DUAL CHAMBER REAGENT MIXING CONTAINER
20180045627 ยท 2018-02-15
Inventors
Cpc classification
B01F35/7139
PERFORMING OPERATIONS; TRANSPORTING
B01F33/50111
PERFORMING OPERATIONS; TRANSPORTING
B65D81/3255
PERFORMING OPERATIONS; TRANSPORTING
B01L3/523
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/16
PERFORMING OPERATIONS; TRANSPORTING
G01N35/10
PHYSICS
B65D51/1688
PERFORMING OPERATIONS; TRANSPORTING
B65D51/002
PERFORMING OPERATIONS; TRANSPORTING
B01F35/7174
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/047
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0861
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0683
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/044
PERFORMING OPERATIONS; TRANSPORTING
B01L3/52
PERFORMING OPERATIONS; TRANSPORTING
B01F2101/23
PERFORMING OPERATIONS; TRANSPORTING
B01F35/7163
PERFORMING OPERATIONS; TRANSPORTING
B01F33/452
PERFORMING OPERATIONS; TRANSPORTING
International classification
G01N35/10
PHYSICS
B65D51/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Described is an automated reagent mixing container for separately storing and automatically mixing together at least two stored reagent components.
Claims
1. A reagent mixing container, comprising: (a) a first chamber having a first end, a second end, and a lumen extending therebetween; (b) a supplemental chamber having a first end, a second end, and a lumen therebetween, wherein said second end of said first chamber and said second end of said supplemental chamber are adjacent; (c) a stopper comprising a first position and a second position, wherein in said first position said stopper is positioned to seal the lumen of said first chamber at said second end of said first chamber and the lumen of said supplemental chamber at said second end of said supplemental chamber, and in said second position, said stopper is displaced or compromised from said first position, whereby the lumen of said supplemental chamber is co-extensive with the lumen of said first chamber; and, (d) a plunger sealingly positioned at the first end of said supplemental chamber, and slideably moveable in the lumen of said supplemental chamber from the supplemental chamber first end towards said supplemental chamber second end.
2. The reagent mixing container of claim 1 further comprising a reagent component in one of the first chamber and the supplemental chamber.
3. The reagent mixing container of claim 2 wherein said reagent component in one of the first chamber and the supplemental chamber comprises a powder.
4. The reagent mixing container of claim 1 wherein said stopper is elastomeric.
5. The reagent mixing container of claim 1 wherein said stopper encloses a magnetic bar.
6. The reagent mixing container of claim 1 wherein said stopper encloses at least one magnetic bead.
7. The reagent mixing container of claim 1 wherein said stopper is friction fit between said second end of said first chamber and said second end of said supplemental chamber.
8. The reagent mixing container of claim 1 wherein said stopper is self-lubricating.
9. The reagent mixing container of claim 7 wherein said stopper encloses a magnetic bar.
10. The reagent mixing container of claim 1 wherein said stopper comprises a one-way valve.
11. The reagent mixing container of claim 1 wherein one of said first chamber or said supplemental chamber encloses magnetic particles.
12. A system for automated mixing of reagents, comprising: a) a reagent mixing container comprising, (i) a first chamber comprising a first end, a second end, and a lumen extending therebetween, (ii) a supplemental chamber comprising a first end, a second end, and a lumen therebetween, wherein said second end of said first chamber and said second end of said supplemental chamber are adjacent, (iii) a stopper comprising a first position and a second position, wherein in said first position said stopper is positioned to seal the lumen of said first chamber at said second end of said first chamber and the lumen of said supplemental chamber at said second end of said supplemental chamber, and in said second position, said stopper is displaced or compromised from said first position, whereby the lumen of said supplemental chamber is co-extensive with the lumen of said first chamber, and, (iv) a plunger sealingly positioned at the first end of said supplemental chamber, and slideably moveable in the lumen of said supplemental chamber from the supplemental chamber first end towards said supplemental chamber second end; b) an actuator for slideably moving the plunger into the lumen of the supplemental chamber; c) a stepper motor for driving the actuator; and d) an electro-magnetic coil for driving rotation of the reagent mixing container.
13. The reagent mixing container of claim 2 wherein said reagent component comprises a concentrated PT reagent.
14. The reagent mixing container of claim 2 wherein said reagent component comprises a concentrated latex D-Dimer reagent.
15. The reagent mixing container of claim 2 wherein said reagent comprises a buffer or water.
16. A method for automated reagent mixing in a clinical analyzer, comprising: providing a system for automated mixing of reagents, comprising: a) a reagent mixing container comprising, (i) a first chamber comprising a first end, a second end, and a lumen extending therebetween, (ii) a supplemental chamber comprising a first end, a second end, and a lumen therebetween, wherein said second end of said first chamber and said second end of said supplemental chamber are adjacent, (iii) a stopper comprising a first position and a second position, wherein in said first position said stopper is positioned to seal the lumen of said first chamber at said second end of said first chamber and the lumen of said supplemental chamber at said second end of said supplemental chamber, and in said second position, said stopper is displaced or compromised from said first position, whereby the lumen of said supplemental chamber is co-extensive with the lumen of said first chamber, and, (iv) a plunger sealingly positioned at the first end of said supplemental chamber, and slideably moveable in the lumen of said supplemental chamber from the supplemental chamber first end towards said supplemental chamber second end; b) an actuator for driving the plunger into the lumen of the supplemental chamber, c) a stepper motor for driving the actuator, and, d) an electro-magnetic coil for driving rotation of the reagent mixing container; providing a first reagent component in said first chamber and a second reagent component in said supplemental chamber; transferring the plunger by said actuator from a non-activated position at the first end of said supplemental chamber to an activated position at the second end of said supplemental chamber; releasing said stopper; rotating said reagent mixing container; and mixing said first reagent components and second reagents together.
17. A method for automated reagent mixing in a clinical analyzer, comprising: providing a system for automated mixing of reagents, comprising: a) a reagent mixing container comprising, (i) a first chamber having a first end, a second end, and a lumen extending therebetween, (ii) a supplemental chamber having a first end, a second end, and a lumen therebetween, wherein said second end of said first chamber and said second end of said supplemental chamber are adjacent, (iii) a stopper comprising a first position and a second position, wherein in said first position said stopper is positioned to seal the lumen of said first chamber at said second end of said first chamber and the lumen of said supplemental chamber at said second end of said supplemental chamber, and in said second position, said stopper is displaced or compromised from said first position, whereby the lumen of said supplemental chamber is co-extensive with the lumen of said first chamber, (iv) a plunger sealingly positioned at the first end of said supplemental chamber, and slideably moveable in the lumen of said supplemental chamber from the supplemental chamber first end towards said supplemental chamber second end; b) an actuator for driving the plunger into the lumen of the supplemental chamber, c) a stepper motor for driving the actuator; transferring the plunger by said actuator from a non-activated position to an activated position; releasing said stopper; providing a first reagent component in said first chamber and a second reagent component in said supplemental chamber; actuating a motor to rotate a magnetic bar, or at least one magnetic particle; and mixing said first reagent components and said second reagents together.
18. The method of claim 16 wherein releasing said stopper comprises displacing said stopper.
19. The method of claim 16 wherein releasing said stopper comprises opening a valve.
20. The method of claim 17 wherein releasing said stopper comprises opening a valve.
21. The method of claim 17 wherein releasing said stopper comprises displacing said stopper.
22. A method for introducing reagents into an automatic reagent mixing container, comprising: providing a reagent mixing container comprising: (i) a first chamber comprising a first end, a second end, and a lumen extending therebetween, (ii) a supplemental chamber comprising a first end, a second end, and a lumen therebetween, wherein said second end of said first chamber and said second end of said supplemental chamber are adjacent, (iii) a stopper, (iv) a perforatable, self-sealing cap positioned at the first open end of said first chamber, and (v) a plunger sealingly positioned at the first end of said supplemental chamber, and slideably moveable in the lumen of said supplemental chamber from the supplemental chamber first end towards said supplemental chamber second end; sealing the first end of said supplemental chamber with said plunger; introducing a liquid component into said supplemental chamber; lyophilizing the liquid component in said supplemental chamber; sealing said second end of said supplemental chamber with said stopper; introducing a liquid into said first chamber; inserting said resealable cap into said first end of said first chamber to form a seal, whereby said supplemental chamber and said first chamber are air tight.
Description
BRIEF DESCRIPTION OF THE FIGURES
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[0025]
DESCRIPTION OF THE INVENTION
[0026] Described below is an automated dual chamber reagent mixing container for separately storing and automatically mixing together at least two stored reagents, methods for mixing stored reagents, and methods for manufacturing the dual chamber reagent mixing container with its content for use in an automated clinical analyzer, including hemostasis analyzers, immunoassay analyzers, and chemistry analyzers, to name a few. Various combinations and arrangements of reagents and chambers are contemplated by the invention.
[0027] These and other objects, along with advantages and features of the present invention described herein, will become apparent through references to the following description and the claims. Furthermore, it is to be understood that the features of the various embodiments described herein are not mutually exclusive and can exist in various combinations and permutations.
[0028] In one aspect, the invention is directed to a device for storage of and automated mixing of two reagents for use in an automated clinical analyzer, for example, Hemostasis Analyzer, ACLTOP 300, 500 and 700 series, (Instrumentation Laboratory Company, Bedford, Mass.).
[0029] Referring to
[0030] The supplemental chamber 14 has a second end 15 positioned adjacent the second end 13 of the first chamber 12, a first end 17 opposite the second end 15, and a lumen 28 extending between the first end 17 and the second end 15 of the supplemental chamber 14. The volume of the supplemental chamber 14 may be about 0.1 ml to 100 ml. Each of the first chamber 12 and the supplemental chamber 14 may enclose one or more liquid or dry reagents.
[0031] With continued reference to
[0032] The resealable cap 20 is positioned at an opening of the first end or top 11 of the first chamber 12 and is perforatable when a probe, such as a pipette or needle (not shown) pierces the cap 20. The cap 20 reseals when the probe is withdrawn. When the reagent mixing container 10 is not in use, the cap 20 is closed to seal the first chamber 12 from room air thereby preventing evaporation of contents within the chambers of the reagent mixing container 10.
[0033] Referring to
[0034] When the stopper 16 is displaced or the stopper 16 comprises a one way valve that is opened, the lumen 28 of the supplemental chamber 14, and the lumen 26 of the first chamber 12, are co-extensive and in fluid communication.
[0035] In various embodiments of the invention, the stopper 16 is elastomeric, for example, rubber, or plastic, and/or coated with a self-lubricating material such as Teflon (polytetrafluoroethylene). In one embodiment of the invention, the stopper 16 is a compressible material, such as rubber or plastic, or a self-lubricating coated material 23 any one of which encloses a rotatable magnetic bar 22, illustrated in
[0036] In an embodiment of the invention, discussed in greater detail with respect to
[0037] As illustrated in
[0038] Referring to
[0039] As illustrated in
[0040] In another aspect, the invention is directed to a system for automated mixing of reagents in a clinical analyzer.
[0041] Referring now to
[0042] In the configuration represented by
[0043] According to one embodiment of the method of the invention, the stopper 16 is unseated or the valve-stopper 16 is opened by the action of the plunger 18 when the plunger 18 is advanced by, for example, the linear actuator 32 activated by the stepper motor 34, towards the stopper 16 in the lumen 28 of the supplemental chamber 14 from the first end 17 of the supplemental chamber 14 towards the second end. Advancing the plunger 18, as illustrated in
[0044] Mixing of the reagents components of the first chamber 12 with the reagents components of the second chamber 14 begins after the stopper 16 is in the second position. As discussed above, in one embodiment according to the method of the invention, the stopper encasing a magnetic stir bar 22 or alternatively one or more magnetic particles (not shown) is activated. In an embodiment of the method of the invention, the magnetic mixing bar 22 or the one or more magnetic particles is operably joined to the electromagnetic coil or a magnet 36. The electromagnetic coil 36 actuates the magnetic bar 22 or magnetic particles, illustrated in
[0045] Alternatively, the regent components of the first chamber 12 and the supplemental chamber 14 are mixed together in the first chamber 12 by rotation, such as by oscillation, of the reagent mixing container 10.
[0046] In yet another aspect, the invention is directed to a method for making the reagent mixing container 10 described above. Referring to
[0047] Still referring to
[0048] Referring now to
[0049] Referring to
[0050] Thus, in an embodiment of the invention, during or after lyophilization of the liquid reagent in the reagent mixing container 10, the liquid reagent or the lyophilized version of the liquid reagent remains separated from the contents, such as a diluent or a concentrate that is placed in the lumen 28 of the supplemental chamber 14. Upon sealing, the lyophilized powder is stored without loss of activity or evaporation until mixing of the lyophilized powder with a diluent is desired.
[0051] The advantages of the invention are that the reagent preparation, i.e., lyophilization of a liquid reagent in the first chamber 12, and the reconstitution of the lyophilized component with a dilution solution, such as a diluent stored in the supplemental chamber 14, and mixing of the two reagent components can be accomplished automatically in a clinical analyzer without manual intervention, thereby eliminating the possibility of erroneous reagent preparation due to human error, inadvertent contamination of an operator while mixing reagents manually, or inadvertent loss of reagents. In addition, because the volume of each reagent components is defined by the size of the chambers 12 and 14 in the container 10, the ratio at which the two components can be mixed can be controlled.
EXEMPLIFICATIONS
[0052] An Exemplary Dual Chamber Reagent Mixing Container for Hemostasis Testing in an Automated Clinical Hemostasis Analyzer Instrument
[0053] A specific non-limiting example of the dual chamber reagent mixing container according to the invention is a reagent container for prothrombin time (PT) testing by a clinical hemostasis analyzer instrument. The reagent for PT testing contains two components: a diluent and a concentrated PT reagent. The volume ratio between the diluent and the PT reagent is 19:1. Each PT test requires 100 l diluted PT reagent. A container useful for PT tests in an automated clinical analyzer would require between 500 to 1000 PT tests. A 1000 PT test container requires 100 ml of diluted PT reagent, namely 95 ml diluent and 5 ml concentrated PT reagent. In the exemplary container shown in
[0054] An Exemplary Dual Chamber Reagent Mixing Container for Analyte Testing in an Automated Clinical Analyzer
[0055] A second non-limiting example of the dual chamber reagent mixing container according to the invention is a reagent container for latex reagent of D-Dimer testing. The latex reagent for D-Dimer is prepared by diluting a concentrated latex reagent (Instrumentation Laboratory Company) with deionized water in a 1:1 volume ratio of concentrated latex reagent:deionized water. Each D-dimer test requires 100 l of diluted D-dimer latex reagent. A container for 1000 tests requires 100 ml diluted-dimer latex reagent. Therefore, in this exemplary container according to the invention, illustrated in