Project Grant 2614036
- This three-year, $1.2 million project grant from the National Science Foundation's Engineering program (CFDA 47.041) will support research at Washington State University and Cornell University to develop new tissue engineering strategies for cartilage regeneration. The researchers aim to stimulate adult stem cells to become mature chondrocytes for cartilage production through small molecules that interfere with bone cell differentiation genes. Real-time imaging will monitor cell growth...
- This National Science Foundation Project Grant of $100,000 supports research into polyelectrolyte multilayered surfaces for use in human mesenchymal stem/stromal cell manufacturing. The goal is to develop a scalable and controllable polymeric coating composed of natural polymers to improve the cell expansion process used in producing therapeutic human mesenchymal stromal cells. The coating is constructed via layer-by-layer assembly of collagen and heparin and has been shown to increase cell...
- This $300,000 project grant from the National Science Foundation will fund research at Cornell University from October 1, 2022 to September 30, 2025. The award is provided through NSF's Engineering Biology and Health Cluster within the Directorate for Engineering, Biological Sciences and Biotechnology, under the CFDA program for Engineering. Specifically, researchers at Cornell University and Washington State University will work to develop new tissue engineering strategies for cartilage repair....
- This National Science Foundation (NSF) CAREER award under the Engineering program (CFDA 47.041) provides $624,622 over 5 years starting September 1, 2025 to support research aimed at advancing the scientific understanding of cartilage microstructure and function. The principal investigator will leverage quantitative magnetic resonance imaging (MRI) techniques to study how changes in the microscopic structure of cartilage impact its macroscopic behavior under loading conditions experienced in...
- The National Science Foundation (NSF) Division of Chemical, Bioengineering, Environmental, and Transport Systems awarded a $601,071 Project Grant to Texas A&M Engineering Experiment Station (Tees), a division of the Texas A&M University System, to conduct research under the NSF Engineering program (CFDA 47.041). The goal of this 3-year project is to develop a predictive mathematical model of the relationship between bone morphogenetic protein (BMP) signaling and stem cell differentiation...
- This $1,000,000 National Science Foundation project grant will fund the Reproducible Cells and Organoids via Directed-Differentiation Encoding (RECODE) project at the University of Michigan from November 1, 2022 to October 31, 2026. The project aims to employ innovative biophysical, data-driven, and synthetic gene circuit engineering methods to better understand how adult human mesenchymal stem cells transform into chondrocytes, the cells that form cartilage. Specifically, the researchers will...
- This three-year, $500,000 project grant from the National Science Foundation's Biological Sciences program (CFDA 47.074) supports research at the University of Vermont to define environmental design criteria for directing differentiation of type 1 and type 2 lung alveolar epithelial cells. The University of Colorado-Denver and University of Iowa are sub-awardees on the project. Researchers will utilize novel tissue engineering approaches incorporating hydrogels derived from decellularized...
- This $546,600 Project Grant awarded by the National Science Foundation's (NSF) Integrative Activities program (CFDA 47.083) aims to engineer mesenchymal stem cell-derived exosomes (MSC-EXO) for targeted immunomodulation and enhanced bone repair. The University of Maryland Eastern Shore (UMES), a historically black, 1890 land-grant institution, is the primary awardee. The key objectives of this 3-year project are to: 1) generate engineered exosomes (TEX) for reprogramming macrophages, 2) modify...
- This Project Grant award of $285,630 from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) will support research at the University of New England (UNE) to elucidate the molecular mechanisms by which articular chondrocytes (cartilage cells) respond to mechanical forces and regulate cartilage health. The goal is to advance the understanding of the pathogenesis of osteoarthritis, a leading cause of joint pain and disability. The research objectives include establishing...
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) is supporting a collaborative research effort focused on developing an intelligent lab-on-chip device to monitor and promote the maturation of stem cell-derived cardiomyocytes. The $192,150 award to the New York Institute of Technology (NYIT) aims to create an integrated system that can non-invasively evaluate cardiomyocyte maturity in real-time and adaptively apply electrical and mechanical...
CAREER: EXPLORING THE DIFFERENTIATION OF MESENCHYMAL STEM CELL TO CHONDROCYTES AFTER ELECTROSPRAYING -THE OVERARCHING GOAL OF THIS RESEARCH IS TO FIND A NEW AND EFFECTIVE WAY TO TURN STEM CELLS, CELLS THAT HAVE THE POTENTIAL TO BE TRANSFORMED/DIFFERENTIATED INTO ANY TYPE OF CELL, INTO CHONDROCYTES, A SPECIFIC TYPE OF CELL THAT IS IMPORTANT FOR CARTILAGE REPAIR. THE FOCUS OF THIS FACULTY EARLY CAREER DEVELOPMENT PROJECT IS ON EXPLORING A TECHNIQUE CALLED ELECTROSPRAYING, WHERE ELECTRICITY AND MECHANICAL FORCES (RATHER THAN SPECIAL/USUALLY EXPENSIVE DIFFERENTIATING MEDIA) ARE USED TO GUIDE THE TRANSFORMATION OF THE STEM CELLS INTO CHONDROCYTES. THIS INNOVATIVE METHOD INVOLVES UTILIZING THE PATIENT'S OWN STEM CELLS, OBTAINED FROM THEIR FAT TISSUE, TO MINIMIZE THE RISK OF IMMUNE REJECTION. BY ESTABLISHING A PERSONALIZED APPROACH TO CREATE CELLS FOR REPAIRING DAMAGED CARTILAGE, SUCCESSFUL DEVELOPMENT OF THIS PROCESS WILL HAVE SIGNIFICANT IMPLICATIONS FOR REGENERATIVE MEDICINE FOCUSED ON OTHER TISSUES. BEYOND THE SCIENTIFIC OBJECTIVES, THE INITIATIVE AIMS TO TRAIN SCIENCE TEACHERS IN WEST VIRGINIA. IN-PERSON SESSIONS WILL FOCUS ON SEAMLESSLY INTEGRATING A CUTTING-EDGE TISSUE ENGINEERING MODULE INTO THEIR EXISTING COURSES. LEVERAGING THE FIELD OF TISSUE ENGINEERING, THE PROJECT STRIVES TO INFUSE CORE SCIENTIFIC CONCEPTS INTO HIGH SCHOOL SCIENCE CLASSES, ENRICHING THE LEARNING EXPERIENCE. THE OVERARCHING GOAL OF THESE ACTIVITIES IS TO IGNITE A PASSION FOR SCIENTIFIC EXPLORATION AND NURTURE THE NEXT GENERATION OF INNOVATORS AND PROBLEM SOLVERS THROUGH THIS EDUCATIONAL ENDEAVOR. IN THE PURSUIT OF DIFFERENTIATING STEM CELLS INTO A HOMOGENEOUS POPULATION, DIVERSE LEVELS OF SUCCESS HAVE BEEN ACHIEVED, REVEALING THE INTRICACIES AND CHALLENGES OF THIS RESEARCH FIELD. CELL ELECTROSPINNING AND ELECTROSPRAYING OFFER A PROMISING AVENUE TO EFFECTIVELY DIFFERENTIATE STEM CELLS INTO MATURE AND FUNCTIONAL CELL TYPES, POTENTIALLY ADVANCING TISSUE ENGINEERING SIGNIFICANTLY. THE CAREER PROJECT?S PRIMARY OBJECTIVE IS TO EXPLORE ELECTROSPINNING AND ELECTROSPRAYING TECHNIQUES, AIMING TO REVOLUTIONIZE THE PRODUCTION OF CHONDROCYTES FROM HUMAN ADIPOSE-DERIVED STEM CELLS (HASCS). THIS STUDY SEEKS TO UNRAVEL THE COMPLEX MECHANISMS UNDERLYING THESE PROCESSES, ENHANCING UNDERSTANDING AND PAVING THE WAY FOR GROUNDBREAKING ADVANCEMENTS IN REGENERATIVE MEDICINE. USING THIS INNOVATIVE METHODOLOGY INVOLVING ELECTROSPINNING AND ELECTROSPRAYING OF CELLS, THE INVESTIGATION EXPLORES CYCLIC ADENOSINE MONOPHOSPHATE/PROTEIN KINASE A SIGNALING AND ATP OSCILLATION DURING THE CHONDROGENESIS OF HASCS. THIS PIONEERING STUDY HOLDS THE POTENTIAL TO PROVIDE PROFOUND INSIGHTS INTO TWO CRITICAL DOMAINS: INTRODUCING ELECTROSPRAYING AS A NOVEL CELLULAR DIFFERENTIATION METHOD AND ESTABLISHING GROUNDWORK FOR A NEW SOURCE OF CHONDROCYTES IN AUTOLOGOUS CHONDROCYTE IMPLANTATION (ACI). THIS PROJECT IS JOINTLY FUNDED BY THE ENGINEERING OF BIOMEDICAL SYSTEMS PROGRAM AND THE ESTABLISHED PROGRAM TO STIMULATE COMPETITIVE RESEARCH (EPSCOR). 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 | $63.2k | 2/11/26 |