Abstract:
An apparatus and method for performing rapid DNA sequencing, such as genomic sequencing, is provided herein. The method includes the steps of preparing a sample DNA for genomic sequencing, amplifying the prepared DNA in a representative manner, and performing multiple sequencing reaction on the amplified DNA with only one primer hybridization step.
Abstract:
This invention has application in a variety of biological and biochemical fields. The invention describes a thin sheet or sheets of flexible material with surface characteristics that provide an environment for retaining biological molecules. The flexible nature of the thin sheet of material permits the use of continuous preparation, processing and analysis techniques involving more compact and less complex equipment. The invention also describes a lamination of a thin sheet of flexible material to a substantially rigid second substrate so that the combination can be processed by existing equipment. The thin sheet of flexible material may be perforated prior to lamination in order to establish distinct wells in the surface of the lamination.
Abstract:
The present invention relates to the field of molecular diagnostics. In particular, the present invention provided improved substrates and methods of using liquid crystals and other biophotonically based assays for quantitating the amount of an analyte in a sample. The present invention also provides materials and methods for detecting non-specific binding of an analyte to a substrate by using a liquid crystal or other biophotonically based assay formats.
Abstract:
An apparatus and method for performing rapid DNA sequencing, such as genomic sequencing, is provided herein. The method includes the steps of preparing a sample DNA for genomic sequencing, amplifying the prepared DNA in a representative manner, and performing multiple sequencing reaction on the amplified DNA with only one primer hybridization step.
Abstract:
Systems and methods for patterning biological and non-biological material at specific sites on a plate, as well as growing three dimensional structures. Preferred embodiments comprise a plate with regions that will trap gas, usually in the form of bubbles, when the plate is submerged in liquid. Other embodiments of the present invention include a method for placing materials on the plate at predetermined locations through the use of trapped gas to prevent materials from collecting at unwanted regions. The plate has great utility for plating cells and tissues at specific sites, such as on an array. The disclosed method can also be used to coat the surface of a plate at specific locations for patterned coating applications and to build up materials to produce three dimensional structures, including micromechanical structures where the structures may be formed from living or nonliving material, organic or inorganic, and the like.
Abstract:
As disclosed within, the present device is directed to a multi-well sample module having integrated impedance measuring electrodes (which allow for the generation of an electric field within each well and the measuring of the change in impedance of each of the well's contents) and an electrical connection scheme allowing simultaneous measurement of each well's change in impedance.
Abstract:
A reference microplate is described herein which can be used to help calibrate and troubleshoot an optical interrogation system. In one embodiment, the reference microplate has a frame with an array of wells each of which contains an optical biosensor and each optical biosensor is at least partially coated with a substance (e.g., elastomer, optical epoxy). In another embodiment, the reference microplate in addition to having its optical biosensors at least partially covered with a substance (e.g., elastomer, optical epoxy) also has a controllable heating device attached thereto which is used to heat the optical biosensors.
Abstract:
L'invention concerne un procédé de relevés d'images du fond d'une plaque pourvue d'au moins un puits (2) contenant un milieu de culture (1 ) de microorganismes, caractérisé en ce qu'il comprend les étapes consistant à : i) former une couche opacifiante (5) recouvrant la surface du milieu de culture (1 ) de sorte à former un fond de lecture, ii) réaliser des prises d'images, à des intervalles de temps définis, du fond du puits (2) au moyen d'un dispositif optique de prise de vue.
Abstract:
We describe assay modules (e.g., assay plates, cartridges, multi-well assay plates, reaction vessels, etc.), processes for their preparation, and method of their use for conducting assays. Reagents may be present in free form or supported on solid phases including the surfaces of compartments (e.g., chambers, channels, flow cells, wells, etc.) in the assay modules or the surface of colloids, beads, or other particulate supports. In particular, dry reagents can be incorporated into the compartments of these assay modules and reconstituted prior to their use in accordance with the assay methods. A desiccant material may be used to maintain and stabilize these reagents in a dry state.