Method for Reducing Liquid Evaporation from Wells of a Microplate
20210187500 · 2021-06-24
Assignee
Inventors
Cpc classification
G01N21/6452
PHYSICS
B01L2200/06
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0829
PERFORMING OPERATIONS; TRANSPORTING
B01L3/5085
PERFORMING OPERATIONS; TRANSPORTING
B01L9/523
PERFORMING OPERATIONS; TRANSPORTING
G01N35/028
PHYSICS
International classification
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
B01L9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An incubation cassette for reducing liquid evaporation from wells of a microplate that has a frame for receiving a microplate having wells. The frame has a central first opening that is surrounded by an inner wall and the dimensions are designed for the placement of the microplate therein, and an outer wall extends substantially parallel to the inner wall and adjoins the inner wall via an intermediate bottom such that a liquid reservoir for holding a liquid is formed by the two walls and the intermediate bottom, the liquid reservoir surrounding the first central opening. At least a portion of the incubation cassette that forms the liquid reservoir is provided at least in part with at least one transparent portion (TA).
Claims
1. Method for reducing liquid evaporation from wells of a microplate (10), which method comprises: a) providing the microplate (10), b) adding a sample to at least one of the wells of the microplate (10), c) pushing the microplate (10) or an incubation cassette (1) equipped with the microplate (10) into a microplate reader (3), d) injecting a liquid (F) into a liquid reservoir (9) which is provided in the microplate (10) and/or in the incubation cassette (1), e) carrying out measurements on the samples in the respective wells, f) measuring a liquid level in the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1), g) re-injecting the liquid (F) into the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1) if the liquid level is below a predetermined threshold value, h) repeating steps e) to g) until a predetermined number of measurement cycles is reached, i) pulling the microplate (10) or the incubation cassette (1) equipped with the microplate (10) out of the microplate reader (3).
2. Method according to claim 1, wherein the liquid level in the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1) is measured optically through a substantially transparent portion of the microplate (10) and/or of the incubation cassette (1).
3. Method according to claim 1, wherein the liquid is injected or re-injected into the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1) by a liquid injector (26′) included in the microplate reader (3) or manually.
4. Method according to claim 1, wherein step c) is followed by a step c1): injecting a test solution into the samples in the wells of the microplate (10).
5. Method according to claim 1, wherein the liquid level in the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1) is measured by optical measurement.
6. Method according to claim 1, wherein the liquid level in the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1) is measured by optically measuring the absorbance of the liquid (F).
7. Method according to claim 4, wherein the samples or the samples with the added test solution are measured by measuring the absorbance, luminescence or fluorescence, or by imaging the samples.
8. Microplate (10) having a plurality of wells, wherein the microplate (10) is formed for use in a method according to claim 1, wherein the microplate (10) is provided with a liquid reservoir (9) and comprises at least one transparent portion (TA).
9. Microplate (10) according to claim 8, wherein the liquid reservoir (9) is provided between the wells and is bounded by a wall of the microplate (10) and is formed to hold a liquid (F).
10. Microplate (10) according to claim 8, further comprising webs (18) which are provided between outer wells, in each case extending parallel to the wall, and which are designed to divide the liquid reservoir (9) into at least two sub-reservoirs.
11. Incubation cassette (1) for reducing liquid evaporation from wells of a microplate (10), wherein the incubation cassette (1) comprises a frame (4) for receiving a microplate (10) having wells, wherein the frame (4) comprises a central first opening (5) which is surrounded by an inner wall (6), the dimensions of which are designed for the placement of a microplate (10) therein, and wherein the frame (4) comprises an outer wall (8) which extends substantially parallel to the inner wall (6) and which adjoins the inner wall (6) via an intermediate bottom (14) such that a liquid reservoir (9) for holding a liquid (F) is formed by the two walls (6, 8) and the intermediate bottom (14), said liquid reservoir surrounding the first central opening (5), wherein at least a portion (6, 8, 14) of the incubation cassette (1) that forms the liquid reservoir (9) is provided at least in part with at least one transparent portion (TA).
12. Incubation cassette (1) according to claim 11, wherein the at least one transparent portion (TA) is optically transparent to light from an optical measuring device, in particular a measuring device for measuring absorbance.
13. Microplate reader (3) comprising a housing and a transport support (2) which can be pulled out of the housing, wherein the transport support (2) comprises a bearing surface for the placement of a microplate (10) or an incubation cassette (1) according to claim 11.
14. Microplate reader (3) according to claim 13, further comprising a liquid injector (26″) for dispensing liquid (F) in an automated manner into the liquid reservoir (9) of the microplate (10) or of the incubation cassette (1).
15. Microplate reader (3) according to claim 13, further comprising a second measuring device (23) which is designed to detect the liquid level in the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1), wherein the transport support (2) which can be pulled out is designed to position the microplate (10) and/or the incubation cassette (1) relative to a second optical axis (24″) of the second measuring device (23) in such a way that the second optical axis (24″) extends through a transparent portion (TA) of the microplate (10) and/or of the incubation cassette (1).
16. Microplate reader (3) according to claim 15, wherein the second measuring device (23) of the microplate reader (3) is designed to measure the absorbance of the liquid (F) in the liquid reservoir (9) of the microplate (10) and/or of the incubation cassette (1).
17. Microplate reader (3) according to claim 15, further comprising a controller (50) which is designed to control the second measuring device (23), a second light source (21) which interacts with the second measuring device (23), the liquid injector (26″) for dispensing liquid in an automated manner, and/or the movements of the transport support (2) of the microplate reader (3).
18. Microplate reader (3) according to claim 13, further comprising a device for lifting off and placing on a lid (11) of the incubation cassette (1) placed on the transport support (2).
Description
[0035] The invention will be shown by way of example with the aid of schematic figures in the drawing. The figures are intended to document selected embodiments of the subject matter of the invention, but do not limit the scope of the present invention. In the figures:
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047] The incubation cassette 1 according to the invention comprises a frame 4, onto which a lid can be placed (not shown). The frame 4 comprises a central first opening 5, the dimensions of which are designed for the fully placing the microplate therein. The central first opening 5 is surrounded by a preferably substantially vertical inner wall 6, wherein a plurality of substantially horizontal support surfaces 7 are arranged at least in part preferably at the lower end thereof. Said support surfaces 7 serve to support the microplate placed therein (not shown). The frame 4 of the incubation cassette 1 additionally comprises an outer wall 8 which preferably extends substantially parallel to the inner wall 6 and adjoins the inner wall 6 via an intermediate bottom such that a channel, also referred to as a liquid reservoir 9, for holding a liquid is formed by the two walls 6, 8 and the intermediate bottom, said channel surrounding the central first opening 5 (see also
[0048] The liquid reservoir 9 is provided in part with at least one transparent portion TA. In other words, at least a portion of the incubation cassette 1 that forms the liquid reservoir 9, preferably the intermediate bottom, is provided at least in part with at least one transparent portion TA. As used here, portions of the liquid reservoir 9 comprise the inner wall 6, the outer wall 8 and/or the intermediate bottom. The transparent portion TA is arranged such that it is in contact with the liquid held in the liquid reservoir 9. In the example shown, and with preference, the transparent portion TA is arranged in the intermediate bottom. Although not shown, the transparent portion TA may be arranged in at least one of the walls 6, 8. The transparent portion TA contains an optically transparent material, which may be optically transparent to light for example from a measuring device for measuring the absorbance of the liquid and thus for determining an optical path length or a level of the liquid that is held. The transparent portion TA thus makes it possible for the amount of liquid or the liquid level in the liquid reservoir 9 to be monitored by means of optical measurement. The respective light for the optical measurement passes through the transparent portion TA from below the incubation cassette 1. The optical measurement can be carried out in an automated manner, namely regardless of the duration of a respective measurement or rather analysis of samples in wells of a microplate.
[0049]
[0050]
[0051]
[0052]
[0053] In the incubation cassettes 1 shown here, the inner wall 6 may comprise lowered regions 15 so that, when the lid 11′; 11″ is placed on, each lowered region 15 connects the microplate 10 to the liquid reservoir 9 surrounding it. It may be provided that the inner wall 6 of the incubation cassette 1 is consistently of reduced height compared to the outer wall 8 so that, when the lid 11′; 11″ is placed on, a circumferential gap connects the microplate 10 to the liquid reservoir 9 surrounding it. This results in a continuous gas atmosphere above the liquid reservoir 9 and above the wells of the microplate 10.
[0054] The incubation cassette 1 is designed such that light for the optical measurement can pass through the transparent portion TA from below in an unhindered manner. In other words, there should be no portions which could block in the downward direction an optical axis that extends through the respective transparent portion TA. The incubation cassette 1 is preferably made of a chemically inert plastic and is produced for example by injection moulding. The transparent portion(s) TA may be formed in one piece with the incubation cassette 1. The lid 11′ of the incubation cassette 1, which is shown in
[0055]
[0056]
[0057] The microplate reader 3 comprises the transport support 2 for holding the incubation cassette 1. The transport support 2 is preferably able to be pulled out of the measurement chamber 19 of the microplate reader 3 to such an extent that the incubation cassette 1 can be placed onto the transport support 2 and/or lifted off the latter manually or by means of a microplate handling robot (not shown). Here, the transport support 2 is shown already partially inserted because clearly the microplate 10 and the incubation cassette 1 surrounding the latter are being pushed into the microplate reader 3. While the incubation cassette 1 is being pushed in or pulled out, a flap is open, which flap in the closed state can preferably close the measurement chamber 19 in a light-impermeable and/or gas-impermeable manner so that no light from the surrounding environment that might influence the experiments can enter the measurement chamber 19 and/or the gas concentration in the measurement chamber 19 can be reliably regulated regardless of the surrounding environment.
[0058] Besides holding the incubation cassette 1 equipped with the microplate 10, said transport support 2 also serves to position the microplate 10 having the wells containing the biological structures (for example metabolites, macromolecules, cells or cell cultures) with respect to light sources 21, 22.1 and with respect to measuring devices 22.3, 23 of the microplate reader 3 and/or with respect to the optical axes 24′, 24″ of the measuring devices 22.3, 23. The light sources 21, 22.1 serve for example to bring about an interaction between at least one of these light sources 21, 22.1 and biological structures in particular wells of the microplate 10, and to bring about or generate a measurable signal. Such signals comprise for example fluorescence emission, luminescence emission, reflected light and/or transmitted light.
[0059] In the exemplary embodiment shown, the microplate reader 3 contains a fluorescence module 22 having a first light source 22.1 including a wavelength selection device (not shown), for example a monochromator or wavelength filter, for irradiating a sample (excitation light) along the first optical axis 24′. The fluorescence module 22 additionally contains a semi-transparent or dichroic mirror 22.2 for coupling the light reflected back from the sample (emission light) out of the path of the excitation light (=first optical axis 24′). By way of the mirror 22.2, the emission light is directed towards a first measuring device 22.3. In the fluorescence top reading mode, a sample in a well is irradiated directly from above by the fluorescence module 22, and the emission light is reflected back upwards by the sample. In the bottom reading mode, the excitation light is directed by way of a light guide 25 below the microplate, and the sample is irradiated from below through the bottom of a respective well. The emission light is reflected back downwards by the sample and is directed towards the fluorescence module 22 by way of the light guide 25.
[0060] In the exemplary embodiment shown, the second light source 21 including a wavelength selection device (not shown), for example a monochromator or wavelength filter, serves for passing light through a sample or biological structures in wells of said microplate 10, and a second measuring device 23 (here for example in the form of a photodiode) serves for measuring the absorbance of the sample with regard to the second optical axis 24″. The absorbance is calculated by comparing the intensity of the light passing through the sample to the second measuring device 23 with the intensity of the transmitted reference light. If, in contrast, the luminescence of samples is to be detected, the light source can even be omitted and the light signal can be measured by means of photomultiplier tubes for example.
[0061] Such light sources are selected for example from a group comprising arc-discharge bulbs, flash bulbs, incandescent bulbs (such as halogen bulbs for example), lasers, laser diodes, and light-emitting diodes (LEDs). The appropriate wavelengths for exciting the fluorescence, and also the appropriate fluorophores and the emission characteristics thereof, are known to a person skilled in the art and will be selected depending on the application. The non-invasive passing of light through cells or cell cultures in order to detect the absorbance, as well as the light sources to be used for this, are also known to a person skilled in the art. Measuring devices 22.3, 23 for detecting at least one integral signal that has been brought about or generated by the light source(s) 21, 22.1 in or on biological structures in the particular wells of the microplate 10 are preferably selected from a group comprising photomultipliers, photodiodes, photodiode arrays and avalanche diodes. The measuring devices 22.3, 23 and light sources 21, 22.1, and/or the optical input and/or output thereof, are preferably coupled by way of light guides 25, such as optical fibres or optical fibre bundles.
[0062] The second measuring device 23 of the microplate reader 3 can additionally be used to monitor and/or determine the liquid level in the liquid reservoir of the microplate 10 and/or incubation cassette 1. To this end, the incubation cassette 1 can be moved relative to the second optical axis 24″ of the microplate reader 3 such that the second optical axis 24″ extends in each case through one of the transparent portions of the incubation cassette 1 and/or microplate 10. The measuring device 23 can thus also reliably measure the liquid level in the liquid channel of the incubation cassette 1 and/or of the microplate 10. Preferably, the assembly consisting of the light source 21 and the second measuring device 23 is used to measure the absorbance of the liquid in the liquid reservoir of the incubation cassette 1 and/or in the liquid reservoir of the microplate 10.
[0063] As described above, the incubation cassette 1 is provided with the transparent portion TA, through which the liquid level in the liquid reservoir of the incubation cassette 1 can be monitored. As an alternative or in addition, in the case of a transparent microplate 10, the liquid level in the liquid reservoir of the microplate 10 can be monitored through the transparent material of said microplate 10. As already mentioned, the assembly consisting of the second light source 21 and the second measuring device 23 is preferably used to measure the absorbance of the liquid in the liquid reservoir of the incubation cassette 1 and/or microplate 10. Further details regarding the absorbance measurement used with preference here will be described in connection with
[0064] The microplate reader 3 contains for example two injectors 26′, 26″, wherein a test solution TL is dispensed into the wells of the microplate via a first injector, also called the test solution injector 26′, and liquid F is filled into or topped up in the liquid reservoir of the incubation cassette 1 and/or of the microplate 10 via a second injector, also called the liquid injector 26″. The liquid reservoir is topped up for example in an automated manner as soon as it is detected, for example by the measuring device 23 of the microplate reader 3, for example by means of an absorbance measurement, that the level of the liquid F in the liquid reservoir of the incubation cassette 1 and/or of the microplate 10 has fallen below a predefined level. A controller 27, which may be designed for example to control the first light source 21, the first measuring device 23, the movement of the transport support 2 of the microplate reader 3, etc., may also be designed to control the second injector 26″ for the automated dispensing of the liquid F into the liquid reservoir of the incubation cassette 1 and/or of the microplate 10. It can thus be ensured that the liquid reservoir of the incubation cassette 1 and/or of the microplate 10 is sufficiently filled with liquid F at all times, even in the case of long-term analyses for example.
[0065] The microplate reader 3 additionally comprises an internal or integrated processor 28 or it is designed in such a way as to be able to be connected to an external processor (not shown). Such a processor may thus be a microprocessor integrated in the electronic controller of the microplate reader 3, or a provided Personal Computer.
[0066]
[0067]
[0068] In the case of the absorbance measurement used with preference here, the Beer-Lambert law can be applied according to the equation: A=εcl. The absorbance (A) of the sample can be determined by the product of the extinction coefficient (ε) and the concentration (c) of the sample and the path length (l) through which the sample is measured. In the method, the absorbance peak of the liquid, for example water, at room temperature (977 nm) and a background measurement at 900 nm can be used (see measured values, as plotted in
[0069] By applying the Lambert-Beer law, the path length (i.e. fill level or liquid level) can be determined by measuring the liquid (aqueous sample) at 900 nm, in order to obtain an absorbance baseline, and measuring it at 977 nm, in order to obtain the specific absorbance of the liquid (aqueous sample), by applying the equation:
[0070] where:
[0071] A.sub.977->absorbance of the aqueous sample at 977 nm
[0072] A.sub.900->absorbance of the aqueous sample at 900 nm
[0073] A.sub.water->A.sub.977-A.sub.900 water in a 1 cm cuvette
[0074] By applying the equation, the fill level or liquid level of the liquid in the liquid reservoir is determined, as plotted in
[0075]
[0076] With regard to the flowchart shown in
[0077] In a step S9_10, the samples in the wells are measured by measurement methods, such as for example absorbance, fluorescence, imaging, etc. Then, in a step S9_11, the lid is placed onto the incubation cassette. This reduces the evaporation of liquid from the wells of the microplate. In a step S9_12, there is a wait for a predetermined time interval, for example 1h, 2 h, etc. Once the predetermined time interval has elapsed, the lid is lifted off using robotic means in a step S9_13. In a step S9_14, the samples in the respective wells are measured. Then, in a step S9_15, the fill level of the liquid in the liquid reservoir of the incubation cassette and/or in the liquid reservoir of the microplate is measured. In a step S9_16 it is determined, based on the result of the fill level measurement, whether the fill level has or has not fallen below a predetermined threshold value.
[0078] If it is determined in step S9_16 that the fill level has fallen below the threshold value (yes), the method continues at a step S9_17, in which the liquid reservoir of the incubation cassette and/or the liquid reservoir of the microplate is moved by means of the transport support to an outlet of an injector line of an injector in order to add liquid. As soon as this position is reached, the liquid reservoir in question is filled or topped up by the injector (step S9_18). The method then continues at a step S9_19, which will be described below.
[0079] If it is determined in step S9_16 that the fill level has not fallen below the threshold value (no), the method continues at step S9_19, in which the lid is placed back onto the incubation cassette using robotic means. In a subsequent step S9_20, it is determined whether a predetermined maximum number of measurement cycles has been exceeded. If it is determined in step S9_20 that the maximum number of measurement cycles has not been exceeded (no), the method returns to step S9_12. If it is determined in step S9_20 that the maximum number of measurement cycles has been exceeded (yes), the method continues at step S9_21, in which the transport support with the incubation cassette and the microplate placed therein is pulled out of the microplate reader. After this, the method can be ended.
[0080] It should be mentioned that the order of the steps in the flowchart can be changed. In addition, the method described in the flowchart is not to be regarded as being limited to the incubation cassette, the microplate placed therein and the lid placed onto the incubation cassette, as described above by way of example. Besides the described incubation cassette with the lid placed thereon, use can also be made for example of an incubation cassette without a lid. In this case, for example, there is no need for robotic means for lifting off the lid. In this case, it is possible that the microplate contains no reservoir(s). In this case, the measurement chamber of the microplate reader should be as small as possible. Besides the automated topping-up of the reservoir by the injector, as described here, the topping-up may also take place manually.
[0081] With regard to the flowchart shown in
[0082] In the microplate reader, the temperature is also measured, and in a step S10_5 there is a wait until a predetermined target temperature is reached. As soon as the predetermined gas concentration and/or target temperature is reached, in a step S10_6 the samples in the respective wells of the microplate are measured by measurement methods, such as for example absorbance, fluorescence, imaging, etc., in order to generate a “blank” value for the subsequent measurements. In a step S10_7, test solution is added to predetermined, substance-containing wells of the microplate by means of an injector. However, the test solution may also be added at an earlier point in time, for example outside of the microplate reader, that is to say before the microplate is pushed into the microplate reader. Furthermore, in this step, the liquid can be added to the liquid reservoir of the microplate. However, the liquid may also be added earlier, for example outside of the microplate reader, that is to say before the microplate is pushed into the microplate reader. In a step S10_8, there may be a wait for a predetermined time t. In a step S10_9, the samples provided with the test solution in the respective wells are measured. Then, in a step S10_10, the fill level of the liquid in the liquid reservoir of the microplate is measured. In a step S10_11 it is determined, based on the result of the aforementioned measurement, whether the fill level has or has not fallen below a predetermined threshold value.
[0083] If it is determined in step S10_11 that the fill level has fallen below the threshold value (yes), the method continues at a step S10_12, in which an alarm can be output to a user of the microplate reader. In a step S10_13, the transport support is pulled out of the microplate reader. As soon as the transport support has been pulled out of the microplate reader, in a step S10_14 the liquid reservoir of the microplate is topped up with liquid, for example manually by means of a manual pipette. The transport support is then pushed into the microplate reader (step S10_15). The method then continues at a step S10_16, which will be described below.
[0084] If it is determined in step S10_11 that the fill level has not fallen below the threshold value (no), the method continues at step S10_16, in which it is determined whether a predetermined maximum number of measurement cycles has been exceeded.
[0085] If it is determined in step S10_16 that the maximum number of measurement cycles has not been exceeded (no), the method returns to step S10_8. If it is determined in step S10_16 that the maximum number of measurement cycles has been exceeded (yes), the method continues at step S10_17, in which the transport support with the microplate placed thereon is pulled out of the microplate reader. After this, the method can be ended.
[0086] It should be mentioned that the order of the steps in the described flowchart can be changed. In addition, the method described in the flowchart is not to be regarded as being limited to the microplate without a lid placed thereon, as described above by way of example. Besides the described microplate without a lid placed thereon, use can also be made for example of a microplate with a lid. The microplate is provided with at least one reservoir. When using a microplate without a lid placed thereon, there is no need for robotic means in the microplate reader for lifting off the lid. Also in this case, the measurement chamber of the microplate reader should be as small as possible. The topping-up of the reservoir may take place by means of the injector or manually.
[0087] All the described flowcharts are to be regarded as examples and serve to explain the invention. Method steps described herein are not to be limited to the orders described. The respective orders can be changed. Method steps may differ from the orders described.
[0088] Identical reference signs in the figures denote identical or at least similar features, even if these are not described in detail in each case.
TABLE-US-00001 Reference signs 1 incubation cassette 2 transport support 3 microplate reader 4 frame, incubation frame 5 central first opening 6 inner wall 7 support surface of 4 8 outer wall 9 liquid reservoir 10 microplate 11 lid 11′, 11″ lid 12 panel 13 magnetizable surface 14 intermediate bottom 15 lowered region 16′ edge of 11′ 16″ edge of 11″ 17 cutout 18 web 19 measurement chamber 21 second light source 22 fluorescent module 22.1 first light source 22.2 semi-transparent or dichroic mirror 22.3 first measuring device 23 second measuring device 24′ first optical axis 24″ second optical axis 25 light guide 26′ first injector 26″ second injector 27 controller 28 processor 29 imaging module with optics/lens system 30 illumination source 31 optical axis F liquid TA transparent portion TL test solution