TRANSFER SYSTEM FOR SAMPLES, MORE PARTICULARLY SAMPLES TO BE ANALYZED
20220323954 · 2022-10-13
Inventors
Cpc classification
B01L3/502707
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/16
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/046
PERFORMING OPERATIONS; TRANSPORTING
A61J1/05
HUMAN NECESSITIES
B01L2300/161
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A system for transferring a sample from a sample recovery or provision device to a microfluidic processing device, more particularly an analysis device, preferably in the form of a flow cell, with a sample carrier that removes the sample from the sample recovery or provision device and can be transported to the processing device. The sample carrier can be connected to the sample recovery or provision device and can be detached from sample recovery or provision device, with the sample being automatically removed. The sample carrier connected to the sample recovery or provision device is preferably a functional component of the sample recovery or provision device, more particularly the sample carrier closes a container space of the sample recovery or provision device for receiving sample material.
Claims
1-15. (canceled)
16. A system for transferring a sample, comprising: a sample recovery or preparation device; a microfluidic processing device; and, a sample carrier configured to remove the sample from the sample recovery or preparation device and be transportable to the microfluidic processing device for transferring the sample from the sample recovery or preparation device to the microfluidic processing device, wherein the sample carrier is configured to be connectable to the sample recovery or preparation device and, with automatic removal of the sample, detachable from the sample recovery or preparation device.
17. The system according to claim 16, wherein the microfluidic processing device is a flow cell.
18. The system according to claim 16, wherein the sample is a liquid sample, and the sample carrier has a sample receiving region connected to the sample recovery or preparation device, the sample receiving region being wettable with sample liquid.
19. The system according to claim 18, wherein the sample carrier is configured to form a functional component of the sample recovery or preparation device when connected to the sample recovery or preparation device.
20. The system according to claim 19, wherein the sample carrier is configured to close off a sample-material-receiving container space of the sample recovery or preparation device when connected to the sample recovery or preparation device as a functional component of the sample recovery or preparation device.
21. The system according to claim 20, wherein the sample receiving region of the sample carrier when connected to the sample recovery or preparation device adjoins the sample-material-receiving container space of the sample recovery or preparation device.
22. The system according to claim 16, wherein the sample carrier is configured to be detachable from the sample recovery or preparation device with automatic removal of a metered amount of sample.
23. The system according to claim 22, wherein the sample carrier is configured to have a metering accuracy of <10%.
24. The system according to claim 16, wherein the sample carrier is configured to be connectable to the sample processing device so as to introduce the sample into the sample processing device.
25. The system according to claim 24, wherein the sample carrier has a plug portion for connection to the sample recovery or preparation device or/and to the sample processing device, the plug portion being insertable into an opening of the sample recovery or preparation device or of the sample processing device.
26. The system according to claim 25, wherein the plug portion is conical.
27. The system according to claim 25, wherein the sample receiving region is arranged on one end face of the plug portion and an other end face of the plug portion forms a grip region for handling the sample carrier.
28. The system according to claim 27, wherein the sample receiving region extends from the end face into the plug portion.
29. The system according to claim 16, wherein the sample is held, at least partially exposed, on a sample receiving region of the sample carrier by adhesion forces.
30. The system according to claim 29, wherein the sample is held by capillary forces.
31. The system according to claim 16, wherein the sample is a blood sample.
32. The system according to claim 31, wherein the sample recovery or preparation device comprises a filter element that retains solid blood constituents in order to recover a blood plasma sample.
33. The system according to claim 16, wherein the sample carrier has a sample receiving region and the sample processing device has an input region, the sample receiving region or the input region having a porous membrane with a sample receiving capacity greater than a sample volume receivable by the sample carrier.
34. The system according to claim 16, wherein the sample carrier has a sample receiving region with a surface, at least a part of the surface of the sample receiving region having at least one reagent that interacts with the received sample.
35. The system according to claim 16, wherein the sample recovery or preparation device is configured so that several sample carriers are connectable to the sample recovery or preparation device simultaneously or in succession so that several samples are removable.
Description
[0035] An arrangement of devices shown in
[0036] In the example shown, the sample carrier 2 has a plug portion 6 which is partially conical (with, for example, a 6% taper according to the LUER standard) and from one end face of which there extends a grip portion 7 for handling the sample carrier, and at the other end face of which there is a receiving region 8 for the liquid sample 4. The receiving region is formed by a groove in which the liquid sample 4 is held by capillary forces.
[0037] The sample recovery and preparation device or blood sampling device 3 has a base plate 9, which can be placed on the upper arm, for example, for taking blood, and which has an adhesive layer 16 and through-openings 10. An attachment 11 extends from the base plate 9 and, together with the base plate 9, forms a sample collection and storage space 12 into which the through-openings 10 lead. A flexible end portion of the attachment 11 comprises a push button 13 with embedded needle pins 14 which, when the push button 13 is actuated, penetrate through the openings 10 into the skin of the person giving blood. Blood sampling devices of this type (without the sample carrier 2) are known from US 20170172481 A1 and US 20130211289 A1, for example.
[0038] Moreover, a conical through-opening 15 for receiving the plug portion 6 of a sample carrier 2 leads into the collection and storage space 12.
[0039] The sample processing device or flow cell 1, which in the example shown is plate-shaped and formed by a substrate 17 and by a film 18 covering channels and chambers in the substrate, has a partially conical opening 19 for receiving the plug portion 6 of a sample carrier 2. As can be seen from
[0040] During a blood sampling procedure, after actuation of the push button 13, blood enters the collection and storage space 12 through the openings 10. The sample carrier 2 meanwhile closes the opening 15 in a fluid-tight manner, the blood sampling device 3 being oriented in such a way that the sample carrier 2 extends vertically upward with the receiving region 8. Collected blood thus reaches the groove-shaped receiving region 8, which then fills with the liquid sample 4 under the action of capillary forces.
[0041] It will be appreciated that the plug portion 6 can be held securely in the through-opening 15 by a clamping force, but at the same time the clamping force is so low that the sample carrier 2 can be easily detached from the blood sampling device 3.
[0042] When the sample carrier 2 is detached from the blood sampling device 3, only the amount of liquid measured by the groove 4 remains on the sample carrier 2. By surface treatment of the groove region and of the adjoining regions (hydrophilization, hydrophobization), it can be ensured that a sharp division is established between the wettable regions and the adjoining regions, such that, outside of the receiving region 8, little or no sample liquid remains on the sample carrier.
[0043] The amount of sample precisely measured in this way can now be transferred to the flow cell 1 by inserting the sample carrier 2, transported to the location of the flow cell, into the opening 19 of the flow cell and aligning the groove-shaped receiving region 8 with the channel 20, if appropriate by rotation of the sample carrier.
[0044] The liquid sample 4 can then be transported further inside the flow cell 1, by flushing, and processed, in particular analyzed.
[0045] Whereas in the exemplary embodiment of
[0046] To remove a defined amount of sample, the sample container space 21 is rotated, in accordance with
[0047] As can be seen from
[0048] An elongate storage container space 21, shown in
[0049]
[0050] The sample container space 26 can, for example, contain sample material pre-processed by the flow cell 27, of which a sample can be transferred through a sample carrier 2, which can be coupled to the sample container space 26, into another region of the flow cell 27 that has an opening according to
[0051] In an exemplary embodiment shown in
[0052]
[0053] In a simplified embodiment according to
[0054] In an exemplary embodiment according to
[0055] The sample carrier 2 used identically in the exemplary embodiments of
[0056] A grip region 7 of the sample carrier of
[0057] Extending radially from the grip region 7 is a nose portion 49, which on the one hand forms a lever that facilitates rotation of the sample carrier in a coupled state and additionally permits determination of the rotational position of the sample carrier and thus an alignment of its receiving region 8 with a channel of a processing device.
[0058] Deviating from the example shown in
[0059]
[0060] It will be appreciated that in
[0061] In the exemplary embodiments of
[0062] In the exemplary embodiment of
[0063]
[0064] The exemplary embodiment of
[0065]
[0066]
[0067] According to
[0068] The exemplary embodiment of
[0069] In the exemplary embodiment of
[0070] A sample carrier 2 shown in
[0071] As a result of a vibrating movement, for example, of the sample carrier 2 immersed in the washing liquid 51, the sample 4 is flushed out of the sample receiving region of the sample carrier. The mixture of sample and washing liquid remaining in the reaction vessel 50 can then be processed further.
[0072]
[0073]
[0074] The processing device 1 comprises two carrier material layers 53, 53′, between which an absorbent porous membrane 54 is introduced. At least one of the carrier material layers 53, 53′ is perforated in sample input regions 55. When the sample carrier 2 is pressed onto the membrane 54, the sample 4 comes into contact with the membrane 54 and is sucked in through the membrane 54. The suction capacity of the membrane exceeds the capillary force in the sample receiving region of the sample carrier, such that the sample passes into the membrane 54, and does so completely, since the take-up capacity of the exposed membrane region is greater than the sample volume.
[0075] The membrane 54 can be provided with dried reagents which interact with the sample. It is also possible that the sample is dried out in the membrane.
[0076] Common to all the sample carriers is a more or less open amount of liquid sample that is kept accessible for flushing out.
[0077] It will be appreciated that, deviating from the connection cone exclusively described above, other connecting means can also be considered for the sample carrier.