Project Grant 2423216
- This $1,500,000 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program will support research at Northwestern University to develop innovative protein-based biomaterials. The research aims to (1) engineer mussel foot proteins with superior underwater adhesive properties compared to wild-type sequences, and (2) create resilin-inspired bioelastomers with high strength while retaining natural mechanical resilience. The proposed...
- This $128,989 federal Project Grant award from the National Science Foundation's Mathematical and Physical Sciences (CFDA 47.049) program will support research at the University of Pennsylvania to study the structural design and formation mechanisms of biomineralized architected metamaterials, using the skeletal system of starfish as a model. The research aims to quantify the 3D microstructure and crystallographic properties of the starfish's biomineralized ossicles, and investigate how their...
- The National Science Foundation awarded the University of Wisconsin-Madison a $1,000,000 project grant under the Mathematical and Physical Sciences program (CFDA 47.049) to study crystallization pathways in biominerals. The university researchers will observe crystallization in brachiopods, benthic foraminifera, and other biominerals as it occurs to better understand precursor phases. They will develop software to model energy landscapes governing crystallization rates and use machine learning...
- This Project Grant award from the National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) provides $181,981 to the University of Washington (UW) to develop innovative tools and resources to enhance the use of sea urchins as research models. The key products and services to be delivered include: Establishing efficient protocols for culturing sea urchin cells to investigate gene function in vitro. Enabling rapid, scalable DNA transfection of sea urchin embryos, adult tissues,...
- The National Science Foundation (NSF) Engineering Directorate awarded a $500,000 Future Manufacturing Seed Grant (CFDA 47.041) to the University of Wisconsin - Madison to conduct research on the continuous growth of amino acid biocrystal films. The goal is to develop a fundamental understanding of the polymer-water interface dynamics and how they control the formation and properties of these biocrystal thin films. The research aims to enable a new manufacturing technique for eco-friendly and...
- This collaborative research project, funded by the National Science Foundation (NSF) Division of Chemical, Bioengineering, Environmental, and Transport Systems under the Engineering program (CFDA 47.041), investigates how nanometer-scale surface structures interact with cells in physiological environments. The research partnership between the University of Texas at El Paso and Baylor College of Medicine examines the physical and chemical factors of nanomaterials that influence cellular adhesion,...
- This National Science Foundation (NSF) Engineering program (CFDA 47.041) Project Grant award of $530,132 to New York University (NYU) aims to improve the sustainability of industrial crystallization processes through an investigation of laser-induced nucleation mechanisms. The project will utilize continuous-flow, high-pressure microfluidic devices and supervised machine learning to quantify the dielectric polarization and colloidal impurity mechanisms that govern light-induced nucleation. The...
- This National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) Project Grant award of $730,000 to the University of California, Los Angeles (UCLA) aims to transform the field of protein engineering through the development of an innovative technology called PicnnnShells. PicnnnShells are tiny, hollow particles that can rapidly screen up to one million different protein variations in a single day to identify useful proteins for research, industrial or medical applications. The...
- This Project Grant award from the National Science Foundation (NSF) Division of Materials Research, under the Mathematical and Physical Sciences program (CFDA 47.049), provides $322,382 to the University of Connecticut Health Center (UCHC) from September 1, 2023 through August 31, 2026. The goals of this collaborative research project are to use computer modeling and high-energy synchrotron X-ray diffraction experiments to better understand how the incorporation of cobalt (Co) and chromium...
- This three-year, $1,031,012 National Science Foundation project grant supports research at the University of Chicago to develop active adaptive materials inspired by cell mechanics. The goal is to elucidate design principles for soft biomolecular materials whose actuation and shape are reprogrammable, similar to how actin cytoskeleton networks control cell shape and locomotion. Researchers will reconstitute cytoskeleton-like composite networks in vitro and optimize molecular engineering...
BIOENGINEERING SINGLE CRYSTAL GROWTH -TECHNICAL: THE PROPOSED ACTIVITIES ADDRESS GAPS IN THE UNDERSTANDING OF HOW LIVING ORGANISMS CONTROL CRYSTAL GROWTH PROCESSES, WITH THE LONG-TERM OBJECTIVE OF DEVELOPING BIO-INSPIRED AND BIO-ENABLED MATERIALS. IN PRIOR WORK, THE TEAM DISCOVERED THE ROLE OF VEGF SIGNALING IN THE BRANCHING OF ENDOSKELETAL SINGLE CRYSTALS OF CALCITE THAT ARE DEPOSITED BY PRIMARY MESENCHYME CELLS (PMCS) OF THE SEA URCHIN EMBRYO. GOING FORWARD, THE TEAM WILL USE QUANTITATIVE PROTEOMICS IN COMBINATION WITH TRANSCRIPTOMIC DATA TO IDENTIFY PROTEINS INVOLVED IN CRYSTAL GROWTH CONTROL. SELECTED PROTEINS WILL BE PRODUCED RECOMBINANTLY, AND RECOMBINANT ANTIBODIES (RABS) WILL BE RAISED AGAINST THEM. RABS WILL BE USED TO MAP PROTEINS ACROSS THE SPICULE DEPOSITION VESICLE AND THE SPICULE ITSELF. TO DISSECT THE IMPACT OF NATIVE AND RECOMBINANT PROTEINS ON NUCLEATION, POLYMORPH SELECTION, AND CRYSTAL GROWTH, THE TEAM WILL USE A DROPLET MICROFLUIDIC NUCLEATION RATE ASSAY. IN PARALLEL, THE TEAM WILL USE SERIAL BLOCK-FACE ELECTRON MICROSCOPY, CRYO-FIB/SEM SLICE-AND-VIEW, AND CRYO-ELECTRON TOMOGRAPHY TO STUDY INTERFACIAL PROCESSES AT THE GROWTH FRONT AND ELUCIDATE THE ULTRASTRUCTURE OF THE SPICULE ELONGATION APPARATUS. TAKEN TOGETHER, THE TEAM EXPECTS TO DEVELOP A DETAILED MECHANISTIC UNDERSTANDING OF HOW THE EXPRESSION OF THE RELEVANT PROTEINS, LOCALIZATION IN THE SPICULE MATRIX, AND IMPACT ON NUCLEATION KINETICS AND CRYSTAL GROWTH MAY BE CONNECTED. THIS IS AN IMPORTANT FIRST STEP TOWARDS PORTING KEY MOLECULAR PLAYERS INTO A SYSTEM THAT IS MORE EASILY ENGINEERED AND SCALED UP, ESSENTIALLY USING THE TOOLS OF SYNTHETIC BIOLOGY FOR MATERIALS PROCESSING. THE TEAM WILL THEREBY ADDRESS ALL FOUR CHALLENGES IN HARD MATERIALS IDENTIFIED IN THE REPORT ON THE 2012 NSF BIOMATERIALS WORKSHOP. COMPLEMENTARY TO THE PROPOSED RESEARCH OBJECTIVES, THE TEAM WILL ENGAGE UNDERGRADUATES IN HIGHLY INTERDISCIPLINARY RESEARCH, LEVERAGING THE NSF REU PROGRAM AND THE MATERIALS INITIATIVE FOR COMPREHENSIVE RESEARCH OPPORTUNITY (MICRO) AT NORTHWESTERN UNIVERSITY. FURTHER, THE TEAM WILL INTEGRATE RESEARCH OUTCOMES INTO UNDERGRADUATE LABORATORY MODULES AND DEVELOP NEW EXPERIMENTS FOR OUTREACH ACTIVITIES. NON-TECHNICAL: OPTIMIZED DURING HUNDREDS OF MILLIONS OF YEARS OF EVOLUTION, BIOMINERALIZED TISSUES FREQUENTLY DISPLAY EXTRAORDINARY PERFORMANCE. BONE, FOR EXAMPLE, HAS HIGH TOUGHNESS AT LOW WEIGHT AND IS CAPABLE OF SELF-REPAIR; IN SOME ORGANISMS, TEETH GROW CONTINUOUSLY AND SELF-SHARPEN. DESPITE THE ABUNDANCE OF SUCH MATERIALS IN NATURE, MANY OF THE MECHANISMS THAT ALLOW THE ORGANISM TO CONTROL THEIR FORMATION REMAIN POORLY UNDERSTOOD. SEA URCHIN EMBRYOS CREATE SMOOTHLY CURVING AND BRANCHED, YET SINGLE CRYSTALLINE SPICULES OF CALCIUM CARBONATE (CACO3) FOR THEIR ENDOSKELETON. PREVIOUSLY, THE TEAM DESIGNED AN IN VITRO CULTURE SYSTEM OF SEA URCHIN EMBRYO PRIMARY MESENCHYME CELLS (PMCS) TO CONTROL THE GROWTH OF THESE SPICULES IN THE LABORATORY. THEY DISCOVERED THAT A SIGNALING MOLECULE, VEGF, CONTROLS THE SHAPE OF SPICULES DEPOSITED BY PMCS. HOWEVER, IT REMAINS UNCLEAR WHAT HAPPENS DOWNSTREAM OF THE INTERACTION OF VEGF WITH ITS RECEPTOR. THE GOAL OF THIS PROPOSAL IS TO IDENTIFY AND CHARACTERIZE PROTEINS THAT ARE DIRECTLY INVOLVED IN CONTROLLING CRYSTAL GROWTH. TECHNIQUES INCLUDE PROTEOMICS, IMMUNOHISTOCHEMISTRY USING RECOMBINANT ANTIBODIES, AND MICROFLUIDIC DROPLET ASSAYS OF NUCLEATION AND GROWTH. IN PARALLEL, THE TEAM WILL USE STATE-OF-THE-ART IMAGING, INCLUDING CRYO-ELECTRON TOMOGRAPHY, TO OBSERVE THE CELLULAR APPARATUS THAT ELONGATES THE SPICULE. IN COMBINATION, THESE EXPERIMENTS WILL LEAD TO AN IMPROVED UNDERSTANDING OF HOW THE SEA URCHIN EMBRYO DYNAMICALLY CONTROLS THE SHAPE OF ITS ENDOSKELETON. POISED AT THE INTERSECTION OF MOLECULAR BIOLOGY, MATERIALS SCIENCE, AND BIOENGINEERING, THE PROPOSED RESEARCH HAS THE POTENTIAL TO INFORM A WEALTH OF NEW TECHNOLOGIES, FROM BIO-INSPIRED AND BIO-ENABLED MATERIALS TO MATERIALS FOR CARBON DIOXIDE SEQUESTRATION. THE TEAM WILL LEVERAGE THE INTERDISCIPLINARY APPROACH OF THE PROPOSED ACTIVITIES TO ENGAGE UNDERGRADUATE STUDENTS FROM A BROAD RANGE OF DISCIPLINARY AND SOCIOECONOMIC BACKGROUNDS IN RESEARCH, DRAWING ON THE NSF REU PROGRAM AND THE MATERIALS INITIATIVE FOR COMPREHENSIVE RESEARCH OPPORTUNITY (MICRO) AT NORTHWESTERN UNIVERSITY. ADDITIONALLY, THE TEAM WILL DEVELOP MICROFLUIDIC DEVICES TO BE USED IN AN UNDERGRADUATE LABORATORY CLASS ON PHASE TRANSFORMATIONS AND FOR OUTREACH ACTIVITIES. 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 | $181.3k | 6/30/25 | ||
| Not listed | $185.4k | 7/2/24 |