http://rdf.ncbi.nlm.nih.gov/pubchem/patent/KR-20160075962-A

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filingDate 2014-12-19-04:00^^<http://www.w3.org/2001/XMLSchema#date>
inventor http://rdf.ncbi.nlm.nih.gov/pubchem/patentinventor/MD5_251acf2c096130e22bab5b66a4ded306
publicationDate 2016-06-30-04:00^^<http://www.w3.org/2001/XMLSchema#date>
publicationNumber KR-20160075962-A
titleOfInvention cartridge and method for analytes detection using chemiluminescence
abstract An analyte detection cartridge using chemiluminescence and an analyte detection method using the same are disclosed. In one embodiment, the analyte detection cartridge may include a first storage chamber having one end open and a first liquid material accommodated therein, a first storage chamber connected to the first storage chamber and having one end and the other end open, A second reservoir chamber in which a first channel for connection is formed therein and in which a second liquid material is accommodated, a second reservoir chamber disposed between the one end of the first reservoir chamber and the other end of the second reservoir chamber, A first separation membrane for separating the second liquid material from each other, and a penetrating member moving along the first channel of the second storage chamber and passing through the first separation membrane. The first liquid material includes at least one selected from the group consisting of phenylglyoxal, phenylglyoxal derivative, and combinations thereof. The second liquid material includes guanine. The second liquid material is introduced into the first storage chamber through the first separator penetrated by the penetrating material and mixed with the first liquid material, and the mixed guanine and the first liquid material react with each other Generate light. In another embodiment, an analyte detection cartridge utilizing chemiluminescence is disclosed. The analyte detection cartridge includes a first storage chamber having one end opened and a first liquid material accommodated therein, a second channel connected to the first storage chamber and having one end and the other end opened and connecting the one end and the other end opened, A third reservoir chamber formed inside the first reservoir chamber and accommodating a third liquid material therein; a second reservoir chamber disposed between the one end of the first reservoir chamber and the other end of the third reservoir chamber for separating the first liquid material and the third liquid material from each other A second storage chamber connected to the third storage chamber and having a first channel formed therein and having one end and the other end opened and connected to the one end and the other end opened, A third separation membrane disposed between the other end of the second storage chamber and the one end of the third storage chamber for separating the third liquid material and the second liquid material from each other, And a penetrating member penetrating the third separating membrane and moving along the second channel to penetrate the second separating membrane. The first liquid material includes at least one selected from phenylglyoxal, phenylglyoxal derivative, and combinations thereof. The second liquid material includes guanine. The third liquid material may be at least one selected from tetra-n-methyl ammonium phosphate, tetra-n-ethyl ammonium phosphate, tetra-n-propyl ammonium phosphate (TPA) . The second liquid material is introduced into the third storage chamber via the third separation membrane penetrated by the penetration and mixed with the third liquid material, and the mixed second liquid material and the third liquid material Is introduced into the first storage chamber via the second separator by the penetrating member and mixed with the first liquid material. The mixed guanine and the first liquid material react with each other to generate light, and the third liquid material changes a reaction rate or a reaction pattern of the guanine and the first liquid material. In yet another embodiment, a method for detecting an analyte using chemiluminescence is disclosed. The method for detecting an analyte includes the steps of preparing a first liquid material containing at least one selected from phenylglyoxal, phenylglyoxal derivative and a combination thereof; preparing a second liquid material containing guanine; 1 separating the first liquid material and the second liquid material from each other using a separator, passing the first liquid material through the first separator using a penetrating material, and mixing the first liquid material and the second liquid material with each other 1 mixing process and measuring light generated in the first mixing process through a luminescence measuring device. The light is generated when the guanine reacts with the first liquid material.
priorityDate 2014-12-19-04:00^^<http://www.w3.org/2001/XMLSchema#date>
type http://data.epo.org/linked-data/def/patent/Publication

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