Project Grant R01EB036245
- This Project Grant award from the National Science Foundation (NSF) under the Technology, Innovation, and Partnerships (CFDA 47.084) program provides $304,906 to Seabird Lifesciences LLC for the development of a novel bioprinting approach to create vascular grafts. The project aims to produce a next-generation vascular graft that improves outcomes for patients undergoing vascular surgeries by enhancing tissue integration, improving long-term performance, and reducing the need for repeat...
- This $256,000 Project Grant from the National Science Foundation's Technology, Innovation, and Partnerships program will support the development of additive manufacturing techniques for soft tissue repair. Asante Bio LLC will receive funding to design and engineer a novel 3D microfiber printer capable of assembling synthetic biopolymer filaments into fibrous, flexible implants that promote soft tissue healing. Through this six-month award ending November 2022, Asante Bio will optimize...
- This Project Grant award from the National Science Foundation (NSF) Technology, Innovation, and Partnerships (TIP) program (CFDA 47.084) provides $274,811 to Anova Biomedical, Inc. to develop 3D printed personalized vascular grafts using novel elastomeric resins. The key objectives are to: 1) develop and characterize the novel 3D printing resin for producing personalized, elastic, and bioresorbable vascular grafts; 2) demonstrate the ability to 3D print vascular prosthetics using patient CT...
- This National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) Phase I Small Business Innovation Research (SBIR) grant, awarded to Tissueform, Inc., a for-profit woman-owned small business in Boulder, Colorado, aims to develop a library of human-based bioinks for 3D bioprinting applications. The $274,822 award, with a performance period from September 2024 to August 2025, will focus on creating granulated bioinks for tissues such as cartilage, bone, skin, liver,...
- This National Science Foundation Project Grant of $319,476 will fund research at the University of Virginia from March 2023 through February 2026 under the Engineering program (CFDA 47.041). The research aims to establish the foundational science for voxelated bioprinting through elucidating the nonlinear fluid dynamics of all-aqueous printing of viscoelastic droplets in yield-stress fluids. A printing platform will be developed to study droplet printing dynamics in real time. Control strategies...
- The National Science Foundation (NSF) awarded a Project Grant through its Directorate for Technology, Innovation, and Partnerships (CFDA 47.084) to Georgia Tech Research Corporation in the amount of $249,689 for the project "3D Printed Tissue Implants for Facial Surgery." The project aims to develop a platform for 3D printing tissue implants for facial surgery, enabling the design and rapid manufacturing of implants for tissue reconstruction. The work will involve evaluating the impact...
- Federal Project Grant Award Summary Yale University received a $460,625 project grant from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837), awarded August 10, 2025, with completion targeted for May 31, 2027. The award funds development of tissue-engineered vascular conduits (TEVCs) utilizing an innovative bioprinting methodology capable of directly printing physiological materials with embedded cells. The research will...
- The National Institutes of Health's National Heart, Lung and Blood Institute awarded Fluidform Inc. a $766,107 Project Grant under the Cardiovascular Diseases Research program (CFDA 93.837) from April 1, 2021 to March 31, 2022. The grant funds the development of an advanced bioprosthetic collagen heart valve using 3D printing techniques to recreate the collagen fiber architecture and mechanical properties of native heart valve leaflets. Fluidform will collaborate with Carnegie Mellon...
- This $305,548 National Science Foundation Engineering grant will support the acquisition of a multi-modal, high-resolution 4D bioprinting platform at North Carolina State University. The platform features laser induced forward transfer, micro-valve drop-on-demand, and micro-extrusion printing capabilities for fundamental research and workforce training in additive manufacturing, tissue engineering, plant and animal cell biology, functional materials engineering, and bioelectronics. With...
- This Project Grant award from the National Science Foundation (NSF) Division of Chemical, Bioengineering, Environmental, and Transport Systems (CFDA 47.041 - Engineering) supports a $320,155 research project at Purdue University to investigate the complex flow and transport processes within microvascular networks and their impact on vascular remodeling. The key objectives are to develop a novel computational model integrated with high-resolution imaging data to gain fundamental understanding...
3D PRINTING OF AIR: AN INTANGIBLE INK FOR FABRICATION OF VASCULARIZED TISSUES - PROJECT SUMMARY/ABSTRACT THREE-DIMENSIONAL (3D) BIOPRINTING HAS BEEN MAKING A REVOLUTIONARY IMPACT ON BUILDING LIVING TISSUES AND ORGANS. DESPITE SEVERAL ATTEMPTS, VASCULARIZATION IS STILL AN UNMET PROBLEM FOR 3D BIOPRINTING OF SCALABLE TISSUES AND ORGANS. IN SPITE OF SIGNIFICANT EFFORTS REPORTED TO GENERATE VASCULAR NETWORKS IN 3D PRINTED TISSUES, THE GOLD STANDARD IS STILL THE USE OF SACRIFICIAL INKS, WHICH HAS SEVERAL SHORTCOMINGS SUCH AS THE NEED FOR EXTENSIVE POST- PROCESSING EFFORTS TO REMOVE SACRIFICIAL INKS, INABILITY TO REMOVE THESE INKS FROM LOW ASPECT-RATIO FEATURES (I.E., HIGHLY THIN, LONG VASCULAR NETWORKS) AND THE RESIDUALS REMAINING FROM INKS THAT USUALLY INTERFERE WITH BIOLOGICAL FUNCTION OF CELLS INHIBITING THEIR ADHESION AND SPREAD. IN THIS PROJECT, WE PROPOSE A HIGHLY NOVEL TECHNOLOGY THROUGH HARNESSING THE POWER OF COMPRESSIBILITY OF AIR IN YIELD-STRESS GELS AND UNVEIL 3D PRINTING OF AIR (3DAIRP), WHICH IS AN INTANGIBLE INK. THE PROCESS WILL INDUCE OPEN-CHANNEL NETWORK GENERATION IN YIELD-STRESS GELS IN A SINGLE STEP, WHICH WILL OVERCOME THE OUTSTANDING LIMITATIONS WITH THE USE OF SACRIFICIAL INKS. MOREOVER, THE PROPOSED 3DAIRP TECHNOLOGY WILL FACILITATE THE GENERATION OF VASCULAR CHANNELS (UP TO THE MINIMUM DIAMETER OF ~125 MM) AT AN UNPRECEDENTED PRINTING SPEED (I.E., >10-FOLDS FASTER THAN 3D PRINTING OF SACRIFICIAL INKS). IN SPECIFIC AIM 1, WE PROPOSE TO DEVELOP 3DAIRP TECHNOLOGY, WHICH HAS THE CAPABILITY OF RAPIDLY GENERATING OPEN STABLE CHANNELS IN YIELD-STRESS GELS. WE WILL INVESTIGATE THE INTERPLAY AMONG THE VISCOELASTIC PROPERTIES OF YIELD-STRESS GELS AND GOVERNING PHYSICAL FORCES DURING 3DAIRP, AND HOW SUCH INTERPLAY WILL ENABLE US TO DISSECT THE KNOWLEDGE FOR DIRECTLY LAYING DOWN THE AIR CHANNELS TO PRODUCE STABLE VASCULAR NETWORKS IN ENGINEERED TISSUES. TO EXEMPLIFY THE TECHNOLOGY, WE WILL DEMONSTRATE TWO UNIQUE APPLICATIONS INCLUDING (I) A SCALABLE VASCULARIZED BONE TISSUE AND (II) AN ATHEROSCLEROSIS MODEL ON A CHIP, BOTH IN VITRO. IN SPECIFIC AIM 2, WE WILL RECONFIGURE THE TECHNOLOGY FOR 3DAIRP INTRAOPERATIVELY THAT WILL FACILITATE AIR CHANNEL GENERATION UNDER SURGICAL SETTINGS. TO EXEMPLIFY ITS UTILITY, WE WILL DEMONSTRATE TWO UNIQUE APPLICATIONS INCLUDING (I) INTRAOPERATIVE 3DAIRP WITHIN BIOPRINTED BONE CONSTRUCTS IN CRITICAL-SIZED RAT CALVARIAL DEFECTS AND (II) COUPLING INTRAOPERATIVE 3DAIRP WITH A NEW MICROSURGERY TECHNIQUE TO RAPIDLY INDUCE ANGIOGENESIS AND ORIENT VASCULAR INGROWTH IN RAT HINDLIMBS. IN THIS REGARD, WE HAVE FORMED A COMPLEMENTARY COLLABORATION THAT MERGES ESSENTIAL DOMAIN KNOWLEDGE IN BIOPRINTING, 3D PRINTING PROCESS AND INSTRUMENT DEVELOPMENT, BIOMATERIALS, VASCULARIZATION, MICROSURGERY, CRANIOFACIAL SURGERY, BIOMECHANICS AND SIMULATION, AND BONE AND VASCULAR TISSUE ENGINEERING WITH THE DEPTH NECESSARY TO PROPEL THE PROPOSED WORK TOWARDS MEANINGFUL ADVANCES THAT WOULD OTHERWISE NOT BE POSSIBLE. SUCCESSFUL COMPLETION OF THE PROPOSED WORK IS ANTICIPATED TO GIVE RISE TO AN ADVANCED 3D PRINTING TECHNOLOGY FOR RAPID GENERATION OF VASCULAR NETWORKS TOWARDS FABRICATION OF SCALABLE TISSUES AND ORGANS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $572.2k | 4/10/25 | ||
| Not listed | $582.3k | 7/9/24 | ||
| Not listed | $582.3k | 7/9/24 |