Project Grant 2439752

Award Date 9/1/25
Completion Date 8/31/30
Dollars Obligated $97K
Federal Grant Program
47.050
Assistance Type
Project Grant
Place of Performance
Stillwater, OK 74078, USA
Similar Awards
This Project Grant award, valued at $992,808.00, was provided by the National Science Foundation (NSF) under the Biological Sciences (CFDA 47.074) federal grant program. The goal of this collaborative research project is to elucidate the role of fungal microbiomes in mediating the uptake, transformation, and detoxification of metal ions, nanoparticles, and other metal species in the environment. The research will employ advanced analytical techniques to investigate the physiological,...
This National Science Foundation (NSF) Geosciences program award, CFDA 47.050, provides $437,806 to the Regents of the University of Minnesota, Office of Sponsored Projects Administration, to conduct collaborative research on the molecular speciation of trace elements like iron, copper, zinc, and manganese in the Southern Ocean and Antarctic continental shelf. The research aims to identify the organic ligands that bind to these biologically essential metals, and determine their sources and...
The National Science Foundation awarded a $876,444 project grant to the Woods Hole Oceanographic Institution to study the role of fungi in biogeochemical transformations of manganese and other nutrients along chemoclines (transitional water layers) in the Baltic Sea. This 3-year project under the NSF's Geosciences program (CFDA 47.050) aims to characterize the diversity of prokaryotic and fungal taxa present in water samples collected from the Baltic Sea chemocline, and identify genes involved...
This $202,483 Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) supports research at Michigan State University to investigate microbial mineral oxidation processes in temperate marine sediments. The key objectives are to identify and characterize the genes and pathways used by certain marine sediment microbes for extracellular electron transfer to oxidize mineral substrates, which can drive dark carbon fixation. The research employs techniques like...
This $136,638 two-year Project Grant from the National Science Foundation's Integrative Activities program (CFDA 47.083) will support the development of mixed microbial communities and membrane biofilm reactors to optimize biotransformation processes for metal and metalloid bioremediation and biorecovery from waste streams. Specifically, the awardee, Montana State University, will establish fungal-bacterial biofilms with relevant environmental microorganisms, develop membrane biofilm reactors to...
The University of New Mexico was awarded a $497,969 Project Grant from the National Science Foundation Division of Emerging Frontiers under the Biological Sciences federal grant program (CFDA 47.074) for the period of September 1, 2021 through August 31, 2026. The grant funds collaborative research titled "COLLABORATIVE RESEARCH: MIM: THE IMPACT OF THE FUNGAL MICROBIOME IN METAL TOLERANCE AND SOIL BIOGEOCHEMICAL TRANSFORMATIONS." The research aims to advance understanding of major...
This Project Grant award from the National Science Foundation's Geosciences Program (CFDA 47.050) provides $562,895.00 to the Regents of the University of Minnesota to conduct collaborative research on the role of the "colloidal shunt" in mediating interactions between the ocean's iron and carbon cycles. The research aims to better characterize the mechanisms and linkages between dissolved organic carbon, iron-binding organic ligands, and the formation of particulate iron in the ocean....
The National Science Foundation (NSF) awarded a $590,658 project grant to Arizona State University (ASU) under the Geosciences program (CFDA 47.050) to conduct research on the mechanisms of metal sulfide-enabled growth of anoxygenic photosynthetic bacteria. The research team will use transcriptomic sequencing, electron microscopy, and various chemical analysis tools to examine if all transition metal sulfide phases can enable the autotrophic growth of purple sulfur bacteria as sole sulfur and...
The National Science Foundation (NSF) awarded a $2,000,000 Project Grant under CFDA 47.041 "Engineering" to The Johns Hopkins University to implement a novel approach for capturing and recovering scarce metals like nickel and cobalt from waste lithium-ion batteries using biofluids from fungi combined with advanced electrochemical techniques. The project aims to enhance the extraction of these valuable metals through the identification of efficient metal biomining compounds, metabolic...
This National Science Foundation (NSF) Geosciences program (CFDA 47.050) Project Grant award in the amount of $342,692 will support an academic-industry collaborative research project to develop new methods for exploring and discovering copper-nickel-sulfide mineral deposits in the United States. The project team from the University of Michigan and Juniata College, in partnership with mining industry professionals, will test the hypothesis that the ratio of copper isotopes in ground and...

CAREER: UNRAVELING THE ROLE OF BIVALENT METALS ON FUNGAL MANGANESE OXIDE BIOMINERALIZATION MECHANISMS -METALS ARE ESSENTIAL FOR THE DEVELOPMENT AND ADVANCEMENT OF OUR SOCIETY, BUT THEIR PRESENCE IN NATURAL ENVIRONMENTS IS A DOUBLE-EDGED SWORD- ACTING AS VITAL NUTRIENTS AT LOW CONCENTRATIONS BUT BECOMING TOXIC AT ELEVATED LEVELS. THE CONCENTRATIONS OF MANY METALS IN SOILS, SEDIMENTS, AND AQUATIC ENVIRONMENTS ARE CONTROLLED BY BIOGEOCHEMICAL PROCESSES INVOLVING MANGANESE (MN) OXIDES. WHILE MICROBIAL ACTIVITIES PROMOTING MN OXIDE FORMATION IN BACTERIA ARE WELL UNDERSTOOD, THE ROLE OF METALS - PARTICULARLY IN FUNGI-MEDIATED BIOMINERALIZATION ? REMAINS UNCLEAR. DESPITE FUNGI?S HIGH ABUNDANCE AND METABOLIC ACTIVITY, MAJOR KNOWLEDGE GAPS EXIST IN OUR UNDERSTANDING OF HOW THEY AFFECT MN OXIDE FORMATION AND HOW METALS IN RETURN AFFECT FUNGAL BIOMINERALIZATION PROCESSES. THIS PROJECT SEEKS TO UNRAVEL THE INTERACTIONS BETWEEN COMMON BIVALENT METALS, FUNGI, AND BIOMINERALS, PROVIDING INSIGHTS INTO BIOREMEDIATION STRATEGIES AND ENVIRONMENTAL METAL CYCLING. IN ADDITION TO ITS SCIENTIFIC CONTRIBUTION, THE RESEARCH WILL INCORPORATE EDUCATIONAL COMPONENTS TO ADDRESS ISSUES OF STUDENT RECRUITMENT AND RETENTION FROM DIVERSE BACKGROUNDS IN INTERDISCIPLINARY FIELDS WITHIN GEOSCIENCE. A COMPREHENSIVE SET OF OUTREACH ACTIVITIES WILL BE DEVELOPED TO ENGAGE THE PUBLIC AND STUDENTS AT MULTIPLE LEVELS, EMPHASIZING THE IMPORTANCE OF INTERDISCIPLINARY GEOSCIENCE RESEARCH AND ITS RELEVANCE TO OUR ENVIRONMENT. BIOGENIC MN OXIDES PLAY AN IMPORTANT ROLE IN METAL CYCLING BUT THE MECHANISMS OF HOW METALS AFFECT FUNGAL BIOMINERALIZATION REMAIN POORLY UNDERSTOOD. THE OVERALL GOAL OF THIS PROJECT IS TO ELUCIDATE THE ROLES OF COMMON BIVALENT METALS ON THE FUNGI-MEDIATED MN OXIDE BIOMINERALIZATION PROCESS, SUBSEQUENT BIOMINERAL STRUCTURE TRANSFORMATION, AND BIVALENT METAL SORPTION MECHANISMS. A SYSTEMATIC APPROACH WILL COMBINE LABORATORY-BASED WET CHEMISTRY, ADVANCED STRUCTURAL CHARACTERIZATION OF BIOMINERALS, AND MOLECULAR BIOLOGICAL TECHNIQUES INCLUDING PROTEOMICS AND TRANSCRIPTOMICS TO IDENTIFY THE KEY REACTION PRODUCTS INVOLVED IN FUNGAL MN OXIDE BIOMINERALIZATION PROCESS. THE PROPOSED STUDY WILL ULTIMATELY CONTRIBUTE TO THE DEVELOPMENT OF COST-EFFECTIVE BIOREMEDIATION STRATEGIES AND INFORM MODELS PREDICTING METAL CYCLING IN NATURAL SETTINGS. 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.

Posted 12/17/24, 12:00 AM