Project Grant 80NSSC18K1462
- This Project Grant award from the Division of Molecular and Cellular Biosciences of the National Science Foundation's (NSF) Biological Sciences program (CFDA 47.074) will fund research at Michigan State University (MSU) to investigate the molecular mechanisms regulating early root growth in plants in response to phosphate (P) deficiency. The key objectives of this $907,847 award, with a period of performance from June 2024 to May 2027, are to: 1) determine the transcriptional and...
- This National Science Foundation (NSF) Biological Sciences (CFDA 47.074) program grant of $1,089,467 awarded to Iowa State University aims to investigate the role of the ATM1 myosin protein in regulating cell proliferation and intercellular communication in Arabidopsis plant roots. Key objectives include: Identifying ATM1-binding proteins to understand mechanisms for regulating cell division and trafficking. Measuring cytoskeletal dynamics without ATM1 to elucidate the relationship with cell...
- This $826,720 Project Grant award from the National Science Foundation's Biological Sciences program (CFDA 47.074) supports research at the University of California, Riverside to investigate the mechanisms that regulate plant cell division positioning. The key objectives are to: Assess whether two proteins, TANGLED1 (TAN1) and AUXIN INDUCED IN ROOT CULTURES9 (AIR9), physically interact to mediate division plane positioning in the model plant Arabidopsis thaliana. Characterize genetic...
- This Project Grant award from the National Science Foundation's Biological Sciences (CFDA 47.074) program provides $977,252.00 to investigate the mechanisms by which plants template cellulose fiber deposition to determine their morphology. The project at Indiana University aims to map the temporal and spatial changes in microtubule patterning in living plant cells through advanced imaging and computational modeling. It will examine how microtubule polymers on the cell's interior surface guide...
- This Project Grant award from the National Science Foundation's Biological Sciences program provides $373,728 to the University of Tennessee, Knoxville, with an award date of January 15, 2024 and an ultimate completion date of December 31, 2026. The objective of this collaborative research project is to elucidate the molecular and cellular mechanisms controlling the movement of actin filaments (F-actin) in the female gamete for successful sperm nuclear migration during plant fertilization, using...
- This Project Grant award, funded by the National Science Foundation's Biological Sciences program (CFDA 47.074), will deliver programmed plants with novel approaches to control root growth and improve nitrogen use efficiency. The $640,474 award to the University of California, Davis (UEI: TX2DAGQPENZ5), running from May 1, 2025 to April 30, 2028, will develop tools to engineer desirable nitrogen-responsive traits and quantify how an enhanced root system contributes to improved uptake and use...
- Grant Award Summary The University of Delaware received a $159,006 Project Grant from the National Science Foundation's Office of Integrative Activities (CFDA 47.083) effective September 1, 2025, through August 31, 2028. This collaborative research initiative investigates actin-mediated mechanical stress sensing and epidermal tissue integrity in plants, combining expertise from plant biology, soft-matter physics, and computational mechanics disciplines. The project delivers fundamental...
- Boyce Thompson Institute For Plant Research Inc. received a $250,000 Project Grant award from the National Science Foundation Division of Integrative Organismal Systems under the Biological Sciences federal grant program (CFDA 47.074) to develop methods for explaining and optimizing the structure of natural transportation networks like root system architecture in wild tomato plants. The project will involve developing numerical optimization algorithms for constructing minimal Steiner trees...
- The National Science Foundation awarded a $199,918 Project Grant to the University of Michigan under the Biological Sciences federal grant program (CFDA 47.074) for the period of June 15, 2022 through May 31, 2024. The award will support the development of new computational tools and methods to map single-cell RNA sequencing data onto 3D spatial models of plant roots at ultra-high resolution. Researchers will leverage existing fluorescent reporter gene lines in Arabidopsis to perform...
- This three-year Project Grant from the National Science Foundation's Division of Integrative Organismal Systems totals $671,563 to support research at Cold Spring Harbor Laboratory on the mechanism of trehalose control of shoot development in plants. The goals of the research are to investigate the structural organization and coordination of enzymatic complexes involved in trehalose-6-phosphate (T6P) metabolism and signaling pathways that regulate plant growth processes. By providing insights...
TITLE: THE USE OF MICROGRAVITY SIMULATORS FOR A MECHANISTIC UNDERSTANDING OF CYTOSKELETAL-MEDIATED REGULATION OF ROOT GROWTH DIRECTIONALITY PLANTS WILL BE A MAJOR COMPONENT OF ADVANCED LIFE SUPPORT SYSTEMS TO ENABLE NASA TO REALIZE ITS VISION OF LONG DURATION SPACE EXPLORATION THAT WILL TAKE HUMANS TO MARS AND BEYOND. HOWEVER PLANTS CAN ONLY BE EFFECTIVELY USED FOR SUCH SYSTEMS IF WE HAVE A DEEPER MECHANISTIC UNDERSTANDING ABOUT HOW THEIR DEVELOPMENT IS REGULATED BY THE SPACEFLIGHT ENVIRONMENT. RECENT OMICS STUDIES HAVE SHOWN THAT PLANTS REPROGRAM THEIR GENETIC CIRCUITRY WHEN GROWN IN THE NEAR WEIGHTLESS CONDITIONS OF SPACE. GENES INVOLVED IN CELL WALL REMODELING AND OXIDATIVE STRESS ARE MAJOR GENE CATEGORIES THAT ARE DIFFERENTIALLY REGULATED BY MICROGRAVITY. FURTHER IT HAS BEEN SHOWN THAT TRUE MICROGRAVITY IN SPACE AND SIMULATED MICROGRAVITY USING CLINOSTATS OR RANDOM POSITIONING MACHINES ELICIT ROUGHLY SIMILAR ROOT SKEWING RESPONSES IN THE MODEL PLANT ARABIDOPSIS THALIANA. ROOT SKEWING WAS MORE PRONOUNCED IN MUTANTS TO A ROOTEXPRESSED VEGETATIVE ACTIN ISOFORM. CONSISTENT WITH THE ENHANCED ROOT SKEWING OF ACTIN MUTANTS IN MICROGRAVITY IS THE OBSERVATION THAT OTHER PLANT SPECIES SUCH AS MAIZE (ZEA MAYS L.) HAVE STRONGER ROOT DIRECTIONAL GROWTH RESPONSES ON A CLINOSTAT WHEN CHEMICALS SUCH AS LATRUNCULIN B DISRUPT THE ACTIN CYTOSKELETON. BASED ON THESE OBSERVATIONS WE WILL TEST THE HYPOTHESIS THAT THE ACTIN CYTOSKELETON IS A KEY PLAYER IN DICTATING ROOT GROWTH DIRECTIONALITY IN TRUE AND SIMULATED MICROGRAVITY BY REGULATING THE PROCESS OF AUTOTROPIC ORGAN STRAIGHTENING. MOREOVER WE HYPOTHESIZE THAT A SET OF CELL WALL CROSS-LINKING (I.E. CLASS III PEROXIDASES) AND PUTATIVE ACTINREGULATORY PROTEINS (I.E. HLB1 AND MIN7/BEN1) MEDIATE ROOT HAIR ELONGATION AND DIRECTIONAL ROOT GROWTH RESPECTIVELY UNDER TRUE AND SIMULATED MICROGRAVITY. OUR HYPOTHESES WILL BE ADDRESSED THROUGH THREE SPECIFIC AIMS INCLUDING THE ANALYSIS OF CELL WALL COMPOSITION/ DISTRIBUTION IN WILD-TYPE ARABIDOPSIS ROOTS AND DETAILED CHARACTERIZATION OF SELECTED ARABIDOPSIS CELL WALL AND ACTIN MUTANTS SUBJECTED TO MICROGRAVITY SIMULATION ON A SLOW ROTATING CLINOSTAT AND RANDOM POSITION MACHINE (AIM 1 AND 3). WE WILL ALSO USE MICROGRAVITY SIMULATORS TO ADDRESS THE HYPOTHESIS THAT THE PLANT HORMONE BRASSINOLIDE REGULATES DIRECTIONAL ROOT GROWTH IN MAIZE THROUGH ITS MODULATION OF ACTIN ORGANIZATION AND DYNAMICS (AIM 2). OUR RESEARCH PLAN BUILDS ON SUCCESSES OF PREVIOUS NASA-FUNDED GROUND AND SPACEFLIGHT RESULTS AND OUTLINES A COMPREHENSIVE SET OF EXPERIMENTS INCLUDING CELL WALL IMMUNOCYTOCHEMISTRY COMPUTER-BASED ROOT GROWTH ANALYSES ACTIN QUANTIFICATION AND GENETICS. THE PROPOSED WORK ALIGNS WITH PLANT BIOLOGY ELEMENT OF THE SPACE BIOLOGY SCIENCE PLAN. RESULTS OBTAINED FROM PLANT EXPERIMENTS ON MICROGRAVITY SIMULATORS WILL ADDRESS GUIDING QUESTIONS LINKED TO THE DECADAL SURVEY RECOMMENDATIONS INCLUDING THE IMPACT OF GRAVITY ON PLANT GROWTH DEVELOPMENT AND METABOLISM (PB-1) AND MOLECULAR MECHANISMS UNDERLYING HOW PLANTS SENSE AND REACT TO GRAVITY (PB-5). WE EXPECT THAT THE PROPOSED RESEARCH WILL PROVIDE US WITH BASIC KNOWLEDGE THAT WILL GUIDE THE DEVELOPMENT OF PLANT CULTIVARS BETTER ADAPTED TO THE MICROGRAVITY ENVIRONMENT OF SPACEFLIGHT AN OUTCOME THAT WILL PROVE BENEFICIAL FOR THE DESIGN OF PLANT HABITATS ON FUTURE SPACE COLONIES AND FOR ADDRESSING GREAT AGRICULTURAL CHALLENGES ON EARTH
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | ($133k) | 11/2/21 | ||
| P00003 | Funding Only Action | ($133k) | 11/2/21 | |
| P00002 | Funding Only Action | $145.5k | 2/19/21 | |
| Not listed | $145.5k | 2/19/21 | ||
| P00001 | Funding Only Action | $104.5k | 5/18/20 |