SYSTEMS AND METHODS FOR A THERMAL CYCLER HEATED COVER
A thermal cycler system for use with a sample holder configured to receive a plurality of samples includes a sample block configured to receive the sample holder, a cover lid configured to move in a direction toward the sample block from an open position to a closed position, a heated cover operatively coupled to the cover lid and configured to move in a direction toward the sample block from a raised position to a first lowered position, in which the heated cover contacts the sample holder when the sample holder is received by the sample block, and a drive assembly including a motion guide configured to move in a direction toward the sample block from a first position, wherein the cover lid is in the open position and the heated cover is in the raised position, to a second position, wherein the cover lid is in the closed position.
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This application is a continuation of U.S. application Ser. No. 16/515,533, filed Jul. 18, 2019, which is a divisional of U.S. application Ser. No. 15/387,631, filed Dec. 21, 2016 (now U.S. Pat. No. 10,384,208), which claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Patent Application No. 62/270,695 filed on Dec. 22, 2015 (now expired), which are hereby incorporated by reference in their entireties.
TECHNICAL FIELDThe present invention relates generally to thermal cycler systems and methods of using same.
BACKGROUNDTesting of biological or chemical samples often requires a device for repeatedly subjecting multiple samples though a series of temperature cycles. To prepare, observe, test, and/or analyze an array of biological samples, one example of an instrument that may be utilized is a thermal cycler or thermocycling device, such as an end-point polymerase chain reaction (PCR) instrument or a quantitative, or real-time, PCR instrument. Such devices are used to generate specific temperature cycles, i.e. to set predetermined temperatures in the reaction vessels to be maintained for predetermined intervals of time.
Generally, it is desirable to increase the efficiency and output of the PCR process. Advances in automated biological sample processing instruments allow for quicker and more efficient analysis of samples. However, such automated systems often must be capable of integrating with other automated laboratory systems. Eliminating user interaction increases efficiency but requires the development of feedback controls to cue the main instrument controller that the next stage in the process is ready to occur. For example, the system must be sure that a sample holder is in place within the biological analysis system before activating the thermal cycling routine. In an automated system where there are no user interventions, it is desirable to cue the main instrument controller that the sample holder is in place based on feedback by the lab automation system.
A potential method to detect that the consumer plate in position is the use of an imaging system integrated into the main lab automation system. The imaging system may capture an image and, through complex algorithms, determine the presence of a sample holder on the sample block of the PCR system. Such a method is complex, costly, and tedious to implement. Other methods include the embedding of a sensitive load cell on the sample block module or the use of a barcode reader, which can detect the presence of the plate through a weight change or a barcode on the sample holder, respectively. However, such methods are costly to implement.
There is an increasing need to provide improved thermal cycler systems that address one or more of the above drawbacks.
SUMMARYIn accordance with one embodiment, a thermal cycler system for use with a sample holder configured to receive a plurality of samples includes a sample block configured to receive the sample holder, a cover lid, a heated cover operatively coupled to the cover lid, and a drive assembly for moving the cover lid and the heated cover. The cover lid is configured to move in a direction toward the sample block from an open position to a closed position. The heated cover is configured to move in a direction toward the sample block from a raised position to a first lowered position, in which the heated cover contacts the sample holder when the sample holder is received by the sample block. The drive assembly includes a motion guide operatively coupled to the cover lid and to the heated cover. The motion guide is configured to move in a direction toward the sample block from a first position, wherein the cover lid is in the open position and the heated cover is in the raised position, to a second position, wherein the cover lid is in the closed position.
In accordance with another embodiment, a thermal cycler system for use with a sample holder configured to receive a plurality of samples includes a sample block configured to receive the sample holder, a heated cover, and a first sensor. The heated cover is configured to move in a direction toward the sample block from a raised position to a first lowered position, wherein the heated cover is in contact with the sample holder when the sample holder is received by the sample block, and from the first lowered position to a second lowered position when the sample holder is removed from the sample block, wherein the heated cover is in contact with the sample block. The first sensor is configured to detect whether the heated cover is in the first lowered position.
Various additional features and advantages of the invention will become more apparent to those of ordinary skill in the art upon review of the following detailed description of the illustrative embodiments taken in conjunction with the accompanying drawings.
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with a general description of the invention given above, and the detailed description given below, serve to explain the invention.
Referring to
The thermal cycler system 10, unless otherwise indicated, is described herein in the exemplary embodiment using a reference frame in which the sample block 14 is located in the front or forward portion of the thermal cycler system 10, the belt drive system 30 is located in the back or rearward portion of the thermal cycler system 10, and the cover lid 26 is located above the sample block 14 when the cover lid 26 is in the closed position. Consequently, as used herein, terms such as forward, backward, downward, upward, lateral, and vertical used to describe the exemplary thermal cycler system 10 are relative to the chosen reference frame. The embodiments of the present invention, however, are not limited to the chosen reference frame and descriptive terms. For example, the belt drive system 30 may be located in the front or forward portion of the thermal cycler system 10 and be within the scope of the invention. Those of ordinary skill in the art will recognize that the descriptive terms used herein may not directly apply when there is a change in reference frame. Nevertheless, the relative terms used to describe embodiments of the thermal cycler system 10 are to merely provide a clear description of the exemplary embodiments in the drawings. As such, the relative terms forward, backward, downward, upward, lateral, and vertical are in no way limiting the present invention to a particular location or orientation.
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Advantageously, the configuration of the sensor assembly allows for the thermal cycler system 10 to be compatible with sample holders 16 that vary in design, such as the design of a deck 106 of the sample holder 16. For example, the deck thickness of commercially available sample holders varies. Accordingly, when the heated cover 22 is in the first lowered position, the distance of the heated cover 22 from the sample block 14 may vary depending on the thickness of the particular sample holder 16. However, the thickness of the deck 106 does not affect the detection of the presence of the sample holder 16 because the third sensor 98 indirectly detects the presence of the sample holder 16 based on the predetermined force. Thus, the heated cover 22 may be configured to exert the same predetermined force on sample holders 16 having varying deck thicknesses.
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While the present invention has been illustrated by the description of specific embodiments thereof, and while the embodiments have been described in considerable detail, it is not intended to restrict or in any way limit the scope of the appended claims to such detail. The various features discussed herein may be used alone or in any combination. Additional advantages and modifications will readily appear to those skilled in the art. The invention in its broader aspects is therefore not limited to the specific details, representative apparatus and methods and illustrative examples shown and described. Accordingly, departures may be made from such details without departing from the scope or spirit of the general inventive concept.
Claims
1. A thermal cycler system for use with a sample holder configured to receive a plurality of samples, the system comprising:
- a sample block configured to receive the sample holder;
- a heated cover configured to move in a direction toward the sample block from a raised position to a first lowered position when the sample holder is received by the sample block, and from the first lowered position to a second lowered position when the sample holder is removed from the sample block; and
- a first sensor configured to detect whether the heated cover is in the first lowered position,
- wherein, in the first lowered position, the heated cover is in contact with the sample holder in the first lowered position, and
- wherein, in the second lowered position, the heated cover is in a position intermediate of the first lowered position and the sample block.
2. The thermal cycler system of claim 1, wherein, when the sample holder is received by the sample block and the heated cover is in the first lowered position, the heated cover is configured to apply a force to the sample holder.
3. The thermal cycler system of claim 2, wherein the heated cover is configured to apply a predetermined force to the sample holder.
4. The thermal cycler system of claim 3, the system further comprising:
- a pressure bar coupled to the heated cover,
- wherein, when the heated cover is applying the predetermined force to the sample holder, the pressure bar and the heated cover are spaced apart by a predetermined distance and the first sensor is configured to detect whether the pressure bar and the heated cover are spaced apart by the predetermined distance.
5. The thermal cycler system of claim 1, further comprising:
- a second sensor configured to detect whether the heated cover is in the second lowered position.
6. The thermal cycler system of claim 5, further comprising:
- a motion guide configured to move in a direction toward the sample block from a first position to a second position when the sample holder is removed from the sample block,
- wherein, in the first position of the motion guide, the heated cover is in the raised position in the first position of the motion guide,
- wherein, in the second position of the motion guide, the heated cover is in the second lowered position,
- wherein the second sensor is configured to detect whether the motion guide is in the second position.
7. The thermal cycler system of claim 5, further comprising:
- a third sensor configured to detect whether the heated cover is in the raised position.
8. The thermal cycler system of claim 7, further comprising:
- a cover lid configured to move in a direction toward the sample block from an open position to a closed position; and
- a third sensor configured to detect whether the cover lid is in the open position,
- wherein, in the open position of the cover lid, the heated cover is in the raised position.
9. A thermal cycler system comprising:
- a sample block comprising a sample holder receiving surface configured to receive the sample holder; and
- a cover assembly moveable in a first direction parallel to the sample holder receiving surface between an open position and a closed position relative to the sample holder receiving surface, wherein the cover assembly covers the sample holder receiving surface in the closed position and exposes the sample holder receiving surface in the open position, wherein the cover assembly comprises: a platen moveable, in the closed position of the cover assembly, in a second direction perpendicular to the first direction between a raised position and a lowered position relative to the sample holder receiving surface, a cover lid over the platen, the cover lid having a first range of motion in the first direction from an initial position to a final position of the cover lid, an actuatable linkage coupled to and extending transversely across the platen in a direction perpendicular to the first direction, the actuatable linkage moveable in the second direction between a raised position and a lowered position, and the actuatable linkage being movable in the first direction with the cover lid through the first range of motion of the cover lid, and an elastically deformable member between the actuatable linkage and the platen, the elastically deformable member arranged to exert a compressive force against the platen in the lowered position of the platen and the actuatable linkage.
10. The system of claim 9, wherein the platen is configured to be heated.
11. The system of claim 9, further comprising a drive assembly operably coupled to the cover assembly, the drive assembly configured to impart a drive force on the cover assembly in the first direction.
12. The system of claim 11, further comprising a motion guide coupled to the cover assembly and the drive assembly, the motion guide positioned to transfer the drive force from the drive assembly to the cover assembly, the motion guide and the cover assembly moving together over the first range of motion in the first direction in response to the drive force.
13. The system of claim 12, wherein the platen is moveable over a second range of motion in the second direction in response to movement of the motion guide relative to the cover assembly.
14. The system of claim 9, further comprising imparting a drive force on the cover assembly in the first direction using a drive assembly operably coupled to the cover assembly.
15. The system of claim 14, further comprising transferring the drive force from the drive assembly to the cover assembly using a motion guide coupled to the cover assembly and the drive assembly, the motion guide and the cover assembly moving together over the first range of motion.
16. The system of claim 15, wherein the platen is moved over a second range of motion in response to movement of the motion guide relative to the cover assembly.
17. A method of operating a thermal cycler, the method comprising:
- moving a cover assembly in a first direction parallel to a sample holder receiving surface between an open position and a closed position relative to the sample holder receiving surface, wherein the cover assembly covers the sample holder receiving surface in the closed position and exposes the sample holder receiving surface in the open position, wherein the cover assembly comprises a platen, a cover lid located over the platen, an actuatable linkage, and an elastically deformable member;
- moving the platen, in the closed position of the cover assembly, in a second direction perpendicular to the first direction between a raised position and a lowered position relative to the sample holder receiving surface;
- moving the cover lid over a first range of motion in the first direction from an initial position to a final position of the cover lid;
- moving the actuatable linkage in the second direction between a raised position and a lowered position; and
- moving the actuatable linkage being in the first direction with the cover lid through the first range of motion of the cover lid.
18. The method of claim 17, wherein the actuatable linkage is coupled to and extends transversely across the platen in a direction perpendicular to the first direction.
19. The method of claim 17, further comprising exerting a compressive force against the platen in the lowered position of the platen and the actuatable linkage.
20. The method of claim 19, wherein the compressive force is exerted using an elastically deformable member between the actuatable linkage and the platen.
Type: Application
Filed: Aug 24, 2021
Publication Date: Feb 10, 2022
Applicant: LIFE TECHNOLOGIES CORPORATION (Carlsbad, CA)
Inventors: Zeqi TAN (Singapore), Wuh Ken LOH (Singapore), Siew Yin LEE (Singapore), Kuan Moon (Bernard) BOO (Singapore)
Application Number: 17/410,060