The invention relates to a sample carrier interface for mounting a sample carrier on a microscope stage. The invention further relates to a method for adapting a sample carrier to a microscope stage.
In an inverse microscope setup, the detection objective is arranged below a microscope stage. To allow for a microscopical observation of a sample arranged on the microscope stage, the microscope stage of the inverse microscope includes an opening. Typically, the sample is received in a sample carrier, for example a microwell plate, a petri dish or a microscope slide. The sample or samples are observed from below through a window portion arranged at a bottom side of the sample carrier.
In order to mount the sample carrier to the microscope stage of an inverse microscope and prevent the sample carrier from falling through the opening, some inverse microscopes include so called stage inserts. On the one hand, these stage inserts fit into the opening of the microscope stage and, on the other hand, have an inside edge that adapts to the outer shape of the specimen holder. The inside edge include a shelf-like structure on which the microwell plate rests. However, this shelf-like structure collides with the objective when observing samples located close to the inside edge of the stage insert. In particular when the sample carrier is microwell plate, this prevents the use of wells close to the inside edge of the stage insert, thereby greatly reducing the capacity of the sample carrier.
The use of microwell plates is well known in the fields of medical and biological analytics. Most commonly microwell plates are used for high-throughput screening. The use of microwell plates in microscopy, however, is relatively new. Since microwell plates can carry multiple samples in separate wells and have a high sample carrying capacity, and they are often used in the context of high-content microscopy.
In an embodiment, the present disclosure provides a sample carrier interface for mounting a sample carrier on a microscope stage. The sample carrier interface includes a frame configured to receive the sample carrier and to be positioned atop an opening of the microscope stage; and a locking device configured to exert a lateral force to the sample carrier when the locking device is in a locked state in order to keep the sample carrier suspended above the opening when the sample carrier is received in the frame and the frame is positioned atop the opening of the microscope stage. The locking device is further configured to hold the sample carrier in place when the sample carrier interface is moved to and from the microscope stage, and when the locking device is in the locked state. The locking device includes an adjusting element for switching between the locked state and an unlocked state in which the locking device does not exert the lateral force to the sample carrier.
Subject matter of the present disclosure will be described in even greater detail below based on the exemplary figures. All features described and/or illustrated herein can be used alone or combined in different combinations. The features and advantages of various embodiments will become apparent by reading the following detailed description with reference to the attached drawings, which illustrate the following:
Embodiments of the present disclosure provide a sample carrier interface for mounting a sample carrier on a microscope stage and a method for mounting a sample carrier on a microscope stage that allow the sample carriers capacity to be fully utilized.
In an embodiment, the sample carrier interface for mounting a sample carrier on a microscope stage in a frame is configured to receive the sample carrier and to be positioned atop an opening of the microscope stage. The sample carrier interface further includes a locking device configured to exert a lateral force to the sample carrier when the locking device is in a locked state in order to keep the sample carrier suspended above the opening when the sample carrier is received in the frame and the frame is positioned atop the opening of the microscope stage.
In the embodiment, when the sample carrier is received in the frame, the frame effectively increases the dimensions of the sample carrier such that the sample carrier does not fall through the opening of the microscope stage. Thereby, the sample carrier interface adapts the sample carrier for use with for use with the microscope. The sample carrier is held above or inside the opening by the sample carrier interface. Samples received in the sample carrier can be observed from below through the opening of the microscope stage.
The sample carrier received in the frame is held in place only by the lateral forces exerted on it by the locking device. Thus, the sample carrier interface does not need any supporting elements below the sample carrier. This allows unrestricted access to a bottom side of the sample carrier, and thus an unobstructed observation of the sample received in the sample carrier from below. In particular embodiments, parts of the sample carrier close to an inside edge of the opening in the microscope stage are unobstructed. The embodiment of the sample carrier interface thus allows the sample carriers capacity to be fully utilized.
In a preferred embodiment, the locking device is configured to hold the sample in place when the sample carrier interface is moved to and from the microscope stage, and when the locking device is in the locked state. Thereby, the sample carrier interface can be loaded with the sample carrier outside the confines of the microscope. This greatly facilitates the use of the sample carrier interface. In particular embodiments, to speed up microscopic observation, several sample carrier interfaces can be loaded with sample carriers in advance.
In another preferred embodiment the frame includes an opening at a bottom side and is configured to receive the sample carrier through said opening. In this embodiment in particular, the bottom side of the sample carrier is completely accessible allowing for an unobstructed observation of the samples received in the sample carrier from below.
In another preferred embodiment the bottom side of the frame defines a contact surface that contacts a top surface of the microscope stage when the frame is positioned atop the opening of the microscope stage. In this embodiment, the sample carrier interface is placed atop the microscope stage. This means that the sample carrier interface does not have to be adapted to a specific opening of a specific microscope stage and can be used with several different microscopes and microscope stages. This greatly increases the versatility of the sample carrier interface.
In another preferred embodiment the contact surface of the frame is at the same height as a bottom side of the sample carrier when the sample carrier is received in the frame and the frame is positioned atop the opening of the microscope stage. In this embodiment, when the sample carrier interface is placed atop the microscope stage, the sample carrier is positioned above the opening in the microscope stage and the bottom side of the sample carrier is at the same high as the top surface of the microscope stage. Thereby, the bottom side of the sample carrier is always positioned at an easy to reference height. Thus, no manual adjustment is necessary when the sample carrier interface is positioned on the microscope stage. This, for example, allows for an easier automation of the microscopic observation.
In another preferred embodiment the sample carrier is completely received inside the frame. In this embodiment, the frame wraps around the sample carrier leaving at least the bottom side of the sample carrier exposed. Thereby, the frame protects the sample carrier for example from getting scratched.
In another preferred embodiment the locking device includes an adjusting element for switching between the locked state, and an unlocked state in which the locking device does not exert the lateral force to the sample carrier. In particular embodiments, the adjusting element may be a slider, a button or a rotary switch. The adjusting element allows a user to quickly switch between the locked state and the unlocked state facilitating an easier use of the sample carrier interface.
In another preferred embodiment the locking device includes at least one moveable engaging portion configured to engage with the sample carrier and thereby exert the lateral force to the sample carrier when the locking device is in the locked state. In this embodiment, the engaging portion is brought into contact with the sample carrier in order to exert the lateral force to the sample carrier. The bigger the contact surface between the engaging portion and the sample carrier, the more securely the sample carrier is held by the sample carrier interface. Therefore, it is advantageous to provide multiple engaging portion that engage with the sample carrier from different sides when the locking device is in the locked state.
In another preferred embodiment the locking device includes a wire that wraps around the sample carrier when the sample carrier is received in the frame; and wherein the wire can be tightened in order to exert the lateral force to the sample carrier. In particular embodiments, the wire can be tightened around one or more engaging portions and the sample carrier in order to bring the engaging portions in contact with the sample carrier and to exert the lateral force to the sample carrier. By using a wire, the lateral force exerted to the sample carrier is uniform, which ensures a secure grip on the sample carrier.
In another preferred embodiment the sample carrier interface includes at least one fixing element configured to engage with a corresponding fixing element of the microscope stage. In particular embodiments, the fixing element of the sample carrier interface and the corresponding fixing element of the microscope stage are magnets. Alternatively, or additionally, the corresponding fixing element of the microscope stage includes at least one protruding element, for example a pin, configured to fit into a corresponding hole of the frame, the hole forming the fixing element of the sample carrier interface. The fixing element prevents that the position of the sample carrier interface changes once the sample carrier interface is positioned on the microscope stage.
In another preferred embodiment the sample carrier interface includes at least one guiding portion configured to engage with the microscope stage for positioning the sample carrier interface atop the microscope stage. The guiding portion ensures that the sample carrier interface is reliably positioned at the same predetermined position on the microscope stage every time the sample carrier interface is positioned on the microscope stage. This means that no additional adjustment is necessary, which, for example, allows for an easier automation of the microscopic observation.
In another preferred embodiment the frame is configured to form an incubation chamber when the sample carrier is received in the frame. In particular embodiments, the frame is configured to form a gas tight incubation chamber when the sample carrier is received in the frame. In this embodiment, the sample carrier interface is used as a so called stage top incubator. The sample carrier interface can be used to provide a sample received in the sample carrier with an incubation atmosphere and/or a (semi-) sterile atmosphere. Since the incubation chamber is formed by the sample carrier interface itself, the microscope itself does not need to be specifically adapted.
In another preferred embodiment the locking device includes a sealing portion configured to provide a gas tight seal to the incubation chamber when the sample carrier is received in the frame and the locking device is in a locked state. In this embodiment, the sample carrier forms part of the walls of the incubation chamber. This makes the sample carrier interface much lighter, and thus easier to handle. Further, this saves material cost.
In another preferred embodiment the frame includes a gas inlet for providing an incubation atmosphere and/or a (semi-) sterile atmosphere to the incubation chamber. In this embodiment, the gas inlet is for example connected to a climate control unit for controlling temperature, humidity, and CO2-content of the provided atmosphere. This allows for to a precise control over the environment of the samples received in the sample carrier.
In another preferred embodiment the sample carrier is a microwell plate or a slide holder. In particular embodiments, the frame is adapted to receive a specific type or form factor of sample carrier, for example a microwell plate or a slide holder. By adapting the frame to a specific form factor, the sample carrier is received much more secure inside the frame.
Embodiments of the present disclosure further relate to a method for mounting a sample carrier on a microscope stage. The method includes the following steps: providing a sample carrier interface as described above; inserting the sample carrier into a frame of the sample carrier interface; locking the sample carrier to the frame by exerting a lateral force to the sample carrier; and placing the sample carrier interface atop an opening of the microscope stage in order to suspend the sample carrier above the opening.
An embodiments related to the method has the same advantages as an embodiment related to the sample carrier interface described above. In particular embodiments, the method can be supplemented using the features directed at the sample carrier interface.
In a preferred embodiment the method includes the following additional steps: placing the sample carrier on a flat surface or a dedicated mounting plate; and lowering the sample carrier interface onto the sample carrier from above. By lowering the sample carrier interface onto the sample carrier from above, the contact surface of the frame is positioned at the same height as the bottom side of the sample carrier. Thereby, the bottom side of the sample carrier is always positioned at an easy to reference height, and no manual adjustment is necessary when the sample carrier interface is positioned on the microscope stage.
Hereinafter, specific embodiments are described referring to the drawings.
The sample carrier interface 100 is configured to prevent the sample carrier 102 from falling through an opening 110 of the microscope stage 104. The opening 110 of the microscope stage 104 allows the samples received in the sample carrier 102 to be observed from below via the objective 106. However, the opening 110 of the microscope stage 104 is typically larger than the dimension of the sample carrier 102. Thus, the sample carrier interface 100 is needed to adapt the sample carrier 102 to the microscope stage 104.
The sample carrier interface 100 includes a frame 112 which holds the sample carrier 102. The dimensions of the frame 112 are such that the frame 112 can be placed above the opening 110 of the microscope stage 104 without falling through. A bottom side of the frame 112 forms a contact surface which is in contact with a top surface of the microscope stage 104 when the sample carrier interface 100 is placed on the microscope stage 104.
In the present embodiment, the sample carrier 102 is completely received in a cavity 114 formed by the frame 112. The sample carrier 102 can be inserted into the cavity 114 through an opening 116 located at the bottom side of the frame 112. In the present embodiment, the frame 112 extends circumferentially around the sample carrier 102 and is closed at the top. In other words, the frame 112 forms an upside-down box which can be put over the sample carrier 102 in order to insert the sample carrier 102 into the frame 112. The cavity 114 of the frame 112 is wider at the bottom side of the frame 112 and tapers upwards. This tapered geometry of the cavity 114 guides the sample carrier 102 into position when the sample carrier interface 100 is lowered onto the sample carrier 102 in order to insert the sample carrier 102 into the frame 112. Further, this tapered geometry prevents the objective 106 from colliding with the frame 112 when the objective 106 is directed at wells 108 close to an inside edge of the opening 110 of the microscope stage 104, and thereby allows greater access to the sample carrier 102 from below.
The frame 112 according to the present embodiment also includes spacer elements 118 arranged at a top side of the frame 112 that prevent the sample carrier 102 from being inserted to far into the cavity 114. In particular embodiments, the sample carrier 102 is inserted into the frame 112 such that a bottom side of the sample carrier 102, the bottom side of the frame 112 and a top surface of the microscope stage 104 are all at a same height that is denoted in
The frame 112 further includes fixing elements 120a that are configured to engage with complimentary fixing elements 120b of the microscope stage 104. The fixing elements 120a of the frame 112 are arranged flush with the bottom side of the frame 112 to the left and right of the sample carrier 102 in
The sample carrier interface 100 further includes a locking device 122 configured to lock the sample carrier 102 received in the frame 112. The locking device 122 has a locked state in which the sample carrier 102 is locked in position, and an unlocked state in which the sample carrier 102 not locked in position and can for example be removed from the frame 112.
The locking device 122 includes moveable engaging portions 124 that are arranged inside the cavity 114 of the frame 112. The engaging portions 124 are positioned such that each engaging portion 124 faces a side surface of the sample carrier 102. The engaging portions 124 can be moved towards the sample carrier 102 in order to engage with the sample carrier 102. When the engaging portions 124 engage with the sample carrier 102, the engaging portions 124 exert a lateral force to the sample carrier 102 which locks the sample carrier 102 in position, and the locking device 122 is in its locked state. Since the sample carrier 102 is held in place only by the engaging portions 124 engaging the sample carrier 102 from the side, the bottom side of the sample carrier 102 is completely unobstructed. Thereby, the objective 106 can easily be positioned under every well 108 of the sample carrier 102 allowing to capacity of the sample carrier 102 to be fully utilized.
The sample carrier interface 200 according to
The locking device 122 includes an adjusting element for switching between the locked state of the locking device 122 and the unlocked state of the locking device 122. In the present embodiment, the adjusting element is exemplary formed by a slider 202 that can be moved along a side of the frame 112, that is from left to right and back in
In
In
In
In
The slider 202 is connected to the engaging portion 124 via an arrangement 600 of rods and joints. A first rod 602 is movable in the horizontal direction in
In a second position the second rod 604 is arranged such that the first rod 602 and the second rod 604 are perpendicular to each other. As can be seen by comparing
By moving the first rod 602 horizontally to the left in
The sample carrier 700 is exemplary formed as microwell plate comprising multiple wells 108 for receiving the samples. The sample carrier 700 is arranged atop a flat surface 706, such as a table surface or a dedicated mounting plate.
In
In
In
The sample carrier interface 800 according to
The incubation chamber 802 is formed above the sample carrier 102. The incubation chamber 802 is limited by the frame 112 of the sample carrier interface 800 and the sample carrier 102 itself. The frame 112 is closed by a lid 804 that is placed on top of the frame 112 and that provides a gas tight seal. The engaging portions 124 each include a sealing portion 806 that is configured to provide a gas tight seal to the incubation chamber 802 when the sample carrier 102 is received in the frame 112 and the locking device 122 is in a locked state. This means, that in this embodiment the incubation chamber 802 is only formed when the sample carrier 102 is received in the frame 112, and when the locking device 122 is in its locked state.
A gas inlet 808 is arranged to the right of incubation chamber 802 in
As can be seen in
The sample carrier 1002 received in the sample carrier interface 1000 is exemplary formed as a microwell plate having 96 wells 108.
A dotted rectangle 1102 in
A dotted rectangle 1108 in
When viewed together,
The sample carrier interface 1200 according to
The sample carrier interface 1200 according to
In the locked state, the contact pin 1204 has been moved towards the corresponding top left corner of the sample carrier 102 in
In the unlocked state, the contact pin 1204 has been moved towards the upper left in
The locking device 1202 includes a switch 1300 that holds the contact pin 1204 such that the contact pin 1204 can move from left to right and back with respect to the switch 1300 in
In the locked state, the switch 1300 is moved to the right in
In the unlocked state, the switch 1300 is moved to the left in
The sample carrier interface 1400 according to
The sample carrier interface 1400 according to
The frame 112 of the sample carrier interface 1400 further includes four recesses 1404 arranged facing the inside of the opening 116. These recesses 1404 allow a user to grab the sample carrier 102 when the sample carrier 102 is received in the sample carrier interface 1400. Thereby, the sample carrier 102 can be easily removed from the sample carrier interface 1400.
As can be seen in
Although all embodiments show the sample carrier interface are used in conjunction with an inverse microscope, the use of the sample carrier interface is not limited to inverse microscopes. The sample carrier interface can also be used for example in an upright microscope.
Identical or similarly acting elements are designated with the same reference signs in all Figures. 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 “/”. Individual features of the embodiments and all combinations of individual features of the embodiments among each other as well as in combination with individual features or feature groups of the preceding description and/or claims are considered disclosed.
Although some aspects have been described in the context of an apparatus, it is clear that these aspects also represent a description of the corresponding method, where a block or device corresponds to a method step or a feature of a method step. Analogously, aspects described in the context of a method step also represent a description of a corresponding block or item or feature of a corresponding apparatus.
While subject matter of the present disclosure has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. Any statement made herein characterizing the invention is also to be considered illustrative or exemplary and not restrictive as the invention is defined by the claims. It will be understood that changes and modifications may be made, by those of ordinary skill in the art, within the scope of the following claims, which may include any combination of features from different embodiments described above.
The terms used in the claims should be construed to have the broadest reasonable interpretation consistent with the foregoing description. For example, the use of the article “a” or “the” in introducing an element should not be interpreted as being exclusive of a plurality of elements. Likewise, the recitation of “or” should be interpreted as being inclusive, such that the recitation of “A or B” is not exclusive of “A and B,” unless it is clear from the context or the foregoing description that only one of A and B is intended. Further, the recitation of “at least one of A, B and C” should be interpreted as one or more of a group of elements consisting of A, B and C, and should not be interpreted as requiring at least one of each of the listed elements A, B and C, regardless of whether A, B and C are related as categories or otherwise. Moreover, the recitation of “A, B and/or C” or “at least one of A, B or C” should be interpreted as including any singular entity from the listed elements, e.g., A, any subset from the listed elements, e.g., A and B, or the entire list of elements A, B and C.
Number | Date | Country | Kind |
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22153964.6 | Jan 2022 | EP | regional |
This application is a U.S. National Phase application under 35 U.S.C. § 371 of International Application No. PCT/EP2023/051856, filed on Jan. 26, 2023, and claims benefit to European Patent Application No. EP 22153964.6, filed on Jan. 28, 2022. The International Application was published in English on Aug. 3, 2023 as WO 2023/144238 A1 under PCT Article 21(2).
Filing Document | Filing Date | Country | Kind |
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PCT/EP2023/051856 | 1/26/2023 | WO |