This application is based upon and claims the benefit of priority from prior Japanese Patent Application No. 2003-307868 filed on Aug. 29, 2003, the entire contents of which are incorporated herein by reference.
1. Technical Field
The present invention relates to an antigen measuring device, in particular, an antigen measuring device for measuring a small amount of antigen such as a protein contained in a liquid solution. The present invention further relates to a method for measuring antigen, a pallet, and an antibody chip package.
2. Description of the Related Art
The Enzyme-Linked Immuno Sorbent Assay (ELISA) method is known as a method to measure minor constituents. The ELISA method utilizes a specific reaction between an antibody and an antigen. An immune sensor with a light guide using the ELISA method is shown in Japanese Patent Publication (Kokai) No.08-285851. This immune sensor has a pair of gratings on a surface of a substrate. One is for inputting a light beam into the substrate. The other is for outputting the light beam from the substrate. A light guide layer is formed between these two gratings. An antibody-fixed film is further formed on the light guide layer. When a liquid solution containing antigens to be measured is contacted with the antibody-fixed layer, the antigen is bound to an antibody of the antibody-fixed layer. When a fluorescent labeled antibody is further added, an immune complex of the antibody, the antigen, and the fluorescent labeled antibody is formed on the surface of the substrate. Under the existence of the immune complex, a laser beam is inputted into the light guide via the grating. The inputted laser beam generates evanescent waves while propagating the light guide. The evanescent waves excite the immune complex so that the immune complex emits fluorescent light. Therefore, the amount of biological molecules in the liquid solution can be measured based on the intensity of the fluorescent light received by a light receiving element.
However, the sensitivity of the variation is limited under the conventional immune sensor, which has a difficulty in measuring a small amount of biological molecules.
One aspect of the present invention is an antigen measuring device. The antigen measuring device comprises an antibody chip which includes a substrate, a first grating on the surface of the substrate, a second grating on the surface of the substrate, an antibody-fixed layer on the surface of the substrate between the first and the second gratings, and a wall on the surface of the substrate, wherein the wall surrounds the antibody-fixed layer. The antigen measuring device further comprises a light emitting element to emit a light beam toward the first grating and a light receiving element to receive the light beam after it propagates through the substrate under the antibody-fixed layer and is output from the second grating.
In another aspect consistent with the present invention, there is provided a method of measuring antigen. The method comprises dropping a first liquid solution containing an antigen on an antibody-fixed layer formed on a substrate of an antibody chip to form a complex of an antibody and the antigen, which antibody chip includes first and second gratings on the substrate on either side of the antibody-fixed layer; dropping a second liquid solution containing a secondary antibody labeled by a labeling enzyme to form a complex of the antibody, the antigen, and the secondary antibody; firstly measuring the intensity of a first light beam which propagates toward the first grating, through the substrate, and from the second grating; dropping a coloring reagent solution on the antibody-fixed layer to produce an enzyme reaction product colored by a reaction with the labeling enzyme; secondarily measuring the intensity of a second light beam which propagates toward the first grating, through the substrate, and from the second grating; and measuring the antigen based on the intensities of the received light beams.
Another aspect of the present invention is a pallet with plural indentations to respectively set a plurality of antibody chips, wherein the distance between the center of the indentations in the pallet is 9 mm.
Another aspect of the present invention is an antibody chip package. The antibody chip package comprises a chip container to set plural antibody chips at a constant interval, a desiccant to keep the antibody chips dry, and a package cover bound to the chip container.
Additional features and advantages consistent with the invention will be set forth in part in the description which follows, and in part will be obvious from the description or claims, or may be learned by practice of the invention.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention as claimed.
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate several aspects of the invention and together with the description, serve to explain the principles of the invention.
Embodiments consistent with the invention are explained next with reference to FIGS. 1 to 12. Wherever possible, the same reference numbers are used throughout the drawings to refer to the same or similar elements. Scale or proportions of elements shown in these figures are for purposes of illustrationand may discord from reality.
Protein Measuring Device
As one example of an antigen measuring device in consistent with the present invention, this embodiment shows a device for measuring protein.
Protein measuring device 100 further includes a light emitting element 109 which emits a light beam toward incident grating 13a and a light receiving element 110 to receive a light beam. After being emitted, the light beam propagates through substrate 16 and is output from outputting grating 13b. The surface of substrate 16, including gratings 13a and 13b except a reaction hole 10 where antibody-fixed layer 14 is formed, is covered with a fluoroplastic film 15.
Protein measuring device 100 further comprises an injection tube 105 to inject a liquid solution into cell 11 and an evacuation tube 106 to remove the injected liquid solution from cell 11. Injection and evacuation tubes 105 and 106 are respectively connected to an injection pump 104 and an evacuation pump 107. The outlet of injection tube 105 is preferably positioned just above antibody-fixed layer 14 to surely drop a liquid solution on antibody-fixed layer 14. One end of evacuation tube 106 is preferably positioned beside cell wall 12.
Since fluoroplastic film 15 is water-repellent, liquid solution overswelling reaction hole 10 flows toward cell wall 12 so that the overswelled liquid solution is evacuated through evacuation tube 106. A container lid 112 covers antibody chip 1. Since injection tube 105 and evacuation tube 106 are fixed with lid 112, the positions of injection tube 105 and evacuation tube 106 are stabilized. A syringe pump or the like may be used as injection pump 104. A bimorph pump or the like may be used for evacuation pump 107.
Protein measuring device 100 also comprises a first solution container 101, a second solution container 102, and a valve 103 connected to injection pump 104. Solution to be injected can be selected with valve 103.
In this embodiment, first solution container 101 contains washing liquid including a surface active agent, and second solution container 102 contains a buffering solution. Valve 103 can automatically select between the solutions according to measurement procedures. Injection pump 104 may be configured to operate only when antibody chip 1 is installed in protein measuring device 100 to avoid injection of solutions without antibody chip 1.
Since a light beam from light emitting element 109 is usually a laser beam or the like, it could be harmful to irradiate an eyeball by the light beam. To avoid such irradiation, light emitting element 109 may be configured to operate only when antibody chip 1 is closed by lid 112.
Additionally, a light blocking plate 108 may project from lid 112 toward antibody chip 1 to block a light beam traveling outside of substrate 16 so that light receiving element 10 mainly receives the light beam emitted from light emitting element 109 and propagating inside substrate 16.
Pallet
As shown in
When a unit is connected to other units, it is preferred to distinguish the units from each other. For that purpose, each pallet 113 may have identification (not shown). Protein measuring device 100 can recognize the identification and automatically select a measurement procedure according to that identification.
Antibody Chip Package
An antibody chip package 300 is shown in
Chip container 302 may be made from polystyrene or the like. Desiccant 301 may be silica gel or the like. Package cover 303 may be made from polyethylene terephthalate (PET), polystyrene, a laminated film, or the like.
Multi pipettes or operation tools for microwell plates generally have eight pipettes arranged at 9 mm intervals. In order to improve compatibility with such instruments, antibody chip package 300 is preferably capable of containing eight antibody chips 1 arranged at 9 mm intervals.
Likewise with respect to the embodiment shown in
Antibody Chip
Antibody chip 1 further comprises cell wall 12 surrounding antibody-fixed layer 14. The surrounded space is called cell 11. The surface of substrate 16 including gratings 13a and 13b, and the bottom face of cell 11 except reaction hole 10 is covered with fluoroplastic film 15 as mentioned above.
Cell wall 12 may preferably be made from colored acrylic such as black acrylic. Fluoroplastic film 15 may preferably be made from fluorocarbon resin with light blocking effect to prevent an inputted light beam from leaking to the outside of antibody chip 1. Colored acrylic such as black acrylic may be used for fluoroplastic film 15. Incident and outputting gratings 13a and 13b may be made from Titanium Oxide (TiO2).
Antibody-fixed layer 14 may have a structure with an antibody fixed by a crosslinked polymer. A polymer having hydrogen-bondable functional groups such as photocrosslinkable polyvinyl alcohol may be used as the cross linked polymer.
Method For Manufacturing An Antibody Chip
One embodiment of a method for manufacturing an antibody chip 1 according to aspects of the invention is explained next with reference to FIGS. 7 to 9.
(S10)
As shown in
(S11)
As shown in
(S12)
As shown in
(S13)
As shown in
(S14)
As shown in
Method for Measuring an Amount of Protein Using an Antibody Chip
(S20)
(S21)
Solution 20 may be washed with a washing fluid, e.g., phosphate buffered saline (PBS) including a surface-active agent.
(S22)
Then, the solution containing enzyme-labeled secondary antibody 21 is dropped on antibody-fixed layer 14 in reaction hole 10. As shown in
(S23)
Enzyme-labeled secondary antibody solution 21 comprising a superfluous enzyme-labeled secondary antibody 21a which is not bound to antigen 20a, is washed using a washing fluid such as PBS with a surface-active agent.
(S24)
Buffering solution, e.g., PBS, is injected into cell 11 so that it flows into reaction hole 10 to remove the used washing fluid with surface-active agent and to improve stability.
(S25)
Light emitting element 109 emits a light beam such as a laser beam toward incident grating 13a. The emitted light beam propagates inside substrate 16, and is output from outputting grating 13b. Light receiving element 110 receives the output light beam so that a referential intensity of the light is measured.
(S26)
As shown in
An oxidation reduction reaction occurs between a labeling enzyme such as POD from enzyme-labeled secondary antibody 21a and H2O2 from coloring reagent solution 22 where H2O2 is a substrate of the labeling enzyme. As a result of that reaction, a radical oxygen atom (O*) is generated. Such a radical oxygen atom O* colors a coloring reagent 22a (an enzyme reaction product) contained in coloring reagent solution 22.
(S27)
After the coloring reagent 22a is produced, a light beam such as a laser beam is emitted from light emitting element 109 toward incident grating 13a in a similar fashion to step S25. The emitted light beam propagates inside substrate 16 and is output from outputting grating 13b. Then, the light beam from outputting grating 13b is detected by light receiving element 110 so that an intensity of the light after the coloring is measured.
(S28)
The density of antigen 20a in solution 20 is computed based on the difference between the reference intensity of light acquired in step S25 and the intensity of light after the coloring acquired in stepS27.
The density of antigen 20a is computed based on the referential intensity at a predetermined time A, and the intensity of the light after the coloring at a predetermined time B. It is not necessary to perform a control experiment using a liquid solution with no antigen in order to obtain a referential intensity.
Antibody chip 1 has reaction hole 10 surrounded by cell wall 12 where the antigen-antibody reaction and coloring reaction occur so that 1 micro liter of solution 20 is sufficient for the reactions.
Numerous modifications of the present invention are possible in light of the above teachings. It is therefore to be understood that, within the scope of the appended claims, the present invention can be practiced in a manner other than as specifically described herein.
Number | Date | Country | Kind |
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P2003-307868 | Aug 2003 | JP | national |