SENSOR, MEASUREMENT DEVICE PROVIDED THEREWITH, SENSOR UNIT, CELL CULTURE ANALYSIS DEVICE, AND LIQUID SAMPLE MEASUREMENT METHOD
20230008595 · 2023-01-12
Inventors
- Seiitirou IKETANI (Ehime, JP)
- Shingo OTANI (Ehime, JP)
- Masahiro KOUGE (Ehime, JP)
- Masaki YAMAMOTO (Ehime, JP)
- Kenta NAKAMAE (Ehime, JP)
- Tetsurou TAKAOKA (Ehime, JP)
Cpc classification
C12M1/34
CHEMISTRY; METALLURGY
International classification
Abstract
A sensor performs measurement of a culture medium and is used in a state of being immersed in a medium placed in a well, the sensor comprising a main body having a first surface and a second surface that is on the opposite side from the first surface; an electrode unit that is provided on the first surface in the main body and to which a specific voltage is applied in the course of performing measurement in a state of being immersed in the medium; and a liquid holding portion that is provided around the electrode unit on the first surface, and that is disposed near the inner wall surface of the well and holds the medium up to above the electrode unit, in between the inner wall surfaces.
Claims
1. A sensor that is used in a state of being immersed in a liquid sample inside a container, and that measures the liquid sample, the sensor comprising: a main body having a first surface and a second surface that is on an opposite side from the first surface; an electrode unit that is provided on the first surface of the main body and to which a specific voltage is applied during measurement in a state of being immersed in the liquid sample; and a liquid holding portion that is provided around the electrode unit on the first surface, that is disposed near an inner wall surface of the container, and that holds the liquid sample up to above the electrode unit between the first surface and the inner wall surface.
2. The sensor according to claim 1, wherein the liquid holding portion holds the liquid sample on a side of the first surface up to a position higher than on a side of the second surface when the electrode unit is immersed in the liquid sample.
3. The sensor according to claim 1, wherein the liquid holding portion is provided to an upper portion of the electrode unit on the first surface in a state in which the electrode unit is immersed in the liquid sample.
4. The sensor according to claim 1, wherein the liquid holding portion has substantially the same width as the first surface, or has a width that is greater than the width of the first surface, in the portion where the electrode unit is provided.
5. The sensor according to claim 1, wherein the main body is disposed near the inner wall surface up to a distance at which surface tension is generated in the liquid sample held between the first surface and the inner wall surface of the container.
6. The sensor according to claim 5, wherein the container is substantially circular in top view, and the first surface is disposed at a position on a chord of the substantially circular shape with respect to the inner wall surface of the container that is substantially circular in top view.
7. The sensor according to claim 6, wherein a width of the first surface provided with the electrode unit is less than a diameter of the substantially circular container.
8. The sensor according to claim 5, wherein the container is substantially rectangular in top view, and the first surface is disposed so as to be near one side of the inner wall surface of the container that is substantially rectangular in top view.
9. The sensor according to claim 8, wherein a width of the first surface provided with the electrode unit is less than a diagonal length of the substantially rectangular container.
10. The sensor according to claim 1, wherein the electrode unit includes at least one of a reference electrode, a working electrode, and a counter electrode.
11. The sensor according to claim 1, wherein the main body is substantially L-shaped or substantially inverted T-shaped in front view.
12. A sensor unit, comprising: the sensor according to claim 1; a substrate provided with a plurality of the sensors; and a connection portion that connects the substrate and the sensor.
13. The sensor unit according to claim 12, wherein the plurality of sensors are formed by cutting out a part of the substrate.
14. The sensor unit according to claim 12, further comprising a bottom cover provided below the substrate, and a top cover provided above the substrate, wherein the substrate is sandwiched between the bottom cover and the top cover from above and below.
15. The sensor unit according to claim 14, wherein the bottom cover has through-holes through which the sensors pass downward.
16. A cell culture analysis device, comprising: the sensor unit according to claim 12; and a culture container installation unit on which the sensor unit and the container containing the liquid sample are placed.
17. A sensor that is used in a state of being immersed in a liquid sample inside a container, and that is configured to measure the liquid sample, the sensor comprising: a main body having a first surface and a second surface that is on an opposite side from the first surface; and an electrode unit that is provided on the first surface of the main body and to which a specific voltage is applied during measurement in a state of being immersed in the liquid sample, wherein, in carrying out a measurement, the main body is installed at a position that is offset from a center of the container.
18. A sensor that is used in a state of being immersed in a liquid sample inside a container, and that is configured to measure the liquid sample, the sensor comprising: a main body; a measurement electrode unit that is provided to the main body and to which a specific first voltage is applied during measurement in a state of being immersed in the liquid sample; and an immersion detection electrode unit that is provided above the measurement electrode unit in the main body in a state of being immersed in the liquid sample, and to which a specific second voltage is applied during detection of whether or not the measurement electrode unit is in a state of being immersed in the liquid sample.
19. The sensor according to claim 18, wherein the main body has a first surface to which the measurement electrode unit is provided, and the immersion detection electrode unit is disposed above the measurement electrode unit on the first surface.
20. The sensor according to claim 18, further comprising a protective film that covers at least a part of the measurement electrode unit.
21. The sensor according to claim 18, wherein the measurement electrode unit includes two poles, namely, a working electrode and a counter electrode, or includes three poles, namely, a working electrode, a counter electrode, and a reference electrode.
22. The sensor according to claim 20, wherein the protective film is provided so as to cover at least a working electrode included in the measurement electrode unit.
23. The sensor according to claim 18, wherein the immersion detection electrode unit is disposed directly on a working electrode included in the measurement electrode unit.
24. The sensor according to claim 18, wherein the immersion detection electrode unit is installed so as to match a width of a working electrode included in the measurement electrode unit in a substantially horizontal direction.
25. The sensor according to claim 18, wherein the immersion detection electrode unit has two or three electrodes.
26. The sensor according to claim 18, wherein the immersion detection electrode unit has one electrode, and the second voltage is applied between one electrode of the immersion detection electrode and at least one of the electrodes included in the measurement electrode unit.
27. The sensor according to claim 18, wherein the immersion detection electrode unit extends in a form of a plurality of comb-like teeth substantially parallel to a liquid surface level of the liquid sample.
28. The sensor according to claim 18, wherein the immersion detection electrode unit has a shape whose dimension in a substantially horizontal direction changes in an immersion depth direction in a state of being immersed in the liquid sample.
29. The sensor according to claim 28, wherein the immersion detection electrode unit has a substantially triangular shape.
30. The sensor according to claim 18, wherein a working electrode included in the measurement electrode unit is disposed at a position in the main body that is away from a counter electrode included in the measurement electrode unit.
31. The sensor according to claim 18, wherein the immersion detection electrode unit is disposed in an approximate center portion of the container.
32. A measurement device, comprising: the sensor according to claim 18; a voltage application unit configured to apply the specific first voltage and the specific second voltage to the measurement electrode unit and the immersion detection electrode unit; and a control unit configured to perform measurement on the liquid sample on the basis of a first current value obtained by applying the first voltage to the measurement electrode unit, and detect whether or not the measurement electrode unit is in an immersed state on the basis of a second current value obtained by applying the second voltage to the immersion detection electrode unit.
33. The measurement device according to claim 32, wherein the control unit detects a liquid surface level of the liquid sample on the basis of the second current value obtained by applying the second voltage to the immersion detection electrode unit.
34. The measurement device according to claim 32, wherein the voltage application unit applies a substantially AC voltage to the measurement electrode unit and the immersion detection electrode unit.
35. A sensor unit, comprising: the sensor according to claim 18; a substrate provided with a plurality of the sensors; and a connection portion that connects the substrate and the sensors.
36. The sensor unit according to claim 35, wherein the plurality of sensors are formed by cutting out parts of the substrate.
37. The sensor unit according to claim 35 , further comprising a bottom cover provided below the substrate, and a top cover provided above the substrate, wherein the substrate is configured to be sandwiched between the bottom cover and the top cover from above and below.
38. The sensor unit according to claim 37, wherein the bottom cover has through-holes through which the sensors pass downward.
39. A sensor unit comprising a plurality of sensors that are used in a state of being immersed in a liquid sample contained in a plurality of containers, the sensor unit further comprising: a first sensor provided at a position corresponding to a first container disposed on at least one edge, out of the plurality of containers; and a second sensor provided at a position corresponding to a second container disposed at a position other than that of the first sensor, out of the plurality of containers, wherein the first sensor has an immersion detection electrode unit configured to detect whether or not a measurement electrode of the second sensor immersed in the liquid sample is itself immersed in the liquid sample, and the second sensor has a measurement electrode unit configured to measure the liquid sample.
40. The sensor unit according to claim 39, wherein the first sensors are disposed at positions corresponding to the containers disposed at four corners of a substantially rectangular shape, among a plurality of containers disposed in the substantially rectangular shape.
41. A cell culture analysis device, comprising: the sensor unit according to claim 35; and a culture container installation unit on which are placed the sensor unit and the container in which the liquid sample is contained.
42. The cell culture analysis device according to claim 41, further comprising: an immersion detection unit that is connected to the immersion detection electrode units of the plurality of sensors provided on the substrate, and that is configured to detect an immersion state of the measurement electrode unit with respect to the liquid sample contained in the container; and a display unit configured to display a detection result from the immersion detection unit.
43. A liquid sample measurement method for performing measurement using the sensor according to claim 18, the method comprising: an immersion detection step of applying the second voltage to the immersion detection electrode unit; and a measurement step of applying the first voltage to the measurement electrode unit.
44. The liquid sample measuring method according to claim 43, further comprising a voltage application stoppage step of stopping an application of the second voltage to the immersion detection electrode unit, in between the immersion detection step and the measurement step.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
Embodiment 1
[0232] A sensor 16 according to an embodiment of the present invention, a sensor unit 9 comprising this sensor 16, and a cell culture analysis device 3 will now be described with reference to the appended drawings.
Overview of Cell Culture Device 1
[0233] As shown in
[0234] The cell culture analysis device 3 is disposed in the culture chamber 2 of the cell culture device 1. Although not shown in
Cell Culture Analysis Device 3
[0235] As shown in
[0236] As shown in
[0237] As shown in
[0238] The wells 8 are substantially cylindrical containers having a diameter of 15.1 mm, for example, into which is inserted a sensor 16 having a width of about 7.0 mm. From 0.5 to 1.0 mL of medium (liquid sample) is placed in each well 8, for example.
[0239] Also, the culture container 7 is installed in a state of being positioned in a substantially rectangular recess 6a formed in the cell culture installation unit 6. The recess 6a is a recessed portion formed to match the external shape of the culture container 7, has substantially the same external shape as the culture container 7, and holds the culture container 7 so as not to move in the plane direction.
[0240]
[0241] The control unit 12 applies voltage to the electrode unit 21 of each sensor 16 included in the sensor unit 9, via connection portions 20a and 20b (see
[0242] Information about the cell culture environment in the wells 8 detected by the sensors 16 is transmitted to the control unit 34 via the measurement unit 33 provided inside the control unit 12, and is stored in the storage unit 35. The information about the cell culture environment stored in the storage unit 35 is then transmitted to the communication unit 38 of an external device 37 (such as a personal computer) via the communication unit 36.
[0243] The external device 37 comprises a communication unit 38, a control unit 39, a display unit 40, and an input unit 41 (such as a mouse or a keyboard). In the external device 37, the control unit 39 controls the display unit 40 so that the display unit 40 displays the detected data.
Sensor Unit 9
[0244] As shown in
[0245] As shown in
[0246] That is, as shown in
[0247] As described above, the legs 10 support the sensor unit 9 on the culture container installation unit 6 with a specific gap in between in order to ensure enough space for the culture container 7 over the culture container installation unit 6.
[0248] Here, the support portions that support the sensor unit 9 from below are not limited to legs that are provided to the sensor unit 9. For example, these may be any supports that support the sensor unit 9 from below with respect to the culture container installation unit 6.
[0249] Also, as shown in
[0250] As shown in
[0251] As shown in
[0252] As shown in
[0253] In this embodiment, as shown in
[0254] These support portions 31 have a curved upper surface shape. Also, the pressing portions 32 have a curved lower surface shape.
[0255] Therefore, as shown in
[0256] Consequently, the lateral side portions of the substantially L-shaped sensors 16 (the portion provided with the working electrode 21a, the counter electrode 21b, and the reference electrode 21c) can be stably maintained in a state of being disposed along the substantially horizontal direction.
[0257] Thus, the lateral side portions of the sensors 16 (the portion provided with the working electrode 21a, the counter electrode 21b, and the reference electrode 21c) are held at stable positions in the wells 8 of the culture container 7, and are immersed in the medium inside the wells 8, which allows the culture state to be properly detected.
[0258] Since the bent portions 17 of the sensors 16 are supported from above and below by the support portions 31 and the pressing portions 32, the sensors 16, which are bent at substantially uniform angles with respect to the substrate 13, can be inserted into the wells 8. This allows the sensors 16 to be accurately disposed in the vicinity of the inner peripheral surfaces 8a of the wells 8 (discussed below).
[0259] Also, since the radius of the arc portions of the bent portions 17 of the sensors 16 is defined by the bottom cover 14 and the top cover 15, and excessive stress is not exerted on the bent portions 17, disconnection due to cracking can be prevented.
[0260] As to the method for bending the bent portion 17, either the top cover 15 or the bottom cover 14 may be bent while attached to the substrate 13. Also, heat may be applied to the bent portions 17 during bending. In this case, the top cover 15 or the bottom cover 14 will be unnecessary.
[0261] In this embodiment, as described above, the sensors 16 are formed by cutting out parts of the substrate 13, leaving the bent portions 17, and bending downward with respect to the substrate 13. This eliminates the need for a component for fixing the sensors 16 to the substrate 13, and allows the sensor unit 9 to be more compact.
[0262] Also, as the configuration of the sensors 16, since the sensors 16 and the wiring portion on the substrate 13 can be formed integrally, there is no need for connectors between the sensors 16 and the wiring 19, and this also allows the sensor unit 9 to be more compact.
[0263] Also, the wiring 19 of the substrate 13 is collected as a wiring pattern on the substrate 13 and bundled into the connection portions 20a and 20b. Since the connection portions 20a and 20b are connected to the connector of the control unit 12, there is no need to connect the sensor unit 9 and the control unit 12 with wiring such as lead wires. This allows the cell culture analysis device 3 itself to be more compact.
[0264] As described above, in this embodiment, as shown in
Sensors 16
[0265] The sensors 16 in this embodiment are formed by cutting out parts of the substrate 13 in an approximate L shape, so the sensors are substantially L-shaped as shown in
[0266]
[0267] The substantially L-shaped portions 18 of the substrate 13 shown in
[0268] Also, as shown in
[0269] In this embodiment, as shown in
[0270] Also, detection electrodes (electrode units 21) for detecting the state of the cell culture environment in the wells 8 are formed on the lower lateral side portions of the sensors 16. For example, the sensitivity of the sensors 16 can be improved by increasing the electrode surface area of the electrode units 21 provided as the detection electrodes, as compared to a sensor that is substantially I-shaped.
[0271] That is, since the sensors 16 are substantially L-shaped, they are formed by cutting out from the substrate 13 in a state in which the substantially L-shaped vertical sides are at an angle to the two opposite sides of the substrate 13 with respect to the rectangular substrate 13.
[0272] This allows the vertical side portions (the vertically oriented portion in
[0273] As shown in
[0274] Also, a silver layer (a silver layer and/or a silver chloride layer) is provided on the surface of the reference electrode 21c. A reagent layer formed from an enzyme, a mediator, or the like is provided to the surface of the working electrode 21a. These electrode units 21 are covered with a protective film.
[0275] A sensor 16 analyzes the cell culture environment of the medium when the working electrode 21a, the counter electrode 21b, and the reference electrode 21c is immersed in the liquid sample of the medium in the well 8 so that the concentration of a specific component of the medium is electrochemically detected.
[0276] For example, when detecting the concentration of the glucose component in the medium, the reagent layer immobilized on the surface of the working electrode 21a contains an enzyme (such as GOx) and a redox mediator.
[0277] The principle by which glucose is detected here is that glucose that has permeated from the medium through the protective film is oxidized by an enzymatic reaction with an enzyme (such as GOx) in the reagent layer and becomes gluconolactone, and at the same time, the redox mediator in the reagent layer is reduced into a reductant. The glucose concentration in the medium can be measured by measuring the electrons generated when the reductant returns to an oxidant, as a current value.
[0278] The protective film is provided to limit permeation in order to control the permeation rate of glucose in the medium, while preventing permeation to the detection electrode portions of the sensors 16 and the outflow of enzyme and mediator, which are components of the reagent layer immobilized on the working electrode 21a, to the outside of the protective film.
[0279] The enzyme and mediator are crosslinked and immobilized on the surface of the working electrode 21a. Therefore, the reagent layer is polymerized to have a larger molecular weight. This prevents glucose from permeating and the enzyme and mediator from flowing out from the protective film (see WO 2019/146788 for further details).
[0280] Furthermore, as shown in
[0281] As shown in
[0282] As shown in
[0283] At this point, as shown in
[0284] More specifically, the first surface 23a of the sensor 16 is disposed such that its distance d1 from the inner peripheral surface 8a of the well 8 is 1.0 to 2.0 mm, for example. Also, the first surface 23a is disposed so that the distance d2 from the ends of the sensor 16 to the inner peripheral surface 8a of the well 8 is 1.0 mm, for example.
[0285] Consequently, even if the surface level near the center of the well 8 drops due to the meniscus effect that occurs between the medium (liquid sample) contained in the well 8 and the inner peripheral surface 8a of the well 8, because the main body 16a of the sensor 16 is disposed at a position close to the inner peripheral surface 8a of the well 8, all the electrodes included in the electrode unit 21 can be immersed in the medium L.
[0286] Here, positioning for disposing a plurality of sensors 16 at positions close to the inner peripheral surfaces 8a of a plurality of wells 8 can be performed by placing the legs 10 of the sensor unit 9 in the positioning holes 11 of the culture container installation unit 6, and placing the culture container 7 in the recess 6a of the culture container installation unit 6.
[0287] That is, the positioning of the sensors 16 of the sensor unit 9 with respect to the wells 8 of the culture container 7 is performed by using the recess 6a and the positioning holes 11 formed in the culture container installation unit 6.
[0288] As described above, the sensors 16, which are disposed so as to project from the lower surface side of the sensor unit 9, are then accurately disposed at substantially uniform angles with respect to the lower surface of the sensor unit 9 by means of the support portions 31 and the pressing portions 32.
[0289] Consequently, the sensor unit 9 (sensors 16) can be positioned with respect to the culture container 7 (wells 8) by positioning the culture container 7 and the sensor unit 9 with respect to the culture container installation unit 6. This allows the sensors 16 to be accurately installed at specific positions near the inner peripheral surfaces 8a of the wells 8.
[0290] Therefore, the sensors 16 can be accurately disposed at positions near the inner peripheral surfaces 8a of the wells 8.
[0291] Also, the width of the first surface 23a of the main body 16a of a sensor 16 is less than the diameter of the circle of the well 8 that is substantially circular in top view.
[0292] Consequently, the sensors 16 can be disposed in a state in which the first surfaces 23a are brought close to the inner peripheral surfaces 8a of the wells 8.
[0293] As shown in
[0294] That is, because the first surface 23a of the main body 16a of a sensor 16 is disposed near the inner peripheral surface 8a of the well 8, the liquid holding portion 22 holds the medium up to a position that is higher than on the second surface 23b side by means of the surface tension generated in the medium (liquid sample).
[0295] Consequently, even if the surface level near the center of a well 8 drops due to the meniscus effect that occurs between the medium (liquid sample) contained in the well 8 and the inner peripheral surface 8a of the well 8, the surface level will be pushed up on the first surface 23a side where the electrode unit 21 is provided, allowing all of the electrodes contained in the electrode unit 21 to be immersed in the medium L.
[0296] As described above, the sensor 16 of this embodiment is disposed at a position that is offset from the center O of the well 8 that is substantially circular in top view so that the electrode unit 21 will be sufficiently immersed in the medium.
[0297] That is, the sensor 16 is disposed away from the vicinity of the center of the well 8 where the surface level drops due to the meniscus effect that occurs between the medium (liquid sample) contained in the well 8 and the inner peripheral surface 8a of the well 8.
[0298] Consequently, even when the surface level of the medium is lower than that near the inner peripheral surface 8a due to the meniscus effect, since the sensor 16 is disposed near the inner peripheral surface 8a where the surface level is high, all of the electrodes included in the electrode unit 21 can be immersed in the medium L.
Embodiment 2
[0299] The sensor according to another embodiment of the present invention, as well as a measurement device, a sensor unit, a cell culture analysis device, and a liquid sample measuring method comprising this sensor, will be now described with reference to
Overview of Cell Culture Device 1
[0300] As shown in
[0301] The cell culture analysis device 3 is disposed inside the culture chamber 2 of the cell culture device 1. Although not shown in
Cell Culture Analysis Device 3
[0302] As shown in
[0303] As shown in
[0304] The display units 1038 are disposed at positions corresponding to the sensors 1016 immersed in the medium in the 24 wells 1008 included in the culture container 1007. The display units 1038 have a one-to-one correspondence with the sensors 1016, and when the immersion state of the measurement-use electrode units 1021 (discussed below) is detected, these display units 1038 are controlled by a control unit 1034 to emit light of a specific color (such as red).
[0305] Consequently, the user can recognize on the display unit 1038, from the outside of the cell culture analysis device 3, that the measurement-use electrode unit 1021 is in an unimmersed state when, for example, light of a specific color is not displayed, or when the display is blinking, or when light of a different color is displayed.
[0306] As shown in
[0307] The wells 1008 are substantially cylindrical containers having a diameter of 15.1 mm, into which a sensor 1016 having a width of about 7.0 mm is inserted, for example. The medium (liquid sample) that is put in each well 1008 has a volume of 0.5 to 1.0 mL, for example.
[0308] Also, the culture container 1007 is installed in a state of being positioned in a substantially rectangular recess 1006a formed in the culture container installation unit 1006. The recess 1006a is a recessed portion formed to match the outer shape of the culture container 1007, has substantially the same outer shape as the culture container 1007, and holds the culture container 1007 so as not to move in the plane direction.
[0309]
[0310] That is, as shown in
[0311] The control unit 1012 applies voltage to the electrode unit (measurement electrode unit) 1021 of each sensor 1016 included in the sensor unit 1009 via connection portions 1020a and 1020b (see
[0312] Information about the cell culture environment in the wells 1008 detected by the sensors 1016 is transmitted to the control unit 1034 via the measurement unit 1033 provided in the control unit 1012, and is stored in the storage unit 1035. As shown in
[0313] The external device 1040 comprises a communication unit 1041, a control unit 1042, a display unit 1043, and an input unit 1044 (such as a mouse or a keyboard). In the external device 1040, the control unit 1042 controls the display unit 1043 so that the display unit 1043 displays the detected data.
Sensor Unit 1009
[0314] As shown in
[0315] As shown in
[0316] That is, the legs 1010 for ensuring a space for accommodating the plurality of wells 1008 included in the culture container 7 are provided on the lower surface side of the sensor unit 1009, over the culture container installation unit 1006. The sensor unit 1009 is disposed on the culture container installation unit 1006 by means of the legs 1010.
[0317] As described above, the legs 1010 support the sensor unit 1009 on the culture container installation unit 1006 with a specific gap in between in order to ensure enough space for the culture container 7 over the culture container installation unit 6.
[0318] Here, the support portions that support the sensor unit 1009 from below are not limited to legs that are provided to the sensor unit 1009. For example, these may be any supports that support the sensor unit 1009 from below with respect to the culture container installation unit 6100.
[0319] Also, as shown in
[0320] As shown in
[0321] As shown in
[0322] As shown in
[0323] In this embodiment, as shown in
[0324] These support portions 31 have a curved upper surface shape. Also, the pressing portions 32 have a curved lower surface shape.
[0325] Therefore, as shown in
[0326] Consequently, the lateral side portions of the substantially L-shaped sensors 1016 (the portion provided with the working electrode 1021a and the counter electrode 1021b) can be stably maintained in a state of being disposed along the substantially horizontal direction.
[0327] Thus, the lateral side portions of the sensors 1016 (the portion provided with the working electrode 1021a and the counter electrode 1021b) are held at stable positions in the wells 1008 of the culture container 1007, and are immersed in the medium inside the wells 1008, which allows the culture state to be properly detected.
[0328] Since the bent portions 1017 of the sensors 1016 are supported from above and below by the support portions 1031 and the pressing portions 1032, the sensors 1016, which are bent at substantially uniform angles with respect to the substrate 1013, can be inserted into the wells 1008. This allows the sensors 1016 to be accurately disposed at specific positions within the wells 1008 (discussed below).
[0329] Also, since the radius of the arc portions of the bent portions 1017 of the sensors 1016 is defined by the bottom cover 1014 and the top cover 1015, and excessive stress is not exerted on the bent portions 1017, disconnection due to cracking can be prevented.
[0330] As to the method for bending the bent portion 1017, either the top cover 1015 or the bottom cover 1014 may be bent while attached to the substrate 1013. Also, heat may be applied to the bent portions 1017 during bending. In this case, the top cover 1015 or the bottom cover 1014 will be unnecessary.
[0331] In this embodiment, as described above, the sensors 1016 are formed by cutting out parts of the substrate 1013, leaving the bent portions 1017, and bending downward with respect to the substrate 1013. This eliminates the need for a component for fixing the sensors 1016 to the substrate 1013, and allows the sensor unit 1009 to be more compact.
[0332] Also, as the configuration of the sensors 1016, since the sensors 1016 and the wiring portion on the substrate 1013 can be formed integrally, there is no need for connectors between the sensors 1016 and the wiring 1019, and this also allows the sensor unit 1009 to be more compact.
[0333] Also, the wiring 1019 of the substrate 1013 is collected as a wiring pattern on the substrate 1013 and bundled into the connection portions 1020a and 1020b. Since the connection portions 1020a and 1020b are connected to the connector of the control unit 1012, there is no need to connect the sensor unit 1009 and the control unit 1012 with wiring such as lead wires. This allows the cell culture analysis device 3 itself to be more compact.
[0334] As described above, in this embodiment, as shown in
Sensors 1016
[0335] The sensors 1016 in this embodiment are formed by cutting out parts of the substrate 1013 in an approximate L shape, so the sensors are substantially L-shaped as shown in
[0336]
[0337] The substantially I-shaped portions 1018 of the substrate 13 shown in
[0338] Also, as shown in
[0339] In this embodiment, as shown in
[0340] Also, below a sensor 1016 is formed an electrode unit 1021 for detecting the state of the cell culture environment in the well 1008 (such as the concentration of the specific component contained in the medium L).
[0341] This ensures that the vertical side portion of the sensor 1016 (the portion extended along the vertical direction in
[0342] As shown in
[0343] Also, a reagent layer formed from an enzyme, a mediator, etc., is provided on the surfaces of the working electrode 1021a and the counter electrode 1021b. The electrode unit 1021 including the working electrode 1021a and the counter electrode 1021b is covered by a protective film 1024.
[0344] The sensor 1016 analyzes the cell culture environment of the medium when the working pole 1021a and the counter pole 1021b are immersed in the medium L in the well 1008, so that the concentration of a specific component of the medium is electrochemically detected.
[0345] For example, when detecting the concentration of the glucose component contained in the medium, the reagent layer immobilized on the surface of the working electrode 1021a contains an enzyme (such as GOx) and a redox mediator.
[0346] The principle behind this glucose detection is that glucose that permeates from the medium through the protective film 1024 is oxidized by an enzymatic reaction with the enzyme (such as GOx) in the reagent layer to become gluconolactone, and at the same time the redox mediator in the reagent layer is reduced to become a reductant. The glucose concentration in the medium can be measured by measuring, as a current value, the electrons generated when this reductant goes back to being an oxidant.
[0347] The protective film 1024 is provided to limit permeation so as to control the permeation rate of glucose in the medium, and to cause glucose to permeate into the detection electrode units of the sensors 1016. Furthermore, the protective film 1024 is provided to prevent the enzyme and the mediator, which are components of the reagent layer immobilized on the working electrode 1021a, from flowing out to the outside of the protective film 1024 (into the medium).
[0348] The enzyme and the mediator are cross-linked and immobilized on the surface of working electrode 1021a. Therefore, the reagent layer is polymerized and has a large molecular weight. Consequently, glucose can permeate the reagent layer, but the enzyme and mediator can be prevented from permeating through the protective membrane 1024 and flowing out (see WO 2019/146788 for more details).
[0349] Furthermore, as shown in
[0350] As shown in
[0351] When a specific voltage is applied to the electrode unit 1021 to measure the medium, the sensor 1016 is disposed in the center (near the center O) of the well 1008 that is substantially circular in top view, as shown in
[0352] Here, as shown in
[0353] Here, positioning for disposing the plurality of sensors 1016 near the center O of the plurality of wells 1008 is accomplished by placing the above-mentioned legs 1010 of the sensor unit 1009 in the positioning holes 1011 of the culture container installation unit 1006, and placing the culture container 1007 in the recess 1006a of the culture container installation unit 1006.
[0354] That is, the positioning of the sensors 1016 of the sensor unit 1009 with respect to the wells 1008 of the culture container 1007 is performed by using the recess 1006a and the positioning holes 1011 formed in the culture container installation unit 1006.
[0355] As described above, the sensors 1016, which are disposed so as to project from the lower surface side of the sensor unit 1009, are accurately disposed at a substantially uniform angle with respect to the lower surface of the sensor unit 1009, by means of the support portions 1031 and the pressing portions 1032.
[0356] Consequently, the sensor unit 1009 (the sensors 1016) can be positioned with respect to the culture container 1007 (the wells 1008) by positioning the culture container 1007 and the sensor unit 1009. This allows the sensors 1016 to be accurately installed at a position near the center O of each well 1008.
[0357] Therefore, the sensors 1016 can be accurately disposed in the wells 1008.
[0358] Also, with the sensor 1016 in this embodiment, the immersion detection electrode unit 1022 is disposed on the working electrode 1021a included in the measurement-use electrode unit 1021.
[0359] Here, the change in the immersion state of the working electrode 1021a in the medium L tends to affect the current value measured by applying a voltage to the electrode unit 1021, more than with the other electrodes (the counter electrode 1021b, etc.). Therefore, with the sensor 16 in this embodiment, the immersion detection electrode unit 1022 is disposed on the working electrode 1021a in order to reliably detect the immersion state of the working electrode 1021a, which tends to affect the measurement due to a change in the immersion state.
[0360] Consequently, the immersion state of the working electrode 1021a can be reliably detected by applying a voltage to the first electrode 1022a and the second electrode 1022b of the immersion detection electrode unit 1022.
[0361] As shown in
[0362] More precisely, as shown in
[0363] The current meter 1012b includes a resistor, an operational amplifier, and an A/D (analog/digital) converter 1012e, and detects a minute current flowing between the first electrode 1022a and the second electrode 1022b.
[0364] The current value measured by the current meter 1012b increases proportionally with the surface area in which the first electrode 1022a and the second electrode 1022b are immersed in the medium L.
[0365] Consequently, when the current value detected by the current meter 1012b is at or above a specific threshold value, for example, it can be detected that the immersion detection electrode unit 1022 is immersed in the medium L, that is, that the measurement-use electrode unit 1021 disposed directly under the immersion detection electrode unit 1022 is immersed in the medium L.
[0366] As shown in
[0367] Also, as described above, the two electrodes (first electrode 1022a and second electrode 1022b) constituting the immersion detection electrode unit 1022 are installed so as to match the width of the working electrode 1021a. Therefore, at least whether or not the working electrode 1021a, which affects the measurement result, is in an immersed state can be detected by applying a specific voltage to the immersion detection electrode unit 1022 and detecting the immersion state thereof.
[0368] As shown in
[0369] Here, the current value measured in order to detect the immersion state of the measurement-use electrode unit 1021 is converted from current to voltage in a transimpedance circuit on the second electrode 1022b side shown in
[0370] At this point, if the immersion depth of the first electrode 1022a and the second electrode 1022b changes in the direction of becoming shallower over time, the current value detected by the current meter 1012b is changes in the direction of becoming smaller, as shown in
[0371] More specifically, if the immersion state is varied such that from 0 to 20 seconds on the horizontal axis shown in
[0372] Consequently, even when the surface level of the medium L has dropped as shown in
[0373] Consequently, it can be detected that part of the measurement-use electrode part 1021 (such as a part of the working electrode 1021a and a part of the counter electrode 1021b) disposed below the lower end of the immersion detection electrode part 1022 is not immersed, and measures can be taken, such as adding more of the medium L or increasing the immersion depth of the sensor 1016.
[0374] As a result, it is possible to prevent measurement from being performed in a state in which part of the measurement-use electrode unit 1021 (such as a part of the working electrode 1021a and a part of the counter electrode 1021b) is not immersed, which would lower measurement accuracy.
[0375] Also, in this embodiment, as described above, the voltage application unit 1012a applies the AC wave (square wave) voltage shown in
[0376] Consequently, a larger current value can be obtained as compared to when a DC wave voltage is applied, and the S/N ratio and the detection speed can be improved.
Method for Measuring Liquid Sample
[0377] In the measurement method of this embodiment, processing is performed according to the flowchart shown in
[0378] In step S11, the voltage application unit 1012a applies a specific voltage (second voltage) to the immersion detection electrode unit 1022 (first electrode 1022a and second electrode 1022b) in order to detect the immersion state of the measurement-use electrode unit 1021.
[0379] Next, in step S12, the immersion state of the measurement-use electrode unit 1021 is detected according to the current value sensed by the current meter 1012b.
[0380] Next, in step S13, it is determined from the detection result in step S12 whether or not the measurement-use electrode unit 1021 is in an immersed state. If the answer is Yes, the processing proceeds to step S14, and if the answer is No because there is too little medium L or for another such reason, the processing proceeds to step S17.
[0381] Next, in step S14, since it was determined in step S13 that the measurement-use electrode unit 1021 is in an immersed state, the voltage application unit 1012a stops applying the second voltage to the detection electrode unit 1022 in order to begin measuring the medium (liquid sample) L.
[0382] Next, in step S15, the voltage application unit 1012a applies the measurement-use first voltage to the measurement-use electrode unit 1021.
[0383] Next, in step S16, the concentration of a specific component (glucose) contained in the medium L is measured according to the current value detected by the current meter 1012b, and the processing is ended.
[0384] On the other hand, if it is determined in step S13 that the measurement-use electrode unit 1021 is not in an immersed state, in step S17 the above-mentioned display unit 1038 is used to display a warning at the position corresponding to the sensor 1016 determined not to be in an immersed state.
[0385] Here, the warning display on the display unit 1038 includes, for example, that a light of a specific color to be lit when a normal immersion state is detected is not turned on (stays off), or that the light is flashed, or that light of a different color is turned on.
[0386] This makes it easy for the user to recognize at which position the measurement-use electrode unit 1021 of a sensor 1016 placed in a well 1008 is not immersed in the medium L.
[0387] As a result, the user can take measures such as adding more medium L to the well 1008 in which the sensor 1016 at the corresponding position is installed, ignoring the measurement result from the sensor 1016 at the corresponding position, and so forth. This makes it possible to improve measurement accuracy by preventing a decrease in measurement accuracy attributable to the immersion state of the measurement-use electrode unit 1021 in measurement using the sensor 1016.
Embodiment 3
[0388] The configuration of a sensor 1116 according to yet another embodiment of the present invention will now be described with reference to
[0389] In this embodiment, three electrodes (the first electrode 1122a, second electrode 1122b, and third electrode 1122c) are used as the immersion detection electrode unit 1122 for detecting the immersion state of the measurement-use electrode unit 1021, and differs in this respect from Embodiment 2 above in which two electrodes (the first electrode 22a and second electrode 22b) are used.
[0390] That is, as shown in
[0391] Of the three electrodes 1122a to 1122c, the first electrode 1122a and the third electrode 1122c are disposed near the two ends in the width direction of the main body 1116a of the sensor 1116, directly above the measurement-use electrode unit 1021. The second electrode 1122b is disposed near the approximate center in the width direction of the main body 1116a of the sensor 1116, directly above a position between the working electrode 1021a and the counter electrode 1021b of the measurement-use electrode unit 1021.
[0392] As shown in
[0393] This makes it possible to accurately detect whether or not the working electrode 1021a and the counter electrode 1021b included in the measurement electrode unit 1021 shown in
Embodiment 4
[0394] The configuration of a sensor 1216 according to yet another embodiment of the present invention will now be described with reference to
[0395] In this embodiment, the immersion detection electrode unit 1222 for detecting the immersion state of the measurement-use electrode unit 1021 is a combination of one electrode (a first electrode 1222a) and the working electrode 1021a of the measurement-use electrode unit 1021, and differs in this respect from Embodiment 2 above in which two electrodes (the first electrode 22a and the second electrode 22b) are used.
[0396] That is, as shown in
[0397] The first electrode 1222a is disposed near the end in the width direction of the main body 1216a of the sensor 1216 on the side where the working electrode 1021a is disposed, directly above the working electrode 1021a.
[0398] As shown in
[0399] This makes it possible to accurately detect whether or not the working electrode 1021a included in the measurement-use electrode unit 1021 shown in
[0400] The configuration of the sensor 1216 can be simplified by using one first electrode 1222a as the immersion detection electrode unit 1222, and using a circuit including the working electrode 1021a of the measurement-use electrode unit 1021 to help with immersion detection.
Embodiment 5
[0401] The configuration of a sensor 1316 according to yet another embodiment of the present invention will now be described with reference to
[0402] In this embodiment, of the working electrode 1021a and the counter electrode 1021b constituting the measurement-use electrode unit 1021, only the working electrode 1021a is covered with the protective film 1324, and this differs from Embodiment 4 above in which the working electrode 1021a and the counter electrode 1021b are both covered by the protective film 1024. Furthermore, this embodiment differs from Embodiments 2 to 4 above in that in performing immersion detection, voltage is applied between the first electrode 1322a of the immersion detection electrode unit 1322 and the counter electrode 1021b by using the counter electrode side circuit 1312c.
[0403] That is, as shown in
[0404] The protective film 1324 is disposed so as to cover only the working electrode 1021a provided near the end portion in the width direction of the main body 1316a of the sensor 1316.
[0405] As shown in
[0406] This makes it possible to accurately detect whether or not the measurement electrode unit 1021 shown in
[0407] The configuration of the sensor 1316 can be simplified by using one first electrode 1322a as the immersion detection electrode unit 1322, and using a circuit including the counter electrode 1021b of the measurement-use electrode unit 1021 to help with immersion detection, and providing the protective film 1324 on only the working electrode 1021a side.
[0408] As described above, the protective film 1324 is provided so that the components contained in the reagent layer provided on the working electrode 1021a will not dissolve into the medium L, and is therefore preferably provided so as to cover at least the working electrode 1021a.
[0409] On the other hand, since the counter electrode 1021b is not provided with a reagent layer, when voltage is applied between the first electrode 1322a and the counter electrode 1021b, the immersion state of the working electrode 1021a can be detected as soon as the sensor 1316 is immersed in the medium L, without any waiting time for permeating through the protective film. Consequently, the immersion state can be detected more quickly than when voltage for immersion detection is applied between the first electrode 1322a and the working electrode 1021a.
Embodiment 6
[0410] The configuration of a sensor 1416 according to yet another embodiment of the present invention will now be described with reference to
[0411] In this embodiment, the immersion detection electrode unit 1422 is a comb shape that includes a plurality of comb teeth 1422a, and therefore differs from the above Embodiments 2 to 5 in which the electrodes 1022a, 1022b, etc., having a simple shape (substantially rectangular) are used.
[0412] That is, as shown in
[0413] Since these comb teeth 1422a extend along substantially the horizontal direction in a state of being installed in the well 8, they are installed substantially parallel to the surface level of the medium L in the well 8.
[0414] Therefore, whenever the surface level of the medium L becomes lower than that of the comb teeth 1422a, the current value detected by the current meter when a second voltage is applied between the working electrode 1421a and the immersion detection electrode unit 1422 will change with a large slope.
[0415] For example, when there is a change from a state in which the surface level is higher than the three comb teeth 1422a shown in
[0416] Here, parts (a) to (d) in
[0417] Consequently, when the immersion detection electrode unit 1422 has a shape including the plurality of comb teeth 1422a, not only the detection of the immersion of the measurement electrode unit, but also the detection of the surface level of the medium L can be performed.
Embodiment 7
[0418] The configuration of a sensor 1516 according to yet another embodiment of the present invention will now be described with reference to
[0419] In this embodiment, the electrode 1522a of the immersion detection electrode unit 1522 has a downward-facing triangular shape, which differs from the above Embodiments 2 to 6 in which the electrodes 22a and 22b, etc., have a simple shape (substantially rectangular).
[0420] That is, as shown in
[0421] Since the electrode 1522a has a long triangular shape in the immersion depth direction, the dimension in the width direction changes in the immersion depth direction. That is, the surface area of the electrode 1522a immersed in the medium L increases along a quadratic curve as the degree of immersion increases.
[0422] Therefore, amount of change in the current value detected by the electrode 1522a whose width changes in the immersion depth direction can be amplified according to the change in the surface level of the medium L.
[0423] That is, as shown in
[0424] On the other hand, as shown in
[0425] Also, as shown in
[0426] As a result, a change in the surface level at the desired depth can be detected more precisely by selecting the shape of the electrodes of the immersion detection electrode unit, taking into account the position of the immersion depth to be detected and so forth.
Embodiment 8
[0427] The configuration of the sensor 1616 according to yet another embodiment of the present invention will now be described with reference to
[0428] This embodiment differs from the above Embodiments 2 to 7 in that the lower portion of the main body 1616a of the sensor 1616 is divided into two forks, the working electrode 1621a of the measurement-use electrode unit 1621 is covered by the protective film 1624 on the first surface 1623aa of one of the two forks, and the counter electrode 1621b of the electrode unit 1621 and the electrode 1622a of the immersion detection electrode unit 1622 are provided on the other first surface 1623ab.
[0429] That is, in the sensor 1616 of this embodiment, as shown in
[0430] Here, when the immersion detection electrode unit 1622 is used to detect the immersion state of the measurement-use electrode unit 1621, a specific voltage (second voltage) may be applied between the electrode 1622a and the counter electrode 1621b, and the current flowing therebetween measured.
[0431] Consequently, the electrodes used for immersion detection (the electrode 1622a and the counter electrode 1621b) are disposed at positions separated from the working electrode 1621a, which needs to be covered by the protective film 1624. Therefore, the electrodes used for immersion detection (the electrode 1622a and the counter electrode 1621b) are not covered by the protective film 1624.
[0432] As a result, the surface area of the electrodes used for immersion detection can be increased, so measurement sensitivity can be increased. Also, during manufacture, even if the protective film 1624 is formed so as to cover only the working electrode 1621a, the manufacturing can still be easily performed.
Embodiment 9
[0433] The arrangement of the sensors 1716 according to yet another embodiment of the present invention will now be described with reference to
[0434] In this embodiment, a three-pole configuration including the working electrode 1721a, the counter electrode 1721b, and the reference electrode 1721c is employed as the measurement-use electrode unit 1721, and differs in this respect from the above Embodiments 2 to 8 in which a two-pole configuration including a working electrode and a counter electrode is employed as the measurement-use electrode.
[0435] That is, as shown in
[0436] The working electrode 1721a, the counter electrode 1721b, and the reference electrode 1721c are covered by the protective film 1724. The protective film 1724 may be provided so as to cover only the working electrode 1721a as in the embodiments described above.
[0437] Furthermore, the electrode 1722a of the immersion detection electrode unit 1722 is disposed directly above the working electrode 1721a.
[0438] Consequently, in the detection of the immersion state of the measurement-use electrode unit 1721, a specific voltage (second voltage) is applied between the electrode 1722a of the immersion detection electrode unit 1722 and the working electrode 1721a or the counter electrode 1721b or the reference electrode 1721c, and the current flowing therebetween is measured.
[0439] Consequently, the effect obtained with the present invention as described above can also be obtained with the sensor 1716 including the measurement-use electrode unit 1721 having a three-pole configuration including the working electrode 1721a, the counter electrode 1721b, and the reference electrode 1721c.
Embodiment 10
[0440] The configuration of the sensor 1816 according to yet another embodiment of the present invention will now be described with reference to
[0441] This embodiment differs from the above Embodiments 2 to 9 in that the sensor 1816 is used in a state of being bent in two places, wherein a working electrode 1821a and a reference electrode 1821c constituting a measurement-use electrode unit are disposed at one end (first end) side in the lengthwise direction of the first surface 1823a of the main body 1816a, and a counter electrode 1821b and an immersion detection electrode unit 1822 (electrode 1822a) are disposed at the other end (second end).
[0442] That is, as shown in
[0443] Connection pads 1825 that are connected to the electrical circuit of the control unit 1012 is provided between the two fold lines.
[0444] Consequently, the electrodes used for immersion detection (the electrode 1822a and the counter electrode 1821b) are disposed at positions separated from the working electrode 1821a, which needs to be covered by the protective film 1824. Therefore, the electrodes used for immersion detection (electrode 1822a and counter electrode 1821b) are not covered by the protective film 1824.
[0445] As a result, the surface area of the electrodes used for immersion detection can be increased, so measurement sensitivity can be increased. Also, during manufacture, even if the protective film 1824 is formed so as to cover only the working electrode 1821a, the manufacturing can still be easily performed.
[0446] In addition, a plurality of the sensors 1816 shown in
[0447] In this case, a plurality of sensors can be provided for a single substrate. Furthermore, even when the protective film 1824 is provided so as to cover the working electrode 1821a and the reference electrode 1821c, the protective film 1824 covering the working electrode 1821a, etc., grouped together on one end side can be easily formed, so manufacturing is easier.
Embodiment 11
[0448] The configuration of the sensor 1916 according to yet another embodiment of the present invention will now be described with reference to
[0449] This embodiment differs from the above Embodiments 2 to 10 in that a counter electrode 1921b constituting a measurement-use electrode unit 1921 is provided so as to extend above a working electrode 1921a and a reference electrode 1921c.
[0450] This embodiment also differs from Embodiments 2 to 10 in that an electrode 1922a of an immersion detection electrode unit 1922 is provided so as to extend from a height position substantially equal to that of the measurement-use electrode unit 1921 to above the working electrode 1921a of the electrode unit 1921, etc.
[0451] That is, in the sensor 1916 of this embodiment, as shown in
[0452] Consequently, by applying a specific voltage (second voltage) between the electrode 1922a and the counter electrode 1921b and measuring the current flowing between them, it is easy to detect whether or not the working electrode 1921a is in an immersed state.
[0453] In particular, in this embodiment, the electrode 1922a of the immersion detection electrode unit 1922 has an elongated shape in the immersion depth direction. Therefore, when the surface level of the medium L changes, the surface area of the electrode 1922a immersed in the medium L also changes, so the magnitude of the detected current value also changes.
[0454] Consequently, measuring the current value allows not only the immersion state of the working electrode 1921a to be detected, but also the surface level of the medium L.
[0455] In the sensor 1916 of this embodiment, the protective film 1924 is formed so as to cover the vicinity of the lower end portion of the main body 1923a. More precisely, the protective film 1924 is formed to cover the entire working electrode 1021a and reference electrode 1921c, and to cover the lower half of the counter electrode 1921b and the electrode 1922a.
[0456] Consequently, immersion detection can be carried out more efficiently by utilizing the upper half regions of the electrode 1922a and the counter electrode 1921b, which perform immersion detection, that are not covered by the protective film 1924.
Embodiment 12
[0457] The configuration of the sensor 2016 according to yet another embodiment of the present invention will now be described with reference to
[0458] In this embodiment, the lower part of the main body 2016a is divided into two forks, the working electrode 1021a and the reference electrode 1021c of the measurement-use electrode unit 2021 are provided in a state of being covered by the protective film 1024 on a first surface 2023aa which (one of the two forks), and the counter electrode 2021b of the electrode unit 2021 and the electrode 2022a of the immersion detection electrode unit 2022 are provided on the other first surface 2023ab, and in this respect differs from the above the sensor 1616 of Embodiment 8 in which no reference electrode is included.
[0459] That is, with the sensor 2016 of this embodiment, as shown in
[0460] Consequently, since the counter electrode 2021b and the electrode 2022a used for immersion detection are not covered by the protective film, there is no need for a waiting time until the components of the medium permeate through the protective film, and the processing speed of immersion detection can be improved.
[0461] Also, since the working electrode 2021a that requires the protective film 2024 and the counter electrode 2021b side that does not require the protective film are provided at positions separated from each other on the main body 2016a, the manufacturing process can be simplified in the formation of the protective film 2020 so as to cover the working electrode 2021a.
Embodiment 13
[0462] The configuration of the sensor 2116 according to yet another embodiment of the present invention will now be described with reference to
[0463] In this embodiment, two electrodes 2122a and 2122b that are connected to the control unit 2112 and provided in the main body 2116a are used as the immersion detection electrode unit 2122, and in this respect differs from the above Embodiments 2 to 12 in which the sensor configuration includes a measurement-use electrode unit.
[0464] That is, as shown in
[0465] As shown in
[0466] That is, in this embodiment, the sensors 2116 shown in
[0467] Here, since the wells 2008a disposed at the four corners where the sensors 2116 are installed have a larger surface area in contact with the outside air, the medium L or other such liquid sample contained therein is more likely to evaporate. That is, the liquid sample evaporates faster and the surface level is more likely to drop in the wells 2008a than in the other wells 2008b.
[0468] Therefore, installing the sensors 2116 including the immersion detection electrode unit 2122 in the wells 2008a disposed at the four corners, where the surface level of the liquid sample tends to be the lowest, makes it possible to determine whether the measurement electrode units of the sensors installed in the other wells are sufficiently immersed.
[0469] In this embodiment, as shown in
Other Embodiments
[0470] Embodiments of the present invention were described above, but the present invention is not limited to or by the above embodiments, and various modifications are possible without departing from the gist of the invention.
A
[0471] In the above embodiments, an example was given in which the portion of the main body 16a of the sensor 16 serving as the liquid holding portion 22 on the first surface 23a was mainly provided on the upper portion of the electrode unit 21. However, the present invention is not limited to this.
[0472] For instance, the configuration may be such that the liquid holding portion is provided from the side to above the electrode unit on the first surface.
B
[0473] In the above embodiments, an example was given in which the sensor 16 had the main body 16a having a substantially plate-like shape. However, the present invention is not limited to this.
[0474] For instance, the shape of the main body of the sensor is not limited to being substantially plate shaped, and may instead be some other shape, such as a substantially cuboid shape.
C
[0475] In the above embodiments, an example was given in which the sensor 16 was substantially L-shaped. However, the present invention is not limited to this.
[0476] For instance, the substantially I-shaped sensor 116 shown in
[0477] In the case of the substantially I-shaped sensor 116 shown in
[0478] In the case of the substantially inverted T-shaped sensor 216 shown in
D
[0479] In the above embodiments, an example was given in which the distance between the first surface 23a and the inner peripheral surface 8a of the well 8 capable of effectively holding the liquid sample (medium) in the liquid holding portion 22, that is, the proximity where surface tension is generated in the liquid sample, was a distance of 1 to 2 mm. However, the present invention is not limited to this.
[0480] For instance, the distance at which the liquid sample can be effectively held in the liquid holding portion may be larger or smaller than 1 to 2 mm, depending on the type of the liquid sample, etc.
E
[0481] In the above embodiments, an example was given in which one sensor 16 was installed in one well 8 included in the culture container 7. However, the present invention is not limited to this.
[0482] For instance, the configuration may be such that two or more sensors are installed in one well (container). In this case, the inside diameter of the well (container) may be increased and a plurality of sensors installed in the vicinity of the inner peripheral surface.
F
[0483] In the above embodiments, an example was given in which the sensors 16 were immersed in containers (wells 8) having a substantially circular shape (substantially cylindrical shape) in top view, and the cell culture environment of the medium was analyzed. However, the present invention is not limited to this.
[0484] For instance, the container in which the sensor is immersed is not limited to a substantially cylindrical container, and may instead be the container 108 having a substantially rectangular shape (such as a substantially square shape) in the top view shown in
[0485] In this case, it is preferable to use a sensor 16 in which the width of the portion provided with the electrode unit is less than the length of a diagonal line of the substantially square container 108 in top view.
[0486] Consequently, the sensor 16 can be disposed so that the first surface 23a is close to the inner wall surface 108a of the substantially rectangular container 108.
G
[0487] In the above embodiments, an example was given in which the electrode unit 21 to which voltage was applied included the working electrode 21a, the counter electrode 21b, and the reference electrode 21c. However, the present invention is not limited to this.
[0488] For instance, the type of electrode constituting the electrode unit is not limited to the configuration of the above embodiments, and other types of electrodes may be provided instead.
H
[0489] In the above embodiments, an example was given in which a plurality of sensors 16 were formed by cutting out parts of a single substrate 13. However, the present invention is not limited to this.
[0490] For instance, the configuration may be such that one sensor is provided on the substrate, or the configuration may be such that the substrate and the sensor are connected by adhesive bonding, welding, or some other such means.
I
[0491] In the above embodiments, an example was given in which a medium for performing cell culture was used as the liquid sample. However, the present invention is not limited to this.
[0492] For instance, the liquid sample is not limited to a medium for performing cell culture, and may instead be a liquid sample that will be analyzed, etc.
J
[0493] In the above embodiments, an example was given in which all the electrodes constituting the electrode unit 21 (working electrode 21a, counter electrode 21b, reference electrode 21c) were provided on the first surface 23a of the main body 16a of the sensor 16. However, the present invention is not limited to this.
[0494] For instance, the configuration may be such that among the electrodes constituting the electrode unit, only the working electrode is provided on the first surface, and the counter electrode and the reference electrode are provided on the second surface.
[0495] That is, the configuration may be such that at least one of the electrodes constituting the electrode unit is disposed.
K
[0496] In Embodiment 2 above, an example was given in which an electrode unit 1021 for measuring a liquid sample and an immersion detection electrode unit 1022 were provided on the first surface 1023a of the main body 1016a of the sensor 1016. However, the present invention is not limited to this.
[0497] For instance, the configuration may be such that the measurement electrode unit for measuring the liquid sample and the immersion detection electrode unit for detecting the immersion state of the measurement electrode unit are provided on different surfaces of the main body of the sensor.
L
[0498] In Embodiment 2 above, an example was given in which all the electrodes constituting the electrode unit 1021 (working electrode 1021a and counter electrode 1021b) were provided on the first surface 1023a of the main body 1016a of the sensor 1016. However, the present invention is not limited to this.
[0499] For instance, the configuration may be such that among the electrodes constituting the electrode unit, only the working electrode is provided on the first surface, and the counter electrode and the reference electrode are provided on the second surface.
[0500] That is, the configuration may be such that at least one of the electrodes constituting the electrode unit is disposed.
M
[0501] In Embodiment 2 above, an example was given in which, in measuring the medium (liquid sample), a voltage was applied to the immersion detection electrode unit 1022 in order to detect the immersion state of the measurement electrode unit 1021, and then the application of voltage was temporarily stopped, after which voltage was applied to the measurement-use electrode unit 1021. However, the present invention is not limited to this.
[0502] For instance, the immersion detection and the measurement may be performed at the same time without providing any voltage non-application period between the immersion detection and the measurement.
N
[0503] In Embodiment 2 above, an example was given in which the sensor 1016 was disposed near the approximate center of the well 1008 to detect the immersion state and measure. However, the present invention is not limited to this.
[0504] For instance, as shown in
[0505] In this case, the electrode 1022a of the immersion detection electrode unit 1022 is disposed near the approximate center of the well 1008, where the surface level of the medium L tends to be the lowest due to the above-mentioned meniscus effect. Therefore, when it is detected that the electrode 1022a is in the immersed state, it can be safely concluded that the measurement-use electrode unit 1021 disposed below the electrode 1022a is in an immersed state.
[0506] As a result, the immersion state of the measurement-use electrode unit can be detected more reliably, and the liquid sample can be measured more accurately.
O
[0507] In Embodiment 6 above, an example was given in which a sensor 1416 comprising a substantially E-shaped immersion detection electrode unit 1422 including a plurality of comb teeth 1442a extending in a direction substantially perpendicular to the immersion depth direction (substantially horizontal direction) is provided on the first surface 1423a of the main body 1416a as shown in
[0508] For instance, as shown in
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[0509] In Embodiment 2, etc., above, an example was given in which the main body 1016a of the sensor 1016 was substantially I-shaped. However, the present invention is not limited to this.
[0510] For instance, the sensor having a substantially L-shaped main body 2316a shown in
INDUSTRIAL APPLICABILITY
[0511] Because the sensor of the present invention has the effect of improving the measurement accuracy of a sensor used in a state of being immersed in a liquid sample, it can be broadly applied to various analysis devices that make use of sensors.
REFERENCE SIGNS LIST
[0512] 1 cell culture device [0513] 2 culture chamber [0514] 3 cell culture analysis device [0515] 4 door [0516] 5 main body case [0517] 6 culture container installation unit [0518] 6a recess [0519] 7 culture container [0520] 8 well (container) [0521] 8a inner peripheral surface (inner wall surface) [0522] 9 sensor unit [0523] 10 leg [0524] 11 positioning hole [0525] 12 control unit [0526] 13 substrate [0527] 14 bottom cover [0528] 15 top cover [0529] 16 sensor [0530] 16a main body [0531] 17 bent portion [0532] 18 L-shaped part [0533] 18a vertical side cutout portion [0534] 18b horizontal side cutout portion [0535] 19 wiring [0536] 20a, 20b connection portion [0537] 21 electrode unit [0538] 21a working electrode [0539] 21b counter electrode [0540] 21c reference electrode [0541] 22 liquid holding unit [0542] 23a first surface [0543] 23b second surface [0544] 30 through-hole [0545] 31 support portion [0546] 32 pressing portion [0547] 33 measurement unit [0548] 34 control unit [0549] 35 storage unit [0550] 36 communication unit [0551] 37 external device [0552] 38 communication unit [0553] 39 control unit [0554] 40 display unit [0555] 41 input unit [0556] 108 container [0557] 108a inner wall surface [0558] 116 sensor [0559] 116a main body [0560] 122 liquid holding unit [0561] 123a first surface [0562] 216 sensor [0563] 216a main body [0564] 222 liquid holding unit [0565] 223a first surface [0566] 1006 culture container installation unit [0567] 1006a recess [0568] 1007 culture container [0569] 1008 well (container) [0570] 1008a inner peripheral surface [0571] 1009 sensor unit [0572] 1010 leg [0573] 1011 positioning hole [0574] 1012 control unit [0575] 1012a voltage application unit [0576] 1012b current meter [0577] 1012ca switch [0578] 1012cc switch [0579] 1012da D/A converter [0580] 1012db D/A converter [0581] 1012e A/D converter [0582] 1013 substrate [0583] 1014 bottom cover [0584] 1015 top cover [0585] 1016 sensor [0586] 1016a main body [0587] 1017 bent portion [0588] 1018 substantially I-shaped portion [0589] 1018a vertical side cutout portion [0590] 18b horizontal side cutout portion [0591] 1019 wiring [0592] 1020a, 1020b connection portion [0593] 1021 electrode unit (measurement electrode unit) [0594] 1021a working electrode [0595] 1021b opposite electrode [0596] 1022 immersion detection electrode unit [0597] 1022a first electrode [0598] 1022b second electrode [0599] 1023a first surface [0600] 1024 protective film [0601] 1030 through-hole [0602] 1031 support portion [0603] 1032 pressing portion [0604] 1033 measurement unit [0605] 1034 control unit [0606] 1035 storage unit [0607] 1036 communication unit [0608] 1037 immersion detection unit [0609] 1038 display unit [0610] 1040 external device [0611] 1041 communication unit [0612] 1042 control unit [0613] 1043 display unit [0614] 1044 input unit [0615] 1112 control unit [0616] 1112a selection circuit [0617] 1116 sensor [0618] 1116a main body [0619] 1122 immersion detection electrode unit [0620] 1122a first electrode [0621] 1122b second electrode [0622] 1122c third electrode [0623] 1123a first surface [0624] 1134 control unit [0625] 1212 control unit [0626] 1216 sensor [0627] 1216a main body [0628] 1222 immersion detection electrode unit [0629] 1222a first electrode [0630] 1223a first surface [0631] 1234 control unit [0632] 1312 control unit [0633] 1312c counter electrode-side circuit [0634] 1316 sensor [0635] 1316a main body [0636] 1322 immersion detection electrode unit [0637] 1322a first electrode [0638] 1323a first surface [0639] 1324 protective film [0640] 1334 control unit [0641] 1416 sensor [0642] 1416a main body [0643] 1421a working electrode [0644] 1422 immersion detection electrode unit [0645] 1422a comb teeth [0646] 1423a first surface [0647] 1516 sensor [0648] 1516a main body [0649] 1522 immersion detection electrode unit [0650] 1522a electrode [0651] 1522b electrode [0652] 1522c electrode [0653] 1523a first surface [0654] 1616 sensor [0655] 1616a main body [0656] 1621 electrode unit (measurement electrode unit) [0657] 1621a working electrode [0658] 1621b counter electrode [0659] 1622 immersion detection electrode unit [0660] 1622a electrode [0661] 1623aa, 1623ab first surface [0662] 1624 protective film [0663] 1716 sensor [0664] 1716a main body [0665] 1721 electrode unit (measurement electrode unit) [0666] 1721a working electrode [0667] 1721b counter electrode [0668] 1721c reference electrode [0669] 1722 immersion detection electrode unit [0670] 1722a electrode [0671] 1723a first surface [0672] 1724 protective film [0673] 1816 sensor [0674] 1816a main body [0675] 1821a working electrode [0676] 1821b counter electrode [0677] 1821c reference electrode [0678] 1822 immersion detection electrode unit [0679] 1822a electrode [0680] 1823a first surface [0681] 1824 protective film [0682] 1825 connection pad [0683] 1916 sensor [0684] 1916a main body [0685] 1921 electrode unit (measurement electrode unit) [0686] 1921a working electrode [0687] 1921b counter electrode [0688] 1921c reference electrode [0689] 1922 immersion detection electrode unit [0690] 1922a electrode [0691] 1923a first surface [0692] 1924 protective film [0693] 2007 culture container [0694] 2008a, 2008b well (container) [0695] 2016 sensor [0696] 2016a main body [0697] 2021 electrode unit (measurement electrode unit) [0698] 2021a working electrode [0699] 2021b counter electrode [0700] 2021c reference electrode [0701] 2022 immersion detection electrode unit [0702] 2022a electrode [0703] 2023aa, 2023ab first surface [0704] 2024 protective film [0705] 2112 control unit [0706] 2116 sensor [0707] 2116a main body [0708] 2122 immersion detection electrode unit [0709] 2122a electrode [0710] 2122b electrode [0711] 2212 control unit [0712] 2222 immersion detection electrode unit [0713] 2222a-2222e electrodes [0714] 2316a main body [0715] 2416a main body [0716] d1, d2 distance [0717] L medium [0718] O center