Method of making a frangible seal in a sample processing device
11345097 · 2022-05-31
Assignee
Inventors
- Allen C. Dennison (Whitinsville, MA, US)
- Jervis P. Lynch (Doylestown, PA, US)
- Colby C. Spencer (West Boylston, MA, US)
Cpc classification
B29C66/91431
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502738
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/712
PERFORMING OPERATIONS; TRANSPORTING
B01L3/50273
PERFORMING OPERATIONS; TRANSPORTING
B29C66/83221
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/753
PERFORMING OPERATIONS; TRANSPORTING
B29C66/1122
PERFORMING OPERATIONS; TRANSPORTING
B29C66/81427
PERFORMING OPERATIONS; TRANSPORTING
B29C66/9292
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502707
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/929
PERFORMING OPERATIONS; TRANSPORTING
B29C66/4312
PERFORMING OPERATIONS; TRANSPORTING
B29C66/9241
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0481
PERFORMING OPERATIONS; TRANSPORTING
B29C66/91935
PERFORMING OPERATIONS; TRANSPORTING
B29C66/949
PERFORMING OPERATIONS; TRANSPORTING
B29C66/857
PERFORMING OPERATIONS; TRANSPORTING
B29C66/73921
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A sealing device configured to create a frangible seal in a sample processing device is described. Methods of using the device to create one or more frangible seals in a sample processing device are also described.
Claims
1. A sealing press comprising a pair of isothermally heated dies, the pair including a forward and a reverse die each comprising a sealing surface opposed to each other and adapted to hold therebetween a sample processing device positioned along a sealing plane, wherein the forward and reverse dies are each independently positioned on and controlled by a forward and reverse alignment slider, respectively, the forward and reverse alignment sliders are each mounted to a forward and reverse caliper arm, respectively, and the forward and reverse caliper arms are each mounted to a mechanical linkage connected to an actuator which provides thrust for synchronized movement of the forward and reverse dies, wherein the forward die is connected to an independent forward die control mechanism comprising a forward die driver connected to a supplemental forward die linear slider and an independent forward die controller, wherein the mechanism independently actuates the forward die from the forward caliper arm, thereby adjusting a contact pressure between the sealing surfaces.
2. The sealing press of claim 1, wherein the mechanical linkage comprises a lever, a first con rod and a second con rod, wherein the lever comprises a central pivot point and a first and second end, wherein the first con rod is pivotally connected to the first end of the lever and pivotally connected to one end of the reverse caliper arm, wherein the second con rod is pivotally connected to the second end of the lever and pivotally connected to one end of the forward caliper arm, wherein the forward and reverse caliper arms are connected to the forward and reverse alignment sliders, respectively.
3. The sealing press of claim 1, wherein the pair of isothermally heated dies are configured to be heated to a constant temperature below a melt temperature of a substrate of the sample processing device.
4. The sealing press of claim 3 wherein the substrate comprises polypropylene and the dies are heated to about 105-115° C.
5. A method of creating a frangible seal in a sample processing device comprising a hollow tubing substrate having an outer surface and an inner surface, wherein the method is performed by a sealing press comprising a pair of isothermally heated dies, the pair including a forward and a reverse die each comprising a sealing surface opposed to each other and adapted to hold there between a sample processing device positioned along a sealing plane, wherein the forward and reverse dies are each independently positioned on and controlled by a forward and reverse alignment slider, respectively, the forward and reverse alignment sliders are each mounted to a forward and reverse caliper arm, respectively, and the forward and reverse caliper arms are each mounted to a mechanical linkage connected to an actuator which provides thrust for synchronized movement of the forward and reverse dies, wherein the forward die is connected to an independent forward die control mechanism comprising a forward die driver connected to a supplemental forward die linear slider and an independent forward die controller, wherein the mechanism independently actuates the forward die from the forward caliper arm, thereby adjusting a contact pressure between the sealing surfaces, the method comprising: (a) maintaining the pair of isothermally heated dies at a constant temperature below a melt temperature of the substrate of the sample processing device; (b) positioning the substrate along the sealing plane of the sealing press; (c) pressing the sealing surfaces of the forward and reverse die into the substrate of the sample processing device at a pressure of approximately 50-100% of a compressive yield strength of the substrate for a time sufficient to transmit heat through an outer surface of the substrate to the inner surfaces of the substrate, thereby forming a partially molten seal; and (d) withdrawing the forward and reverse dies and holding the forward and reverse dies tensionless to allow the partially molten seal to cool and shrink.
6. The method of claim 5, wherein the pair of isothermally heated dies are maintained at a constant temperature approximately 15-25° C. below the melt temperature of the tubing substrate.
7. The method of claim 5, wherein the substrate comprises polypropylene and the pair of isothermally heated dies are maintained at a constant temperature of approximately 105-115° C.
8. The method of claim 5, wherein the sealing surfaces of the forward and reverse dies are pressed into the substrate at a pressure of approximately 300-600 psi.
9. The method of claim 5, wherein the forward and reverse dies are pressed against the substrate for about 3-6 seconds.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) Unless otherwise defined herein, scientific and technical terms used in connection with the present disclosure shall have the meanings that are commonly understood by those of ordinary skill in the art. Further, unless otherwise required by context, singular terms shall include pluralities and plural terms shall include the singular. The articles “a” and “an” are used herein to refer to one or to more than one (i.e., to at least one) of the grammatical object of the article. By way of example, “an element” means one element or more than one element.
(7) The methods described herein are used to manufacture a sample processing device configured to perform a nucleic acid amplification technique. Nucleic acids extracted from the biological samples may be further processed by amplifying the nucleic acids using at least one of the following exemplary methods: polymerase chain reaction (PCR), rolling circle amplification (RCA), ligase chain reaction (LCR), transcription mediated amplification (TMA), nucleic acid sequence based amplification (NASBA), and strand displacement amplification reaction (SDAR). In some embodiments, the nucleic acids extracted from the organism can be ribonucleic acids (RNA) and their processing may include a coupled reverse transcription and polymerase chain reaction (RT-PCR) using combinations of enzymes such as Tth polymerase and Taq polymerase or reverse transcriptase and Taq polymerase. In some embodiments, nicked circular nucleic acid probes can be circularized using T4 DNA ligase or Ampligase™ and guide nucleic acids, such as DNA or RNA targets, followed by detecting the formation of the closed circularized probes after an in vitro selection process. Such detection can be through PCR, TMA, RCA, LCR, NASBA or SDAR using enzymes known to those familiar with the art.
(8) In exemplary embodiments, the amplification of the nucleic acids can be detected in real time by using fluorescent-labeled nucleic acid probes or DNA intercalating dyes as well as a photometer or charge-coupled device in the molecular analyzer to detect the increase in fluorescence during the nucleic acid amplification. These fluorescently-labeled probes use detection schemes well known to those familiar in the art (i.e., TaqMan™, molecular Beacons™, fluorescence resonance energy transfer (FRET) probes, Scorpion™ probes) and generally use fluorescence quenching as well as the release of quenching or fluorescence energy transfer from one reporter to another to detect the synthesis or presence of specific Nucleic acids.
(9) In one embodiment, the methods disclosed herein are used to manufacture a device comprising self-contained microscale to macroscale channels, chambers, reservoirs, detection and processing regions. The device can be a cartridge, device, container, or pouch, e.g., as described in U.S. Pat. Nos. 6,440,725; 6,783,934; 6,818,185; 6,979,424; 8,580,559; and 8,940,526, as well as devices such as those available from Cepheid Corp., Idaho Technology, Inc., and/or Biofire Diagnostics, Inc.
(10) In a specific embodiment, the methods described herein are used to form a seal in a sample processing device such as that described in U.S. Pat. No. 7,718,421. Segmented devices, such as those described in U.S. Pat. No. 7,718,421, provide a convenient vessel for receiving, storing, processing, and/or analyzing a biological sample. In certain embodiments, the segmented tube facilitates sample processing protocols involving multiple processing steps. In certain embodiments, a reagent is introduced into a segment of the tube, sample is collected in the tube, and the tube is then positioned in an analyzer which can manipulate the tube and its contents to process the sample.
(11) One embodiment of a sample processing device is shown in
(12) In a specific embodiment, the linear arrangement depicted in
(13) In a particular embodiment, one or more frangible or breakable seals, e.g., 210, can be incorporated in a substrate of the sample processing device to selectively close and open a chamber in the substrate of the sample processing device to allow reagents stored in a first chamber, e.g., 110, to be introduced to an adjacent chamber in the tube, e.g., 120. In some embodiments, a combination of a breakable seal and a pressure gate may be provided for transferring the contents of the reagent introduction port to the adjacent segment.
(14) A frangible seal is one that is easily broken, torn, or cut, including but not limited to, a blister pack or a foil seal. In one embodiment, the frangible seal is resealable or self-sealing. A frangible seal is incorporated into the substrate of the sample processing device to prevent mixing of the reagents positioned within a given segment during storage, but which can be burst or peeled to allow mixing between segment during assay processing upon selective application of a suitable pressure to the outer surface of one or more segments of the device without breaking the outer surface of the substrate.
(15) A device to create a frangible seal in a sample processing device is illustrated in
(16) In one embodiment, each of the forward and reverse alignment sliders are mounted to a forward 410 and reverse caliper arm 411, respectively, and the forward and reverse caliper arms are each mounted to a mechanical linkage 412 connected to the actuator 409. In this embodiment, the mechanical linkage comprises a lever 413 to which first and second con rods (414, 415, respectively) are attached. The lever 413 comprises a central pivot point 416 and a top and bottom end (413a, 413b, respectively). The first con rod 414 comprises a proximate and a distal end (414a, 414b, respectively), and the first con rod 414 is pivotally connected at the distal end 414b to the top end 413a of the lever 413 and pivotally connected to the bottom end 411a of the reverse caliper arm 411. Likewise, the second con rod 415 comprises a proximate and a distal end (415a, 415b, respectively) and the second con rod 415 is pivotally connected at the proximate end 415a to the bottom end of the lever 413b and pivotally connected at the distal end 415b to the bottom end 410a of the forward caliper arm 410. Moreover, the upper portions (410b, 411b) of the first and second caliper arms (410, 411) are connected to the forward and reverse alignment sliders (407, 408), respectively.
(17) In addition, the sealing press also includes an independent forward die control mechanism 419 which is connected to the forward die and comprises a forward die driver 420 connected to a supplemental forward die linear slider 421 and an independent forward die controller 422. The forward die control mechanism independently actuates the forward die from the forward caliper arm, thereby adjusting the contact pressure between the sealing surfaces of the dies.
(18) In practice, a frangible seal is created in a sample processing device by heating the sealing dies to a constant temperature below the melt temperature of the substrate of the sample processing device. If the substrate comprises a plastic substance, e.g., polypropylene, with a melt temperature of about 125-135° C., the sealing dies are heated to a constant temperature of about 15-25° C. below the melt temperature, i.e., 105-115° C. Once the dies reach the desired temperature, the dies are maintained at that temperature during operation. The substrate of the sample processing device (e.g., 423 in
(19) The process can be repeated to create one or more additional frangible seals in the substrate of the sample processing device. For example, the process can be initiated by placing a volume of a reagent at the base of the hollow substrate in the sample processing device, and then the sample processing device is positioned in the device described herein and illustrated in