The present invention relates generally to the detection of one or more analytes in a sample liquid using lateral flow test strips and includes a sample test cassette therefor, as well as an analyte test system utilizing the same.
The detection of analytes in a sample liquid using an immunoassay based device employing a lateral flow test strip (also often referred to as a lateral flow device or LFD) is well known. Many of these immunoassay based devices include a rigid housing encasing an elongate lateral flow test strip of known type. One such immunoassay based device is described in U.S. Pat. No. 9,833,783 and comprises a cassette formed internally with at least one elongate channel for locating therein an elongate lateral flow test strip orientated with one end in liquid communication with a liquid flow channel. A liquid receiving void is provided as an inlet for receiving a sample liquid and is in liquid communication with the flow channel at a location upstream of the at least one elongate channel. Sample liquid is pipetted into the liquid receiving void by a user and is transported under gravity to contact the end of the test strip which is in liquid communication with the liquid flow channel. Once contacted with the end of the test strip liquid flows laterally along the element by capillary flow and either any analyte therein, or a complex thereof, or some other reagent in the test strip interacts with suitable capture agents bound at one or more test zones of an analysis region of the test strip to thereby produce a detectable signal. An inspection of the analysis region is made either visually or with a reader to determine the presence of analyte in the liquid. Control zones may also be included in the analysis region and similarly inspected to determine the correct operation of the test strip or to aid in the quantitative determination of analyte in the liquid.
According to a first aspect of the present invention there is provided a sample test cassette comprising an inlet for introducing a sample liquid into the sample test cassette; and one or more elongate channels, each for receiving an elongate lateral flow test strip and each configured with a first end in liquid communication with the inlet; wherein the sample test cassette further comprises an integral mechanical transport system adapted to generate a flow of sample liquid from outside of the inlet and to the first end of each of the one or more elongate channels. The integral mechanical transport system allows for the introduction of sample liquid to each lateral flow test strip received in the elongate channel(s) in a controllable manner so that one or both the amount of sample introduced and the flow rate can be controlled and/or automated in a repeatable manner and a multiplexed test using multiple test strips may be initiated simultaneously. Such a sample test cassette may be used by essentially untrained operators with a reduced potential for operator-induced errors.
In some embodiments, the flow channel comprises a reservoir, such as may be provided by a well and/or a bibulous material, located in liquid communication with the first end of each of the one or more elongate channels. This has an advantage that an adequate volume of liquid may be retained for uptake by lateral flow test strips located in one or more of the elongate channels without the need to provide a continuous flow in the cassette.
In some embodiments the transport system comprises a piston pump having a variable volume pump chamber in fluid communication with the inlet.
In some embodiments at least a section of a wall of the sample test cassette that overlies at least a portion of each of the one or more elongate channels corresponding with an analysis zone of a lateral flow test strip received therein is adapted to allow transmission of optical radiation to and from the analysis zone. This permits detection of an analyte of interest by optical interrogation of the lateral flow test strips.
According to a second aspect of the present invention there is provided an analyte test system comprising a housing; a reading system, preferably an optical reading system; and one or more holders; wherein each of the one or more holders is configured to releasably locate a sample test cartridge as claimed in any preceding claim in a reading position, at which reading position the reading system is aligned all of the one or more elongate channels to permit an interrogation of each test strip located in the one or more elongate channels to test for the presence of an analyte in the sample, for example by detection of light after transmission through, reflection from or passive (fluorescence, say) or active (electrochemical luminescence, say) generation at, an analysis region of each test strip.
In some embodiments the reading system is an optical reading system which comprises an own light source and an own optical detector located internal of each holder. This permits movement of the holder, such as rotation of the holder into and out of the housing, whilst maintaining the alignment of the optical reading system so that interrogation may be made at different positions of the holder.
In some embodiments the analyte test system further comprises an actuator mechanism adapted to engage with the transport system of a sample test cartridge located in the holder and to actuate the transport system to generate the flow of liquid.
In some embodiments each holder holds internally an own actuator mechanism.
In some embodiments the actuator may comprise an electric motor and in other embodiments the actuator may comprise a wound spring driven motor where, usefully, the spring may be wound by the action of placing the sample test cassette in the holder or the holder in the housing.
These and other features and advantages of the present invention will now be further described with reference to, and will become apparent from, exemplary embodiments which are illustrated in the drawings of the accompanying figures, of which:
As used within this specification, including in the claims, the singular articles “a”; “an” and “the” include the plural unless the context clearly indicates otherwise. The use of the phrases “one or more”, “at least one” or similar phrases, does not alter the generality of the foregoing.
An example of a sample test cassette 2 according to the present invention is illustrated in
An example of an elongate lateral flow test strip 10 which is suitable for use in the sample test cassette 2 of the present invention is illustrated in
It will be appreciated that other, known, types of lateral flow test strip may be employed without departing from the invention as claimed, for example a lateral flow test strip generally as described above may be employed in which at least one of the sample pad 204, probe pad 206 and the waste pad 205 may be omitted.
Considering again
In the present embodiment the mechanical transport system 12 consists of a piston pump assembly which comprises a pump chamber 22 that is arranged in fluid communication with an end of the conduit 14; and a piston 24 having a first end 26 slidably engaged with an inner wall 22a of the pump chamber 22 to delimit therewith a variable volume fluid receiving space 28. A second end 30 of the piston 24 is also provided which is accessible external of the sample test cassette 2.
In some embodiments the maximum volume of the variable volume fluid receiving space 28 (i.e. when the piston 24 is at maximum extension) is selected to be approximately equal to the volume of liquid necessary to fill the reservoir 18. In this way an amount of sample liquid introduced into the sample test cassette 2 may be limited to that necessary for correct operation of the test strip(s) 10 without liquid being drawn into the variable volume fluid receiving space 28.
A part of the sample test cassette 2 which overlies at least a portion 8a of each of the one or more elongate channels 8 that corresponds with an analysis zone 208 of a lateral flow test strip 10 when the test strip 10 is received therein is constructed to permit an external optical inspection of the test strip 10, in particular of the analysis zone 208 of the test strip 10. In the present embodiment this part is provided by a transparent wall section 32. By way of example only, the transparent wall section 32 may extend to also cover the conduit 14, the reservoir 18 and the entire length of the elongate channels 8. The transparent wall section 32 may be permanently bonded to the cassette to form a fluid tight cover after insertion of the elongate lateral flow test strip(s) 10 into corresponding channel(s) 8. Thus a disposable, one-time use, sample test cassette 2, may be constructed. This at least simplifies the formation of the conduit 14 which, instead of being constructed as a bore through solid material, may now be more simply and accurately constructed as a channel to be covered by the separate transparent wall section 32.
In other embodiments, the transparent wall section 32 may be formed as a window covering essentially only the portions 8a of the elongate channel(s) 8 which will overlie the analysis zone(s) 208 of the test strip(s) 10, or may be omitted entirely and a solid wall section 34 provided to cover the conduit 14, the elongate channel(s) 8 and the reservoir 18 once the test strip(s) 10 are loaded into the elongate channel(s) 8. In such embodiments an aperture 36 is formed in the solid wall section 34 to overlie the portions 8a of the elongate channel(s) 8 that corresponds with the analysis zone(s) 208 and provides for external optical inspection of the analysis zone(s) 208. In some embodiments the transparent wall section 32 may be provided as part of a covering bonded to each of the lateral flow test strip(s) 10.
An analyte test system 38 which is suitable for use with a sample test cassette 2 described above is will now be described with reference to the illustrations contained in
The slots 42 are each adapted to releasably receive and hold a sample test cassette 2 in a reading position at which the optical reading system 48 is aligned in an optical path with the portion(s) 8a of the elongate channel(s) 8 corresponding with the analysis zone(s) 208 of the lateral flow test strip(s) 10 received therein. In the present embodiment each slot 42 is adapted to retain (usefully releasably) a holder 50 which, in turn, is adapted to releasably receive and hold a sample test cassette 2 in a cavity or slot 51 so that the sample test cassette 2 is held in the reading position internal of the holder 50 in the slot 51. In other embodiments each of the one or more slots 42 may be configured to receive and hold the sample test cassette 2 directly.
In order to provide a better understanding of the analyte test system 38 of the present invention,
In some embodiments, as illustrated in
In some embodiments, as illustrated in
An example of a holder 50 which forms a part of the analyte test system 38 of the present invention is illustrated in section in
The holder 50 of the present embodiment houses the optical reading system 48 and an actuator mechanism 60. In other embodiments one or both the optical reading system 48 and actuator mechanism 60 may be located external of the holder 50 and housed within the housing 40 of the analyte test system 38.
In some embodiments at least one electrical connector 59a is provided in the holder 50 to interface with a corresponding connector 59b located in a slot 42 of the housing 40 and thereby establish data, control signal and electrical power connections, as appropriate. A wireless communications unit, such as a known Bluetooth™ or WiFi enabled unit, may be included in the holder 50 for wireless transmission of data (including data from the optical reading system 48 and/or control signals) to and from the holder 50.
In some embodiments the at least one electrical connector may comprise a cable connector provided with an interface (such as sockets) to mate with a corresponding interface (such as pins) of a cable which terminates within the housing 40.
In some embodiments a temperature regulator 61 is also housed in the holder 50. The temperature regulator 61 may for example, comprise a Peltier heater/cooler element or a resistive heating element, together with, in some embodiments, a temperature sensor, and may be employed for incubation of the sample liquid prior to testing. The temperature regulator 61 is usefully made responsive to control signals sent via the interface 59a to maintain the sample test cassette 2 (or relevant portions thereof) at a predetermined incubation temperature for a predetermined time. Such control signals may be generated in response to signals received from the temperature sensor, when present.
The optical reading system 48 is a one known in the art for use in reading elongate lateral flow test strips 10 and in the present embodiment is an optical reading system 48. In other embodiments the reading system may be an electrical capacitance or resistance reader of known type and the test strip(s) will be selected accordingly. The optical reading system 48 comprises a light source 48a and complementary detector 48b located at a position, in this embodiment inside the holder 50, in an optical path to permit optical interrogation of the analysis zone(s) 208 of test strip(s) 10 located in the sample test cassette 2 retained in the holder 50. Typically, and as is known, the optical reading system operates to detect optical changes which occur in the analysis zone(s) 208 of the test strip(s) as a result of interaction between components in the sample liquid flowing in the test strip(s) 10 and recognition elements in the one or more test region(s) 209a,b and/or c and in the one or more control region(s) 210a. It will be appreciated that an advantage of locating both the light source 48a and the detector 48b internal of the housing 40 is that the optical path permitting the optical interrogation remains invariant irrespective of the orientation of the holder 50 so that detection may be performed independently of the orientation of the holder 50 (even when a holder, 50b say, has been rotated, for example to allow removal of the vial 56).
Data from the detector 48b, representing optical information obtained from the analysis zone(s) 208, may be transmitted to external the holder 50, for example via interfaces (connectors) 59a, 59b or via a wireless communications unit, for receipt by a data processor (not shown) which may be housed in the housing 40; or which may be located external of the housing 40, such as at a remotely located server, in communication with the analyte test system 38 via a wired or wireless communications link; or which may comprise elements located both internal the housing 40 and remote of the housing 40. However configured, the data processor is adapted, through suitable programming, to process the received data to detect changes that may have occurred in the analysis zone(s) 208 and therefrom to determine the presence of one or more analytes of interest in the sample liquid 54. The results of this determination may then be supplied for presentation on the display 44a of the analyte test system 38. The data processor may also be adapted to control the operation of the other elements of the analyte test system 38, such as control of the temperature regulator 61 and of the actuator mechanism 60.
The actuator mechanism 60 is operable to actuate the transport system 12 of a sample test cassette 2 held in the holder 50 to cause a flow of sample liquid (say sample liquid 54 held in vial 56 illustrated in
In some embodiments, the actuator mechanism 60 may comprise an arm 62 having a first end 64 pivotably mounted on a rotatable disc 66 and a detent 68 forming at least a part of a second end 70 for releasably mechanically engaging the transport system 12 at a surface 72 of the second end 30 of piston 24. The arm 62 is biased towards the piston 24, here by a spring bias 74, so that as the sample test cassette 2 is entered into the holder 50 the detent 68 positively engages the surface 72. In some embodiments a motor (not shown) is also provided internal the holder 50 to impart rotary movement to a shaft 76 on which the rotatable disc 66 is mounted. In other embodiments the motor or both the motor and the shaft 76 may be located external of the holder 50, internal of the housing 40 of the analyte test system 38 to engage the rotatable disc 66 when the holder 50 is fully located in a corresponding slot 42 of the housing 40. In some embodiments a protrusion 78, such as a pin, is provided on the rotatable disc 66 at a location circumferentially displaced from the first end 64 of the arm 62.
The operation of the actuator mechanism 60 will now be further explained with reference to the drawings of
In some embodiments, the speed of rotation of the disc 66 may be variable in order to maintain a constant linear movement of the piston 24. This is useful in order to avoid cavitation in the sample liquid 54 which may produce undesirable bubbles in the sample liquid within the sample test cassette 2. Indeed, any desired linear movement profile for the piston 24 may be achieved through suitable regulation of the rotation of the disc 66.
A further embodiment an actuator mechanism 80 is illustrated in
A further embodiment of transport system 92 is illustrated in
The transport system 92 comprises a pump chamber 94 that is arranged in fluid communication with an end of the conduit 14; and a piston 96 having a first end 98 slidably engaged with an inner wall 94a of the pump chamber 94 to delimit therewith a variable volume fluid receiving space 100. The piston 96 passes out of the pump chamber 94 through a fluid tight seal 102 into a compartment 104 where it terminates at a second end 106. The second end 106 provides a fluid tight seal and divides the compartment 104 into a spring chamber 108 and a damping chamber 110 which is sealed at an end 112 opposite the second end 106. The second end 106 is provided with a number of through holes (one illustrated 106a) which provide a liquid passageway between the damping chamber 110 and the spring chamber 108 and each of which, in the present embodiment, are sealed by a pressure sensitive, rupturable seal 107. The spring chamber 108 houses a spring 114 under tension and provides a biasing force which acts on the second end 106 of piston 96 to tend to move the piston 96 to cause the variable volume fluid receiving space 100 to increase. A damping liquid 116 fills the damping chamber 110 and provides a hydraulic pressure which produces a force opposing but less than the biasing force of the tensioned spring 114. The spring 114 and damping liquid 116 co-operate to form an actuator mechanism. A latch 118 is provided to releasably engage the piston 96 and hold it against the bias force in a rest position. In the present embodiment the latch 118 locates against a lower surface 120 of the second end 106 of the piston 96 to prevent movement of the piston 96 until transportation of sample liquid into the cassette is required and is moveable to disengage from the piston 96, in the present embodiment by rotation about a pivot 122.
When the latch 118 is disengaged the piston 96 moves under influence of the bias force exerted by the spring 114 to compress the damping liquid 116 and the hydraulic pressure increases. The increase in hydraulic pressure eventually causes the seal 107 to rupture which, in turn, allows damping liquid to flow into the spring chamber 108 and a continued, controlled, movement of the piston 96 to increase the volume of the variable volume fluid receiving space 100 occurs.
In other embodiments the through holes 106a and latch 118 are removed and a rupturable seal 124 (broken line construction in
Other embodiments may include a transport system other than a piston pump system, for example may include a peristaltic pump system, which is fluidly connected to the inlet of a sample test cassette with which it is integrated and which is operable to transport liquid from external of the cassette to elongate lateral flow test strips located in therein.
Number | Date | Country | Kind |
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PA202000257 | Feb 2020 | DK | national |
This application is a National Stage of PCT/IB2020/061131, filed on Nov. 25, 2020, which claims priority to Danish Patent Application PA202000257, filed on Feb. 28, 2020 in the Danish Patent and Trademark Office, the entire contents of each of which are incorporated herein in their entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2020/061131 | 11/25/2020 | WO |