Abstract:
An analyte test strip vial having a restrictor to dispense analyte test strips in a controlled manner. In general, the restrictor includes one or more openings (e.g., central and/or arc-shaped openings) that are appropriately sized to facilitate the dispensing of a manageable number of analyte test strips from the vial container. The restrictor may also include one or more surface features (e.g., tabs, cavities, and/or tapered surfaces) to facilitate in the removal of analyte test strips, and the matting and/or removal of the restrictor from the vial container.
Abstract:
Embodiments of the present disclosure relate to analyte determining methods and devices (e.g., electrochemical analyte monitoring systems) that have a sensing surface that includes two or more sensing elements disposed laterally to each other, where the sensing surface is on a working electrode of in vivo and/or in vitro analyte sensors, e.g., continuous and/or automatic in vivo monitoring using analyte sensors and/or test strips. Also provided are systems and methods of using the, for example electrochemical, analyte sensors in analyte monitoring.
Abstract:
The present invention describes the configuration of a porous sheet for improving the efficiency for generating an aerosol from a liquid formulation. This aerosolized liquid formulation can be used for intrapulmonary delivery of pharmaceutically active drugs and diagnostic agents when said invention is used in conjunction with the appropriate device. The individual pores in each array (defined as the rows and columns of pores for example in a rectangular array) are generated such that there is a discrete or continuous variation in the pore size within the plurality of pores on the sheet. The drug is subsequently aerosolized by forcing the liquid formulation through the pores on the sheet. The resulting aerosol will contain a controlled range of particle sizes defined by the properties of the porous sheet and the liquid formulation.
Abstract:
Methods and derivatized supports which are useful in solid-phase synthesis of peptides, oligonucleotides or other small organic molecules as well as arrays of ligands. The methods provide means to control the functional site density on a solid support. Some of the derivatized supports are polymer-coated or glycan-coated. Other methods for regenerating the surface of a used ligand array are also provided.
Abstract:
Embodiments of the present disclosure relate to analyte determining methods and devices (e.g., electrochemical analyte monitoring systems) that have a sensing surface that includes two or more sensing elements disposed laterally to each other, where the sensing surface is on a working electrode of in vivo and/or in vitro analyte sensors, e.g., continuous and/or automatic in vivo monitoring using analyte sensors and/or test strips. Also provided are systems and methods of using the, for example electrochemical, analyte sensors in analyte monitoring.
Abstract:
An analyte test strip vial having a restrictor to dispense analyte test strips in a controlled manner. In general, the restrictor includes one or more openings (e.g., central and/or arc-shaped openings) that are appropriately sized to facilitate the dispensing of a manageable number of analyte test strips from the vial container. The restrictor may also include one or more surface features (e.g., tabs, cavities, and/or tapered surfaces) to facilitate in the removal of analyte test strips, and the matting and/or removal of the restrictor from the vial container.
Abstract:
Methods and derivatized supports which are useful in solid-phase synthesis of peptides, oligonucleotides or other small organic molecules as well as arrays of ligands. The methods provide means to control the functional site density on a solid support. Some of the derivatized supports are polymer-coated or glycan-coated. Other methods for regenerating the surface of a used ligand array are also provided.
Abstract:
The present invention describes the configuration of a porous sheet for improving the efficiency for generating an aerosol from a liquid formulation. This aerosolized liquid formulation can be used for intrapulmonary delivery of pharmaceutically active drugs and diagnostic agents when said invention is used in conjunction with the appropriate device. The individual pores in each array (defined as the rows and columns of pores for example in a rectangular array) are generated such that there is a discrete or continuous variation in the pore size within the plurality of pores on the sheet. The drug is subsequently aerosolized by forcing the liquid formulation through the pores on the sheet. The resulting aerosol will contain a controlled range of particle sizes defined by the properties of the porous sheet and the liquid formulation.