MICROFLUIDIC CONNECTION DEVICE
20220118449 · 2022-04-21
Inventors
Cpc classification
B01L2200/12
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0636
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0829
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/16
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502738
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0481
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/087
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502761
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention relates to a microfluidic connection device for enabling faster observation of reactions even with only sample amount far less than that of reaction experiments in which a 96-well particularly used for a conventional sample reaction is used. The objective of the present invention is to provide the microfluidic connection device comprising: a microtube having a fine tube shape; a microvalve comprising a fluid moving unit for causing samples filled in the microtube to flow or stop; a plate-shaped plate; a reaction zone in which chemical reactions between samples supplied through the microtube occur, which has an observation window through which chemical reactions are observed, and which is provided on the upper surface of the plate; a supply tube for connecting the reaction zone with the microtube; and a reaction plate comprising a discharge tube for discharging reactants from the reaction zone.
Claims
1. A microfluidic connection device comprising: a plate-shaped plate; reaction zones being microchambers installed at predetermined areas of the plates, and having observation windows through which chemical reactions between samples supplied to therein are observed; supply tubes connected to the reaction zones so as to supply reagents to the reaction zones; and a reaction plate consisting of discharge tubes for discharging reactants from the reaction zones, wherein supply tubes and discharge tubes are elongated in a vertical direction therein on one side of the plate, so that reagent lifting columns in the form of columns through which reagents are lifted are formed, wherein the reaction zones are formed at the ends of the reagent lifting columns, and the supply tubes and the discharge tubes are connected to the reaction zones.
2. The microfluidic connection device of claim 1, wherein the reagent lifting columns are coupled to removable sealing covers, so that the reaction zones are formed to be closed spaces due to the inner surfaces of the sealing covers, and immobilized capture antibodies are provided on the inner surfaces of the sealing cover.
3. The microfluidic connection device of claim 2, wherein the reagent lifting columns, the reaction zones, and the sealing covers are formed in parallel on the upper surface of the plate, wherein a plurality of microtubes are installed to correspond to the number of the reagent lifting columns.
4. The microfluidic connection device of claim 3, wherein a plurality of the sealing covers formed in parallel are one row of twelve rows constituting a 96-well in a conventional 96-well consisting of twelve rows of eight wells connected in parallel.
5. The microfluidic connection device of claim 1, further comprising: a microvalve consisting of microtubes in form of a micro tube, and a fluid transfer unit that flows or stops samples filled in the microtubes, wherein the microtubes are connected to the supply tubes so as to supply reagents from the microtubes to the supply tubes.
6. The microfluidic connection device of claim 5, wherein the microvalve comprises: a plate-shaped body; a plurality of microtubes embedded in parallel to each other in the body; a plurality of bumpers installed in longitudinal direction over some sections of the area where the microtubes are embedded; a pressure roller bar being a member in form of a rod having a circular cross section, installed on the upper parts of the bumpers so that its longitudinal direction crosses the bumpers, and for pressurizing a plurality of the bumpers at the same time by moving while rolling along the upper parts of the bumpers; and a drive unit for moving the pressure roller bar or the body along the direction of the microtubes, wherein the body has a plurality of microchannels formed in parallel to each other therein, wherein the microtubes are embedded in the microchannels, wherein the body and the bumpers are made out of elastic material, so that when either the pressure roller bar or the body is moved due to the drive unit, the pressure roller bar rolls along the upper portions of the bumpers to press the bumpers, thereby transferring samples filled in the microtubes by movement of compression areas formed by pressing the bumpers, the microchannel and the microtube with the pressure roller bar.
7. The microfluidic connection device of claim 6, further comprising: a suction pump installed at the discharge tube, for taking in a plurality of samples filled in the microtubes under the pressure release sections so as to transfer a plurality of the samples toward the reaction zones when the pressure roller bar reaches the upper part of the pressure release sections, wherein the pressure release sections in which the bumpers are disconnected, are formed on the upper part of the microchannels, wherein the pressure release sections are formed to deviate from each other for each of a plurality of the microchannels, wherein when the pressure roller bar that is rolling on the upper part of the bumpers reaches the upper parts of the pressure release sections, the microtubes and the microchannels are released from compression.
8. The microfluidic connection device of claim 7, wherein the pressure release sections are formed to meet the pressure roller bar sequentially from the microchannel at one end to the microchannel at the other end among a plurality of the microchannels while the pressure roller bar is rolling to advance.
9. The microfluidic connection device of claim 7, wherein all discharge tubes each of which is provided for each of the reaction zones are connected to the one discharge hole, and the suction pump is installed to be connected to one discharge hole.
10. The microfluidic connection device of claim 5, wherein the microvalve further consists of: a base installed under the body; a rotation support bracket fixedly installed on both sides of the base, having bearings therein, and coupled to both ends of the pressure roller bar so as to rotatably fix the pressure roller bar; and a linear motor for advancing or reversing the microvalve between the bearing and the pressure roller bar.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
[0038] Specific structural or functional descriptions presented in the embodiments of the present invention are exemplified for the purpose of describing the embodiments according to the concept of the present invention only. The embodiments according to the concept of the present invention may be implemented in various forms. In addition, it should not be construed as limited to the embodiments described in the present specification, and should be understood to include all modifications, equivalents, and substitutes that belong to the spirit and scope of the present invention.
[0039] Hereinafter, the present invention will be described in detail with reference to the accompanying drawings.
[0040] The microfluidic connection device according to the present invention is composed of a reaction plate 10 as shown in
[0041] The reaction plate 10 is composed of a plate-shaped plate 11, reaction zones 15 where a chemical reaction occurs between samples supplied through the microtubes 24, which have observation windows for observing the chemical reaction and are installed on the upper surface of the plate, supply tubes 13 connecting the reaction zones 15 with the microtubes 24, and discharge tubes 14 for discharging the reactants from the reaction zones 15.
[0042] Here, column-shaped reagent lifting columns 12 are installed on the upper surface of the plate 11, and the reaction zones 15 are formed at the upper ends of the reagent lifting columns 12. The supply tubes 13 and the discharge tubes 14 are both elongated in a vertical direction in the reagent lifting columns 12 to be connected to the reaction zones 15 formed at the upper ends of the reagent lifting columns 12.
[0043] Since the reagent lifting columns 12 are manufactured in column shapes as shown in
[0044] However, since the reaction zones 15 are installed on the upper surfaces of the reagent lifting columns 12, the reactions proceeds only in spaces of thin volumes formed on the upper surfaces of the reagent lifting columns 12. So, it enables the analysis experiment which has been carried out in a conventional 96-well plate, even if there is only a very small amount of reagent or the object to be measured since the required amount of the object to be measured is remarkably less than conventional 96-well plate.
[0045] In addition, the reaction zones 15 are formed on the upper surfaces of the reagent lifting columns 12, and the supply tubes 13 for supplying reagents or objects to be measured to the reaction zones 15 and the discharge tubes 14 for discharging the reactants from the reaction zones 15 are installed in the vertical direction in the inner spaces under the reagent lifting columns 12. So, although the amount of the required sample is extremely small, the area where the reaction occurs are located in the reaction zones 15 which are the top portions most easily observed, so that the reaction is more easily observed compared to the conventional 96-well plate.
[0046] As shown in
[0047] The sealing cover 16 seals the upper part of the reagent lifting column 12 as well as the reaction zone 15 as shown in
[0048] The reaction zone 15 is formed at an area where the inner ceiling of the sealing cover 16 and the upper surface of the reagent lifting column 12 meet. The space formed by the reaction zone 15 is specifically a space formed by processing the upper surface of the reagent lifting column 12 to have a pattern having a certain shape such as the long hexagonal shape shown in
[0049] At this time, the capture antibody is immobilized on the inner ceiling of the sealing cover 16, that is, the lower surface of the observation window. Immobilization of the capture antibody is the same as the commercially available product in which a certain capture antibody is immobilized inside the well in the case of a 96-well used in a typical immunoreaction experiment.
[0050] The conventional 96-well consists of twelve rows of wells. Each row of wells consists of eight wells and are manufactured to be connected side by side with each other. At this time, a row of eight wells can be used as eight sealing covers 16 connected to each other as shown in
[0051] In particular, since the commercially available sealing covers 16 consisting of eight wells shown in
[0052] When the commercially available sealing covers 16 consisting of eight wells are coupled to the upper portions of the eight reagent lifting columns 12, the upper surfaces of the reagent lifting columns 12 are sealed due to the eight wells, and the reaction zones 15 are sealed. So, an antigen-antibody reaction can be performed with the capture antibodies.
[0053] As shown in
[0054] The supply tube 13 and the discharge tube 14 are connected to the injection hole 17 and the discharge hole 18a, respectively, as shown in
[0055] The supply tube 13 and the discharge tube 14 are embedded horizontally in plate 11 in the section from the lower end of the reagent lifting column 12 to the injection hole 17 or the discharge hole 18a, as shown in
[0056] Furthermore, the reagent lifting column 12 may be formed on the bottom surface of the plate 11 as shown in
[0057] Any material that is inexpensive and has good chemical resistance can be selected for the plate 11. Materials having good transparency, very strong durability, and good workability, such as PDMS (polydimethylsiloxane) may be selected as the material of the plate 11.
[0058] The plate 11 may be manufactured by overlapping two plates 111 and 112. At this time, the horizontal portions of the supply tube 13 and the discharge tube 14 can be made by inserting tubes between the two plates constituting the plate 11, that is, the upper plate 111 and the lower plate 112, or by forming horizontal grooves on the bottom surface of the upper plate 111 or on the upper surface of the lower plate 112. The bottom surface of the upper plate 111 and the upper surface of the lower plate 112 are the contact portions that the upper plate 111 and the lower plate 112 contact each other.
[0059] In addition, a microvalve 20 for supplying a sample to the reaction plate 10 may be connected to the reaction plate 10.
[0060] The microvalve 20 includes microtubes 24 in the form of microtubes, and a fluid transfer unit for moving the sample when the microtubes 24 are filled with samples. The microvalve 20 will be described in detail later with reference to
[0061] In the present invention, as in the embodiment shown in
[0062] As shown in
[0063] According to the embodiment shown in
[0064] Since the ‘compression areas’ are formed in the vertical lower part of the pressure roller bar 25, when the pressure roller bar 25 moves along the upper parts of the bumpers, the compression areas also move together with the pressure roller bar 25. However, the pressure roller bar 25 may either move or only rotate in place and the body 21 in which the microtubes 24 are embedded may move instead. The direction of movement is the longitudinal direction of the bumpers 22 formed along the longitudinal direction of the microtubes 24.
[0065] As shown in
[0066] However, if only when one of the pressure roller bar 25 or the body 21 moves, a samples or objects to be measured (hereinafter, referred to as ‘sample or the like’) filled in the microtubes 24 are moved, then the control of the moving distance of a fine sample or the like depends only on the pressure roller bar 25, so that a plurality of microtubes 24 are arranged in parallel as shown in
[0067] Therefore, in the present invention, a pressure release sections 23 and a suction pump 30 are provided in order that the samples or the like filled in the microtubes 24 may reach the reaction zones 15 sequentially in order according to the experiment plan.
[0068] The pressure release sections 23 are sections where the bumpers 22 are disconnected as shown in
[0069] The suction pump 30 is connected to the discharge hole 18a formed in the reaction plate 10 as shown in
[0070] Accordingly, in the present invention, one suction pump 30 is provided for one discharge hole 18a and the pressure release sections 23 are sequentially formed in the bumpers 22 in a desired reaction order. And, when the relative motion between the pressure roller bar 25 and the body 21 occurs and the pressure release sections 23 formed on the upper portions of microtubes 24 and the pressure roller bar 25 meet, the pressure is released at the microtubes 24. Here, when the suction pump 30 is operated, the samples or the like are moved only within the microtubes 24 where the pressure is released.
[0071] The pressure release sections 23 are also formed sequentially in a desired reaction order. As shown in
[0072] Referring to
[0073] In addition, since the suction pump 30 is installed, even if the pressure roller bar 25 does not move several times to push the samples or the like, the samples or the like were made to reach the reaction zones 15 at once by the suction force as soon as the pressure roller bar 25 is positioned above the pressure release sections 23. Therefore, the entire reaction analysis process can be quickly performed due to the interaction between the suction pump 30 and the pressure release sections 23.
[0074] On the other hand, when the samples or the like move toward the reaction zones 15 by the operation of the suction pump 30, the residues other than the substances required after any one reaction need to be discharged in order for a series of two or more reactions to occur in one reaction zone 15d. Therefore, as shown in
[0075] Since such a series of reactions occur at the bottom of the beaker in a conventional 96-well plate, observation was rather difficult even though a significant amount of expensive sample was required, but in the present invention, reactions can be observed at the optimal observation position even with a very small amount of sample.
[0076] In addition, there may be a case where the position of the pressure release sections 23 need to change or adjust between the microchannels 24 according to the needs for the experiment. In preparation for this case, the bumpers 22 are separately manufactured to be separated from the upper plate 212 so that the pressure release sections 23 can be formed in the desired sections as shown in
[0077] The bumper gripping protrusion 29 may be installed so that its one end and other end are fixed in the longitudinal direction of the bumpers 22 as shown in
[0078] In the process of pressing the bumpers 22 while the pressure roller bar 25 moves along the upper parts of the bumpers 22, the pressure roller bar 25 itself may be moved along the longitudinal direction of the bumpers 22, or the body 21 constituting the microvalve 20 may be itself moved while the pressure roller bar 25 is fixed in place and rotated only.
[0079] In the embodiment shown in
[0080] Owing to the configuration in this way, the process of pulling the body 21 only once by the linear motor 27 completes all series of reactions for each reaction zones 15, and all the reactions in the reaction zones 15 can be sequentially completed in the desired order. At this time, the linear motor 27 stops when the pressure roller bar 25 is positioned at any one pressure release section 23. From then on, the suction pump 30 collects the samples a-1, a-2 and a-3 and the washing liquids b-1 and b-2 sequentially through the microtubes 24 with the pressure release sections 23 open. All sequential reactions are performed in the reaction zones 15 connected to the microtubes 24 where the pressure roller bar 25 is located at the upper portions of the pressure release sections 23, and the linear motor 27 is stopped during this time.
[0081] This process is shown in the photograph of
[0082] On the other hand, the amount of sample required for the reaction to proceed clearly is shown in the photograph of
[0083] The photographs of
[0084] In this case, the color change corresponding to the eight different types of the concentrations of cTnI in the 15 μL cTnI antigen is shown in
[0085] Meanwhile, the graph of
[0086] The graphs shown in
[0087] The table shown in
[0088] As described so far, in the present invention, owing to the reaction section formed with an extremely small height, the immunoreaction test is possible even with a small amount of sample, so that the required cost and time are drastically reduced. And, furthermore, due to the interaction between the suction pump and the pressure release sections, a plurality of channels can react independently and sequentially. In addition, it is automatically and conveniently performed without any preparatory procedures such as supplying reagents with a dropper every time for a series of reactions in one reaction zone and washing a microbeaker between reactions and reactions. Therefore, there is no need for the labor of performing an immunoreaction test with concentration for a long time, and the time required for the entire reaction process is further shortened.
[0089] Therefore, the examination apparatus according to the present invention can perform an examination on the spot even in an emergency situation requiring an urgent examination, thereby enabling a dramatic improvement in the quality of medical services.
[0090] The present invention described above is not limited by the above-described embodiments and the accompanying drawings but it will be obvious to those of ordinary skill in the art that various substitutions, modifications, and changes are possible within the scope of the technical spirit of the present invention.