Precise immunosensing method with adjustable linear range and portable biological resistance sensing measurement device
A sensing measurement, portable technology, applied in the fields of biosensing and food safety, can solve the problems that the signal is easily interfered by external complex factors, reduce the detection efficiency, and the volume of the instrument is large, so as to achieve the sensitivity of the method, good suspension, and The effect of low detection cost
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Embodiment 1
[0078] Example 1 Construction of a portable bio-resistance sensing measurement device
[0079] The present invention provides a portable bioresistance sensing and measuring device.
[0080] see Figure 1-3 As shown in the figure, a portable bio-resistance sensing measurement device, the detection device includes a detection pipe 1, one end of the detection pipe 1 is connected to a vacuum pump 2 by a thread, the other end of the detection pipe 1 is provided with a liquid suction head 3, and the interior of the detection pipe 1 is provided with a micro Channel 4, the side of the detection pipe 1 is provided with a battery 5. The battery 5 provides power to the concentration measurement module 6. There are two detection electrodes 7 in the measurement module 6. The detection electrodes 7 are respectively connected to both sides of the microchannel 4. A reagent box 8 is arranged inside the connection of the liquid head 3 , and a vibration device 9 is arranged on the detection pip...
Embodiment 2
[0089] Example 2 Exploration on the correlation between the conductivity of the microchannel and the applied current, the length of the microchannel, the inner diameter of the microchannel and the flow rate
[0090] Using the device of Example 1, the following experiments were carried out:
[0091] Experiment 1): Pour PS microspheres (1μm, 3μm) solutions of different diameters into the microchannel, detect the voltage difference of the closed-loop circuit under different currents (0, 100, 200, 300, 400μA), and investigate the PS microspheres The relationship between particle size and capillary conductivity, the results are as follows Image 6 shown.
[0092] Test 2): Pour PS microspheres (1 μm, 3 μm) solutions of different diameters into the microchannel, and detect closed loops at different flow rates (50 μL / min, 100 μL / min, 150 μL / min, 200 μL / min, 250 μL / min) The voltage difference of the circuit is investigated to investigate the relationship between the particle size of ...
Embodiment 3
[0096] Example 3 Modification of magnetic beads, PS microspheres and click reagents with biological recognition molecules
[0097] 1. Activation of magnetic beads
[0098] (1) Take 2 mg of magnetic beads (average diameter 1 μm) into a centrifuge tube, wash twice with 500 μL MEST (10 mM MES, 0.05% Tween20, pH 6.0), and remove the supernatant by magnetic separation; (2) Use 10 mM MES ( pH 6.0) to prepare 5 mg / mL EDC solution and 5 mg / mL NHS solution; (3) add 100 μL EDC (5 mg / mL) and 50 μL NHS (5 mg / mL) to the centrifuge tube containing magnetic beads, respectively, and use a vortexer Mix well to fully suspend the magnetic beads, dilute to 500 μL with MES, place on a rotary mixer, activate at 37°C for 30 min; (4) Magnetic separation, remove the supernatant, wash twice with 500 μL MEST, magnetically separate, and remove the upper layer clear liquid. After the above steps, the carboxyl groups on the surface of the magnetic beads have been activated.
[0099] 2. Activation of PS ...
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