Patent classifications
C12M45/22
SYSTEMS AND METHODS FOR CELL CULTURING
Cell culture systems and methods provide improved immunotherapeutic product manufacturing with greater scalability, flexibility, and automation. Cell culture systems are configured with interchangeable cartridges, allowing versatility and scalability. Systems are configured to have multiple connected cell culture chambers, which allows parallel processing of different types of cells. Gas-impermeable cell culture chambers and methods for generating cells in closed systems prevent contamination and user error. Methods for recycling cell culture medium provide additional efficiencies.
BAG HOLDER FOR PLATE FREEZING
Bag holders for plate freezing of bags containing fluids such as reactor bags, in particular bags containing biological or chemical reagents can include genderless bag trays. Each bag tray can include a basin defined in part by a first side wall and a second side wall. The basin can be configured to hold the bag. The first side wall can include a first retaining feature and the second side wall can include a second retaining feature having a shape complementary to the first retaining feature. The complementary nature of first and second retaining features allows identical bag trays to be joined by each of their respective first and second retaining features to one another. Methods include forming first and second bag trays, placing a bag within the first bag tray, joining the second bag tray to the first bag tray, and freezing the bag by a plate freezing process.
Systems and methods for cell culturing
Cell culture systems and methods provide improved immunotherapeutic product manufacturing with greater scalability, flexibility, and automation. Cell culture systems are configured with interchangeable cartridges, allowing versatility and scalability. Systems are configured to have multiple connected cell culture chambers, which allows parallel processing of different types of cells. Gas-impermeable cell culture chambers and methods for generating cells in closed systems prevent contamination and user error. Methods for recycling cell culture medium provide additional efficiencies.
Systems and methods for cell culturing
Cell culture systems and methods provide improved immunotherapeutic product manufacturing with greater scalability, flexibility, and automation. Cell culture systems are configured with interchangeable cartridges, allowing versatility and scalability. Systems are configured to have multiple connected cell culture chambers, which allows parallel processing of different types of cells. Gas-impermeable cell culture chambers and methods for generating cells in closed systems prevent contamination and user error. Methods for recycling cell culture medium provide additional efficiencies.
SYSTEM FOR HYPOTHERMIC TRANSPORT OF SAMPLES
A system for the hypothermic transport of biological samples, such as tissues, organs, or body fluids. The system includes a self-purging preservation apparatus to suspend a sample in preservation fluid and perfuse a tissue with preservation fluid. The self-purging preservation apparatus is placed in an insulated transport container having a cooling medium. When assembled, the system allows for transport of biological samples for extended periods of time at a stable temperature.
Stem cell manufacturing system, stem cell information management system, cell transport apparatus, and stem cell frozen storage apparatus
A stem cell manufacturing system for manufacturing stem cells from somatic cells includes: one or more closed production device(s) configured to produce stem cells from somatic cells; one or more drive device(s) configured to be connected with the production device(s) and drive the production device(s) in such a manner as to maintain the production device(s) in an environment suitable for producing stem cells; one or more cryopreservation device(s) configured to cryopreserve the produced stem cells; a first memory device configured to store whether or not somatic cells have been introduced to the production device(s), as a first state; a second memory device configured to store whether or not the production device(s) is/are connected with the drive device(s), as a second state; and a third memory device configured to store whether or not the produced stem cells can be placed in the cryopreservation device(s), as a third state.
Systems and methods for cell culturing
Cell culture systems and methods provide improved immunotherapeutic product manufacturing with greater scalability, flexibility, and automation. Cell culture systems are configured with interchangeable cartridges, allowing versatility and scalability. Systems are configured to have multiple connected cell culture chambers, which allows parallel processing of different types of cells. Gas-impermeable cell culture chambers and methods for generating cells in closed systems prevent contamination and user error. Methods for recycling cell culture medium provide additional efficiencies.
Metastable state mixing
Metastable state spore incubation mixing systems are described. An example system includes a spore container to store spores, a nutrient container, an arrangement of valves and tubes, a reciprocating pump, a mixing tube, and a holding tank. In a drawing phase of the system, a controller can control the reciprocating pump to draw a ratioed volume of the spores, the nutrients, and water through the valves and tubes. During an expelling phase of the system, the controller can control flow control valves to direct the spores, nutrients, and water through the mixing tube and into the holding tank. The controller can also direct a heater to heat the mixture in the holding tank to a predetermined temperature. Once the mixture reaches the temperature, the controller can also direct the system through a number of other phases of operation, including cooling and purging phases.
SYSTEM FOR FUNCTIONAL TESTING AND TRANSPORTATION OF BIOLOGICALLY ENGINEERED ORGANS
A system for testing and transporting a biologically engineered organ can include a housing, a transportable enclosure, a perfusate circuit, and a pump. The housing can be configured to receive and support a biologically engineered organ therein in a perfusate flow. The housing can include a perfusate inlet and a perfusate outlet to receive the perfusate flow through the housing. The transportable enclosure can surround at least a portion of the housing. The perfusate circuit can be connected to the perfusate inlet and the perfusate outlet and can be configured to transmit perfusate through the system. The pump can be connected to the circuit and can be configured to circulate perfusate through the perfusate circuit.
HOLDING TOOL
A holding tool is configured to efficiently and reliably enable a close contact between a container and a lid with a simple mechanism and a simple operation. The holding tool is configured to be used together with a container and a lid for the container to sandwich the container and the lid. The holding tool includes a base on which the container is placed, and a cover configured to cover the lid. The base and the cover each have an opening at a central portion and are configured to engage with each other to press and sandwich the container and the lid upward and downward.