAUSES, AND CONSEQUENCES OF TEMPORAL DYNAMICS IN OYSTER (CRASSOSTREA VIRGINICA) SOURCE-SINK STRUCTURE AND INFORMING OYSTER RESTORATION IN COASTAL VIRGINIA. THE INVESTIGATOR IS TESTING THE HYPOTHESIS THAT TEMPORAL HETEROGENEITY -- VARIATION, AUTOCORRELATION, AND TRENDS OVER TIME -- IN REPRODUCTIVE OUTPUT, REPRODUCTIVE TIMING, AND OCEANOGRAPHIC FORCING ALTERS DEMOGRAPHIC CONNECTIVITY THROUGH DEVELOPMENT OF A BIOPHYSICAL MODEL OF OYSTER LARVAL DISPERSAL THAT IS PARAMETERIZED USING TWO DECADES OF ENVIRONMENTAL AND POPULATION TIME SERIES DATA. FIVE YEARS OF FIELD OBSERVATIONS AND EXPERIMENTS ARE DETERMINING THE DRIVERS OF SPATIAL AND TEMPORAL HETEROGENEITY IN THE DEMOGRAPHIC RATES THAT GOVERN SOURCE-SINK STRUCTURE -- OYSTER RECRUITMENT, SURVIVAL, GROWTH, AND FECUNDITY. A BAYESIAN STATE-SPACE INTEGRAL PROJECTION MODEL PARAMETERIZED WITH DISPERSAL ESTIMATES AND EMPIRICAL DATA IS BEING USED TO TEST THE HYPOTHESIS THAT TEMPORAL HETEROGENEITY IN DISPERSAL AND DEMOGRAPHY DETERMINE REGIONAL OYSTER POPULATION DYNAMICS. THE INVESTIGATOR IS COMBINING MODELS AND DATA WITH FEEDBACK FROM RESTORATION PRACTITIONERS TO DEVELOP SPATIAL PLANNING SCENARIOS THAT IMPROVE OYSTER POPULATION SIZE AND STABILITY UNDER FUTURE CLIMATE CONDITIONS. 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.- SUBAWARDS ARE PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $246.4k | 8/27/25 | ||
| Not listed | $1.0m | 7/9/24 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
GR105895SUB00001443S | Oregon State University | Project Grant 2337532 | $12.6k | 8/8/25 |