Disposable indicator components for measuring analyte concentrations in body fluids - Patent Application 20070122999

A system with controlled fluid transport and timing for analyte sensing elements addresses inaccuracies in current methods, providing accurate and reproducible analyte concentration measurements for early disease detection and health trend analysis.

JP7729629B2Active Publication Date: 2025-08-26KENVIEW BRANDS LLC
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Patent Information

Application Number
JP2022557806
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-18
Filing Date
2021-03-22
Publication Date
2025-08-26
Estimated Expiration
2041-03-22

AI Technical Summary

Technical Problem

Current methods for measuring analyte concentrations in bodily fluids, such as urine, are inaccurate and difficult to reproduce due to sensitivity to exposure time and environmental factors, limiting their effectiveness in diagnosing metabolic issues and epidemiological studies.

Method used

A disposable indicator component with colorimetric analyte sensing elements and a coupler for a spectrophotometer, housed in a durable component, that controls fluid transport and timing to ensure accurate and reproducible readings.

Benefits of technology

Enables precise and consistent measurement of analyte concentrations over time, facilitating early detection of metabolic problems and enabling long-term tracking of health trends.

✦ Generated by Eureka AI based on patent content.

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Abstract

A disposable indicator component for use in a system for measuring an analyte concentration in a bodily fluid includes an indicator zone having at least one colorimetric analyte sensing element and a coupler for coupling the indicator component to a component having at least one spectrophotometer contained within a housing.
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Description

[Technical Field]

[0001] The present invention relates to a system for measuring changes in the concentration of analytes in body fluids. More particularly, the present invention relates to a system used to measure the concentration of analytes in urine over time, and to methods for measuring these analytes and detecting early-onset disease states in the human body. [Background technology]

[0002] Analytes found in bodily fluids such as urine or sweat potentially carry evidence of developing metabolic problems, and there is a need for those within and outside of medical facilities to track and analyze changes in the concentration of analytes in bodily fluids over time.

[0003] Currently, people and doctors rely on visible symptoms to diagnose systemic metabolic problems. This often prompts doctors to perform urine or blood tests to determine the presence or concentration of various analytes in these bodily fluids. Therefore, in today's practice, tests such as urine analyses are most frequently used to confirm symptom-based diagnoses rather than as an initial identification of disease. Some conditions, such as diabetic ketoacidosis, only show visible symptoms when an individual's condition may already warrant an emergency visit to a physician. Other conditions, such as urinary tract infections, do not show visible symptoms and may result in kidney scarring, which may not manifest as a health problem until years later.

[0004] Noninvasive measurement of analyte concentrations in urine content is also ideally suited for epidemiological studies to rapidly identify common problems in specific regions, however, difficulties in sample collection hinder the acceleration of research within this field.

[0005] Absorbent articles such as diapers exist with embedded sensors that are only capable of detecting wetness. Often, they transmit that information to a receiving system, which then alerts a caregiver to a one-time event. These wetness detection systems do not perform diagnostics.

[0006] Some existing diagnostic systems rely on urine test strips that are dipped into a urine sample and read manually or automatically by an imaging device or a cell phone. Other diagnostic systems rely on urine test strips mounted on the exterior of an absorbent article and, once wetted, read manually or automatically by an imaging device or a cell phone. In either case, data from a current reading can be compared to both past and future readings.

[0007] In either approach, the reading of the urine test strip is taken at a time point after the strip is wetted with urine. Many of the chemicals used in test strips are sensitive to exposure time, temperature, wetness, etc. Therefore, accurate and reproducible readings are difficult to obtain.

[0008] In summary, analytes found in bodily fluids can be evidence of developing metabolic problems. There is a desire to track and analyze changes in the concentration of analytes in bodily fluids, such as urine, over time. However, for the data to be useful, the readings must be accurate and reproducible. Summary of the Invention [Means for solving the problem]

[0009] Applicants have developed a novel and useful disposable indicator component for use in a system for measuring an analyte concentration in a bodily fluid, the disposable indicator component including an indicator zone with at least one colorimetric analyte sensing element and a coupler for coupling the indicator component to a component having at least one spectrophotometer contained within a housing.

[0010] A disposable indicator component for use with a handheld analyzer can include a first flexible web layer, a fluid transfer layer adjacent to the first flexible web layer, and a fluid-impermeable envelope surrounding an indicator zone adjacent to the fluid transfer layer. The first flexible web layer, fluid transfer layer, and fluid-impermeable envelope are stacked in order and secured together, and the indicator zone comprises at least two colorimetric analyte sensing elements. Additionally, the fluid-impermeable envelope has separate pockets arranged or configured to contain each of the at least two colorimetric analyte sensing elements, each pocket having its own opening in fluid communication with the fluid transfer layer, and the fluid transfer layer is arranged and configured to prevent fluid transport between the openings in the fluid-impermeable envelope. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a top perspective view of a system for measuring an analyte concentration in an absorbent article of the present invention. [Figure 2] FIG. 2 is an exploded view of the system of FIG. 1. [Figure 3] FIG. 2 is a cross-sectional view of an indicator component of the system of FIG. 1. [Figure 4] FIG. 2 is a top view of the durability components of the system of FIG. 1. [Figure 5] FIG. 5 is a cross-sectional view of the durability component taken along plane 5-5 of FIG. 4. [Figure 6] FIG. 6 is a cross-sectional view of the spectrophotometer portion of the durable component of FIG. 5. [Figure 7] FIG. 1 is a top view of a moisture sensor element of an indicator component of a system for measuring an analyte concentration in an absorbent article as a moisture front traverses the element. [Figure 8] 1 is a capacitance versus time plot as a moisture front traverses a moisture sensor element of an indicator component of a system for measuring analyte concentration. [Figure 9] FIG. 1 is a top perspective view of a system for determining an analyte concentration of the present invention. [Figure 10]FIG. 10 is a bottom perspective view of the system for measuring analyte concentration of FIG. [Figure 11] FIG. 11 is an exploded view of the indicator components of the system of FIGS. 9 and 10. [Figure 12] FIG. 12 is a top perspective view of a fluid-impermeable envelope encapsulating the colorimetric analyte sensing element of the indicator component of FIG. 11. [Figure 13] FIG. 12 is a top view of a fluid-impermeable envelope encapsulating the colorimetric analyte sensing element of the indicator component of FIG. 11. [Figure 14] FIG. 12 is a top view of the partially assembled indicator component of FIG. 11. [Figure 15] FIG. 12 is a bottom view of the partially assembled indicator component of FIG. 11. [Figure 16] FIG. 11 is a top perspective view of the durability components of the system of FIGS. 9 and 10. [Figure 17] FIG. 11 is a top view of the durability components of the system of FIGS. 9 and 10. [Figure 18] 1 is a top perspective view of a system for determining an analyte concentration in a body fluid of the present invention. [Figure 19] FIG. 19 is a top perspective view of the indicator component of the system of FIG. 18. [Figure 20] FIG. 19 is a partial exploded view of the system of FIG. 18. DETAILED DESCRIPTION OF THE INVENTION

[0012] The present invention relates to a system for use with absorbent articles that measures changes in the concentration of an analyte in a bodily fluid, such as urine, over time, and methods for using the system to measure the concentration of an analyte in a bodily fluid over time, as well as methods for using these analyte measurements over time to detect early-onset disease states in the human body.

[0013] The subject matter of the present disclosure will now be described more fully below with reference to the accompanying drawings and examples. However, the subject matter of the present disclosure may be embodied in different forms and should not be construed as limited to any specific embodiment described herein, but is to be accorded the widest scope consistent with the features described herein. Rather, any specific embodiment is provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art to which the invention pertains. It is believed that one skilled in the art can utilize the present invention to its fullest extent based on the description herein.

[0014] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the subject matter described herein belongs. All publications, patent applications, patents, and other references mentioned herein are incorporated herein by reference in their entirety.

[0015] The present invention relates to systems and methods that allow for monitoring of analyte concentrations in absorbent articles. The systems and methods also allow for statistical analysis and determination of changes in health status through the collection of multiple data points over time, which may be evidence of developing metabolic problems. Other data, such as medical and family history, and current variables, such as age, temperature, and / or other current markers, may be used to supplement trend and statistical analysis.

[0016] 1-6 illustrate an apparatus or system 10 for measuring an analyte concentration in an absorbent article. System 10 includes an indicator component 20 and a durable component 100. FIG. 1 is a top perspective view of system 10 when fully assembled, while FIG. 2 is an exploded view of system 10.

[0017] Indicator component 20 is shown in an exploded view in Figure 2 and in a cross-sectional view in Figure 3. Indicator component 20 includes indicator zone 21 having colorimetric analyte sensing element 30 which may be disposed within optional second flexible web 40, fluid transfer layer 50, optional first flexible web 60, optional top plate 70, coupler 80, shown here as a retaining plate, and adhesive layer 90. Indicator component 20 is preferably disposable.

[0018] The colorimetric analyte sensing element 30 has perforations 36 and is disposed within the apertures 46 of the second flexible web 40. In some embodiments, the colorimetric analyte sensing element 30 is a reagent-impregnated matrix designed to produce a visual indication of the presence of a preselected analyte in a sample produced by the wearer of the system 10. Chemistry and methods for detecting analytes by producing a visual indication are well known in the art. In some embodiments, the preselected analyte measured by the system 10 may be glucose, ketones, bilirubin, blood, pH, protein, urobilinogen, nitrite, white blood cells, and / or creatinine, among others.

[0019] For example, the absorbent article may be a diaper, the fluid being tested may be urine, and the preselected analyte measured by system 10 may be glucose. Glycosuria, or urinary glucose, is the presence of higher-than-normal levels of sugar in urine and may result from an individual's kidney complications or diabetes. Some of the most common causes of urinary glucose include diabetes mellitus, hyperthyroidism, benign diabetes, cirrhosis, or a high-carbohydrate diet. Additionally, in some embodiments, those skilled in the art will recognize that selecting an appropriate biosensor capable of converting preferred biomarkers into calorimetrically readable results may also be used in genomics, transcriptomics, metabolomics, and proteomics to determine the presence of inflammatory biomarkers present in urine.

[0020] As described above, the colorimetric analyte sensing element 30 is disposed within the opening 46 in the second flexible web 40 and is in fluid communication with the fluid transfer layer 50. The fluid transfer layer 50 is, in turn, in fluid communication with the first flexible web 60. The second flexible web 40 has a first side 42 and is made of a non-absorbent material, such as polyethylene foam. The fluid transfer layer 50 has a first side 52 and perforations 56 and is made of a wicking material, such as cloth or paper, that is effective at diffusing and transporting fluids via capillary action. The first flexible web 60 has a first side 62 and perforations 66 and is made of a non-absorbent apertured film, such as polyethylene mesh.

[0021] The second flexible web 40, fluid transfer layer 50, and first flexible web 60 are designed to aid in the transport of fluid to the colorimetric analyte sensing element 30. During use, fluid from the absorbent article first contacts the first side 62 of the first flexible web 60. Because the first flexible web 60 is a non-absorbent apertured film, the fluid passes through the first flexible web 60 and contacts the first side 52 of the fluid transfer layer 50. The fluid then permeates throughout the fluid transfer layer 50. The fluid will contact the first side 42 of the second flexible web 40. However, because the second flexible web 40 is made from a non-absorbent material, the fluid in the transport layer 50 does not penetrate into the second flexible web 40. Finally, the fluid in the transport layer 50 contacts the colorimetric analyte sensing element 30.

[0022] The sensing element 30 disposed within the second flexible web 40, the fluid transfer layer 50, and the first flexible web 60 are stacked as shown in FIGS. 1-3 and held together by a top plate 70 and a retaining plate 80. The retaining plate 80 has pins 88 that pass sequentially through the perforations 36 in the colorimetric analyte sensing element 30, the perforations 56 in the fluid transfer layer 50, and the perforations 66 in the first flexible web 60. Although not shown, the top plate 70 has blind holes in which the pins 88 are disposed. A friction fit between the blind holes in the top plate 70 and the pins 88 holds the components of the indicator component 20 together. Alternative assemblies may be held together by other interactions, such as snap fits, ultrasonic welding, heat welding, other mechanical fasteners, and the like.

[0023] The top plate and the retaining plate are arranged and configured to provide a predetermined spacing for accommodating an indicator component layer with a predetermined fluid transport capacity to the indicator zone, which provides a more controlled delivery of bodily fluid to the indicator zone and the associated timing between the bodily fluid reaching the indicator zone and the colorimetric measurement, as described in more detail below.

[0024] The top plate 70 may have channels on the side facing the first side 62 of the first flexible web 60. The channels may help direct fluid from the absorbent article towards the first side 62 of the first flexible web 60.

[0025] Durable component 100 is shown in an exploded top perspective view in FIG. 2, a top view in FIG. 4, a cross-sectional view in FIG. 5, and an enlarged cross-sectional view in FIG. 6. Durable component 100 has a housing 102 having a window 104. A spectrophotometer is disposed within housing 102. The spectrophotometer components include a light source 122 and a photodetector 124. The spectrophotometer is adjacent to and in optical communication with window 104, which allows the spectrophotometer to be in optical communication with colorimetric analyte sensing element 30 of indicator component 20.

[0026] 2, the spectrophotometer includes two light sources 122 and one photodetector 124. If desired, the spectrophotometer can include at least one or more light sources 122 and at least one photodetector 124, for example, at least two or more light sources 122 and at least two or more photodetectors 124.

[0027] 2 also shows male connector protrusions 106 that surround window 104 on housing 102. Male connector protrusions 106 allow durable component 100 to be releasably attached to indicator component 20.

[0028] 4 is a top view of durable component 100 of system 10. Conductive strips 108a and 108b are disposed on the top surface of male connector prongs 106 and act as moisture sensors arranged and configured to communicate the presence of moisture in colorimetric analyte sensing element 30 to a computer system disposed within durable component 100, as described below.

[0029] 4 and 5 also show two light sources 122 and light detectors 124 arranged linearly and evenly spaced apart within the system 10. Even spacing can be achieved in other ways, such as with multiple pairs of light sources 122 evenly spaced in a square or circular array around the light detector 124.

[0030] Figures 5 and 6 are cross-sectional views of durable component 100. Figure 5 shows housing 102, window 104, male connector prongs 106, conductive strips 108a and 108b, and printed circuit board (PCB) 120. Figure 6 is a close-up of the area of ​​durable component 100 that houses the spectrophotometer components.

[0031] PCB 120 mechanically supports and electrically connects electronic components using conductive tracks, pads, and other features etched from copper plates laminated onto a non-conductive substrate. Components (e.g., capacitors, resistors, controllers, power supplies, light sources, detectors) are typically soldered onto PCB 120. PCB 120 contains a computing system 140 having one or more processors and memory, as well as a means for electronic communication 150 for transmitting results of the analysis to a data processing system external to system 10. Data processing systems that may be used include at least one external device, including a server computer, a client computer, and a handheld device such as a mobile phone.

[0032] 5 shows the PCB 120 supported within the housing 102 of the durable component 100 using the support bracket 110. In other embodiments, the PCB 120 may be attached directly to the interior surface of the housing 102.

[0033] 6 is a close-up of the area of ​​durable component 100 that houses the spectrophotometer components. The spectrophotometer components, light source 122 and photodetector 124, are located on the surface of PCB 120. They are shielded from ambient light by shield 126, shown as a cylindrical ring whose two ends terminate on the surface of PCB 120 and the inner surface of housing 102 of durable component 100. A skirt 128 is attached to the surface of PCB 120 and serves to optically isolate photodetector 124 from light source 122. Thus, during operation, light emanating from light source 122 cannot impinge on photodetector 124 without reflecting off colorimetric analyte sensing element 30.

[0034] Alternatively, a lens may be placed over the light source 122 such that, in operation, light emanating from the light source 122 cannot impinge on the photodetector 124 without reflecting off the colorimetric analyte sensing element 30. Potting material may also be used to focus the light from the light source 122 onto the colorimetric analyte sensing element 30.

[0035] 6 also shows light chamber 130. Light chamber 130 is the volume enclosed by the surface of PCB 120, ambient light via shield 126, male connector protrusion 106, conductive strip 108b, and colorimetric analyte sensing element 30. Indicator zone 21 is the area of ​​indicator component 20 where colorimetric analyte sensing element 30 is exposed to light source 122.

[0036] While two light sources 122 are visible in FIGS. 5 and 6 , durable component 100 may have multiple light sources 122, for example, four light sources evenly spaced around the device. Light sources 122 may be light-emitting diodes (LEDs), which are semiconductor light sources that emit light when current passes through them. LEDs have many advantages over incandescent light sources, including lower energy consumption, longer lifespan, improved physical robustness, smaller size, and faster switching. In the embodiment discussed herein, light sources 122 are RGB LEDs. Mixing red, green, and blue sources can produce white light with an appropriate blend of colors. Additionally, the color emitted from an RGB LED can be monochromatic, allowing data to be obtained within a narrow wavelength range.

[0037] Photodetector 124 is also referred to as a photosensor. A photodetector is a sensor of light or other electromagnetic radiation. A photodetector has a pn junction that converts photons into electrical current. Absorbed photons create electron-hole pairs in a depletion region. In some embodiments, photodetector 124 can measure the amount of white light received. In the embodiment discussed herein, photodetector 124 specifically measures red, green, and blue light, allowing data to be acquired within a narrow wavelength range (note the "R," "G," and "B" above photodetector 124 in FIG. 6).

[0038] In the system 10 for measuring an analyte concentration in an absorbent article, the light source 122 emits light in narrow red, green, and blue wavelengths. The emitted light waves reflect off the colorimetric analyte sensing element 30. The reflected light is then measured by the photodetector 124. In this embodiment, the light source 122 emits red, green, and blue light sequentially, allowing for the near-simultaneous collection of three data points. In other embodiments, the order of the emitted red, green, and blue light may be varied.

[0039] The components of the spectrophotometer may be coated with a protective material that prevents moisture from contacting the colorimetric analyte sensing element 30 and potentially damaging the components of the spectrophotometer.

[0040] Indicator component 20 is arranged and configured to be releasably attached to durable component 100. When assembled, colorimetric analyte sensing element 30 is positioned adjacent to and in optical communication with window 104 and the spectrophotometer element.

[0041] 4-6 also show conductive strips 108a and 108b disposed on the top surface of male connector prong 106. Conductive strips 108a and 108b act as moisture sensors within system 10 and are arranged and configured to communicate the presence of moisture in colorimetric analyte sensing element 30 to a computing system disposed within durable component 100. The computing system disposed within durable component 100 is in turn operatively connected to the moisture sensor and spectrophotometer components.

[0042] 6, conductive strips 108a and 108b are adjacent to colorimetric analyte sensing element 30. When moisture impinges on colorimetric analyte sensing element 30, it will also contact a portion of conductive strips 108a and 108b.

[0043] 7 and 8 illustrate the function of the conductive strips 108a and 108b in the moisture sensor in system 10. FIG. 7 shows top views of the conductive strips 108a and 108b at several points during the progression of a moisture front across the strips. The progression of the front is indicated as AA, BB, CC, and DD. At point AA, the moisture front has progressed partially across the conductive strips 108a and 108b. Further progression across the strips 108a and 108b is indicated as points BB and CC, while DD indicates the point at which the moisture front has completely traversed the strips 108a and 108b.

[0044] FIG. 8 shows an example of the change in electrical properties between strips 108a and 108b as the moisture front progresses across the strips. In this embodiment, FIG. 8 shows a capacitance versus time plot as the moisture front traverses strips 108a and 108b. Line A on FIG. 8 corresponds to time AA, when the moisture front has progressed partially across conductive strips 108a and 108b. The capacitance is shown to increase to line B and then line C as time points BB and CC indicate further progress across strips 108a and 108b. Finally, line D shows the capacitance at a level corresponding to time point DD, when the moisture front has completely traversed strips 108a and 108b. At point DD, the colorimetric analyte sensing element 30 is fully saturated with moisture.

[0045] Although capacitance is considered in this embodiment, other electrical properties, such as resistance, will also change as the moisture front progresses across the strips 108a and 108b.

[0046] The moisture sensing system described above allows a spectrophotometer to take readings of the emitted light waves reflected from the colorimetric analyte sensing element 30 at a time after the strip has been wetted with moisture. This overcomes the problem that the chemicals used in the test strip are sensitive to time, temperature, and wetness, allowing accurate and reproducible readings to be obtained.

[0047] In a preferred embodiment, the multiple light sources 122 are four narrow-beam LEDs spaced around the photodetector 124. Thus, the onset of wettability can be detected by a change in impedance through the conductive strips 108a and 108b. The accuracy of the onset of sufficient saturation of the colorimetric analyte sensing element 30 can be improved by sequentially activating each of the narrow-beam LEDs and comparing the light detected by the photodetector 124. If there is a significant difference between the data returned by the photodetector 124 as a result of the different narrow-beam LEDs, the colorimetric analyte sensing element 30 may not be sufficiently saturated for reliable analysis. Thus, in this embodiment, the system can begin collecting optical data about the colorimetric analyte sensing element 30 after a predetermined period of time following bodily fluid contact with the colorimetric analyte sensing element 30, as determined by (1) the change in impedance through the conductive strips 108a and 108b and (2) relatively consistent data returned by the photodetector 124 as a result of the different narrow-beam LEDs, indicating substantially uniform wettability of the colorimetric analyte sensing element 30.

[0048] While the embodiments described above are of a system 10 for measuring an analyte concentration in an absorbent article having an indicator component 20 and a durable component 100, it is envisioned that, in some cases, the durable component 100 may be combined with multiple indicator components 20 to create a kit for measuring an analyte concentration in an absorbent article. The kit has at least one, and preferably one or more, individually packaged indicator components 20. This allows the kit to measure the analyte concentration in an absorbent article daily, weekly, or monthly, or once or more than once per day, week, or month. When used in this manner, the system 10 is used to track changes in the measured analyte concentration over days, weeks, months, or even years.

[0049] Disposable absorbent articles for use in the system 10 for measuring analyte concentrations include absorbent hygiene articles such as diapers (including baby diapers, training pants, and adult incontinence products) and pads (including feminine sanitary napkins and panty liners and nursing pads).

[0050] For example, an absorbent article for use with system 10 for measuring an analyte concentration is a diaper, and the analyte concentration is measured in urine. Indicator component 20 has an attachment means, such as adhesive layer 90. Adhesive layer 90 is used to attach or bond indicator component 20 of system 10 to the fluid transfer layer of the diaper. System 10 can be attached to the body-facing surface of the diaper. Other attachment means will be readily apparent, including, but not limited to, mechanical fasteners such as clips, clamps, hook-and-loop systems, and bands, magnetic (including electrostatic), friction, and the like. The indicator component can be arranged and configured to be releasably attached to the diaper.

[0051] A system for measuring an analyte concentration in an absorbent article can have multiple colorimetric analyte sensing elements. Figures 9-17 show a system for measuring an analyte concentration in an absorbent article of the present invention. System 200 includes an indicator component 220 and a durable component 300. Figures 9 and 10 show the top and bottom, respectively, of system 200 when fully assembled.

[0052] Indicator component 220 is shown in an exploded view in Figure 11. Indicator component 220 includes an indicator zone 221 having a pair of colorimetric analyte sensing elements, i.e., first and second colorimetric analyte sensing elements 230a and 230b. First colorimetric analyte sensing element 230a has first and second sides 232a and 234a and perforation 236a. Second colorimetric analyte sensing element 230b has first and second sides 232b and 234b and perforation 236b.

[0053] The colorimetric analyte sensing elements 230a, 230b may be reagent-impregnated matrices designed to produce a visual indication of the presence of a preselected analyte in a sample produced by the wearer of the system 200. Chemistry and methods for detecting analytes by producing a visual indication are well known in the art. The preselected analytes measured by the system 200 may be glucose, ketones, bilirubin, blood, pH, protein, urobilinogen, nitrite, white blood cells, and / or creatinine, among others.

[0054] The colorimetric analyte sensing elements 230a, 230b may be designed to produce a visual indication of the presence of the same preselected analyte in a sample produced by a wearer of the system 200. In this case, the colorimetric analyte sensing elements 230a, 230b act to confirm the analysis. The colorimetric analyte sensing elements 230a, 230b may also be designed to produce a visual indication of the presence of different preselected analytes in a sample produced by a wearer of the system 200.

[0055] Again, the absorbent article may be a diaper, the fluid being tested may be urine, and the preselected analyte measured by system 200 may be glucose. Glycosuria, or urinary glucose, is the presence of higher than normal levels of sugar in the urine and may result from an individual's kidney complications or diabetes.

[0056] A preselected analyte measured by system 200 can also be ketones. When cells in the body do not get enough glucose, the body burns fat for energy instead. This produces ketones, which can appear in the blood and urine. High ketone levels in the urine can indicate diabetic ketoacidosis (DKA), a complication that can lead to coma or even death.

[0057] Some of the most common causes of glucose in urine include diabetes mellitus, hyperthyroidism, benign diabetes, cirrhosis of the liver, or a high carbohydrate diet. Additionally, in some embodiments, those skilled in the art will recognize that selecting an appropriate biosensor capable of converting a preferred biomarker into a calorimetrically readable result can also be used in genomics, transcriptomics, metabolomics, and proteomics to determine the presence of inflammatory biomarkers present in urine.

[0058] Other components of indicator component 220 include an optional top plate 270, an optional first flexible web 260, a fluid transfer layer 250, a second flexible web 240, an adhesive layer 290, and a coupler 280, shown here as a retaining plate.

[0059] The colorimetric analyte sensing elements 230a, 230b are encapsulated between a first encapsulation layer 410 and a second encapsulation layer 430, forming a fluid-impermeable envelope 431. The first encapsulation layer 410 has a first side 412 and a second side 414, as well as a perforation 416 and an opening 418. The second encapsulation layer 430 has a first side 432 and a second side 434, as well as a perforation 436 and an opening 438.

[0060] Figure 12 is a top perspective view of a fluid-impermeable envelope 431 encapsulating the colorimetric analyte sensing elements 230a, 230b of the indicator component 220 of the system 200. Figure 13 shows a top view of the fluid-impermeable envelope 431 encapsulating the colorimetric analyte sensing elements of Figure 12. The figure shows, in solid lines, the first side 432, perforations 436, and openings 438 of the second encapsulation layer 430. The figure shows, in dashed lines, the colorimetric analyte sensing elements 230a, 230b, their first sides 232a, 232b, and perforations 236a, 236b, and the openings 418 of the first encapsulation layer 410. The dashed lines indicating the colorimetric analyte sensing elements 230a, 230b also outline the individual pockets 433 (one of two shown in FIG. 13) that are formed when the first encapsulation layer 410 and the second encapsulation layer 430 are sealed together where their surfaces contact.

[0061] When assembled, first perforation 436 in second encapsulation layer 430 is aligned with perforations 236a, 236b in colorimetric analyte sensing elements 230a, 230b, as well as perforation 416 in first encapsulation layer 410 (not shown). In addition, opening 438 in second encapsulation layer 430 is aligned with opening 418 in first encapsulation layer 410.

[0062] A fluid-impermeable envelope 431 encapsulating the colorimetric analyte sensing elements 230a, 230b of the indicator component 220 of the system 200 is disposed on the fluid transfer layer 250. This partially assembled indicator component of the system 200 is shown in a top view in FIG. 14 and a bottom view in FIG. 15. FIG. 14 shows, in solid lines, the first side 252, first perforation 256, and second perforation 258 of the fluid transfer layer 250. In dashed lines, the figure shows the colorimetric analyte sensing elements 230a, 230b, their first sides 232a, 232b, and perforations 236a, 236b, as well as the opening 418 in the first encapsulation layer 410 and the first side 432 and opening 438 in the second encapsulation layer 430.

[0063] 15 shows, in solid lines, second side 252 of fluid transport layer 250, and second side 414, perforation 416, and opening 418 of first encapsulation layer 410. In dashed lines, the figure shows colorimetric analyte sensing elements 230a, 230b, their second sides 234a, 234b, and perforations 236a, 236b, and second perforation 258 of fluid transport layer 250.

[0064] Second flexible web 240 has first side 242, second side 244, and opening 246, and is made of a non-absorbent material such as polyethylene foam. A fluid impermeable envelope 431 encapsulating colorimetric analyte sensing elements 230a, 230b is disposed on second flexible web 240, specifically within opening 246 of second flexible web 240, and is in fluid communication with fluid transfer layer 250. Fluid transfer layer 250 is in turn in fluid communication with first flexible web 260. First flexible web 260 has first side 262 and perforations 266, and is made of a non-absorbent apertured film such as polyethylene mesh.

[0065] Second flexible web 240, fluid transfer layer 250, and first flexible web 260 are designed to control the transport of bodily fluids to colorimetric analyte sensing elements 230a, 230b and to limit fluid cross-contamination between different colorimetric analyte sensing elements. During use, fluid from the absorbent article first contacts first side 262 of first flexible web 260. Because first flexible web 260 is a non-absorbent apertured film, the fluid passes through first flexible web 260 and contacts first side 252 of fluid transfer layer 250. The fluid then permeates throughout fluid transfer layer 250. The fluid will contact first side 242 of second flexible web 240. However, because second flexible web 240 is made of a non-absorbent material, the fluid in transfer layer 250 does not penetrate second flexible web 240. Finally, the fluid in the transport layer 250 passes through the openings 438 in the second encapsulation layer 430 and contacts the colorimetric analyte sensing elements 230a, 230b. Cross-contamination between the two colorimetric analyte sensing elements is eliminated, or at least rendered insignificant and undetectable, with the fluid barrier defined by the capillary gap in the fluid transport layer 250 provided by the second perforations 258.

[0066] Sensing elements 230a, 230b, first encapsulation layer 410, second encapsulation layer 430, second flexible web 240, fluid transfer layer 250, and first flexible web 260 are stacked as shown in FIG. 11 and held together by top plate 270 and retaining plate 280. Top plate 270 has pins 278 that pass sequentially through perforation 266 in first flexible web 260, perforation 256 in fluid transfer layer 250, perforation 416 in first encapsulation layer 410, perforations 236a, 236b in colorimetric analyte sensing elements 230a, 230b, first perforation 436 in second encapsulation layer 430, opening 246 in second flexible web 240, and finally positioned within blind holes 286 in retaining plate 280. A friction fit between the top plate pins 278 and the blind holes 286 holds together the components of the indicator component 220. Alternative assemblies may be held together by other interactions such as snap fits, ultrasonic welding, heat welding, other mechanical fasteners, and the like.

[0067] The top plate 270 may have one or more channels on the side facing the first side 262 of the first flexible web 260. The channels may help direct fluid from the absorbent article towards the first side 262 of the first flexible web 260.

[0068] The indicator component 220 may have an attachment means, such as an adhesive layer 290. The adhesive layer 290 has a first side 292 and is used to attach or bond the indicator component 220 of the system 200 to a fluid transfer layer of an absorbent article, such as a diaper.

[0069] The durable component 300 of the system is shown in a top perspective view in FIG. 16 and a top view in FIG. 17. The durable component 300 has a housing 302 with a pair of windows, first window 304a and second window 304b. The durable component 300 also has a flat top surface 306. A pair of spectrophotometers are disposed within the housing 302. The first spectrophotometer is adjacent to and in optical communication with the first window 304a. The first spectrophotometer components include a light source 322a and a photodetector 324a. The first spectrophotometer is in optical communication with the colorimetric analyte sensing element 230a. The second spectrophotometer is adjacent to and in optical communication with the second window 304b. The second spectrophotometer components include a light source 322b and a photodetector 324b. The second spectrophotometer is in optical communication with the colorimetric analyte sensing element 230b. Although the durable component 300 is shown with two spectrophotometers, additional spectrophotometers may be included for measuring additional analytes or bodily fluid conditions, such as pH, temperature, etc. The indicator-zone 221 is the area of ​​the indicator component 220 where the colorimetric analyte sensing element 230a is exposed to the light source 322a.

[0070] Although not shown, durable component 300 also includes a printed circuit board (PCB) with a computing system having one or more processors and memory, as well as a means for electronic communication to transmit the results of the analysis to a data processing system external to system 200. Data processing systems that may be used include at least one external device, including a server computer, a client computer, and a handheld device such as a mobile phone.

[0071] As shown in Figures 16 and 17, the first and second spectrophotometers may include four light sources 322a, 322b, each having one photodetector 324a, 324b. Each spectrophotometer may have at least one light source 322a, 322b associated therewith. Each spectrophotometer may include at least six or more light sources 322a, 322b. As previously mentioned, the light sources 322a, 322b may be light-emitting diodes (LEDs), more specifically, RGB LEDs. The light sources 322a, 322b may sequentially emit red, green, and blue light, allowing for near-simultaneous collection of three data points, or the order of the emitted red, green, and blue light may be varied.

[0072] The photodetectors 324a, 324b in the spectrophotometer may specifically measure red, green, and blue light, as previously discussed, allowing data to be acquired within a narrow wavelength range. Light waves emitted from the light source 322a reflect off the colorimetric analyte sensing element 230a, and the reflected light is measured by the photodetector 324a. Light waves emitted from the light source 322b reflect off the colorimetric analyte sensing element 230b, and the reflected light is measured by the photodetector 324b. The components of the spectrophotometer may be coated with a protective material. The protective material prevents moisture from contacting the colorimetric analyte sensing elements 230a, 230b and potentially damaging the components of the spectrophotometer.

[0073] 16 and 17 also show connector 310 disposed on housing 302. Connector 310 includes a standard spring-loaded clip 312 that is biased to retain clip 312 to housing 302 of durable component 300. As shown in FIG. 11 , retention plate 280 has receiving element 286 disposed thereon. Clip 312 fastens to receiving element 286 to releasably attach durable component 300 to retention plate 280. By this means, durable component 300 is releasably attached to indicator component 220. Other attachment means will be readily apparent, including, but not limited to, clips, clamps, hook-and-loop systems, threaded openings, bayonet couplings, mechanical fasteners such as straps, belts, and bands, magnetic (including electrostatic), friction, and the like.

[0074] 17 also shows conductive strips 308a, 308b, 308c, and 308d disposed on the top surface 306 of the durable component 300. The conductive strips 308a, 308b, 308c, and 308d act as moisture sensors arranged and configured to communicate the presence of moisture in the colorimetric analyte sensing elements 230a, 230b to a computing system disposed within the durable component 300. As shown in FIG. 17, the conductive strips 308a and 308b are associated with the first window 304a and the colorimetric analyte sensing element 230a. The conductive strips 308c and 308d are associated with the second window 304b and the colorimetric analyte sensing element 230b. The computing system disposed within the durable component 300 is operably connected to the moisture sensors and the components of the spectrophotometer.

[0075] Conductive strips 308a and 308b are adjacent to colorimetric analyte sensing element 230a. When moisture impinges on colorimetric analyte sensing element 230a, it will also contact portions of conductive strips 308a and 308b. Conductive strips 308c and 308d are adjacent to colorimetric analyte sensing element 230b. When moisture impinges on colorimetric analyte sensing element 230b, it will also contact portions of conductive strips 308c and 308d.

[0076] The mode of operation of conductive strips 308a, 308b, 308c, and 308d as moisture sensors is identical to the operation of conductive strips 108a and 108b as described in FIGS. 7 and 8. The moisture front progresses partially and eventually completely across conductive strips 308a and 308b, and 308c and 308d. The system for measuring analyte concentrations in bodily fluids can be used in an absorbent article or can be directly contacted by bodily fluids outside of the absorbent article. For example, the system can contact bodily fluids collected in a specimen container or can contact bodily fluids such as urine as the fluid is excreted from the human body. FIGS. 18-20 illustrate a system for measuring analyte concentrations in bodily fluids of the present invention. System 500 includes an indicator component 520 and a durable component 600. FIG. 18 is a top perspective view of system 500 when fully assembled. FIG. 19 is a top perspective view of indicator component 520 of system 500. FIG. 20 is a partially exploded view of the system 500, with the indicator component 520 shown in exploded view.

[0077] 20, indicator component 520 includes indicator zone 521, which is shown to have a pair of colorimetric analyte sensing elements, namely, first colorimetric analyte sensing element 530a and second colorimetric analyte sensing element 530b. First colorimetric analyte sensing element 530a has a first side 532a and perforations 536a. Second colorimetric analyte sensing element 530b has a first side 532b and perforations 536b.

[0078] As previously discussed, the colorimetric analyte sensing elements 530a, 530b may be reagent-impregnated matrices designed to produce a visual indication of the presence of a preselected analyte in a sample generated by a user of the system 500. The preselected analyte measured by the system 500 may be glucose, ketones, bilirubin, blood, pH, protein, urobilinogen, nitrite, white blood cells, and / or creatinine, among others.

[0079] Again, the colorimetric analyte sensing elements 530a, 530b may be designed to indicate the presence of the same preselected analyte in samples generated by a user of the system 500. In this case, the colorimetric analyte sensing elements 530a, 530b act to confirm the analysis. The colorimetric analyte sensing elements 530a, 530b may also be designed to produce a visual indication of the presence of different preselected analytes in samples generated by a user of the system 500.

[0080] Again, the fluid being tested may be urine, and the preselected analytes measured by system 500 may be glucose, one or more ketones, or a combination thereof. The presence of higher than normal levels of glucose and / or ketones in the urine may be due to a complication with the user's kidneys or other conditions, such as diabetes mellitus, hyperthyroidism, benign diabetes, cirrhosis of the liver, or a high carbohydrate diet.

[0081] Additionally, selecting an appropriate biosensor capable of converting a preferred biomarker into a calorimetrically readable result can also be used in genomics, transcriptomics, metabolomics, and proteomics to determine the presence of inflammatory biomarkers present in urine or other body fluids.

[0082] Other components of the indicator component 520 include a top plate 570, a first flexible web 560, a fluid transfer layer 550, a first encapsulation layer 710, a second encapsulation layer 730, and a coupler 580, shown here as a retaining plate.

[0083] The colorimetric analyte sensing elements 530a, 530b are encapsulated between a first encapsulation layer 710 and a second encapsulation layer 730, forming a fluid-impermeable envelope 731. The first encapsulation layer 710 has a first side 712, a perforation 716, and an opening 718. The second encapsulation layer 730 has a first side 732, a perforation 736, and an opening 738.

[0084] When assembled into indicator component 520, perforations 716 in first encapsulation layer 710 are aligned with perforations 536a, 536b in colorimetric analyte sensing elements 530a, 530b, as well as perforation 736 in second encapsulation layer 730. Additionally, opening 718 in first encapsulation layer 710 is aligned with opening 738 in second encapsulation layer 730.

[0085] 20 also shows a fluid transfer layer 550 and a first flexible web 560. When assembled into the indicator component 520, the fluid transfer layer 550 is disposed over the encapsulated colorimetric analyte sensing elements 530a, 530b of the indicator component 520 of the system 500. The fluid transfer layer 550 has a first side 552, a first perforation 556, and a second perforation 558. The first flexible web 560 is disposed over the fluid transfer layer 550 and has a first side 562 and perforations 566, and is made from a non-absorbent apertured film such as a polyethylene mesh.

[0086] When assembled into indicator component 520, colorimetric analyte sensing elements 230a, 230b, which are encapsulated in fluid impermeable envelope 731, are in fluid communication with fluid transport layer 550. Fluid transport layer 550 is in turn in fluid communication with first flexible web 560.

[0087] Fluid transport layer 550 and first flexible web 560 are designed to control the transport of bodily fluid to colorimetric analyte sensing elements 530a, 530b and to limit fluid cross-contamination between different colorimetric analyte sensing elements. During use, bodily fluid first contacts first side 562 of first flexible web 560. Because first flexible web 560 is a non-absorbent apertured film, the fluid passes through first flexible web 560 and contacts first side 552 of fluid transport layer 550. The fluid then permeates throughout fluid transport layer 550. Finally, the fluid within transport layer 550 passes through apertures 738 in second encapsulation layer 730 and contacts colorimetric analyte sensing elements 530a, 530b. Again, cross-contamination between the two colorimetric analyte sensing elements is eliminated, or at least rendered insignificant and undetectable, with the fluid barrier defined by the gap in capillarity within the fluid transport layer 550 provided by the second perforations 558.

[0088] Sensing elements 530a, 530b, first encapsulation layer 710, second encapsulation layer 730, fluid transfer layer 550, and first flexible web 560 are stacked as shown in FIG. 20 and held together by top plate 570 and retaining plate 580. Top plate 570 has pins 578 that pass through perforations 566 in first flexible web 560, perforations 556 in fluid transfer layer 550, perforations 716 in first encapsulation layer 710, perforations 536a, 536b in colorimetric analyte sensing elements 530a, 530b, perforations 736 in second encapsulation layer 730, and finally disposed in blind holes 586 on a first side 582 of retaining plate 580. A friction fit between the top plate pins 578 and the blind holes 586 holds together the components of the indicator component 520. Alternative assemblies may be held together by other interactions such as snap fits, ultrasonic welding, heat welding, other mechanical fasteners, and the like.

[0089] Top plate 570 has openings 576 that help direct fluid to first side 562 of first flexible web 560. Top plate 570 also has protrusions 575 disposed thereon. Protrusions 575, as well as protrusions 587 disposed on retainer plate 580, are a means of attaching indicator component 520 to durable component 600 of system 500.

[0090] Durable component 600 is shown in a top perspective view in Figure 20. Durable component 600, having a proximal end 620 and a distal end 630, has a housing 602 with a pair of windows, first window 604a and second window 604b. Durable component 600 also has a flat top surface 606, conductive rings 608a and 604b, a receiving element 605, a protrusion 610, an activation button 650, and a finger grip 660.

[0091] Although not shown, a pair of spectrophotometers are disposed within the housing 602. The first spectrophotometer is adjacent to and in optical communication with the first window 604a, while the second spectrophotometer is adjacent to and in optical communication with the second window 604b. The first spectrophotometer is in optical communication with the colorimetric analyte sensing element 530a, and the second spectrophotometer is in optical communication with the colorimetric analyte sensing element 530b. Although the durable component 600 is shown with two spectrophotometers, additional spectrophotometers may be included for measuring additional analytes or bodily fluid conditions, such as pH or temperature. The indicator-zone 521 is the area of ​​the indicator component 520 where the colorimetric analyte sensing element 530a is exposed to a light source.

[0092] Although not shown, durable component 600 also includes a printed circuit board (PCB) with a computing system having one or more processors and memory, as well as a means for electronic communication to transmit the results of the analysis to a data processing system external to system 500. Data processing systems that may be used include at least one external device, including a server computer, a client computer, and a handheld device such as a mobile phone.

[0093] As discussed in other embodiments herein, a spectrophotometer may include at least one or more, or two or more, or four or five or more, or six or seven or more light sources and at least one, or at least two or more photodetectors. Also, as previously mentioned, the light sources in durability component 600 may be light-emitting diodes (LEDs), more specifically, RGB LEDs. The light sources may emit red, green, and blue light sequentially, allowing for near-simultaneous collection of three data points, or the order of the emitted red, green, and blue light may be varied.

[0094] The photodetectors in the durable components 600 may also specifically measure red, green, and blue light, as previously discussed, allowing data to be acquired within a narrow wavelength range, and may be coated with a protective material to reduce the possibility of damage to those components.

[0095] 18 shows a top perspective view of durable component 600 and indicator component 520 assembled to form system 500. Here, indicator component 520 is disposed on distal end 630 of durable component 600. Top plate 570 of durable component 600 has protrusion 575, and retention plate 580 has protrusion 587. Durable component 600 has receiving element 605 and protrusion 610. To releasably attach indicator component 520 to durable component 500, protrusion 575 of top plate 570 is disposed within receiving element 605 of durable component 600. Protrusion 587 of retention plate 580 is then engaged with protrusion 610 of durable component 600 using a snap connection.

[0096] 20 shows conductive strips 608a and 608b disposed on the top surface 606 of the durable component 600. The conductive strips 608a and 608b act as moisture sensors for the system 500. They are arranged and configured to communicate the presence of moisture in the colorimetric analyte sensing elements 530a, 530b to a computing system disposed within the durable component 600. In this embodiment, the conductive strip 608a is associated with the first window 604a and the colorimetric analyte sensing element 530a. The conductive strip 608b is associated with the second window 604b and the colorimetric analyte sensing element 530b. The computing system disposed within the durable component 600 is operably connected to the moisture sensors and the spectrophotometer components.

[0097] The mode of operation of conductive strips 608a and 608b as moisture sensors is identical to the operation of conductive strips 108a and 108b as described in Figures 7 and 8. A moisture front progresses partially and eventually completely across conductive strips 608a and 608b.

[0098] The durable component may be matched with multiple indicator components to create a kit for measuring analyte concentrations in absorbent articles. For example, a kit may have durable component 100, 300, 600 (described above) and multiple indicator components 20, 220, 520 (described above). To ensure the integrity of the indicator components during storage, each such indicator component is enclosed within an individual package.

[0099] The present invention also includes a method for measuring an analyte concentration in an absorbent article. Bodily fluid is collected and transported to at least one colorimetric analyte sensing element via a transport layer. The presence of bodily fluid in the at least one colorimetric analyte sensing element initiates a countdown over a predetermined period of time. Optical data associated with the colorimetric analyte sensing element is collected by at least one spectrophotometer after the predetermined period of time. The optical data is communicated to a computing system having at least one processor and data storage device. The optical data is analyzed to determine the concentration of at least one analyte in the bodily fluid.

[0100] The predetermined period of time following bodily fluid contact with the colorimetric analyte sensing element can be greater than 15 seconds, or greater than 30 seconds, or greater than 60 seconds, or greater than 120 seconds, or greater than 240 seconds, or greater than 300 seconds, or greater than 360 seconds, or longer. The predetermined period of time following bodily fluid contact with the colorimetric analyte sensing element can be a predetermined time range of, for example, from about 15 to about 360 seconds, or from about 30 to about 240 seconds, or from about 120 to about 180 seconds, or from about 240 to about 360 seconds.

[0101] The analytes measured by the system may be glucose, ketones, bilirubin, blood, pH, protein, urobilinogen, nitrite, white blood cells, and / or creatinine, among others.

[0102] Analytes found in bodily fluids potentially carry evidence of developing metabolic problems. There is a need for those within and outside of medical facilities to track and analyze changes in the concentrations of analytes in bodily fluids over time. These changes can be useful for predicting the risk of future disease states. Thus, the system contemplated in this invention enables a method for predicting the risk of future disease states.

[0103] As described above, bodily fluid is collected and transported to at least one colorimetric analyte sensing element via a transport layer. The presence of bodily fluid at the at least one colorimetric analyte sensing element initiates a countdown over a predetermined period of time. Optical data associated with the colorimetric analyte sensing element is collected by at least one spectrophotometer after the predetermined period of time. The optical data is communicated to a computing system having at least one processor and data storage device. The optical data is analyzed to determine the concentration of at least one analyte in the bodily fluid. A threshold analyte concentration of the at least one analyte concentration indicative of a risk of developing a future disease state is compared to the at least one analyte concentration, which can be recorded over time. Thus, the risk of developing a future disease state can be monitored over time.

[0104] The system may be arranged, configured, and programmed with multiple photodetectors 124 and multiple colorimetric analyte sensing elements 30 to determine multiple analyte concentrations in a bodily fluid.

[0105] Noninvasively measuring analyte concentrations in bodily fluids is also ideally suited for epidemiological studies to quickly identify common problems in a particular region or for specific populations. Analyte concentration measurements from system 10 can be collected over long periods of time across broad populations. The collected data can be studied to determine relationships between various analyte levels and disease states, or combined with other physiological parameters such as blood pressure, blood oxygen levels, and pulse rate, or with demographic statistics such as age, sex, weight, and nationality, to create predictive models of future disease states as a function of the stored parameters.

[0106] The aforementioned methods may employ a system deployed within or in conjunction with an absorbent article, such as a diaper or pad, or may employ direct contact with bodily fluids without the use of an absorbent article. For example, the system 500 may be attached to the body-facing surface of a diaper. The system 500 of FIGS. 18-20 may be in direct contact with bodily fluids. It may be immersed in the bodily fluid to be initially collected in a specimen container by grasping the system 500 by the finger grip 660 on the proximal end 620 of the durable component 600. The system 500 may be energized by a user-initiated activation button 650 on the proximal end 620 of the durable component 600 before or after placing the distal end 630 into the specimen container. Alternatively, the indicator component of the system 500 may be placed in a stream of bodily fluid, such as urine, as the fluid is discharged from the human body. In these uses, the durable component 600 is a handheld analyzer. [Example]

[0107] Example 1: Demonstration of stability of reflectance values ​​versus time in colorimetric analyte sensing elements. To examine the change in reflectance values ​​versus time, reflectance measurements were performed using a prototype spectrophotometer on a series of prototype colorimetric analyte sensing elements exposed to glucose solutions at room temperature.

[0108] A prototype spectrophotometer was constructed using the following components: Light source 122: RGB LED with light wavelengths of 624, 525, and 468 nm from INOLUX (Santa Clara, CA). Part number is IN-S66TATRGB. Photodetector 124: Integrated circuit (IC) color light-to-digital converter with infrared (IR) filter. The integrated circuit provides digital values ​​for red, green, blue (RGB), and clear light sensing. The IR blocking filter minimizes IR light spectral content, allowing color measurements to be made accurately. The part number was TCS34725, available from ams AG (Premstaetten, Austria).

[0109] The prototype colorimetric analyte sensing element 30 was a porous polysulfone membrane from PortaScience Inc. (Moorsetown, NJ). The membrane was injected with the following mixture: Glucose oxidase: 16.3% W / W Horseradish peroxidase: 0.6% W / W Potassium iodide: 7% W / W 60.7% w / w buffer solution, and 16.7% W / W non-reactive ingredients.

[0110] Tests were performed using an artificial urine solution with a glucose concentration of 25 milligrams per deciliter. All tests were performed at room temperature.

[0111] Light scans at three wavelengths (red, green, and blue) were performed on the dried colorimetric analyte sensing element to establish a baseline color for the element. The colorimetric analyte sensing element was then saturated with an artificial urine solution. Reflectance measurements were performed every 30 seconds in the three channels of light (red, green, and blue), and the reflectance was recorded.

[0112] Table 1.1 shows the reflectance from the saturated colorimetric analyte sensing element at each wavelength at each time point.

[0113] [Table 1]

[0114] The table shows that the reflectance of light at each of the wavelengths tested decreased with increasing time.

[0115] The relative variation of the traces was then calculated using the following formula: Relative variation (t2) = 100 * [Reflectance(t1)-Reflectance(t2)] / Reflectance(t0) During the ceremony, Reflectance(t1) and Reflectance(t2) are the reflectance measurements at time 1 and time 2, respectively; Reflectance (t0) is the reflectance measurement of the dry colorimetric analyte sensing element.

[0116] The relative variation is in percent (%).

[0117] For example, using the reflectance measurements of the green channel from Table 1.1, the relative variation at 60 seconds was calculated as follows: Relative fluctuation (t 60 )=100 * [1885-1736] / 2422=6.15%

[0118] Table 1.2 shows the relative variation in reflectance measurements in the green channel from the colorimetric analyte sensing element at each time point.

[0119] [Table 2]

[0120] The table shows the last three values ​​of convergent relative variation. Thus, in this example, data obtained 150 seconds after the colorimetric analyte sensing element is saturated with the glucose solution may be used in the algorithm to estimate glucose concentration. Alternatively, the algorithm may use data obtained 120-180 seconds after the colorimetric analyte sensing element is saturated with the glucose solution when testing for glucose.

[0121] In other embodiments, the convergence value of the relative variation may be used to determine the appropriate time to record data. Thus, for example, if the relative variation is below 2 percent, or 1.5 percent, the algorithm may select that time as the time to record data.

[0122] Of course, limitations of this test compared to realistic conditions include the temperature of the solution, as well as the rate at which real urine would saturate the colorimetric analyte sensing elements in the system. However, this qualitative example may reflect a real process. Extensive testing under realistic conditions must continue.

[0123] Example 2: Demonstration of stability of reflectance values ​​versus time in a colorimetric analyte sensing element with a moisture sensor. As described above, conductive strips 108a and 108b are arranged and configured to act as moisture sensors within system 10 and communicate the presence of moisture in colorimetric analyte sensing element 30 to a computing system located within durable component 100. In this example, reflectance measurements were performed using a prototype spectrophotometer on a series of prototype colorimetric analyte sensing elements exposed to glucose solutions at room temperature, and the moisture sensors were used to initiate testing for the analyte in the colorimetric sensors.

[0124] The prototype spectrophotometer and prototype colorimetric analyte sensing element were the same as those used in Example 1, which was an artificial urine solution (glucose concentration of 25 milligrams / dL). As in Example 1, all tests were performed at room temperature.

[0125] The test was carried out as follows. 1. 1.5 mL of synthetic urine was applied around the prototype colorimetric analyte sensing element at the 3 o'clock position. 2. The capacitor moisture sensor showed complete wetting of the sensor in less than 20 seconds. 3. The prototype colorimetric analyte sensing element was placed face up on the prototype spectrophotometer and reflectance measurements were taken every 60 seconds in three channels of light (red, green, and blue). The reflectance was recorded.

[0126] Table 2.1 shows the reflectance from the saturated colorimetric analyte sensing element at each wavelength at each time point.

[0127] [Table 3]

[0128] The relative variation in reflectance measurements of the green channel was calculated as shown in Example 1. Table 2.2 shows the relative variation in reflectance measurements at each time point.

[0129] [Table 4]

[0130] The table shows that the last three values ​​of relative variation represent a transformation of the data. Thus, in this example, data obtained 240 or 300 seconds after the colorimetric analyte sensing element is saturated with the glucose solution may be suitable for use in the algorithm to estimate glucose concentration. Alternatively, the algorithm may use data obtained 240 to 360 seconds after the colorimetric analyte sensing element is saturated with the glucose solution when testing for glucose.

[0131] The above specification, embodiments, and examples are presented to aid in a complete and non-limiting understanding of the invention disclosed herein. Since many variations and embodiments of the invention are possible without departing from the spirit and scope of the invention, the invention resides in the claims hereinafter appended.

[0132] [Embodiment] (1) A disposable indicator component for use in a system for measuring an analyte concentration in a body fluid, comprising: a) an indicator zone comprising at least one colorimetric analyte sensing element; b) a coupler for coupling said indicator component to a component having at least one spectrophotometer contained within a housing. (2) c) A disposable indicator component as described in embodiment 1, further comprising a fluid transfer layer in fluid communication with the indicator zone. (3) d) upper plate; e) a first flexible web layer adjacent to the fluid transfer layer; f) a fluid impermeable envelope surrounding the indicator zone adjacent the fluid transfer layer; g) a second flexible web layer adjacent to the fluid impermeable envelope; h) attachment means disposed on said second flexible web layer; i) a retaining plate; Further provided with I) the first flexible web layer, the fluid transfer layer, the fluid impermeable envelope, and the second flexible web layer are stacked in order and secured between the top plate and the support plate; II) the indicator zone comprises at least two colorimetric analyte sensing elements; III) the fluid-impermeable envelope has separate pockets arranged or configured to contain each of the at least two colorimetric analyte sensing elements, each pocket having its own opening in fluid communication with the fluid transfer layer; IV) A disposable indicator component as described in embodiment 2, wherein the fluid transfer layer is arranged and configured to prevent fluid transfer between openings in the fluid impermeable envelope. (4) A disposable indicator component as described in embodiment 3, wherein the top plate and the retaining plate are arranged and configured to provide a predetermined spacing for accommodating an indicator component layer with a predetermined fluid transport capacity to the indicator zone. (5) The disposable indicator component of claim 3, wherein the fluid transfer layer comprises a fluid barrier disposed between openings in the fluid-impermeable envelope.

[0133] (6) The disposable indicator component of embodiment 3, comprising a diaper. (7) A disposable indicator component according to embodiment 3, arranged and configured for releasable attachment to a diaper. (8) A disposable indicator component according to embodiment 1 enclosed within an individual package. (9) A disposable indicator component for use with a handheld analyzer, comprising: a) a first flexible web layer; b) a fluid transfer layer adjacent to the first flexible web layer; c) a fluid impermeable envelope surrounding the indicator zone adjacent the fluid transfer layer; Equipped with I) the first flexible web layer, the fluid transfer layer, and the fluid impermeable envelope are stacked in order and secured together; II) the indicator zone comprises at least two colorimetric analyte sensing elements; III) the fluid-impermeable envelope has separate pockets arranged or configured to contain each of the at least two colorimetric analyte sensing elements, each pocket having its own opening in fluid communication with the fluid transfer layer; IV) A disposable indicator component, wherein said fluid transfer layer is arranged and configured to prevent fluid transfer between openings in said fluid impermeable envelope. (10) d) a top plate adjacent to the first flexible web layer; e) a retaining plate; Further provided with A disposable indicator component as described in embodiment 9, wherein the first flexible web layer, the fluid transport layer, and the fluid-impermeable envelope are fixed between the upper plate and the retaining plate, and the disposable indicator zone component further comprises a coupler for releasably attaching the disposable indicator zone component to a housing for the handheld analyzer.

[0134] (11) A disposable indicator component as described in embodiment 10, wherein the top plate and the retaining plate are arranged and configured to provide a predetermined spacing for accommodating an indicator component layer with a predetermined fluid transport capacity to the indicator zone. (12) A disposable indicator component according to embodiment 9 enclosed within an individual package.

Claims

1. 1. A disposable indicator component for use in a system for measuring an analyte concentration in a body fluid, comprising: a) an indicator zone comprising at least one colorimetric analyte sensing element; b) a coupler for coupling the indicator component to a component having at least one spectrophotometer contained within a housing; c) a fluid transfer layer in fluid communication with the indicator zone; d) a top plate; e) a first flexible web layer adjacent to the fluid transfer layer; f) a fluid-impermeable envelope surrounding the indicator zone adjacent the fluid transfer layer; g) a second flexible web layer adjacent to said fluid impervious envelope; h) attachment means disposed on said second flexible web layer; i) a retaining plate; Further provided with I) the first flexible web layer, the fluid transfer layer, the fluid impermeable envelope, and the second flexible web layer are stacked in order and secured between the top plate and the support plate; II) the indicator zone comprises at least two colorimetric analyte sensing elements; III) the fluid-impermeable envelope has separate pockets arranged or configured to contain each of the at least two colorimetric analyte sensing elements, each pocket having its own opening in fluid communication with the fluid transfer layer; IV) the fluid transfer layer is arranged and configured to prevent fluid transfer between openings in the fluid impermeable envelope; the fluid-impermeable envelope includes a first encapsulation layer and a second encapsulation layer, the first encapsulation layer and the second encapsulation layer being fluid-impermeable and each having the unique opening at a position corresponding to the at least two colorimetric analyte sensing elements; The disposable indicator component, wherein the fluid-impermeable envelope is configured by sandwiching the at least two colorimetric analyte sensing elements between the first encapsulation layer and the second encapsulation layer.

2. 2. The disposable indicator component of claim 1, wherein the top plate and the retaining plate are arranged and configured to provide a predetermined spacing for accommodating an indicator component layer with a predetermined fluid transport capacity to the indicator zone.

3. The disposable indicator component of claim 1 , wherein the fluid transfer layer comprises a fluid barrier disposed between openings in the fluid impermeable envelope.

4. The disposable indicator component of claim 1 comprising a diaper.

5. The disposable indicator component of claim 1 arranged and configured for releasable attachment to a diaper.

6. 10. The disposable indicator component of claim 1 enclosed within an individual package.

7. 1. A disposable indicator component for use with a handheld analyzer, comprising: a) a first flexible web layer; b) a fluid transfer layer adjacent to the first flexible web layer; c) a fluid-impermeable envelope surrounding the indicator zone adjacent the fluid transfer layer; Equipped with I) the first flexible web layer, the fluid transfer layer, and the fluid impermeable envelope are stacked in order and secured together; II) the indicator zone comprises at least two colorimetric analyte sensing elements; III) the fluid-impermeable envelope has separate pockets arranged or configured to contain each of the at least two colorimetric analyte sensing elements, each pocket having its own opening in fluid communication with the fluid transfer layer; IV) the fluid transfer layer is arranged and configured to prevent fluid transfer between openings in the fluid impermeable envelope; the fluid-impermeable envelope includes a first encapsulation layer and a second encapsulation layer, the first encapsulation layer and the second encapsulation layer being fluid-impermeable and each having the unique opening at a position corresponding to the at least two colorimetric analyte sensing elements; The disposable indicator component, wherein the fluid-impermeable envelope is configured by sandwiching the at least two colorimetric analyte sensing elements between the first encapsulation layer and the second encapsulation layer.

8. d) a top plate adjacent to the first flexible web layer; e) a retaining plate; Further provided with 8. The disposable indicator component of claim 7, wherein the first flexible web layer, the fluid transfer layer, and the fluid impermeable envelope are secured between the top plate and the retainer plate, and the disposable indicator component further comprises a coupler for releasably attaching the disposable indicator component to a housing for the handheld analyzer.

9. 9. The disposable indicator component of claim 8, wherein the top plate and the retaining plate are arranged and configured to provide a predetermined spacing for accommodating an indicator component layer with a predetermined fluid transport capacity to the indicator zone.

10. 10. The disposable indicator component of claim 7 enclosed within an individual package.

Citation Information

Patent Citations

  • Optically readable strip for analyte detection having on-strip standard

    EP0779984B1

  • Biochemical analyzing element and biochemical analyzing film

    JP1993172804A

  • Manufacture of dry analytic element for measuring multiple items

    JP1995035747A

  • Diaper for urianalysis

    JP2001289845A

  • Disposable wearing article

    JP2017064110A