A microfluidic sample testing device and a microfluidic sample testing system
By designing a microfluidic sample detection device, utilizing fluid channels and valve structures, and combining conductive and magnetic systems, the complex and costly manufacturing of microfluidic chips has been solved, achieving low-cost, all-in-one detection suitable for in vitro diagnostic products.
Patent Information
- Application Number
- CN202510065941.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2045-01-16
AI Technical Summary
Existing microfluidic chip manufacturing equipment is expensive, involves complex processes, and has high environmental requirements, resulting in low yields and high costs, making it difficult to meet the needs of point-of-care diagnostic products.
A microfluidic sample detection device was designed, including a fluid inlet, a microfluidic channel, a fluid outlet, a reaction zone, a liquid collection zone, a pump body, and multiple valve bodies. Combining a conductive system and magnetic particles, the device controls fluid flow and reaction through actuators, achieving a simple and easy-to-produce all-in-one detection solution.
A simple and easy-to-manufacture microfluidic sample detection device has been developed, which is suitable for various in vitro diagnostic products and can perform single or multi-item detection, thereby reducing production costs and expanding the scope of applications.
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Figure CN119804845B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of medical devices, and more particularly to a microfluidic sample detection device and a microfluidic sample detection system. Background Technology
[0002] With the continuous development of intelligent technology, people are using more and more intelligent devices in their lives, work and study. The use of intelligent technology has improved people's quality of life and increased their learning and work efficiency.
[0003] Microfluidic chips are a scientific technology characterized by the manipulation of fluids at the micrometer scale. They possess the ability to miniaturize the basic functions of biological and chemical laboratories onto a chip of just a few square centimeters, hence the name "lab-on-a-chip." Currently, mainstream microfluidic chips primarily consist of a network of microchannels with controllable fluid flowing throughout the system to achieve various functions found in conventional chemical or biological laboratories. The fundamental characteristic and greatest advantage of microfluidic chips is the flexible combination and large-scale integration of multiple unit technologies on a tiny, controllable platform. This makes them ideally suited for the design of point-of-care testing (POCT) products. However, commonly used materials for fabricating microfluidic chips include glass and organic polymers such as polymethyl methacrylate (PMMA), polydimethylsiloxane (PDMS), polycarbonate (PC), and hydrogels. The fabrication environment is crucial, including air temperature, humidity, and particle density in the air and various media used in the preparation process. The demanding environmental requirements for chip fabrication generally necessitate a cleanroom environment. The success or failure of cleanroom technology and microfluidic chip fabrication is inextricably linked. Depending on the manufacturing method, cleanroom standards must reach Class 10,000, Class 1,000, or even Class 100. For example, the fabrication techniques used for polymer microfluidic chips mainly include hot pressing, molding, injection molding, laser ablation, and LIGA. However, the equipment used in existing technologies is expensive, and the processes are complex. These technologies not only impose strict requirements on environmental quality and incur high operating costs, but also result in low batch yields, leading to generally high product costs. This falls short of the capacity and cost requirements of point-of-care testing (POCT) products, limiting the widespread adoption of microfluidic technology in the POCT industry.
[0004] There is currently no effective solution to the above problems. Summary of the Invention
[0005] To address the aforementioned problems, this invention provides a microfluidic sample detection device, comprising a fluid inlet, a microfluidic channel, and a fluid outlet, and: a reaction zone disposed between the fluid inlet and the fluid outlet and partially overlapping with the microfluidic channel; a collection zone disposed downstream of the microfluidic channel, with the fluid outlet being the outlet of the collection zone; a first pump body, which provides driving force for the flow of the microfluidic sample when connected to the microfluidic channel; a first valve body disposed downstream of the fluid inlet and controlling the connection between the microfluidic channel and the fluid inlet; a second valve body disposed between the first pump body and the microfluidic channel, and downstream of the first valve body, wherein when the second valve body is open, the first pump body and the microfluidic channel are fluidly connected; a third valve body disposed between the first pump body and the microfluidic channel, and downstream of the second valve body, wherein when the third valve body is open, the first pump body and the microfluidic channel are fluidly connected; and a fourth valve body disposed at the fluid outlet and controlling the connection between the collection zone and the fluid outlet, wherein the operating states of the third valve body and the fourth valve body are opposite. Furthermore, the microfluidic channel includes a first region and a second region, at least the first region or the second region is a reaction zone, and the first pump can drive the microfluidic sample from the first region into the second region.
[0006] Furthermore, the microfluidic channel includes a first region, a second region, and a third region, at least the first region, the second region, or the third region is a reaction zone, and the first pump can drive the microfluidic sample from the first region into the second region, and then into the third region.
[0007] In another embodiment, a conductive system consisting of electrodes is also included, the conductive system comprising at least two electrodes, with the electrode sensing ends located at opposite ends of the reaction zone.
[0008] Furthermore, the sensing ends of both electrodes are located upstream of the third valve body; or the sensing ends of both electrodes are located downstream of the third valve body; or one sensing end of the two electrodes is located upstream of the third valve body and the other is located downstream of the third valve body.
[0009] Alternatively, and further still, the conductive system includes at least three electrodes, with the electrode sensing ends located at the two ends of the first region and the second region, respectively. At least the first region or the second region is a reaction zone. When the first pump body and the microfluidic channel are connected through the second valve body and / or the third valve body, the first pump body can drive the microfluidic sample from the first region and the second region.
[0010] Furthermore, the conductive system includes at least four electrodes, with the electrode sensing ends located at the two ends of the first region, the second region, and the third region, respectively. At least the first region, the second region, or the third region is a reaction zone. When the first pump body and the microfluidic channel are connected through the second valve body and / or the third valve body, the first pump body can drive the microfluidic sample from the first region into the second region, and then into the third region.
[0011] When a microfluidic channel comprises at least two regions, the first region is located upstream of the third valve body; or the first region is located downstream of the third valve body; or the third valve body is located within the first region. In other words, the first region is neither upstream nor downstream of the third valve body.
[0012] In another embodiment, a microfluidic sample detection device further includes a start-up electrode. The sensing end of the start-up electrode is located upstream of the second valve body and together with the sensing end of the first electrode downstream of the second valve body, they form a start-up area in the microfluidic channel. After the microfluidic sample flows into the start-up area, a signal indicating successful sample addition is generated.
[0013] When the microfluidic sample detection device includes one or two reaction zones, the reaction zone is pre-loaded with an antibody that binds to magnetic particles and is designed to specifically bind to red blood cells in a blood sample.
[0014] In another embodiment, the reaction zone is pre-positioned with a target antibody labeled with magnetic particles, which is designed to specifically bind to the target in the sample.
[0015] In another embodiment, the reaction zone is pre-positioned with fluorescently labeled antibodies designed to specifically bind to the target in the sample.
[0016] In another embodiment, when the microfluidic sample detection device includes at least two regions, including two reaction zones, each pre-positioned with a first antibody labeled with magnetic particles and a second antibody labeled with fluorescent particles. Both the first and second antibodies are designed to specifically bind to the target in the sample. After the target in the microfluidic sample binds to the first and second antibodies, a double-antibody sandwich complex is formed.
[0017] Furthermore, the microfluidic sample undergoes specific treatment before binding with the first and second antibodies. This invention also provides a microfluidic sample detection system, including a detection device and the aforementioned microfluidic sample detection apparatus. The microfluidic sample detection apparatus is mounted within the detection device, and the detection device is electrically / signally connected to the electrodes of the microfluidic detection apparatus, thereby controlling the opening or closing of the first, second, third, and fourth valve bodies, as well as controlling the compression or release of the pump body, via actuators.
[0018] Furthermore, the microfluidic sample detection device is electrically connected to the electrodes of the detection equipment via electrical contacts. In another embodiment, before the microfluidic sample contacts the fluid inlet, the actuator controls the first and third valves to open and the fourth valve to close. In response to a signal indicating successful microfluidic sample addition, the actuator controls the first valve to close. Before the microfluidic sample contacts the fluid inlet, the actuator also controls the second valve, but the second valve can be either open or closed. In response to a signal indicating successful microfluidic sample addition, if the second valve is open, the actuator can control it to close or remain open; if the second valve is closed, the actuator can control it to open or remain closed.
[0019] Furthermore, before the microfluidic sample comes into contact with the fluid inlet, the actuator controls the second valve to close. In response to the signal that the microfluidic sample has been successfully added, the actuator controls the first and third valves to close and controls the second and fourth valves to open.
[0020] Alternatively, before the microfluidic sample is successfully added, the actuator controls the second valve to open; when the tip of the microfluidic sample approaches the second valve, the actuator controls the second valve to close.
[0021] The beneficial effects of this invention include: 1. The microfluidic sample detection device has a simple structure and is easy to manufacture. It can be applied to in vitro diagnostic products using various methodologies and can perform single-item detection, multi-item combined detection, and even combine electrochemical detection and photochemical detection methods into the same microfluidic sample detection device; 2. The liquid collection zone in the microfluidic sample detection device is located at the downstream end of the microfluidic channel, so there is no problem of contaminating the detection equipment; 3. One pump body in the microfluidic sample detection device is equipped with two valve bodies, which can provide more control methods for the flow of microfluidic samples and further broaden the application range. Attached Figure Description
[0022] Figure 1-1 One embodiment of the microfluidic detection device of the present invention.
[0023] Figure 1-2 The second embodiment of the microfluidic detection device of the present invention.
[0024] Figure 1-3 The third embodiment of the microfluidic detection device of the present invention.
[0025] Figure 1-4 The fourth embodiment of the microfluidic detection device of the present invention.
[0026] Figure 2 The fifth embodiment of the microfluidic detection device of the present invention.
[0027] Figure 3-1The sixth embodiment of the microfluidic detection device of the present invention.
[0028] Figure 3-2 The seventh embodiment of the microfluidic detection device of the present invention.
[0029] Figure 4-1 The eighth embodiment of the microfluidic detection device of the present invention.
[0030] Figure 4-2 The ninth embodiment of the microfluidic detection device of the present invention.
[0031] Figure 5 This invention provides a combined implementation of a microfluidic detection device.
[0032] Figure 6 One of the schematic diagrams of the microfluidic detection device module of the present invention.
[0033] Figure 7 The second schematic diagram of the microfluidic detection device module of the present invention.
[0034] Figure 8 The third schematic diagram of the microfluidic detection device module of the present invention.
[0035] Figure 9 Example 6: Results of the accuracy study of the product of the present invention.
[0036] Figure 10 Example 6A: Results of a study on the accuracy of traditional products.
[0037] Figure 11 Example 6B: Results of a study on the accuracy of traditional products. Detailed Implementation
[0038] To enable those skilled in the art to better understand the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.
[0039] Example 1
[0040] like Figure 1-1 As shown, this is one embodiment of the microfluidic detection device of the present invention, which includes a fluid inlet 11, a fluid outlet 12, a microfluidic channel 13, a liquid collection zone 14, a reaction zone 131, a pump body 41, and a valve body.
[0041] The fluid inlet 11 is used to add the microfluidic sample to be tested, the fluid outlet 12 is in communication with the environment, and the microfluidic channel 13 is between the fluid inlet and the fluid outlet. The microfluidic sample to be tested enters from the fluid inlet and flows in the microfluidic channel. The volume of the microfluidic sample moving forward in the microfluidic channel is greater than the volume of the gas discharged from the fluid outlet.
[0042] The liquid receiving zone 14 is located downstream of the microfluidic channel and also downstream of the reaction zone. It is used to receive the microfluidic sample after the reaction. The fluid outlet is located at the outlet of the liquid receiving zone and is in communication with the environment. The environment refers to the external environment of the microfluidic detection device of this invention, such as air or vacuum. It can be the environment set in the system of this invention or the same as the environment outside the system of this invention. The fluid outlet allows gas or liquid to flow out. In most embodiments, the fluid outlet is a gas outlet, allowing only gas to flow out and no liquid to flow out. In a few embodiments, the fluid outlet is both a gas and liquid outlet, allowing both gas and liquid to flow out.
[0043] The reaction zone 131 is located in the microfluidic channel between the fluid inlet and the fluid outlet; in other words, the reaction zone partially overlaps with the microfluidic channel. The microfluidic sample to be tested is designed to react with a fixed pre-prepared reagent in the reaction zone as it flows through the microfluidic channel.
[0044] Pump body 41 is used to passively drive the flow of microfluidic samples in the microfluidic channel. In other words, by controlling the pressure applied to the pump body, a driving force can be provided for the flow of the microfluidic sample. This driving force forces the microfluidic sample to enter the microfluidic channel from the fluid inlet, and can further drive the microfluidic sample to continue flowing forward. The pressure value applied to the pump body can be preset and associated with the travel position of the microfluidic sample after entering the microfluidic channel. That is, when the preset pressure value applied to the pump body is a certain value, the microfluidic sample is at a certain position in the microfluidic channel. This design can be used to confirm the successful addition of the microfluidic sample and to determine that the microfluidic sample has entered a specific region.
[0045] The valve body includes valve body one (31), valve body two (32), valve body three (33), and valve body four (33). Valve body one (31), located downstream of the fluid inlet, controls the connection between the fluid inlet and the microfluidic channel, and is in the open state until the microfluidic sample has completely entered the microfluidic channel. Valve body two (32) and valve body three (33), located downstream of valve body one and between the pump body and the microfluidic channel, control the connection between the pump body and the microfluidic channel. When valve body two and / or valve body three is open, the pump body and the microfluidic channel are fluidly connected. In other words, valve body two and valve body three control the pump body, determining whether the pump body provides driving force to the microfluidic sample. Valve body two and valve body three can be in the open state simultaneously for a period of time, but cannot be in the open state simultaneously indefinitely. Valve body three is located downstream of valve body two, which is upstream of the reaction zone. Valve body three can be located either upstream or downstream of the reaction zone; that is, the reaction zone can be located in the microfluidic channel between valve bodies two and three, or downstream of valve body three. Valve bodies one and three together determine the volume of the final microfluidic sample participating in the reaction, or vice versa. Valve body four is located at the fluid outlet and is used to control the connection between the liquid collection zone and the external environment. The operating states of valve bodies three and four are opposite; that is, when valve body three is open, valve body four is closed, and vice versa. When valve body three is open and valve body four is closed, the pump body and the microfluidic channel are connected, and the pump body can passively drive the microfluidic sample to flow towards the fluid outlet. When valve body three is open, valve body two can be opened simultaneously to drive the microfluidic sample to flow toward the fluid outlet. However, valve body two must be closed before the tip of the microfluidic sample approaches valve body two to prevent the microfluidic sample from entering the pump body through valve body two. Similarly, valve body three must be closed before the tip of the microfluidic sample approaches valve body three to prevent the microfluidic sample from entering the pump body through valve body three.
[0046] In some implementations, the valve body consists of a plastic substrate and a flexible diaphragm. The plastic substrate includes an upper surface and a lower surface. Grooves are formed on the upper surface using methods such as laser etching. The flexible diaphragm also includes an upper surface and a lower surface. The upper surface of the plastic substrate and the lower surface of the flexible diaphragm are bonded together with an adhesive material. The upper surface of the plastic substrate and the lower surface of the flexible diaphragm are in contact and partially joined, forming a cavity between them. When the flexible diaphragm is in a relaxed state, the cavity is open, meaning the valve body is in the open state. When the flexible diaphragm is under pressure, the cavity is closed, meaning the valve body is in the closed state.
[0047] In other embodiments, the valve body is composed of a plastic substrate, double-sided adhesive, and a flexible diaphragm. The plastic substrate includes an upper surface and a lower surface, the double-sided adhesive includes a perforation, and the flexible diaphragm includes an upper surface and a lower surface. The upper surface of the plastic substrate, the double-sided adhesive, and the lower surface of the flexible diaphragm are pressed together to bond them together, forming a cavity between the upper surface of the plastic substrate and the lower surface of the flexible diaphragm. When the flexible diaphragm is in a relaxed state, the cavity is open, i.e., the valve body is in an open state. When the flexible diaphragm is under pressure, the cavity is closed, i.e., the valve body is in a closed state.
[0048] like Figure 6 The diagram shows the structural design of a load microfluidic detection device. To achieve the photochemical detection function, it includes a main control board, display screen, load position, magnetic module, temperature module, optical module, actuator, battery, power interface, and timer. Of course, if only a certain type of detection is required, the detection device can be simplified, for example, to only include the main control board, load position, actuator, optical module, power interface, and timer.
[0049] The power interface provides power to the testing equipment and can charge the battery. The battery allows the testing equipment to operate normally without a power source, thus achieving portability. After the testing equipment is powered on, the testing device is placed inside. When the microfluidic sample testing device is accurately placed on the load position within the testing equipment, the load position generates a load signal and transmits it to the main control board. The testing device and the testing equipment then establish a signal connection, and the main control board commands the testing equipment to start operating. In another embodiment, clicking a button on the testing device can also trigger the main control board to command the testing equipment to start operating.
[0050] The optical module includes a photodetector unit, which detects the reaction of the microfluidic sample under test. The result is then processed by the main control board and displayed on the screen. Alternatively, the optical module may also include a photoelectric conversion unit, which converts the signal into an electrical signal, which is then processed by the main control board and displayed on the screen.
[0051] On the other hand, the optical module is also used to determine whether the microfluidic sample to be tested has been successfully added to the detection device. The optical detection unit continuously detects the light reflection state at the same position in the microfluidic channel at different time points and converts it into an electrical signal by the photoelectric conversion unit. The main control board then determines that the microfluidic sample to be tested has been successfully added.
[0052] At least one reaction waiting time countdown is preset in the timer to define a fixed time period for the reaction of the microfluidic sample in the microfluidic channel. In another embodiment, a microfluidic sample addition waiting time countdown can also be set in the timer, with the start point of the addition waiting time being the time when the detection device and the detection equipment complete the signal connection. When the timer expires, it is determined that the microfluidic sample to be tested has been successfully added. When the timer is used to determine successful addition, it is not necessary to use the aforementioned optical detection unit to determine successful addition. In another embodiment, a countdown can also be set in the timer for the microfluidic sample to reach a fixed area (e.g., the reaction zone). The countdown starts when the microfluidic sample begins to flow, and when the countdown ends, the microfluidic sample has reached the fixed area. The actuator provides pressure to the valve body to close the valve body and close the microfluidic channel, or releases pressure to open the valve body and open the microfluidic channel. The actuator also provides pressure to the pump body of the detection device. After the detection device is accurately placed on the load position of the detection equipment, pressure is applied to the pump body, compressing it to drive some or all of the gas in the pump body out of the detection device. The pressure is maintained on the pump body, and when the microfluidic sample to be tested contacts the fluid inlet, the pump body is released to drive the microfluidic sample to flow into the microfluidic channel. Furthermore, after the microfluidic sample to be tested is successfully added to the microfluidic channel, pressure is applied to the pump body, compressing it to drive the microfluidic sample to flow towards the downstream region of the microfluidic channel. The downstream region refers to the reaction zone and the non-reaction zone, where the non-reaction zone includes, for example, the processing zone and the detection zone. In some embodiments, the pressure value applied to the pump body by the actuator can be preset and associated with the travel position of the microfluidic sample after entering the microfluidic channel. That is, a preset pressure value applied to the pump body corresponds to a certain position of the microfluidic sample in the microfluidic channel. This design can be used to confirm successful microfluidic sample addition and to determine that the microfluidic sample has entered a specific region. For example, when the actuator applies a pressure value that reaches a certain value, the microfluidic sample flows into the reaction zone. In such an implementation, the timer does not need to be set to count down the time for the microfluidic sample to reach the fixed area.
[0053] The magnetic module includes a magnet and a magnetic shield. The magnet is fixed in the downstream region of the microfluidic channel in the detection device, and the magnetic shield isolates the magnet from the downstream region of the microfluidic channel. When the microfluidic sample to be tested enters the downstream region of the microfluidic channel and the microfluidic sample to be tested needs to be separated by magnetic adsorption, the main control board commands the magnetic shield to move so that the magnetic field generated by the magnet acts on the microfluidic sample to be tested.
[0054] The temperature module includes a heating unit, which is fixed in the downstream region of the microfluidic channel in the detection device. The main control board commands the heating unit to provide the required processing temperature or the required reaction temperature to the microfluidic sample to be tested.
[0055] The system consisting of the aforementioned microfluidic sample detection device and detection equipment can be used as a microfluidic sample extraction system for the separation of red blood cells and plasma in blood samples and the extraction of plasma. Red blood cells are the target, and the reagent pre-placed in the reaction zone is an antibody that binds to magnetic particles and is designed to target red blood cells.
[0056] Turn on the power to the detection equipment, place the microfluidic detection device on the load position of the microfluidic detection equipment, and expose the fluid inlet to the environment. The load position generates a load signal and transmits it to the main control board. In another embodiment, the load position does not generate a load signal; instead, the main control board transmits the load signal by manually clicking a button on the detection equipment. The microfluidic detection device is connected to the microfluidic detection equipment via signal connection. The main control board commands the actuator to open valve one, open valve three, close (or open) valve two, close valve four, and compress the pump to drive the gas in the pump through valve three (or, and valve two), and then discharge it through the fluid inlet. The main control board commands to stop compressing the pump, keep valve two closed (or closed), and bring the blood sample into contact with the fluid inlet. The timer starts its first countdown, and simultaneously, the main control board commands to release the pump to drive the blood sample into the microfluidic channel. During the process of the blood sample entering the microfluidic channel, some gas enters the pump through valve three. The volume of gas entering the pump is proportional to the volume of the blood sample entering. When the timer finishes its first countdown, the main control board commands the pump to stop releasing, and the blood sample stops entering. The main control board confirms that the sample addition has been successful, and then commands the actuator to close valve one, open valve two, close valve three, open valve four, and compress the pump to drive the blood sample between valve two and valve three into the reaction zone. The timer then begins its second countdown. During the process of the blood sample entering the reaction zone, some gas is discharged through the fluid outlet. The volume of the discharged gas is proportional to the volume of the blood sample flowing downwards. When the front end of the blood sample contacts the end of the reaction zone, indicating that the reaction zone is full, the second countdown of the timer ends. The main control board commands the actuator to stop compressing the pump, and the third countdown of the timer begins. The blood sample reacts with the anti-erythrocyte antibodies bound to the magnetic particles in the reaction zone. The erythrocytes in the blood sample bind to the antibodies, forming a magnetic particle-anti-erythrocyte antibody-erythrocyte complex. The third countdown of the timer ends, and the main control board commands the magnetic shield in the magnetic module to move away from the space between the magnet and the microfluidic channel, exposing the reaction zone to the magnetic field generated by the magnet. The erythrocytes bound to the antibodies are adsorbed onto the wall of the microfluidic channel in the reaction zone due to the magnetic field. The main control board commands the actuator to continue compressing the pump to drive the plasma that has lost erythrocytes out of the reaction zone and into the collection zone. Finally, the plasma that has lost erythrocytes can flow out from the fluid outlet for subsequent use.
[0057] In another implementation, after the gas in the pump body is discharged, the main control board commands the pump body to stop compressing, opens (or remains open) valve body two, and brings the blood sample into contact with the fluid inlet. The timer starts its first countdown. At the same time, the main control board commands the pump body to be released to drive the blood sample into the microfluidic channel. During this process, some gas enters the pump body through valve body two and valve body three. The volume of gas entering the pump body is proportional to the volume of the blood sample entering. When the front end of the blood sample approaches valve body two, the main control board commands valve body two to be closed, but valve body three remains open.
[0058] In another implementation, there is no first countdown; the optical module determines that the blood sample has been successfully added. In another implementation, there is no second countdown; the pressure value applied to the pump by the actuator determines that the blood sample has filled the reaction zone.
[0059] Example 2
[0060] The microfluidic sample detection system, composed of the microfluidic sample detection device and detection equipment in Example 1, was applied to the detection of urinary glucose. Glucose was used as the target analyte. The reagents pre-placed in the reaction zone 131 were prepared by combining disodium hydrogen phosphate, citric acid, polyvinylpyrrolidone, dimethyl maleate, o-toluidine, peroxidase, glucose oxidase, orange-yellow dye, enzyme stabilizer, and enzyme activator.
[0061] Turn on the power to the detection equipment, place the microfluidic detection device into the load position of the microfluidic detection equipment, and expose the fluid inlet to the environment. The load position generates a load signal and transmits it to the main control board. In another embodiment, the load position does not generate a load signal; instead, the main control board transmits the load signal by manually clicking a button on the detection equipment. The microfluidic detection device is connected to the microfluidic detection equipment via signal connection. The main control board commands the actuator to open valve one, open valve three, close (or open) valve two, close valve four, and compress the pump to drive the gas in the pump through valve three (or, and valve two), and then discharge it through the fluid inlet. The main control board commands to stop compressing the pump, keeping valve two closed (or closed), and to bring the urine sample to be tested into contact with the fluid inlet. The timer begins its first countdown, and simultaneously, the main control board commands to release the pump to drive the microfluidic sample into the microfluidic channel. During the process of the urine sample entering the microfluidic channel, some gas enters the pump through valve three. The volume of gas entering the pump is proportional to the volume of the urine sample entering the pump.
[0062] When the timer finishes its first countdown, the urine sample stops entering. The main control board receives the countdown end signal, confirming that the sample addition was successful. It then commands the actuator to close valve one, open valve two, close valve three, open valve four, and compress the pump to drive the urine sample between valve two and valve three into the reaction zone. The timer then begins its second countdown. During the process of the urine sample entering the reaction zone, some gas is discharged through the fluid outlet. The volume of the discharged gas is proportional to the volume of the urine sample flowing downwards.
[0063] When the front end of the urine sample to be tested contacts the end of the reaction zone, indicating that the reaction zone is full, the second countdown of the timer ends. The main control board then commands the actuator to stop the pump, and the third countdown of the timer begins. The urine sample reacts with the preset reagent in the reaction zone. When the third countdown of the timer ends, the main control board commands the optical detection unit in the optical detection module to detect the optical signal of the reaction result in the reaction zone. The photoelectric conversion unit converts the optical signal into an electrical signal value. The main control board receives the detected electrical signal value, determines whether glucose is present in the urine sample, and commands the display screen to show the detection result. At the same time, it commands the actuator to resume the pump to drive the waste liquid after the reaction into the collection zone. As the waste liquid enters the collection zone, some gas is discharged through the fluid outlet. The collection zone absorbs the waste liquid after the reaction. The used microfluidic sample detection device is then removed from the detection equipment and discarded.
[0064] In another implementation, after the gas in the pump body is discharged, the main control board commands the pump body to stop compressing, opens (or keeps open) valve body two, and brings the urine sample to be tested into contact with the fluid inlet. The timer starts its first countdown. At the same time, the main control board commands the pump body to be released to drive the urine sample to be tested into the microfluidic channel. During this process, some gas enters the pump body through valve body two and valve body three. The volume of gas entering the pump body is proportional to the volume of the urine sample to be tested entering. When the front end of the urine sample to be tested approaches valve body two, the main control board commands valve body two to be closed, but valve body three remains open.
[0065] In another implementation, there is no initial countdown; instead, successful sample addition is determined by observation. The detection device is equipped with a cover that generates a successful sample addition signal. When the urine sample to be tested is added to the fluid inlet and sufficient sample volume is observed, the cover is closed, generating a successful sample addition signal which is transmitted to the main control board to confirm successful addition. In another implementation, there is no initial countdown; the optical module determines successful urine sample addition. In yet another implementation, there is no second countdown; the pressure applied to the pump by the actuator determines that the reaction zone is full.
[0066] Example 3
[0067] like Figure 1-2 The diagram illustrates a second embodiment of the microfluidic detection device of the present invention. Based on embodiment 1, it further includes a conductive system composed of electrodes. The conductive system comprises two electrodes: electrode one 51 and electrode two 52. Electrode one further includes electrode contact one 511 and electrode sensing end one 512, while electrode two includes electrode contact two 521 and electrode sensing end two 522. Electrode sensing end one 512 and electrode sensing end two 522 are located at opposite ends of the reaction zone 131, i.e., electrode sensing end one is located at the beginning of the reaction zone, and electrode sensing end two is located at the end of the reaction zone. Figure 1-2 As shown in (a), both electrode sensing terminals one and two are located downstream of valve body two and between valve body two and valve body three. At this time, the reaction zone is between valve body two and valve body three. Figure 1-2 As shown in (b), both electrode sensing terminals one and two are located downstream of valve body three, and the reaction zone is downstream of valve body three; Figure 1-2 As shown in (c), electrode sensing end one is downstream of valve body two and upstream of valve body three, and electrode sensing end two is downstream of valve body three. At this time, valve body three is within the reaction zone.
[0068] like Figure 7 The diagram shows the structural design of a load microfluidic detection device. To achieve detection functions including electrochemical methods, it includes a main control board, display screen, load position, magnetic module, temperature module, electrical module, actuator, battery, power interface, and timer. Of course, if only a certain type of detection is required, the detection device can be simplified, for example, to only include the main control board, load position, actuator, electrical module, power interface, and timer.
[0069] The power interface provides power for the instrument's operation and can charge the battery. The battery allows the testing equipment to operate normally without a power source, ensuring portability. After the testing equipment is powered on, the testing device is placed inside. When the microfluidic sample testing device is accurately placed on the load position within the testing equipment, the load position generates a load signal and transmits it to the main control board. The testing device and the testing equipment then establish a signal connection, and the main control board commands the testing equipment to begin operation. In another implementation, the load position does not generate a load signal; instead, the load signal is transmitted to the main control board by manually clicking a button on the testing device.
[0070] The electrical module includes an electrical connector and an electrical detection unit. The electrical connector provides mating electrical contacts for the electrode contacts in the microfluidic detection device. The number of electrical contacts in the microfluidic detection device corresponds to the number of electrode contacts in the microfluidic detection device. The main control board commands the electrical detection unit to output a continuous, weak electrical signal (the output stops after the microfluidic sample to be tested is successfully added). This signal cannot be detected in the event of an open circuit. When the detection device is accurately placed on the load position of the detection device, the electrode contacts on the detection device pair with the electrical contacts on the electrical connector, indicating that the detection device and the detection device have completed the electrical connection. The electrical module determines that the microfluidic sample to be tested has been successfully added by detecting the electrical signal between the electrodes. Alternatively, since the time for a microfluidic sample of a certain volume to pass through a microfluidic channel of a certain size is fixed, a sample addition waiting time can be preset in a timer, with the time when the detection device and the detection device complete the signal connection as the starting point for the sample addition waiting time. When the timer expires, it is determined that the microfluidic sample to be tested has been successfully added.
[0071] After the microfluidic sample under test completes the reaction, the electrical detection unit of the electrical module detects the current generated by the electron transfer. The current signal passes through electrode one and electrode two, and is transmitted to the main control board of the detection device through the corresponding electrical contacts of electrode one and electrode two. After processing by the main control board, the detection result is displayed on the screen.
[0072] In some implementations, a countdown timer for microfluidic sample addition can be set in the timer, with the time when the detection device and detection equipment complete the electrical connection of the electrodes serving as the starting point for the sample addition waiting time. When the timer expires, it is determined that the microfluidic sample to be tested has been successfully added.
[0073] The actuator provides pressure to the valve body to close it, thus shutting off the microfluidic channel, or releases pressure to open it, allowing the microfluidic channel to flow through. The actuator also provides pressure to the pump body of the detection device. After the detection device is accurately positioned on the load side of the detection equipment, the actuator provides pressure to the pump body, compressing it to drive some or all of the gas in the pump body out of the detection device. It maintains the pressure provided to the pump body and releases it when the microfluidic sample comes into contact with the fluid inlet, driving the sample to flow into the microfluidic channel. Furthermore, after the microfluidic sample is successfully added to the microfluidic channel, the actuator provides pressure to the pump body, compressing it to drive the sample to flow towards the downstream region of the microfluidic channel. This downstream region refers to both the reaction zone and the non-reaction zone, with the non-reaction zone including, for example, the processing zone and the detection zone. In some implementations, the pressure applied by the actuator to the pump body can be preset and associated with the position of the microfluidic sample after entering the microfluidic channel. That is, when the preset pressure applied to the pump body is a certain value, the corresponding position of the microfluidic sample in the microfluidic channel is a certain position. This design can be used to confirm that the microfluidic sample is successfully added and to determine that the microfluidic sample has entered a certain area. In such implementations, it is not necessary to use a timer to determine that the addition is successful and that the microfluidic sample has reached a fixed area.
[0074] The magnetic module includes a magnet and a magnetic shield. The magnet is fixed in the downstream region of the microfluidic channel in the detection device, and the magnetic shield isolates the magnet from the downstream region of the microfluidic channel. When the microfluidic sample to be tested enters the downstream region of the microfluidic channel and the microfluidic sample to be tested needs to be separated by magnetic adsorption, the main control board commands the magnetic shield to move so that the magnetic field generated by the magnet acts on the microfluidic sample to be tested.
[0075] The temperature module includes a heating unit, which is fixed in the downstream region of the microfluidic channel in the detection device. The main control board commands the heating unit to provide the required processing temperature or the required reaction temperature to the microfluidic sample to be tested.
[0076] The microfluidic sample detection system composed of the aforementioned microfluidic sample detection device and detection equipment can also be applied to the separation of red blood cells and plasma in blood samples, as well as the extraction of plasma. The reagent pre-placed in the reaction zone is an antibody that binds to magnetic particles and is designed to fight red blood cells.
[0077] Compared to Example 1, the difference lies in the detection device, such as Figure 1-2(b) After the power to the detection device is turned on, once the blood sample enters the microfluidic channel, the main control board commands the electrical module to apply a weak electrical signal to the two electrical contacts corresponding to electrode one and electrode two. The front end of the blood sample contacts electrode sensing terminal two, forming a conductive path between electrode sensing terminals one and two through the blood sample. The electrical signal can be detected through electrode contacts one and two. The main control board then commands the actuator to stop compressing the pump and simultaneously commands the electrical module to stop applying the weak signal between the two electrical contacts corresponding to electrode contacts one and two, eliminating the need for a second countdown function in the timer. If the detection device... Figure 1-2 (c) As shown, if the electrode sensing end is closer to the valve body, then the implementation is the same as... Figure 1-2 (b) Same.
[0078] When the detection device is like Figure 1-2 As shown in (a), compared to Example 1, the difference lies in that after the blood sample enters the microfluidic channel, the main control board commands the electrical module to apply a weak electrical signal to the two electrical contacts corresponding to electrode one and electrode two, and commands the actuator to close valve one, keep valve two closed (or close valve two), and continue to release the pump to drive the blood sample into the reaction zone. The front end of the blood sample contacts electrode sensing end two, and a conductive path is formed between electrode sensing end one and electrode sensing end two through the blood sample to be tested. An electrical signal can be detected through electrode contact one and electrode contact two. The main control board commands the actuator to stop releasing the pump, and at the same time commands the electrical module to stop applying a weak signal between the two electrical contacts corresponding to electrode contact one and electrode contact two. After the reaction is completed, the red blood cells are adsorbed onto the wall of the microfluidic channel in the reaction zone due to the magnetic field. The main control board commands the actuator to open valve two, open valve four, and compress the pump to drive the plasma that has lost red blood cells to leave the reaction zone and flow into the collection zone. Finally, the plasma that has lost red blood cells can flow out from the fluid outlet for subsequent use. If the detection device is as follows... Figure 1-2 (c) As shown, if the electrode sensing end is closer to the valve body, then the implementation is the same as... Figure 1-2 (a) Same.
[0079] When the detection device is like Figure 1-2 When shown in (c), and the electrode sensing end one is located between valve body two and valve body three, the implementation is the same as... Figure 1-2(a) There may also be differences. The difference lies in that after the blood sample enters the microfluidic channel, the main control board commands the electrical module to apply a weak electrical signal to the two electrical contacts corresponding to electrodes one and two, and commands the actuator to close valve one, keep valve two closed (or close valve two), and continue to release the pump to drive the blood sample into the reaction zone. However, when the blood sample has not filled the reaction zone and the front end of the blood sample is close to valve three, the main control board commands the actuator to close valve three, open valve two, open valve four, and compress the pump to drive the blood sample between valve two and valve three to continue flowing to fill the reaction zone. The front end of the blood sample contacts electrode sensing terminal two, and the blood sample is filled. Once the reaction zone is full, a conductive path is formed between electrode sensing terminals one and two through the blood sample to be tested. An electrical signal can be detected through electrode contacts one and two. The main control board commands the actuator to stop compressing the pump body, and at the same time commands the electrical module to stop applying a weak signal between the two electrical contacts corresponding to electrode contacts one and two. After the reaction is completed, the red blood cells are adsorbed onto the wall of the microfluidic channel in the reaction zone due to the magnetic field. The main control board commands the actuator to continue compressing the pump body to drive the plasma that has lost red blood cells to leave the reaction zone and flow into the collection zone. Finally, the plasma that has lost red blood cells can flow out from the fluid outlet for subsequent use.
[0080] Example 4
[0081] The microfluidic sample detection system, consisting of the microfluidic sample detection device and detection equipment in Example 3, was applied to the detection of blood ketones. β-hydroxybutyrate was used as the target analyte. The reagent pre-placed in reaction zone 131 was a formulation formed by β-hydroxybutyrate dehydrogenase, an electron mediator, a surfactant, and a buffer solution.
[0082] Turn on the power to the testing equipment, place the microfluidic detection device into the load position of the microfluidic detection equipment, and pair the electrical contacts in the testing equipment with electrode contacts one and two. The load position generates a load signal and transmits it to the main control board, indicating that the detection device and the testing equipment have completed the electrode electrical connection. In another embodiment, the load position does not generate a load signal; instead, the main control board receives the electrode electrical connection signal by manually clicking a button on the testing equipment.
[0083] The main control board receives a signal indicating the electrical connection of the electrodes and commands the actuator to open valve body one, open valve body three, close (or open) valve body two, close valve body four, and compress the pump body to drive the gas in the pump body through valve body three (or, and valve body two), and then discharge it through the fluid inlet.
[0084] The main control board commands the pump to stop, keeping valve two closed (or closed), and commands the electrical module to apply a weak electrical signal between the two electrical contacts corresponding to electrodes one and two. The fluid inlet is exposed to the environment, and the blood sample to be tested is brought into contact with the fluid inlet. The timer starts its first countdown. At the same time, the main control board commands the pump to be released to drive the blood sample into the microfluidic channel. During the process of the blood sample to be tested entering the microfluidic channel, some gas enters the pump through valve three. The volume of gas entering the pump is proportional to the volume of the blood sample to be tested entering.
[0085] When the timer finishes its first countdown, the blood sample stops entering. The main control board confirms that the sample addition has been successful and commands the actuator to close valve one, open valve two, close valve three, open valve four, and compress the pump to drive the blood sample between valve two and valve three into the reaction zone. During the process of the blood sample entering the reaction zone, some gas is discharged through the fluid outlet. The volume of the discharged gas is proportional to the volume of the blood sample entering.
[0086] The front end of the blood sample to be tested contacts the termination end of the reaction zone. A conductive path is formed between electrode sensing terminals one and two through the blood sample. An electrical signal can be detected through electrode contacts one and two, indicating that the microfluidic sample has traveled to the reaction zone. The main control board commands the actuator to stop compressing the pump body, and simultaneously commands the electrical module to stop applying a weak electrical signal between the two electrical contacts corresponding to electrode contacts one and two. The system waits for the blood sample to react with the pre-set reagent in the reaction zone and for electron transfer to occur. The current characterizing the reaction result is transmitted from the electrode sensing terminals. The first electrode sensing terminal and the second electrode sensing terminal receive the signal and transmit it to the detection device through electrode contact one, electrode contact two, electrical contact one, and electrode contact two. The main control board receives and detects the current generated by electron transfer, processes and determines the concentration of β-hydroxybutyric acid in the blood sample, and commands the display screen to show the detection result. At the same time, it commands the actuator to restore the compression pump body to drive the waste liquid after the reaction into the liquid collection zone. While the waste liquid after the reaction enters the liquid collection zone, some gas is discharged through the fluid outlet. The liquid collection zone absorbs the waste liquid after the reaction. The used microfluidic sample detection device is removed from the detection device and discarded.
[0087] Example 5
[0088] like Figure 1-3 As shown, this is a third embodiment of the microfluidic detection device of the present invention. Based on embodiment 3 or any other embodiment (such as embodiment 1), it further includes a microfluidic channel branch 132, a branch outlet 121, and electrodes 53, 54, 531, 532, 541, and 542. The branch outlet is a gas outlet, which only allows gas to flow out.
[0089] The difference from other embodiments is that when the sample to be tested comes into contact with the fluid inlet, on the one hand, it first flows towards the branch outlet, and on the other hand, as the pump body is released, the branch of the sample to be tested flows towards the second and third valve bodies, and then stops flowing after the pump body stops releasing; or the branch of the sample to be tested first flows towards the second and third valve bodies as the pump body is released, and then continues to flow downstream as the pump body is compressed, and then stops flowing after the pump body stops compressing; while the branch of the sample to be tested second, which first flows towards the branch outlet, stops flowing when the front end of the sample to be tested approaches or reaches the branch outlet.
[0090] The difference from other embodiments lies in that, simultaneously, the main control board commands the pump to release and drive the blood sample into the microfluidic channel, while also commanding the electrical module to apply a weak electrical signal between the two electrical contacts corresponding to electrodes three and four. The sample to be tested becomes conductive with electrode sensing terminals three and four in the branch of the microfluidic channel, thus forming a circuit between electrodes three and four, confirming successful sample addition. In another embodiment, interference compensation calculations are performed by capturing the electrical signal between electrode sensing terminals three and four.
[0091] Example 6
[0092] like Figure 2 As shown, this is the fifth embodiment of the microfluidic detection device of the present invention. Based on embodiment 3, the conductive system further includes electrode 55, that is, the electrode system includes three electrodes, electrode 5 includes electrode contact 551 and electrode sensing end 552. Region 1 1311 and Region 2 1312 are formed in the microfluidic channel. At this time, Region 2 is the downstream region. Region 1 is a reaction zone, Region 2 is a reaction zone, or both Region 1 and Region 2 are reaction zones. When the pump body and the microfluidic channel are connected through valve body 2 and / or valve body 3, the pump body can drive the microfluidic sample to enter Region 1 and Region 2 sequentially. Electrode sensing end 1 is located at the starting end of Region 1, electrode sensing end 2 is located at the ending end of Region 1 and is also the starting end of Region 2, and electrode sensing end 5 is located at the ending end of Region 2. Electrode sensing end 1, electrode sensing end 2 and electrode sensing end 5 are all located downstream of valve body 2. The four positional relationships of electrode sensing end 1 and electrode sensing end 2 relative to valve body 2 and valve body 3 are the same as in embodiment 3. Refer to Figure 1-2 As shown in (a), region one is located upstream of valve body three; refer to Figure 1-2 As shown in (b), region one is located downstream of valve body three; refer to Figure 1-2 As shown in (c), valve body three is within the area of region one.
[0093] For example, red blood cells are the first target, and the reagent pre-placed in region one is an antibody that binds to red blood cells using magnetic particles. β-hydroxybutyrate is the second target, and the reagent pre-placed in region two is a formulation containing β-hydroxybutyrate oxidoreductase and an electron mediator. In this case, both regions one and two are reaction zones. The power to the detection device is turned on, and the microfluidic detection device is placed in the load position of the microfluidic detection device. The electrical contacts in the detection device pair with electrode contacts one, two, and five. The load position generates a load signal and transmits it to the main control board, indicating that the detection device and the detection equipment have completed the electrode electrical connection. In another embodiment, the load position does not generate a load signal; instead, the main control board receives the signal indicating that the electrodes are electrically connected by manually clicking a button on the detection device.
[0094] The main control board receives a signal indicating the electrical connection of the electrodes and commands the actuator to open valve body one, valve body three, valve body two, close valve body four, and compress the pump body to drive the gas in the pump body through valve body three and valve body two, and then discharge it through the fluid inlet.
[0095] The main control board commands the pump to stop, exposing the fluid inlet to the environment. The blood sample to be tested is brought into contact with the fluid inlet, and the timer begins its first countdown. Simultaneously, the main control board commands the pump to be released to drive the blood sample to be tested into the microfluidic channel. During the process of the blood sample entering the microfluidic channel, some gas enters the pump through valve body two and valve body three. The volume of gas entering the pump is proportional to the volume of the blood sample entering the pump. When the front end of the blood sample approaches valve body two, the main control board commands valve body two to be closed, but valve body three remains open, and the actuator continues to release the pump. The blood sample continues to flow downstream of valve body two.
[0096] When the timer finishes its first countdown, the blood sample to be tested stops entering. The main control board confirms that the sample addition has been successful and commands the electrical module to apply a weak electrical signal to the two electrical contacts corresponding to electrodes one and two. This commands the actuator to close valve one, keep valve two closed, and continue to release the pump to drive the blood sample to be tested between valve one and valve three into entry area one. However, when the blood sample has not filled area one and the front end of the blood sample is close to valve three, the main control board commands the actuator to close valve three, open valve two, open valve four, and compress the pump to drive the blood sample to be tested between valve two and valve three to continue flowing to fill area one.
[0097] The blood sample to be tested contacts the termination point of area one, which is also the second contact electrode sensing point. A conductive path is formed between electrode sensing points one and two through the blood sample. An electrical signal can be detected through electrode contacts one and two. The main control board commands the actuator to stop compressing the pump body, and at the same time commands the electrical module to stop applying a weak electrical signal between the two electrical contacts corresponding to electrode contacts one and two. The timer starts its second countdown, waiting for the blood sample to react with the anti-erythrocyte antibody in area one. The erythrocytes in the blood sample bind with the antibody, forming a magnetic particle-anti-erythrocyte antibody-erythrocyte complex. When the timer's second countdown ends, the main control board commands the magnetic shield in the magnetic module to move away from the space between the magnet and the microfluidic channel, exposing region one to the magnetic field generated by the magnet. Red blood cells bound to antibodies are adsorbed onto the wall of the microfluidic channel in region one due to the magnetic field. The main control board commands the electrical module to apply a weak electrical signal between the two electrical contacts corresponding to electrode contacts two and five, and commands the actuator to continue compressing the pump to drive the plasma that has lost red blood cells from region one into region two. During the process, some gas is discharged through the fluid outlet, and the volume of the discharged gas is equivalent to the volume of the plasma sample that has lost red blood cells entering region two.
[0098] The plasma front-end contact area two terminates at the terminal end. A conductive path is formed between electrode sensing terminals two and five through the blood sample to be tested. An electrical signal can be detected through electrode contacts two and five. The main control board commands the actuator to stop compressing the pump body and simultaneously commands the electrical module to stop applying a weak electrical signal between the two electrical contacts corresponding to electrode contacts two and five. It waits for the plasma to react with the preparation containing β-hydroxybutyrate oxidoreductase and electron mediator and for electron transfer to occur. The current is transmitted to the detection device through electrode sensing terminals two, five, two, five, two electrical contacts, and five electrode contacts. The main control board receives the detected current, processes and determines the β-hydroxybutyrate concentration in the plasma and commands the display screen to show the detection result. At the same time, it commands the actuator to resume compressing the pump body to drive the waste liquid after the reaction into the collection zone. While the waste liquid after the reaction enters the collection zone, some gas is discharged through the fluid outlet. The collection zone absorbs the waste liquid after the reaction. The used microfluidic sample detection device is removed from the detection device and discarded.
[0099] The above tests were repeated 10 times each using blood samples with β-hydroxybutyrate concentrations of 1 mmol / L, 2 mmol / L, 4 mmol / L, 6 mmol / L, and 7 mmol / L, and the results were obtained. A biochemical standard instrument was used as a control. The same blood samples were also tested 10 times each on existing conventional electrochemical blood ketone detection products from brands A (high performance) and B (mediocre performance), and the results are shown in Table 1. Table 1 shows that the standard deviation and coefficient of variation are significantly reduced compared to both traditional brand B and traditional brand A products, indicating that the test results of this invention have lower data dispersion and lower repeatability among the measured β-hydroxybutyrate concentrations in blood samples. The accuracy of the data in Table 1 was studied and plotted. Figure 9 , Figure 10 and Figure 11 As shown, the R of the present invention 2 Significantly outperformed traditional brand B products with average performance, and outperformed traditional brand R products with excellent performance. 2 This indicates that the results of the present invention in measuring the β-hydroxybutyric acid content in blood samples are closer to the true value, and the accuracy is higher than that of existing products with excellent performance.
[0100] Table 1 Comparative Experiment Results of Example 6
[0101]
[0102] Of course, if the electrode is not present, Region 1 and Region 2 can also be formed in the microfluidic channel. The pre-placed reagent in Region 2 is replaced with tetrazolium compound (WST) reagent. The tetrazolium compound (WST) reagent reacts with β-hydroxybutyric acid and changes color. The reaction result is detected by the optical module.
[0103] Example 7
[0104] like Figure 1-4 As shown, this is a fourth embodiment of the microfluidic detection device of the present invention. Based on embodiment 1 or any other embodiment, it further includes a frame electrode 501, an electrode frame area 5011, and a frame contact 5012, or only includes the electrode frame area 5011.
[0105] like Figure 3-2 As shown, this is the seventh embodiment of the microfluidic detection device of the present invention. Based on embodiment 6, it further includes a frame electrode 501, an electrode frame area 5011, and a frame contact 5012, or only includes the electrode frame area 5011.
[0106] The microfluidic detection device is formed by bonding a substrate and a coating. A frame-shaped electrode is printed on the substrate, and the electrode frame area is printed on the coating and protrudes from the coating. When the substrate and the coating are bonded together, the electrode frame area and the microfluidic channel in the substrate together form an area for the accumulation of pre-placed reagents. The two horizontally parallel sides of the electrode frame area can be used as the electrode sensing ends of the frame electrode.
[0107] Example 8
[0108] like Figure 3-1 As shown, this is the sixth embodiment of the microfluidic detection device of the present invention. Based on embodiment 6, the conductive system further includes electrode six 56, that is, the electrode system includes four electrodes, and electrode six includes electrode contact six 561 and electrode sensing end six 562. Region one 1311, region two 1312 and region three 1313 are formed in the microfluidic channel. At this time, region three is the downstream region. Region one is a reaction zone, or region two is a reaction zone, or region three is a reaction zone, or any two of regions one, two and three are reaction zones, or regions one, two and three are all reaction zones. When the pump body and the microfluidic channel are connected through valve body two and / or valve body three, the pump body can drive the microfluidic sample to enter region one, region two and region three in sequence. Electrode sensing end one is located at the starting end of region one, electrode sensing end two is located at the ending end of region one and is also the starting end of region two, electrode sensing end six is located at the ending end of region two and is also the starting end of region three, and electrode sensing end five is located at the ending end of region three. The detection device also includes the optical module in embodiment 1. For example, with C-reactive protein as the target, the reagent pre-placed in region one is a C-reactive protein antibody bound to magnetic particles, i.e., a C-reactive protein antibody labeled with magnetic particles. The reagent pre-placed in region two is a C-reactive protein antibody labeled with fluorescent particles. There is no pre-placed reagent in region three. In this case, regions one and two are the reaction regions, and region three is the detection region.
[0109] Turn on the power to the testing equipment, place the microfluidic detection device into the load position of the microfluidic detection equipment, and pair the electrical contacts in the testing equipment with electrode contacts one, two, five, and six. The load position generates a load signal and transmits it to the main control board, indicating that the detection device and the testing equipment have completed the electrode electrical connection. In another embodiment, the load position does not generate a load signal; instead, the main control board receives the electrode electrical connection signal by manually clicking a button on the testing equipment. Upon receiving the electrode electrical connection signal, the main control board commands the actuator to open valve one, open valve three, close valve two, close valve four, compress the pump body to drive the gas in the pump body through valve three, and then discharge it through the fluid inlet.
[0110] The main control board commands the pump to stop and opens valve two, exposing the fluid inlet to the environment. The blood sample to be tested is brought into contact with the fluid inlet, and the timer begins its first countdown. At the same time, the main control board commands the pump to be released to drive the blood sample to be tested into the microfluidic channel. When the front end of the blood sample approaches valve two in the microfluidic channel, the main control board commands valve two to be closed, but valve three remains open, and the actuator continues to release the pump, allowing the blood sample to continue flowing downstream of valve two.
[0111] When the timer finishes its first countdown, the main control board confirms that the sample addition has been successful and commands the electrical module to apply a weak electrical signal to the two electrical contacts corresponding to electrodes one and two. This commands the actuator to close valve one and continue releasing the pump to drive the blood sample to be tested between valve one and valve three into region one. However, when the blood sample has not filled region one and the front end of the blood sample is close to valve three, the main control board commands the actuator to close valve three, open valve two, open valve four, and compress the pump to drive the blood sample to be tested between valve two and valve three to continue flowing to fill region one.
[0112] The blood sample to be tested contacts the termination end of the first contact area. A conductive path is formed between electrode sensing end one and electrode sensing end two through the blood sample. An electrical signal can be detected through electrode contact one and electrode contact two. The main control board commands the actuator to stop compressing the pump body. At the same time, it commands the electrical module to stop applying a weak electrical signal between the two electrical contacts corresponding to electrode contact one and electrode contact two, and between the two electrical contacts corresponding to electrode contact two and electrode contact six. The timer starts its second countdown, waiting for the blood sample to be tested to react with the magnetic particles and C-reactive protein antibody in area one. The C-reactive protein in the blood sample binds to the antibody, forming a magnetic particle C-reactive protein antibody-C-reactive protein complex. When the second countdown of the timer ends, the main control board commands the actuator to continue compressing the pump body to drive the micro-blood sample containing the aforementioned complex from region one into region two and contact the termination end of region two. That is, a conductive path is formed between electrode sensing terminals two and six through the blood sample containing the aforementioned complex. An electrical signal can be detected through electrode contacts two and six. The main control board commands the actuator to stop compressing the pump body and simultaneously commands the electrical module to stop applying a weak electrical signal between the two electrical contacts corresponding to electrode contacts two and six. The third countdown of the timer begins, waiting for the blood sample containing the aforementioned complex to bind with the fluorescently labeled C-reactive protein antibody to form a magnetic particle C-reactive protein antibody-C-reactive protein-fluorescently labeled C-reactive protein antibody complex, i.e., a double antibody sandwich complex. When the timer's third countdown ends, the main control board commands the electrical module to apply a weak electrical signal between the two electrical contacts corresponding to electrode contacts two and five, and commands the actuator to resume the compression pump to drive the micro-blood sample containing the aforementioned complex from region two into region three and contact the termination end of region three. A conductive path is formed between electrode sensing terminals two and six through the blood sample containing the aforementioned complex, and the electrical signal can be detected through electrode contacts six and five. The main control board commands the actuator to stop the compression pump, and simultaneously commands the electrical module to stop applying the weak electrical signal between the two electrical contacts corresponding to electrode contacts six and five. The main control board commands the magnetic shield in the magnetic module to move away from the magnet and the micro-... Between the fluid channels, region three is exposed to the magnetic field generated by the magnet. The aforementioned magnetic particle C-reactive protein antibody-C-reactive protein-fluorescent particle-labeled C-reactive protein antibody complex is adsorbed onto the wall of the microfluidic channel in region three due to the magnetic field. The main control board commands the optical detection unit in the optical detection module to detect the fluorescence signal of the complex in region three. The main control board receives the detected fluorescence signal intensity, and the photoelectric conversion unit converts the fluorescence signal intensity into an electrical signal value. The main control board receives the detected electrical signal value, calculates the C-reactive protein content in the blood sample, and commands the display screen to display the result. At the same time, the main control board commands the actuator to restore the compression pump body to drive the waste liquid that has lost the aforementioned complex from region three into the liquid collection area.
[0113] The waste liquid is absorbed in the collection zone, and the used microfluidic sample detection device is removed from the detection equipment and discarded. In this embodiment, the reagents pre-placed in Zone 1 and Zone 2 can be exchanged.
[0114] In another embodiment, the travel area of the microfluidic sample can be determined by the pressure value applied to the pump body by the actuator, which can replace the function of determining whether the microfluidic sample has reached the area corresponding to the two electrode sensing ends by applying a weak electrical signal between the two electrode sensing ends.
[0115] Example 9
[0116] Based on Example 8, an electrode sensing terminal reference... Figure 1-2 (a) As shown, between valve body two and valve body three, there is also electrode seven, which includes electrode contact seven and electrode sensing end seven. Region one, region two, region three and region four are formed in the microfluidic channel. At this time, region four is the downstream region. When the pump body and the microfluidic channel are connected through valve body two and / or the third valve body, the pump body can drive the microfluidic sample to enter region one, region two, region three and region four in sequence.
[0117] In other words, electrode sensing terminal five is located at both the end of region three and the beginning of region four, while electrode sensing terminal seven is located at the end of region four. In this case, region one is the pretreatment zone, regions two and three are reaction zones, and region four is the detection zone.
[0118] For example, using total vitamin D (total 25-hydroxyvitamin D) as the target, the reagent pre-set in region one is a VD dissociation solution; the reagent pre-set in region two is an antibody that binds to the first epitope via magnetic particles, i.e., a first epitope antibody labeled with magnetic particles; the reagent pre-set in region three is a second epitope antibody that can be labeled with fluorescein or fluorescent particles; and no reagent is pre-set in region four. Electrode sensing terminal five is located at the beginning of region four, and electrode sensing terminal seven is located at the end of region four.
[0119] Turn on the power to the testing equipment, place the microfluidic testing device into the load position of the microfluidic testing equipment, and pair the electrical contacts in the testing equipment with electrode contacts one, two, five, six, and seven. The load position generates a load signal and transmits it to the main control board, indicating that the testing device and the testing equipment have completed the electrode electrical connection. In another embodiment, the load position does not generate a load signal; instead, the main control board receives the electrode electrical connection signal by manually clicking a button on the testing equipment.
[0120] The main control board receives a signal indicating the electrical connection of the electrodes and commands the actuator to open valve body one, open valve body three, open valve body two, close valve body four, compress the pump body to drive the gas in the pump body through valve body three, and then discharge it through the fluid inlet.
[0121] The main control board commands the pump to stop, exposing the fluid inlet to the environment. The blood sample to be tested is brought into contact with the fluid inlet, and the timer begins its first countdown. At the same time, the main control board commands the pump to be released to drive the blood sample to be tested into the microfluidic channel. When the front end of the blood sample approaches the second valve, the main control board commands the second valve to be closed, but the third valve remains open, and the actuator continues to release the pump. The blood sample continues to flow downstream of the second valve.
[0122] Once the timer finishes its first countdown, the main control board confirms that the sample addition has been successful and commands the electrical module to apply a weak electrical signal to the two electrical contacts corresponding to electrode one and electrode two. This commands the actuator to close one of the valve bodies and continue releasing the pump body to drive the blood sample into region one.
[0123] The blood sample is in contact with the termination point of the first contact area. A conductive path is formed between electrode sensing terminals one and two through the blood sample. An electrical signal can be detected through electrode contacts one and two. The main control board commands the actuator to stop releasing the pump body, and simultaneously commands the electrical module to stop applying a weak electrical signal between the two electrical contacts corresponding to electrode contacts one and two. The second countdown of the timer begins, waiting for the blood sample to be fully incubated and dissociated by the VD dissociation solution in area one. In order to fully release the bound VD in the blood sample, the main control board can also command the temperature module to heat area one before the second countdown of the timer begins. Dissociating VD from the blood sample is a specific treatment of bound VD. Only by specifically dissociating it from the blood can subsequent binding reactions be achieved to determine the total VD content in the blood. When the second countdown of the timer ends, the main control board commands the electrical module to begin applying a weak electrical signal between the two electrical contacts corresponding to electrode contact two and electrode contact six. It also commands the actuator to close valve body three, open valve body one, and compress the pump to drive the blood sample containing the dissociated state VD from region one to region two, contacting the termination end of region two. This establishes a conductive path between electrode sensing terminals two and six through the blood sample containing the dissociated state VD. An electrical signal can be detected through electrode contacts two and six. The main control board commands the actuator to stop compressing the pump and simultaneously commands the electrical module to stop applying the weak electrical signal between the two electrical contacts corresponding to electrode contacts two and six. The third countdown of the timer begins, waiting for the blood sample containing the dissociated state VD to react with the first epitope antibody labeled with magnetic particles. The dissociated state VD in the blood sample binds to the antibody, forming a magnetic particle VD antibody-VD antigen complex. When the timer's third countdown ends, the main control board commands the actuator to continue compressing the pump body to drive the micro-blood sample containing the aforementioned complex from region two into region three and contact the termination end of region three. It also commands the electrical module to apply a weak electrical signal between the two electrical contacts corresponding to electrode contacts six and five. A conductive path is formed between electrode contacts six and five through the blood sample containing the aforementioned complex, and the electrical signal can be detected through electrode contacts six and five. The main control board commands the actuator to stop compressing the pump body and simultaneously commands the electrical module to stop applying the weak electrical signal between the two electrical contacts corresponding to electrode contacts six and five. The timer's fourth countdown begins, waiting for the blood sample containing the aforementioned complex to bind with the fluorescently labeled second epitope antibody, forming a magnetic particle VD antibody-VD antigen-fluorescent particle VD antibody complex, i.e., a double-antibody sandwich complex.When the timer's fourth countdown ends, the main control board commands the actuator to resume the compression pump to drive the micro-blood sample containing the aforementioned complex from region three into region four, contacting the termination end of region four. The main control board then commands the electrical module to apply a weak electrical signal between the two electrical contacts corresponding to electrode contacts five and seven. A conductive path is formed between electrode sensing terminals five and seven through the blood sample containing the aforementioned complex, allowing the electrical signal to be detected. The main control board commands the actuator to stop the compression pump and simultaneously commands the electrical module to stop applying the weak electrical signal between the two electrical contacts corresponding to electrode contacts five and seven. The main control board then commands the magnetic shield in the magnetic module to move, thereby... Leaving the space between the magnet and the microfluidic channel, region three is exposed to the magnetic field generated by the magnet. The aforementioned magnetic particle VD antibody-VD antigen-fluorescent particle VD antibody complex is adsorbed onto the wall of the microfluidic channel in region four due to the magnetic field. The main control board commands the optical detection unit in the optical detection module to detect the fluorescence signal of the complex in region four. The main control board receives the detected fluorescence signal intensity, and the photoelectric conversion unit converts the fluorescence signal intensity into an electrical signal value. The main control board receives the detected electrical signal value, calculates the total VD content in the blood sample, and commands the display screen to display the result. At the same time, the main control board commands the actuator to restore the compression pump body to drive the waste liquid that has lost the aforementioned complex from region three into the collection area.
[0124] The waste liquid is absorbed in the collection zone, and the used microfluidic sample detection device is removed from the detection equipment and discarded. In this embodiment, the reagents pre-placed in Zones 2 and 3 can be exchanged.
[0125] In another embodiment, the travel area of the microfluidic sample can be determined by the pressure value applied to the pump body by the actuator, which can replace the function of determining whether the microfluidic sample has reached the area corresponding to the two electrode sensing ends by applying a weak electrical signal between the two electrode sensing ends.
[0126] Example 10
[0127] like Figure 4-1 As shown, this is the eighth embodiment of the microfluidic detection device of the present invention. In Embodiment 1 or any other embodiment, it includes electrode 1 51, electrode contact 1 511, electrode sensing end 1 512, electrode 8 58, electrode contact 8 581, and electrode sensing end 8 582. Electrode sensing end 8 is located downstream of valve body 1 and upstream of valve body 2. Electrode sensing end 1 is located downstream of electrode sensing end 8. Electrode sensing end 1, electrode sensing end 8, and the microfluidic channel together form a starting area. The starting area is close to the microfluidic inlet. Electrode sensing end 8 is the starting end of the starting area, and electrode sensing end 1 is the ending end of the starting area. The existence of the starting area can replace the function of the first countdown of the timer before successful sample addition. Figure 4-2As shown, the electrode sensing terminal eight can also be located upstream of one of the valve bodies and downstream of the fluid inlet.
[0128] The difference from other embodiments is that the detection device includes electrical contacts that pair with electrode contact one and electrode contact eight. While the main control board commands the pump body to be released to drive the microfluidic sample to be tested into the microfluidic channel, it commands the electrical module to apply a weak electrical signal to electrode one and electrode eight through the contacts. When the front end of the microfluidic sample contacts electrode sensing end one, a conductive path is formed between electrode sensing end one and electrode sensing end eight through the microfluidic sample. The electrical signal can be detected through electrode contact one and electrode contact eight. The main control board determines that the microfluidic sample has been successfully added. The microfluidic sample in the microfluidic channel from valve body two to electrode sensing end one is the determined microfluidic sample volume.
[0129] Example 11
[0130] The microfluidic detection device of the present invention can be combined with the devices in Examples 1 to 10 and applied to the combined detection of multiple indicators. Pregnant women are at risk of gestational diabetes and anemia, so it is necessary to monitor blood glucose, beta-hydroxybutyrate and hemoglobin during pregnancy.
[0131] like Figure 5 As shown, an apparatus for simultaneously detecting glucose, β-hydroxybutyric acid and hemoglobin in blood is provided. Apparatus unit 101 is used to detect glucose, apparatus unit 2 102 is used to detect β-hydroxybutyric acid, and apparatus units 3 104 and 4 105 are used to detect hemoglobin.
[0132] like Figure 8 As shown, the microfluidic detection device includes both optical and electrical modules.
[0133] To amplify the signal response of β-hydroxybutyric acid, the sensing end 1021 of the second electrode in unit two is thickened. To ensure that the area where the sample remains and the area that reacts with the pre-placed reagent coincide, the horizontal side of the first electrode frame area 1032 in unit three is aligned with the sensing end 1031 of the third electrode, and the horizontal side of the second electrode frame area 1042 in unit four is aligned with the sensing end 1041 of the fourth electrode.
[0134] Each of the four device units consists of two regions formed by the electrode sensing ends of three electrodes. The reagents pre-placed in the two regions of device unit one, from bottom to top, are: first, an antibody that binds magnetic particles to anti-erythrocytes; second, a formulation containing glucose oxidoreductase and an electron mediator. Similarly, the reagents pre-placed in the two regions of device unit two, from bottom to top, are: first, an antibody that binds magnetic particles to anti-erythrocytes; second, a formulation containing β-hydroxybutyrate oxidoreductase and an electron mediator. The reagents pre-placed in the two regions of device units three and four, from bottom to top, are: first, a hemoglobin antibody bound to magnetic particles; second, a hemoglobin antibody labeled with fluorescent particles. Device unit four serves as a control channel, and device unit three serves as a detection channel, thus eliminating errors through the control channel while detecting hemoglobin levels.
[0135] The detection processes of Unit 1 and Unit 2 are the same as in Example 6. The detection processes of Unit 3 and Unit 4 are similar to those in Example 8, except that after the formation of the dual-antibody sandwich complex and the third countdown of the timer, the main control board commands the magnetic shield in the magnetic module to move away from the space between the magnet and the microfluidic channel, exposing Region 2 to the magnetic field generated by the magnet. The aforementioned dual-antibody sandwich complex is adsorbed onto the wall of the microfluidic channel in Region 2 due to the magnetic field. The main control board commands the optical detection unit in the optical detection module to detect the fluorescence signal of the complex in Region 2. The main control board receives the detected fluorescence signal intensity, and the photoelectric conversion unit converts the fluorescence signal intensity into an electrical signal value. The main control board receives the detected electrical signal value, calculates the hemoglobin content in the blood sample, and commands the display screen to display the result. At the same time, the main control board commands the actuator to restore the compression pump body to drive the waste liquid that has lost the aforementioned complex from Region 2 into the collection area.
[0136] The above embodiments are only used to illustrate the technical solutions of the present invention more clearly, and are therefore only examples and should not be used to limit the scope of protection of the present invention.
[0137] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains; the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the invention; the terms “comprising” and “having”, and any variations thereof, in the specification and claims of this invention are intended to cover non-exclusive inclusion.
[0138] In the description of this invention, technical terms such as "first," "second," "third," and "fourth" are used only to distinguish different objects and should not be construed as indicating or implying relative importance or implicitly specifying the number, specific order, or primary and secondary relationship of the indicated technical features. In the description of the embodiments of this invention, "a plurality of" means two or more, unless otherwise explicitly defined.
[0139] In this document, the terms "embodiment" and "implementation" mean that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment that is mutually exclusive with other embodiments.
[0140] The above embodiments are merely illustrative of the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention, and they should all be covered within the scope of the claims and specification of the present invention. In particular, as long as there is no structural conflict, the various technical features mentioned in the embodiments can be combined in any way. The present invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A microfluidic sample detection device, characterized in that, This includes fluid inlet, microfluidic channels, and fluid outlet, as well as: The reaction zone is located in the microfluidic channel between the fluid inlet and the fluid outlet; A liquid collection zone is located downstream of the microfluidic channel, and the fluid outlet is the outlet of the liquid collection zone. When the first pump body is in communication with the microfluidic channel, it is compressed or released to allow gas to flow into or out of the first pump body, thereby providing a driving force for the flow of the microfluidic sample. The first valve body is located downstream of the fluid inlet and controls the opening and closing between the microfluidic channel and the fluid inlet. It is in the open state until the microfluidic sample has completely entered the microfluidic channel. The second valve body is located between the first pump body and the microfluidic channel, and is downstream of the first valve body. When the second valve body is opened, the first pump body and the microfluidic channel are in fluid communication. A third valve body is disposed between the first pump body and the microfluidic channel, and is located downstream of the second valve body. When the third valve body is open, the first pump body and the microfluidic channel are in fluid communication. When at least one of the second valve body and the third valve body is open, the first pump body can be compressed or released. The fourth valve body is located at the fluid outlet and controls the connection between the liquid collection area and the external environment. When the first valve body is closed, the fourth valve body releases the first pump body to drive the microfluidic sample when the state of the fourth valve body is the same as that of the first valve body. When the state of the fourth valve body is opposite to that of the first valve body, the first pump body is compressed to drive the microfluidic sample. The working states of the third valve body and the fourth valve body are opposite. It also includes a conductive system composed of electrodes, the conductive system comprising at least two electrodes, each electrode including electrode contacts and electrode sensing ends, the electrode sensing ends being located at both ends of the reaction zone, and the electrode contacts on the microfluidic sample detection device being paired with electrical contacts on the detection device.
2. The microfluidic sample detection device according to claim 1, characterized in that, The microfluidic channel includes a first region and a second region, at least the first region or the second region is a reaction zone, and the first pump can drive the microfluidic sample from the first region into the second region.
3. The microfluidic sample detection device according to claim 2, characterized in that, The microfluidic channel includes a first region, a second region, and a third region. At least the first region, the second region, or the third region is a reaction zone. The first pump can drive the microfluidic sample from the first region into the second region and then into the third region.
4. The microfluidic sample detection device according to claim 2, characterized in that, The conductive system includes at least three electrodes, with the electrode sensing ends located at the two ends of the first region and the second region, respectively. At least the first region or the second region is a reaction zone. When the first pump body and the microfluidic channel are connected through the second valve body and / or the third valve body, the first pump body can drive the microfluidic sample from the first region into the second region.
5. A microfluidic sample detection device according to claim 3, characterized in that, The conductive system includes at least four electrodes, with the electrode sensing ends located at the two ends of the first region, the second region, and the third region, respectively. At least the first region, the second region, or the third region is a reaction zone. When the first pump body and the microfluidic channel are connected through the second valve body and / or the third valve body, the first pump body can drive the microfluidic sample from the first region into the second region and then into the third region.
6. The microfluidic sample detection device according to claim 1, characterized in that, The electrode sensing ends of both electrodes are located upstream of the third valve body; or the electrode sensing ends of both electrodes are located downstream of the third valve body; or one electrode sensing end of the two electrodes is located upstream of the third valve body and the other is located downstream of the third valve body.
7. A microfluidic sample detection device according to any one of claims 2-5, characterized in that, The first region is located upstream of the third valve body; or the first region is located downstream of the third valve body; or the third valve body is within the range of the first region.
8. A microfluidic sample detection device according to any one of claims 1-6, characterized in that, It also includes a start-up electrode. The start-up electrode sensing end is located upstream of the second valve body and together with the first electrode sensing end downstream of the second valve body, they form a start-up area in the microfluidic channel. After the microfluidic sample flows into the start-up area, a signal indicating successful sample addition is generated.
9. A microfluidic sample detection device according to claim 1, 2, 4, or 6, characterized in that, The reaction zone is pre-positioned with an antibody that binds to magnetic particles and is designed to specifically bind to red blood cells in a blood sample.
10. A microfluidic sample detection device according to any one of claims 1-6, characterized in that, The reaction zone is pre-positioned with target antibody labeled with magnetic particles, the antibody being designed to specifically bind to the target in the sample.
11. A microfluidic sample detection device according to any one of claims 1-6, characterized in that, The reaction zone is pre-contained with fluorescently labeled antibodies, which are designed to specifically bind to the target analyte in the sample.
12. A microfluidic sample detection device according to any one of claims 2-5, characterized in that, It includes two reaction zones, in which a first antibody labeled with magnetic particles and a second antibody labeled with fluorescent particles are pre-placed respectively. Both the first antibody and the second antibody are designed to specifically bind to the target in the sample. After the target in the microfluidic sample binds to the first antibody and the second antibody, a double antibody sandwich complex is formed.
13. A microfluidic sample detection device according to claim 12, characterized in that, The microfluidic sample is specifically treated before it binds to the first antibody and the second antibody.
14. A microfluidic sample detection system, comprising a detection device and a microfluidic sample detection apparatus as described in any one of claims 1-13, wherein the microfluidic sample detection apparatus is mounted in the detection device, and the detection device is electrically or signalally connected to the electrodes of the microfluidic detection apparatus, thereby controlling the opening or closing of the first valve body, the second valve body, the third valve body, and the fourth valve body, and controlling the compression or release of the first pump body via an actuator.
15. A microfluidic sample detection system according to claim 14, characterized in that, The microfluidic sample detection device is electrically connected to the electrodes of the detection equipment via electrical contacts.
16. A microfluidic sample detection system according to claim 14, characterized in that, Before the microfluidic sample comes into contact with the fluid inlet, the actuator controls the first valve body and the third valve body to open and controls the fourth valve body to close. In response to a signal indicating successful microfluidic sample addition, the actuator controls the first valve body to close.
17. A microfluidic sample detection system according to claim 16, characterized in that, Before the microfluidic sample comes into contact with the fluid inlet, the actuator controls the second valve to close. In response to a signal indicating successful microfluidic sample addition, the actuator controls the first and third valves to close and the second and fourth valves to open.
18. A microfluidic sample detection system according to claim 16, characterized in that, Before the microfluidic sample is successfully added, the actuator controls the second valve to open. When the front end of the microfluidic sample approaches the second valve, the actuator controls the second valve to close.
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