Method for measuring the loading ratio of carrier particles
Impedance spectroscopy allows for precise measurement of carrier particle loading ratios, addressing inaccuracies in conventional methods and enhancing drug delivery and gene transfer efficiency.
Patent Information
- Application Number
- JP2022084579
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-24
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2042-05-24
AI Technical Summary
Conventional methods for measuring the loading ratio of carrier particles, such as liposomes or viruses, carrying target substances like drug molecules or nucleic acids, are inconvenient, inaccurate, and lack precision, leading to inefficiencies in drug delivery and gene transfer.
A method involving impedance spectroscopy is used to measure the ratio of carrier particles carrying a target substance by comparing the impedance spectrum of a liquid containing carrier particles with a reference spectrum, utilizing interdigitated electrodes and calculating cosine similarity.
This method provides a rapid, accurate, and simple way to determine the proportion of carrier particles carrying a target substance, improving measurement precision and complementing existing techniques.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a method for measuring the loading rate of carrier particles, and in particular to a method for measuring the rate at which a collection of carrier particles, such as viruses, encapsulating a target substance, such as nucleic acid, carries the target substance (encapsulation rate). [Background technology]
[0002] By carrying a target substance such as a drug molecule or a nucleic acid on a carrier particle such as a liposome or a virus, the target substance can be transported to a desired location (for example, a specific organ or specific cell) in the human body, for example.
[0003] For example, in drug delivery systems (DDS), carrier particles such as liposomes that hold drug molecules inside can be used to stably control the distribution of drugs in the body.
[0004] In Non-Patent Document 1, the Japan Patent Office provides an overview of technological trends in drug delivery systems. This document describes related technology as "technology and systems that control ideal pharmacokinetics in the body" by covering active ingredients with formulation components such as liposomes and viruses.
[0005] In gene therapy, for example, nucleic acids encoding recombinant genes are encapsulated in a virus vector, and the virus is then introduced into cells, allowing the gene to be introduced into the living body. By retaining the nucleic acid inside the virus (especially the viral shell), it is possible to avoid degradation of the nucleic acid encoding the recombinant gene and increase the efficiency of introduction into cells.
[0006] Non-Patent Document 2 describes the history and technical issues of virus-based gene therapy. [Prior art documents] [Non-patent literature]
[0007] [Non-Patent Document 1] "Patent Application Technology Trends Survey Report (Summary) Drug Delivery System (DDS)" (Japan Patent Office) [Non-patent document 2] Current status and future prospects of clinical development of virus-based gene therapy drugs (by Fumiaki Sakurai) Drug Delivery System, 2019, Vol. 34, No. 2, pp. 99-105 Summary of the Invention [Problem to be solved by the invention]
[0008] When transporting target substances such as drug molecules or nucleic acids using carrier particles such as liposomes or viruses, if the proportion of carrier particles carrying the target substance (i.e., the carrier particle loading rate) is low, the desired objective may not be achieved.
[0009] For example, in gene transfer methods in which viruses carrying nucleic acids encoding recombinant genes are injected into cells, the percentage of injected viruses that successfully transfer genes is very low. Therefore, in order to increase the efficiency of gene transfer into cells, it is important to increase the proportion of viruses that contain nucleic acids.
[0010] Furthermore, the encapsulation process of target substances using viruses, etc. is not perfect, and depending on the state of the raw material and the processing conditions, not only carrier particles containing the target substance but also ``empty'' carrier particles that do not contain the target substance may be mixed in.
[0011] Therefore, in order to achieve the desired purpose, it is important to know in advance the ratio of carrier particles carrying the target substance to carrier particles not carrying the target substance (empty carrier particles). However, conventional methods for measuring the ratio of carrier particles containing the target substance have lacked convenience. Furthermore, conventional measurement principles sometimes result in insufficient measurement accuracy.
[0012] Therefore, there has been a demand for a simple evaluation method based on a new measurement principle for determining the loading ratio.
[0013] An object of the present disclosure is to provide a new method for easily measuring the proportion of carrier particles that support a target substance. [Means for solving the problem]
[0014] The above-mentioned problems can be solved by the following aspects of the present invention: <Aspect 1> A method for evaluating a ratio of carrier particles not carrying a target substance to carrier particles carrying the target substance in a liquid containing a plurality of carrier particles, comprising: measuring an impedance spectrum of the liquid; method. <Aspect 2> further comprising comparing the measured impedance spectrum with a reference impedance spectrum. 2. The method of embodiment 1. <Aspect 3> 3. The method of embodiment 2, wherein the shape of the measured impedance spectrum is compared with the shape of a reference impedance spectrum. <Aspect 4> 4. The method of claim 2 or 3, wherein a plurality of reference impedance spectra are used as the reference impedance spectrum. <Aspect 5> The method according to any one of aspects 2 to 4, wherein the measured impedance spectrum is compared with the reference impedance spectrum in the range of 10 kHz to 100 kHz. <Aspect 6> The method according to any one of aspects 2 to 5, wherein the comparison is performed using a COS similarity calculated from the reference impedance spectrum and the measured impedance spectrum. <Aspect 7> A method according to any one of Aspects 1 to 6, wherein the carrier particles encapsulate the target substance, thereby carrying the target substance. <Aspect 8> the carrier particle is a virus, and The target substance is a nucleic acid. The method according to embodiment 7. <Aspect 9> A method according to any one of aspects 1 to 8, wherein the impedance spectrum of the liquid is measured using an interdigitated electrode. [Effects of the Invention]
[0015] According to the present invention, a new method for simply measuring the proportion of carrier particles that support a target substance can be provided. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a conceptual diagram for explaining the principle of the method according to the present disclosure. [Figure 2] FIG. 2 is a schematic diagram illustrating an exemplary embodiment of a measurement device that can be used in the methods of the present disclosure. [Figure 3] FIG. 3 is a conceptual diagram showing how the method according to the present disclosure is performed using the measurement device of FIG. [Figure 4A] FIG. 4A is a graph showing the impedance spectrum measured in Example 1. [Figure 4B] FIG. 4B is an enlarged view of a portion (enclosed in a rectangular frame) of the graph in FIG. 4A. [Figure 5] FIG. 5 is a graph showing the relationship between the COS similarity of the impedance spectra obtained for sample solutions 1 to 6 and the loading ratio (full ratio) (%) in each solution. DETAILED DESCRIPTION OF THE INVENTION
[0017] <Method for evaluating the loading ratio> The method according to the present disclosure comprises: A method for evaluating the ratio of carrier particles not carrying a target substance to carrier particles carrying a target substance in a liquid containing a plurality of carrier particles, comprising: Measuring the impedance spectrum of the liquid (impedance measurement step); Includes:
[0018] Conventionally, in order to measure the ratio between carrier particles containing a target substance and carrier particles not containing a target substance, measurements using a transmission electron microscope and measurements using an absorptiometer have been carried out, for example.
[0019] The method using a transmission electron microscope calculates the percentage of viruses containing nucleic acid from the captured image based on the difference in the penetration of the electron beam due to the presence of nucleic acid in the target substance. However, this method has disadvantages such as the high cost of the equipment and the time-consuming pretreatment such as osmium staining.
[0020] Furthermore, the method using an absorptiometer (absorptiometry) is a method for calculating the percentage of viruses containing nucleic acids based on the characteristic absorption peak of nucleic acids around 260 nm. However, due to low sensitivity and the existence of biological substances other than nucleic acids that also exhibit an absorption peak around 260 nm, it has sometimes been difficult to perform highly accurate measurements using absorptiometry.
[0021] In this context, the present inventors have investigated a new measurement method and found that different impedance spectra can be obtained depending on the carrier particle loading ratio, i.e., the ratio of carrier particles that do not contain the target substance to carrier particles that contain the target substance. More specifically, it has been found that by placing a liquid containing carrier particles between two electrodes and measuring the impedance, an impedance spectrum corresponding to the carrier particle loading ratio can be obtained.
[0022] Fig. 1 is a conceptual diagram for explaining the principle of the method according to the present disclosure. Note that the attached drawing is intended to facilitate understanding of the present invention and is not intended to limit the present invention. In Fig. 1, a liquid (not shown) exists between electrodes 12 and 14, and carrier particles 16 (e.g., viruses) encapsulating a target substance 18 (e.g., nucleic acid) exist in this liquid.
[0023] Without intending to be limited by theory, when a voltage is applied between the two electrodes 12 and 14: Transfer of electrons from the electrode to the carrier particles (charge transfer: "A" in Figure 1), Polarization occurs near the carrier particles due to the charge inside the carrier particles ("B" in Figure 1), Movement of carrier particles by an external electric field (dielectrophoresis: "C" in Figure 1), It is believed that the above phenomena occur. The impedance spectrum detected between the two electrodes reflects these phenomena ("A" to "C" in FIG. 1).
[0024] Since the occurrence and / or degree of the above phenomenon differs between carrier particles carrying the target substance and carrier particles not carrying the target substance, it is thought that the impedance spectrum reflecting these phenomena will also differ. By comparing this impedance spectrum with, for example, a reference impedance spectrum, the proportion of carrier particles carrying the target substance can be detected.
[0025] The method according to the present disclosure can provide a rapid and simple method. For example, the process of dropping a liquid containing carrier particles onto an electrode and measuring the impedance can usually be completed within several tens of seconds to several minutes (e.g., 1 minute). Furthermore, the measurement can be performed without modifying the electrode. Furthermore, the process of calculating the abundance ratio in the liquid based on the measured impedance spectrum can also be performed quickly, for example, by using a computer.
[0026] Furthermore, the method according to the present disclosure is a measurement method based on the dielectric properties of the target substance and carrier particles, and is based on a new measurement principle that differs from conventional methods. Therefore, it is expected that the method according to the present disclosure will enable measurement of samples that are difficult to accurately measure using conventional absorptiometers. Furthermore, the method according to the present disclosure can obtain data that is complementary to other measurement techniques.
[0027] Furthermore, the method according to the present disclosure uses impedance spectra, which can improve the accuracy of the measurement. That is, by analyzing the measured impedance spectra by focusing on a specific frequency range (for example, a range of 1 kHz to 100 MHz) or a specific component (phase, amplitude, etc.), the differences between samples can be evaluated with high accuracy.
[0028] As described above, the method according to the present disclosure can provide a new method for easily measuring the loading ratio of carrier particles.
[0029] Each component of the method according to the present disclosure is described in further detail below.
[0030] <Liquid> The liquid according to the present disclosure contains a plurality of carrier particles. The liquid is not particularly limited, and an appropriate buffer, aqueous solution, water, etc. can be selected depending on the carrier particles. Preferably, the liquid is a liquid in which the carrier particles can exist stably and / or a liquid that allows the target substance to be well supported in the carrier particles.
[0031] When measuring the impedance spectrum of a liquid, the liquid can be pretreated. For example, the liquid can be pretreated to remove free target substances not supported on carrier particles (e.g., nucleic acids not encapsulated in vectors) and impurities. Examples of such removal procedures include filtration, centrifugation, chromatography, and precipitation.
[0032] <Carrier particles> The carrier particles are configured to be capable of carrying a target substance. The carrier particles may be in the form of particles, particularly fine particles. The diameter of the carrier particles is not particularly limited, but is preferably 5 nm to 750 nm, 10 nm to 500 nm, 20 nm to 250 nm, or 25 nm to 100 nm.
[0033] The carrier particles are preferably particles (hollow particles) having an internal space for holding the target substance. Examples of such carrier particles include carriers made of organic compounds, particularly liposomes, viruses, and water-soluble polymers.
[0034] (liposomes) Liposomes are vesicles with a lipid bilayer, capable of storing target substances such as drug molecules inside. The diameter of liposomes is not particularly limited, but may be, for example, 10 nm to 1000 nm, or 50 nm to 200 nm. Liposomes are particularly composed of phospholipids.
[0035] (virus) Viruses include adenoviruses, adeno-associated viruses (AAV), and retroviruses.
[0036] Among these, adeno-associated viruses (AAV) are considered promising for gene therapy. AAV containing nucleic acid encoding a recombinant gene and empty AAV that does not contain nucleic acid encoding a recombinant gene are commercially available.
[0037] The diameter of the carrier particles can be determined by measuring the diameters of 20 or more carrier particles from an image obtained using an electron microscope, etc., and averaging the measured values. Note that if the carrier particles are not perfectly round, i.e., if they are elliptical, for example, the longest particle length can be considered to be the diameter.
[0038] <Target substances> The target substance can be supported on carrier particles, particularly, the target substance can be encapsulated in the carrier particles and held inside the carrier particles.
[0039] The target substance is not particularly limited as long as it can be carried by carrier particles, but examples thereof include inorganic compounds or organic compounds, and in particular, molecules having medicinal properties, or nucleic acids.
[0040] (molecules with drug activity) In one embodiment of the method according to the present disclosure, the target substance is a molecule having a medicinal activity, and the molecule having a medicinal activity can be particularly carried by liposomes as carrier particles and can be retained inside the liposomes.
[0041] (nucleic acid) In another embodiment of the method of the present disclosure, the substance of interest is a nucleic acid (ribonucleic acid (RNA) or deoxyribonucleic acid (DNA)), particularly a nucleic acid encoding a recombinant gene. The nucleic acid can be carried, in particular, inside a virus as a carrier particle (e.g., inside the outer shell in the case of AAV).
[0042] <Impedance measurement process> In the method according to the present disclosure, the impedance spectrum of a liquid containing carrier particles is measured. In particular, the liquid containing carrier particles is placed between two electrodes, and the impedance spectrum between the two electrodes can be measured.
[0043] <Electrode> The method according to the present disclosure can use electrodes, particularly interdigital electrodes, in which multiple strips (tooth portions) protruding from one electrode are arranged in parallel with multiple strips (tooth portions) protruding from the other electrode, with the interdigital portions from different electrodes adjacent to each other at regular intervals.
[0044] 2 is a schematic diagram illustrating an exemplary embodiment of a measurement device that can be used in the method of the present disclosure, where L represents the length direction and W represents the width direction.
[0045] 2, the impedance analyzer 20 is connected to a measuring tool 28. The measuring tool 28 has a substrate 22 and two interdigital electrodes 24 and 26 on the substrate. A plurality of strip-shaped comb teeth protruding from the interdigital electrode 24 and a plurality of strip-shaped comb teeth protruding from the interdigital electrode 26 are arranged alternately in parallel and adjacent to each other at regular intervals (for example, 1 μm to 10 μm).
[0046] The interdigital electrodes 24 and 26 are respectively connected to terminals HP and LP of the impedance analyzer 20. Furthermore, the terminal HC of the impedance analyzer 20 is connected to the terminal HP and the interdigital electrode 24, and the terminal LC is connected to the terminal LP and the interdigital electrode 26.
[0047] In the embodiment of FIG. 2, the terminals HC and LC are connected between the impedance analyzer 20 and the measuring instrument 28, but they may also be connected inside the impedance analyzer 20 or on the substrate 22 of the measuring instrument 28.
[0048] When performing the method of the present disclosure using the measurement device of Figure 2, for example, a liquid containing carrier particles to be measured is dropped between the interdigital electrodes 24 and 26, so that the liquid is present at least between one interdigital portion of the interdigital electrode 26 and one interdigital portion of the adjacent interdigital electrode 24.
[0049] After the liquid is dripped, a voltage is applied and the impedance can be measured by measuring the current value between terminals LC and HC and the voltage value between terminals LP and HP.
[0050] Fig. 3 is a conceptual diagram showing how the method according to the present disclosure is performed using the measurement device of Fig. 2. Fig. 3 shows a cross section taken along the cutting line A'-A' of Fig. 2. In the drawing, H represents the height direction, and W represents the width direction.
[0051] 3, the comb teeth 162 and 164 of the interdigital electrode 26 and the comb teeth 142 and 144 of the interdigital electrode 24, which are arranged alternately therewith, are arranged on the substrate 22 of the measuring device 28. Droplets 37 of a sample solution containing carrier particles 35 to be detected are dropped so as to cover these comb teeth.
[0052] The carrier particles 35 may be present in the following forms: attached to the comb-teeth of the electrode, present between the comb-teeth of the electrode, or present away from the comb-teeth of the electrode.
[0053] Adjacent comb teeth (for example, comb teeth 164 and comb teeth 144) serve as opposite poles, and the impedance between them is measured.
[0054] (comb-shaped electrode) The comb-shaped electrode may have a comb width of 0.5 μm to 25 μm, or 1 μm to 10 μm. The comb-shaped electrode may have 10 to 200 or 30 to 100 comb-shaped teeth. The interval between the comb-shaped teeth of a comb-shaped electrode made up of a pair of electrodes may be 0.5 μm to 25 μm, or 1 μm to 10 μm. The comb-shaped electrode may be made of, for example, gold.
[0055] The number of sets of comb teeth arranged alternately in parallel is not particularly limited, and may be 1 to 200 sets, 2 to 100 sets, 5 to 90 sets, 10 to 80 sets, or 20 to 60 sets.
[0056] <Evaluation of loading ratio> In one embodiment of the method according to the present disclosure, the loading rate of carrier particles in a particular sample liquid is assessed (particularly estimated or calculated) by comparing the impedance spectrum obtained for that sample liquid with a reference impedance spectrum, in particular by comparing the shape (waveform) of the impedance spectra.
[0057] (Reference impedance spectrum) The reference impedance spectrum is in particular an impedance spectrum previously acquired in a liquid having a known loading of carrier particles.
[0058] For example, the reference impedance spectrum may be an impedance spectrum obtained in a liquid in which the proportion of carrier particles containing the target substance is zero (liquid with a 0% loading ratio), or may be an impedance spectrum obtained in a liquid in which the proportion of carrier particles containing the target substance is 100% (liquid with a 100% loading ratio).
[0059] By comparing such a reference impedance spectrum, previously obtained for a liquid with a known loading ratio, with an impedance spectrum obtained for any liquid (particularly by detecting differences between the shapes of the impedance spectra), the loading ratio of the any liquid can be assessed (particularly estimated or calculated).
[0060] (Multiple Reference Impedance Spectra) Preferably, a plurality of reference impedance spectra are used as the reference impedance spectrum. For example, by comparing an impedance spectrum obtained for a given liquid with reference impedance spectra previously obtained for liquids exhibiting various loading ratios, the loading ratio of carrier particles in the given liquid can be evaluated (particularly estimated or calculated) with higher accuracy.
[0061] (standardization) When comparing the impedance spectrum measured for a given liquid with a reference impedance spectrum, the impedance spectrum can be normalized. The impedance of a liquid may fluctuate due to absorption of oxygen, carbon dioxide, etc. from the surrounding atmosphere. Therefore, normalization may further improve the accuracy of the comparison process.
[0062] Normalization can be performed appropriately depending on the carrier particles used, the target substance, etc. For example, the absolute values of the impedance at a specific frequency (for example, 1 kHz) in other frequency ranges can be normalized.
[0063] (component) The comparison of the impedance spectra can be carried out particularly using the components (amplitude, phase, real part, and imaginary part) that make up the impedance spectra. For example, the comparison of the impedance spectra can be carried out by focusing on the component that has the largest difference among the components that make up the impedance spectra.
[0064] Furthermore, comparison of impedance spectra can be performed based on feature quantities used in waveform, signal analysis, and vector analysis.
[0065] (COS similarity) For example, the difference (or similarity) in a specific wavelength region of the impedance spectrum can be expressed by COS similarity (also called "cosine similarity" or "cos similarity"). Using COS similarity can sometimes improve the quantitativeness of comparison processing. COS similarity is an index used to evaluate the similarity of vectors, and uses cosine (COS) to represent the similarity in the direction of two vectors. The value of COS similarity approaches 1 as the two vectors are in the same direction (high similarity), and approaches 0 as they are in different directions (low similarity).
[0066] For example, the COS similarity S can be calculated based on data in the range of 10 kHz to 100 kHz according to the following formula: Formula (1) below is a formula for calculating the COS similarity when an impedance spectrum acquired from a liquid with a loading ratio of 100% is used as the reference impedance spectrum.
[0067]
number
[0068] In the above formula (1), S is the cosine similarity (COS similarity), and f 100 (ω) is a vector representing the impedance spectrum of a sample with a loading rate of 100% (Full 100%), and f(ω) is a vector representing the impedance spectrum of a target sample. When using another impedance spectrum as the reference impedance spectrum, f in the above formula (1) is 100 The COS similarity S can be calculated using an equation in which (ω) is replaced with a vector fs(ω) representing the reference impedance spectrum.
[0069] (Standard curve) When evaluating the carrier particle loading rate in any liquid, the carrier particle loading rate in the liquid can also be estimated (or calculated) using a graph (standard curve) or equation showing the relationship between the carrier particle loading rate and the impedance spectrum.
[0070] Such a standard curve can be created, for example, using the above-mentioned COS similarity. That is, a specific wavelength region (particularly, a region ranging from 10 kHz to 100 kHz) of the impedance spectra of a plurality of liquids with various known loading ratios is expressed as a COS similarity to a reference impedance spectrum with a 100% loading ratio, and a standard curve can be created by graphing the relationship between this COS similarity and the loading ratio (see FIG. 5). [Example]
[0071] The present invention will now be described with reference to examples, which are intended to illustrate exemplary embodiments of the present invention and are not intended to limit the present invention.
[0072] Example 1 In Example 1, nucleic acid (DNA) encoding a GFP (Green fluorescent protein) gene was used as the target substance, and adeno-associated virus (AAV) was used as the carrier particle.
[0073] <Preparation of liquid> (Sample solution 1) A solution containing an adeno-associated virus packaged with nucleic acid encoding the GFP gene (product name: AAV2-CMV-GFP, manufactured by Applied Viromics) was subjected to a filter concentration process (filter diameter: 50 kDa; Amicon® Ultra, manufactured by Merck Millipore) three times to replace the solution with an aqueous solution of 0.025 μM Tris-HCl, pH 8.0, and 0.001% Pluronic®, thereby obtaining sample solution 1 from which nucleic acid not encapsulated in the virus had been removed.
[0074] (Sample solution 2) The solution containing empty adeno-associated virus (AAV2-Empty, manufactured by Applied Viromics) was replaced with an aqueous solution of 0.025 μM Tris-HCl pH 8.0 Pluronic® 0.001% to be used as sample solution 2.
[0075] (Sample solutions 3-6) Sample solutions 3 to 6 were prepared by mixing the above sample solutions 1 and 2 in the proportions shown in Table 1 below.
[0076] [Table 1]
[0077] <Impedance spectrum measurement> (electrode) The electrode used was a comb-shaped electrode (tooth width 10 μm, tooth spacing 5 μm, length 2 mm, 65 tooth sets, gold electrode, manufactured by BAS Co., Ltd.).
[0078] (measurement) 20 μL of the sample solution 1 was dropped onto the interdigital electrode. Then, using an impedance analyzer (ZA57630, manufactured by NF Corporation), the impedance of the interdigital electrode was measured at 2000 points logarithmically dividing the frequency range from 1 kHz to 36 MHz at an applied voltage of 1 V.
[0079] For sample solutions 2 to 6, the impedance was measured in the same manner as for sample solution 1.
[0080] (Waveform analysis) The impedance spectra obtained as a result of the measurement were normalized with the value at 1 kHz set to 1. The normalized impedance spectra for sample solutions 1 to 6 are shown in FIG. 4A. FIG. 4B shows an enlarged view of a portion of the graph in FIG. 4A (the portion enclosed by a square frame). In FIGS. 4A and 4B, "Full" refers to the mixing ratio of a solution with a loading ratio of 100% (sample solution 1), and "Empty" refers to the mixing ratio of a solution with a loading ratio of 0% (sample solution 2).
[0081] As shown in Figures 4A and 4B, impedance spectra with different waveforms were obtained for sample solutions 1 to 6, which had different loading ratios. The normalized impedance spectra changed continuously, and significant differences were observed between the sample solutions, especially in the range of 10 kHz to 100 kHz (Figure 4B).
[0082] (COS similarity) The COS similarity was calculated for the impedance spectra of sample solutions 1 to 6. Specifically, for the waveforms of the impedance spectra in the range of 10 kHz to 100 kHz, the COS similarity was calculated relative to the waveform of the impedance spectrum at a loading ratio of 100% according to the following formula (1). The results are shown in Figure 5.
[0083]
number
[0084] In the above formula (1), S is the cosine similarity (COS similarity), and f 100 (ω) is a vector representing the impedance spectrum of the Full100% sample, and f(ω) is a vector representing the impedance spectrum of the target sample.
[0085] Figure 5 is a graph showing the relationship between the COS similarity of the impedance spectra of sample solutions 1 to 6 and the proportion of carrier particles carrying the target substance in each solution (loading fraction, loading rate, or full fraction). As can be seen from Figure 5, the COS similarity of the impedance spectra increases in proportion to the loading rate, confirming a linear relationship between the loading rate and the COS similarity. This indicates that the loading rate of carrier particles can be calculated with high accuracy by measuring the impedance spectrum of a liquid according to the method of the present disclosure.
[0086] For example, when evaluating an arbitrary solution whose loading ratio is unknown, the loading ratio in the solution can be calculated by measuring the impedance spectrum of the solution, calculating the COS similarity with the reference impedance, and applying this to the graph (calibration curve) in Figure 5. [Explanation of symbols]
[0087] 12, 14 electrodes 16, 35 Carrier particles 18 Target substances 20 Impedance Analyzer 22 PCB 24, 26 Interdigital electrodes 28 Measuring Instruments 37 Droplets 142, 144 Comb-teeth portion of comb-shaped electrode 24 162, 164 Comb-teeth portion of comb-shaped electrode 26 A'-A' cutting line L lengthwise W width direction H Height direction
Claims
1. A method for evaluating a ratio of carrier particles not carrying a target substance to carrier particles carrying the target substance in a liquid containing a plurality of carrier particles, comprising: measuring an impedance spectrum of the liquid; method.
2. further comprising comparing the measured impedance spectrum with a reference impedance spectrum. The method of claim 1.
3. The method of claim 2 , further comprising comparing the shape of the measured impedance spectrum with the shape of a reference impedance spectrum.
4. The method according to claim 2 or 3, wherein a plurality of reference impedance spectra are used as the reference impedance spectrum.
5. 4. The method according to claim 2, wherein the measured impedance spectrum is compared with the reference impedance spectrum in the range of 10 kHz to 100 kHz.
6. The method according to claim 2 or 3, wherein the comparison is performed using a COS similarity calculated from the reference impedance spectrum and the measured impedance spectrum.
7. The method according to claim 1 or 2, wherein the carrier particles carry the target substance by encapsulating the target substance.
8. the carrier particle is a virus, and The target substance is a nucleic acid. The method of claim 7.
9. 3. The method according to claim 1, wherein the impedance spectrum of the liquid is measured using an interdigitated electrode.
Citation Information
Patent Citations
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