Method for detecting or quantifying oligonucleotides

By adjusting the Mn²⁺ concentration to enhance poly(A) polymerase activity and combining it with the PALSAR method, the problem of weak detection signals of chemically modified 3'-terminal nucleic acid base oligonucleotides and DNA was solved, achieving high-sensitivity detection of biological samples.

JP7754489B2Active Publication Date: 2025-10-15SEKISUI MEDICAL CO LTD
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Patent Information

Application Number
JP2021556162
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-11-14
Filing Date
2020-11-13
Publication Date
2025-10-15
Estimated Expiration
2040-11-13

AI Technical Summary

Technical Problem

The existing technology has low signals and high background values ​​when detecting oligonucleotides and DNA with chemically modified 3'-terminal nucleic acid bases, making it difficult to achieve high-sensitivity detection, especially in biological samples such as plasma or cerebral fluid, where there is almost no detection sensitivity.

Method used

By adjusting the concentration of Mn²⁺ and enhancing the activity of poly(A) polymerase, the PALSAR method was used to capture oligonucleotides and perform signal amplification, including adding poly(A) to the 3' end of the oligonucleotide and binding it to the capture probe, and using the presence of Mn²⁺ to perform a self-polymerization reaction to form an amplified signal.

Benefits of technology

The detection sensitivity of chemically modified 3'-terminal nucleic acid base oligonucleotides and DNA is improved, and it can be effectively detected from biological samples such as plasma and brain fluid, significantly improving the signal-to-noise ratio.

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Abstract

The present invention addresses the problem of enhancing the reactivity of a polyA polymerase to an oligonucleotide or DNA, in which the nucleic acid base at the 3'-end is chemically modified, to thereby improve the detection sensitivity by the PALSAR method, etc. According to the present invention, this problem is solved by a method that comprises: enhancing the reactivity of a polyA polymerase to an oligonucleotide or DNA, which is to be used in, for example, a nucleic acid drug and in which the nucleic acid base at the 3'-end is chemically modified; using, as a target to be detected, the oligonucleotide or DNA in which the nucleic acid base at the 3'-end is chemically modified; adding polyA to the 3'-end of the oligonucleotide with the use of the polyA polymerase; then capturing the oligonucleotide with a capture probe; and amplifying the same by the PALSAR method, etc. to thereby detect the oligonucleotide. In this method, Mn2+ concentration is controlled in the reaction with the polyA polymerase.
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Description

[Technical Field]

[0001] The present invention relates to a highly sensitive and quantitative method for detecting or quantifying oligonucleotides, and in particular to a method for detecting and quantifying oligonucleotides and DNA whose 3'-terminal nucleic acid bases are chemically modified with high sensitivity. [Background technology]

[0002] The PALSAR method is known as a technology for amplifying and detecting oligonucleotides such as nucleic acids and DNA. The principle of the PALSAR method is to use a set of DNA probes (sometimes referred to as self-agglutinating probes in this specification) consisting of three mutually complementary regions prepared in advance, label the probes, and then undergo repeated self-agglutination reactions through hybridization to form large mesh-like DNA masses, which are used as an amplified signal. This large DNA mass binds to the target DNA or RNA, and the amplified signal is captured to detect and quantify the target DNA or RNA. A method for detecting a target substance such as microRNA using the PALSAR method includes the following steps: first, adding polyA to the 3' end of the microRNA using polyA polymerase, then reacting a capture probe with the polyA-added microRNA to capture it, then reacting the microRNA captured by the capture probe with a self-aggregating probe to form a detection complex containing the microRNA, the capture probe, and a probe polymer, and finally a detection step (Patent Document 1). Here, polyA polymerase generally uses Mg 2+ or Mn 2+ It is known that Mg is required for the synthesis of hydroxybenzoates. 2+ or Mn 2+ The amount of AMP incorporation into primer RNA (E. coli K12 tRNA) when various concentrations of Mg were added is shown in the graph (Fig. 3). 2+ or Mn 2+ Without it, poly A polymerase shows no activity, and Mn2+ is 2.5mM, Mg 2+ was shown to be maximally active at 10 mM, and furthermore, when both metal ions were added together at their respective maximally active concentrations (Mn 2+ 2.5mM and Mg 2+ It has been shown that a concentration of 10 mM gives the highest activity of poly A polymerase (Fig. 3B). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] WO2013-172305 Brochure [Non-patent literature]

[0004] [Non-Patent Document 1] Eur. J. Biochem. 37, 31-40 (1973) Summary of the Invention [Problem to be solved by the invention]

[0005] Here, we have attempted to detect oligonucleotides and DNA with chemically modified 3'-terminal nucleic acid bases, such as those used in nucleic acid medicines, by adding poly(A) to the 3'-terminal using poly(A) polymerase, capturing the oligonucleotides with a capture probe, and amplifying them using the PALSAR method. However, we found that Mg 2+ When the above-mentioned concentrations were added, a new problem was found in that the signal during detection was low, the background value was high, and the substance to be detected could not be measured. Therefore, an object of the present invention is to enhance the reactivity of polyA polymerase with oligonucleotides or DNA whose 3'-terminal nucleobases have been chemically modified, thereby improving the detection sensitivity by the PALSAR method. In particular, when attempting to detect such oligonucleotides in biological samples such as plasma or brain, almost no detection sensitivity can be achieved under conventional polyA polymerase reaction conditions, making it even more difficult to enhance the detection sensitivity in biological samples such as plasma or brain. [Means for solving the problem]

[0006] The present invention relates to a method for detecting oligonucleotides or DNAs whose 3'-terminal nucleic acid bases are chemically modified, such as those used in nucleic acid medicines, by increasing the reactivity of polyA polymerase to the oligonucleotides or DNAs whose 3'-terminal nucleic acid bases are chemically modified, by adding polyA to the 3'-terminal of the oligonucleotides using polyA polymerase, capturing the oligonucleotides with a capture probe, and amplifying the oligonucleotides by the PALSAR method or the like. 2+ The present inventors have found that adjusting the concentration of the reagent can enhance the signal, suppress the background, significantly increase the signal-to-noise ratio (SN ratio), and further improve the detection sensitivity, and have thus completed the present invention. (1) A method for adding poly(A) to the 3' end of a target oligonucleotide in a sample, the method comprising the steps of: (i) Mn 2+ contacting the target oligonucleotide in the sample with poly A polymerase in the presence of (2) A method for recovering a target oligonucleotide in a sample, the method comprising the steps of: (i) Mn 2+contacting a target oligonucleotide in a sample with polyA polymerase in the presence of (ii) contacting the sample with a capture probe for capturing the target oligonucleotide and allowing hybridization; wherein the capture probe is (A) a nucleic acid probe; (B) a solid phase or an adapter or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) recovering the hybridization product contained in the sample. (3) A method for detecting a target oligonucleotide in a sample, the method comprising the steps of: (i) Mn 2+ contacting a target oligonucleotide in a sample with polyA polymerase in the presence of (ii) contacting the sample with a capture probe for capturing the target oligonucleotide and allowing hybridization; wherein the capture probe is (A) a nucleic acid probe; (B) a solid phase or an adapter or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) recovering the hybridization product contained in the sample. (iv) detecting the recovered hybridization product. (4) A method for detecting a target oligonucleotide in a sample, the method comprising the steps of: (i) Mn 2+ contacting a target oligonucleotide in a sample with polyA polymerase in the presence of (ii) contacting the sample with a capture probe for capturing the target oligonucleotide and allowing hybridization; wherein the capture probe is (A) a nucleic acid probe; (B) a solid phase or an adapter or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) contacting a pair of self-aggregating signal amplification probes consisting of first and second oligonucleotides with the hybridization product contained in the sample to form a complex between the hybridization product and an oligonucleotide polymer formed by self-aggregation of the first and second oligonucleotides; (iv) detecting the complex. (5) The detection method according to (4), wherein at least one of the first and second oligonucleotides contains a poly-T sequence. (6) The complex formation step (iv) includes a step of contacting with an assist probe, The assist probe is a poly-T sequence and a sequence complementary to the entire sequence or a partial sequence of at least one of the first or second oligonucleotides, The detection method according to (4) or (5). (7) the first oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z or a nucleic acid region Z containing a poly-T sequence; The detection method according to any one of (4) to (6), wherein the second oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z or a nucleic acid region Z' containing a poly(A) sequence. (8) The method according to any one of (1) to (7), wherein the sample is a blood-derived component, a brain-derived component, a buffer, or water, and contains the target oligonucleotide. (9) The method according to any one of (1) to (8), wherein the oligonucleotide having a chemically modified 3'-terminal nucleobase is LNA, BNA, phosphorothioate, morpholino oligo, boranophosphate, 2'-O-methylated RNA (2'-OMe), 2'-O-methoxyethylated RNA (2'-MOE), or 2'-F. (10) The method according to (9), wherein the oligonucleotide having a chemically modified 3'-terminal nucleobase is LNA, BNA, MOE, or OMe. (11) The step of adding poly(A) is carried out using a poly(A) containing 3 mM to 38 mM Mn 2+ The method according to any one of (1) to (10), wherein the step is carried out in a solution containing (12) A polyA polymerase reaction solution composition kit comprising: (i) poly(A) polymerase (ii) Mn 2+ A reaction buffer solution containing 3 mM to 38 mM of the poly(A) polymerase reaction solution (iii) ATP (13) A kit for detecting a target oligonucleotide in a sample, comprising: a) a target oligonucleotide having a chemically modified 3'-terminal nucleic acid base; and b) a DNA having a chemically modified 3'-terminal nucleic acid base. (i) poly(A) polymerase (ii) Mn 2+ A reaction buffer solution containing 3 mM to 38 mM of the poly(A) polymerase reaction solution (iii) a capture probe for capturing the target oligonucleotide (iv) a pair of self-aggregating probes consisting of a first and a second oligonucleotide; (14) The first oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z or a nucleic acid region Z containing a poly-T sequence; The kit according to (12), wherein the second oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z or a nucleic acid region Z' containing a polyA sequence. (15) A pair of self-aggregating probes consisting of first and second oligonucleotides used in the detection methods of (4) to (7), the first oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z or a nucleic acid region Z containing a poly-T sequence; The second oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z or a nucleic acid region Z' containing a polyA sequence. The pair of probes. [Effects of the Invention]

[0007] According to the present invention, it is possible to enhance the reactivity of the reaction of adding polyA to oligonucleotides and DNA whose 3'-terminal nucleobases are chemically modified using polyA polymerase. Furthermore, it is possible to enhance the detection sensitivity when detecting oligonucleotides and DNA whose 3'-terminal nucleobases are chemically modified. Furthermore, it is possible to detect the above nucleic acids from biological samples such as plasma, which are inherently difficult to detect. [Brief explanation of the drawings]

[0008] [Figure 1]This graph shows the results of a test to confirm the effect of Mn2+ on polyadenylation of the target oligonucleotide Target-1 in a 100% mouse plasma matrix, showing the detection sensitivity (MFI) for each Mn2+ concentration relative to the background (BG, where the target oligonucleotide concentration is zero) (Example 1). For comparison, the effect of Mg2+ was also confirmed (Comparative Example 1). [Figure 2] This graph shows the results of a test conducted to determine the effect of Mn concentration on polyadenylation of the target oligonucleotide Target-1 in a 100% mouse plasma matrix, showing the detection sensitivity (MFI) for each Mn concentration when the target oligonucleotide concentration is 1 fmol (Example 1). For comparison, the effect of Mg was also determined (Comparative Example 1). [Figure 3] This graph shows the results of a test to confirm the effect of Mn concentration on polyadenylation of the target oligonucleotide Target-1 in a 100% mouse plasma matrix, showing the detection sensitivity (MFI) for each Mn concentration when the target oligonucleotide concentration is 10 fmol (Example 1). For comparison, the effect of Mg was also confirmed (Comparative Example 1). [Figure 4] 1 is a graph showing the relationship between the concentration of the target oligonucleotide and the measurement sensitivity when the Mn2+ concentration in the polyadenylation reaction solution is set to 22.5 mM when performing a polyadenylation reaction on the target oligonucleotide Target-1 in a 100% mouse plasma matrix (Example 2). [Figure 5] This is a graph showing the relationship between the concentration of the target oligonucleotide and the measurement sensitivity when performing a polyadenylation reaction on the target oligonucleotide Target-1 in a 100% mouse plasma matrix, and the Mg2+ concentration in the polyadenylation reaction solution is set to 10.0 mM (Comparative Example 2). [Figure 6] 1 is a graph showing the relationship between the SN ratio when a polyadenylation reaction was carried out on the target oligonucleotide Target-1 in a 100% mouse plasma matrix using the buffer of Example 2 and the buffer of Comparative Example 2 (Example 2). [Figure 7]A schematic diagram showing the basic steps of polyadenylation of a target oligonucleotide followed by detection by the PALSAR method. [Figure 8] FIG. 1 is a conceptual diagram showing the basic steps when an assist probe is used in the process of detecting a target oligonucleotide by the PALSAR method after polyadenylation. [Figure 9] 1 is a graph showing the relationship between the concentration of target oligonucleotide (Target-1) and measurement sensitivity when the Mn2+ concentration in the polyadenylation reaction solution is set to 17.5 mM when performing a polyadenylation reaction on a target oligonucleotide in a 100% mouse plasma matrix (Example 3). [Figure 10] 1 is a graph showing the relationship between the SN ratio and each concentration of target oligonucleotide when a polyadenylation reaction was carried out on the target oligonucleotide Target-1 in a 100% mouse plasma matrix using the buffer of Example 3 and the buffer of Comparative Example 3. [Figure 11] This graph shows the effect of Mn2+ concentration on the polyadenylation reaction of the target oligonucleotide Target-2 (3'-terminal LNA) in a 50% mouse plasma matrix, showing the detection sensitivity (MFI) for each Mn2+ concentration when the target oligonucleotide concentration is 0.1 fmol (Example 4-1). For comparison, the effect of Mg2+ was also examined (Comparative Example 4-1). [Figure 12] This graph shows the effect of Mn concentration on the polyadenylation of the target oligonucleotide Target-2 (3'-terminal LNA) in a 10% mouse plasma matrix, showing the detection sensitivity (MFI) for each Mn concentration when the target oligonucleotide concentration is 0.1 fmol (Example 4-2). For comparison, the effect of Mg was also examined (Comparative Example 4-2). [Figure 13]This graph shows the effect of Mn concentration on the polyadenylation reaction of the target oligonucleotide Target-2 (3'-terminal LNA) in water, showing the MFI for each Mn concentration when the target oligonucleotide concentration is 0.1 fmol (Example 5). For comparison, the effect of Mg was also examined (Comparative Example 5). [Figure 14] 1 is a graph showing a comparison of the signal-to-noise ratios in an Mn2+ buffer (Example 6) and an Mg2+ buffer (Comparative Example 6) when polyadenylation reactions of target oligonucleotides Target-3 (3'-end BNA-NC (N-Me)), Target-4 (3'-end MOE), Target-5 (3'-end OMe), and Target-6 (3'-end DNA) are carried out in a 100% mouse plasma matrix. [Figure 15] This graph shows the results of a test to determine the effect of Mn2+ on the polyadenylation reaction of the target oligonucleotide Target-2 (3'-terminal LNA) in a 2% (20 mg / mL) mouse brain matrix, showing the MFI and SN ratio results when the concentration of Target-2 was 0.1 fmol (Example 7-1). For comparison, the effect of Mg2+ was also determined (Comparative Example 7-1). [Figure 16] This graph shows the MFI and SN ratio results for a test to confirm the effect of Mn2+ on the polyadenylation reaction of the target oligonucleotide Target-2 (3'-terminal LNA) in a 4% (40 mg / mL) mouse brain matrix when the concentration of Target-2 was 0.1 fmol (Example 7-2). For comparison, the effect of Mg2+ was also confirmed (Comparative Example 7-2). DETAILED DESCRIPTION OF THE INVENTION

[0009] (Poly A addition reaction) The first aspect of the present invention is a reaction for adding poly A to a target oligonucleotide. The poly A addition reaction is a method for adding poly A to the 3' end of an oligonucleotide or DNA whose 3' end nucleic acid base has been chemically modified by contacting the oligonucleotide or DNA in a sample with poly A polymerase (polynucleotide adenyltransferase), and the method comprises the steps of: 2+ This is a method carried out in the presence of The poly(A) polymerase refers to a protein having an enzymatic activity that introduces an adenine residue into the 3'-end of single-stranded or double-stranded RNA or DNA. For example, poly(A) polymerase derived from Escherichia coli is preferably used. The target oligonucleotide can be polyadenylated by contacting polyA polymerase and adenosine triphosphate (ATP) under conditions for the activity of polyA polymerase. Although there is no limitation on the length of the polyA introduced in the present invention, for example, the lower limit is preferably 4 mer or more, more preferably 10 mer or more, and even more preferably 15 mer or more, and the upper limit is preferably 1000 mer or less. After the addition reaction, the poly A polymerase is preferably inactivated by heat or the like. In this specification, unless otherwise specified, poly A addition, polyadenylation, and poly A polymerase reaction are used interchangeably.

[0010] (Collection method) A second aspect of the present invention is a method for recovering an oligonucleotide or DNA having a chemically modified 3'-terminal nucleobase (hereinafter sometimes simply referred to as a target oligonucleotide). The method comprises the following steps (i) to (iii): (i) is the same as the poly(A) addition reaction, and Mn 2+ In the presence of ATP, a target oligonucleotide in a sample is contacted with poly A polymerase to add poly A to the 3' end of the target oligonucleotide. (ii) is a step of contacting the sample with a capture probe for capturing the target oligonucleotide to allow hybridization. wherein the capture probe comprises: (A) a nucleic acid probe; and (B) a solid phase, an adapter, or a linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) is a step of recovering the hybridization product between the target oligonucleotide and the capture probe contained in the sample. Mn in poly(A) addition reaction 2+ The concentration adjustment will be described later.

[0011] (Detection method) The third aspect of the present invention is a method for detecting a target oligonucleotide, which comprises steps (i) to (iv). Steps (i) to (iii) are the same as those in the second aspect, and step (iv) is a step of detecting the recovered hybridization product. The detection method will be described later.

[0012] (Detection by pulsar method) The fourth aspect of the present invention is a method for detecting a target oligonucleotide by the pulser method, which comprises steps (i) to (iv), which are the same steps as those in the second aspect. (iii) is a step of contacting the hybridization product with a pair of self-aggregating probes consisting of first and second oligonucleotides to form a complex between the hybridization product and an oligonucleotide polymer formed by self-aggregation of the first and second oligonucleotides, and (iv) is a step of detecting the complex.

[0013] Steps (iii) and (iv) are steps of amplifying the self-agglutinating probe and detecting the amplified signal, known as the PALSAR method (pulsar method). The hybridization product may be amplified directly or via an assist probe. When an assist probe is not used, it is preferable that at least one of the self-agglutinating probes comprising the first and second oligonucleotides of the present invention contains a poly-T sequence. When amplification is performed via an assist probe, it is preferable that the assist probe contains a poly-T sequence and a sequence complementary to the entire or partial sequence of at least one of the first or second oligonucleotides. The specific steps of the PALSAR method, the assist probe, and the self-agglutinating probe will be described further below.

[0014] (target oligonucleotide) The present invention is suitable for detecting nucleic acid drugs, which have attracted particular attention in recent years as new molecularly targeted drugs and are being actively developed. Almost all nucleic acid drugs use nucleic acids that have been modified in some way to control their degradation in the body, making the detection technology of the present invention ideally applicable. Examples include antisense nucleic acid drugs with a Gapmer structure, known as an "artificial nucleic acid-DNA-artificial nucleic acid" structure. Specifically, the target oligonucleotide to be detected in the present invention is an oligonucleotide or DNA in which the nucleic acid base at the 3' end has been chemically modified, and examples of the chemical modification include phosphorothioate modification (S modification), 2'-F modification, 2'-O-Methyl (2'-OMe) modification, 2'-O-Methoxyethyl (2'-MOE) modification, morpholino modification, LNA modification, BNA modification, etc. COC Modification, BNA NC Examples of modifications include ENA modification and cEt BNA modification. Among these, oligonucleotides in which the 3'-terminal nucleobase is chemically modified are preferably LNA, BNA, phosphorothioate, morpholino oligo, boranophosphate, 2'-O-methylated RNA (2'-OMe), 2'-O-methoxyethylated RNA (2'-MOE), or 2'-F, and more preferably LNA, BNA, MOE, or OMe. Furthermore, examples of DNA include normal DNA. The above-mentioned target oligonucleotide and DNA may be either single-stranded or double-stranded. If double-stranded, they are usually made single-stranded before use in the present invention, but they may also be used as double-stranded.

[0015] (Mn 2+ presence) In the present invention, the step of adding poly A is 2+ It must be carried out in the presence of Mn 2+ Specifically, in the presence of Mn 2+ This means that the poly(A) addition reaction is carried out in a solution containing Mn 2+ The concentration of Mn may be adjusted appropriately depending on the type of target oligonucleotide, the type of sample, the type of reaction solution, or the desired sensitivity, and is preferably 3 mM to 38 mM, more preferably 5 mM to 35 mM, and even more preferably 10 mM to 30 mM. When the sample is water or a buffer (0% biological sample), Mn 2+ The concentration is preferably 3 mM to 17.5 mM, more preferably 5 mM to 15 mM, and even more preferably 7.5 mM to 15 mM. If the above sample contains biological samples (plasma, brain, etc.) at a concentration of more than 0% (0 mg / ml) but less than 10% (100 mg / ml), Mn 2+ The concentration is preferably 3 mM to 25 mM, more preferably 10 mM to 25 mM, and even more preferably 10 mM to 20 mM. If the above sample contains biological samples (plasma, brain, etc.) at 10% (100 mg / ml) or more but less than 50% (500 mg / ml), Mn 2+ The concentration is preferably 7.5 mM to 27.5 mM, more preferably 10 mM to 25 mM, and even more preferably 12.5 mM to 25 mM. If the above sample contains biological samples (plasma, brain, etc.) at 50% (500 mg / ml) or more but less than 100% (1000 mg / ml), Mn 2+ The concentration is preferably 12.5 mM to 37.5 mM, more preferably 15 mM to 30 mM, and even more preferably 15 mM to 25 mM. If the above sample contains 100% (1000 mg / ml) biological material (plasma, brain, etc.), Mn 2+ The concentration is preferably 17 mM to 38 mM, more preferably 17 mM to 35 mM, and even more preferably 17 mM to 30 mM. When the biological sample is an individual such as a brain, the individual is suspended in a suspension and stirred with an electric stirrer or the like to prepare a suspension of the individual, which is then diluted with a diluent as needed to adjust the concentration of the individual. Preferably, the concentration of the individual is adjusted to 0% (0 mg) to less than 50% (500 mg / ml). The suspension may be any suspension used for suspending ordinary biological samples, such as commercially available Direct PCR Lysis Reagent (VIAGEN biotec) or RLT buffer (QIAGEN). The diluent may be a common diluent, such as water, phosphate buffer, or Tris-HCl buffer. Mn 2+ The solution containing Mn is added to the buffer solution as described below. 2+ is obtained by adding The concentration setting is different dilution stages of Mn 2+ The desired activity can be evaluated by measuring the amount of AMP taken up using ATP as a substrate in the reaction step, or by performing a pulser reaction after the step and detecting an amplification signal. In the present invention, the poly A addition reaction is a reaction in which poly A is added to a target oligonucleotide to form an adduct (hereinafter, sometimes simply referred to as "target oligonucleotide-poly A"), and then the adduct hybridizes with a capture probe to form a double strand of "target oligonucleotide-poly A" and the capture probe.

[0016] (capture probe) In the present invention, a "capture probe" is a probe for capturing a target oligonucleotide, and includes (A) a nucleic acid probe and (B) a solid phase, adapter, or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe.

[0017] (nucleic acid probe) The nucleic acid probe (A) used in the present invention is not particularly limited as long as it is a substance capable of specifically binding to a target oligonucleotide, but it contains a base sequence complementary to the target oligonucleotide. As the solid phase (B), it is preferable to use, for example, insoluble fine particles, microbeads, fluorescent fine particles, magnetic particles, microplates, microarrays, slide glasses, electrically conductive substrates and other substrates. The "nucleic acid probe" used in the present invention comprises a sequence complementary to the entire sequence or a partial sequence of the target oligonucleotide. Preferably, the nucleic acid probe comprises a sequence complementary to a portion of the entire length of the target oligonucleotide, including the 3'-end or 5'-end, and examples thereof include the following cases (a-1) and (a-2): (a-1) When the solid phase or the adaptor or linker is adjacent to the 3'-terminal nucleotide, the nucleic acid probe contains a sequence complementary to the target oligonucleotide in the portion including the 3'-terminal nucleotide. (a-2) When the solid phase or the adaptor or linker is adjacent to the 5'-terminal nucleotide, the nucleic acid probe contains a sequence complementary to the target oligonucleotide in the portion including the 5'-terminal nucleotide. In the above nucleic acid probe, the sequence complementary to a portion containing the 3' end or 5' end of the target oligonucleotide preferably contains a sequence complementary to a portion of the target oligonucleotide. The sequence complementary to the entire length of the target oligonucleotide may have a degree of identity sufficient to allow hybridization over the entire length, and is more preferably a sequence that is completely complementary over the entire length.

[0018] Furthermore, since polyA is added to the 3' end of the target oligonucleotide, the nucleic acid probe may contain a polybase T (or U) adjacent to the 5' end nucleotide of the sequence complementary to the target oligonucleotide.

[0019] The length (number of bases) of the sequence of the nucleic acid probe may be any length that can bind to the target oligonucleotide, and for example, the lower limit is preferably 4-mer or more bases, more preferably 10-mer or more bases, and even more preferably 15-mer or more bases. The upper limit is preferably 1000-mer or less bases.

[0020] (solid phase) The solid phase in the present invention includes insoluble particles, microbeads, fluorescent particles, magnetic particles, microplates, microarrays, slide glasses, substrates such as electrically conductive substrates, and the like, and is preferably fluorescent particles, more preferably fluorescent beads, and particularly preferably beads having a fluorescent substance on their surface. The "beads having a fluorescent substance on their surface" used in the present invention are not particularly limited as long as they have a fluorescent substance, and examples thereof include MicroPlex from Luminex. TM Microspheres are suitable for use. One type of bead or multiple types of beads can be used. By using multiple types of color-coded beads, the method for quantifying oligonucleotides of the present invention can be easily multiplexed.

[0021] The solid phase and the nucleic acid probe may be bound directly or via an adaptor or a linker, and are preferably bound via an adaptor or a linker. In the present invention, the term "adjacent" in the term "a solid phase adjacent to the 3'-terminal or 5'-terminal nucleotide of a nucleic acid probe" means that the solid phase is directly bound to the nucleotide or is bound via an adaptor, linker, or the like, and the meaning of "bound" will be described later.

[0022] (adapter or linker) Examples of the "adapter or linker" used in the present invention include compounds having an amino group or a carboxyl group, such as biotin, and spacers such as Spacer 9, Spacer 12, Spacer 18, and Spacer C3, and preferred examples include 5'-Amino-Modifier C12 (12-(4-Monomethoxytritylamino)dodecyl-1-[(2-cyanoethyl)-(N,N-diisopropyl)]-phosphoramidite), biotin, etc. For example, in an embodiment in which a nucleic acid probe having a carboxyl group on the surface of a bead and an amino group compound added thereto binds to the carboxyl group on the surface of the bead via the amino group, the compound having an amino group is an example of a linker.

[0023] (labeled substance) Suitable examples of the labeling substance in the present invention include radioisotopes, biotin, digoxigenin, fluorescent substances, luminescent substances, and dyes. in particular, 125 I and 32 It is also possible to detect target oligonucleotides by attaching donor and acceptor fluorescent dyes for fluorescence resonance energy transfer (FRET), such as radioisotopes such as P, luminescent or chromogenic substances such as digoxigenin or acridinium ester, alkaline phosphatase for luminescent substances such as dioxetanes or fluorescent substances such as 4-methylumbelliferyl phosphate, and biotin for fluorescent, luminescent, or chromogenic substances bound to avidin.

[0024] (Binding of nucleic acid probes to solid phases) Nucleic acid probes can be bound to solid phases by methods such as chemical bonding, biological interaction, and physical adsorption. In the chemical bonding method, for example, when a carrier coated with a carboxyl group is used, a coupling reaction can be carried out between the carrier and an amino group labeled on the oligonucleotide. In the biological interaction method, for example, the binding force between streptavidin coated on the carrier and biotin modified on the nucleic acid probe can be utilized. Furthermore, in the physical adsorption method, for example, when a negatively charged solid phase is used, the oligonucleotide can be electrostatically adsorbed to the carrier by labeling it with a positively charged substance such as an amino group.

[0025] (contact) As used herein, the terms "contact" or "contacting step" refer to placing a substance in proximity to another substance so that a chemical bond, such as a covalent bond, an ionic bond, a metallic bond, or a non-covalent bond, can be formed between the two substances. In one aspect of the present invention, "contacting" a substance with another substance refers to mixing a solution containing the substance with a solution containing the other substance. The step of contacting the sample with polyA polymerase and ATP is carried out by incubating at 30 to 42°C for 5 to 120 minutes, preferably at 37°C for 60 minutes. The step of contacting the sample with the capture probe is carried out by incubating at 30 to 70°C for 0.2 to 30 hours, preferably at 35 to 65°C for 8 to 24 hours. The step of contacting the sample with the first and second oligonucleotides is carried out by incubating at 28 to 70°C for 0.2 to 3 hours, preferably at 30 to 54°C for 0.5 to 2 hours. Furthermore, contact between the target oligonucleotide and the capture probe means that the contact is carried out under conditions that allow hybridization of corresponding bases in the complementary sequences of the target oligonucleotide and the nucleic acid probe.Similarly, contact between a pair of self-aggregating probes and the capture probe and the assist probe, and contact between a pair of self-aggregating probes themselves also means that the contact is carried out under conditions that allow hybridization of corresponding bases.

[0026] (self-aggregation) As used herein, the term "self-aggregation" refers to a state in which multiple first oligonucleotides form a complex by hybridization with a second oligonucleotide, and a state in which multiple second oligonucleotides form a complex by hybridization with a first oligonucleotide.

[0027] (Self-aggregating pair of probes) The "self-aggregating" pair of probes used in the method of the present invention refers to oligonucleotides in which the first and second oligonucleotides have complementary base sequence regions that can hybridize with each other and form a probe polymer through a self-aggregation reaction. Preferably, at least one of the first or second oligonucleotides is labeled with a labeling substance. Here, "hybridizable" means, in one embodiment, that the complementary base sequence regions are completely complementary.

[0028] The pair of self-aggregating probes may be labeled in advance with a labeling substance for detection. Suitable examples of such a labeling substance include radioisotopes, biotin, digoxigenin, fluorescent substances, luminescent substances, and dyes. Specifically, 125 I and 32It is also possible to detect target oligonucleotides by attaching donor and acceptor fluorescent dyes for fluorescence resonance energy transfer (FRET), such as radioisotopes such as P, luminescent or chromogenic substances such as digoxigenin or acridinium ester, alkaline phosphatase for luminescent substances such as dioxetanes or fluorescent substances such as 4-methylumbelliferyl phosphate, and biotin for fluorescent, luminescent, or chromogenic substances bound to avidin. Preferably, the labeling substance is biotin, and the oligonucleotide is labeled by biotinylating the 5'-end or 3'-end. When the labeling substance is biotin, the substance that specifically binds to the labeling substance is streptavidin or avidin.

[0029] To explain the pair of "self-aggregating" probes more specifically, the first oligonucleotide is an oligonucleotide comprising, from the 5' end, at least a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z, and the second oligonucleotide is an oligonucleotide comprising, from the 5' end, at least a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z. When the PALSAR method is performed without using an assist probe, which will be described later, an embodiment in which the nucleic acid region Z contains a poly-T sequence and the nucleic acid region Z' contains a poly-A sequence is exemplified.

[0030] In the present invention, the process of contacting a sample containing a hybridization product of a "target oligonucleotide-poly A" and a capture probe with a pair of self-aggregating probes consisting of a first and a second oligonucleotide to form a complex with an oligonucleotide polymer consisting of the first and second oligonucleotides may involve forming a complex without the aid of an assist probe or via the aid of an assist probe.

[0031] The assist probe is a probe that assists in the formation of a complex between the target oligonucleotide-poly A and the oligonucleotide polymer. A first embodiment of the assist probe is a probe that includes a sequence complementary to the entire sequence or a partial sequence of at least one of the first or second oligonucleotides and the entire sequence or a partial sequence of the target oligonucleotide. The assist probe may or may not be labeled with a labeling substance. Furthermore, the assist probe of the present invention is a probe that contains the entire sequence or a partial sequence of at least one of the first or second oligonucleotides, as well as a sequence complementary to the entire sequence or a partial sequence of the polyA added to the target oligonucleotide (i.e., polyT). For example, when one of the sequences of a pair of self-aggregating probes is XYZ, examples include (polyT)-X'Y'X' and (polyT)-Z'Y'Z'. The following explanation will be given for cases where an assist probe is used and where it is not used.

[0032] (When using the PALSAR method without an assist probe) When forming a complex with a pair of self-aggregating probes without the aid of the assist probe, at least one of the first or second oligonucleotides may contain a complementary strand (poly T) of the entire sequence or a partial sequence of the poly A added to the target oligonucleotide. At least one of the first or second oligonucleotides is preferably labeled with a labeling substance.

[0033] As a first embodiment of the method for detecting a target oligonucleotide of the present invention, a method for detecting a target oligonucleotide by adding poly A to the target oligonucleotide and detecting the target oligonucleotide by the PALSAR method will be specifically described below with reference to FIG. First, a sample that may contain a target oligonucleotide and a capture probe for capturing the target oligonucleotide are prepared. The capture probe of the present invention comprises: (A) a nucleic acid probe; (B) The nucleic acid probe includes a bead immobilized on the nucleotide portion of the 3' end of the nucleic acid probe. The nucleic acid probe comprises the entire sequence of the target oligonucleotide. Next, poly A polymerase is applied to the 3' end of the target oligonucleotide in the sample to add poly A (1 in Figure 7). In this step, the present invention uses Mn 2+ By adjusting the concentration to a specific level, the reactivity of polyA addition is increased, which in turn increases the detection sensitivity in the subsequent PALSAR reaction. Next, the capture probe is contacted with the target oligonucleotide to which polyA has been added (first hybridization). This allows hybridization between the target oligonucleotide to which polyA has been added and the nucleic acid probe in the capture probe to form a double strand (2 in Figure 7). The target oligonucleotide contained in the hybridization product can be quantified using the following Pulser method.

[0034] A sample containing the hybridization product is contacted with a pair of self-aggregating probes consisting of a first and a second oligonucleotide to form a complex between the hybridization product and an oligonucleotide polymer formed by self-aggregation of the first and second oligonucleotides (a so-called pulser reaction). Here, in a pair of self-aggregating probes consisting of a first and a second oligonucleotide, the first oligonucleotide is an oligonucleotide containing, from the 5' end, a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z, and the second oligonucleotide contains, from the 5' end, a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z (hereinafter, the nucleic acid regions may be simply referred to as X, Y, Z, X', Y', Z'). Furthermore, Z contains a poly-T sequence, and Z' contains a poly-A sequence. Furthermore, the first and second oligonucleotides each have a label attached to the 5' end. The first oligonucleotide Z (polyT) hybridizes to the polyA of the hybridization product, and the second oligonucleotide X' and Y' hybridize to the X and Y of the first oligonucleotide, respectively. Then, X and X', Y and Y', and Z (polyT) and Z' (polyA) hybridize in succession, forming an oligonucleotide polymer of the self-aggregating probe (3 in Figure 7).

[0035] The hybridization product of the capture probe and the target oligonucleotide and the self-aggregated complex of the first and second oligonucleotides can be separated by precipitation using centrifugation, and the concentration of the target oligonucleotide can be measured by detecting the labeling substances of the first and second oligonucleotides (4 in Figure 7). It is also possible to detect the target oligonucleotide by detecting the double-stranded hybridization product formed between the capture probe and the target oligonucleotide to which poly A has been added before the pulser reaction. For example, the target oligonucleotide can be detected by hybridizing a poly T probe whose 5' end has been labeled with a labeling substance to the poly A region of the double-stranded hybridization product and detecting the labeling substance of the poly T probe.

[0036] (When using the PALSAR method via an assist probe) When forming a complex via the assist probe, the first or second oligonucleotide may be an oligonucleotide capable of forming a probe polymer by a self-agglutination reaction. In this case, the assist probe may contain polyT and the entire sequence or a partial sequence of at least one of the first or second oligonucleotide. It is preferable that at least one of the first oligonucleotide, the second oligonucleotide, and the assist probe is labeled with a labeling substance.

[0037] As a second embodiment of the method for detecting a target oligonucleotide of the present invention, a method in which poly A is added to a target oligonucleotide and then the target oligonucleotide is detected via an assist probe will be specifically described below with reference to FIG. The process of adding polyA and the process of hybridizing the "polyA-target oligonucleotide" with the capture probe are the same as those when the PALSAR method is performed without using an assist probe. An assist probe is contacted with the sample containing the hybridization product (assist probe hybridization, 3 in Figure 8). Here, the assist probe contains a poly-T sequence and a second oligonucleotide sequence (X', Y', Z' or X', Y', X', etc.). The poly-T sequence of the assist probe hybridizes with the poly-A of the "target oligonucleotide-poly-A", forming a complex of the "target oligonucleotide-poly-A" and the assist probe. A pair of self-aggregating probes consisting of a first and a second oligonucleotide is contacted with the complex to form a complex of the complex with an oligonucleotide polymer formed by self-aggregation of the first and second oligonucleotides (a so-called pulser reaction). A pair of self-aggregating probes consisting of a first and a second oligonucleotide is an oligonucleotide containing X, Y, and Z, in order from the 5' end, and the second oligonucleotide contains X', Y', and Z', in order from the 5' end. Labeling substances are attached to the 5' ends of the first and second oligonucleotides. X, Y, and Z of the first oligonucleotide hybridize to X', Y', and Z' of the assist probe, and the second oligonucleotide hybridizes to the first oligonucleotide. The hybridization of X and X', Y and Y', and Z and Z' is repeated in succession, forming an oligonucleotide polymer of the self-aggregating probe (4 in Figure 8). The method for detecting these complexes is the same as when the assist probe is not used.

[0038] Specific examples of the Pulsar method are shown in Figures 4 to 14 of International Publication No. 2013 / 172305, and can be applied to the self-agglutination reaction of the present invention by appropriately modifying the method based on the common knowledge of those skilled in the art using a dimer formation probe or the like.

[0039] The capture probe of the present invention and the self-aggregated first and second oligonucleotide polymers (signal probe polymers) are preferably separated. The method for separating the complex is not particularly limited, and preferred methods include centrifugation and suction filtration. The step of precipitating the capture probe and its complex by "centrifugation" is usually carried out by centrifugation at 500 to 3000 × g for 0.2 to 5 minutes at 20 to 30° C., or at 800 to 1500 × g for 0.5 to 2 minutes at 23 to 28° C., or preferably at 1000 × g for 1 minute at 25° C. More specifically, the instructions provided by the bead manufacturer may be followed.

[0040] The step of separating the capture probe and its complex by "suction filtration" can be carried out by the method described in Biochem Biophys Res Commun. 2015 Nov 27;467(4):1012-8. Specifically, a solution containing the capture probe and its complex is transferred to a filter plate, and suction is typically performed at a negative pressure range of 1 to 10 in.Hg at 20 to 30°C, 1 to 10 in.Hg at 23 to 28°C, and preferably 1 to 5 in.Hg at 25°C. The suction time may be such that the liquid is visually removed from the filter, for example, 1 second to 5 minutes, preferably 5 seconds to 1 minute. The pore size of the filter plate is preferably smaller than the diameter of the capture probe, and is preferably 1.2 μm or 1.0 μm. Specific examples of components include a filter plate: MultiScreen (登録商標) HTS-BV plate (Merck Millipore, product number: MSBVN1250), manifold: MultiScreen (登録商標)Examples include an HTS Vacuum Manifold (Merck Millipore) and a suction pump: a Chemical duty pump (Merck Millipore, catalog number: WP6110060).

[0041] (sample) Examples of the "sample" used in the method of the present invention include biological samples such as body fluids, such as whole blood, serum, plasma, lymph, urine, saliva, tears, sweat, gastric juice, pancreatic juice, bile, pleural effusion, joint cavity fluid, cerebrospinal fluid, spinal fluid, and bone marrow fluid, and tissues, such as brain, liver, kidney, lung, and heart, from humans, monkeys, dogs, pigs, rats, guinea pigs, or mice. Preferably, the sample is human whole blood, serum, plasma, brain, or urine. More preferably, the sample is human whole blood, serum, plasma, brain, or urine that has been administered a pharmaceutical containing a target oligonucleotide. These may be diluted with water or a buffer before use. The sample of the present invention also includes a target oligonucleotide diluted with water or buffer.

[0042] The buffer may be any commonly used buffer, such as Tris-HCl, boric acid, phosphoric acid, acetic acid, citric acid, succinic acid, phthalic acid, glutaric acid, maleic acid, glycine, and salts thereof, as well as Good's buffers such as MES, Bis-Tris, ADA, PIPES, ACES, MOPSO, BES, MOPS, TES, and HEPES, and examples of water include RNase- and DNase-free water.

[0043] Methods for detecting the first and second oligonucleotide polymers of the present invention include, for example, turbidity, agarose electrophoresis, absorbance, fluorometry, electrochemiluminescence, and flow cytometry, preferably flow cytometry. An example of a flow cytometry method is a step of "detecting, using flow cytometry, a first fluorescence emitted by a first fluorescent substance and a second fluorescence emitted by a second fluorescent substance." The "step of detecting, using flow cytometry, a first fluorescence emitted by a first fluorescent substance and a second fluorescence emitted by a second fluorescent substance" preferably detects the first fluorescence emitted by the first fluorescent substance and the second fluorescence emitted by the second fluorescent substance simultaneously or on the same occasion. Here, "detecting simultaneously or on the same occasion" means that the first fluorescent substance and the second fluorescent substance contained in one complex (a ternary or quaternary complex) are excited simultaneously or sequentially in the flow path of a flow cytometer, and the emitted first fluorescence and second fluorescence are detected as fluorescence emitted from that one complex. More specifically, the first fluorescent substance may be a fluorescent substance contained in the solid phase of the capture probe, and the second fluorescent substance may be a fluorescent substance pre-bound to a substance that specifically binds to the labeling substances attached to the first and second oligonucleotides. A reaction solution containing these first and second fluorescent substances can be subjected to flow cytometry to detect the first fluorescence emitted by the first fluorescent substance and the second fluorescence emitted by the second fluorescent substance.

[0044] In the present invention, the poly A polymerase buffer kit includes at least the following components: (1) Poly(A) polymerase (2) Mn 2+ A reaction buffer solution containing 3mM to 38mM of (3)ATP The reaction buffer solution in (2) above is the Mn in the final reaction solution to which the sample and each reagent of the kit have been added. 2+ The concentration of Mn may be 3 mM to 38 mM, preferably 5 mM to 35 mM, and more preferably 10 mM to 30 mM. For example, in the case of a double solution (x2), 2+ The concentration of Mn may be 6 mM to 76 mM, preferably 10 mM to 70 mM, and more preferably 20 mM to 60 mM. 2+The concentration of Mn2 is 9 mM to 114 mM, preferably 15 mM to 105 mM, and more preferably 30 mM to 90 mM. + The concentration of Mn may be 12 mM to 152 mM, preferably 20 mM to 140 mM, and more preferably 40 mM to 120 mM. In the case of a 5-fold solution (x5), 2+ The concentration of Mn may be 15 mM to 190 mM, preferably 25 mM to 175 mM, and more preferably 50 mM to 150 mM. 2+ The concentration of Mn may be 18 mM to 228 mM, preferably 30 mM to 210 mM, and more preferably 60 mM to 180 mM. In the case of a 7-fold solution (x7), 2+ The concentration of Mn is 21 mM to 266 mM, preferably 35 mM to 245 mM, and more preferably 70 mM to 210 mM. 2+ The concentration of Mn may be 24 mM to 304 mM, preferably 40 mM to 280 mM, and more preferably 80 mM to 240 mM. 2+ The concentration of Mn is 27 mM to 342 mM, preferably 45 mM to 315 mM, and more preferably 90 mM to 270 mM. 2+ The concentration of may be 30 mM to 380 mM, preferably 50 mM to 350 mM, and more preferably 100 mM to 300 mM. Any buffer may be used as long as it maintains the activity of poly A polymerase, and generally, Tris-HCl, phosphoric acid, etc. are used.

[0045] (Kit description for measuring components in water or buffer) When the Poly A polymerase buffer kit is used to measure components in water or buffer, the reaction buffer in (2) above is Mn 2+ is included in the final reaction solution at 3 mM to 17.5 mM. When measuring components in water or buffer, the reaction buffer solution in (2) above is the Mn in the final reaction solution to which the sample and each reagent of the kit have been added. 2+ The concentration is preferably 5 mM to 15 mM, and more preferably 7.5 mM to 15 mM. For example, in the case of a double solution (x2), Mn 2+ The concentration of Mn is 6 mM to 35 mM, preferably 10 mM to 30 mM, and more preferably 15 mM to 30 mM. 2+ The concentration of Mn may be 9 mM to 52.5 mM, preferably 15 mM to 45 mM, and more preferably 22.5 mM to 45 mM. In the case of a 4-fold solution (x4), 2+ The concentration of Mn may be 12 mM to 70 mM, preferably 20 mM to 60 mM, and more preferably 30 mM to 60 mM. In the case of a 5-fold solution (x5), 2+ The concentration of Mn may be 15 mM to 87.5 mM, preferably 25 mM to 75 mM, and more preferably 37.5 mM to 75 mM. In the case of a 6-fold solution (x6), 2+ The concentration of Mn is 18 mM to 105 mM, preferably 30 mM to 90 mM, and more preferably 45 mM to 90 mM. 2+ The concentration of Mn may be 21 mM to 122.5 mM, preferably 35 mM to 105 mM, and more preferably 52.5 mM to 105 mM. In the case of an 8-fold solution (x8), 2+ The concentration of Mn may be 24 mM to 140 mM, preferably 40 mM to 120 mM, and more preferably 60 mM to 120 mM. In the case of a 9-fold solution (x9), 2+ The concentration of Mn may be 27 mM to 157.5 mM, preferably 45 mM to 135 mM, and more preferably 67.5 mM to 135 mM. In the case of a 10-fold solution (x10), 2+ The concentration of may be 30 mM to 175 mM, preferably 50 mM to 150 mM, and more preferably 75 mM to 150 mM.

[0046] (Kit explanation for measuring components in 100% biological samples (100% blood samples, etc.)) When the above poly A polymerase buffer kit is used to measure 100% of biological samples (such as 100% of blood samples), the reaction buffer (2) above should be Mn 2+ is included in the final reaction solution at 17 mM to 38 mM. When measuring 100% biological sample components (such as 100% blood sample), the reaction buffer solution in (2) above should be the same as the Mn concentration in the final reaction solution containing the sample and each reagent in the kit. 2+ The concentration of Mn is preferably 17 mM to 35 mM, and more preferably 17 mM to 30 mM. For example, in the case of a double solution (x2), 2+ The concentration of Mn may be 34 mM to 76 mM, preferably 34 mM to 70 mM, and more preferably 34 mM to 60 mM. 2+ The concentration of Mn may be 51 mM to 114 mM, preferably 51 mM to 105 mM, and more preferably 51 mM to 90 mM. 2+ The concentration of Mn may be 68 mM to 152 mM, preferably 68 mM to 140 mM, and more preferably 68 mM to 120 mM. 2+ The concentration of Mn is 85 mM to 190 mM, preferably 85 mM to 175 mM, and more preferably 85 mM to 150 mM. 2+ The concentration of Mn may be 102 mM to 228 mM, preferably 102 mM to 210 mM, and more preferably 102 mM to 180 mM. 2+ The concentration of Mn may be 119 mM to 266 mM, preferably 119 mM to 245 mM, and more preferably 119 mM to 210 mM. 2+ The concentration of Mn may be 136 mM to 304 mM, preferably 136 mM to 280 mM, and more preferably 136 mM to 240 mM. 2+The concentration may be 153 mM to 342 mM, preferably 153 mM to 315 mM, and more preferably 153 mM to 270 mM. In the case of a 10-fold solution (x10), Mn 2+ The concentration may be 170 mM to 380 mM, preferably 170 mM to 350 mM, and more preferably 170 mM to 300 mM.

[0047] In addition, the kit for detecting the target oligonucleotide of the present invention includes the following (3) and (4) in addition to the above (1) and (2). (3) A capture probe for capturing the target oligonucleotide (4) A pair of self-aggregatable probes consisting of the first and second oligonucleotides In addition, an assist probe or the like may be included as necessary. Each configuration is as described above. Since the above reaction buffer may cause precipitation when stored for a long time, it is preferably prepared at the time of use, and a redox agent such as DTT or a chelating agent such as EDTA may be added. The concentration of the above redox agent and chelating agent is preferably 0.01 mM to 5 mM, and more preferably 0.5 mM to 2 mM. In addition, the above redox agent and reducing agent may be added in the step of the poly A addition reaction.

Example

[0048] 〔Example 1〕Regarding the concentration of MnCl2 during the poly A addition reaction by poly A polymerase (mouse 100% plasma matrix) (1) Poly A addition reaction (1-1) Preparation of sample Target-1 (target oligonucleotide) of the sequence shown below was adjusted with mouse plasma (Charles River Japan) so that the final concentration was 0, 1, 10 fmol. <Sequence of target-1> T(L)^G(L)^A(L)^g^c^t^g^a^c^t^t^g^a^T(L)^G(L)^5(L) (For the base sequence part, see SEQ ID NO: 1 in the Sequence Listing) "(L)" indicates "LNA." "5" stands for "5-methyl cytosine." "^" indicates "S (phosphorothioated)".

[0049] (1-2) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 1) A-Plus TM Using the reagents provided with the Poly(A) Polymerase Tailing Kit (CELLSCRIPT, product number: C-PAP5104H), 4 μL of 10x reaction buffer (included in the kit; 0.5 M Tris-HCl (pH 8.0), 2.5 M NaCl, and 100 mM MgCl2), 4 μL of 10 mM ATP (included in the kit), 1 μL of poly(A) polymerase (included in the kit), and 26 μL of nuclease-free water were mixed to prepare a total of 35 μL of PAP Mix. When using the PAP Mix provided in the kit, the final concentration of MgCl2 in the poly(A) polymerase reaction solution was 10 mM.

[0050] (ii) Preparation of the PAP Mix of the Present Invention (Example 1) To add poly(A) to the 3' end of Target-1, a PAP reaction was performed using a homemade 5x PAP Mn buffer (0.25 M Tris-HCl (pH 8.0), 1.25 M NaCl, and MnCl2). The reaction solution was prepared in a PCR plate with a final concentration of 1x PAP Mn buffer and 1 mM ATP in a total volume of 40 μL. Four units of poly(A) polymerase were added. The 5x PAP Mn buffer was prepared so that the MnCl2 concentrations in the 1x PAP Mn buffer were 2.5, 10, 15, 20, 22.5, 25, 30, 35, and 40 mM, respectively, for the experiments.

[0051] (1-3) Poly(A) addition reaction 35 μL of PAP Mix and 5 μL of target-1 solution were added to a PCR plate and mixed (total 40 μL). The reaction solution was incubated at 37°C for 60 minutes using a thermal cycler (Eppendorf Mastercycler nexus GSX1), then heat-treated at 65°C for 10 minutes and then kept at 4°C.

[0052] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by binding the nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing) shown below, which is complementary to target-1, via NH2 modification at the 3' end (referred to as analyte capture beads). <Sequence of nucleic acid probe CP-1> gcatcaagtcagctca (Sequence Listing SEQ ID NO: 2)

[0053] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the PAP reaction solution in 65 μL was 1.6x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosinate sodium]), 1.1 M tetramethylammonium chloride (hereinafter referred to as TMAC) (SIGMA, T3411), and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 25 μL of the first hybridization reaction solution was added and mixed (total 65 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0054] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR Reaction Solution In 100 μL mixed with the 1st hybridization reaction solution, supplements were added to a final concentration of 1.6x supplement and 2.1 M TMAC. As a pair of self-aggregatable probes, HCP-1 (SEQ ID NO: 3 in the Sequence Listing) with a biotin label at the 5'-end and HCP-2 (SEQ ID NO: 4 in the Sequence Listing) shown below were used. The concentrations of HCP-1 and HCP-2 were added so that the final concentrations were 0.7 pmol / μL and 0.56 pmol / μL, respectively. <Sequence of HCP-1> 5’-(biotin)CAACAATCAGGAC GATACCGATGAAG TTTTTTTTTTTTTTTTTTTT-3’ (For the base sequence part, SEQ ID NO: 3 in the Sequence Listing) <Sequence of HCP-2> 5’-(biotin)GTCCTGATTGTTG CTTCATCGGTATC AAAAAAAAAAAAAAAAAAAA-3’ (For the base sequence part, SEQ ID NO: 4 in the Sequence Listing)

[0055] (3-2) Detection Complex Formation Reaction (Self-Aggregation Reaction / Pulsar Reaction) To 65 μL of the reaction solution after the 1st hybridization step, 35 μL of the PALSAR reaction solution was added to make a total of 100 μL, and the mixture was reacted at 42 °C for 1 hour and then held at 4 °C.

[0056] (4) Separation Step (Washing Step) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0057] (5) Detection Step (Fluorescence Detection) After the complex formation reaction, the reaction mixture was washed once with 1x PBS-TP, and then 50 μL of the detection reagent [Streptavidin-R-Phycoerythrin (hereinafter referred to as SA-PE) (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1x PBS-TP. 75 μL of 1x PBS-TP was then added, and the fluorescence of the beads and SA-PE complexes was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0058] (6) Results The results of examining the MnCl2 concentration during the poly A polymerase reaction of Target-1 (3'-terminal LNA) in a 100% mouse plasma matrix are shown in Figures 1 to 3. Figure 1 shows the background (BG) results without Target-1. In Example 1, the background was significantly suppressed when the MnCl2 concentration was greater than 15 mM and less than 40 mM. The BG value within this MnCl2 concentration range was lower than that when the MgCl2 buffer included in the kit in Comparative Example 1 was used. 2 and 3 are graphs showing the results of MFI and S / N ratio when the concentration of Target-1 was 1 fmol and 10 fmol. Looking at the S / N ratio graph for Example 1, the S / N ratio increased significantly when the MnCl2 concentration in the buffer was greater than 15 mM and equal to or less than 40 mM, and the S / N ratio value was several hundred times higher than that of the general poly(A) polymerase reaction of Comparative Example 1 (when the buffer: MgCl2 included in the commercially available kit was used). From the above, it was found that when reacting Target-1 with poly(A) polymerase, it is possible to suppress background and significantly increase the signal-to-noise ratio by adding MnCl2 to the buffer and adjusting the concentration within an appropriate range.

[0059] [Example 2] Target oligonucleotide concentration dependence in PAP Mn buffer (100% mouse plasma matrix) (1) Poly(A) addition reaction (1-1) Sample preparation The target oligonucleotide (Target-1; SEQ ID NO: 1 in the Sequence Listing) was prepared in mouse plasma (Charles River Japan) to final concentrations of 0, 10, 31.6, 100, 316, 1000, 3160, and 10000 amol.

[0060] (1-2) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 2) A-Plus TM Using the reagents provided with the Poly(A) Polymerase Tailing Kit (CELLSCRIPT, product number: C-PAP5104H), 4 μL of 10x reaction buffer (included in the kit; 0.5 M Tris-HCl (pH 8.0), 2.5 M NaCl, and 100 mM MgCl2), 4 μL of 10 mM ATP (included in the kit), 1 μL of poly(A) polymerase (included in the kit), and 26 μL of nuclease-free water were mixed to prepare a total of 35 μL of PAP Mix. When using the PAP Mix provided in the kit, the final concentration of MgCl2 in the poly(A) polymerase reaction solution was 10 mM.

[0061] (ii) Preparation of PAP Mix of the Present Invention (Example 2) To add polyA to the 3' end of Target-1, a PAP reaction was performed using a homemade 5xPAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 40 μL, with a final concentration of 1xPAP Mn buffer and 1 mM ATP. Four units of polyA polymerase were added. The 5xPAP Mn buffer was prepared so that the MnCl2 concentration in the 1xPAP Mn buffer was 22.5 mM.

[0062] (1-3) Poly(A) addition reaction 35 μL of PAP Mix and 5 μL of Target-1 solution were added to a PCR plate and mixed (total 40 μL). The reaction solution was incubated at 37°C for 60 minutes using a thermal cycler, then heat-treated at 65°C for 10 minutes and then kept at 4°C.

[0063] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing) complementary to Target-1 via an NH2 modification at the 3' end (referred to as analyte capture beads). (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 65 μL mixture mixed with the PAP reaction solution was adjusted to 1.6x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 25 μL of the first hybridization reaction solution was added and mixed (total 65 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0064] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The final concentration of TMAC was 1.6x supplement (2.1 M) in 100 μL of the first hybridization reaction solution. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to give final concentrations of 0.7 pmol / μL and 0.56 pmol / μL, respectively.

[0065] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 65 μL of the reaction solution after the first hybridization step, 35 μL of the PALSAR reaction solution was added to make a total of 100 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0066] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0067] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction mixture was washed once with 1x PBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1x PBS-TP. 75 μL of 1x PBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0068] (6) Test results (6-1) Concentration dependence The results of the Target-1 concentration dependency in PAP Mn buffer in a 100% mouse plasma matrix are shown in Figures 4-6. Figure 4 shows the linearity of Target-1 concentration in PAP Mn buffer (Example 2) in a 100% mouse plasma matrix. R 2 A value of 0.9943 was obtained, and good linearity was obtained that is comparable to the line showing the target concentration dependency when the Mg buffer included in the kit of Comparative Example 2 was used (FIG. 5).

[0069] (6-2)SN ratio FIG. 6 shows a comparison of the SN ratios for Mn buffer (Example 2) and Mg buffer (Comparative Example 2) at each target concentration. It was shown that the SN ratio was significantly higher for Mn buffer (Example 2) than for Mg buffer (Comparative Example 2) at any target-1 concentration. Furthermore, the SN ratio for Mg buffer (Comparative Example 2) at a target concentration of 10 amol was 2, indicating that sensitivity could not be obtained with Mg buffer at a target concentration of 10 amol or less. On the other hand, the SN ratio for Mn buffer (Example 2) at a target-1 concentration of 10 amol was 9, indicating that sensitivity could be obtained even at a target concentration of 10 amol or less. From the above, it was found that the target concentration dependency was good in Mn buffer and quantitative. It was also found that the use of the Mn buffer of the present invention makes it possible to increase the detection sensitivity.

[0070] [Example 3] Target oligonucleotide concentration dependence in PAP 17.5 mM Mn buffer (100% mouse plasma matrix) (1) Poly(A) addition reaction (1-1) Sample preparation The target oligonucleotide (Target-1; SEQ ID NO: 1 in the Sequence Listing) was adjusted with mouse plasma (Charles River Japan) to final concentrations of 0, 10, 31.6, 100, 316, 1000, and 3160 amol.

[0071] (1-2) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 3) A-Plus TM Using the reagents provided with the Poly(A) Polymerase Tailing Kit (CELLSCRIPT, product number: C-PAP5104H), 4 μL of 10x reaction buffer (included in the kit; 0.5 M Tris-HCl (pH 8.0), 2.5 M NaCl, and 100 mM MgCl2), 4 μL of 10 mM ATP (included in the kit), 1 μL of poly(A) polymerase (included in the kit), and 26 μL of nuclease-free water were mixed to prepare a total of 35 μL of PAP Mix. When using the PAP Mix provided in the kit, the final concentration of MgCl2 in the poly(A) polymerase reaction solution was 10 mM.

[0072] (ii) Preparation of PAP Mix of the Present Invention (Example 3) To add polyA to the 3' end of Target-1, a PAP reaction was performed using a homemade 5x PAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 40 μL, with a final concentration of 1x PAP Mn buffer and 1 mM ATP. Four units of polyA polymerase were added. The 5x PAP Mn buffer was prepared so that the MnCl2 concentration in the 1x PAP Mn buffer was 17.5 mM.

[0073] (1-3) Poly(A) addition reaction 35 μL of PAP Mix and 5 μL of Target-1 solution were added to a PCR plate and mixed (total 40 μL). The reaction solution was incubated at 37°C for 60 minutes using a thermal cycler, then heat-treated at 65°C for 10 minutes and then kept at 4°C.

[0074] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing) complementary to Target-1 via an NH2 modification at the 3' end (referred to as analyte capture beads).

[0075] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 65 μL mixture mixed with the PAP reaction solution was adjusted to 0.8x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above.

[0076] (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 25 μL of the first hybridization reaction solution was added and mixed (total 65 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0077] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 100 μL mixture with the first hybridization reaction solution was mixed with 0.8x supplement, adding 1.6 M TMAC to a final concentration of 0.8x supplement. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to a final concentration of 0.35 pmol / μL and 0.245 pmol / μL, respectively.

[0078] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 65 μL of the reaction solution after the first hybridization step, 35 μL of the PALSAR reaction solution was added to make a total of 100 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0079] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0080] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction mixture was washed once with 1x PBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1x PBS-TP. 75 μL of 1x PBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0081] (6) Test results (6-1) Concentration dependence The results of the Target-1 concentration dependency in a 100% mouse plasma matrix in PAP 17.5 mM Mn buffer are shown in Figs. Figure 9 shows the linearity of Target-1 concentration in PAP 17.5 mM Mn buffer (Example 3) in a 100% mouse plasma matrix. R 2 A value of 0.9976 was obtained, demonstrating good linearity.

[0082] (6-2) Signal-to-noise ratio Figure 10 shows the comparison of the signal-to-noise ratio in 17.5 mM Mn buffer (Example 3) and Mg buffer (Comparative Example 3) for each Target-1 concentration. It was shown that at any Target-1 concentration, the signal-to-noise ratio of Mn buffer (Example 3) was significantly higher than that of Mg buffer (Comparative Example 3). Also, the signal-to-noise ratio at a Target-1 concentration of 10 amol was 2 for Mg buffer (Comparative Example 3), indicating that the sensitivity below a Target-1 concentration of 10 amol could not be obtained with Mg buffer. On the other hand, for Mn buffer (Example 3), the signal-to-noise ratio at a Target-1 concentration of 10 amol was 8, indicating that sensitivity could be obtained even at 10 amol or lower concentrations. From the above, it was found that the Target-1 concentration dependency was good and quantitative in 17.5 mM Mn buffer. Also, it was found that by using 17.5 mM Mn buffer in the present invention, it was possible to increase the detection sensitivity.

[0083] [Example 4-1] Regarding the MnCl2 concentration during the poly(A) addition reaction by poly(A) polymerase (mouse 50% plasma matrix) (1) Poly(A) addition reaction (1-1) Preparation of samples Target-2 (target oligonucleotide) of the sequence shown below was adjusted with mouse 50% plasma matrix to a final concentration of 0 and 0.1 fmol. Mouse 50% plasma matrix used was prepared by diluting mouse plasma (Charles River Japan) two-fold with RNase-Free Water. <sequence of target-2> T(L)^G(L)^A(L)^g^c^t^g^a^c^t^t^g^a^T(L)^G(L)^T(L) (for the base sequence part, Sequence No. 5 in the Sequence Listing) “(L)” indicates “LNA”. “^” indicates “S(phosphorothioate) modified”.

[0084] (1-2) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 4-1) A total of 10 μL of PAP Mix was prepared using the reagents included with the Poly(A) Tailing Kit (Invitrogen, product number: AM1350). This was done by mixing 4 μL of 5x E-PAP buffer (included in the kit), 2 μL of 10 mM ATP solution (included in the kit), 0.4 μL of E-PAP (included in the kit), and 3.6 μL of nuclease-free water.

[0085] (ii) Preparation of PAP Mix of the Present Invention (Example 4-1) To add poly(A) to the 3' end of Target-2, a PAP reaction was performed using a homemade 5xPAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 20 μL, with final concentrations of 1xPAP Mn buffer and 1 mM ATP. 0.8 U of poly(A) polymerase was also added. The 5xPAP Mn buffer was prepared so that the MnCl2 concentrations in the 1xPAP Mn buffer were 5, 10, 15, 17.5, 20, 22.5, 25, 30, 35, and 40 mM, respectively, for the experiments.

[0086] (1-3) Poly(A) addition reaction 10 μL of PAP Mix and 10 μL of target-2 solution were added to a PCR plate and mixed (total 20 μL). The reaction solution was incubated at 37°C for 60 minutes using a thermal cycler (Eppendorf Mastercycler nexus GSX1), then heat-treated at 65°C for 10 minutes and then maintained at 4°C.

[0087] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TMMicrospheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing), which is partially complementary to Target-2, via an NH2 modification at the 3' end (referred to as analyte capture beads).

[0088] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 35 μL mixture mixed with the PAP reaction solution was adjusted to 0.8x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 15 μL of the first hybridization reaction solution was added and mixed (total 35 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0089] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 50 μL mixture with the first hybridization reaction solution was mixed with 0.8x supplement and 1.6 M TMAC to achieve a final concentration of 0.8x supplement. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to a final concentration of 0.7 pmol / μL and 0.49 pmol / μL, respectively.

[0090] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 35 μL of the reaction solution after the first hybridization step, 15 μL of the PALSAR reaction solution was added to make a total of 50 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0091] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0092] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction solution was washed once with 1xPBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1xPBS-TP. 75 μL of 1xPBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0093] (6) Results The results of investigating the MnCl2 concentration during the polyA polymerase reaction of Target-2 (3'-terminal LNA) in a 50% mouse plasma matrix are shown in Figure 11. This is a graph showing the MFI and SN ratio results when the Target-2 concentration was 0.1 fmol. Looking at the SN ratio graph for Example 4-1, the SN ratio increased when the MnCl2 concentration in the buffer was between 15 mM and 35 mM, and the SN ratio value was higher than that of the general polyA polymerase reaction of Comparative Example 4-1 (when the buffer: MgCl2 included in the commercially available kit was used). From the above, it was found that even in a 2-fold diluted plasma matrix, when reacting Target-2 with polyA polymerase, it is possible to suppress the background and significantly increase the signal-to-noise ratio by adding MnCl2 to the buffer and adjusting the concentration within an appropriate range.

[0094] [Example 4-2] MnCl concentration during poly(A) addition reaction using poly(A) polymerase (10% mouse plasma matrix) (1) Poly(A) addition reaction (1-1) Sample preparation The target oligonucleotide (Target-2; SEQ ID NO: 5) was adjusted to a final concentration of 0 or 0.1 fmol in a 10% mouse plasma matrix. The 10% mouse plasma matrix was prepared by diluting mouse plasma (Charles River Japan) 10 times with RNase-free water.

[0095] (1-2) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 4-2) A total of 10 μL of PAP Mix was prepared using the reagents included with the Poly(A) Tailing Kit (Invitrogen, product number: AM1350). This was done by mixing 4 μL of 5x E-PAP buffer (included in the kit), 2 μL of 10 mM ATP solution (included in the kit), 0.2 μL of E-PAP (included in the kit), and 3.8 μL of nuclease-free water.

[0096] (ii) Preparation of PAP Mix of the Present Invention (Example 4-2) To add poly(A) to the 3' end of Target-2, a PAP reaction was performed using a homemade 5xPAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 20 μL, with a final concentration of 1xPAP Mn buffer and 1 mM ATP. 0.4 U of poly(A) polymerase was also added. The 5xPAP Mn buffer was prepared so that the MnCl2 concentrations in the 1xPAP Mn buffer were 5, 10, 15, 17.5, 20, 22.5, 25, 30, and 35 mM.

[0097] (1-3) Poly(A) addition reaction 10 μL of PAP Mix and 10 μL of target-2 solution were added to a PCR plate and mixed (total 20 μL). The reaction solution was incubated at 37°C for 30 minutes using a thermal cycler (Eppendorf Mastercycler nexus GSX1), then heat-treated at 65°C for 10 minutes and then maintained at 4°C.

[0098] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing), which is partially complementary to Target-2, via an NH2 modification at the 3' end (referred to as analyte capture beads).

[0099] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 35 μL mixture mixed with the PAP reaction solution was adjusted to 0.8x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 15 μL of the first hybridization reaction solution was added and mixed (total 35 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0100] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 50 μL mixture with the first hybridization reaction solution was mixed with 0.8x supplement and 1.6 M TMAC to achieve a final concentration of 0.8x supplement. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to achieve final concentrations of 0.7 pmol / μL and 0.49 pmol / μL, respectively.

[0101] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 35 μL of the reaction solution after the first hybridization step, 15 μL of the PALSAR reaction solution was added to make a total of 50 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0102] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0103] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction solution was washed once with 1xPBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1xPBS-TP. 75 μL of 1xPBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0104] (6) Results The results of investigating the MnCl2 concentration during the polyA polymerase reaction of Target-2 (3'-terminal LNA) in a 10% mouse plasma matrix are shown in Figure 12. This is a graph showing the MFI and SN ratio results when the Target-2 concentration was 0.1 fmol. Looking at the SN ratio graph for Example 4-2, the SN ratio increased when the MnCl2 concentration in the buffer was between 10 mM and 25 mM, and the SN ratio value was higher than that of the general polyA polymerase reaction of Comparative Example 4-2 (when the buffer: MgCl2 included in the commercially available kit was used). From the above, it was found that even in a 10-fold diluted plasma matrix, when reacting Target-2 with polyA polymerase, it is possible to suppress the background and significantly increase the signal-to-noise ratio by adding MnCl2 to the buffer and adjusting the concentration within an appropriate range.

[0105] [Example 5] MnCl concentration during poly(A) addition reaction using poly(A) polymerase (water) (1) Poly(A) addition reaction (1-1) Sample preparation The target oligonucleotide (Target-2; SEQ ID NO: 5 in the Sequence Listing) was adjusted with nuclease-free water to a final concentration of 0 or 0.1 fmol.

[0106] (1-2) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 5) A-Plus TMUsing the reagents provided with the Poly(A) Polymerase Tailing Kit (CELLSCRIPT, product number: C-PAP5104H), 2 μL of 10x reaction buffer (included in the kit; 0.5 M Tris-HCl (pH 8.0), 2.5 M NaCl, and 100 mM MgCl2), 2 μL of 10 mM ATP (included in the kit), 0.25 μL of poly(A) polymerase (included in the kit), and 5.75 μL of nuclease-free water were mixed to prepare a total of 10 μL of PAP Mix. When using the PAP Mix provided in the kit, the final concentration of MgCl2 in the poly(A) polymerase reaction solution was 10 mM.

[0107] (ii) Preparation of PAP Mix of the Present Invention (Example 5) To add poly(A) to the 3' end of Target-2, a PAP reaction was performed using a homemade 5x PAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 10 μL, with a final concentration of 1x PAP Mn buffer and 1 mM ATP. One unit of poly(A) polymerase was also added. The 5x PAP Mn buffer was prepared so that the MnCl2 concentrations in the 1x PAP Mn buffer were 2.5, 5, 7.5, 15, 17.5, and 20 mM, respectively, for the experiments.

[0108] (1-3) Poly(A) addition reaction 10 μL of PAP Mix and 10 μL of target-2 solution were added to a PCR plate and mixed (total 20 μL). Using a thermal cycler (Eppendorf Mastercycler nexus GSX1), the reaction solution was incubated at 37°C for 5 minutes, then heat-treated at 65°C for 10 minutes, and then maintained at 4°C.

[0109] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TMMicrospheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing), which is partially complementary to Target-2, via an NH2 modification at the 3' end (referred to as analyte capture beads).

[0110] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 35 μL mixture mixed with the PAP reaction solution was adjusted to 1.6x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 15 μL of the first hybridization reaction solution was added and mixed (total 35 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0111] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 50 μL mixture with the first hybridization reaction solution was mixed with 1.6x supplement TMAC to a final concentration of 1.6 M. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to a final concentration of 0.7 pmol / μL and 0.49 pmol / μL, respectively.

[0112] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 35 μL of the reaction solution after the first hybridization step, 15 μL of the PALSAR reaction solution was added to make a total of 50 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0113] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0114] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction solution was washed once with 1xPBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1xPBS-TP. 75 μL of 1xPBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0115] (6) Results The results of investigating the MnCl2 concentration during the polyA polymerase reaction of Target-2 (3'-terminal LNA) in water are shown in Figure 13. This is a graph showing the MFI and S / N ratio results when the Target-2 concentration was 0.1 fmol. Looking at the S / N ratio graph for Example 5, the S / N ratio increased when the MnCl2 concentration in the buffer was between 5 mM and 15 mM, and the S / N ratio value was several times higher than that of the general polyA polymerase reaction of Comparative Example 5 (when the buffer: MgCl2 included in the commercially available kit was used). From the above, it was found that when reacting Target-2 with polyA polymerase in water (buffer), it is possible to suppress background and increase the signal-to-noise ratio by adding MnCl2 to the buffer and adjusting the concentration within an appropriate range.

[0116] [Example 6] Regarding the types of modified nucleic acids at the 3'-end of the target oligonucleotide in the PAP Mn buffer (mouse 100% plasma matrix) (1) Poly(A) addition reaction (1-1) Preparation of samples Target-3, 4, 5, 6 (target oligonucleotides) with the sequences shown below were adjusted with mouse plasma (Charles River Japan) so that the final concentration would be 0 and 1 fmol. (Sequence of target-3) T(L)^G(L)^A(L)^g^c^t^g^a^c^t^t^g^a^T(L)^G(L)^5(E) (For the nucleotide sequence part, SEQ ID NO: 1 in the sequence listing) (Sequence of target-4) T(L)^G(L)^A(L)^g^c^t^g^a^c^t^t^g^a^T(L)^G(L)^5(m) (For the nucleotide sequence part, SEQ ID NO: 1 in the sequence listing) (Sequence of target-5) T(L)^G(L)^A(L)^g^c^t^g^a^c^t^t^g^a^T(L)^G(L)^5(M) (For the nucleotide sequence part, SEQ ID NO: 1 in the sequence listing) (Sequence of target-6) T(L)^G(L)^A(L)^g^c^t^g^a^c^t^t^g^a^T(L)^G(L)^c (For the nucleotide sequence part, SEQ ID NO: 1 in the sequence listing) "(E)" represents "BNA-NC (N-Me)". "(m)" represents "MOE". "(M)" represents "OMe". "^" indicates that it is "S(phosphorothioate)ylated".

[0117] (1-2) Preparation of the poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 6) Using the reagents included with the Poly(A) Tailing Kit (Invitrogen, product number: AM1350), a total of 35 μL of PAP Mix was prepared by mixing 8 μL of 5x E-PAP buffer (included in the kit), 4 μL of 10 mM ATP solution (included in the kit), 1.6 μL of E-PAP (included in the kit), and 21.4 μL of nuclease-free water.

[0118] (ii) Preparation of PAP Mix of the Present Invention (Example 6) To add polyA to the 3' end of Target-3, 4, 5, and 6, a PAP reaction was performed using a homemade 5x PAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 40 μL, with a final concentration of 1x PAP Mn buffer and 1 mM ATP. 3.2 U of polyA polymerase was also added. The 5x PAP Mn buffer was prepared so that the MnCl2 concentration in the 1x PAP Mn buffer was 22.5 mM.

[0119] (1-3) Poly(A) addition reaction 35 μL of PAP Mix and 5 μL of each target solution were added to a PCR plate and mixed (total 40 μL). The reaction solution was incubated at 37°C for 60 minutes using a thermal cycler, then heat-treated at 65°C for 10 minutes and then kept at 4°C.

[0120] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing) complementary to Targets 3, 4, 5, and 6 via NH2 modification at the 3' end (referred to as analyte capture beads).

[0121] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 65 μL mixture mixed with the PAP reaction solution was adjusted to 1.0x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above.

[0122] (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 25 μL of the first hybridization reaction solution was added and mixed (total 65 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0123] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 100 μL mixture with the first hybridization reaction solution was mixed with 1.0x supplement TMAC to a final concentration of 1.6 M. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to a final concentration of 0.35 pmol / μL and 0.245 pmol / μL, respectively.

[0124] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) After the hybridization step, 35 μL of the PALSAR reaction solution was added to 65 μL of the reaction solution to make a total of 100 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0125] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0126] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction mixture was washed once with 1x PBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1x PBS-TP. 75 μL of 1x PBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0127] (6) Results The results for the signals of Target-3 (3'-end BNA-NC (N-Me)), 4 (3'-end MOE), 5 (3'-end OMe), and 6 (3'-end DNA) in a 100% mouse plasma matrix are shown in Figure 14. This is a graph showing the SN ratios for each Target in Mn buffer (Example 6) and Mg buffer (Comparative Example 6). It was shown that for all Targets, the SN ratio was significantly higher in Mn buffer (Example 6) than in Mg buffer (Comparative Example 6). From the above, it was found that by using the Mn buffer of the present invention, any type of 3'-terminal modified nucleic acid can be detected with high sensitivity. Furthermore, it was found that even when the 3'-terminal nucleobase is DNA, it can be detected with high sensitivity by using the Mn buffer.

[0128] [Example 7-1] MnCl concentration during poly(A) addition reaction using poly(A) polymerase (2% mouse brain (20 mg / ml) matrix) (1) Poly(A) addition reaction (1-1) Preparation of mouse brain matrix A 100:1 mixture of Direct PCR Lysis Reagent (VIAGEN Biotec, product number 102-T) and Proteinase K solution (Kanto Chemical, product number 9034) was added to mouse brain samples (Charles River Biosciences Japan, product number P00041) at a concentration of 200 mg / mL (20% brain matrix). The mouse brains were homogenized in the solution using a Power Masher II (Nippi Biosciences, product number 891300) and then incubated at 55°C and 800 rpm for 60 minutes. After further heat treatment at 85°C and 800 rpm for 45 minutes, the samples were centrifuged at 25°C and 1600 × g for 15 minutes, and the supernatant was collected. The collected supernatant was diluted 10-fold with RNase-free water.

[0129] (1-2) Sample preparation The target oligonucleotide (Target-2; SEQ ID NO: 5 in the Sequence Listing) was adjusted in 2% mouse brain matrix to a final concentration of 0 or 0.1 fmol.

[0130] (1-3) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 7-1) Using the reagents included with the Poly(A) Tailing Kit (Invitrogen, product number: AM1350), a total of 10 μL of PAP Mix was prepared by mixing 4 μL of 5x E-PAP buffer (included in the kit), 2 μL of 10 mM ATP (included in the kit), 0.4 μL of E-PAP, and 3.6 μL of nuclease-free water.

[0131] (ii) Preparation of PAP Mix of the Present Invention (Example 7-1) To add poly(A) to the 3' end of Target-2, a PAP reaction was performed using a homemade 5x PAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 10 μL, with a final concentration of 1x PAP Mn buffer and 1 mM ATP. 0.8 U of poly(A) polymerase was also added. The 5x PAP Mn buffer was prepared so that the MnCl2 concentrations in the 1x PAP Mn buffer were 5, 7.5, 10, 12.5, 15, 17.5, and 20 mM, respectively, for the experiments.

[0132] (1-4) Poly(A) addition reaction 10 μL of PAP Mix and 10 μL of target-2 solution were added to a PCR plate and mixed (total 20 μL). The reaction solution was incubated at 37°C for 30 minutes using a thermal cycler (Eppendorf Mastercycler nexus GSX1), then heat-treated at 65°C for 10 minutes and then maintained at 4°C.

[0133] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing), which is partially complementary to Target-2, via an NH2 modification at the 3' end (referred to as analyte capture beads).

[0134] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 35 μL mixture mixed with the PAP reaction solution was adjusted to 1.6x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 15 μL of the first hybridization reaction solution was added and mixed (total 35 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0135] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 50 μL mixture with the first hybridization reaction solution was mixed with 1.6x supplement TMAC to a final concentration of 1.6 M. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to a final concentration of 0.7 pmol / μL and 0.49 pmol / μL, respectively.

[0136] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 35 μL of the reaction solution after the first hybridization step, 15 μL of the PALSAR reaction solution was added to make a total of 50 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0137] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0138] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction solution was washed once with 1xPBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1xPBS-TP. 75 μL of 1xPBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0139] (6) Results 15 is a graph showing the results of MFI and S / N ratio when the concentration of Target-2 (3'-terminal LNA) in a 2% mouse brain matrix (20 mg / mL) was 0.1 fmol. Looking at the S / N ratio graph for Example 7-1, the S / N ratio increased significantly when the MnCl2 concentration in the buffer was 10 to 17.5 M, and the S / N ratio value was higher than that of the general poly(A) polymerase reaction of Comparative Example 7-1 (when the buffer: MgCl2 included in the commercially available kit was used). From the above, it was found that when reacting Target-2 with poly(A) polymerase in a 2% mouse brain matrix, it is possible to suppress background and significantly increase the signal-to-noise ratio by adding MnCl2 to the buffer and adjusting the concentration within an appropriate range.

[0140] [Example 7-2] MnCl concentration during poly(A) addition reaction using poly(A) polymerase (4% mouse brain (40 mg / ml) matrix) (1) Poly(A) addition reaction (1-1) Preparation of mouse brain matrix A 100:1 mixture of Direct PCR Lysis Reagent (VIAGEN Biotec, product number 102-T) and Proteinase K solution (Kanto Chemical, product number 9034) was added to mouse brain samples (Charles River Biosciences Japan, product number P00041) at a concentration of 200 mg / mL (20% brain matrix). The mouse brains were homogenized in the solution using a Power Masher II (Nippi Biosciences, product number 891300) and then incubated at 55°C and 800 rpm for 60 minutes. After further heat treatment at 85°C and 800 rpm for 45 minutes, the mixture was centrifuged at 25°C and 1600 × g for 15 minutes, and the supernatant was collected. The collected supernatant was diluted 5-fold with RNase-free water.

[0141] (1-2) Sample preparation The target oligonucleotide (Target-2; SEQ ID NO: 5 in the Sequence Listing) was adjusted in 4% mouse brain matrix to a final concentration of 0 or 0.1 fmol.

[0142] (1-3) Preparation of poly(A) polymerase reaction solution (i) Preparation of PAP Mix using a commercially available kit (Comparative Example 7-2) Using the reagents included with the Poly(A) Tailing Kit (Invitrogen, product number: AM1350), a total of 10 μL of PAP Mix was prepared by mixing 4 μL of 5x E-PAP buffer (included in the kit), 2 μL of 10 mM ATP (included in the kit), 0.4 μL of E-PAP, and 3.6 μL of nuclease-free water.

[0143] (ii) Preparation of PAP Mix of the Present Invention (Example 7-2) To add poly(A) to the 3' end of Target-2, a PAP reaction was performed using a homemade 5x PAP Mn buffer. The reaction solution was prepared in a PCR plate with a total volume of 20 μL, with final concentrations of 1x PAP Mn buffer and 1 mM ATP. 0.8 U of poly(A) polymerase was also added. The 5x PAP Mn buffer was prepared so that the MnCl2 concentrations in the 1x PAP Mn buffer were 5, 7.5, 10, 12.5, 15, 17.5, and 20 mM, respectively, for the experiments.

[0144] (1-4) Poly(A) addition reaction 10 μL of PAP Mix and 10 μL of target-2 solution were added to a PCR plate and mixed (total 20 μL). The reaction solution was incubated at 37°C for 30 minutes using a thermal cycler (Eppendorf Mastercycler nexus GSX1), then heat-treated at 65°C for 10 minutes and then maintained at 4°C.

[0145] (2) Capture (hybridization) of poly(A)-tagged oligonucleotide to capture probe (2-1) Preparation of capture probe Luminex MicroPlex TM Microspheres (Region No.: 43, Product No.: LC10043-01) were prepared by attaching a nucleic acid probe CP-1 (SEQ ID NO: 2 in the Sequence Listing), which is partially complementary to Target-2, via an NH2 modification at the 3' end (referred to as analyte capture beads).

[0146] (2-2) Composition of the 1st hybridization reaction solution The final concentration of the 35 μL mixture mixed with the PAP reaction solution was adjusted to 1.6x supplement (10x supplement; [500 mM Tris-HCl (pH 8.0), 40 mM EDTA (pH 8.0), 8% N-lauroylsarcosine sodium]), 1.1 M TMAC, and 500 beads for capturing the substance to be measured prepared in (2-1) above. (2-3) 1st hybridization reaction To the oligonucleotide solution after the poly(A) addition reaction, 15 μL of the first hybridization reaction solution was added and mixed (total 35 μL). The mixture was incubated at 42°C for 1 hour and then kept at 4°C.

[0147] (3) Detection complex formation reaction (autoagglutination reaction / pulser reaction) (3-1) Preparation of PALSAR reaction solution The 50 μL mixture with the first hybridization reaction solution was mixed with 1.6x supplement TMAC to a final concentration of 1.6 M. HCP-1 (SEQ ID NO: 3) and HCP-2 (SEQ ID NO: 4), both biotin-labeled at the 5' end, were used as a pair of self-aggregating probes. HCP-1 and HCP-2 were added to a final concentration of 0.7 pmol / μL and 0.49 pmol / μL, respectively.

[0148] (3-2) Detection complex formation reaction (autoagglutination reaction / pulser reaction) To 35 μL of the reaction solution after the first hybridization step, 15 μL of the PALSAR reaction solution was added to make a total of 50 μL, and the mixture was reacted at 42°C for 1 hour and then kept at 4°C.

[0149] (4) Separation process (cleaning process) After the detection complex formation reaction, the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping. Then, 1x PBS-TP [1x PBS (Nippon Gene), 0.02% Tween 20 (CALBIOCHEM), 1.5 ppm ProClin 300 (SIGMA)] was added, and the mixture was centrifuged at 1000 × g for 1 minute at room temperature to precipitate the beads, and the supernatant was removed by snapping.

[0150] (5) Detection step (fluorescence detection) After the complex formation reaction, the reaction solution was washed once with 1xPBS-TP, and then 50 μL of the detection reagent [SA-PE (Prozyme) 5 μg / mL] was added. The mixture was left to stand for 10 minutes at 25°C in the dark, and then washed twice with 1xPBS-TP. 75 μL of 1xPBS-TP was then added, and the fluorescence from the beads and SA-PE complex was measured using a Luminex System (Luminex) to detect the signal of the substance to be measured.

[0151] (6) Results 16 is a graph showing the MFI and SN ratio results when Target-2 (3'-terminal LNA) was used at a concentration of 0.1 fmol in a 4% mouse brain (40 mg / ml) matrix. Looking at the SN ratio graph for Example 7-2, the SN ratio significantly increased when the MnCl2 concentration in the buffer was 10 to 20 mM, resulting in a higher SN ratio than the general poly(A) polymerase reaction of Comparative Example 7-2 (when the buffer provided with the commercially available kit: MgCl2 was used). From the above, it was found that when reacting Target-2 with poly(A) polymerase in a mouse 4% brain matrix, it is possible to suppress background and significantly increase the signal-to-noise ratio by adding MnCl2 to the buffer and adjusting the concentration within an appropriate range. [Industrial Applicability]

[0152] According to the present invention, it is possible to accurately measure drug concentrations in animal or human biological samples administered with drugs in pharmacokinetic / pharmacodynamic (PK / PD) screening tests in the exploratory stage of drug development, such as artificial nucleic acids and nucleic acid drugs, safety tests in the non-clinical stage, pharmacological tests and pharmacokinetic tests, and in the clinical stage.

Claims

1. A method for adding polyA to the 3' end of a target oligonucleotide in a sample containing a biological sample, wherein the target oligonucleotide is an oligonucleotide or DNA having a chemically modified nucleobase at the 3' end, the method comprising the steps of: (i) Mn 2+ contacting the target oligonucleotide in the sample with polyA polymerase in the presence of 10 mM to 30 mM Mn 2+ A process carried out in a solution comprising:

2. A method for recovering a target oligonucleotide in a sample containing a biological sample, wherein the target oligonucleotide is an oligonucleotide or DNA having a chemically modified nucleobase at its 3' end, the method comprising the steps of: (i) Mn 2+ a step of contacting a target oligonucleotide in a sample with poly A polymerase in the presence of 10 mM to 30 mM Mn 2+ a step carried out in a solution comprising (ii) contacting the sample with a capture probe for capturing the target oligonucleotide and allowing hybridization; wherein the capture probe is (A) a nucleic acid probe; (B) a solid phase or an adapter or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) recovering the hybridization product contained in the sample.

3. A method for detecting a target oligonucleotide in a sample containing a biological sample, wherein the target oligonucleotide is an oligonucleotide or DNA having a chemically modified nucleobase at its 3' end, the method comprising the steps of: (i) Mn 2+ a step of contacting a target oligonucleotide in a sample with poly A polymerase in the presence of 10 mM to 30 mM Mn 2+ a step carried out in a solution comprising (ii) contacting the sample with a capture probe for capturing the target oligonucleotide and allowing hybridization; wherein the capture probe is (A) a nucleic acid probe; (B) a solid phase or an adapter or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) recovering the hybridization product contained in the sample; (iv) detecting the recovered hybridization product.

4. A method for detecting a target oligonucleotide in a sample containing a biological sample, wherein the target oligonucleotide is an oligonucleotide or DNA having a chemically modified nucleobase at its 3' end, the method comprising the steps of: (i) Mn 2+ a step of contacting a target oligonucleotide in a sample with poly A polymerase in the presence of 10 mM to 30 mM Mn 2+ a step carried out in a solution comprising (ii) contacting the sample with a capture probe for capturing the target oligonucleotide and allowing hybridization; wherein the capture probe is (A) a nucleic acid probe; (B) a solid phase or an adapter or linker adjacent to the 3'-terminal or 5'-terminal nucleotide of the nucleic acid probe; The nucleic acid probe comprises the entire sequence or a partial sequence of the target oligonucleotide. (iii) contacting a pair of self-aggregating signal amplification probes consisting of first and second oligonucleotides with the hybridization product contained in the sample to form a complex between the hybridization product and an oligonucleotide polymer formed by self-aggregation of the first and second oligonucleotides; (iv) detecting the complex.

5. The detection method according to claim 4 , wherein at least one of the first and second oligonucleotides comprises a poly-T sequence.

6. the complex formation step (iv) includes a step of contacting with an assist probe, The detection method according to claim 4 or 5, wherein the assist probe comprises a poly-T sequence and a sequence complementary to the entire sequence or a partial sequence of at least one of the first and second oligonucleotides.

7. the first oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z or a nucleic acid region Z containing a poly-T sequence; The detection method according to any one of claims 4 to 6, wherein the second oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z or a nucleic acid region Z' containing a polyA sequence.

8. A method according to any one of claims 1 to 7, wherein the sample containing the biological sample is a blood-derived component or a brain-derived component containing the target oligonucleotide.

9. The method according to any one of claims 1 to 8, wherein the oligonucleotide having a chemically modified 3'-terminal nucleobase is LNA, BNA, phosphorothioate, morpholino oligo, boranophosphate, 2'-O-methylated RNA (2'-OMe), 2'-O-methoxyethylated RNA (2'-MOE), or 2'-F.

10. The method according to claim 9, wherein the oligonucleotide having a chemically modified 3'-terminal nucleobase is LNA, BNA, MOE, or OMe.

11. A kit for detecting a target oligonucleotide in a sample containing a biological sample, comprising: the kit comprising: an oligonucleotide or DNA having a chemically modified 3'-terminal nucleobase; (1) Poly(A) polymerase (2) Mn 2+ A reaction buffer solution containing the above in a final concentration of 10 mM to 30 mM in the poly A polymerase reaction solution. (3) A capture probe for capturing the target oligonucleotide (4) A pair of self-aggregating probes consisting of a first and a second oligonucleotide

12. the first oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X, a nucleic acid region Y, and a nucleic acid region Z or a nucleic acid region Z containing a poly-T sequence; The kit according to claim 11, wherein the second oligonucleotide comprises, in order from the 5' end, at least a nucleic acid region X' complementary to the nucleic acid region X, a nucleic acid region Y' complementary to the nucleic acid region Y, and a nucleic acid region Z' complementary to the nucleic acid region Z or a nucleic acid region Z' comprising a polyA sequence.

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