Project Grant 2533400
- This federal Project Grant award from the United States Department of Agriculture's National Institute of Food and Agriculture (CFDA 10.310 - Agriculture and Food Research Initiative) provides $455,813.54 to the University of Wisconsin-Madison to research the intersection of abiotic (environmental) and biotic (pathogenic) stress responses in plants. The main goals are to identify and quantify differential plant responses to pathogen attack under normal and warmer night temperatures, and to...
- This $748,123 U.S. Department of Agriculture (USDA) Agriculture and Food Research Initiative (AFRI) Project Grant awarded to the University of California, Davis (UC Davis) aims to elucidate the genetic mechanisms and identify factors contributing to root-knot nematode outbreaks in resistant tomato plants. The project will use comparative genomics to investigate the fitness costs associated with resistance-breaking nematode populations, and develop rapid diagnostic tools to identify resistant...
- This $797,594 federal Project Grant award from the National Science Foundation's Biological Sciences program (CFDA 47.074) supports research to develop crop varieties with stable immunity that can withstand both evolving pathogen pressure and suboptimal growing temperatures. The project, led by a team of scientists from the United States, United Kingdom, and Germany, aims to advance understanding of how plant-pathogen interactions are influenced by environmental factors like temperature...
- The National Science Foundation awarded a $216,000 Project Grant to support research titled "Defining the Genetic Basis of Tomato Reproductive Heat Tolerance through Phenotyping, Genome-Wide Association, & Predictive Modeling" from July 1, 2021 to June 30, 2024. The grant was awarded under the Biological Sciences program (CFDA 47.074) to promote progress in the biological sciences and enhance understanding of major problems confronting the nation. The three-year grant will fund...
- This federal Project Grant award of $740,000 from the USDA's Agriculture and Food Research Initiative (AFRI) program supports the development of a dynamic in-field phenotyping system to monitor disease-related traits in tomato plants across multiple scales and environments. The goal is to expedite genomic research and improve disease-management strategies for crop production. The project will be conducted by North Carolina State University, a prominent USDA contractor and grantee, over a...
- This $314,560 Project Grant award from the National Science Foundation (NSF) Division of Emerging Frontiers under the Biological Sciences program (CFDA 47.074) supports collaborative research by Purdue University to develop crop varieties that enhance agricultural sustainability. The key objectives are to: Identify genetic targets underlying microbiome-mediated genetic resistance to major current and emergent biotic and abiotic stresses in three widely-grown crops - wheat, tomato, and poplar...
- This $180,000 Project Grant awarded by the USDA National Institute of Food and Agriculture (NIFA) under the Agriculture and Food Research Initiative (AFRI) program supports research to understand how the bacterial wilt pathogen Ralstonia solanacearum survives in water. The University of California, Davis is conducting high-throughput genetic screening to identify the genes that enable this pathogen to persist in aquatic environments, with the goal of developing new management strategies to...
- This National Science Foundation (NSF) Biological Sciences Program (CFDA 47.074) grant award to the University of California, Davis (UC Davis) aims to advance the understanding of how plants recognize and respond to infection by plant parasitic nematodes, one of the most destructive plant pathogens causing an estimated $78 billion in global annual losses. The $796,385 project, running from July 1, 2023 to June 30, 2027, will identify nematode-derived molecules that activate plant innate immunity...
- The National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) awarded a $695,380 project grant to the Regents of the University of Idaho to conduct research on the molecular basis of nematode-associated molecular patterns (NAMPs) and their role in triggering immunity in potatoes. The project aims to elucidate how plants, specifically potatoes, detect and respond to nematode-derived chemical signals, such as ascaroside 18 (ASCR18), to activate their immune system and defend...
- This National Science Foundation (NSF) Postdoctoral Fellowship in Biological Sciences (CFDA 47.074) award of $270,000 will fund research from September 1, 2025 to August 31, 2028 to understand how long-term soil warming affects the traits and gene expression of fungal-feeding nematodes (fungivores) and their impact on decomposition, a key ecosystem function. The key objectives are to: (1) determine how soil warming alters fungivore nematode traits like body size, lifespan, and reproduction;...
RESEARCH-PGR: QTL ANALYSES IDENTIFY GENETIC COMPONENTS REGULATING THE INTERACTIONS BETWEEN PLANTS, PATHOGENS AND THE ENVIRONMENT IN THE FACE OF CLIMATE CHANGE -AN ORGANISM?S ABILITY TO RESPOND TO ITS ENVIRONMENT IS FUNDAMENTAL TO ITS SURVIVAL. WHEN THE ORGANISM OF INTEREST IS INVOLVED IN A HOST-PATHOGEN INTERACTION, ?THE ENVIRONMENT? BECOMES COMPLEX, INCLUDING INCLUDES NOT ONLY EXTERNAL FORCES, BUT ALSO THE CONDITIONS IMPOSED BY THE INTERACTING PARTNER. THERE ARE ALSO TWO GENOMES AT PLAY, EACH OF WHICH AFFECTS THE BEHAVIOR OF BOTH ORGANISMS. IN ADDITION, EXTERNAL ENVIRONMENTAL FORCES IMPOSE ADDITIONAL PRESSURES, AND EACH GENOME CAN AFFECT HOW BOTH PARTNERS RESPOND. THIS PROJECT EXAMINES THE ROLE THE HOST GENOME PLAYS IN ALTERING BEHAVIOR OF BOTH HOST AND PATHOGEN UNDER ENVIRONMENTAL STRESS. IT LEVERAGES AN AGRICULTURALLY RELEVANT SYSTEM, NEMATODE INFECTION OF TOMATO. PARASITIC NEMATODES ARE RESPONSIBLE FOR AROUND $125 BILLION IN ANNUAL CROP LOSS WORLDWIDE WITH YIELD LOSS UPWARDS OF 80% FOR TOMATO. LIMITED CONTROL OPTIONS ARE AVAILABLE, AND THE SITUATION IS EXACERBATED BY AN EMERGING CONCERN IN AGRICULTURE: THE EFFECT OF WARMING NIGHTTIME TEMPERATURES (WNT). THIS UNPRECEDENTED TREND IS CAUSING CRITICAL CHALLENGES TO CROPS. BROADER, FUTURE IMPACTS OF THIS WORK INCLUDE THE DEVELOPMENT OF NOVEL APPROACHES TO EXAMINE HOST-PATHOGEN INTERACTIONS AND HOW THEY ARE AFFECTED BY EXTERNAL CONDITIONS. THIS THEN WILL LEAD TO THE IDENTIFICATION OF PLANT LINES THAT ARE MORE RESILIENT TO BOTH ABIOTIC AND BIOTIC STRESSES. IMPORTANTLY, BY ELUCIDATING THE MOLECULAR BIOLOGY BEHIND THE PARASITE RESPONSE TO THOSE PLANTS UNDER WNT, THIS STUDY WILL GO BEYOND MERELY IDENTIFYING RELEVANT HOST GENES TO CONTRIBUTE NEW INSIGHT INTO THE MECHANISMS BY WHICH THOSE GENES ALTER THE NEMATODE BIOLOGY. UNDERSTANDING THE NEMATODE IN ADDITION TO THE PLANT PAVES THE WAY TOWARDS TARGETING THE PARASITE DIRECTLY FOR CROP IMPROVEMENT. THE GOALS OF THIS PROJECT ALIGN WITH AN OVERARCHING CONCERN IN GENETICS: TO IDENTIFY DNA VARIANTS THAT INFLUENCE HOW INDIVIDUALS RESPOND TO THEIR ENVIRONMENT. HERE, THE CONCEPT OF ?INDIVIDUALS? AND ?ENVIRONMENT? ARE COMPLEX. DNA VARIANTS IN ONE SPECIES WILL BE IDENTIFIED THAT, IN TANDEM WITH EXTERNAL ENVIRONMENTAL CONDITIONS, AFFECT HOW ANOTHER, INTERACTING SPECIES RESPONDS. THE ENVIRONMENTAL CONTEXT CONSIDERED IS WARMING NIGHTTIME TEMPERATURES (WNT), A CRITICAL, HIGHLY RELEVANT, AND CURRENT ENVIRONMENTAL CONCERN. GENETICALLY VARIABLE TOMATO PLANTS DERIVED FROM A CROSS BETWEEN A CULTIVATED LINE AND A WILD LINE WILL BE INFECTED WITH A GENETICALLY HOMOGENEOUS STRAIN OF PARASITIC NEMATODES. A CONTROL EXPERIMENT WILL ALSO BE PERFORMED WITH UNINFECTED PLANTS. THESE EARLY, LATE, AND CONTROL EXPERIMENTS WILL BE CARRIED OUT UNDER TWO TEMPERATURE REGIMES: NORMAL NIGHTTIME TEMPERATURES AND WNT. FOR EACH TREATMENT COMBINATION, PHENOTYPES RELATED TO INFECTION AND PLANT HEALTH WILL BE COLLECTED, ALONG WITH GENE EXPRESSION DATA FOR BOTH PLANT AND NEMATODE. WITH THIS DESIGN, CONNECTIONS BETWEEN DNA VARIANTS IN THE TOMATO GENOME AND MOLECULAR RESPONSES OF THE NEMATODE AS WELL AS THE PLANT WILL BE MADE, AND THE EFFECT OF WNT ON THESE CONNECTIONS WILL BE UNCOVERED THROUGH VIA A SERIES OF GENETIC MAPPING EXPERIMENTS. LEVERAGING THE CONNECTIONS IDENTIFIED IN THIS WAY, MORE COMPLEX GENOTYPE-EXPRESSION-PHENOTYPE PATHWAYS CAN SUBSEQUENTLY BE INFERRED, PROVIDING A DETAILED VIEW OF THE MOLECULAR BIOLOGY OF THE PLANT-PARASITE INTERACTION RESPONSE TO WNT. IT WILL ALSO PINPOINT PROMISING CANDIDATE GENES, WHICH WILL BE FUNCTIONALLY VALIDATED. ALL PROJECT OUTCOMES WILL BE MADE PUBLICLY ACCESSIBLE THROUGH PUBLICATIONS AND DEPOSITION OF DATA AND RESOURCES IN LONG-TERM REPOSITORIES. 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 | $1.5m | 5/23/25 |