EP0875291A2

Dual chamber disposable reaction vessel for amplification reactions, reaction processing station therefor, and methods of use

Abstract

A reaction vessel for a nucleic acid amplification reaction has a first chamber containing an amplification reagent mix, a second chamber containing an amplification enzyme, and a fluid channel or chamber connecting the first and second chambers together. A fluid sample is introduced into the first chamber. After a denaturation and primer annealing process has occurred in the first chamber, the fluid chamber is opened to allow the solution of the reagent and fluid sample to flow into the second chamber. The second chamber is maintained at an optimal temperature for the amplification reaction. A station is described for processing test strips incorporating the reaction vessels. The station includes temperature and vacuum control subsystems to maintain proper temperatures in the reaction vessel and effectuate the transfer of the fluid from one chamber to the other in an automated fashion without human intervention.

EP0875291A2, drawing sheet 1
Sheet 1 of 28

Term

Term ended

Projected expiry passed 28 April 2018, 8.4 years ago.

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  2. Filed
  3. Published
  4. Projected expiry
  5. Today

23 claims: 16 independent, 7 dependent

  1. 1
    A dual chamber reaction vessel for a nucleic acid amplification reaction, characterised in that it comprises:a first chamber for receiving a fluid sample, the said first chamber being loaded with one or more amplification reagents;a second chamber physically isolated from the said first chamber;one or more enzymes for the said reaction either in the said second chamber or in fluid communication with the said second chamber;and a fluid channel connecting the said first chamber to the said second chamber.
  2. 4
    A vessel as claimed in any of claims 1 to 3 wherein it further comprises a vacuum port in fluid communication with the said second chamber, such that the application of vacuum to the said vacuum port draws the said fluid sample from the said first chamber into the said second chamber.
  3. 5
    A dual chamber reaction vessel characterised in that it comprises:a first chamber and a second chamber joined together via a connecting conduit;and a valve means for opening the said conduit comprising: (a) a flexible conduit portion linking the said first and second chambers having a wall portion;(b) a substantially rigid seal piece disposed within the said flexible conduit;the said seal piece providing a tight seal within the said conduit portion and being held in the conduit by the said wall of the conduit portion pressed against the said seal piece;and (c) an external device for constricting the said conduit portion;the said conduit piece cooperating with the said external device for constricting the said conduit portion, the said conduit portion being positioned in relation to the said external device such that relative motion between the said conduit portion and the said external device causes the said constricting device to act on the said seal piece to open the said conduit portion and create a passage within the said conduit portion at the point where the said seal piece is located.
  4. 8
    A vessel as claimed in any of claims 5 to 7 wherein the said conduit piece further comprises a relatively yielding wall and the external constriction device is operative to make an impression of the shape of the outside of the seal piece in the said wall to create an imprint on the inside of the said wall to allow an interstitial flow between the said seal piece and the said wall after action of the constriction device.
  5. 9
    A vessel as claimed in any of claims 5 to 8 wherein the said first and second reaction vessel and the said conduit portion are made from a single moulding of plastic material.
  6. 10
    A vessel as claimed in any of claims 5 to 9 wherein the said external constriction device comprises a pair of arms, the said arms cooperating with the said seal piece to move the said seal piece from a first location in the said conduit portion to a second location in the said conduit portion when the said pair of arms are moved relative to the said dual chamber reaction vessel.
  7. 11
    A two-piece disposable reaction vessel characterised in that it comprises:a first piece comprising a first chamber containing an amplification reagent;and a second piece comprising a second chamber containing an amplification enzyme;the said first and second pieces being constructed so as to permit the said first and second pieces to be securely joined into a dual chamber reaction vessel such that a fluid sample in the said first chamber may pass into the said second chamber.
  8. 12
    A reaction vessel for a nucleic acid amplification reaction characterised in that it comprises:an amplification well;a channel separated from the said amplification well by a heat and moisture barrier;a carrier in the said channel carrying an amplification enzyme;the said carrier being moveable within the said channel such that the said carrier may be moved through the said heat and moisture barrier to deliver the said enzyme to the said amplification well.
  9. 13
    A nucleic acid amplification station for a test strip comprising a dual chamber reaction vessel comprising a first chamber and a second chamber, characterised in that the station comprises:a tray for at least one test strip, the said tray comprising a first portion and a second portion positioned adjacent to the said first and second chambers of the said dual chamber reaction vessel, respectively;a temperature control subsystem for the said tray maintaining the said first and second portions of the said tray at first and second different amplification reaction temperatures so as to maintain the said first and second chambers at the said first and second amplification reaction temperatures, respectively;a fluid conduit opening mechanism for opening a fluid conduit in the said dual chamber reaction vessel to establish fluid communication between the said first chamber and the said second chamber;and, optionally, a vacuum subsystem comprising a vacuum probe, the said test strip and vacuum probe being mutually reciprocable and the said vacuum probe cooperating with reaction wells in the said test strip for transferring a fluid sample from the said first chamber to the said second chamber via the said fluid conduit.
  10. 16
    A station as claimed in any of claims 13 to 15 wherein the said temperature control subsystem further comprises a first heat sink for heating the said first portion of the said test strip to the said first temperature and a second heat sink, isolated from the said first heat sink, for maintaining the said second portion of the said test strip at the said second temperature.
  11. 17
    A station as claimed in any of claims 13 to 16 wherein the said tray comprises a base and a plurality of raised ridges defining slots for receiving a plurality of test strips, preferably the said raised ridges being discontinuous, with a first portion of the said raised ridges in contact with a first heat sink and a second portion of the said raised ridges in contact with a second heat sink.
  12. 19
    A test strip characterised in that it comprises a reaction vessel as claimed in any of claims 1 to 12 and, optionally, an optical cuvette for conducting an optical analysis of a sample.
  13. 20
    A test strip for a nucleic acid amplification reaction characterised in that it comprises a body portion defining a plurality of wells arranged in a row and having a first end and a second end, the said second end having a cuvette for conducting an optical analysis of a sample, and an aperture provided in the said body portion adjacent to said first end of said test strip for receiving a disposable amplification reaction vessel, preferably a vessel as claimed in any of claims 1 to 12.
  14. 21
    A method for conducting a nucleic acid amplification reaction characterised in that it comprises:providing a dual chamber reaction vessel comprising first and second chambers capable of being placed in fluid communication, the said dual chamber reaction vessel being loaded with one or more amplification reagents in the said first chamber and one or more amplification enzymes in the said second chamber;sealing the said first and second chambers with the said amplification reagent(s) and amplification enzyme(s) from the environment with a membrane;and, at the time of use of the said dual chamber reaction vessel, piercing the said membrane with an implement and loading a sample into the said first chamber;heating the said first chamber and the said sample to a first relatively high temperature, while maintaining the said second chamber at a second relatively low temperature;cooling the said first chamber and a solution of the said sample and the said amplification reagent(s) from the said first relatively high temperature;either passing the said solution from the said first chamber to the said second chamber, or introducing the contents of the said second chamber into the said first chamber;and amplifying the said solution either in the said second chamber or in the said first chamber by means of the said amplification enzyme;and, optionally, applying vacuum to the said second chamber so as to draw the said solution through the said fluid channel from the said first chamber to the said second chamber, if the said amplification reaction is to occur in the said second chamber.
  15. 22
    A method for conducting a nucleic acid amplification reaction characterised in that it comprises:providing a reaction vessel comprising a first amplification chamber and a second chamber separated from the said amplification chamber by a heat and moisture barrier;loading one or more amplification reagents into the said amplification chamber and one or more amplification enzymes into the said second chamber;loading a sample into the said amplification chamber;heating the said first chamber and the said sample to a first relatively high temperature greater than or equal to 65 degrees C, while maintaining the said enzyme in the said second chamber at a second relatively low temperature;cooling the said first chamber and a solution of the said sample and the said amplification reagent(s);introducing the said amplification enzyme(s) into the said amplification chamber by forcing the said enzyme(s) through the said heat and moisture barrier into the said amplification chamber;and amplifying the said solution in the said amplification chamber.
  16. 23
    A process for transferring a liquid within a reaction vessel comprising a first chamber, which communicates with the outside by means of a first conduit, and a second chamber, which communicates with the first chamber by means of a second connecting conduit, in the presence of an external gaseous environment at a pressure termed high pressure characterised in that it comprises:(a) isolating the said first and second chambers from each other by closing the said second connecting conduit, the said first and second chambers being at the said high pressure;(b) reducing the pressure in the said first chamber to a low pressure lower than the said high pressure, the said second chamber being maintained at the said high pressure;(c) introducing a fluid sample into the said first chamber via the said first conduit, the said first conduit being placed in fluid communication with the said fluid sample, and thereafter closing the said first conduit;(d) opening the said conduit to cause the pressure in the two chambers to become balanced at an intermediate pressure having a value between the said high and low pressures;(e) opening the said first conduit to cause the said first chamber to be in communication with the outside at high pressure;and (f) transferring the said liquid from the first chamber to the second chamber via the second conduit with the pressure in the two chambers finally reaching the said high pressure.
Independent claims16