PCR SAMPLE BLOCK TEMPERATURE UNIFORMITY
20210387200 · 2021-12-16
Inventors
Cpc classification
B01L2300/046
PERFORMING OPERATIONS; TRANSPORTING
B01L3/50851
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/16
PERFORMING OPERATIONS; TRANSPORTING
B01L7/52
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A sample plate for a thermal cycler suitable for performing a polymerase chain reaction (PCR) procedure includes a base plate and a number of reaction vessels extending upward from the base plate. The sample plate further includes a vertical wall surrounding an outer perimeter defined by the reaction vessels. The vertical wall can be a continuation vertical wall, an intermittent vertical wall, or a perforated vertical wall. The intermittent vertical wall can include a plurality of wall portions, each of which plurality of wall portions is separated from other wall portions via a plurality of gaps.
Claims
1. A sample plate for a thermal cycler, the sample plate comprising: base plate; a number of reaction vessels extending upward from the base plate, the reaction vessels defining an outer perimeter; and a vertical wall surrounding the reaction vessels.
2. The sample plate of claim Error! Reference source not found., wherein the sample plate is monolithic.
3. The sample plate of claim 2, wherein the sample plate comprises aluminum.
4. The sample plate of claim 3, further comprising thermal insulation surrounding and in contact with the vertical wall.
5. The sample plate of claim 4, wherein the thermal insulation comprises a polymer.
6. The sample plate of claim 1, wherein the vertical wall has a same height as the reaction vessels.
7. The sample plate of claim 1, wherein the vertical wall is continuous.
8. The sample plate of claim 1, wherein the vertical wall is intermittent.
9. The sample plate of claim 8, wherein the intermittent vertical wall comprises a plurality of wall portions separated by a plurality of gaps.
10. The sample plate of claim 8, wherein the reaction vessels are arranged to create a plurality of corners, and wherein a wall portion of the vertical wall extends around each of the plurality of corners.
11. The sample plate of claim 1, wherein the vertical wall is perforated.
12. The sample plate of claim 11, wherein the reaction vessels are arranged to create a plurality of corners, and wherein the perforations are located away from the corners.
13. A thermal cycling device for performing a polymerase chain reaction (PCR) procedure, the thermal cycling device comprising: a heat sink; one or more thermoelectric devices configured to produce a temperature differential in response to electric currents passing through the thermoelectric devices, wherein the one or more thermoelectric devices are in thermal contact with the heat sink; and a sample plate in thermal contact with the one or more thermoelectric devices, wherein the sample plate comprises a base plate; a number of reaction vessels extending upward from the base plate, the reaction vessels defining an outer perimeter; and a vertical wall surrounding the outer perimeter of the reaction vessels.
14. The thermal cycling device of claim 13, further comprising a controller configured to cycle the temperature of the reaction vessels according to a predetermined schedule, by controlling the electric currents passing through the thermoelectric devices.
15. The thermal cycling device of claim 14, further comprising a base that houses the heat sink.
16. The thermal cycling device of claim 15, further comprising a lid that is openable and closeable to provide access to the reaction vessels.
17. The thermal cycling device of claim 16, wherein the lid is heated during the PCR procedure.
18. The thermal cycling device of claim 17, wherein when the thermoelectric devices are controlled to maintain the sample plate at a nominal temperature of 95° C., a variation of temperature between the reaction vessels of the sample plate is less than 1° C.
19. A method, comprising: providing a PCR thermal cycler device as in claim 6; receiving a reagent mixture into the reaction vessels; and controlling a thermoelectric devices to bring the sample plate to a nominal temperature of 95° C., wherein when the sample block is held at a nominal temperature of 95° C., a variation of temperature between the reaction vessels of the sample plate reaches a value of less than 1° C.
20. The method of claim 19, further comprising controlling the thermoelectric devices as needed to cycle the temperature of the sample block in accordance with a PCR procedure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0023] Embodiments of the invention provide improved temperature uniformity among reaction vessels in a PCR thermal cycler.
[0024]
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[0026]
[0027] In operation, a controller, for example implemented on printed circuit board 203, drives thermoelectric devices 202 with varying electrical currents, to implement the thermal cycles of the PCR, heating sample block 201 to different temperatures for the proper times as needed for performing the PCR procedure. In a particular experiment, all of the reaction vessels 101 may contain the same reagent mixture, or different reaction vessels may contain different reagent mixtures, so that two or more different assays can be performed in parallel.
[0028] Although thermoelectric devices 202 may be relatively evenly distributed below sample block 201, and sample block 201 is made of a thermally conductive material such as aluminum, the temperatures of reaction vessels 101 may still differ from each other to some degree.
[0029]
[0030] In the embodiment of
[0031] Sample block 401 is preferably a monolithic piece of thermally conductive material, such as aluminum or another suitable material. Sample block 401 may be made by any suitable process, for example die casting, sintering, 3D printing, machining, or the like, or by a combination of processes.
[0032] Outer wall 403 serves to improve the temperature uniformity of reaction vessels 402 during a PCR procedure. In the absence of vertical wall 403, it is thought that the outer rows and columns of reaction vessels have more opportunity for outward heat flow, whether by radiation to the surrounding structure of the PCR cycler device in which the sample block is placed, by convection due to small air currents in the space surrounding the sample block, or by conduction outward through base plate 404. For example, the natural convection coefficients on the surfaces of the inner wells may be between 0 and 1 W/m.sup.2-K, while the same coefficients on the outer surfaces of the perimeter wells may be 5-10 W/m.sup.2-K. Vertical wall 403 may affect any or all of these heat flow mechanisms.
[0033] For example, perimeter wall 403 will be passively heated and cooled along with the wells on the sample block. The heated wall being in close proximity to the outer wells reduces the natural convection and its associated heat losses on the wells and the convection coefficients are similar to those around the inner wells. In addition, the wall acts as a physical barrier to airflow that would cool the perimeter wells. On any sample block, air surrounding the block is cooler than the air in close proximity to the block. The difference in temperature creates airflow around the outer perimeter wells. Wall 403 acts as a physical barrier to airflow around the perimeter wells and improves temperature uniformity.
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[0035]
TABLE-US-00001 TABLE 1 Band Temperature Range ° C. 501 94.91-95.12 502 94.71-94.91 503 94.50-94.71 504 94.30-94.50 505 94.09-94.30 506 93.89-94.09 507 93.68-93.89 508 93.48-93.68 509 93.27-93.48
At point 510, the modeled average temperature was 95.06° C., and at point 511, the modeled average temperature was 94.18° C., giving a temperature variation of 95.06-94.18=0.88° C.
[0036]
TABLE-US-00002 TABLE 2 Band Temperature Range ° C. 601 95.14-95.33 602 94.94-95.14 603 94.75-94.94 604 94.55-94.75 605 94.36-94.55 606 94.16-94.36 607 93.97-94.16 608 93.77-93.97 609 93.58-93.77
At point 610, the modeled average temperature was 95.27° C., and at point 611, the modeled average temperature was 94.66° C., giving a temperature variation of 95.27-94.66=0.61° C.
[0037] Thus the modeling suggests that the temperature variation across sample block 401 may be reduced by about 30 percent, as compared with a sample block lacking vertical wall 403.
[0038] For further verification, a prototype of a sample block having a vertical wall was constructed by forming the wall from sheet metal and bonding it with thermally-conductive adhesive to an existing sample block. The resulting sample block 701 is shown in
[0039] In other embodiments, additional insulation may be provided on a sample block. For example,
[0040]
TABLE-US-00003 TABLE 3 Band Temperature Range ° C. 1101 95.05-95.25 1102 94.86-95.05 1103 94.66-94.86 1104 94.47-94.66 1105 94.28-94.47 1106 94.08-94.28 1107 93.89-94.08 1108 93.69-93.89 1109 93.50-93.69
At point 1110, the modeled average temperature was 95.19° C., and at point 1111, the modeled average temperature was 94.67° C., giving a temperature variation of 95.19-94.67=0.52° C.
[0041] Thus the modeling suggests that the temperature variation across sample block 401 with added insulation 901 may be reduced by about 40 percent, as compared with a sample block lacking vertical wall 403 and lacking added insulation 901 (100×(1−0.52/0.88)=40.9), and by about 15 percent as compared to sample block 401 with vertical wall 403 but without added insulation (100×(1−0.52/0.61)=14.75).
[0042] Other variations are possible in sample blocks embodying the invention. For example,
[0043] Such a wall may reduce the mass of sample plate 1201, as compared with sample plate 401. The reduction in mass may be beneficial in that the lower mass requires less power for heating and cooling, and therefore a PCR thermal cycler including sample plate 1201 may be able to cycle the temperature of the reaction vessels more quickly, reducing the amount of time required to complete a PCR procedure. Alternatively, the lower mass may enable the use of lower power thermoelectric devices to without sacrificing cycling speed, as compared with using a sample plate with a continuous wall.
[0044] Other ways of reducing the mass of a sample plate are possible, in accordance with other embodiments of the invention. For example,
[0045] In another example,
[0046] Many other mass-reducing techniques are possible, for example varying the height or thickness of the vertical wall.
[0047] A sample plate in accordance with embodiments of the invention may be incorporated into a thermal cycler device otherwise similar to thermal cycler 100 as described above, or may be used in other applications.
[0048] It will be apparent to those skilled in the art that various modifications and variations can be made in the method and system of the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention include modifications and variations that are within the scope of the appended claims and their equivalents. It is to be understood that any workable combination of the features and capabilities disclosed herein is also considered to be disclosed.