Microscope for the examination of incubated samples and a system including such a microscope and corresponding methods - Patents.com
The microscope design integrates a hermetically sealable sample chamber with an external conditioning unit interface, addressing access and energy challenges of existing incubators, ensuring efficient and controlled incubation for samples.
Patent Information
- Application Number
- JP2021075080
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-04-28
- Filing Date
- 2021-04-27
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2041-04-27
AI Technical Summary
Existing microscopes face challenges in providing a space-saving incubation solution that allows easy access to samples while maintaining a controlled incubation atmosphere, as stage-top incubators limit access and cage incubators are bulky and energy-intensive.
A microscope design with a separate housing section containing a sample chamber that allows direct access and is connected to an external incubation environmental conditioning unit, enabling independent control of environmental conditions within the chamber.
Enables large-volume incubation with easy sample access and minimal atmosphere loss, while reducing energy consumption and interference with sample manipulation.
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Abstract
Description
[Technical Field]
[0001] The present invention is directed to a microscope for the microscopic examination of samples, in particular for the examination of samples placed in a sample chamber that is incubated in an incubation atmosphere adapted to the sample, and to a system including such a microscope. The present invention is also directed to a method for equipping a microscope with an incubated sample chamber. [Background technology]
[0002] In particular, in the field of microscopy of biological samples such as cells, it is extremely important to keep the samples under good, stress-free environmental conditions for as long as possible. For this purpose, incubators are used to create a microclimate adapted to the sample being examined. Existing incubators can be distinguished, on the one hand, as stage-top incubators and, on the other hand, as cage incubators.
[0003] Cage incubators include a climate chamber that encloses the entire microscope, due to the need to incubate large volumes. Because the microscope itself is located within the cage incubator, access to the work area for placing or manipulating samples is limited. Furthermore, equipping a microscope with a cage incubator is nearly impossible in a space-saving format. Stage-top incubators, on the other hand, only enclose the sample itself and are placed on the microscope stage, providing small-volume incubation. Even though stage-top incubators have minimal space requirements, they offer limited access to the sample because it is enclosed in a sealed box, and the need to open the box destroys the incubation atmosphere within the box. While cage incubators have significant energy and gas consumption, stage-top incubators provide a small, enclosed incubation room with connected supply conduits for providing the desired incubation atmosphere. Summary of the Invention [Problem to be solved by the invention]
[0004] In view of the above drawbacks, there exists a need for an improved incubation solution in microscopes, which solution would, in particular, provide a means for retrofitting existing microscopes with incubation facilities. [Means for solving the problem]
[0005] An embodiment of the inventive concept provides a microscope for microscopic examination of a sample, the microscope including a microscope housing enclosing illumination optics, a microscope stage, and imaging optics, and an integrated sample chamber disposed within the microscope housing and formed by a separate housing section within the microscope housing, the housing section including a lid providing direct access to the microscope stage for placing a sample in the sample chamber. In other words, the housing section includes an opening or recess that can be closed by a "lid," which term "lid" is also intended to be understood as a door, hood, window, or other equivalent opening and closing means. The housing section further includes an interface for connecting an external incubation environmental conditioning unit to the sample chamber, the interface configured to provide a connection between the external incubation environmental conditioning unit and the sample chamber, thereby allowing for control of the environmental conditions / incubation atmosphere within the sample chamber when the external incubation environmental conditioning unit is connected to the interface.
[0006] The present concept therefore provides a microscope that includes a relatively large sample chamber that can be incubated, while allowing easy access to the sample itself, without accepting the drawbacks associated with existing incubation solutions discussed above. Because the dedicated sample chamber is formed by a separate housing section, a larger incubation room can be designed compared to a stage-top incubator, while avoiding the bulky cage incubator configuration. Furthermore, a door / lid / window on the housing section allows easy access into the sample chamber for placing or manipulating the sample on the microscope stage.
[0007] In an advantageous embodiment, the housing part of the microscope housing is configured such that the sample chamber is hermetically sealed when the lid is closed. The sealing, and in particular the hermetically sealing of the sample chamber, makes it possible to minimize loss of the incubation atmosphere due to leakage.
[0008] In an advantageous embodiment, the housing part at least partially encloses a microscope stage and a working area for placing a sample on the microscope stage. The microscope stage of a microscope typically includes a microscope stage top that is movable in the x- and y-directions, and the microscope stage top includes corresponding drive means. To place a sample on the microscope stage, in particular on the microscope stage top, working areas are provided above, to the left, and to the right of the microscope stage, allowing access to the sample by a user, a robot, and / or any manipulator. Often, a working surface is provided next to the upper surface of the microscope stage / microscope stage top, serving as a shelf space for the equipment or other samples to be inspected. In this context, it is advantageous for the housing part to be defined below by a working surface that includes the upper surface of the microscope stage, e.g., the microscope stage top.
[0009] In particular, in the case of an inverted transmitted light microscope, it is advantageous if the housing part further encloses the illumination optics of the microscope, which typically include as main components a (LED) light source and a collimator lens, and possibly other optical elements such as filters.
[0010] The housing part can be defined laterally and upwardly by said lid in the form of a hinged lid or a hinged door and / or by the side walls of the housing part.
[0011] In an advantageous embodiment, the interface includes at least one opening, which may be a duct configured to receive a conduit, which may be a tube or pipe connected to an external incubation environmental conditioning unit. In another embodiment, the interface includes at least one opening, which may be a duct containing a conduit, which may be a tube or pipe connectable to an external incubation environmental conditioning unit. The at least one conduit (or tube or pipe) serves the purpose of supplying an incubation atmosphere to the sample chamber. The incubation atmosphere is adapted to the sample to be examined. In the above embodiment, the at least one conduit can be connected directly to the conditioning unit, for example, by welding or a flange connection, or indirectly to the conditioning unit, for example, by using an adapter that can be attached to the back of the microscope to support the load of the conditioning unit. As described below, the at least one conduit can also include a sensor or its sensor lead for detecting parameters of the incubation atmosphere and / or cables and wires for communication between the microscope control unit and the conditioning unit controller.
[0012] In an advantageous embodiment, the at least one opening is configured to be light-tight closed when the microscope is operated without an external incubation environmental conditioning unit, which prevents scattered light from entering the sample chamber from the outside.
[0013] Advantageously, the interface comprises a plurality of openings for respective conduits for supplying and discharging the incubation atmosphere, such a configuration making it possible to ensure a uniform distribution of the incubation atmosphere in the sample chamber.
[0014] It is possible to have one conduit for supplying the incubation atmosphere and another for discharging it, while it is also possible for at least one conduit to be formed in the form of two parts with a divided cross-sectional area, which defines two longitudinally separated fluid paths for supplying the incubation atmosphere via one of the two fluid paths and discharging the incubation atmosphere via the other of the two fluid paths. Such a configuration allows for optimal circulation of the incubation atmosphere.
[0015] Advantageously, at least one of the conduits comprises fins at its end facing the sample chamber, which can influence the flow direction and induce a desired flow direction of the incubation atmosphere flowing through the sample chamber or generate turbulence within the sample chamber.
[0016] As already mentioned above, it is advantageous if the microscope includes at least one sensor for measuring at least one parameter of the incubation atmosphere. In particular, it is advantageous if at least one of the sensors is at least partially integrated into one of the at least one conduit for supplying the incubation atmosphere to the sample chamber. More particularly, such a sensor can be arranged in the conduit and / or in the sample chamber itself. Sensors must be provided for detecting the moisture (H2O) and / or nitrogen (N2) content and / or oxygen (O2) content and / or carbon dioxide (CO2) content and / or for detecting the temperature of the incubation atmosphere.
[0017] It is advantageous if the interface is arranged on the rear of the housing part, whereby an incubation environment control unit (see above) directly or indirectly connected to the interface is attached to the rear of the housing part and thus to the rear of the microscope. Such a configuration ensures that the incubation environment control unit does not interfere with the examination and the exchange and manipulation of samples. Furthermore, it is easy to retrofit such an incubation environment control unit to a microscope.
[0018] In an advantageous embodiment, the microscope is an inverted transmitted light microscope, and a housing part at least partially encloses the microscope stage and a transmitted light illumination unit as the illumination optics of the microscope, and a second housing part is provided, which at least partially encloses the imaging optics of the microscope. In such an arrangement, the microscope is essentially divided into two parts, the first part being formed, for example, by the first housing part including the upper surface of the microscope stage and the illumination optics, and the second part being formed, for example, by the second housing part enclosing the microscope objective and the microscope image detector, and possibly the underside of the microscope stage. Part of the illumination optics and part of the imaging optics, such as a camera or a display for displaying a microscopic image of the sample, can also be arranged outside the first and second housing parts, respectively.
[0019] By providing two distinct and separate housing sections within the microscope housing, it is possible to incubate and / or air-condition and / or temperature-control both housing sections independently of each other. While the first housing section is being incubated, the second housing section can be easily air-conditioned by supplying air or another atmosphere, preferably at a predetermined temperature. This is particularly advantageous when using immersion objectives for the microscopic examination of samples.
[0020] In a second aspect of the inventive concept, there is provided a system for microscopic examination of a sample, said system comprising a microscope according to the above first aspect of the inventive concept and an incubation environment conditioning unit connected to the microscope via the microscope interface.
[0021] In an advantageous embodiment of the second aspect of the inventive concept, the incubation environment conditioning unit includes at least one of the following connections: a connection for supplying HO, a connection for exhausting HO and / or the incubation atmosphere, a connection for supplying N and / or O, and a connection for supplying CO to the sample chamber. For live cell imaging, the incubation environment conditioning unit typically needs to be able to control the temperature, humidity, and CO content of the incubation atmosphere. For this purpose, separate connections must be present for supplying HO, CO, and the remaining air. The resulting incubation atmosphere is supplied to the sample chamber via at least one conduit located within or part of the microscope interface. Typically, the corresponding connections to the sample chamber are combined, for example, in the form of the conduit. However, it is also possible to supply air, humidity, and CO via separate connections to the sample chamber. On the other hand, it may also be desirable to perform hypoxic experiments when there is an oxygen deficiency in the incubation atmosphere. Oxygen deficiency is typically established by supplying nitrogen (N) to the incubation atmosphere. It is also advantageous to have connections for venting H2O and / or the incubation atmosphere to maintain circulation of the atmosphere and / or to refresh the atmosphere.
[0022] In an advantageous embodiment, the microscope includes a control unit that controls functional components of the microscope for controlling the microscopic examination of the sample. Such functional components are typically the microscope's illumination optics, imaging optics, and microscope stage. In this embodiment, the control unit is further configured to control the operation of an external incubation environmental conditioning unit when the incubation environmental conditioning unit is connected to the interface. Cables and lines for communication between the microscope control unit and the conditioning unit controller can be guided through one or more of the above-mentioned openings in the interface. This embodiment enables very user-friendly operation of the microscope including the incubated sample chamber. In particular, the microscope including the microscope interface and the connected incubation environmental conditioning unit can be controlled via a universal software interface, preferably with a graphical user interface (GUI) adapted to various possible types of experiments. For example, in the case of a hypoxic experiment, the user can set the desired temperature, humidity, CO2 content, and O2 content of the incubation atmosphere using the corresponding buttons in the GUI. Preferably, default values for each parameter are displayed in the GUI and can be changed by the user. Additionally, parameters of the microscope's functional components, such as sample type, illumination wavelength, and camera parameters, can be configured through the same GUI. After the sensor detects that the lid has been closed to seal the sample chamber, the generation of a user-defined incubation atmosphere is initiated by introducing air containing a predetermined H2O and CO2 content into the sample chamber. Furthermore, N2 is introduced to replace the O2 and reduce the O2 content. Some of the incubation atmosphere may escape due to leaks and / or through connections / conduits for exhausting the incubation atmosphere. Simultaneously, the microscope's functional components are also configured to the desired settings for proper microscopic examination / imaging of the sample. Once the setup and incubation atmosphere are complete, the microscope performs examination / imaging of the sample.
[0023] In a final aspect, the present invention relates to a method for equipping or retrofitting a microscope with an external incubation environmental conditioning unit for incubating a sample chamber of the microscope. The microscope includes a microscope housing enclosing illumination optics, a microscope stage, and imaging optics, and an integrated sample chamber disposed within the microscope housing and formed by a separate housing section within the microscope housing. The housing section includes a lid providing direct access to the microscope stage for placing a sample in the sample chamber. The housing section further includes an interface for connecting the external incubation environmental conditioning unit to the sample chamber. The interface is configured to provide a connection between the external incubation environmental conditioning unit and the sample chamber, thereby enabling environmental conditions within the sample chamber to be controlled when the external incubation environmental conditioning unit is connected to the interface. The external incubation environmental conditioning unit is then connected to the microscope via the interface to establish a system according to the second aspect of the present invention.
[0024] It is noted that the features described above in relation to the microscope according to the first aspect of the inventive concept and the system according to the second aspect represent analogous descriptions of the corresponding features of the two aspects and method according to the third aspect of the inventive concept.
[0025] As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items and may be abbreviated as " / ".
[0026] It should be noted that the features of the above examples and the examples described below may be combined in whole or in part with other examples not explicitly mentioned herein, although they are part of this disclosure. [Brief explanation of the drawings]
[0027] [Figure 1]FIG. 1 is a schematic diagram illustrating a perspective view of one embodiment of a system according to the concepts of the present invention. [Figure 2] FIG. 10 is a perspective view schematically illustrating the assembly of a microscope equipped with an incubation atmosphere adjustment unit. [Figure 3] FIG. 3 shows a schematic side view of the situation in FIG. 2. DETAILED DESCRIPTION OF THE INVENTION
[0028] FIG. 1 illustrates, in perspective view, one embodiment of a microscope 100 for microscopic examination of a sample 120 disposed on a microscope stage 116. A microscope housing 102 encloses illumination optics 118, a microscope stage 116, and imaging optics 124. An integrated sample chamber 106 is disposed within the microscope housing 102 and is formed by a separate housing section 104 within the microscope housing 102. The housing section 104 includes a hinged lid 109 that provides direct access to the microscope stage 116 for placing the sample 120 within the sample chamber 106 onto the microscope stage 116 and for replacing the sample 120 and / or manipulating the sample 120 when the lid is open. The embodiment illustrated in FIG. 1 is an inverted transmitted light microscope 100, in which the transmitted light illumination optics 118 are disposed within the housing section 104, while the imaging optics are disposed below the microscope stage 116 within a second housing section 122. The imaging optics 124 typically include as its main components a microscope objective lens and an image detector, which usually includes a camera that produces a microscope image that is typically displayed on a display screen 142 outside the microscope housing 102.
[0029] The structure of the microscope housing part 104 allows for the formation of a dedicated sample chamber 106, which constitutes a preferably sealed space in which a biological sample 120, such as a cell, can be incubated (after closing the lid 109) so that the sample can be kept under good, stress-free environmental conditions during microscopic examination / imaging of the sample. To this end, the housing part 104 includes an interface 108 for connecting an external incubation environmental conditioning unit 110 to the sample chamber 106. The interface 108 is configured to provide a connection between the conditioning unit 110 and the sample chamber 106, so that the environmental conditions within the sample chamber 106 can be controlled when the conditioning unit 110 is connected to the interface 108.
[0030] In the illustrated embodiment, the interface 108, as part of the housing portion 104, includes two openings 112 on the back surface of the housing portion 104, each opening 112 configured to receive a conduit 114 (see also FIGS. 2 and 3). An incubation atmosphere can be introduced into the sample chamber 106 through at least one of the conduits 114. In response to a leak in the sample chamber 106, part of the incubation atmosphere can leak out of the sample chamber 106. On the other hand, part of the incubation atmosphere can be sucked out of the sample chamber 106 through another one of the conduits 114.
[0031] A suitable incubation atmosphere includes air with a predefined HO (relative humidity) content and a predefined CO (carbon dioxide) content. It is also desirable to perform hypoxic experiments in which the atmosphere is deficient in oxygen. Typically, the temperature of the incubation atmosphere can be set from ambient temperature up to 50°C, with the CO range set at 0.5-20% and the O range set at 1-18%. The humidity must be balanced to avoid possible condensation or at least ensure that the microscope 100, the conditioning unit 110, or the specimen itself are not damaged. It is preferable to independently control at least the temperature, humidity, and CO content. In hypoxic experiments, the O content is controlled by the N input.
[0032] To control the above parameters, sensors are preferably located in the conduit 114 and / or in the sample chamber 106 and / or on the microscope stage 116 close to the sample 120. In a preferred embodiment, at least some of the sensors are integrated into the conduit 114 for supplying an incubation atmosphere to the sample chamber 106.
[0033] 1, the housing portion 104 is defined below by a work surface 107 that includes the upper surface of the microscope stage, i.e., the microscope stage top. This structure provides user-friendly access to a work area for placing and manipulating a specimen 120. On the other side, the housing portion is defined by the inner surface of a lid 109 and the rear surface of the housing portion 104 itself.
[0034] To increase the lifetime of the imaging optics 124 and when using immersion objectives, it is preferable to air-condition and / or temperature-control the second housing part 122. This can be done by the same conditioning unit 110 and correspondingly enlarged interface 108, or more preferably by a separate air-conditioning unit.
[0035] In a preferred embodiment, the microscope 100 includes a control unit 140 that controls functional components such as the illumination optics 118, the microscope stage 116, and the imaging optics 124 of the microscope 100 to control microscopy / imaging of the sample 120. Typically, a graphical user interface (GUI) is displayed on a display screen 142 for user-friendly operation of the microscope 100. The control unit 140 is further configured to control the operation of the incubation environment conditioning unit 110 when the conditioning unit 110 is connected to the interface 108. Cables and lines for communication between the microscope control unit 140 and a conditioning unit controller (not shown) can be guided through one or more of the above-mentioned openings / conduits of the interface 108. In this case, the same GUI can display corresponding buttons for setting desired values of the incubation atmosphere parameters, as described above. After the lid 109 is closed and it is confirmed that the sample to be inspected has been placed on the table of the microscope stage 116, the generation of a user-defined incubation atmosphere begins automatically, and once the desired atmosphere is created and the sample 120 is in the correct position, inspection / imaging of the sample is performed.
[0036] FIG. 2 illustrates the assembly process for equipping the microscope 100 with the incubation environment conditioning unit 110 to obtain the system 130, as already described above. The same reference numerals as in FIG. 1 indicate the same components. As shown in FIG. 2, the interface 108 includes mounting points for fixing the conditioning unit 110 to the rear corners of the microscope 100. The interface 108 further includes openings 112 configured to receive two conduits 114 of the conditioning unit 110, which provide respective ducts for supplying the incubation atmosphere to the sample chamber 106. In this embodiment, the conduits 114 are connected to the conditioning unit 110, for example, by welding or flange connections. The assembly process illustrated in FIG. 2 is particularly suitable for retrofitting the microscope 100 with the conditioning unit 110.
[0037] Figure 3 shows schematically a cross-sectional side view of the components shown in Figure 2. In this figure, the same reference symbols refer to the same components. To avoid repetition, reference is made to the description of Figures 1 and 2. As can be seen from Figure 3, the opening 112 has the form of a duct for receiving a conduit / tube / pipe 114 that is part of the conditioning unit 110. In an alternative embodiment, the conduit 114 may be part of the interface 108, in which case an end of the conduit must be connected to the conditioning unit 110. [Explanation of symbols]
[0038] 100 microscopes 102 Microscope Housing 104 Housing section 106 Sample chamber 107 Work Surface 108 Interface 109 Lid 110 Incubation Environment Control Unit 112 Opening 114 Conduit 116 Microscope Stage 118 Illumination optical system 120 samples 122 Second housing part 124 Imaging Optical System 130 Systems 140 Control Unit 142 Display screen
Claims
1. A microscope (100) for microscopic examination of a sample (120), said microscope (100) comprising: a microscope housing (102) enclosing illumination optics (118), a microscope stage (116), and imaging optics (124); an integrated sample chamber (106) disposed within the microscope housing (102) and formed by a separate housing section (104) within the microscope housing (102); Including, the housing portion (104) includes a lid (109) that provides direct access to the microscope stage (116) for placing the sample (120) in the sample chamber (106); the housing portion (104) includes an interface (108) for connecting an external incubation environmental control unit (110) to the sample chamber (106), the interface (108) being located away from the lid (109); the interface (108) is configured to provide a connection between the external incubation environmental conditioning unit (110) and the sample chamber (106), thereby allowing environmental conditions within the sample chamber (106) to be controlled when the external incubation environmental conditioning unit (110) is connected to the interface (108); Microscope (100).
2. The housing portion (104) is configured such that the sample chamber (106) is sealed when the lid (109) is closed. The microscope (100) of claim 1.
3. The housing portion (104) at least partially encloses the microscope stage (116) and a working area for placing the sample (120) on the microscope stage (116). A microscope (100) according to claim 1 or 2.
4. The housing portion (104) further encloses the illumination optical system (118). The microscope (100) of claim 3.
5. The housing portion (104) is defined by a work surface (107) that includes the upper surface of the microscope stage (116). A microscope (100) according to any one of claims 1 to 4.
6. the interface (108) includes at least one opening (112) configured to receive a conduit (114) connected to the external incubation environmental conditioning unit (110), or the interface includes at least one opening (112) containing a conduit (114) connectable to the external incubation environmental conditioning unit (110); A microscope (100) according to any one of claims 1 to 5.
7. the at least one opening (112) is configured to be light-tightly closed when the microscope (100) is operated without the external incubation environmental control unit (110); The microscope (100) of claim 6.
8. the interface (108) comprises a plurality of openings (112) for respective conduits (114) for supplying and discharging an incubation atmosphere; A microscope (100) according to claim 6 or 7.
9. the microscope (100) comprises at least one sensor for measuring at least one parameter of the incubation atmosphere, A microscope (100) according to any one of claims 1 to 8.
10. the interface (108) comprises a plurality of openings (112) for respective conduits (114) for supplying and discharging the incubation atmosphere; at least one of the sensors is at least partially integrated into one of the respective conduits; The microscope (100) of claim 9.
11. The interface (108) is disposed on the rear surface of the housing portion (104). A microscope (100) according to any one of claims 1 to 10.
12. The microscope (100) is an inverted transmitted light microscope, the housing part (104) at least partially enclosing the microscope stage (116) of the microscope and a transmitted light illumination unit as the illumination optical system (118) of the microscope, and the second housing part (122) at least partially enclosing the imaging optical system (124) of the microscope. A microscope (100) according to any one of claims 1 to 11.
13. the second housing portion (122) is configured to be air-conditioned and / or temperature-controlled; The microscope (100) of claim 12.
14. The lid (109) is placed on the microscope housing (102) in an open state. A microscope (100) according to any one of claims 1 to 13.
15. The at least one opening (112) has the form of a duct for receiving the linearly extending conduit (114). A microscope (100) according to any one of claims 6 to 8.
16. A system (130) for microscopic examination of a sample (120), said system (130) comprising: A microscope (100) according to any one of claims 1 to 15, an incubation environment control unit (110) connected to the microscope (100) via the interface (108); A system (130) comprising:
17. The incubation environment control unit (110) comprises: H 2 a connection for supplying O; H 2 a connection for exhausting O and / or the incubation atmosphere; N 2 and / or O 2 a connection for supplying The sample chamber (106) is supplied with CO 2 a connection for supplying at least one of: The system (130) of claim 16.
18. the microscope (100) includes a control unit (140) for controlling functional components (118, 124, 116) of the microscope (100) for controlling the microscopic examination of the sample (120), the control unit (140) being further configured to control the operation of the external incubation environment conditioning unit (110) when the external incubation environment conditioning unit (110) is connected to the interface (108); The system (130) of claim 16 or 17.
19. The control unit (140) controls the temperature of the incubation atmosphere, H 2 O content, CO 2 Content and O 2 configured to control at least one of a group of contents; The system (130) of claim 18.
20. 1. A method for equipping a microscope (100) with an external incubation environmental conditioning unit (110) for incubating a sample chamber (106) of the microscope (100), the method comprising: a microscope housing (102) enclosing illumination optics (118), a microscope stage (116), and imaging optics (124); an integrated sample chamber (106) disposed within the microscope housing (102) and formed by a separate housing section (104) within the microscope housing (102); Including, the housing portion (104) includes a lid (109) that provides direct access to the microscope stage (116) for placing a sample (120) in the sample chamber (106); the housing portion (104) includes an interface (108) for connecting the external incubation environmental control unit (110) to the sample chamber (106), the interface (108) being located away from the lid (109); the interface (108) is configured to provide a connection between the external incubation environmental conditioning unit (110) and the sample chamber (106), thereby allowing environmental conditions within the sample chamber (106) to be controlled when the external incubation environmental conditioning unit (110) is connected to the interface (108); The external incubation environment control unit (110) is then connected to the microscope (100) via the interface (108). method.
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