Target measurement method and target measurement device
The method improves nucleic acid sequence measurement accuracy by modifying targets or capture molecules with fluorescent molecules and measuring from the opposite side of the solid-phase surface, suppressing background light and eliminating washing, thus enhancing detection sensitivity.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-07-30
- Publication Date
- 2026-04-07
AI Technical Summary
Conventional nucleic acid sequence measurement methods suffer from reduced measurement accuracy due to washing operations that can degrade the accuracy and the presence of offset light from sample solutions, leading to noise and decreased detection limits.
A target measurement method that involves modifying targets or capture molecules with fluorescent molecules and measuring fluorescence from the opposite side of the solid-phase surface, using excitation light or an absorbent substance to suppress background light, eliminating the need for washing and improving measurement accuracy.
Enhances measurement accuracy by reducing background light and eliminating the need for washing, allowing for the detection of weak fluorescence signals without reducing quantitative accuracy or detection limits.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a target measurement method and and a target measurement device Place .
Background Art
[0002] As a method for measuring a target having a specific nucleic acid sequence contained in a sample, a method using a DNA microarray (a detection probe having a complementary sequence of a specific nucleic acid sequence provided on a solid phase surface such as a substrate) is widely known. This method measures the target by utilizing the property that the target contained in the sample added to the DNA microarray is captured by the detection probe of the DNA microarray through a hybridization reaction. In this method, in addition to whether the target is contained in the sample, the amount of the target contained in the sample can be measured. The following Non-Patent Documents 1, 2 and Patent Document 1 disclose conventional measurement methods for measuring a target using a DNA microarray.
Prior Art Documents
Non-Patent Documents
[0003]
Non-Patent Document 1
Non-Patent Document 2
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
[0005] Incidentally, the nucleic acid sequence measurement methods described in Non-Patent Documents 1 and 2 above require a washing operation to remove uncollected targets, and this washing operation has the problem that it may degrade the measurement accuracy. Furthermore, although the nucleic acid sequence measurement method described in Patent Document 1 above does not require a washing operation like those described in Non-Patent Documents 1 and 2 above, it has the problem that offset light emitted from the sample solution supplied to the DNA microarray becomes noise and degrades the measurement accuracy.
[0006] This invention has been made in view of the above circumstances, and is a target measurement method that can improve the measurement accuracy of targets contained in a sample compared to conventional methods. and Target measurement equipment Place The purpose is to provide it. [Means for solving the problem]
[0007] To achieve the above objectives, the present invention employs the following configuration. [1] A target measurement method for measuring a target contained in a sample, A target measurement method comprising measuring fluorescence obtained by irradiating the solid-phase surface of a substrate, on which a compound of the target modified with a fluorescent molecule and a capture molecule that specifically binds to the target is provided, with excitation light that excites the fluorescent molecule, or a solution containing a light-absorbing substance that absorbs fluorescence emitted from the fluorescent molecule, from the opposite side of the substrate from the solid-phase surface, and measuring the fluorescence obtained from the opposite side of the substrate from the opposite side of the solid-phase surface. [2] The target is modified with the fluorescent molecule, A method for measuring a target according to [1], wherein the target is bound to the capture molecule immobilized on the solid phase surface to obtain the bonded product. [3] The capture molecule is modified with the fluorescent molecule, A target measurement method according to [1], wherein the captured molecules are bonded to the target immobilized on the solid phase surface to obtain the bonded product. [4] The captured molecule is modified with the fluorescent molecule, A method for measuring a target according to [1], wherein the target is bound to the capture molecule immobilized on the solid phase surface to obtain the compound. [5] The target measurement method according to [1], wherein the combined product is obtained by supplying the other of the target and the captured molecule and the fluorescent molecule to either the target or the captured molecule which is immobilized on the solid phase surface. [6] The target is a nucleic acid having a specific nucleic acid sequence, The capture molecule is a detection probe having a sequence complementary to the specific nucleic acid sequence. A target measurement method according to any one of [1] to [5], wherein the target is subjected to a hybridization reaction with the detection probe to obtain the compound. [7] A target measurement device used when measuring a target contained in a sample, A substrate on which either the target or a capture molecule that specifically binds to the target is immobilized on the solid phase surface, A container to which an excitation light that excites a fluorescent molecule modifying the bond between the target and the captured molecule, or an absorbent substance that absorbs fluorescence emitted from the fluorescent molecule, is added, and the container is capable of holding a solution containing the other of the target and the captured molecule and the absorbent substance in contact with the solid phase surface of the substrate, A target measurement device equipped with the following features. [8] The captured molecules are immobilized on the solid phase surface, The container is supplied with a solution containing the target modified with the fluorescent molecule, as described in [7], for target measurement. [9] The target is fixed to the solid phase surface, The container is supplied with a solution containing the capture molecule modified with the fluorescent molecule, as described in [7], for target measurement.
[10] The capture molecules, which are modified with the fluorescent molecules, are immobilized on the solid phase surface. The container is supplied with a solution containing the target, as described in [7], for the target measurement device.
[11] Either the target or the capture molecule is immobilized on the solid phase surface. The container is supplied with a solution comprising the other of the target and the capture molecule, and the fluorescent molecule bound to a combination of the target and the capture molecule, as described in [7], for the target measurement device.
[12] The target is a target having a specific nucleic acid sequence, The target measurement device according to any one of [7] to
[11] , wherein the capture molecule is a detection probe having a sequence complementary to the specific nucleic acid sequence.
[13] A target measurement device described in any one of the items [7] to
[12] , A fluorescence reading device for measuring the amount of fluorescence from the aforementioned target measurement device, A target measuring device having the following features.
[14] A target measurement kit used to measure targets contained in a sample, A substrate on which either the target or a capture molecule that specifically binds to the target is immobilized on the solid phase surface, A container capable of holding a solution containing either the target or the capture molecule in contact with the solid phase surface of the substrate, An excitation light that excites a fluorescent molecule that modifies the compound of the target and the captured molecule, or an absorbent substance that absorbs fluorescence emitted from the fluorescent molecule, A target measurement kit including the following.
[15] The target measurement kit according to
[14] , wherein the light-absorbing substance is pre-added to the container.
[16] The captured molecules are immobilized on the solid phase surface, The target measurement kit according to
[14] or
[15] , wherein a solution containing the target modified with the fluorescent molecule and the light-absorbing substance is held in the container.
[17] The target is immobilized on the solid phase surface, The target measurement kit according to
[14] or
[15] , wherein a solution containing the capture molecule modified with the fluorescent molecule and the light-absorbing substance is held in the container.
[18] The capture molecule modified with the fluorescent molecule is immobilized on the solid phase surface, The target measurement kit according to
[14] or
[15] , wherein a solution containing the target and the light-absorbing substance is held in the container.
[19] Either the target or the capture molecule is immobilized on the solid phase surface, The target measurement kit according to
[14] or
[15] , wherein a solution containing either the other of the target and the capture molecule, the fluorescent molecule that binds to the conjugate of the target and the capture molecule, and the light-absorbing substance is held in the container.
[20] The target is a target having a specific nucleic acid sequence, The target measurement kit according to any one of
[14] to
[19] , wherein the capture molecule is a detection probe having a sequence complementary to the specific nucleic acid sequence. [Effect of the Invention]
[0008] The target measurement method of the present invention and Target measurement device Place According to this, there is an effect that the measurement accuracy of the target contained in the sample can be improved compared to the conventional method. [Brief Description of the Drawings]
[0009] [Figure 1] It is a diagram showing a method of modifying a target with a fluorescent molecule, immobilizing a DNA probe on the solid phase surface of a substrate, and binding the target modified with the fluorescent molecule to the DNA probe immobilized on the solid phase surface. [Figure 2] This figure shows a method for modifying a DNA probe with a fluorescent molecule, immobilizing a target on the solid phase surface of a substrate, and then binding the fluorescently modified DNA probe to the target immobilized on the solid phase surface. [Figure 3] This figure shows a method for immobilizing a DNA probe modified with a fluorescent molecule (donor fluorescent probe) and a quenching molecule that specifically binds to the DNA probe (quenching probe) on the solid phase surface of a substrate, and then binding a target to the donor fluorescent probe. [Figure 4] This figure shows an example of the configuration of the target measurement device of the present invention. [Figure 5] This flowchart shows an example of an operation procedure for detecting a target using the target measurement device of the present invention. [Figure 6] This figure shows an example of the configuration of the target measurement device of the present invention. [Figure 7] This graph shows the relationship between the concentration of fluorescent molecules in the solution and the amount of background light, with and without the addition of the light-absorbing substance from Example 1. [Figure 8] This figure shows spot images obtained by a fluorescence reader of spots immobilized on a substrate with synthetic DNA modified with a fluorescent molecule, with and without the addition of the absorbent substance from Example 1. [Figure 9] This figure shows the relationship between spot light intensity and background light when the Cy3(registered trademark) molecule concentration in Example 1 is 30 nM. [Figure 10] This figure shows the relationship between spot light intensity and background light when the light-absorbing substance of Example 2 is added and when it is not added. [Modes for carrying out the invention]
[0010] Hereinafter, with reference to the drawings, a target measurement method, a target measurement device, a target measurement apparatus, and a target measurement kit according to embodiments of the present invention will be described in detail. First, an overview of the embodiments of the present invention will be described, followed by a detailed description of the embodiments of the present invention.
[0011] 〔overview〕 Embodiments of the present invention aim to improve the measurement accuracy of targets contained in a sample compared to conventional methods. The method disclosed in Non-Patent Document 1, mentioned above, involves performing PCR on a DNA sample using a fluorescently modified primer to obtain a fluorescently modified PCR product, which is then added to a DNA microarray and subjected to a hybridization reaction to detect targets in the sample. The method disclosed in Non-Patent Document 2, mentioned above, involves performing a hybridization reaction between a microarray immobilized with targets and a fluorescently modified fluorescent probe to detect targets in the sample.
[0012] The method disclosed in Patent Document 1 mentioned above measures a target using a nucleic acid sequence analyzer (DNA microarray) equipped with a fluorescent probe to which a fluorescent molecule is attached, and a quenching probe to which a quenching molecule that quenches the fluorescence of the fluorescent molecule is attached, as detection probes. This method makes it possible to measure the target without attaching a fluorescent molecule to the target or washing the DNA microarray (washing to remove uncollected targets, etc.). In this method, in a nucleic acid sequence analyzer that measures the presence or amount of a specific nucleic acid using a DNA microarray, when no target is present, the donor fluorescent probe and the quenching probe, which are independent of each other, maintain their binding via a binding site, and the fluorescence of the fluorescent molecule is quenched by the quenching molecule. When a target is supplied, the target binds to the detection site, the binding between the donor fluorescent probe and the quenching probe via the binding site is released, and the quenching molecule detaches from the donor fluorescent molecule, causing the donor fluorescent molecule to exhibit fluorescence. By using this nucleic acid sequence analyzer, targets contained in a sample can be measured.
[0013] However, the nucleic acid sequence measurement method described in Non-Patent Document 1 requires a washing step to remove uncollected targets, and this washing step may cause the reacted targets to detach, potentially leading to a decrease in target quantification and a deterioration of the detection limit. Similarly, the nucleic acid sequence measurement method described in Non-Patent Document 2 also requires a washing step to remove uncollected probes, and this washing step may cause the reacted probes to detach, potentially leading to a decrease in target quantification and a deterioration of the detection limit. Furthermore, in the nucleic acid sequence measurement methods described in Non-Patent Documents 1 and 2, the washing operation required for these methods may cause sample contamination between adjacent wells on the microarray, potentially preventing accurate detection of the target.
[0014] The aforementioned Patent Document 1 makes it possible to measure targets without washing the DNA microarray (washing to remove uncollected targets, etc.). However, nucleic acid samples extracted from specimens containing living organisms or microorganisms as part of target preparation often contain residual molecules such as proteins and sugars derived from the specimen. Therefore, the nucleic acid sample solution emits fluorescence when acquiring fluorescence images, which increases the amount of background light, and offset light is emitted from the sample solution supplied to the nucleic acid sequencing device. Such offset light becomes noise and degrades the measurement accuracy. For example, if the target is small, the fluorescence emitted from the sample solution supplied to the nucleic acid sequencing device will also be weak, and if this weak fluorescence is buried by the offset light, it becomes impossible to measure the target.
[0015] [Embodiment] In this embodiment, the target measurement method involves irradiating the solid-phase surface of a substrate, on which a compound of a target modified with a fluorescent molecule and a capture molecule that specifically binds to the target (hereinafter sometimes simply referred to as "capture molecule") is provided, with an excitation light that excites the fluorescent molecule, or a solution containing an absorbent substance that absorbs the fluorescence emitted from the fluorescent molecule (hereinafter sometimes simply referred to as "absorbent substance"), from the opposite side of the solid-phase surface of the substrate, and measuring the fluorescence obtained from the opposite side of the solid-phase surface of the substrate. This improves the measurement accuracy of targets contained in the sample compared to conventional methods. Furthermore, it eliminates the need for cleaning the substrate, such as a DNA microarray, thus eliminating the effects of reduced quantitative accuracy and deterioration of the detection limit due to cleaning. In addition, it reduces the fluorescence of the sample solution derived from the sample, allowing for the measurement of weak light.
[0016] In the target measurement method of this embodiment, a target measurement method for measuring a target contained in a sample, a method for obtaining a compound of the target and a capture molecule that specifically binds to the target, modified with a fluorescent molecule, includes, for example, a method of modifying the target with the fluorescent molecule and binding the target to the capture molecule immobilized on the solid phase surface to obtain the compound; a method of modifying the capture molecule with the fluorescent molecule and binding the capture molecule to the target immobilized on the solid phase surface to obtain the compound; a method of modifying the capture molecule with the fluorescent molecule and binding the target to the capture molecule immobilized on the solid phase surface to obtain the compound; and a method of supplying the other of the target and the capture molecule, along with the fluorescent molecule, to either the target or the capture molecule immobilized on the solid phase surface to obtain the compound.
[0017] One method for obtaining the compound by binding the target to the capture molecule modified with the fluorescent molecule, which is immobilized on the solid phase surface, is to immobilize the capture molecule modified with the fluorescent molecule and the quenching molecule modified with the quenching substance, which specifically binds to the capture molecule, on the solid phase surface such that the fluorescent molecule modifying the capture molecule is quenched by the quenching substance modifying the quenching molecule, and when the target is not present, fluorescence is not generated even when the fluorescent molecule is excited with excitation light, and when the target is present, the target is bound to the capture molecule to obtain the compound. When the target binds to the capture molecule, the quenching substance modifying the quenching molecule separates from the fluorescent molecule modifying the capture molecule, causing fluorescence to be generated from the capture molecule immobilized on the solid phase surface.
[0018] A method for obtaining the compound by supplying the other of the target and the capture molecule and the fluorescent molecule to either the target or the capture molecule immobilized on the solid phase surface includes, for example, a method in which either a nucleic acid having a specific nucleic acid sequence or a nucleic acid probe having a nucleic acid sequence complementary to the specific nucleic acid sequence of the nucleic acid is immobilized on the solid phase surface, and the other of the nucleic acid and the nucleic acid probe and an intercalator modified with a fluorescent molecule that binds to the compound of the nucleic acid and the nucleic acid probe are supplied to the solid phase surface to obtain the compound.
[0019] The target is not particularly limited as long as it is something to be detected in the sample, but examples include nucleic acids such as DNA and RNA, peptides, and proteins. Examples of capture molecules that specifically bind to the target include detection probes that hybridize with nucleic acids, antibodies or antibody fragments that specifically bind to antigens such as peptides and proteins, and aptamers that specifically bind to nucleic acids. As for the antibody, either polyclonal antibodies or monoclonal antibodies can be used, but monoclonal antibodies are preferred. Examples of antibody fragments include F(ab')2, F(ab)2, Fab', Fab, Fv, scFv, their variants, fusion proteins or fusion peptides containing an antibody portion, etc. Alternatively, the target may be an antibody or antibody fragment, and the capture molecule may be an antigen such as a peptide or protein that specifically binds to the antibody or antibody fragment.
[0020] Examples of combinations of a target and a capture molecule that specifically binds to the target include a combination in which the target is a nucleic acid having a specific nucleic acid sequence and the capture molecule is a detection probe having a sequence complementary to the specific nucleic acid sequence, and a combination in which the target is an antigen and the capture molecule is an antibody or antibody fragment that specifically binds to the antigen. When the target is a nucleic acid having a specific nucleic acid sequence and the capture molecule is a detection probe having a sequence complementary to the specific nucleic acid sequence, the target nucleic acid binds to the capture molecule (detection probe) by a hybridization reaction.
[0021] Figure 1 shows a specific example of a method for obtaining a compound by modifying the target with the fluorescent molecule and binding the target to the capture molecule immobilized on the solid phase surface. In Figure 1, the target 3 is DNA having a specific nucleic acid sequence, the DNA is modified with the fluorescent molecule 4, and the capture molecule is a DNA probe 1 having a detection sequence 2 which is a nucleic acid sequence complementary to the specific nucleic acid sequence of the target 3. The DNA probe 1 is immobilized on a DNA microarray 5, which is a substrate, via a linker 21. The target 3 modified with the fluorescent molecule 4 binds to the DNA probe 1 immobilized on the DNA microarray 5 by a hybridization reaction, and fluorescence is emitted when the fluorescent molecule 4 modifying the target 3 is excited with excitation light.
[0022] Figure 2 shows a specific example of a method for obtaining the compound by modifying the capture molecule with the fluorescent molecule and binding the capture molecule to the target immobilized on the solid phase surface. In Figure 2, the target 3 is DNA having a specific nucleic acid sequence, and the capture molecule is a DNA probe 1 having a detection sequence 2 which is a nucleic acid sequence complementary to the specific nucleic acid sequence of the target 3. The DNA probe 1 is modified with a fluorescent molecule 4, and the target 3 is immobilized on a DNA microarray 5 which is a substrate. The DNA probe 1 modified with the fluorescent molecule 4 binds to the target 3 immobilized on the DNA microarray 5 by a hybridization reaction, and fluorescence is emitted when the fluorescent molecule 4 modifying the DNA probe 1 is excited with excitation light.
[0023] Figure 3 shows a specific example of a method for obtaining a compound by modifying the capture molecule with the fluorescent molecule and binding the target to the capture molecule immobilized on the solid phase surface. In Figure 3, the target 3 is DNA having a specific nucleic acid sequence, and the capture molecule is a donor fluorescent probe 6 having a detection sequence 2 which is a nucleic acid sequence complementary to the specific nucleic acid sequence of the target 3, modified with a fluorescent molecule 4. The donor fluorescent probe 6 is immobilized on a DNA microarray 5, which is a substrate, via a linker 21. A quenching probe 7, which has a sequence complementary to the nucleic acid sequence of the donor fluorescent probe 6 modified with a quenching substance 8, is immobilized on the DNA microarray 5, which is a substrate, so that it hybridizes with the donor fluorescent probe 6 at a binding portion 22. When the target 3 is not present, the fluorescent molecule 4 is quenched by the quenching substance 8, and fluorescence is not generated even when the fluorescent molecule 4 is excited with excitation light. When target 3 is present, target 3 binds to the detection sequence 2 of the donor fluorescent probe 6, which is modified with fluorescent molecule 4, via a hybridization reaction. As the quenching probe 7 detaches from the donor fluorescent probe 6, the fluorescent molecule 4 modifying the donor fluorescent probe 6 is excited by excitation light, causing fluorescence to be emitted.
[0024] In this invention, "complementary" means that one nucleic acid sequence has a nucleic acid sequence that can form a double-stranded state with the other nucleic acid sequence, and it does not necessarily have to be perfectly complementary; it may contain some mismatched base pairs.
[0025] The fluorescent molecules used in this invention are not particularly limited as long as they are molecules that are excited by a specific excitation light and emit fluorescence, but examples include the Alexa Fluor® series, ATTO series, Brilliant series, Chromeo® series, Bacteriochlorin series, FAM, TAMRA, Cy dye series, FITC, HiLyte Fluor® series, Rhodamine series, Tide Fluor® series, iFluor® series, DY dye series, etc.
[0026] The substrate used in this invention can be a plate-shaped quartz, glass, silicon, calcium fluoride, sapphire, or other single crystal, ceramic, or resin material, with a rectangular shape when viewed from above. Examples of resin materials include COP (cycloolefin polymer), COC (cyclic olefin copolymer), polycarbonate, acrylic resin, and polyethylene resin, which have excellent optical properties and chemical and thermal stability. The shape of the substrate when viewed from above may be any shape. In this invention, since the fluorescence obtained by irradiating the substrate with excitation light to excite fluorescent molecules from the side opposite to the solid phase surface is measured from the side opposite to the solid phase surface of the substrate, it is preferable that the substrate used in this invention is made of a material that transmits the excitation light to excite the fluorescent molecules and the fluorescence obtained by irradiating the substrate with the excitation light.
[0027] Next, the solid-phase surface of the substrate to which the target and the captured molecule are bonded is held in contact with the solution containing the light-absorbing substance.
[0028] For example, if a target in a sample solution is modified with a fluorescent molecule, and a capture molecule that specifically binds to the target is immobilized on the solid surface of a substrate, the target modified with the fluorescent molecule in the sample solution will bind to the capture molecule immobilized on the solid surface of the substrate. The solid surface of the substrate to which the target modified with the fluorescent molecule and the capture molecule are bound is then held in contact with the solution containing the light-absorbing substance.
[0029] For example, if a capture molecule that specifically binds to a target in a sample solution is modified with a fluorescent molecule, and the target is immobilized on the solid phase surface of a substrate, then the capture molecule modified with the fluorescent molecule in the sample solution will bind to the target immobilized on the solid phase surface of the substrate. The solid phase surface of the substrate to which the fluorescent molecule-modified capture molecule and the target are bound is then held in contact with the solution containing the light-absorbing substance.
[0030] Methods for holding a substrate so that its solid-phase surface is in contact with a solution containing the light-absorbing substance include placing the substrate in a container holding the solution so that its solid-phase surface is in contact with the solution, and injecting the solution into a container integrally manufactured with the substrate so that its solid-phase surface is inside the container, so that its solid-phase surface is in contact with the solution. When injecting the solution into a container integrally manufactured so that its solid-phase surface is inside the container, so that its solid-phase surface is in contact with the solution, it is preferable that the container into which the solution is injected has an injection port for injecting the solution and a structure that allows the injection port to be sealed after injection. The light-absorbing substance may be added to the container in advance so that it is added to the sample solution when a sample solution containing a target or capture molecule is injected into the container, or the light-absorbing substance may be added to the sample solution containing the target or capture molecule before it is injected into the container.
[0031] The timing for adding the light-absorbing substance to the sample solution can be any stage before the fluorescent molecule is irradiated with excitation light. For example, it may be during the preparation of the sample solution, before the target and the captured molecule bond on the solid-phase surface of the substrate, or after the target and the captured molecule have bonded on the solid-phase surface of the substrate.
[0032] By modifying a target or capture molecule with a fluorescent molecule, and holding the solid-phase surface of a substrate to which the target and the capture molecule are bound in contact with a solution containing an absorbent substance that absorbs excitation light to excite the fluorescent molecule, when excitation light to excite the fluorescent molecule is irradiated into the solution, the absorbent substance in the solution absorbs the excitation light that would otherwise pass through the solution, thereby suppressing the transmission of the excitation light. By suppressing the transmission of excitation light into the solution, the excitation of free fluorescent molecules in the solution can be suppressed, thereby suppressing the generation of fluorescence from the solution and reducing background light. Furthermore, if a substance that absorbs fluorescence emitted from fluorescent molecules is used as the absorbent substance, even if the fluorescent substance in the solution is excited by the excitation light and emits fluorescence, the absorbent substance absorbs the fluorescence emitted from the solution, thereby suppressing the generation of fluorescence from the solution and reducing background light.
[0033] Furthermore, during the preparation of a target solution, residual molecules such as proteins and sugars derived from the sample, extracted from the sample containing living organisms or microorganisms, may be present in the target solution. Even in such cases, absorbent substances can suppress the excitation or fluorescence generation of these residual molecules. Therefore, even when applied to target detection devices that do not normally require washing, background light caused by fluorescence generated from these residual substances can be reduced, thereby improving detection sensitivity.
[0034] The light-absorbing material is not particularly limited as long as it has optical properties that absorb excitation light that excites fluorescent molecules, or light of the wavelength of fluorescence emitted from fluorescent molecules. It is appropriately selected according to the wavelength of fluorescence generated by the fluorescent molecules used in the present invention, but pigments used for coloring paints, inks, cosmetics, food, etc. Pigments include various particles such as metals such as gold and silver, oxides such as iron oxide, nitrides, and organic polymers, and can be selected and used as a light-absorbing material based on the light-absorbing properties of the material itself, the colored particles, and the optical properties of absorption due to surface coloring. In addition, metal nanoparticles can be used as a light-absorbing material because surface plasmon resonance occurs at specific wavelengths due to the interaction of electrons and light on the particle surface, resulting in strong attenuation of light.
[0035] Specific examples of light-absorbing materials used in the present invention include, for example, when Cy3® is used as the fluorescent molecule, iron oxide (Fe2O3, Fe2O4), gold nanoparticles, silver nanoparticles, black-colored silica particles, polymer black-colored particles such as styrene-acrylic acid copolymers, etc. The light-absorbing material may be in a dry state or a solution state.
[0036] When the light-absorbing substance is a substance that absorbs excitation light, it is preferable to use a light-absorbing substance that transmits through the solid phase and reduces the scattering of excitation light entering the solution containing the light-absorbing substance. This is because if the light-absorbing substance reduces the scattering of excitation light entering the solution containing the light-absorbing substance, the optical path length of the light transmitted through the solution is extended due to scattering caused by the light-absorbing substance, which can further suppress the phenomenon of excessive excitation of fluorescent molecules in the solution and an increase in fluorescence.
[0037] This phenomenon is similar to the phenomenon formulated by the Modified Lambert-Beer law, which incorporates the effect of scattering into the Lambert-Beer law, a law that expresses absorbance as the logarithm of the ratio of incident light to transmitted light that has passed through a substance, and states that it is proportional to the concentration and optical path length. In this case, when a scattering substance is present, an increase in absorbance proportional to the concentration of the substance and the linear optical path length in the direction of the optical axis cannot be obtained. The scattering phenomenon of light by a substance differs depending on the particle size. For substances with particles sufficiently larger than the wavelength, it is represented by geometric optics approximation; for particles with particles about the size of the wavelength, it is represented by Mie scattering; and for particles sufficiently smaller than the wavelength, it is represented by Rayleigh scattering. In the present invention, since the light-absorbing substance is added to and dispersed in a solution, it is thought that Mie scattering or Rayleigh scattering will occur. The total scattering intensity of Mie scattering differs depending on the particle size and is known to increase proportionally to the square to the sixth power of the particle size. It is also known that the total scattering intensity of Rayleigh scattering increases proportionally to the sixth power of the particle size. For the above reasons, in the present invention, it is preferable that the particle size of the light-absorbing substance be small.
[0038] If the light-absorbing material is a substance that absorbs fluorescence, the fluorescence from fluorescent molecules near the contact surface between the solution and the solid phase reaches the detector, which is placed on the opposite side of the substrate from the solid phase, faster than the fluorescence from fluorescent molecules inside the solution. Therefore, it is preferable that the fluorescence generated near the contact surface between the solution and the solid phase is absorbed by the light-absorbing material rather than scattered on the solution side and reaching the detector side. Thus, a light-absorbing material that reduces fluorescence scattering is preferred.
[0039] Furthermore, since the absorbent substance is added to the solution, it is desirable that it disperses stably during fluorescence measurement and that no unevenness occurs in the solution. The dispersion stability of particles can be measured by various methods, such as visual observation, measurement of changes in transmitted light intensity, and measurement of changes in scattered light intensity. For example, the difficulty of precipitation can be estimated from the parameters of the centrifugation conditions for centrifuging a substance using a centrifuge, and thus the dispersion stability can be estimated. For polymer particles, a particle size of less than 800 nm is preferable because the parameters required for centrifugation are 10,000 × g and 20 minutes, making them difficult to precipitate and exhibiting excellent dispersibility. If the absorbent substance is silica particles, particles with a particle size of 200 nm or less are preferable for their excellent dispersibility; if it is iron oxide particles, particles with a particle size of 100 nm or less are preferable; and if it is gold nanoparticles, particles with a particle size of 15 nm or less are preferable for their excellent dispersibility.
[0040] Furthermore, in the present invention, it is preferable that the light-absorbing substance be hydrophilic in order to be added to and dispersed in a solution. If the light-absorbing substance is hydrophobic, it is preferable to make it hydrophilic by modifying the surface to be hydrophilic, introducing surface functional groups such as carboxyl groups and sulfone groups, coating with an oxide, or chemically modifying it with a hydrophilic polymer such as PEG, PEO, or dextran.
[0041] When adding a light-absorbing substance to a solution before binding the target and the captured molecule, it is preferable that the added light-absorbing substance does not adsorb to the target or the captured molecule. For example, by modifying the surface of the light-absorbing substance particles with a hydrophilic polymer such as PEG, it is possible to suppress the nonspecific adsorption of the light-absorbing substance to the target or the captured molecule. Alternatively, by adding a blocking agent such as BSA, which suppresses the nonspecific adsorption of biomolecules, to the solution containing the light-absorbing substance, it is possible to suppress the nonspecific adsorption of the light-absorbing substance to the target or the captured molecule.
[0042] Next, excitation light that excites fluorescent molecules is irradiated from the opposite side of the solid-phase surface of the substrate, and the resulting fluorescence is measured from the opposite side of the solid-phase surface of the substrate.
[0043] The method for measuring fluorescence obtained by irradiating the substrate with excitation light from the opposite side of the solid-phase surface to excite fluorescent molecules is not particularly limited as long as it can measure fluorescence emitted from the fluorescent molecules. For example, one method involves using a camera and compositing a fluorescence image generated from the fluorescent molecules onto the camera's detection element.
[0044] As an excitation light source, for example, a laser light source that emits single-wavelength laser light or its expanded light, an LED (Light Emitting Diode), a lamp that emits white light, or a light source consisting of an LED and a wavelength filter can be used.
[0045] The cameras used for measurement can include color and monochrome CCD and CMOS cameras, as well as high-sensitivity EM-CCD and digital CMOS cameras. Alternatively, a combination of a single detector such as a photodiode, arranged one-to-one with the spot, may also be used.
[0046] The fluorescence images obtained by the target measurement method of the present invention can acquire images of the target and captured molecules before and after binding at the same spot. Therefore, it is not affected by variations in light intensity between solid phases or between spots. Furthermore, the amount of fluorescence change can be calculated from the fluorescence images before and after binding, and the number of bound molecules can be calculated. The calculation of the fluorescence change may use the average light intensity of the entire spot, or it may use the fluorescence change of each pixel in the spot image.
[0047] Next, the target measurement device of the present invention will be described. The target measurement device of the present invention can be used in the target measurement method of the present invention. The target measurement device of the present invention is a target measurement device used when measuring a target contained in a sample, and comprises a substrate on which either the target or the capture molecule is immobilized on a solid phase surface, and a container to which an excitation light that excites a fluorescent molecule that modifies the compound of the target and the capture molecule, or a light-absorbing substance that absorbs fluorescence emitted from the fluorescent molecule is added, and the container is capable of holding a solution containing the other of the target and the capture molecule and the light-absorbing substance in contact with the solid phase surface of the substrate.
[0048] Examples of target measurement devices of the present invention include: a target measurement device in which a capture molecule is immobilized on the solid phase surface of a substrate and a solution containing a target modified with a fluorescent molecule is supplied to a container; a target measurement device in which a target is immobilized on the solid phase surface of a substrate and a solution containing a capture molecule modified with a fluorescent molecule is supplied to a container; a target measurement device in which a capture molecule modified with a fluorescent molecule is immobilized on the solid phase surface of a substrate and a solution containing the target is supplied to a container; and a target measurement device in which either a target or a capture molecule is immobilized on the solid phase surface of a substrate and a solution containing the other of the target or the capture molecule, and a fluorescent molecule that binds to a combination of the target and the capture molecule is supplied to a container. Examples of targets and capture molecules include those described above.
[0049] Figure 4 shows an example of the configuration of the target measurement device of the present invention. In Figure 4, an example of a DNA microarray with immobilized DNA probes is shown as the solid phase.
[0050] In the target measurement device of the present invention, a target or capture molecule is immobilized on the solid phase surface of a substrate. In Figure 4, a DNA probe 1 having a complementary sequence to a specific nucleic acid sequence that serves as the target is immobilized on a DNA microarray 5, which is the substrate. In this embodiment, the target measurement device modifies a target 3 with a fluorescent molecule 4, and holds a target solution 35 containing an absorbent substance, which includes the target 3 modified with the fluorescent molecule 4 and an excitation light 33 that excites the fluorescent molecule 4 or an absorbent substance that absorbs the fluorescence 34 emitted from the fluorescent molecule 4. The container 32 is held in contact with the solid phase surface of the DNA microarray 5 on which the DNA probe 1 is immobilized.
[0051] Next, the principle and operating procedure for detecting target 3 using the target measurement device will be explained based on the target measurement device shown in Figure 4. Figure 5 is a flowchart showing the operating procedure for detecting target 3 using the target measurement device shown in Figure 4.
[0052] First, the DNA probe 1 modified with fluorescent molecule 4 is immobilized on the DNA spot 30 on the substrate (step S1). Next, the target 3 in the sample is modified with fluorescent molecule 4 to prepare the target solution (step S2). When preparing the target solution, amplification of target 3 having a specific nucleic acid sequence may be performed. The timing for confirming whether or not target 3 is present in the sample is not limited to after amplification is complete, but can also be during amplification. If amplification of target 3 is performed, the modification of target 3 with fluorescent molecule 4 may be performed after amplification is confirmed, and only if amplification is confirmed may the process proceed to step S3 described later. Electrophoresis, antigen-antibody reaction, mass spectrometry, real-time PCR, etc., can be used as appropriate to confirm the presence of target 3.
[0053] Next, the prepared target solution is supplied to a container 32, which contains an absorbent substance and has a DNA microarray on which the DNA probe 1 is immobilized, and the target solution is brought into contact with the solid phase surface of the DNA microarray 5 (step S3). The absorbent substance added to container 32 is added to the target solution when the target solution is supplied to container 32, resulting in an absorbent substance-added target solution 35.
[0054] After bringing the light-absorbing target solution 35 into contact with the solid phase surface of the DNA microarray 5 on which the DNA probe 1 is immobilized, a hybridization reaction is carried out between the target 3 modified with the fluorescent molecule 4 and the DNA probe 1 immobilized on the DNA microarray 5 (step S4). Through this hybridization reaction, target 3 binds to DNA probe 1, and the fluorescent molecule 4 that modifies target 3 is captured by the DNA spot 30 on which the DNA probe 1 is immobilized.
[0055] After the hybridization reaction, excitation light 33 that excites the fluorescent molecule 4 is irradiated from the side opposite to the solid phase surface of the DNA microarray 5 (step S5).
[0056] Next, fluorescence 34 emitted from a fluorescent molecule 4 that modifies a target 3 bound to a DNA probe 1 immobilized on the DNA microarray 5 is detected from the side opposite to the solid phase surface of the DNA microarray 5 (step S6). For example, a fluorescence image emitted from the fluorescent molecule 4 is acquired by a fluorescence reader 40. Next, the amount of fluorescence is calculated from the acquired fluorescence image (step S7).
[0057] When excitation light 33, which excites the fluorescent molecule 4, is irradiated from the opposite side of the solid phase surface of the DNA microarray 5 substrate, fluorescence is emitted from the fluorescent molecule 4 that is modifying the target 3.
[0058] If the absorbent substance is a substance that absorbs the excitation light 33 that excites the fluorescent molecule 4, the excitation light 33 for exciting the fluorescent molecule 4 is irradiated onto the target solution 35 containing the absorbent substance. However, since the target solution 35 contains the absorbent substance that absorbs the excitation light 33 that excites the fluorescent molecule 4, the excitation of the fluorescent molecule 4 of the target 3, which is modified with unreacted fluorescent molecules 4 that have not hybridized with the DNA probe 1 and are free in the solution 35, can be suppressed. Furthermore, if the absorbent substance is a substance that absorbs the fluorescence 34 emitted from the fluorescent molecule 4, the excitation light 33 for exciting the fluorescent molecule 4 is irradiated onto the target solution 35 containing the absorbent substance. However, since the target solution 35 contains the absorbent substance that absorbs the fluorescence 34 emitted from the fluorescent molecule 4, the emission of fluorescence from the fluorescent molecule 4 of the target 3, which is modified with unreacted fluorescent molecules 4 that have not hybridized with the DNA probe 1 and are free in the solution 35, can be suppressed. This suppresses the fluorescence emission of the solution 35, allowing the fluorescence emitted from the target 3 bound to the solid phase to be measured in the presence of the solution containing the target 3, without washing the solid phase. Furthermore, real-time measurement during the hybridization reaction becomes possible.
[0059] Furthermore, the target measurement method of the present invention allows for the calculation of the number of target 3 molecules that have undergone the hybridization reaction from the change in fluorescence of fluorescent molecule 4 before and after the hybridization reaction. For example, a hybridization reaction can be performed using a standard solution of target 3 having a known number of molecules, and the change in fluorescence of fluorescent molecule 4 before and after the reaction can be measured to create a calibration curve showing the relationship between the number of molecules and the change in fluorescence. From this calibration curve and the change in fluorescence of fluorescent molecule 4 before and after the hybridization reaction using a sample, the number of target 3 molecules that have undergone the hybridization reaction can be calculated. In order to measure the change in fluorescence of fluorescent molecule 4 before and after the hybridization reaction, an absorbent substance can be added to the solution in step S2 or step S3.
[0060] Next, a method for manufacturing a target measurement device according to the target measurement method of the present invention will be described.
[0061] (1) Solution preparation First, a solution containing the target or a capture molecule that specifically binds to the target is prepared, and the concentration of the target or capture molecule is adjusted. For example, if the target is DNA having a specific nucleic acid sequence, and the capture molecule is a DNA probe having a sequence complementary to the specific nucleic acid sequence of the target, a DNA probe solution is prepared, and the concentration of the DNA probe solution is adjusted.
[0062] (2) Fixation to the solid phase surface The target or captured molecule is immobilized on the solid phase surface of the substrate. For example, when immobilizing a DNA probe on the solid phase surface, DNA probe 1 is spotted onto the solid phase surface using a spotter or the like to immobilize DNA probe 1 on the solid phase surface. The solid phase surface is then immersed in a blocking solution to inactivate any unreacted active functional groups.
[0063] The area on the solid-phase surface where the target or captured molecule is spotted may be divided into blocks of a predetermined number. The target solution is added to the target measurement device block by block. Furthermore, image acquisition by the target measurement device is often performed block by block. In other words, a block can be considered an image acquisition area.
[0064] (3) Washing Next, the solid-phase surface is cleaned to remove any excess targets or captured molecules that have not been immobilized, and the cleaning solution is also removed. The substrates manufactured by the above procedure are stored appropriately until use under conditions such as light shielding, temperature, and humidity that are suitable for the properties of the substrate and the targets and captured molecules immobilized on it.
[0065] (4) Placing the substrate in a container that holds a solution containing light-absorbing material. (3) The substrate on which the target or captured molecule obtained in (3) is immobilized is placed in the container such that the solid-phase surface on which the target or captured molecule is immobilized faces the container that holds the solution containing the light-absorbing substance. The substrate may be integrated with the container, or the substrate and container may be separate so that the substrate can be placed in the container when measuring the target. If the substrate is integrated with the container, it is preferable that the container has an inlet into which the solution can be injected and a structure that can seal the inlet after injection.
[0066] (5) Addition of light-absorbing substance to the container (4) Add the light-absorbing substance to the container prepared in (4). The light-absorbing substance may be in a dry or liquid state. By adding the light-absorbing substance to the container in advance, the light-absorbing substance can be added to the solution when a solution containing a target or capture molecule modified with a fluorescent molecule is supplied to the container. The light-absorbing substance may be added to the container before or after the substrate is placed in the container. If the light-absorbing substance is added after the substrate is placed in the container, the light-absorbing substance can be added through an inlet provided in the container.
[0067] Next, the target measurement device of the present invention will be described. The target measurement device of the present invention comprises a target measurement device of the present invention and a fluorescence reading device for measuring the amount of fluorescence of fluorescent molecules from the target measurement device. Figure 6 is an example of a configuration diagram showing the target measurement device of the present invention. In this embodiment, the target measurement device acquires images before and after the binding of the target of the target measurement device 10 to the captured molecule. After acquiring the image before binding, the temperature of the solid phase surface of the target measurement device 10 is raised by a temperature control stage to allow the binding reaction to proceed, and then the temperature is lowered back to room temperature to acquire the image after binding. For example, when immobilizing a DNA probe 1 on the solid phase surface of a substrate, the target 3 modified with a fluorescent molecule 4 is subjected to a hybridization reaction with the DNA probe 1, and images before and after the hybridization reaction are acquired.
[0068] The temperature-controlled stage preferably has a stirring function, such as shaking, rotation of a target measurement device, or stirring by a vortex mixer, during the reaction between the target and the captured molecules, in order to promote the binding of the target and the captured molecules.
[0069] In the optical system of the fluorescence reader 40, the laser light emitted from the laser light source 41 is reflected by the dichroic mirror 44 via the mirror 45 and irradiates the solid phase surface of the target measurement device. The irradiated light becomes excitation light 33 for the fluorescent molecules 4 on the solid phase surface of the target measurement device 10, causing the fluorescent molecules 4 to enter an excited state and emit fluorescence 34.
[0070] The fluorescence emitted from the solid phase surface of the target measurement device 10 passes through the dichroic mirror 44 and, via the imaging optical system 43, forms a fluorescence image on the detection element of the CCD camera 42 for detection. Here, in order to prevent the excitation light 33 from leaking into the fluorescence 34, a bandpass filter matched to the excitation light wavelength may be installed on the excitation light 33 side, or a bandpass filter matched to the fluorescence wavelength to be detected may be installed on the fluorescence 34 side.
[0071] The fluorescence images obtained by the target measurement device of the present invention can acquire images of the target and captured molecules before and after binding at the same spot. Therefore, it is not affected by variations in light intensity between solid phases or between spots. Furthermore, the amount of fluorescence change can be calculated from the fluorescence images before and after the binding reaction, and the number of molecules that have bound can be calculated. The calculation of the amount of fluorescence change may use the average light intensity of the entire spot, or it may use the amount of fluorescence change of each pixel in the spot image.
[0072] The target measurement device of the present invention may include a computer that controls a CCD camera 42, a calculation device that calculates the amount of light in an image, and a recording device that stores images, light levels, etc.
[0073] The target measurement device of the present invention is not limited to the embodiments described above. Since the target measurement device of the present invention detects fluorescence from the side opposite to the immobilized surface of the detection spot on the solid phase surface, it can use fluorescence microscopes, confocal microscopes, evanescent fluorescence detectors, thin-film oblique illumination microscopes, sheet illumination microscopes, structured illumination microscopes, multiphoton excitation microscopes, and the like.
[0074] Next, the target measurement kit of the present invention will be described. The target measurement kit of the present invention can be used in the target measurement method of the present invention. The target measurement kit of the present invention is a target measurement kit used when measuring a target contained in a sample, and comprises a substrate on which either the target or the capture molecule is immobilized on a solid phase surface, a container capable of holding a solution containing the other of the target or the capture molecule in contact with the solid phase surface of the substrate, and an excitation light that excites a fluorescent molecule that modifies the compound of the target and the capture molecule, or a light-absorbing substance that absorbs fluorescence emitted from the fluorescent molecule.
[0075] The light-absorbing substance may be added to the sample solution when preparing the sample solution containing the target or capture molecule. The timing of adding the light-absorbing substance to the sample solution can be any stage before the fluorescent molecule is irradiated with excitation light, for example, during the preparation of the sample solution, before the target and capture molecule bind on the solid phase, or after the target and capture molecule have bound on the solid phase.
[0076] The container may have a light-absorbing substance added to it beforehand. The light-absorbing substance may be in a dry or liquid state. By adding the light-absorbing substance to the container beforehand, the light-absorbing substance can be added to the solution when a solution containing a target or capture molecule modified with a fluorescent molecule is supplied to the container.
[0077] For example, the substrate may have a target immobilized on its solid phase surface, and the container may be capable of holding a solution containing a target modified with a fluorescent molecule and the light-absorbing substance in contact with the surface of the substrate.
[0078] Furthermore, the substrate may have a fixed capture molecule modified with a fluorescent molecule, and the container may be capable of holding the solution containing the target and the light-absorbing substance in contact with the solid phase surface.
[0079] Furthermore, either the target or the capture molecule is immobilized on the solid-phase surface of the substrate, and the container may be capable of holding a solution containing the other of the target or the capture molecule, a fluorescent molecule bound to the combination of the target and the capture molecule, and the light-absorbing substance in contact with the solid-phase surface of the substrate.
[0080] Examples of targets and capture molecules include those mentioned above. Examples of target measurement kits of the present invention include a kit in which the target is a target having a specific nucleic acid sequence, and the capture molecule is a DNA probe having a sequence complementary to the specific nucleic acid sequence.
[0081] The target measurement kit of the present invention may include the target measurement device of the present invention.
[0082] In the target measurement kit of the present invention, the substrate, light-absorbing substance, and container are as described above. The target measurement kit of the present invention may further include standard solutions, necessary buffer solutions, product instructions, etc., necessary for quantifying the target.
[0083] Next, the method of using the target measurement kit of the present invention will be explained using a kit including the target measurement device shown in Figure 4 as an example. In this target measurement kit, the target is DNA having a specific nucleic acid sequence, and the capture molecule is a DNA probe having a sequence complementary to the specific nucleic acid sequence. The DNA probe is immobilized on the solid phase surface of a DNA microarray, and the target is modified with a fluorescent molecule.
[0084] The target measurement kit of this embodiment includes a DNA microarray 5 on which a DNA probe 1 is immobilized, and a container 32 capable of holding a target solution 35 containing an absorbent substance, the container 32 holding the solution 35 in contact with the solid phase surface of the DNA microarray 5 on which the DNA probe 1 is immobilized, and the absorbent substance is added to the container 32.
[0085] First, target 3 in the sample is modified with fluorescent molecule 4 to prepare a target solution. When preparing the target solution, target 3 having a specific nucleic acid sequence may be amplified. Next, the target solution is supplied to container 32 and brought into contact with the solid-phase surface of the DNA microarray 5. The spectroscopy substance added to container 32 is added to the target solution when the target solution is supplied to container 32, resulting in spectroscopy-added target solution 35. After bringing the spectroscopy-added target solution 35 into contact with the solid-phase surface of the DNA microarray 5 on which the DNA probe 1 is immobilized, a hybridization reaction is performed between target 3 modified with fluorescent molecule 4 and DNA probe 1 immobilized on the DNA microarray 5. Through this hybridization reaction, target 3 binds to DNA probe 1, and the fluorescent molecule 4 modifying target 3 is captured by the DNA spot 30 on which the DNA probe 1 is immobilized.
[0086] After the hybridization reaction, excitation light 33, which excites the fluorescent molecule 4, is irradiated from the side opposite to the solid phase surface of the DNA microarray 5.
[0087] Next, fluorescence 34 emitted from a fluorescent molecule 4 that modifies a target 3 bound to a DNA probe 1 immobilized on a DNA microarray 5 is detected from the side opposite the solid phase of the DNA microarray 5. For example, a fluorescence image emitted from the fluorescent molecule 4 is acquired by a fluorescence reader 40. Then, the amount of fluorescence is calculated from the acquired fluorescence image.
[0088] The scope of application of the present invention is not limited to the embodiments described above. The present invention can be broadly applied to target measurement methods, target measurement devices, target measurement apparatuses, and target measurement kits for measuring targets contained in a sample.
[0089] The target measurement method, target measurement device, target measurement apparatus, and target measurement kit of the present invention can be used for dry image measurement in fluorescence molecular light intensity measurement, liquid observation of fluorescence molecular light intensity of biochips, and real-time observation in continuous reactions. Specifically, they can be used, for example, for bacterial species identification by gene and polymer analysis, oncogene analysis, animal and plant identification, and intestinal bacteria testing.
[0090] Furthermore, the target measurement method, target measurement device, target measurement apparatus, and target measurement kit of the present invention are also applicable to solid-phase methods such as labeled antibody methods used in clinical tests. For example, one example is the FISH method (fluorescence in situ hybridization), which measures the expression of specific chromosomes or genes in tissues or cells using a fluorescent substance. In addition, it is also applicable to the FIA method (fluorescence immunoassay), which measures antigen-antibody reactions using a fluorescent substance such as europium as a label, and the IFA method (indirect immunofluorescence assay), which measures serum (antibody) reactions in which a fluorescent substance is labeled onto a pathogen or other antigen. [Examples]
[0091] The present invention will be described in more detail below based on examples, but the present invention is not limited thereto.
[0092] (Example 1) The effect of reducing background light by adding an absorbent substance was confirmed. Cy3(registered trademark) molecules were added to a container as fluorescent molecule 4, with concentrations ranging from 0.3 to 3,000 nM. A transparent glass substrate was placed in the container. Excitation light 33 at 532 nm was transmitted through the transparent glass substrate, and fluorescence images were acquired. Figure 7 shows the results of calculating the background light intensity from acquired fluorescence images, with and without the addition of an absorbent substance to the solution in the container. Table 1 shows the background light ratio (background light intensity without absorbent substance / background light intensity with absorbent substance) when the concentration of the fluorescent molecule is changed. The absorbent substance used was dextran-coated iron oxide (Fe2O3) with a particle size of 50 nm, added to the solution at a concentration of 50 mg / ml.
[0093] [Table 1]
[0094] As shown in Figure 7 and Table 1, background light can be reduced to 1 / 4 to 1 / 17 depending on the Cy3 molecule concentration, with the reduction effect being greater when the background light is high. However, when genomic DNA was extracted from microorganisms, the fluorescence of the solution was 10 μW / m². 2 It is known to exist to some extent, and the background light is 10 μW / m 2 Since the effect was observed even in solutions of a certain degree, it was found that the fluorescence generated by exciting the solution due to molecules other than target 3 introduced from the sample is also effective. Furthermore, even in the state of water without Cy3 molecules, the background light was reduced by half. This is thought to be due to a decrease in reflection from the bottom of the container and autofluorescence because the excitation light 33 no longer transmits through the solution, and a secondary effect was confirmed.
[0095] Furthermore, we investigated the difference in spot visibility due to reduced background light. Figure 8 shows spot images taken with a fluorescence reader at an exposure time of 1 second in solutions with Cy3 molecule concentrations ranging from 3 to 300 nM, where synthetic DNA modified with Cy3 molecules was immobilized on a substrate. When the Cy3 molecule concentration was 30 nM or higher, the background light could be reduced to more than 1 / 10, indicating that spot observation was possible even when the fluorescence exhibited by the solution was high.
[0096] Figure 9 shows the relationship between spot light intensity and background light when the Cy3 molecule concentration is 30 nM. The amount of fluorescence emitted by the fluorescent molecule 4 trapped by the DNA probe 1 at the spot is calculated from the difference between the spot light intensity and the background light. As shown in Figure 9, the light intensity did not change with or without the addition of the absorbent, and the detection signal did not decrease with the addition of the absorbent. Furthermore, if the ratio of spot light intensity to background light is defined as the signal-to-noise ratio (S / N), the S / N was 1.3 when the absorbent was not added, while it was 5.3 when the absorbent was added, showing a 4.2-fold improvement in S / N.
[0097] (Example 2) A DNA microarray 5 was prepared by placing multiple unmodified DNA probes 1 (fluorescent molecule 4) on a substrate, and the applicability of adding an absorbent substance was confirmed in spot observation by hybridization of target DNA modified with Cy3 molecules as follows. Target DNA modified with Cy3 molecules to a concentration of 0.25 nM was prepared in a container. At the same time, an absorbent was added under the same conditions as in Example 1, and DNA microarray 5 was placed. The mixture was incubated at 60°C and 5 rpm for 30 minutes to allow the DNA probe 1 and target DNA to hybridize. After returning to room temperature, fluorescence images of the spots were acquired using a fluorescence reader, and the light intensity was calculated. The results are shown in Figure 10.
[0098] As shown in Figure 10, when the absorbent was added, the fluorescence of the target modified with unreacted Cy3 molecules released into the solution was reduced, and the background light was reduced to 1 / 3.7. At this time, if the ratio of spot light intensity to background light is defined as S / N, the S / N when the absorbent was added was 3.7, compared to 1.5 when the absorbent was not added, indicating a 2.5-fold improvement in S / N. Compared to when the absorbent was not added, there was no decrease in light intensity due to the difference between spot light intensity and background light when the absorbent was added, indicating that the absorbent did not inhibit the hybridization reaction between DNA probe 1 and target 3. [Explanation of symbols]
[0099] 1 DNA probe 2. Detection sequence 3 Targets 4. Fluorescent molecules 5 DNA microarrays 6. Donor fluorescent probes 7. Extinction probe 8 Quencher 10 Target Measurement Devices 30 DNA spots 32 Container 33 Excitation light 34 Fluorescence 35 Target solution with absorbent substance added 40 Fluorescence Reader 41 Laser light source 42 CCD cameras 43 Imaging Optical System 44 Dichroic Mirrors 45 Mirror 46 stages
Claims
1. A target measurement method for measuring targets contained in a sample, The solid-phase surface of a substrate on which a compound of the target modified with a fluorescent molecule and a capture molecule that specifically binds to the target is provided is held in contact with a solution containing excitation light that excites the fluorescent molecule, or a light-absorbing substance that absorbs fluorescence emitted from the fluorescent molecule. The excitation light is irradiated onto the fluorescent molecule and the solution from the opposite side of the substrate from the solid phase surface. The fluorescence obtained by irradiation with the excitation light is measured from the side of the substrate opposite to the solid-phase surface. Target measurement method.
2. The target is modified with the fluorescent molecule, The target measurement method according to claim 1, wherein the target is bonded to the capture molecule immobilized on the solid phase surface to obtain the bonded product.
3. The aforementioned capture molecule is modified with the aforementioned fluorescent molecule, The target measurement method according to claim 1, wherein the captured molecules are bonded to the target immobilized on the solid phase surface to obtain the bonded product.
4. The aforementioned capture molecule is modified with the aforementioned fluorescent molecule, The target measurement method according to claim 1, wherein the target is bound to the capture molecule immobilized on the solid phase surface to obtain the combined product.
5. The target measurement method according to claim 1, wherein the other of the target and the capture molecule and the fluorescent molecule are supplied to either the target or the capture molecule which is immobilized on the solid phase surface to obtain the compound.
6. The target is a nucleic acid having a specific nucleic acid sequence, The capture molecule is a detection probe having a sequence complementary to the specific nucleic acid sequence. A target measurement method according to any one of claims 1 to 5, wherein the target is subjected to a hybridization reaction with the detection probe to obtain the compound.
7. The target measurement method according to any one of claims 1 to 6, wherein the light-absorbing substance is iron oxide, gold nanoparticles, silver nanoparticles, black-colored silica particles, or polymer black-colored particles.
8. The target measurement method according to claim 7, wherein the particle size of the light-absorbing substance is less than 800 nm when the light-absorbing substance is the polymer black colored particles, 200 nm or less when the light-absorbing substance is the black colored silica particles, 100 nm or less when the light-absorbing substance is the iron oxide, and 15 nm or less when the light-absorbing substance is the gold nanoparticles.
9. The target measurement method according to any one of claims 1 to 8, wherein the light-absorbing substance is hydrophilic.
10. The target measurement method according to any one of claims 1 to 9, wherein a blocking agent that suppresses nonspecific adsorption of biomolecules is added to the solution containing the light-absorbing substance.
11. Obtain images of the same spot on the solid phase surface before and after the binding of the target and the captured molecule, From the images before and after the binding, the amount of change in fluorescence obtained by irradiation with the excitation light is determined. A target measurement method according to any one of claims 1 to 10.
12. A target measuring device for measuring targets contained in a sample, A target measurement device comprising: a substrate on which either the target or a capture molecule that specifically binds to the target is immobilized on the solid phase surface; and a container to which an excitation light that excites a fluorescent molecule that modifies the combination of the target and the capture molecule, or an absorbent substance that absorbs fluorescence emitted from the fluorescent molecule, is added, and the container is capable of holding a solution containing the other of the target and the capture molecule and the absorbent substance in contact with the solid phase surface of the substrate; A laser light source that irradiates the fluorescent molecules and the solution with excitation light from the opposite side of the substrate from the solid phase surface, A fluorescence reading device that measures the amount of fluorescence from the target measurement device from the side of the substrate opposite to the solid phase surface, A target measuring device having the following features.
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