Method for detecting biological material using well array and particles, well array and detection device
The method optimizes particle concentration and well array design for rapid and sensitive biological substance detection, addressing limitations in existing technologies by using multiple particles per well and a general-purpose imaging device.
Patent Information
- Application Number
- JP2023508906
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-26
- Filing Date
- 2022-03-04
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2042-03-04
AI Technical Summary
Existing biological substance detection methods, such as digital ELISA, face challenges in achieving high-speed and high-sensitivity detection due to limitations in magnetic bead concentration and reaction time, leading to reduced detection sensitivity and prolonged observation times.
A method utilizing a well array with multiple particles per well, optimized particle concentration and size, and a general-purpose imaging device to facilitate rapid and sensitive detection, ensuring a minimum average number of particles per well for efficient detection.
The method enables quick and sensitive detection of biological substances by shortening reaction times and maintaining detection sensitivity, suitable for high-throughput applications like infection testing.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for detecting a biological substance, a well array, and a detection device using a detection system in which the size of the detection elements is set for high-speed detection of the biological substance. [Background technology]
[0002] A known protein detection method is the digital ELISA (Enzyme-Linked Immunosorbent Assay) method, in which a group of magnetic beads, which may include magnetic beads in a state where no protein has been captured and magnetic beads in a state where the protein has been captured and bound to a labeling substance having an enzyme, are individually moved and placed into each microwell of a microwell array, which has many microwells arranged on a substrate, using a magnet or gravitational sedimentation, and the number of colors developed in the microwells is digitally counted (see Non-Patent Documents 1 to 5 and Patent Documents 1 to 6). It has also been reported that the digital ELISA method can be used to detect proteins derived from viruses (see Non-Patent Document 6).
[0003] A fluorescent substrate is contained in each microwell, and when the contained magnetic beads capture the protein, i.e., when the protein is present in the microwell, color (light emission) occurs due to an enzymatic reaction between the enzyme and the fluorescent substrate, and the presence or absence of the protein is observed as the presence or absence of color in the microwell. At the same time, the number of colored microwells is digitally counted (e.g., colored microwells are counted as "1" and uncolored microwells are counted as "0"), thereby detecting the number of viruses in the sample and achieving highly quantitative protein detection. Furthermore, when this method is used to detect viral proteins as in Non-Patent Document 6, highly quantitative virus detection is achieved.
[0004] However, in the digital ELISA method, one magnetic bead is placed in each microwell to ensure quantitative determination. Therefore, the number of magnetic beads that can be introduced into the test solution is limited by the number of microwells, resulting in a low concentration (content) of the magnetic beads in the test solution. As a result, the contact opportunities between the magnetic beads and the protein in the test solution are limited, and a long reaction time is required for the magnetic beads to capture the protein. On the other hand, even if an attempt is made to shorten the reaction time by increasing the concentration of the magnetic beads in the test solution, the number of magnetic beads exceeds the number of microwells, resulting in magnetic beads that cannot be accommodated in the microwells. As a result, the proteins captured by these magnetic beads are not detected, resulting in a decrease in detection sensitivity.
[0005] In order to avoid missing viruses due to magnetic beads that cannot be contained in the microwells, attempts have been reported to simply increase the number of microwells formed in the microwell array (see Patent Documents 1 and 3).
[0006] However, the more the number of microwells formed, the larger the observation area becomes, and at the same time, the longer the time required for observation becomes. In other words, simply increasing the number of microwells formed will result in a longer observation time, making it impossible to detect biological substances such as viruses in a short time. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] International Publication No. 2016 / 6208 [Patent Document 2] Japanese Patent Application Publication No. 2018-91737 [Patent Document 3] International Publication No. 2012 / 121310 [Patent Document 4] Patent No. 3886161 [Patent Document 5] Patent No. 5551798 [Patent Document 6] Patent No. 5363663 [Non-patent literature]
[0008] [Non-Patent Document 1] David M Rissin et al., Nature Biotechnology Vol. 28, No. 6, pp.595 (2010) [Non-patent document 2] Elena Perez-Ruiz et al., Analytica Chimica Acta 1015, pp.74 (2018) [Non-patent document 3] Soo Hyeon Kim et al., Lab on a Chip 12, pp.4986 (2012) [Non-patent document 4] David M Rissin et al., Analytical Chemistry 83, pp.2279 (2011) [Non-patent document 5] Stephanie M. Schubert et al., Analytical Chemistry 88, pp.2952 (2016) [Non-patent document 6] Karen Leirs et al., Analytical Chemistry 88, pp.8450 (2016) Summary of the Invention [Problem to be solved by the invention]
[0009] The present invention aims to solve the above-mentioned problems in the prior art and to provide a biological substance detection method, well array, and detection device that can detect biological substances quickly and with high sensitivity using a well array and particles.
[0010] In the prior art, a factor that prevents shortening the time required for detecting a biological substance is that one bead is contained in one well. Therefore, while this method contributes to the quantification of the detected biological material, it cannot meet the social needs that prioritize high-speed detection, such as in infection testing for viruses and the like. Therefore, the present inventors decided to explore a new method for detecting biological substances that is specialized for high-speed detection.
[0011] Consider changing the approach of the conventional technology and placing multiple particles (beads) in one well. The question arises as to how many particles should be placed in one well.
[0012] Assuming the detection of pathogenic viruses with a diameter of about 100 nm, such as influenza viruses and coronaviruses, and assuming that binding occurs when the particles collide with the pathogenic viruses in a liquid, that is, assuming a reaction probability of 100%, if the concentration of the particles is 5 x 10 7 When a test liquid containing 10 ... D ) is set to 50 nM to match the performance of commonly available antibodies. The concentration of the particles in the test solution is 1×10 8 When the concentration of the particles in the test solution is increased to 5×10 particles / mL, the reaction time between the pathogenic virus and the particles is approximately 210 seconds when the particle diameter is 1 μm, approximately 110 seconds when the particle diameter is 2 μm, and approximately 70 seconds when the particle diameter is 3 μm. 8When the concentration is increased to 1 / mL, the reaction time between the pathogenic virus and the particles is approximately 110 seconds when the particle diameter is 0.5 μm, approximately 65 seconds when the particle diameter is 1 μm, approximately 35 seconds when the particle diameter is 2 μm, and approximately 15 seconds when the particle diameter is 3 μm. These results confirm that the higher the particle concentration in the test solution and the larger the particle diameter, the shorter the reaction time tends to be. Furthermore, the reaction time is shortened when the target substance to be detected is a smaller substance such as a protein. In addition, various trials were conducted by changing the concentration and particle size of the particles, but due to the length of the reaction time, the concentration of the particles was set to the lowest level of 5 × 10 7 It must be 1 / mL.
[0013] As a baseline, a general-purpose observation device equipped with a 300,000-pixel image sensor, assuming a VGA image sensor (640 x 480 pixels), will be used for the detection device used to detect the biological material. Currently, a full HD image sensor is considered the most standard image sensor. However, when multiple particles are contained in one well, fewer wells are required to observe the same number of particles compared to when a single particle is contained in one well, as in conventional technology. Therefore, the VGA image sensor, which is less expensive than the full HD image sensor, will be set as the baseline. While consideration will be given to using image sensors with higher resolution than the VGA image sensor (such as a full HD image sensor, 4K image sensor, or 8K image sensor), the use of a standard, less expensive general-purpose observation device will be set as the baseline in order to establish a general-purpose detection method that can be used even in the event of a large number of virus-infected patients. The lower limit of the test liquid volume is assumed to be 5 μL, which is an amount that can be easily handled with a commonly used micropipette, making it easy to carry out a virus detection test.
[0014] To image one well, a minimum of 3 × 3 pixels (= 9 pixels) is required, so the baseline total number of wells formed in the well array must be considered to be approximately 33,333 (300,000 pixels / 9 pixels). Therefore, for this well array, the particle concentration is 5×10 7 When all of the particles in 5 μL of the test solution, which has a particle count of 10 particles / mL, are contained in the wells, each well must contain an average of 8 or more particles (5×10 7 pieces / mL×5μL / 33,333 pieces)=7.5 pieces).
[0015] The average number of particles to be accommodated in one well, 8, is the minimum average number that can be accommodated under the condition where the particle concentration is the lowest, and when using a test liquid prepared with a higher particle concentration, the volume is set to accommodate a larger number of particles to form one well. Furthermore, the amount of test liquid used for detection may be 100 μL, which is generally used in PCR tests, etc., or a larger amount (e.g., 1 mL).If the amount of test liquid is increased, the total number of particles contained in the test liquid will also increase, so a capacity is set to accommodate a larger number of particles to form one well. Furthermore, as mentioned above, the use of a high-performance observation device having a high-definition imaging element (full HD imaging element, 4K imaging element, 8K imaging element) may be considered. Additionally, the number of pixels in the pixel group used to image one well may be set to 4×4 pixels (=16 pixels) or more to improve the visibility of the well.
[0016] When using the high-performance observation device, increasing the number of pixels of the imaging element can increase the total number of wells formed in the well array beyond the baseline of 33,333, and thus reduce the average number of particles assigned to each well to less than eight. However, the high-performance observation device itself is expensive, and increasing the total number of wells according to the number of pixels results in a total number of wells that is too large compared to the total number of particles contained in the test liquid estimated from the particle concentration in the test liquid and the volume of the test liquid, making the well array difficult and unnecessarily expensive. Furthermore, since the average number of particles is less than eight, each well must be made smaller, further increasing the cost of producing the well array. In addition, increasing the number of pixels and the total number of wells unnecessarily can result in a situation where the number of particles contained in one well is zero, which simply hinders efficient virus detection. Therefore, the use of the high-performance observation device is limited to when the concentration of the particles in the test liquid is high or when the amount of the test liquid is large, i.e., when the total number of particles contained in the test liquid is large, and it can be concluded that the minimum average number of particles to be assigned to one well remains unchanged from the assumption in the baseline, at 8. In this sense, the minimum average number N of particles to be accommodated in one well is min It is sufficient that the following expressions (1) and (2) are satisfied.
[0017]
number
[0018] From the above, the number of particles to be accommodated in one well is set to at least an average of N min It was found that if the number of particles is set to (pieces), it is possible to accommodate all of the particles in the well, maintain detection sensitivity, shorten the reaction time, and detect the biological material at high speed. [Means for solving the problem]
[0019] The present invention is based on the above findings, and provides the following means for solving the above problems. <1> A biological substance detection method using a well array formed by dividing a plurality of adjacent wells by side walls erected on a substrate and particles capable of capturing a biological substance, and detecting the biological substance in a test solution based on color detection of the wells, wherein the concentration of the particles is at least 5×10 7 a test solution preparation step of preparing the test solution at a concentration of 1000p / mL; a biological substance capture step of capturing the biological substance on the particles to form a capture body; and a step of delivering the test solution onto the well array to a well at least at least the minimum average number of particles N per well, which is expressed by the following formulas (1) and (2): min and a color detection step of detecting color in the well using an imaging element having a pixel count of at least 300,000.
number
[0020] According to the present invention, the above-mentioned problems of the prior art can be solved, and a biological substance detection method, well array, and detection device can be provided that are capable of detecting biological substances quickly and with high sensitivity using a well array and particles. [Brief explanation of the drawings]
[0021] [Figure 1] FIG. 10 is an explanatory diagram for explaining the setting of wells. [Figure 2(a)] FIG. 1 shows an electron microscope image of well array production example 1. [Figure 2(b)] FIG. 2(b) is a partially enlarged photograph of FIG. 2(a). [Figure 3(a)] FIG. 10 is a diagram showing an electron microscope image of well array production example 2. [Figure 3(b)]FIG. 3(b) is a partially enlarged photograph of FIG. [Figure 4] 1 illustrates an example embodiment of a detection device. [Figure 5(a)] FIG. 1 is an explanatory diagram (1) for explaining how a biological material is detected. [Figure 5(b)] FIG. 10 is an explanatory diagram (2) for explaining how a biological material is detected. [Figure 5(c)] FIG. 10 is an explanatory diagram (3) for explaining how a biological material is detected. [Figure 6] 10A and 10B are diagrams showing results of an example of biological material detection according to the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0022] (Biological substance detection method) The biological substance detection method of the present invention uses a well array formed by dividing adjacent wells with side walls erected on a substrate, and particles capable of capturing biological substances, and detects the biological substances in a test liquid based on color detection of the wells, and includes a test liquid preparation step, a biological substance capture step, a particle accommodation step, and a color detection step.
[0023] The biological material is not particularly limited and includes DNA, RNA, proteins, viruses, bacteria, etc. that can be detected by known biological material detection methods such as ELISA, immunoassay, etc. In particular, biological materials with a diameter of 1 nm to 500 nm, such as proteins (diameter of about 5 nm) and pathogenic viruses such as influenza viruses and coronaviruses (diameter of about 100 nm), can be used. The liquid sample containing the biological material is not particularly limited, and examples thereof include blood, saliva, urine, and environmental water.
[0024] <Test liquid preparation process> In the test liquid preparation step, the concentration of the particles is set to at least 5×10 7 This is a step of preparing the test solution at 1000p / mL. For example, when detecting a virus contained in saliva, the particles are added to saliva to prepare the test liquid. There are no particular limitations on the specific method for setting the particle concentration in the test liquid, and examples thereof include a method of diluting a known particle-containing liquid containing the particles at a high concentration with a known buffer solution.
[0025] The particles are not particularly limited, and examples include well-known plastic particles, metal particles, ceramic particles, magnetic particles, etc., but magnetic particles are preferred because they are easier to contain in the well using a magnet than plastic particles, metal particles, and ceramic particles, which settle in the well due to their own weight. The particle size of the particles is not particularly limited, but is preferably 0.1 μm to 9 μm, and more preferably 0.2 μm to 5 μm. In addition to spherical particles, particles having a shape with multiple particle sizes, such as oval spheres, can also be used. In the case of oval spheres, the particle size range mentioned above corresponds to the maximum diameter. The particle size of the particles will be described in detail below.
[0026] If the particle size is too small, even when magnetic particles are used, the response to magnetic force will be low, and it may take a long time to attract the particles with a magnet and place them in the well. Therefore, the lower limit of the particle size is preferably 0.1 μm or more, and more preferably 0.2 μm or more.
[0027] On the other hand, the larger the particle size, the shorter the reaction time with the biological material, but if the particle size is too large, the observation field becomes large when detecting color development in the well, which may result in a longer detection time. The depth of the well is preferably at most 40 μm. If the well is deeper than this, problems such as the imaging element not being able to focus on the entire depth of the well, the well being difficult to process, and the test solution being difficult to enter the well are likely to occur. The particle concentration is 5×10 7When the test solution containing particles / mL is prepared in an amount of 5 μL, the total number of particles contained in the test solution is 2.5 × 10 5 Becomes an individual. Since the particles are not closely packed in the well even when they are spherical, it is assumed that the particles are packed in a cubic lattice pattern, similar to other shapes. In this assumption, the total volume (capacity) of the well array obtained by integrating the volumes of all the wells is 2.5 × 10 when the particle diameter of the particles is 1 μm. 5 μm 3 (1μm×1μm×1μm×2.5×10 5 Similarly, when the particle size of the above particles is 5 μm, 3.13 × 10 7 μm 3 , and 5.4 × 10 when the particle diameter is 6 μm. 7 μm 3 The total volume of the When the depth of the wells is 40 μm or less, the total opening area of the well array obtained by integrating the opening areas of all the wells (the area obtained by integrating the formation areas of all the wells on the substrate in the well array) is 0.00625 mm when the particle diameter of the particles is 1 μm. 2 or more (2.5 × 10 5 μm 3 Similarly, when the particle size of the particles is 3 μm, the particle size is 0.169 mm 2 When the particle size of the particles is 4 μm, the 2 When the particle size of the particles is 5 μm, the particle size is 0.781 mm 2 When the particle size of the particles is 6 μm, the 2 When the particle size of the particles is 7 μm, the 2 When the particle size of the particles is 8 μm, 2 When the particle size of the particles is 9 μm, 2 When the particle size of the particles is 10 μm, the 2 The total opening area of the above is required. Here, assuming that the color development detection of the wells is performed by the detection unit configured with the general-purpose observation device, when an objective lens with a magnification of 4 times is used as the general-purpose observation device, the detection unit is configured to detect the color development of the wells by the detection unit. 2 When a 10x objective lens is used, the distance is approximately 0.8 mm. 2 The smaller the observation field, the more visible the wells are, making it easier to detect color development. If the total opening area of the well array exceeds the observation field, the observation field must be moved to observe the excess portion, which takes time to detect the color development of the wells. Therefore, the upper limit of the particle size is set as follows: 2 In order to satisfy the condition that the total opening area does not exceed the observation field, it is preferable that the total opening area is 9 μm or less, and the observation field is 0.8 mm 2 In this case, the total opening area is more preferably 5 μm or less, so as not to exceed the observation field.
[0028] The lower limit of the particle concentration in the test liquid is 5×10 7 The higher the concentration, the shorter the reaction time with the biological material can be, and the higher the concentration, the shorter the reaction time with the biological material. 8 More preferably, the number is 1 / mL or more. On the other hand, if the concentration is too high, it may be over-specified for shortening the reaction time. Also, when detecting color development in the well, the observation field may become large, and the detection time may become long. This will be explained in detail below. When the particle size is 1 μm under the same assumptions as when deriving the preferred particle size (the volume of the test solution is 5 μL, and the depth of the well is 40 μm or less), the concentration is 1×10 9 When the total volume is 5 x 10 6 μm 3 and the total opening area is 0.125 mm 2 or more, the concentration is 2 × 10 9 When the total volume is 1 x 10 7 μm 3 and the total opening area is 0.25 mm 2 or more, the concentration is 4 × 10 9 When the total volume is 2 x 107 μm 3 and the total opening area is 0.50 mm 2 Above, the concentration is 8 × 10 9 When the total volume is 4 x 10 7 μm 3 and the total opening area is 1.0 mm 2 or more, the concentration is 1.6 × 10 10 When the total volume is 8 x 10 7 μm 3 The total opening area is 2.0 mm 2 or more, the concentration is 4.0 × 10 10 When the total volume is 2.0 x 10 8 μm 3 The total opening area is 5.0 mm 2 The field of view to be observed in practice is the total opening area plus the thickness of the side wall, i.e., the area of the side wall portion, so in practice, the concentration is 4.0 × 10 10 5.0 mm when counted / mL 2 In other words, the density is 4.0 × 10 10 When the number of particles / mL exceeds 5, the observation field (5 mm 2 ) the total opening area is larger. If the concentration is too high, the total opening area of the well array will be reduced to the observation field (5 mm 2 ) or less. This restriction is eased as the particle size of the particles becomes smaller (for example, 0.1 μm), but unnecessarily increasing the number of particles is just a waste. Therefore, the upper limit of the concentration is set to 4×10 in consideration of the balance between detection time and reaction time. 10 5×10 9 More preferably, it is less than 1 / mL.
[0029] <Biological material capture process> The biological material capturing step is a step of capturing the biological material on the particles to form a capturing body, which is formed by binding the biological material to the particles. The manner in which the particles capture the biological material is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include antigen-antibody reaction, DNA hybridization, biotin-avidin binding, amino binding, etc. For example, in the case of the antigen-antibody reaction, the particles are used, on the surface of which a large number of antibodies that specifically bind to the antigen are bound, using the biological material as an antigen. Such particles capable of capturing the biological material may be commercially available or may be formed by a known method. If the concentration of the particles in the test liquid is low, the opportunity for the biological material to come into contact with the particles is limited, and the reaction time is prolonged. Therefore, the test liquid preparation step is carried out as a step preceding the biological material capture step to increase the concentration of the particles in the test liquid. The biological material capturing step can be carried out by, for example, stirring the test liquid to bring the particles into contact with the biological material.
[0030] <Particle containing process> The particle containing step is performed by delivering the test liquid onto the well array so that each well contains at least the minimum average number of particles N represented by the following formulas (1) and (2): min This is a step of storing a plurality of particles including the capture body in a storage number of 1.
[0031]
number
[0032] In addition, the larger pixel counts of the image sensors mentioned above include 2,073,600 pixels (1,920 x 1,080 pixels) for full HD image sensors, 8,294,400 pixels (3,840 x 2,160 pixels) for 4K image sensors, 33,177,600 pixels (7,680 x 4,320 pixels) for 8K image sensors, and approximately 61 million pixels for full-size CMOS image sensors. The pixel group refers to a group of pixels arranged in a matrix, with pixels arranged in a first direction and pixels arranged in a second direction perpendicular to the first direction. In the case of a pixel group arranged in a matrix of 3 rows and 3 columns, i.e., 3 x 3 pixels (9 pixels), the central pixel is used to detect the color development of the well. The pixel group may also be composed of 4 x 4 pixels (16 pixels), etc., in which case the number of pixels used to detect the color development of the well can be increased, improving visibility. Also, the minimum average number of items that can be accommodated N min The "average" in this case takes into account the variability in placing the particles in the wells, and the wells themselves are at least min The well is configured to accommodate at least N particles. min Whether or not the number of particles contained therein is confirmed by taking into consideration variations in the "average value." For example, the total number of particles contained in the wells in an arbitrarily selected group of wells (e.g., four adjacent wells arranged in two rows and two columns) is counted from an electron microscope image or an optical microscope image, and this total number is divided by the number of wells in the group of wells to be counted to obtain the "average value."
[0033] -Well Array- The well array is formed by dividing adjacent wells with the sidewalls erected on the substrate. The well array has a minimum average number of cells per well represented by the formulas (1) and (2), N min The container is configured to be able to accommodate a plurality of particles including the capture body in a capacity of 1000. The total number of wells formed in the well array is not particularly limited, but ideally, it is set to P total / P image The observation limit P total / P image To give a specific example, P total is the 640 × 480 pixels (= 307,200 pixels) of the VGA image sensor, and P image The observation limit P when the pixel size is 3 × 3 (= 9 pixels) total / P image is approximately 34,080 (213×160), and if the number of pixels of the VGA image sensor is more simply expressed as 300,000 pixels, the number becomes 33,333. Now, let us consider the preferable lower limit of the total number of wells. As a premise, the total number of wells is P total / P image Even if it is less than the minimum average number of items that can be accommodated, N min It can be said that the volume of one of the wells should be set so that the number of cells to be accommodated exceeds 100. In other words, the assumption that the total number of wells is approximately 33,333 (300,000 pixels / 9 pixels) is a baseline when the minimum average capacity is an average of 8, and by increasing the capacity to an average of more than 8 by setting the volume given to each well, it is possible to arbitrarily reduce the total number of wells below the assumption. However, for reasons that will be explained later, there is an upper limit to the actual volume of the well, and the preferred maximum volume of the well is 100 pL (=0.1 × 10 6 μm 3 ) On the other hand, when the above particles having a particle size of 1 μm are used, the 5 (The concentration of the particles is 5 × 10 7 In order to accommodate all of the particles (total number of particles when the test solution containing 10 particles / mL is prepared in a volume of 5 μL) in the wells, the total volume of the well array is 2.5 × 10 5 μm 3 The above volume is required. Therefore, the lower limit of the total number of wells is 3 (2.5 × 10 5μm 3 / (0.1×10 6 μm 3 )) It can also be said that the above is preferable. On the other hand, in actual detection situations, even when the test liquid does not contain the biological material, a certain number of colored wells (false positive wells) are detected due to the detection reagent not being washed away, etc. The present inventors have repeatedly performed preliminary tests using enzymes such as β-galactosidase that cause color development in well 1, and have confirmed that up to several tens of false positive wells occur. Therefore, when detecting the test liquid containing the biological substance, in order to detect the number of colored wells as a significant signal derived from the biological substance, it is necessary to set the system so that a significantly larger number of colored wells than the false positive wells (for example, μ+3.3σ or more, where μ is the average number of false positive wells and σ is the standard deviation) can be detected, taking into account variability.From this perspective, it is preferable that the lower limit of the total number of wells is 100 or more.
[0034] Incidentally, in the biological substance detection method of the present invention, quantitativeness according to Poisson distribution is ensured in terms of statistical probability as long as the total number of wells exceeds the number of biological substances contained in the test solution. Furthermore, the greater the total number of wells used for detection, the wider the dynamic range in digital counting of the number of color-developing wells, which is significantly advantageous in carrying out quantitative detection of the biological material at high speed and with high sensitivity. When quantitative detection of a biological substance is added as a purpose, how to set the lower limit of the total number of wells while satisfying the above-mentioned condition regarding the lower limit depends on the number of biological substances contained in the test liquid, i.e., the application to which the biological substance detection method of the present invention is applied. For example, if the test liquid to be detected is expected to contain a small number of biological substances based on experience, the total number of wells is set to a small number (e.g., 1,000) so as to satisfy the dynamic range setting taking into account the number of biological substances. Conversely, if the test liquid to be detected is expected to contain a large number of biological substances, the total number of wells is set to a large number (e.g., 10,000). Regarding the upper limit of the total number of wells, if the total number of wells is P total / P image If the number of wells exceeds 1, the visibility is reduced and the color development of the wells cannot be detected when the well array is observed as a whole. Furthermore, if the observation field is divided to observe a portion of the well array, it takes time to detect the color development of the wells because the observation field must be moved for observation.
[0035] The well array has a well formation area, which is the area of the substrate in which the wells are formed, of at least 0.8 mm 2 It is preferable that the well formation area refers to the area on the substrate where a plurality of wells are formed as a group of wells to be observed, and is different from the area for forming one well. The well formation area is 0.8 mm 2 When the detection unit is configured in the general-purpose observation device having the 10x objective lens to detect color development in the well, the observation field in the detection unit is approximately 0.8 mm 2 Therefore, observation can be performed without moving the observation field. In addition, the well formation area is 5 mm 2 When the detection unit is configured with the general-purpose observation device having the 4x objective lens and the color development detection of the well is performed, the observation field in the detection unit is about 5 mm 2Therefore, observation can be performed without moving the observation field.
[0036] An example of the configuration of the wells will be described with reference to Fig. 1. Fig. 1 is an explanatory diagram for explaining the setting of the wells. The depth D of the well 1 is not particularly limited, but is preferably 2 μm to 40 μm. Since the well 1 is intended to contain the particles, the depth D must be greater than the particle size of the particles. Since the lower limit of the particle size that can be used is 0.1 μm, if the depth D is less than 0.1 μm, it will be difficult to contain the particles in the well 1, even if the smallest particles are used. Since a deeper depth D allows the particles to be contained more stably, it is preferable that the depth be 2 μm or greater, even when particles with small particle sizes are used. On the other hand, if the depth D exceeds 40 μm, problems such as the imaging element not being able to focus over the entire depth of the well, the well being difficult to process, and the test solution being difficult to enter the well are likely to occur.
[0037] The volume V of well 1 is the minimum average number of particles N min The baseline is set to accommodate the particles at a number of 1000 particles. Now, when the detection unit is configured with the image pickup element having 300,000 pixels, the minimum average number of pixels N min Consider a case where eight such particles are accommodated. If the particle diameter is 0.1 μm, assuming that the particles are not packed closest in well 1 and are packed in a cubic lattice pattern with a generous design, the volume occupied by one particle in well 1 will be 0.001 fL. Therefore, the volume occupied by eight particles will be 0.008 fL, so well 1 must have a volume of at least 0.008 fL. Considering the visibility of well 1 and the optimum value of depth D, if the length of one side of well 1 is less than 1 μm, visibility deteriorates even with a high-magnification microscopic observation system, so the length of one side is preferably 1 μm or more. Also, as mentioned above, the depth D is preferably 2 μm or more, so the minimum volume of a well that satisfies this size is 2 fL. Therefore, the lower limit of the volume V of the well 1 is preferably 2 fL or more.
[0038] On the other hand, the upper limit of the volume V of the well 1 can be considered as follows. If the volume V of the well 1 is too large, the concentration of the substance that causes color development in the well 1 will be low, reducing the visibility of the color development in the well 1. In other words, even if the capture body that has captured the biological substance is contained in the well 1, the color development based on the biological substance in this well 1 cannot be distinguished from that of another well 1 that contains only particles that do not capture the biological substance, making it difficult to detect the biological substance through the color development or non-color development of the well 1. In this regard, preliminary tests conducted by the inventors using enzymes such as β-galactosidase that cause color development in well 1 have shown that if one molecule of the enzyme is present in well 1 filled with the test solution and having a volume V of 10 pL, the color development in one well 1 to which the enzyme has been added can be distinguished from other wells 1 in a non-color development state to which the enzyme has not been added. Generally, about 100 molecules of the enzyme can be attached to one virus via a substance that specifically adsorbs to the virus, such as an antibody, so the detection limit for color development and non-color development in Well 1 can be estimated to be 1,000 pL. Furthermore, if the detection limit is set at 100 pL, allowing for some leeway, it becomes easy to distinguish between color development and non-color development in Well 1. Therefore, the upper limit of the volume V of the well 1 is preferably 100 pL or less.
[0039] The sidewall thickness T, which is the thickness of the sidewall between adjacent wells 1, is not particularly limited, but is preferably 0.5 μm to 15 μm. If the sidewall thickness T is less than 0.5 μm, it will be difficult to process and will be prone to breakage. If the sidewall thickness T exceeds 15 μm, the well formation area in the well array will be unnecessarily large, which will likely impose significant restrictions on the settings for detecting the biological substance without moving the observation field. If the spacing between adjacent wells 1 is not constant, such as when the wells 1 are circular or elliptical, the lateral thickness T is determined by the thickness of the thinnest part of the spacing between adjacent wells 1.
[0040] The opening area A of the well 1 is not particularly limited, but from the viewpoint of visibility and the relationship between the depth D and the volume V (V / D), it is set to 1 μm 2 ~50,000μm 2 is preferred. 1, the opening shape of the well 1 is square, but the opening shape is not particularly limited and may be a regular polygon such as an equilateral triangle or a regular hexagon (honeycomb structure), a rectangle, a circle, or an ellipse. Furthermore, the well 1 is not particularly limited as long as it is columnar (box-shaped).
[0041] The material for forming the well array is not particularly limited and can be appropriately selected depending on the purpose. Examples include known glass materials, semiconductor materials, and resin materials. Furthermore, the method for forming the well array is not particularly limited and can be selected appropriately depending on the purpose. Examples include known methods such as forming the well array by etching after pattern drawing by lithography, and forming the well array by injection molding or imprinting using a mold having the shape of the well. For example, when the well array is formed using lithography and reactive ion etching with silicon as the forming material, the processing limit is about 0.1 nm, and the well array can be formed with high precision.
[0042] Well array preparation example 1 is shown in Figures 2(a) and (b). Figure 2(a) is an electron microscope image of well array preparation example 1, and Figure 2(b) is a partially enlarged photograph of Figure 2(a). Also, well array preparation example 2 is shown in Figures 3(a) and (b). Figure 3(a) is an electron microscope image of well array preparation example 2, and Figure 3(b) is a partially enlarged photograph of Figure 3(a). Fabrication Examples 1 and 2 were each fabricated using silicon as the forming material by lithography and reactive ion etching. The well array according to Preparation Example 1 is a shallow type preparation example in which the opening shape is a square with sides of 10 μm, the depth D is 3 μm, and the wells 1 are formed with a sidewall thickness T of 3 μm. The well array according to Example 2 is a deep type well array in which the opening shape is a square with sides of 10 μm, the depth D is 15 μm, and the sidewall thickness T is 3 μm. When the particle size of the particles is small, the well array according to Preparation Example 1 can be suitably used, and when the particle size of the particles is large, the well array according to Preparation Example 2 can be suitably used.
[0043] <Color development detection process> The color development detection step is a step of detecting the color development in the wells using a commercially available image sensor.
[0044] In the color development detection step, any commonly available image sensor can be used without any particular problems, but an image sensor having at least 300,000 pixels is used. These image pickup devices constitute a detection unit similar to that of a known microscope and are used to detect the color development in the wells. 2 When detecting color development in the wells in the observation field of view, for example, the detection unit may be configured with an objective lens with a magnification of 4 times. 2 When detecting color development in the wells in the observation field, the detection unit may be configured with an objective lens having a magnification of 10 times, for example.
[0045] There are no particular restrictions on the color of the well, but it is preferable that the color develops as a result of the biological material in the capture body reacting with a color-developing agent that causes color development in the well after the previous particle-containing process is carried out. The coloring agent is not particularly limited, and examples thereof include coloring agents used in known biological substance detection methods such as ELISA and immunoassay. Examples include a coloring substance that adsorbs to the biological substance to cause color development in the well, a reagent that generates a fluorescent substance through an enzymatic reaction with a protein in the biological substance, a reagent that generates a chemiluminescent substance through an enzymatic reaction with a protein in the biological substance, and a labeling substance having a recognition site that specifically recognizes the biological substance. The color former may be added to the well before or after the particle containing step, or may be added when preparing the test liquid in the test liquid preparing step. Furthermore, in this specification, "color development" refers to a state in which light that differs in at least one of spectrum and intensity between the well containing the biological substance and the well not containing the biological substance becomes detectable, and the concept of "color development" includes not only a color change in the well containing the biological substance compared to the well not containing the biological substance, but also at least one change in the emission spectrum and emission intensity of the well containing the biological substance compared to the well not containing the biological substance. Furthermore, the term "color development" used in this specification may be read as "color development or luminescence."
[0046] The color-producing substance that adsorbs to the biological material to cause color development in the well is not particularly limited, and examples thereof include aggregation-induced luminescence (AIE) substances. Examples of the aggregation-induced luminescent substance include compounds that produce the AIE effect, as described in JP 2010-112777 A.
[0047] Examples of the reagent that generates a fluorescent substance through an enzymatic reaction with a protein in the biological material include derivatives containing 4-methylumbelliferone, such as (4-methylumbelliferyl)-α-DN-acetylneuraminic acid, which generates the fluorescent substance 4-methylumbelliferone through an enzymatic reaction with neuramidase in influenza viruses; derivatives containing fluorescein; derivatives containing resorufin; and derivatives containing rhodamine.
[0048] An example of a reagent that generates a chemiluminescent substance through an enzymatic reaction with a protein is luciferin, which causes the protein to emit light as a luciferase.
[0049] Examples of the labeling substance include enzyme labels and fluorescent dye labels in which an antibody that recognizes the biological substance is labeled with an enzyme or fluorescent dye.
[0050] An example of how to implement the biological substance detection method using magnetic particles as the particles will be described with reference to the drawings. An embodiment of a detection device used in the biological material detection method is shown in Fig. 4. The state of biological material detection is shown in Figs. 5(a) to (c). As shown in Figure 4, the detection device 10 is composed of a detection chip 2 on which a well array 1' having a plurality of wells 1 formed therein, a detection unit 4, and a magnetic field application unit 3. There are no particular limitations on the detection chip 2, and it may be configured in the same manner as a known detection chip used for observing biological materials. There are also no particular limitations on the magnetic field application unit 3, and it may be configured by a permanent magnet, an electromagnet, or the like.
[0051] First, the concentration of magnetic particles 6 is at least 5×10 7The test solution 5 prepared at 1000p / mL is stirred, and the biological material is captured by the magnetic particles 6 to form the capture bodies, and then the test solution 5 is delivered onto the well array 1' (see FIG. 5(a)). Note that the number of magnetic particles 6 shown in the figure is simplified to avoid cluttering the figure.
[0052] Next, after the liquid is delivered, the magnetic particles 6 are attracted into the well 1 by the magnetic field applied from the magnetic field application unit 3, and a plurality of magnetic particles 6 containing the capture bodies are contained in the well 1 (see Figure 5(b)). At this time, excess test liquid 5 is delivered to the outside of the well array 1'. When the plastic particles, metal particles, or ceramic particles are used instead of the magnetic particles 6, the plastic particles are settled in the well 1 by their own weight and contained therein.
[0053] Next, the color former is added to the wells 1, and the wells 1 are covered with a transparent glass plate 7 to prevent the magnetic particles 6 and the color former from dissipating (see FIG. 5(c)). Alternatively, a hydrophobic solvent may be dropped onto the top of the wells 1 to seal the top of the wells 1, and the transparent glass plate 7 may be placed on top of the wells 1. The color former may be added to the test liquid 5 in advance, just before the test liquid 5 is delivered to the well array 1'. As the reaction between the biological material captured by the capture body and the coloring agent progresses, color development occurs due to this reaction, and this color development is detected as color development L in well 1 by detection unit 4 (see FIG. 4). If the coloring agent is one that causes fluorescence in the well 1, after the reaction, excitation light is irradiated from an arbitrary light source to generate fluorescence, and the color produced is detected by the detection unit 4 as color L in the well 1.
[0054] According to the above biological substance detection method, all of the particles are contained within the well to maintain detection sensitivity, and the test liquid is prepared to have a high particle concentration, thereby shortening the reaction time required to capture the biological substance and enabling high-speed detection of the biological substance.
[0055] (Well Array) The well array of the present invention is used in the biological substance detection method of the present invention, and has a minimum average number of wells N represented by the following formulas (1) and (2): min A plurality of particles including the capture body can be accommodated in this number. The well array allows all of the particles to be contained within the wells to maintain detection sensitivity, while using the test liquid in which the particle concentration has been adjusted to a high concentration, thereby shortening the reaction time required to capture the biological material, thereby enabling the biological material to be detected quickly.
[0056]
number
[0057] The well array can be configured by applying the items explained in the description of the biological material detection method, and a duplicated explanation will be omitted.
[0058] (Detection device) The detection device of the present invention comprises the detection chip on which the well array of the present invention is arranged, and the detection section which is configured to have the imaging element having at least 300,000 pixels. According to the detection device, all of the particles can be contained within the well to maintain detection sensitivity, while the test liquid is prepared to have a high particle concentration, thereby shortening the reaction time required to capture the biological material, thereby enabling rapid detection of the biological material.
[0059] The detection device can be configured by applying the items explained in the description of the biological material detection method, and a duplicated explanation will be omitted. [Example]
[0060] In order to confirm the effectiveness of the biological substance detection method according to the present invention, the following detection test was carried out using influenza virus (biological substance) as the detection target.
[0061] In the detection test, a well array was used in which 24,025 wells, each with a volume of 500 fL and a sidewall thickness of 3 μm, were formed on a silicon substrate in a matrix of 155 × 155. The well array was fabricated using a known shaping method using photolithography and dry etching. Furthermore, magnetic particles with a diameter of 1 μm on which anti-hemagglutinin antibodies were immobilized were used as particles for capturing the influenza viruses. Furthermore, as a reagent for detecting the influenza virus, (4-methylumbelliferyl)-α-DN-acetylneuraminic acid (MUNANA, (Toronto Research Chemicals, M334200)), which generates a fluorescent substance through an enzymatic reaction, was used. In addition, a 2,048 x 2,048 pixel (4,194,304 pixel, P total A CMOS camera (Hamamatsu Photonics, ORCA-Flash 4.0 V3) was used.
[0062] As a detailed detection method, first, 15 μL of the sample solution containing the influenza virus and the magnetic particles at a concentration of 5×10 8 The mixture was mixed with 15 μL of a magnetic particle solution containing the influenza viruses at a concentration of 1 / mL, and allowed to stand at room temperature for 10 minutes to allow a reaction to occur, thereby binding the influenza viruses to the magnetic particles. Thereafter, 30 μL of a 1 mM MUNANA solution was added and mixed, and 50 μL of the solution was dispensed and introduced into the well array. After dispensing, the mixture (test solution, VL The concentration (C) of the magnetic particles in the solution (50 μL) is 1.25 × 10 8 pieces / mL. Thereafter, the magnetic particles were drawn into the well array using a magnet, the well array was sealed with fluorine oil, a cover glass was placed on top, and the well array was observed under a fluorescence microscope (Olympus, BXFM). The observation was performed using a 4x objective lens, and each well was observed by 64 pixels (8x8 pixels, P image ) was observed. In the well array, the influenza virus drawn into the well reacts with MUNANA to produce the fluorescent substance 4-methylumbelliferone. In fact, the wells containing the influenza virus were detected as luminescent wells because an increase in luminescence due to the enzymatic reaction was observed. The number of luminescent wells was counted after 20 minutes of enzyme reaction time, normalized by the number of wells used for observation, and the value was used as a measurement value corresponding to the influenza virus concentration.
[0063] The results of this test are shown in Figure 6. 6, the measured value of the number of luminescent wells correlates with the concentration of the influenza virus, and it is confirmed that the number increases as the concentration of the influenza virus increases. In other words, the presence and concentration of the influenza virus can be detected by the number of luminescent wells. The lower detection limit determined by μ + 3.3σ (shown by the dashed line in FIG. 6) using the average value μ and standard deviation σ of the number of luminescence wells measured in the sample not containing influenza virus is 1×10 2 copies / mL. The capture time by the magnetic particles was 10 minutes, and the measurement time including the enzyme reaction time (20 minutes) was approximately 30 minutes. The detection limit is extremely small, and the measurement time is extremely short, exceeding the performance of the PCR method, which is currently widely used as a highly sensitive virus detection method. In this test, N calculated by the above formula (1) min The value of N is approximately 95, and the average number of magnetic particles accommodated in the well is approximately 260. min That is, the present invention realizes high-speed and highly sensitive detection of biological materials. [Explanation of symbols]
[0064] 1 well 1' well array 2. Detection chip 3 Magnetic field application unit 4. Detection unit 5 Test liquid 6. Magnetic particles 7. Transparent glass plate 10. Detection Device L Color development
Claims
1. A biological substance detection method using a well array formed by dividing a plurality of adjacent wells by side walls erected on a substrate and particles capable of capturing a biological substance, and detecting the biological substance in a test liquid based on color detection of the wells, comprising: The concentration of the particles is at least 5 × 10 7 a test solution preparation step of preparing the test solution to have a concentration of 0.01g / mL; a biological substance capturing step of capturing the biological substance on the particles to form a capture body; The test liquid is delivered to the well array so that the minimum average number of wells N represented by the following formulas (1) and (2) is reached per well: min a particle containing step of containing a plurality of particles including the capture body in a containing number of particles; a color detection step of detecting color development in the wells using an image sensor having at least 300,000 pixels; A biological material detection method comprising: [Equation 1] In the formula (1), C represents the concentration of the particles in the test liquid, and is at least 5 × 10 7 pcs / mL. L indicates the amount of the test solution, which is at least 5 μL. total indicates the number of pixels of the image sensor, which is at least 300,000 pixels. image indicates the number of pixels in the pixel group used to image one of the wells in the imaging device, and is at least 9 pixels (3×3 pixels).
2. 2. The method for detecting a biological substance according to claim 1, wherein the particles are magnetic particles having a diameter of 0.1 μm to 9 μm.
3. The test liquid preparation step adjusts the particle concentration in the test liquid to 5×10 7 pieces / mL ~ 5×10 9 3. The method for detecting a biological substance according to claim 1, further comprising the step of preparing the solution to a concentration of 1 or 2 per mL.
4. 4. The method for detecting a biological substance according to claim 1, wherein the volume of one well is 2 fL to 100 pL.
5. 5. The method for detecting a biological material according to claim 1, wherein the color development detection step is carried out by fixing the observation field of the imaging element to a size including the well formation area, which is the area of the substrate in the region where the well is formed.
6. 6. The method for detecting a biological substance according to claim 1, wherein the color development in the well in the color development detection step is due to a reaction between the biological substance in the capture body and a coloring agent that causes color development in the well.
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