A TEST STRIP READER DEVICE AND A METHOD FOR DETECTING A TEST RESULT
20220179224 · 2022-06-09
Inventors
Cpc classification
G01N21/6428
PHYSICS
International classification
Abstract
A reader device for detecting a test result from a testing element carrying a sample includes a radiation source for emitting electromagnetic radiation, an optical system for directing the electromagnetic radiation to the testing element, and a detector for receiving electromagnetic radiation from the testing element and for producing a detection signal responsive to the received electromagnetic radiation. The optical system includes a guide rod for conducting electromagnetic radiation and a lens system for focusing the electromagnetic radiation coming out via an egress-end surface of the guide rod to the testing element. The egress end-surface of the guide rod has an elongated shape so that a radiation pattern having an elongated shape is produced on the testing element. The elongated shape of the radiation pattern facilitates scanning the testing element with the electromagnetic radiation.
Claims
1. A reader device for detecting a test result from a testing element carrying a sample, the reader device comprising: a radiation source for emitting first electromagnetic radiation, an optical system for directing the first electromagnetic radiation to the testing element, and a detector for receiving second electromagnetic radiation from the testing element and for producing a detection signal responsive to the second electromagnetic radiation, wherein the optical system is configured to direct the second electromagnetic radiation from the testing element to the detector, and the optical system comprises a guide rod for conducting the first electromagnetic radiation in a longitudinal direction of the guide rod and a lens system (105, 205) for focusing the first electromagnetic radiation coming out via an egress end-surface of the guide rod to the testing element, and wherein the egress end-surface of the guide rod has an elongated shape and a ratio of a length of the egress end-surface to a width of the egress end-surface is at least two.
2. The reader device according to claim 1, wherein the guide rod has a straight cylindrical shape with a base having the elongated shape of the egress end-surface.
3. The reader device according to claim 1, wherein the guide rod has a tapering shape.
4. The reader device according to claim 3, wherein the guide rod has a shape of a truncated pyramid, the egress end-surface being at a larger end of the guide rod.
5. The reader device according to claim 3, wherein the guide rod has a shape of a truncated pyramid, the egress end-surface being at a smaller end of the guide rod.
6. The reader device according to claim 1, wherein a cross-sectional shape of the guide rod is one of the following a rectangle, a hexagon, an octagon.
7. The reader device according to claim 1, wherein a ratio of a length (Lr) of the guide rod to a diameter of a smallest circle capable of surrounding the egress end-surface of the guide rod is at least four.
8. The reader device according to claim 1, wherein the guide rod is at least 10 mm long in the longitudinal direction of the guide rod.
9. The reader device according to claim 8, wherein the guide rod is at least 20 mm long in the longitudinal direction of the guide rod.
10. The reader device according to claim 1, wherein the lens system comprises: a first lens for collimating the first electromagnetic radiation coming out from the egress end-surface of the guide rod, a dichroic mirror for reflecting the collimated first electromagnetic radiation, and a second lens for focusing the reflected first electromagnetic radiation to the testing element and for collimating the second electromagnetic radiation emitted by the testing element, wherein the dichroic mirror is penetrable by the second electromagnetic radiation and the optical system comprises a third lens for focusing, to the detector, the second electromagnetic radiation penetrated the dichroic mirror.
11. The reader device according to claim 1, wherein the optical system comprises a first optical filter for filtering the first electromagnetic radiation and a second optical filter for filtering the second electromagnetic radiation.
12. The reader device according to claim 1, wherein the optical system comprises another lens system for focusing the second electromagnetic radiation to the detector, the second electromagnetic radiation being a part of the first electromagnetic radiation and having been reflected off the testing element.
13. The reader device according to claim 1, wherein the reader device comprises a processing system for controlling the radiation source, for receiving the detection signal from the detector, and for producing a measurement result of at least one of the following based on the detection signal: a fluorescence assay, a time-resolved fluorescence assay, a fluorescence resonance energy transfer assay, a time-resolved fluorescence resonance energy transfer assay, upconverting nanoparticles assay.
14. The reader device according to claim 1, wherein the reader device comprises a support mechanism for moving the testing element and the optical system with respect to each other to scan a surface of the testing element with an elongated radiation pattern of the first electromagnetic radiation so that an angle between a longitudinal direction of the elongated radiation pattern and a movement direction of the elongated radiation pattern on the surface of the testing element is in a range from 45 to 135 degrees.
15. A method for detecting a test result from a testing element carrying a sample, the method comprising: directing first electromagnetic radiation from a radiation source to the testing element, and directing second electromagnetic radiation from the testing element to a detector to produce a detection signal responsive to the second electromagnetic radiation, wherein the first electromagnetic radiation is directed from the radiation source to the testing element with a guide rod conducting the first electromagnetic radiation in a longitudinal direction of the guide rod and with a lens system focusing the first electromagnetic radiation coming out via an egress-end surface of the guide rod to the testing element, and wherein the egress end-surface of the guide rod has an elongated shape and a ratio of a length of the egress end-surface to a width of the egress-end surface is at least two.
16. The method according to claim 15, wherein: the first electromagnetic radiation coming out from the egress end-surface of the guide rod is collimated with a first lens, the collimated first electromagnetic radiation is reflected with a dichroic mirror, the reflected first electromagnetic radiation is focused with a second lens to the testing element and the second electromagnetic radiation emitted by the testing element is collimated with the second lens, and the second electromagnetic radiation penetrates the dichroic mirror and the second electromagnetic radiation that has penetrated the dichroic mirror is focused with a third lens to the detector.
17. The method according to claim 15, wherein the second electromagnetic radiation is a part of the first electromagnetic radiation and has been reflected off the testing element, and the second electromagnetic radiation is focused to the detector with another lens system.
18. The method according to claim 15, wherein the method comprises one of the following: a fluorescence assay, a time-resolved fluorescence assay, a fluorescence resonance energy transfer assay, a time-resolved fluorescence resonance energy transfer assay, upconverting nanoparticles assay.
19. The method according to claim 15, wherein the method comprises moving the testing element and an optical system comprising the guide rod and the lens system with respect to each other to scan a surface of the testing element with an elongated radiation pattern of the first electromagnetic radiation so that an angle between a longitudinal direction of the elongated radiation pattern and a movement direction of the elongated radiation pattern on the surface of the testing element is in a range from 45 to 135 degrees.
20. The method according to claim 15, wherein the testing element is a lateral flow element for lateral flow testing.
21. The method according to claim 16, wherein the second electromagnetic radiation is a part of the first electromagnetic radiation and has been reflected off the testing element, and the second electromagnetic radiation is focused to the detector with another lens system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Exemplifying and non-limiting embodiments of the invention and their advantages are explained in greater detail below with reference to the accompanying drawings, in which:
[0022]
[0023]
[0024]
[0025]
[0026]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0027] The specific examples provided in the description below should not be construed as limiting the scope and/or the applicability of the accompanied claims. Lists and groups of examples provided in the description below are not exhaustive unless otherwise explicitly stated.
[0028]
[0029] The reader device comprises a detector 103. The optical system 102 is configured to direct the second electromagnetic radiation from the testing element 113 to the detector 103. The optical system 102 may comprise an optical filter for removing or at least attenuating unwanted part of the frequency spectrum of the second electromagnetic radiation. The detector 103 is configured to produce a detection signal responsive to the second electromagnetic radiation received at the detector 103. The detector 103 may comprise for example one or more photodiodes, one or more avalanche diodes, a photomultiplier tube “PMT”, or a multipixel photon counter “MPPC”.
[0030] The optical system 102 comprises a guide rod 104a for conducting the first electromagnetic radiation in the longitudinal direction of the guide rod and a lens system 105 for focusing the first electromagnetic radiation coming out via an egress end-surface 106 of the guide rod 104a to the testing element 113. In
[0031] The egress end-surface 106 of the guide rod 104a has an elongated shape so that the ratio of the length Ls of the egress end-surface 106 to the width Ws of the egress end-surface 106 is at least two. When the lens system 105 focuses the first electromagnetic radiation to the testing element 113, the lens system 105 images the egress end-surface 106 on a surface of the testing element 113. Therefore, a radiation pattern 116 having an elongated shape is produced on the surface of the testing element 113. The narrowness of the elongated radiation pattern 116 in the longitudinal direction of the testing element 113 increases a difference between a detection result obtained when the testing area 114 or the control area 115 belongs to an irradiated area and a detection result obtained when neither the testing area 114 nor the control area 115 belongs to the irradiated area. This improves the sensitivity of the detection. The elongated shape of the radiation pattern 116 makes it possible to scan the testing element 113 with the first electromagnetic radiation so that the testing element 113 and the radiation pattern 116 are moved with respect to each other in one dimension only. An elongated radiation pattern of the kind described above is advantageous for example in portable reader devices which are suitable for point of care “PoC” testing and in which it is challenging to implement means for moving the testing element 113 and the optical system 102 with respect to each other in both the longitudinal and transversal directions of the testing element 113.
[0032] In a reader device according to an exemplifying and non-limiting embodiment, the ratio of the length Ls of the egress end-surface to the width Ws of the egress end-surface is at least 3. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 4. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 5. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 6. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 7. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 8. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 9. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 10. In a reader device according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 15.
[0033] The exemplifying reader device illustrated in
[0034] In the exemplifying reader device illustrated in
[0035] The length Lr of the guide rod 104a is selected so that the intensity distribution of the first electromagnetic radiation is sufficiently flat on the egress end-surface 106 of the guide rod 104a. The required minimum length depends on the width and the thickness of the guide rod 104a and on angles between the longitudinal direction of the guide rod 104a and arrival directions of beams of the first electromagnetic radiation at an end 118 of the guide rod 104a. In a reader device according to an exemplifying and non-limiting embodiment, the length Lr of the guide rod 104a is at least 10 mm. In a reader device according to an exemplifying and non-limiting embodiment, the length Lr of the guide rod 104a is at least 20 mm. In a reader device according to an exemplifying and non-limiting embodiment, a ratio of the length Lr of the guide rod 104a to the diameter of a smallest circle capable of surrounding the cross-section of the guide rod is at least 4, or at least 6, or at least 8, or at least 10. In the exemplifying case shown in
[0036] In the exemplifying reader device illustrated in
[0037] The exemplifying reader device illustrated in
[0038] The processing system 112 can be implemented with one or more processor circuits, each of which can be a programmable processor circuit provided with appropriate software, a dedicated hardware processor such as for example an application specific integrated circuit “ASIC”, or a configurable hardware processor such as for example a field programmable gate array “FPGA”. Furthermore, the processing system 112 may comprise one or more memory circuits each of which can be for example a random-access-memory “RAM” circuit.
[0039]
[0040] The reader device comprises a detector 203. The optical system 202 is configured to direct second electromagnetic radiation from the testing element 213 to the detector 203. In this exemplifying case, the second electromagnetic radiation represents a part of the first electromagnetic radiation that has been reflected off the testing element 213. Another part of the first electromagnetic radiation is absorbed by the testing element 213. The detector 203 is configured to produce a detection signal responsive to the second electromagnetic radiation received at the detector 203. The detector 203 may comprise for example one or more photodiodes, one or more avalanche diodes, a photomultiplier tube “PMT”, or a multipixel photon counter “MPPC”.
[0041] The optical system 202 comprises a guide rod 204 for conducting the first electromagnetic radiation in the longitudinal direction of the guide rod 204 and a lens system 205 for focusing the first electromagnetic radiation coming out via an egress end-surface 206 of the guide rod 204 to the testing element 213. The guide rod 204 is made of material that is transparent at the wavelength or wavelengths of the first electromagnetic radiation and has a sufficiently big refraction index to provide total internal reflections on side walls of the guide rod 204. The egress end-surface 206 of the guide rod 204 has an elongated shape so that the ratio of the length Ls of the egress end-surface 206 to the width Ws of the egress end-surface 206 is at least two. When the lens system 205 focuses the first electromagnetic radiation to the testing element 213, the lens system 205 images the egress end-surface 206 of the guide rod 204 on a surface of the testing element 213. Therefore, a radiation pattern 216 having an elongated shape is produced on the surface of the testing element 213.
[0042] In the exemplifying reader device illustrated in
[0043] In the exemplifying reader device illustrated in
[0044] In the exemplifying reader devices described above with reference to
[0045]
[0046] In the exemplifying reader device described above with reference to
[0047] Furthermore, it is to be noted that in a reader device according to an exemplifying and non-limiting embodiment, a guide rod and another optical component that are successively in a propagation direction of electromagnetic radiation can be implemented as a single piece of material. The other optical component may comprise e.g. reflector and/or lens surfaces for directing electromagnetic radiation to the guide rod.
[0048]
[0051] The first electromagnetic radiation is directed from the radiation source to the testing element with a guide rod conducting the first electromagnetic radiation in the longitudinal direction of the guide rod and with a lens system focusing the first electromagnetic radiation coming out via an egress-end surface of the guide rod to the testing element, wherein the egress end-surface of the guide rod has an elongated shape so that the ratio of the length of the egress end-surface to the width of the egress-end surface is at least two.
[0052] In a method according to an exemplifying and non-limiting embodiment, the above-mentioned ratio is at least 3, or at least 4, or at least 5, or at least 6, or at least 7, or at least 8, or at least 9, or at least 10, or at least 15.
[0053] In a method according to an exemplifying and non-limiting embodiment, the guide rod has a straight cylindrical shape with a base having the shape of the egress end-surface of the guide rod.
[0054] In a method according to an exemplifying and non-limiting embodiment, a ratio of the length of the guide rod to the diameter of a smallest circle capable of surrounding a cross-section of the guide rod is at least 4.
[0055] In a method according to an exemplifying and non-limiting embodiment, the guide rod is at least 10 mm long in the longitudinal direction of the guide rod.
[0056] In a method according to an exemplifying and non-limiting embodiment, the guide rod is at least 20 mm long in the longitudinal direction of the guide rod.
[0057] In a method according to an exemplifying and non-limiting embodiment: [0058] the first electromagnetic radiation coming out via the egress end-surface of the guide rod is collimated with a first lens, [0059] the collimated first electromagnetic radiation is reflected with a dichroic mirror, [0060] the reflected first electromagnetic radiation is focused with a second lens to the testing element and the second electromagnetic radiation emitted by the testing element is collimated with the second lens, and [0061] the second electromagnetic radiation penetrates the dichroic mirror and the second electromagnetic radiation that has penetrated the dichroic mirror is focused with a third lens to the detector.
[0062] In a method according to an exemplifying and non-limiting embodiment, the first electromagnetic radiation is filtered with a first optical filter. The first optical filter can be located e.g. between the first lens and the dichroic mirror.
[0063] In a method according to an exemplifying and non-limiting embodiment, the second electromagnetic radiation is filtered with a second optical filter. The second optical filter can be located e.g. between the dichroic mirror and the third lens.
[0064] A method according to an exemplifying and non-limiting embodiment comprises one of the following: a fluorescence assay “FI”, a time-resolved fluorescence assay “TRF”, a fluorescence resonance energy transfer assay “FRET”, a time-resolved fluorescence resonance energy transfer assay “TR-FRET”, upconverting nanoparticles assay.
[0065] In a method according to an exemplifying and non-limiting embodiment, the second electromagnetic radiation is a part of the first electromagnetic radiation and has been reflected off the testing element, and the second electromagnetic radiation is focused to the detector with a lens system.
[0066] A method according to an exemplifying and non-limiting embodiment comprises moving the testing element and an optical system comprising the guide rod and the lens system with respect to each other to scan a surface of the testing element with an elongated radiation pattern of the first electromagnetic radiation so that an angle between the longitudinal direction of the elongated radiation pattern and the movement direction of the elongated radiation pattern on the surface of the testing element is in the range from 45 to 135 degrees. In a method according to an exemplifying and non-limiting embodiment, the movement direction is substantially perpendicular to the longitudinal direction of the elongated radiation pattern.
[0067] In a method according to an exemplifying and non-limiting embodiment, the testing element is a lateral flow element for lateral flow testing.
[0068] The non-limiting, specific examples provided in the description given above should not be construed as limiting the scope and/or the applicability of the appended claims. Furthermore, any list or group of examples presented in this document is not exhaustive unless otherwise explicitly stated.