The U.S. Department of Agriculture's National Institute of Food and Agriculture (CFDA 10.212 - Small Business Innovation Research (SBIR) Program / Small Business Technology Transfer (STTR) Program) has awarded a $174,998 Project Grant to Advanced Cooling Technologies Inc. (ACT) to develop a new high-throughput low-temperature plasma (LTP) system. The system will generate plasma-activated water (PAW) to address food safety in industrial food processing facilities. Compared to current...
This Project Grant award, funded by 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), aims to develop a rapid, inexpensive microfluidics-based approach for dose-on-demand production of ready-to-inject radiopharmaceuticals. The $1,149,264 award to the University of Texas MD Anderson Cancer Center will fund the development of a...
The National Institute of Biomedical Imaging and Bioengineering (NIBIB) awarded a $275,773 Project Grant under the Discovery and Applied Research for Technological Innovations to Improve Human Health program (CFDA 93.286) to Dropletpharm Inc., a for-profit company. The grant supports Dropletpharm's development of microfluidic technologies to enable low-cost and distributed manufacturing of radiopharmaceuticals for clinical and research applications. Specifically, the project aims to expand...
The National Science Foundation awarded a $275,000 STTR Phase I grant to Inaedis, Inc. to develop an innovative method for the thermal stabilization of biopharmaceutical formulations. The project aims to establish a rapid room-temperature aerosol dehydration (RTAD) process that improves the stability of biologics, vaccines, and other pharmaceuticals, circumventing the need for a cold chain supply. This technology seeks to serve international markets by allowing the pharmaceutical industry to...
This Project Grant award from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training Program (CFDA 93.859), provides $963,619 to Osem Fluidics Inc. to develop 3D-printed microfluidic channel architectures to precisely control the structure and properties of lipid nanoparticles (LNPs) for improved nucleic acid delivery. The research aims to overcome limitations of current LNP manufacturing methods by designing, simulating, and testing...
Infinifluidics Inc. received a $256,000 National Science Foundation Project Grant under the Engineering (47.041) federal grant program. The grant supports development of on-demand continuous and sterile manufacturing of injectable drug delivery systems at industrial scale on a portable microfluidic chip from July 1, 2021 to June 30, 2022. The Engineering program seeks to improve quality of life and economic strength through innovative engineering research and education. This award will allow...
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...
Sterile Geeks VR Inc. was awarded a $254,718 Project Grant from the National Science Foundation under the NSF Technology, Innovation, and Partnerships program (CFDA 47.084) to develop mixed reality wearable technology solutions to improve workflow, productivity, and training for medical sterilization technicians. The award period is from September 1, 2022 to August 31, 2023. The company will create augmented reality applications and software to enhance job performance for sterile processing...
This $670,440 Project Grant award 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 funding the development of novel minimally invasive catheter-based devices to reduce systemic toxicity during locoregional cancer chemotherapy. The research teams from the University of California, San Francisco (UCSF), Pennsylvania State University, and Purdue...
The Tiny Cargo Company received a $432,000 National Science Foundation Technology, Innovation, and Partnerships Project Grant to test the scalability of an exosome isolation technology for developing an orally administered radioprotective therapeutic. The goal is to establish proof-of-concept for a safe, orally delivered drug platform capable of transporting biologic and small molecule therapeutics to treat radiation damage and related diseases. The first year of the award will determine scaling...
MICROFLUIDIC TECHNOLOGY PLATFORM AS A CONTINUOUS END-LINE PROCESS TO INACTIVATE PHARMACEUTICALS - PROJECT SUMMARY TO ACHIEVE THE FDA'S REQUIRED STERILITY ASSURANCE LEVEL FOR USE IN HUMANS, PHARMACEUTICAL PRODUCTS MUST UNDERGO TERMINAL STERILIZATION OR ASEPTIC MANUFACTURING. THIS CAN BE ACCOMPLISHED USING PHYSICAL OR CHEMICAL METHODS SUCH AS HEAT OR FORMALDEHYDE FOR SIMPLE DRUG FORMULATIONS; HOWEVER, FOR PHARMACEUTICAL PRODUCTS THAT HAVE MORE COMPLEX DRUG FORMULATIONS OR THAT CONTAIN BIOLOGICALLY ACTIVE MATERIAL IMPORTANT FOR DOWNSTREAM APPLICATIONS (CELL-CONTAINING THERAPEUTICS, VACCINES, ETC.), GAMMA IRRADIATION IS THE PREFERRED METHOD OF STERILIZATION. GAMMA IRRADIATION DESTROYS NUCLEIC ACIDS TO INACTIVATE PATHOGENS OR RENDER ANY CELLS REPLICATION INCOMPETENT BUT LEAVES STRUCTURAL COMPONENTS LIKE PROTEINS INTACT. THE LOGISTICAL CHALLENGES OF RELIANCE ON GAMMA IRRADIATION FOR TERMINAL STERILIZATION ARE, HOWEVER, SIGNIFICANT. GAMMA IRRADIATION REQUIRES HIGH DOSES OF RADIATION, NECESSITATING SIGNIFICANT REGULATORY RESTRICTIONS AND SPECIALIZED INFRASTRUCTURE, DRIVING UP COSTS AND PROCESSING TIMES TO MANUFACTURE A FINISHED DRUG. AS SUCH, FEW BIOMEDICAL RESEARCH AND PRODUCTION FACILITIES ARE ABLE TO ADOPT GAMMA-IRRADIATION PROCESSES IN-HOUSE TO EXPEDITE MANUFACTURING TIMELINES, AND THEY REMAIN RELIANT ON CENTRALIZED SHIELDED FACILITIES. LOW ENERGY ELECTRON IRRADIATION (LEEI) REPRESENTS A PRACTICAL AND INEXPENSIVE ALTERNATIVE TO GAMMA IRRADIATION; HOWEVER, A LOW PENETRATION DEPTH LIMITS ITS UTILITY FOR LIQUID SUSPENSIONS. TO OVERCOME THESE OBSTACLES, HEAT BIOLOGICS HAS PARTNERED WITH GEORGIA INSTITUTE OF TECHNOLOGY AND TEXAS A & M UNIVERSITY TO DEVELOP A MICROFLUIDICS-ENABLED IN-LINE CONTINUOUS PROCESS FOR HIGH-THROUGHPUT LEEI STERILIZATION OF PHARMACEUTICALS. THIS STRATEGY USES MICROFLUIDIC MANIFOLDS TO BRING A CONTINUOUSLY FLOWING PRODUCT INTO THE WORKING DEPTH OF AN LEEI BEAM AT A SUFFICIENT VOLUMETRIC FLOW RATE TO ALLOW FOR SCALING TO COMMERCIAL CAPACITY. SINCE THE PRODUCT IS TERMINALLY STERILIZED BY THIS PROCESS, IT ENABLES END-TO-END CONTROL AS AN ALTERNATIVE TO CENTRALIZED STERILIZATION AT A SHIELDED FACILITY. IN PRELIMINARY STUDIES, RAPID PROTOTYPING RESULTED IN THE DESIGN OF A CONSUMABLE CHIP MANIFOLD. COMPUTATIONAL MODELING FOLLOWED BY EXPERIMENTAL VALIDATION OF THE MICROFLUIDIC CHIP DESIGN DEMONSTRATED FLOW UNIFORMITY AND GOOD E-BEAM PENETRATION THROUGH THE CHANNELS WITHOUT COMPROMISING BIOLOGICAL MATERIAL. IN THIS PHASE I STTR PROJECT, THIS INTERDISCIPLINARY TEAM WILL FINALIZE THE MICROFLUIDICS DESIGN AND TEST THE PROTOTYPE SYSTEM IN TWO PHARMACEUTICAL CELL THERAPY PRODUCTS TO CONFIRM INACTIVATION EFFICIENCY AND ACTIVE AGENT BIOAVAILABILITY FOLLOWING IRRADIATION. A CONSUMABLE COMMERCIAL SET WILL BE BUILT TO ACHIEVE 30L/HOUR PROCESSING TO ENSURE THAT THE SYSTEM CAN BE APPROPRIATELY SCALED TO ACCOMMODATE COMMERCIAL SCALE PRODUCTION. COMPLETION OF THESE OBJECTIVES WILL VALIDATE A HIGH-THROUGHPUT MICROFLUIDICS DEVICE THAT WHEN COMBINED WITH E- BEAM IRRADIATION WILL PROVIDE STANDARD BIOLOGICAL RESEARCH AND PRODUCTION LABORATORIES WITH THE ABILITY TO PRODUCE AND IRRADIATE BIOLOGICALLY ACTIVE PHARMACEUTICAL PRODUCTS AT THE SITE OF MANUFACTURE.