Apparatus for measuring glycation of red blood cells and glycated hemoglobin level using physical and electrical characteristics of cells, and related methods
US-12013404-B2 · Jun 18, 2024 · US
US2016018354A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016018354-A1 |
| Application number | US-201514868055-A |
| Country | US |
| Kind code | A1 |
| Filing date | Sep 28, 2015 |
| Priority date | Apr 28, 2009 |
| Publication date | Jan 21, 2016 |
| Grant date | — |
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The present disclosure provides an orientation-nonspecific sensor port for use in analyte meters designed to detect and quantify analyte levels in a fluid sample along with methods of using the same. The present disclosure also provides compositions and methods for facilitating the correct insertion of a sensor into a corresponding analyte meter.
Opening claim text (preview).
1 - 102 . (canceled) 103 . A method for determining a concentration of an analyte in a fluid sample, the method comprising: positioning a sensor in a sensor port of an analyte meter, wherein the sensor port comprises a first electrode contact and a second electrode contact, detecting, by the analyte meter, an orientation of the sensor upon positioning of the sensor in the sensor port, configuring, by the analyte meter, one of the first electrode contact and the second electrode contact as a working electrode contact; depositing a fluid sample on a the sensor; and determining the concentration of the analyte using the sensor. 104 . The method of claim 103 , wherein each of the first electrode contact and the second electrode contact is also capable of being configured as a reference and/or counter electrode contact, and based on the orientation, the analyte meter configures the first electrode contact as a working electrode contact and the second electrode contact as a reference and/or counter electrode contact. 105 . The method of claim 103 , wherein the sensor port is configured to receive a sensor comprising opposing working and reference and/or counter electrodes or coplanar working and reference and/or counter electrodes. 106 . The method of claim 103 , wherein the analyte is glucose or ketone bodies. 107 . The method of claim 103 , wherein the analyte meter is activated upon positioning of the sensor in the sensor port. 108 . The method of claim 107 , wherein the sensor comprises a turn-on/selection monitor, the sensor port comprises a turn-on/selection contact, and the turn-on/selection monitor contacts the turn-on/selection contact upon positioning of the sensor in the sensor port, thereby activating the analyte meter. 109 . The method of claim 107 wherein contact of the turn-on/selection contact with the turn-on/selection monitor opens or closes an electrical circuit, wherein opening or closing of the electrical circuit indicates the orientation of the sensor. 110 . The method of claim 103 , wherein the sensor port comprises a first turn-on/selection contact and a second turn-on/selection contact, wherein the first turn-on/selection contact and the second turn-on/selection contact are positioned in an opposing configuration in the sensor port. 111 . The method of claim 103 , wherein the analyte meter detects the orientation of the sensor by physical, mechanical, optical, or electrical means. 112 . The method of claim 103 , wherein the analyte meter detects the orientation of the sensor by detecting the opening of an electrical circuit upon positioning of the sensor in the sensor port. 113 . The method of claim 103 , wherein the analyte meter detects the orientation of the sensor by detecting the closing of an electrical circuit upon positioning of the sensor in the sensor port. 114 . The method of claim 103 , wherein the analyte meter is configured to perform an algorithm to determine a medication dose based on a determined concentration of analyte, and wherein the method further comprises determining the medication dose based on the determined concentration of analyte. 115 . The method of claim 114 , wherein the analyte meter further comprises a medication delivery device for administering a medication dose to a subject, wherein the medication dose is determined by the analyte meter using the algorithm, and wherein the method further comprises administering the medication dose to the subject using the medication delivery device. 116 . The method of claim 115 , wherein the analyte is glucose and the medication is insulin. 117 . The method of claim 115 , wherein the medication delivery device comprises a needle, syringe, pump, catheter, inhaler, transdermal patch or combination thereof to deliver the medication. 118 . The method of claim 103 , wherein analyte meter determines the concentration of the analyte by amperometry, coulometry, potentiometry, and/or voltammetry. 119 . The method of claim 103 , wherein the sensor port is configured to receive a sensor comprising two electrodes, three electrodes, or four electrodes.
by electrical means (G01N33/49, G01N33/493 take precedence) · CPC title
Devices therefor, e.g. test element readers, circuitry (details not specific to biochemical electrodes G01N33/4875) · CPC title
using feedback of body parameters, e.g. blood-sugar, pressure (measurement of body parameters A61B5/00) · CPC title
using polarography, i.e. measuring changes in current under a slowly-varying voltage · CPC title
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