Project Grant R44ES034681

Award Date 5/17/23
Completion Date 4/30/25
Dollars Obligated $2.6M
Federal Grant Program
93.113
Assistance Type
Project Grant
Place of Performance
Ashland, MA 01721, USA
Similar Awards
This Project Grant award from the National Institutes of Health (NIH) Research Infrastructure Programs (CFDA 93.351) provides $270,428 to TEO Therapeutics Incorporated, a small disadvantaged business, to develop a biomimetic platform for more efficient pharmaceutical drug development in oncology. The key products and services to be delivered include: Refining and testing a proof-of-concept hardware product line for a Shell-Free Quail Xenograft Assay, optimizing throughput and assessing...
This National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) Phase I Small Business Technology Transfer (STTR) award of $275,000 provides funding to Vivosphere LLC in Auburn, Alabama to develop a novel tissue-engineered platform for more effective cancer drug screening. The project aims to create a 3D hydrogel scaffold that provides a more physiologically relevant microenvironment for cell growth and drug response, enabling higher-throughput and more predictive...
This STTR Project Grant, awarded by the National Institute of General Medical Sciences (NIGMS) under CFDA 93.859 Biomedical Research and Research Training program, aims to advance the commercialization of an innovative automated cell culturing system. The $295,038 award to Altvivo, Inc. will enable demonstration of the system's capabilities, including: 1) inducing different cell lineages from stem cells via localized drug delivery to achieve complex tissue patterns, and 2) a non-disruptive...
This National Science Foundation (NSF) SBIR Phase I Project Grant award of $304,906 to Seabird Lifesciences LLC, a minority-owned small business in Milton, MA, aims to develop an innovative bioprinting process for creating vascular grafts that closely mimic the properties of natural blood vessels. The project, funded under the NSF Technology, Innovation, and Partnerships (CFDA 47.084) program, seeks to address limitations of current synthetic and biological vascular grafts by utilizing a...
This $304,119 Project Grant award from the National Heart, Lung, and Blood Institute (NHLBI) under the Cardiovascular Diseases Research program (CFDA 93.837) supports the development of innovative in vitro 3D atherosclerosis models and high-throughput drug screening assays by Endomimetics LLC. The key objectives are to create an automated, precise approach for fabricating advanced 3D vascular sheet and atherosclerosis models, which will enable efficient, high-throughput testing of drug...
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...
Rattan Life Science Inc. received a $275,000 Project Grant award from the National Science Foundation under the NSF Technology, Innovation, and Partnerships program (CFDA 47.084) to develop a platform for generating induced pluripotent stem cell-derived naïve CD4+ and CD8+ T cells with fidelity, reproducibility and scalability. The platform employs proprietary induced thymic epithelial cells to provide biologically relevant thymic positive selection signals during T cell differentiation,...
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 Project Grant award, made by the National Institute of General Medical Sciences (NIGMS) under the Biomedical Research and Research Training program (CFDA 93.859), supports the development of Dermisphere, an advanced dermal regeneration scaffold product by Fesariustherapeutics Inc. The $349,345 award aims to demonstrate the feasibility of using Dermisphere to manage acute major burn wounds. Preliminary studies have shown that Dermisphere can support rapid and sustained cellular...
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...

DEVELOPMENT OF CELL CULTURE INSERTS AND 3D IN VITRO TISSUE MODELS UTILIZING NOVEL ELECTROSPUN SCAFFOLDS - TISSUE CULTURE INSERTS THAT UTILIZE FILM-BASED MICROPOROUS MEMBRANE SCAFFOLDS ARE KEY COMPONENTS OF IN VITRO TISSUE MODELS THAT ARE USED AS ALTERNATIVES TO ANIMAL TESTING. HOWEVER, INSERT SCAFFOLD TECHNOLOGY HAS NOT SIGNIFICANTLY ADVANCED IN NEARLY 30 YEARS. CURRENTLY AVAILABLE FILM-BASED INSERT SCAFFOLDS ARE ONLY 2-DIMENSIONAL (2D), AND ARE EXCESSIVELY RIGID COMPARED TO NATURAL EXTRACELLULAR MATRIX. THESE 2D SCAFFOLDS ARE NOT WELL-SUITED FOR PRODUCTION OF COMPLEX IN VITRO 3-DIMENSIONAL (3D) TISSUE MODELS. ELECTROSPINNING TECHNOLOGY CAN PRODUCE NOVEL SCAFFOLDS THAT BETTER REPLICATE NATURAL 3D EXTRACELLULAR MATRIX AND OVERCOME LIMITATIONS OF CURRENTLY AVAILABLE SCAFFOLDS. IN PHASE I-EQUIVALENT PRELIMINARY WORK, WE PRODUCED 3D ELECTROSPUN SCAFFOLDS AND DEVELOPED MANUFACTURING PROCESSES FOR ATTACHING THESE SCAFFOLDS TO HIGH-THROUGHPUT SCREENING (HTS) TRANSWELL TISSUE CULTURE INSERTS. WE ALSO DEMONSTRATED THE FEASIBILITY OF UTILIZING THE 3D ELECTROSPUN SCAFFOLD TRANSWELL PRODUCTS FOR PRODUCING ORGANOTYPIC IN VITRO MODELS OF FULL-THICKNESS HUMAN SKIN AND BRONCHIAL TISSUES. THESE TISSUE MODELS HAVE IMPROVED PHYSIOLOGICAL RELEVANCE AND FUNCTIONALITY COMPARED TO CURRENTLY AVAILABLE MODELS, AND ARE NEEDED AS ALTERNATIVES TO ANIMAL TESTING. THE GOAL OF THIS REVISED DIRECT PHASE II SBIR PROPOSAL IS TO FURTHER DEVELOP AND COMMERCIALIZE THESE NOVEL ELECTROSPUN SCAFFOLD INSERTS AND ORGANOTYPIC CULTURE MODELS. AIM 1 WILL UTILIZE 3D ELECTROSPUN SCAFFOLD INSERTS TO DEVELOP FULL-THICKNESS HUMAN SKIN MODELS CONSISTING OF HUMAN KERATINOCYTES AND HUMAN DERMAL FIBROBLASTS. AIM 2 WILL UTILIZE THE 3D ELECTROSPUN SCAFFOLD INSERTS TO DEVELOP FULL-THICKNESS HUMAN BRONCHIAL AIRWAY MODELS CONSISTING OF HUMAN BRONCHIAL EPITHELIAL CELLS AND HUMAN PULMONARY FIBROBLASTS. THE TISSUE MODELS WILL BE PRODUCED IN 24- AND 96-WELL HTS TRANSWELL SCAFFOLD PLATES, AS WELL AS INDIVIDUAL 6-, 12- AND 24-WELL TRANSWELL SCAFFOLD INSERT FORMATS. THE MODELS WILL BE PRODUCED WITHOUT THE USE OF ANIMAL-DERIVED EXTRACELLULAR MATRIX, AND WILL BE THE ONLY FULL-THICKNESS IN VITRO SKIN AND AIRWAY TISSUE MODELS COMMERCIALLY AVAILABLE AS HTS 24- AND 96-WELL FORMATS. THE TISSUE MODELS WILL BE CHARACTERIZED FOR BARRIER INTEGRITY, MORPHOLOGICAL APPEARANCE AND FUNCTION, AND INTRA- AND INTER-LOT REPRODUCIBILITY. VALIDATION OF THE MODELS FOR SEVERAL REGULATORY ACCEPTED ASSAYS INCLUDING ASSESSMENT OF SKIN IRRITATION AND PHOTOTOXICITY, AND ASSESSMENT OF AIRWAY TOXICITY OF TOBACCO PRODUCTS, WILL PROVIDE KEY OPPORTUNITIES FOR IMMEDIATE COMMERCIAL USE OF THE SCAFFOLD PRODUCTS AND MODELS. COMMERCIAL PRODUCTS THAT WILL RESULT FROM THIS PROJECT INCLUDE INDIVIDUAL TRANSWELL SCAFFOLD INSERTS AS WELL AS 24- AND 96-WELL HTS TRANSWELL SCAFFOLD PLATES THAT WILL BE MARKETED AS STAND-ALONE PRODUCTS TO ALLOW RESEARCHERS TO PRODUCE ANY TYPE OF TISSUE MODELS USING THEIR OWN CELLS AND MEDIA. TISSUE MODEL KITS FOR PRODUCING HUMAN SKIN AND BRONCHIAL MODELS THAT WOULD INCLUDE HTS TRANSWELL ELECTROSPUN SCAFFOLD PLATES TOGETHER WITH PRE-QUALIFIED CELLS AND CULTURE MEDIUM AND PRODUCTION PROTOCOLS COULD ALSO BE OFFERED THROUGH PARTNERSHIPS. A CONSERVATIVE MARKET PENETRATION OF 1% (GLOBAL MARKET FOR INSERT PRODUCTS, IN VITRO TISSUE MODELS AND NON-ANIMAL IN VITRO SCREENING ASSAYS >$1.5 BILLION) WOULD RESULT IN ANNUAL REVENUE EXCEEDING $15 MILLION.

Posted 5/17/23, 12:00 AM