Patent classifications
C12M47/04
A DEVICE FOR STUDYING INTERACTIONS OF A FIRST CELL TYPE WITH A SECOND CELL TYPE AND RELATED METHOD
There is provided a microfluidic device comprising a first region configured to hold target cells, e.g., tumor cells, a second region configured to hold effector cells, e.g., immune cells, and an array of microstructures disposed between the first and second regions, wherein the first region is in fluid communication with the second region, and wherein the array of microstructures is configured to selectively allow movement of immune cells, from the second region to an interaction zone that is at least partially disposed within the first region, for interaction with tumor cells in the interaction zone. The array of microstructures can be an array of micropillars. Also provided is a chip comprising a plurality of the device and a method of studying interactions of a first cell type with a second cell type.
COMPOSITIONS AND METHODS FOR NEGATIVE SELECTION OF NAIVE T AND B CELLS WITH A SINGLE ANTIBODY
Compositions and methods for the isolation of naive, untouched target cells of interest are disclosed.
INTEGRATED MICROFLUIDIC CHIP AND SINGLE-CELL CULTURE, SCREENING, AND EXPORT METHOD APPLYING SAME
An integrated microfluidic chip and a single-cell culture, screening, and export method applying the same are disclosed; the chip includes a base, an inlet flow channel, an outlet flow channel, a plurality of common flow channels and a plurality of functional units, wherein two ends of the common flow channel are connected to the inlet flow channel and the outlet flow channel, respectively, wherein each of the functional units includes a single-cell introduction port, a cell culturing-screening chamber, a cell export chamber, a cell export port, and a drive element, wherein the drive element is used to provide power to liquid to introduce single cells entering the common flow channels into the cell culturing-screening chamber, and after culturing and screening, to export target cell population in the cell culturing-screening chamber through the cell export port.
Adipose tissue centrifuge and method of use
A centrifuge device is provided for the sizing and separation of constituents of a biologic mixture, e.g., adipose tissue. The device provides for the mechanical breaking down of the fibrous structure in the tissue by centrifugation causing the tissue to pass through a mesh element, or a sizing helix, or an extrusion element, whereupon the material is reduced to a slurry. This processed material may then be separated by centrifugation into its constituents, in order to harvest the fraction containing the multipotent cells. These multipotent cells may be utilized for various medical procedures to stimulate healing and tissue regeneration.
SINGLE CELL PROCESSING INSTRUMENT
The present disclosure relates to a single cell analysis system. Disclosed herein is an instrument for single cell processing. The instrument comprises: a motor component; a processing component, which comprises a processing chamber inside and multiple first connecting holes; a container, which comprises a sample collecting reservoir, a waste collecting reservoir, multiple sample loading reservoirs, multiple first microchannels, and a second microchannel; a chip, which is connected under the container and forms a gap with the container, the chip comprises a third microchannel, the bottom of the third microchannel comprises a microwell array; a snap component comprises a feeding beam and a snap body, and a first end of the feeding beam connects to the snap body and a second end of the feeding beam connects to the motor component; and a pneumatic component which connects with the multiple first connecting holes.
Mechanical transfection devices and methods
A transfection device suitable for delivery of various macrostructures (e.g., mitochondria, bacteria, liposomes) is described and uses mechanical force to thereby induce active endocytosis in a target cell. Contemplated devices are able to achieve high throughput of transfected cells that remain viable and are capable of producing colonies.
Microfluidic system and method of use thereof
This invention concerns an integrated microfluidic system that utilizes microfluidic chip technology to receive a patient sample including cells, expand the cells, reprogram the expanded cells and then store the reprogrammed cells in a microfluidic chip. These microfluidic chips with stored reprogrammed cells may then be used in scenarios of genetic differentiation into specific cell types. Overall this system and workflow is suitable as a hospital based device that will allow the generation of iPSCs from every patient for downstream diagnostic or therapeutic use.
Control device, microparticle sorting device and microparticle sorting system using control device, and control method
To provide a technology of efficiently and effectively sorting microparticles to be sorted from a sample solution. The present technology provides a control device being a device that controls a processing condition when sorting microparticles from a sample liquid flowing through a flow path, the control device provided with a control unit that controls a sorting processing condition on the basis of a content of microparticles to be sorted in the sample liquid. In the control device according to the present technology, the control unit may control the sorting processing condition on the basis of a surviving rate and/or an activation rate of biological particles to be sorted with respect to the sorting processing condition.
METHOD OF COLLECTING FINE PARTICLES, MICROCHIP FOR SORTING FINE PARTICLES, DEVICE FOR COLLECTING FINE PARTICLES, METHOD OF PRODUCING EMULSION, AND EMULSION
Provided is a new method for more efficiently generating emulsion particles each containing one fine particle.
The present technology provides a method of collecting fine particles, in which in a fine particle sorting mechanism having a channel structure including a main channel through which the fine particles flow, a collection channel into which particles to be collected are collected from among the fine particles, a connection channel that connects the main channel and the collection channel, and a liquid supply channel connected to the connection channel so as to supply a liquid, the method includes: a flow step of causing a first liquid containing the fine particles to flow through the main channel; a determination step of determining whether or not the fine particles flowing through the main channel are the particles to be collected; and a collection step of collecting the particles to be collected into the collection channel, and, in the collection step, the particles to be collected are collected into a second liquid that is immiscible with the first liquid in the collection channel while being contained in the first liquid.
Method for capturing target cells or molecules in solution
Disclosed is a method for capturing target cells or molecules in solution, comprising steps of: (I) getting medium containing said target cells or molecules into an apparatus comprising a capturing device for capturing said target cells or molecules; (II) getting said medium flow through said capturing device; (III) removing unbound debris, cells and molecules; (IV) getting said target cells or molecules detached from the capturing device; and (V) collecting said target cells or molecules; wherein said capturing device comprises at least one functionalized mesh comprising a mesh substrate and a functional layer formed on said mesh substrate, wherein said functional layer comprises capturing substances that can specifically bind with said target cells or molecules. The method has high specificity, as well as high throughput, and is suitable for capturing cells or molecules in a solution or expressed at the surface of cell membranes. It is particularly suited to capture and sort circulating tumor cells.