Project Grant 2514370
- This National Science Foundation Project Grant of $597,248 supports research into applying novel approaches to link microbial growth efficiency, function, and energy transfer in the ocean. Funded under the Geosciences program (CFDA 47.050), the award will further understanding of the integrated Earth system through basic research in ocean sciences. Specifically, the University of Miami Rosenstiel School of Marine and Atmospheric Science will conduct research from September 2023 to August 2026 to...
- The National Science Foundation (NSF) Division of Environmental Biology awarded a $100,000 Project Grant under the Biological Sciences program (CFDA 47.074) to the Rochester Institute of Technology (RIT) for the "COLLABORATIVE RESEARCH: IDEAS LAB: SMARTER MICROBIAL OBSERVATORIES FOR REALTIME EXPERIMENTS (SMORES)" project. This three-year project aims to develop a novel seafloor sensor/sampler array and intelligent control systems to better understand how tidal pumping and subsurface...
- This Project Grant award from the National Science Foundation (NSF) Integrative Activities program (CFDA 47.083) provides $2,705,882.00 to Bigelow Laboratory for Ocean Sciences to develop and deploy an integrated workflow system for environmental single-cell genomics (ESCG) research. The new instrumentation includes a fluorescence-activated cell sorter, acoustic liquid handlers, a robotic plate reader, and plate sealers, which will enable the laboratory to sequence the genomes of individual...
- This three-year, $536,104 National Science Foundation Project Grant under the Geosciences program (CFDA 47.050) supports research investigating the relationship between cell size and nutrient acquisition modes in mixotrophic protists. The awardee, Bigelow Laboratory for Ocean Sciences, will conduct incubation experiments on eight mixotrophic species to measure the proportion of carbon obtained from photosynthesis and ingestion across environmental conditions. Using isotopic labeling methods, the...
- This National Science Foundation Project Grant of $539,985 supports research into the stoichiometric trait distribution of the marine microbiome. Funded through the Geosciences program under the Division of Ocean Sciences, the award will quantify the relationship between environmental conditions and the carbon, nitrogen, and phosphorus ratios in marine microbes. Over three years, the researchers from Colorado State University will characterize the biomass elemental composition of 50 marine...
- This National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) Project Grant award of $352,969 to Hofstra University will investigate the relationships between microbial plankton communities and coastal hypoxia (low dissolved oxygen) in Long Island Sound, New York. The project aims to quantify changes in the structure and functioning of bacterial, archaeal, and microbial eukaryotic communities across periods of hypoxia and normoxia. The research will combine field work,...
- This Project Grant award from the National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) provides $900,000 to Northeastern University to develop a novel bioreactor system for studying microbial communities. The project, titled "Synthetic Ecology of Mixed Aerobic/Anaerobic Microbial Consortia", aims to create a low-cost, scalable bioreactor platform that can precisely control the atmospheric gas composition across parallel microbial cultures. This system will enable...
- This National Science Foundation (NSF) Geosciences Program (CFDA 47.050) Project Grant award of $339,172 will fund research on how the microbiome of the copepod Acartia tonsa, a critical component of marine food webs, responds to thermal stress caused by climate change. The research, conducted by the University of Vermont & State Agricultural College, has three main objectives: 1) determine the microbial composition of A. tonsa's southernmost North American population and how it varies under...
- This Project Grant award from the National Science Foundation's Biological Sciences (CFDA 47.074) program provides $141,346 to Rensselaer Polytechnic Institute (RPI) from January 15, 2025 to December 31, 2029. The project seeks to understand the impacts of increases in dissolved organic matter, known as "lake browning", on the trophic status and dissolved oxygen levels in oligotrophic lakes. Using a combination of long-term data, experiments, and ecosystem modeling, the research aims...
- This National Science Foundation (NSF) Project Grant under the Biological Sciences program (CFDA 47.074) was awarded to Bigelow Laboratory for Ocean Sciences for $396,577 to conduct research on the evolutionary patterns, systematics, and biogeographic distribution of two abundant but understudied groups of bacteria known as Patescibacteria and Chloroflexota. The research aims to improve fundamental knowledge about these cryptic microbes that play important roles in marine sediment ecosystems and...
TRANSITIONS: METAGENOMICS OF AQUATIC BIOFILMS: EVALUATING LINKAGES BETWEEN AUTOTROPHIC AND HETEROTROPHIC MICROBIAL DIVERSITY AND FUNCTION -THIS TRANSITIONS TO EXCELLENCE IN MOLECULAR AND CELLULAR BIOSCIENCES RESEARCH GRANT WILL SUPPORT IMPLEMENTATION OF CUTTING-EDGE MOLECULAR TECHNIQUES INTO THE RESEARCH AND TEACHING PROGRAM OF A MID-CAREER SCIENTIST ALLOWING HER TO ADOPT EMPOWERING TECHNOLOGIES THAT ARE NOT ACCESSIBLE IN HER CURRENT RESEARCH ENVIRONMENT. RAPID ADVANCES IN MOLECULAR TECHNIQUES HAVE FACILITATED WIDESPREAD TAXONOMIC CHARACTERIZATION OF MICROBIAL COMMUNITIES. CURRENT RESEARCH IS QUICKLY MOVING BEYOND JUST CHARACTERIZING DIVERSITY (WHO IS THERE?), TOWARDS A FOCUS ON LINKING INDIVIDUAL SPECIES WITH THEIR FUNCTIONAL PROPERTIES (WHAT DO THEY DO?). HOWEVER, THE STUDY OF SOME MICROBIAL COMMUNITIES REMAIN RELATIVELY UNEXPLORED WITH RESPECT TO DIVERSITY OR FUNCTION. THIS IS PARTICULARLY TRUE FOR BENTHIC BIOFILMS (I.E., ASSEMBLAGE OF ALGAE, BACTERIA, AND FUNGI) IN FRESHWATER ECOSYSTEMS. THE OVERARCHING GOAL OF THIS RESEARCH IS TO USE MOLECULAR TECHNIQUES TO BRIDGE THE GAP BETWEEN MICROBIAL COMMUNITY COMPOSITION AND FUNCTIONING WITHIN NATURAL ENVIRONMENTS. FINDINGS FROM THIS RESEARCH WILL MAKE SIGNIFICANT CONTRIBUTIONS TO AN UNDERSTANDING OF, AND ABILITY TO, LINK MICROBIAL DIVERSITY WITH ECOSYSTEM FUNCTION. BY PROVIDING DATA FROM NATURAL MICROBIAL COMMUNITIES TO PUBLICALLY AVAILABLE REPOSITORIES, THIS PROJECT WILL FACILITATE IMPROVED TAXONOMIC RESOLUTION AND GENOMIC LIBRARY CONSTRUCTION. THESE DATA MAY ALSO BE USEFUL BEYOND THEIR ECOLOGICAL APPLICATION GIVEN THAT IDENTIFICATION OF NOVEL MICROBIAL ASSOCIATIONS IN NATURAL ENVIRONMENTS COULD FACILITATE THE DESIGN OF SYNTHETIC MICROBIAL COMMUNITIES AS A TOOL FOR INDUSTRIAL CULTIVATION AND BIOTECHNOLOGY. IN ADDITION TO CHARTING NEW CONCEPTUAL GROUND IN MOLECULAR ECOLOGY, THIS PROJECT WILL PROVIDE RESEARCH EXPERIENCES FOR GRADUATE AND UNDERGRADUATE STUDENTS FROM UNDER-REPRESENTED GROUPS. MANY ECOSYSTEM PROCESSES (E.G., CARBON CYCLING) ARE MEDIATED BY MICROORGANISMS AND UNDERSTANDING HOW MICROBIAL FUNCTIONS SCALE UP TO THE ECOSYSTEM LEVEL IS AN IMPORTANT GOAL IN ECOLOGY. BOREAL PEATLANDS PROVIDE A MODEL ECOSYSTEM TO EXAMINE RELATIONSHIPS BETWEEN MICROBIAL STRUCTURE AND FUNCTION OWING TO THEIR ROLE IN GLOBAL CARBON STORAGE. IN THIS PROJECT, RESEARCHERS WILL USE MOLECULAR TECHNIQUES TO EXAMINE BOTH THE EUKARYOTIC AND PROKARYOTIC DIVERSITY OF THE BIOFILM MICROBIOME AND IDENTIFY FUNCTIONAL TRAITS ALONG A HYDROLOGIC GRADIENT AND RELATE CHANGES IN MICROBIOME STRUCTURE AND FUNCTION TO PEATLAND CARBON DIOXIDE (CO2) EMISSIONS. BIOFILM COMPOSITION AND METABOLISM ARE STRONGLY INFLUENCED BY DIFFERENCES IN HYDROLOGICALLY MEDIATED ENVIRONMENTAL CONDITIONS WITH CONSEQUENCES FOR NET CO2 EMISSIONS. CONDITIONS THAT PROMOTE A HIGHER PROPORTION OF AUTOTROPHIC (ALGAE) BIOFILM RESULTS IN GREATER CO2 UPTAKE FROM THE ATMOSPHERE, WHEREAS A BIOFILM DOMINATED BY HETEROTROPHIC MICROORGANISMS (BACTERIA AND FUNGI) PROMOTES GREATER CO2 EMISSIONS. THE COMPOSITION OF AUTOTROPHIC AND HETEROTROPHIC COMPONENTS OF THE BIOFILM ARE INTRICATELY LINKED AND PERTURBATIONS TO ONE PORTION OF THE BIOFILM COMMUNITY CAN CASCADE THROUGH THE REST. THEREFORE, IT IS ANTICIPATED THAT CHANGES IN GENE EXPRESSION THAT CONTROL METABOLIC FUNCTIONS WITHIN THE AUTOTROPHIC COMPONENT OF THE BIOFILM WILL BE REFLECTED IN THE MAKE-UP AND FUNCTIONING OF THE HETEROTROPHIC COMPONENT OF THE BIOFILM AND VICE VERSA. THIS PROJECT IS EXPECTED TO REVEAL THE INFLUENCE OF ENVIRONMENTAL CONDITIONS ON GENE EXPRESSION WITHIN THE AUTOTROPHIC AND HETEROTROPHIC COMPONENTS OF THE BIOFILM. FURTHER, THIS RESEARCH IS LIKELY TO FACILITATE THE DISCOVERY OF CORRELATED PATTERNS OF ABUNDANCE BETWEEN CERTAIN EUKARYOTIC AND PROKARYOTIC MICROBES, AND LINK TRAIT-MEDIATED METABOLIC FUNCTIONS AT THE COMMUNITY LEVEL. USING METAGENOMIC APPROACHES TO EVALUATE HOW ABIOTIC AND BIOTIC INTERACTIONS SHAPE MICROBIAL COMMUNITIES AND MICROBIAL-MEDIATED BIOGEOCHEMICAL PROCESSES ADDRESSES A CRITICAL KNOWLEDGE GAP IN THE FIELD OF AQUATIC MICROBIOLOGY AND WILL PROVIDE A BETTER UNDERSTANDING OF HOW AQUATIC MICROBES PARTICIPATE IN BIOGEOCHEMICAL CYCLING WITHIN PEATLANDS. METHODOLOGICAL PROCEDURES WILL BE INTEGRATED INTO COLLEGE CURRICULUM, PROVIDING OPPORTUNITIES FOR A DIVERSITY OF STUDENTS TO GAIN EXPOSURE TO ECOLOGICAL MOLECULAR TECHNIQUES AND APPLICATIONS THAT WILL PREPARE THEM FOR THE INCREASING USE OF APPLIED MICROBIOLOGY IN INDUSTRY, ENVIRONMENTAL MONITORING, AND MANAGEMENT CAREERS. 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 NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $374.5k | 12/16/24 |