Project Grant R21EB035402
- This $635,000 Project Grant awarded by the National Science Foundation (NSF) Division of Civil, Mechanical, and Manufacturing Innovation supports research to understand how mechanical boundary conditions influence tissue assembly and repair in 3D fibrous microtissues. The research aims to advance knowledge about the mechanisms by which mechanical forces regulate new tissue formation and organization, particularly as it relates to wound healing. The project will integrate in vitro experiments and...
- 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 $476,886 federal Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports research at Boston University to develop computational models for predicting the spatiotemporal distribution of growth factors in tissue engineering scaffolds. The goal is to optimize scaffold designs to achieve optimal growth factor exposure profiles that improve tissue regeneration outcomes, particularly for cartilage repair. The research utilizes reaction-diffusion...
- 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 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...
- This $2,624,970 federal Project Grant, awarded by the National Institutes of Health (NIH) under the Trans-NIH Research Support program (CFDA 93.310), aims to construct the first-ever foundational in silico (computational) model of whole-embryo mouse embryogenesis. The project will leverage cutting-edge sequencing technology and machine learning techniques to establish a large-scale 3D multi-omics cell atlas of mouse embryogenesis from embryonic day 6.5 to 16.5, involving a total of 50 million...
- This Project Grant awarded by the National Science Foundation (CFDA 47.041 - Engineering) to Cleveland State University (CSU) provides $500,000 in funding from January 1, 2025 to December 31, 2027 to develop bioprinted tissue scaffolds with Schwann cell density gradients and electrical conductivity for peripheral nerve regeneration. The goal is to understand how Schwann cell density gradients and electrical properties within the scaffolds can enhance the regeneration of injured peripheral...
- The University of California, San Francisco (UCSF) received a $391,703 Project Grant from the National Cancer Institute (NCI) under the Cancer Detection and Diagnosis Research program (CFDA 93.394) to develop an innovative "4D tissue fabrication" approach to improve the reproducibility and complexity of patient-derived organoid (PDO) models for preclinical cancer drug testing and disease modeling. The 3-year project aims to create more homogeneous and physiologically relevant PDO...
- The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded the University of Florida a $616,523 Project Grant on August 8, 2025, under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286). The three-year project, scheduled for completion on July 31, 2028, will develop a generative artificial intelligence (AI)-driven platform for phenotypic drug discovery (PDD) that enables cell morphology-guided, scalable, and...
- This $234,191 project grant from the National Science Foundation's STEM Education program (CFDA 47.076) supports the Consortium for Advanced Manufacturing of Cell and Tissue-based Products coordination network. The network aims to develop a skilled and diverse workforce for advanced manufacturing of cell and tissue-based products through stakeholder engagement and workforce development activities. Specifically, the awardee - Bioindustrial Manufacturing And Design Ecosystem (Biomade) - will...
MULTISCALE COMPUTATIONAL MODELING TO DESIGN PATTERNED TISSUE ASSEMBLOIDS FOR BIOMANUFACTURING - PROJECT SUMMARY THE MASS PRODUCTION OF TISSUES AND ORGANS IS THE ULTIMATE GOAL OF BIOMANUFACTURING, BUT THIS GOAL WILL NOT BE ACHIEVED WITHOUT THE ASSISTANCE OF ENGINEERING DESIGN TOOLS THAT PREDICT HOW THREE-DIMENSIONAL, MULTICELLULAR STRUCTURES, COMPRISED OF CELLS THAT DYNAMICALLY RESPOND TO EACH OTHER AND THEIR ENVIRONMENT, SELF-ORGANIZE INTO SPATIALLY PATTERNED TISSUES. TO DATE, NO SUCH DESIGN TOOLS EXIST, AND OUR HIGH-RISK, HIGH-REWARD PROPOSAL SEEKS TO DEVELOP AND VALIDATE THE FIRST MULTISCALE COMPUTATIONAL MODEL TO INFORM THE DESIGN, FABRICATION, AND SELF- ASSEMBLY OF TISSUES COMPRISED OF HETEROGENEOUS CELL TYPES ENGINEERED WITH SYNTHETIC GENE CIRCUITS REGULATING CELL ADHESION. WE RECENTLY PUBLISHED A RELATIVELY SIMPLE AGENT-BASED COMPUTATIONAL MODEL, THAT WHEN COUPLED WITH MACHINE LEARNING ALGORITHMS, IDENTIFIES DESIGN PARAMETERS THAT GENERATE MULTICELL SPHEROIDS, OR SIMPLE TISSUES, COMPRISED OF HETEROGENEOUS SUBPOPULATIONS OF CELLS THAT SELF-ORGANIZE INTO SPECIFIC PATTERNS (E.G., STRIPED, SOCCER BALL, CORE/SHELL, AND CORE/POLE). THE PROPOSED WORK WILL GREATLY ELABORATE THIS SIMPLE MODEL TO A MULTISCALE COMPUTATIONAL MODEL TO PREDICT HOW COLLECTIONS OF BIOPRINTED SPHEROIDS FORM INTO SPATIALLY PATTERNED "ASSEMBLOIDS." WE WILL UTILIZE MIXED POPULATIONS OF TWO CELL TYPES GENETICALLY ENGINEERED WITH HIGHLY MODULAR SYNNOTCH SYNTHETIC GENE CIRCUITS, WHICH PROPAGATE INTRACELLULAR SIGNALS TO REGULATE CELL-CELL ADHESION STRENGTH BASED ON CELL-CELL INTERACTIONS. WE WILL ALSO LEVERAGE STATE-OF-THE-ART 3D PRINTING SPHEROID POSITIONING TECHNOLOGY DEVELOPED AT OUR INSTITUTION TO PRECISELY PLACE THREE-DIMENSIONAL SPHEROIDS ADJACENT TO ONE ANOTHER WITHIN A SYNTHETIC BIOMATERIAL THAT FACILITATES THE FORMATION OF ENGINEERED TISSUE CONSTRUCTS. IN AIM 1, WE WILL DEVELOP A NOVEL MULTISCALE AGENT-BASED COMPUTATIONAL MODEL THAT PREDICTS HOW SYNNOTCH-MEDIATED INTERCELLULAR SIGNALING AND INTRACELLULAR SIGNALING IN INDIVIDUAL CELLS GIVES RISE TO SELF-SORTING OF HETEROGENEOUS CELL POPULATIONS, LEADING TO THE EMERGENT PATTERNING OF THREE-DIMENSIONAL TISSUES. WE WILL RUN TENS OF THOUSANDS OF SIMULATIONS AND APPLY CLUSTERING ALGORITHMS TO EXTRACT DESIGN PARAMETERS THAT FAVOR CERTAIN THREE-DIMENSIONAL TISSUE PATTERNS OVER OTHERS. IN AIM 2, WE WILL EXPERIMENTALLY VALIDATE THAT THE COMPUTATIONAL MODEL CAN BE RELIABLY USED TO DESIGN THREE-DIMENSIONAL MULTICELLULAR TISSUE CONSTRUCTS BY CHALLENGING IT TO IDENTIFY THE DESIGN PARAMETERS (E.G., INITIAL NUMBER OF CELLS, RATIO OF CELL SUBPOPULATIONS, HETEROTYPIC AND HOMOTYPIC CELL-CELL ADHESION STRENGTHS) THAT WILL GENERATE THREE-DIMENSIONAL ASSEMBLOIDS WITH SPECIFIC MULTICELLULAR PATTERNS. WE WILL CULTURE SYNNOTCH CELLS INTO SPHEROIDS AND SPATIALLY POSITION THEM INTO TISSUE ASSEMBLOIDS ACCORDING TO THE DESIGN PARAMETERS PREDICTED BY THE COMPUTER MODEL, AND THEN WE WILL ASSESS IF THE EXPERIMENTAL TISSUES, IMAGED USING CONFOCAL MICROSCOPY, EXHIBIT THE SPATIAL PATTERNS PREDICTED BY THE COMPUTATIONAL MODEL. WE EXPECT THAT OUR PROJECT, WHICH TIGHTLY INTEGRATES COMPUTATIONAL MODELING WITH EXPERIMENTS, WILL SIGNIFICANTLY ADVANCE THE FIELDS OF THREE-DIMENSIONAL BIOPRINTING, BIOMANUFACTURING, AND MULTISCALE COMPUTATIONAL MODELING OF MULTICELLULAR TISSUES AND ENABLE THE ROBUST GENERATION OF COMPLEX TISSUE STRUCTURES BY DESIGN.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $205.7k | 8/5/25 | ||
| Not listed | $169.7k | 7/31/24 |