Project Grant DP2HL168563
- This $590,283 Project Grant award from the National Heart Lung and Blood Institute (CFDA 93.837 Cardiovascular Diseases Research) aims to develop feedback-controlled closed-loop manufacturing processes for differentiating human pluripotent stem cells into cardiomyocytes. The key objectives are to: 1) Identify failure modes in 2D cardiomyocyte differentiation through integrated single-cell transcriptomics and epigenomics, and 2) Develop control strategies to enhance the reproducibility of human...
- This Project Grant award from the National Institutes of Health (NIH) Office of Research Infrastructure Programs (CFDA 93.351) provides $1,521,607.00 to Emory University to acquire an automated robotic culture system for generating, maintaining, and analyzing human induced pluripotent stem cell (iPSC)-derived organoids. The grant aims to establish the Organoid Hub at Emory University, which will utilize the automated system to enhance the standardization, scalability, and accessibility of 3D...
- This federal Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) provides $275,396 to Link Biosystems Inc., a self-certified small disadvantaged business, to develop bioreactor technologies for efficient differentiation, scale-up, and maturation of induced pluripotent stem cell (iPSC)-derived cardiomyocytes. The research aims to address challenges in producing clinically relevant quantities of...
- This $250,000 National Science Foundation Technology, Innovation, and Partnerships Project Grant supports the development of artificial substrates for growing human stem cells suitable for clinical applications at Oakland University from March 2023 to February 2025. The goal is to accelerate the potential benefits of using human pluripotent stem cells and their derivatives for treating and curing diseases by producing a synthetic substrate that supports growth of human pluripotent stem cells...
- This $500,000 Project Grant from the National Science Foundation Division of Molecular and Cellular Biosciences, under the Biological Sciences federal grant program (CFDA 47.074), will support research to develop an end-to-end continuous manufacturing process for cell therapies using robotics and microfluidic technologies. The Georgia Tech Research Corporation will receive funding to create a more integrated workflow based on microfluidic device-enabled genetic engineering, cell expansion, and...
- This Project Grant award from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), aims to advance the commercialization of an automated cell culturing system that addresses limitations of conventional methods. The $295,038 award to Altvivo, Inc. will enable the development of novel capabilities, including 1) inducing different cell lineages from stem cells via localized drug delivery, and 2) real-time,...
- This Project Grant award of $385,671 from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), supports research to develop new 3D printing techniques for creating biomimetic cell culture matrices. The key objectives are to: 1) Investigate the impacts of using visible and near-infrared light versus UV light in digital light processing (DLP) 3D printing on cell viability and metabolism; 2) Determine optimal...
- This federal Project Grant award of $460,500 from the National Institute of Biomedical Imaging and Bioengineering (NIBIB) under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286) is aimed at developing novel bioprinting methodologies for the production of human stem cell-based organoids. The key objectives are to: 1) Create a customized bioink formulation using proteins, polysaccharides, and functionalized nanoparticles to foster the...
- The National Heart Lung and Blood Institute (NHLBI), part of the U.S. National Institutes of Health (NIH), awarded a $460,625 Project Grant under the Cardiovascular Diseases Research program (CFDA 93.837) to Yale University on August 10, 2025. The objective of this project is to develop highly tunable and customizable Tissue Engineered Vascular Conduits (TEVCs) using a novel bioprinting method that can directly print fully physiological materials, including cell-laden tissues. The project aims...
- This $1,000,000 National Science Foundation project grant supports research at the University of Wisconsin-Madison to develop single cell-level programming of human induced pluripotent stem cell differentiation into chamber-specific cardiomyocytes. The goal is to generate cardiomyocytes from each chamber of the heart through precise control of Wnt and retinoic acid signaling at the single cell level via engineered genetic programs and superstructures. If successful, this approach could establish...
TRILLION CELL CULTURE TO FUEL ORGAN BIOFABRICATION - PROJECT SUMMARY THE CONVERGENCE OF HUMAN INDUCED PLURIPOTENT STEM CELLS (HIPSCS), ORGANOIDS, SYNTHETIC BIOLOGY AND 3D BIOPRINTING PROMISES A FUTURE OF PATIENT-SPECIFIC LAB-GROWN ORGANS FOR PATIENTS SUFFERING FROM ORGAN FAILURE. HOWEVER, TO REALIZE THIS ORGAN ENGINEERING VISION, BIOFABRICATION RESEARCHERS SORELY NEED THOUSAND-LITER-SCALE CULTURES OF HIPSCS TO GENERATE ENOUGH MATERIAL TO BEGIN HIGH-THROUGHPUT EXPERIMENTATION. SOLVING THE MYRIAD CHALLENGES IN ORGAN CONSTRUCTION, VASCULARIZATION, MAINTENANCE, MATURATION, AND CHARACTERIZATION WILL REQUIRE DECADES OF PAINSTAKING RESEARCH. YET, DERIVING PATIENT-SPECIFIC CELLS AT THIS SCALE REMAINS TWO ORDERS OF MAGNITUDE TOO EXPENSIVE FOR ACADEMIC LABORATORIES DUE, IN LARGE PART, TO THE EXPENSIVE GROWTH FACTORS REQUIRED FOR HIPSC MAINTENANCE AND DIFFERENTIATION. FURTHERMORE, EXISTING PROTOCOLS TO GENERATE ORGANOIDS FROM STEM CELLS ARE CUMBERSOME, SLOW, AND INEFFICIENT, LIMITING THE NUMBER OF ORGANOIDS THAT CAN BE DERIVED FOR 3D BIOPRINTING APPLICATIONS. IN THESE PROPOSED STUDIES, WE DETAIL NOVEL METHODS TO DRAMATICALLY REDUCE THE COST OF STEM CELL MAINTENANCE AND INCREASE THE SCALE OF ORGANOID PRODUCTION. TO REDUCE THE COSTS OF LARGE-SCALE HIPSC GROWTH BY TWO ORDERS OF MAGNITUDE, WE PROPOSE TO ENGINEER GROWTH FACTOR-FREE HIPSCS BY PROGRAMMING THEM TO EXPRESS CONSTITUTIVELY-ACTIVE GROWTH FACTOR RECEPTORS WHICH CAN BE EXCISED PRIOR TO DIFFERENTIATION. TO ENHANCE THE SCALE AND THROUGHPUT IN GENERATING MULTICELLULAR CARDIAC ORGANOIDS, WE PROPOSE ENGINEERING HIPSCS TO UNDERGO SIMULTANEOUS MULTICELLULAR DIFFERENTIATION WITHOUT REQUIRING GROWTH FACTORS. TO ACHIEVE THIS, WE PROPOSE A NOVEL STOCHASTIC CRE-LOX RECOMBINATION SYSTEM TO UPREGULATE ONE-OF-THREE TRANSCRIPTION FACTORS, EOMES, NKX3.1, OR ETV2, TO GENERATE TRI-CELLULAR SYNTHETIC CARDIAC ORGANOIDS CONTAINING CARDIOMYOCYTES, FIBROBLASTS, AND ENDOTHELIAL CELLS, RESPECTIVELY. BY CULTURING MILLIONS OF THESE SYNTHETIC CARDIAC ORGANOIDS IN SUSPENSION CULTURE, WE WILL DERIVE THERAPEUTICALLY-RELEVANT QUANTITIES OF DENSELY CELLULAR MYOCARDIAL BIOINK FOR 3D BIOPRINTING. WE WILL NEXT USE SYNTHETIC CARDIAC ORGANOID BIOINK TO DERIVE A HUMAN-SCALE, THICK-WALLED, AND VASCULARIZED VENTRICLE MODEL. THESE BIOPRINTED VENTRICLES WILL BE HOUSED IN A CUSTOM PERFUSION BIOREACTOR FOR STUDYING HOW MECHANICAL AND ELECTRICAL STIMULATION CAN MAINTAIN VASCULAR PERFUSION, ENHANCE CARDIOMYOCYTE MATURATION AND ALIGNMENT, AND AFFECT ORGAN- SCALE CONTRACTILITY AND EJECTION FRACTION. THE HIGHLY SCALABLE STEM CELL AND ORGANOID CULTURE METHODS PRESENTED HERE ARE APPLICABLE ACROSS MANY ORGAN SYSTEMS, AND COULD REVOLUTIONIZE THE SCALE AND PACE OF ORGAN BIOFABRICATION RESEARCH.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $944.4k | 8/19/25 | ||
| Not listed | $1.4m | 8/31/22 | ||
| Not listed | $1.4m | 8/31/22 |