APPARATUS AND METHOD FOR SEPARATING SINGLE CELLS
20190227021 ยท 2019-07-25
Assignee
Inventors
Cpc classification
C12M1/34
CHEMISTRY; METALLURGY
B01L3/502753
PERFORMING OPERATIONS; TRANSPORTING
B01L3/50273
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/0668
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0487
PERFORMING OPERATIONS; TRANSPORTING
C12M1/42
CHEMISTRY; METALLURGY
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/0642
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502761
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention relates to an apparatus and a method for separating single cells, and the apparatus includes: a fluid channel which has an upper panel and a lower panel and has a flow path which is formed between the upper panel and the lower panel and configured to convey a sample including a single cell; a single cell measuring unit which includes first and second electrodes which are provided on the fluid channel so as to be spaced apart from each other at a predetermined interval and apply electrical signals to the sample being conveyed through the flow path of the fluid channel, and a detection electrode which is provided between the first electrode and the second electrode and detects the single cell in the sample being conveyed through the flow path, such that the single cell measuring unit applies the electrical signals to the sample being conveyed through the flow path, detects the electrical signals of the sample to which the electrical signals are applied, and detects whether there is the single cell in the sample; and a single cell separation control device which outputs a single cell separation control signal when the single cell is detected by the detection electrode. Therefore, there is an effect of effectively separating, within a short time, the single cells from the sample including the single cells.
Claims
1. A single cell separating apparatus comprising: a fluid channel which has an upper panel and a lower panel and has a flow path which is formed between the upper panel and the lower panel and configured to convey a sample including a single cell; a single cell measuring unit which includes first and second electrodes which are provided on the fluid channel so as to be spaced apart from each other at a predetermined interval and apply electrical signals to the sample being conveyed through the flow path of the fluid channel, and a detection electrode which is provided between the first electrode and the second electrode and detects the single cell in the sample being conveyed through the flow path, such that the single cell measuring unit applies the electrical signals to the sample being conveyed through the flow path, detects the electrical signals of the sample to which the electrical signals are applied, and detects whether there is the single cell in the sample; and a single cell separation control device which outputs a single cell separation control signal when the single cell is detected by the detection electrode.
2. A single cell separating apparatus comprising: a fluid channel which has an upper panel and a lower panel and has a flow path which is formed between the upper panel and the lower panel and configured to convey a sample including a single cell; a single cell measuring unit which includes an optical measurement sensor for emitting light to the fluid channel and allows the optical measurement sensor to receive light reflected by the sample including the single cell, convert the light into an electrical signal, and output the electrical signal as a single cell detection signal; and a single cell separation control device which derives a fluid channel passing speed of the sample including the single cell by using the electrical signal outputted from the optical measurement sensor, and outputs the single cell separation control signal based on the passing speed of the sample.
3. A single cell separating apparatus comprising: a fluid channel which has an upper panel and a lower panel and has a flow path which is formed between the upper panel and the lower panel and configured to convey a sample including a single cell; a single cell measuring unit which includes a Hall sensor for applying a magnetic field to the fluid channel and allows the Hall sensor to detect a voltage generated by the magnetic field and output the voltage; and a single cell separation control device which derives a fluid channel passing speed of the sample including the single cell by receiving the voltage detected by the Hall sensor, and outputs the single cell separation control signal based on the passing speed of the sample.
4. The single cell separating apparatus of claim 1, wherein the first electrode and the second electrode are provided on the upper panel, the lower panel, or the upper and lower panels of the fluid channel.
5. The single cell separating apparatus of claim 1, wherein the single cell separation control device counts and provides the number of single cells passing through the flow path based on the electrical signal inputted from the detection electrode.
6. The single cell separating apparatus of any one of claims 1 to 3, further comprising: a single cell separating unit which supplies a fluid in response to the cell separation control signal of the single cell separation control device, couples the fluid to the single cell being conveyed to a cell discharge port, and discharges the single cell through the single cell discharge port.
7. The single cell separating apparatus of claim 6, further comprising: a fluid supply unit which is operated by the single cell separation control signal of the single cell separation control device and supplies the fluid to be coupled to the single cell separated from the single cell separating unit.
8. The single cell separating apparatus of claim 7, wherein the single cell separating unit supplies the fluid to be coupled to the single cell by using air pressure.
9. The single cell separating apparatus of claim 8, further comprising: a buffer unit which reduces a reverse flow caused by the air pressure created when supplying the fluid to be coupled to the single cell.
10. The single cell separating apparatus of claim 9, wherein the buffer unit has a long flow path having a particular shape.
11. The single cell separating apparatus of any one of claims 1 to 3, further comprising: a heterologous cell discharge channel which has one end portion connected to the fluid channel and discharges a heterologous cell to the outside when the heterologous cell is detected in the fluid channel by the single cell measuring unit; and a valve channel which has one end portion provided in the heterologous cell discharge channel and the other end portion connected to an air injecting unit for injecting air into the heterologous cell discharge channel.
12. The single cell separating apparatus of claim 11, wherein the fluid channel and the heterologous cell discharge channel have different tube thicknesses.
13. The single cell separating apparatus of claim 11, wherein a PDMS membrane is formed between the heterologous cell discharge channel and the valve channel.
14. The single cell separating apparatus of any one of claims 1 to 3, further comprising: a well plate driving unit which moves a well plate forward or rearward in response to the single cell separation control signal of the single cell separation control device.
15. The single cell separating apparatus of claim 14, wherein the well plate has multiple spaces, a first space stores heterologous cells, and the remaining multiple spaces separate and store the single cells, one space for each single cell.
16. A method of separating a single cell by using the single cell separating apparatus according to any one of claims 1-3, the method comprising: injecting a sample including a single cell into a sample injecting unit of a fluid channel for injecting the sample; applying an electrical signal to the sample being conveyed through a flow path of the fluid channel; determining whether the single cell is present by detecting an electrical signal of the sample to which the electrical signal is applied; and supplying a fluid to be coupled to the single cell when the single cell is present, positioning the single cell in the fluid, and discharging the single cell through a single cell discharge port.
17. The method of claim 16, further comprising: counting the number of single cells when the single cell is present, and providing the number of single cells separated from the corresponding sample.
Description
DESCRIPTION OF DRAWINGS
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MODES OF THE INVENTION
[0046] It should be noted that technical terms used in the present invention are used to just describe a specific embodiment and do not intend to limit the present invention. Further, unless the technical terms used in the present invention are particularly defined as other meanings in the present invention, the technical terms should be appreciated as meanings generally appreciated by those skilled in the art and should not be appreciated as excessively comprehensive meanings or excessively reduced meanings. Further, when the technical term used in the present invention is a wrong technical term that does not accurately express the spirit of the present invention, the technical term should be understood by being substituted by a technical term which can be correctly understood by those skilled in the art. In addition, a general term used in the present invention should be interpreted as defined in a dictionary or contextually, and should not be interpreted as an excessively reduced meaning.
[0047] In addition, singular expressions used in the present specification include plural expressions unless they have definitely opposite meanings in the context. It should not be interpreted that the terms comprises, comprising, includes and/or including, used herein necessarily include all of the several constituent elements or several steps disclosed in the present invention, and it should be interpreted that the terms may not include some of the constituent elements or steps and may further include additional constituent elements or steps.
[0048] Hereinafter, the exemplary embodiments according to the present invention will be described in detail with reference to the accompanying drawings. The same or corresponding constituent elements are assigned with the same reference numerals regardless of reference numerals, and the repetitive description thereof will be omitted.
[0049] In addition, in the description of the present invention, the specific descriptions of publicly known related technologies will be omitted when it is determined that the specific descriptions may obscure the subject matter of the present invention.
[0050] In addition, it should be noted that the accompanying drawings are provided only to allow those skilled in the art to easily understand the spirit of the present invention, and the spirit of the present invention is not limited by the accompanying drawings.
[0051]
[0052] (Electrode Adopting Method)
[0053] As illustrated in
[0054] The single cell separating apparatus 100 creates a fluid flow by using a syringe pump in order to convey a sample, which is introduced through a sample inlet port 110 and includes single cells, through a flow path of a fluid channel 160. The single cell separating apparatus 100 detects an electrical signal of the sample being conveyed through the flow path of the fluid channel 160 and outputs a detection signal. The single cell separating apparatus 100 separates the cells included in the sample from the sample being conveyed through the flow path of the fluid channel 160 based on a single cell separation control signal inputted in response to the detection signal. The single cell separating apparatus 100 introduces the separated cells into fluid droplets and discharges the separated cells through a cell discharge port.
[0055] The single cell separation control device 200 receives the detection signal and recognizes that the cells are conveyed through the fluid channel. The single cell separation control device 200 creates a single cell separation control signal based on the perception result, and outputs the single cell separation control signal to the single cell separating apparatus 100. That is, as illustrated in
[0056] As illustrated in
[0057] In this case, the sample may be conveyed through the fluid channel by the fluid flow created by the syringe pump.
[0058] In particular, the single cell separating apparatus 100 further includes a buffer unit between the single cell measuring unit 120 and the single cell separating unit 140, and the buffer unit 130 mitigates noise that occurs when the cells are separated by the single cell separating unit 140 and introduced into the fluid droplets. In this case, as illustrated in
[0059] Further, the single cell separating apparatus 100 further includes a fluid supply unit 170 which is operated based on the single cell separation control signal from the single cell separation control device 200 and supplies a fluid to be coupled to the cells separated by the single cell separating unit 140.
[0060] As illustrated in
[0061] As illustrated in
[0062] That is, as illustrated in
[0063] Thereafter, the substrate and the PDMS, which has the fluid channel pattern formed on the upper glass substrate by using SU-8, are joined to the chip, which is manufactured by the lithographic process as simply described above, by using oxygen plasma (O.sub.2 plasma) processing, and as a result, the single cell separating apparatus may be completely manufactured as illustrated in
[0064] Because the processes of forming the electrode portion and the PDMS portion are publicly known technologies, detailed descriptions thereof will be omitted.
[0065] An operation of the single cell separating apparatus configured as described above will be described below.
[0066] As illustrated in
[0067] As illustrated in
[0068] Then, the single cell separation control device 200 recognizes only values equal to or greater than the predetermined limit value (threshold) corresponding to a peak of the measured sinusoidal signal, thereby recognizing the single cells. When the single cell is recognized as described above, the single cell separation control device 200 generates the single cell separation control signal and outputs the single cell separation control signal to the fluid supply unit 170 connected to the single cell separating unit 140.
[0069] Then, the fluid supply unit 170 operates in response to the single cell separation control signal and discharges a small amount of already accommodated PBS, and the cells are introduced into the small amount of dischared PBS (phosphate buffer saline) and discharged to the outside through the single cell discharge port 150. That is, the fluid supply unit 170 pushes, with pressure, a small amount of fluid to the single cell separating unit 140 in response to the single cell separation control signal, and the single cell separating unit 140 allows the single cells to be in the pushed fluid droplets and then discharges the single cells through the single cell discharge port 150 to the outside of the chip which is the single cell separating apparatus 100. In this case, the buffer unit 130 performs a buffering operation so as to prevent an abnormal measurement state of the single cell measuring unit 120 which is caused by a reverse flow (backflow) generated by pressure generated by the fluid supply unit 170. Because an interior of the buffer unit 130 is filled with a small amount of air, the pressure generated by the fluid supply unit 170 is mitigated.
[0070] (Optical Measurement Sensor Adopting Method)
[0071] As another exemplary embodiment of the present invention, as illustrated in
[0072] Then, the single cell separation control device 200 derives a fluid channel passing speed of the sample including the single cells by using the electrical signal outputted from the optical measurement sensor 121a, and outputs a single cell separation control signal based on the passing speed of the sample.
[0073] In other words, a fluorescent bead attached to the single cell emits light by the light emitted from the optical measurement sensor 121a, and the optical measurement sensor 121a receives the light, converts the light into an electrical signal, and outputs the electrical signal. That is, the fluorescent bead is attached to the single cell in the sample, such that the optical measurement sensor 121a receives the light reflected by the fluorescent bead. Because a method of attaching the fluorescent bead to the sample is performed by an antigen-antibody reaction in the related art, a detailed description thereof will be omitted.
[0074] Therefore, the single cell separation control device 200 may derive a fluid channel passing speed of the sample including the single cells by using the electrical signal outputted from the optical measurement sensor 121a, create the single cell separation control signal based on the passing speed of the sample, and output the single cell separation control signal to the single cell separating unit 140.
[0075] Here, only differences from the electrode adopting method will be described, and descriptions of identical parts will be omitted.
[0076] (Hall Sensor Adopting Method)
[0077] As still another exemplary embodiment of the present invention, as illustrated in
[0078] In other words, the Hall sensor 121b of the single cell measuring unit 120 applies a magnetic field to the fluid channel 160, detects a voltage generated by the magnetic field, and outputs the voltage to the single cell separation control device 200. The single cell separation control device 200 may derive the fluid channel passing speed of the sample including the single cells by receiving the voltage detected by the Hall sensor 121b, create the single cell separation control signal based on the passing speed of the sample, and output the single cell separation control signal to the single cell separating unit 140. That is, because particles having magnetism are attached to the single cells included in the sample, the particles having magnetism react with the magnetic field applied to the fluid channel of the Hall sensor 121b, and the Hall sensor 121b detects the resulting voltage and outputs the voltage to the single cell separation control device 200. Because a method of attaching the particles having magnetism to the single cells in the sample is performed by an antigen-antibody reaction in the related art, a detailed description thereof will be omitted.
[0079] Here, only differences from the electrode adopting method will be described, and descriptions of identical parts will be omitted.
[0080]
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[0082] (Adoption of Heterologous Cell Separation Function)
[0083] The single cell separating apparatus according to the present invention adopts a structural feature capable of separating and discharging heterologous cells (including white blood cells, red blood cells, debris, etc.) and single cells (cancer cells).
[0084] As illustrated in
[0085] The fluid channel 160 and the heterologous cell discharge channel 180 are configured to have different tube thicknesses, and at normal times, the fluid flows toward a portion having low resistance.
[0086] Further, an interior of the tube of the valve channel 190 is filled with air. That is, the air injecting device 300 is connected to one end portion of the valve channel 190, such that the air injecting device 300 injects air into the valve channel 190, as necessary. That is, when the desired single cell is detected by the single cell measuring unit 140 of the single cell separating apparatus, the single cell separating apparatus outputs the single cell detection signal to the single cell separation control device 200, and the single cell separation control device 200 controls the air injecting device 300 to inject air into the tube of the valve channel 190, such that a PDMS membrane 195, which is provided between the valve channel 190 and the heterologous cell discharge channel 180, is expanded as illustrated in
[0087] (Well Plate for Separating and Storing Single Cell and Heterologous Cell) Lastly, the single cell separating apparatus according to the present invention further includes a well plate which stores the heterologous cells and the single cells separated by the single cell separating apparatus. As illustrated in
[0088] During an initial operation, the well plate 400 is stopped in a state in which the well plate 400 is moved so that a cell discharge portion is positioned in the first space (see
[0089] In a case in which the single cell measuring unit 140 recognizes that the single cell is introduced into the fluid channel 160, the air injecting device 300 is controlled to inject air into the valve channel 190, and the PDMS membrane 195 is expanded to block the heterologous cell discharge channel 180, such that the single cell is discharged to the single cell discharge port 150 through the fluid channel 160.
[0090] In this case, the single cell separation control device 200 controls the well plate driving unit 430 to discharge the single cell into a second space and store the single cell in the second space. Further, under the control of the single cell separation control device 200, the well plate driving unit 430 moves the well plate 400 so that the first space is positioned below the heterologous cell discharge channel 180 of the single cell separation control device 400 (see
[0091] As described above, the well plate driving unit 430 moves forward or rearward by being controlled by the single cell separation control device 300, such that only the heterologous cells are separated and stored in the first space, and the single cells are discharged and stored in the remaining spaces, that is, the second space, a third space, and so on in the order in which the single cells are discharged (see
[0092] The aforementioned contents can be modified and changed by those skilled in the art to which the present invention pertains without departing from the essential features of the present invention. Therefore, the exemplary embodiments of the present invention are provided for illustrative purposes only but not intended to limit the technical concept of the present invention. The scope of the technical concept of the present invention is not limited thereto. The protective scope of the present invention should be construed based on the following claims, and all the technical spirit in the equivalent scope thereto should be construed as falling within the scope of the present invention.