Abstract:
Cells in a suspension are counted in a hemocytometer slice with a chamber of controlled depth and one or more reservoirs along one or more side edges of the chamber. The suspension is fed to a reservoir to first fill the reservoir, and then to overflow into the chamber. The result is an even distribution of the cells in the chamber.
Abstract:
Cells in a suspension are counted in a hemocytometer slice with a chamber of controlled depth and one or more reservoirs along one or more side edges of the chamber. The suspension is fed to a reservoir to first fill the reservoir, and then to overflow into the chamber. The result is an even distribution of the cells in the chamber.
Abstract:
Rapid and uniform temperature changes in the wells of a microplate or any thin-walled plate that contains an array of reaction wells or sample receptacles are achieved by the use of heating and cooling elements with a vapor chamber interposed between such elements and the microplate. The upper surface of the vapor chamber and the underside of the sample plate in certain embodiments are complementary in shape, i.e., they have identical but oppositely directed contours in the areas around each of the sample receptacles, to provide continuous surface contact along the surface of each receptacle. In other embodiments, an intermediary plate is placed between the vapor chamber and the well plate, with the top surface of the intermediary plate being complementary in shape to the underside of the well plate.
Abstract:
Particles are dispensed under controlled conditions to achieve an accurate number of particles by passing a suspension of the particles through a particle detecting device, obtaining a cumulative particle count, comparing the cumulative particle count with a target value, and shutting off the suspension flow once the particle count reaches the target value, all performed by automated means.
Abstract:
Provided herein are cartridges, devices, and methods for carrying out multistep assays on a microfluidic scale. A cartridge includes a block frame comprising a well, wherein the well comprises an outlet, at least one inlet, and a bottom surface; a plurality of containers, wherein each container is connected to the well via a microchannel leading to the at least one inlet; and an openable cover, which cover when closed is configured to enclose an assay surface and form a gap between (i) the assay surface and the bottom surface of the well or (ii) the assay surface and the cover. The gap can be formed by a spacer that extends from the bottom surface of the well or from the outer edge of the cover. Methods include flowing liquid into the gap and/or through an opening adjacent to the assay surface.
Abstract:
Systems, including apparatus and methods, for the microfluidic manipulation, dispensing, and/or sorting of particles, such as cells and/or beads.