The present disclosure generally relates to methods and systems for optochemistry-based in-vitro diagnosis devices.
In recent years, in-vitro diagnosis (IVD) devices, especially blood glucose meters, have gained wide adoption among patients with chronic diseases. In order to take measurements, patients usually have to carry standalone IVD devices with them all day long. From time to time, patients forget to carry their IVD devices and are not able to monitor their health status in a timely manner.
For typical IVD measurements, test strips consisting enzyme and reagent are used. Upon receiving the sample fluid, the test strip's characteristics, such as electrical impedance or color, change according to the concentration of the targeted analyte, such as blood glucose or blood cholesterol.
Optochemistry-based IVD systems usually comprises test strips that change color according to the concentration of analyte received, specific light sources that illuminate on strips, optical sensors that detect scattering light, and light-isolating cases.
In examples of the present disclosure, an accessory is provided for a mobile device to measure characteristics of a test strip. The accessory includes a test strip adapter, a phone adapter, and a coupler. The test strip adapter includes a test strip attachment for a test strip type and a first interlock shared with other test strip adapters for other test strip types. The phone adapter includes a phone attachment for a mobile device model and a second interlock shared with other phone adapters for other mobile device models. The coupler includes a third interlock that forms a first mating pair with the first interlock of the test strip adapter, and a fourth interlock that forms a second mating pair with the second interlock of the phone adapter.
The foregoing and other features of the present disclosure will become more fully apparent from the following description and appended claims, taken in conjunction with the accompanying drawings. These drawings depict only several embodiments in accordance with the disclosure and are therefore not to be considered limiting of its scope. The disclosure will be described with additional specificity and detail through use of the accompanying drawings.
As used herein, the term “includes” means includes but not limited to, the term “including” means including but not limited to. The terms “a” and “an” are intended to denote at least one of a particular element. The term “based on” means based at least in part on. The term “or” is used to refer to a nonexclusive such that “A or B” includes “A but not B,” “B but not A,” and “A and B” unless otherwise indicated.
Today, most mobile devices include at least a display panel, which can serve as a light source for illumination. Besides, it also has at least one image or light sensor that locate at the same side of the display panel.
In the present disclosure, a test strip or a test strip device containing the test strip, along with the display panel and the image/light sensor of mobile devices (e.g., smartphone or tablet), are used to measure physiological biochemical parameter(s). Software in mobile device will instruct a user to complete the measurement procedure.
Positioning of the test strip or test strip device is important for getting an accurate value. Examples of the present disclosure provide methods to improve the compatibility and position accuracy of test device to mobile device (mobile phone or tablet). For simply, a mobile phone 102 is used as an example but the present disclosure is equally applicable to a tablet or other mobile devices.
Accessory 100 includes a phone adapter 104. Phone adapter 104 may be a removable clip that slides on and secures to the top of mobile phone 102. After clip 104 is secured to mobile phone 102, a test strip device 112 is placed on the clip. Test strip device 112 may be a single-use test strip carrier containing a test strip (as shown), a test strip adapter (described later) for a test strip, or a coupler (describe later) for joining clip 104 and the test strip adapter.
Faceplate 202 defines a camera window 208. When clip 104 is attached to mobile phone 102, camera window 208 exposes a camera 108 (
To position test strip device 112 (
Clip 104 is a phone adapter for a particular phone model (e.g., iPhone 6). Accordingly, clip 104 has certain dimensions and incorporates certain elements to accommodate that particular phone model. At the same time, guide 212 (
Test strip device 112 has certain dimensions and incorporates certain elements to accommodate a particular test strip type. At the same time, test strip device 112 has uniform dimensions shared between test strip devices for different test strip types so the test strip devices are compatible with clip 104.
In operation, a user provides a sample on sample collector, which transports the sample to test strip 502. Light guide 508 receives light from screen 110 (
In operation, a user provides a sample on sample collector 114, which transports the sample to test strip 502. Light guide 508 receives light from screen 110 (
Light guide 508 is placed in and affixed to carrier body 524 by adhesive or mechanical attachment, and carrier base 514 locks onto the open bottom of carrier body 524. As described before, carrier base 514 includes anchors 513 and defines light hole 516 and camera hole 518 over input port 510-1 (
Carrier body 524 has a top with guides 526 and defines a test strip opening 528. Guides 526 define a slot dimensioned to receive test strip 510. Carrier body 524 includes additional an additional guide 527 for compatibility with another test strip type. Test strip opening 528 is located within the space defined by guides 526 and over output port 510-2 of light guide 508.
In operation, a user provides a sample on test strip 510, insert the test strip into the slot defined by guides 526 and over test strip opening 528, and places carrier cover 522 onto carrier body 524 to block out ambient light. Light guide 508 receives light from screen 110 (
Faceplate 702 includes a guide 706. Guide 706 may be an interlock that forms a mating pair with a corresponding an interlock on test strip device 112 (
Accessory 800 includes a phone adapter 802, a coupler 804, and a test strip adapter 806 in some examples of the present disclosure. Phone adapter 802 is configured for a particular phone model, test strip adapter 806 is configured for a particular test strip type, and coupler 804 provides a common interface between the phone adapter and the test strip adapter so phone adapters for different phone models may be used with test strip adapters for different test strip types. The coupler interface may be standardized for use by multiple vendors/manufacturers. Phone adapter 802 may be clip 700. As shown, clip 802 slides on and secures to the top of mobile phone 102, coupler 804 slides on and secures to the clip, and test strip adapter 806 mounts on the coupler. A test strip 808 and a code card 810 insert into slots in test strip adapter 806.
Coupler body 902 has a base 904 that defines a camera window 906 and a screen window 908. When coupler 804 is mounted on clip 802, camera window 906 is located over camera window 208 (
Light guide 910 is seated in and affixed to coupler body 902 by adhesive or mechanical attachment. Light guide 910 defines a hole, a space, or a combination of a hole and a space over camera window 906 of coupler body 902.
Lid 914 locks onto the open top of coupler body 902 to form a casing. Lid 914 defines a test strip opening 916 over hole or space 912 of light guide 910.
Accessory 1300 includes a phone adapter 1302, a coupler 1304, and a test strip adapter 1306 in some examples of the present disclosure. Phone adapter 1302 is configured for a particular phone model, test strip adapter 1306 is configured for a particular test strip type, and coupler 1304 provides a common interface between the phone adapter and the test strip adapter.
Phone adapter 1302 is a removable clip similar to clip 700. As shown, clip 1302 slides on and secures to the top of mobile phone 102, coupler 1304 slides on and secures to the clip, and test strip adapter 1306 mounts on the coupler. Test strip adapter 1306 includes an adapter cover 1308 and a test strip carrier 1310. Adapter cover 1308 has guides 1311 that define a slot to receive test strip carrier 1310. Test strip carrier 1310 includes a top half 1312 and a bottom half 1314. A test strip 1316 is seated in and affixed to bottom half 1314 by adhesive or mechanical attachment, and top half 1312 locks onto the bottom half. Top half 1312 defines a sample collector 1318 to transport a sample to test strip 1316. In some applications, a user deposits a sample in a tube 1317 with a solution (e.g., a buffer), mixes them, and inserts the tube into sample collector 1318 to provide a mixed solution to test strip 1316. Bottom half 1314 includes a test strip opening 1320 to view a reaction area on test strip 1316.
Accessory 1500 includes a phone adapter 1502, a coupler 1504, and a test strip adapter 1506 in some examples of the present disclosure. Phone adapter 1502 is configured for a particular phone model (e.g., iPhone 6 from Apple), test strip adapter 1506 is configured for a particular test strip type, and coupler 1504 provides a common interface between the phone adapter and the test strip adapter. Phone adapter 1502 may be clip 700. As shown, clip 1502 slides on and secures to the top of mobile phone 102, coupler 1504 slides on and secures to the clip, test strip adapter 1506 mounts on a test strip 1508, and the test strip adapter slides on and secures to the coupler. Prior to mounting test strip adapter 1506 on test strip 1508, a user deposits a sample on the test strip.
Light guide 1704 is seated in and affixed to coupler body 1702 by adhesive or mechanical attachment. Light guide 1704 has a space 1714 and a base that defines a hole 1713 over camera window 906 of coupler body 1702. Lid 1706 locks onto the open top of coupler body 1702 to form a casing. Lid 1706 defines a test strip opening 1716 located over hole or space 1714 of light guide 1704.
Lid 1706 has an interlock 1718 on two upper lateral edges that forms a mating pair with a corresponding interlock of test strip adapter 1506. For example, interlock 1718 consists of slots or rails, and the counterpart interlock on test strip adapter 1506 consists of tabs 1606 or way. Each slot 1718 includes a retention feature 1720 that engages a counterpart retention feature in a corresponding tab 1606 of test strip adapter 1506. For example, retention feature 1720 is a detent catch or detent notch.
An alignment clip 1904 slides on and secures to the top of mobile phone 102. Alignment clip 1904 defines a mounting space 1906 for phone adapter 1902. The liner to adhesive tape 1903 on the back of phone adapter 1902 is removed, thereby exposing an adhesive. Phone adapter 1902 is then placed in mounting space 1906. After phone adapter 1902 adheres to mobile phone 102, alignment clip 1904 is removed from the mobile phone.
Light guide 2000 has a wedge portion 2002 and leg portions 2004 separated by a space between them. Wedge portion 2002 has a horizontal input surface 2006, an angled reflective surface 2008 above the input surface, and a vertical output surface 2010 opposite the reflective surface. Using total internal reflection, reflective surface 2008 directs light from input surface 2006 to output surface 2010.
Leg portions 2004 extend laterally from output surface 2010 about the top of the output surface opposite. Light enters leg portions 2004, reflects internally, and exit through the top of the leg portions to illuminate an area above the leg portions. Each leg portion 2004 has distal end with a 45° reflective surface 2014. Using total internal reflection, 45° reflective surfaces 2014 directs light out through the top of leg portions 2004.
Angled reflective surface 2008 has a diffusive area 2012 about the top of the angled reflective surface. Diffusive area 2012 helps to scatter the light as it enters leg portions 2004 so the light exits uniformly from the top of leg portions 2004. Each leg portion 2004 includes a diffusive area 2016 on the top of the leg portion near output surface 2010. Diffusive areas 2016 help to scatter the light as it exits that part of leg portions 2004 so the light uniformly illuminate a test strip above the leg portions. A space 2018 is defined between leg portions 2004 to view the test strip.
Light guide 2300 includes a 45° reflective surface 2302, three reflective sidewall surfaces 2304 defining a space between them, and a reflective base surface 2306. Reflective base surface 2306 defines an input port 2307 that allows light to enter into light guide 2300 from below. Reflective base surface defines a camera window 2308.
Referring to
Referring to
Light guide 2804 may be one of the light guides described in the present disclosure. Light guide 2804 is seated in and affixed to adapter base 2802. Adapter lid 2806 defines port 2808 that receives insert 2712 (
From the foregoing, it will be appreciated that various embodiments of the present disclosure have been described herein for purposes of illustration, and that various modifications may be made without departing from the scope and spirit of the present disclosure. Accordingly, the various embodiments disclosed herein are not intended to be limiting, with the true scope and spirit being indicated by the following claims.
The present application is a U.S. national stage filing under 35 U.S. C. § 371 of International Application No. PCT/CN2016/098971, filed Sep. 14, 2016, which claims the benefit of U.S. Provisional Application No. 62/219,383 filed Sep. 16, 2015, and U.S. Provisional Application No. 62/245,623, filed Oct. 23, 2015. The International Application and the two U.S. Provisional Applications are incorporated by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2016/098971 | 9/14/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/045601 | 3/23/2017 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20060222567 | Kloepfer et al. | Oct 2006 | A1 |
20090322341 | Kraft et al. | Dec 2009 | A1 |
20120244624 | Hsiao | Sep 2012 | A1 |
20130273528 | Ehrenkranz | Oct 2013 | A1 |
20140072189 | Jena | Mar 2014 | A1 |
20140120563 | Ozcan et al. | May 2014 | A1 |
20140170757 | Tsai | Jun 2014 | A1 |
20140296112 | O'Driscoll et al. | Oct 2014 | A1 |
20140362283 | Coppage et al. | Dec 2014 | A1 |
20150031412 | Quilter | Jan 2015 | A1 |
20150177147 | Mangan et al. | Jun 2015 | A1 |
Number | Date | Country |
---|---|---|
1828301 | Sep 2006 | CN |
202149891 | Feb 2012 | CN |
103002795 | Mar 2013 | CN |
203299206 | Nov 2013 | CN |
203445930 | Feb 2014 | CN |
104569379 | Apr 2015 | CN |
204479478 | Jul 2015 | CN |
2014532869 | Dec 2014 | JP |
10-2012-0109961 | Oct 2012 | KR |
10-2014-0127766 | Nov 2014 | KR |
101533343 | Jul 2015 | KR |
2014094442 | Jun 2014 | WO |
Entry |
---|
Preechaburan13 Surface Resonance Chemical Sensing on Cell Phones—Angewandte Chemie—2012 (Year: 2012). |
Definition—Lexico—Over (Year: 2020). |
The Extended European Search Report, Application No. 16845715.8, dated Jul. 19, 2019. |
International Search Report and Written Opinion of the International Searching Authority, International application No. PCT/CN2016/098971, dated Dec. 1, 2016. |
Number | Date | Country | |
---|---|---|---|
20180372714 A1 | Dec 2018 | US |
Number | Date | Country | |
---|---|---|---|
62219383 | Sep 2015 | US | |
62245623 | Oct 2015 | US |