Hybridization of all-LNA oligonucleotides

JP2026001091A5Pending Publication Date: 2026-03-17F HOFFMANN LA ROCHE & CO AG
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Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-09-25
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing methods for forming duplexes using single-stranded oligonucleotides composed entirely of locked nucleic acid (LNA) monomers face unpredictability and secondary structure formation issues, making them unsuitable for applications like immunoassays without prior denaturation steps.

Method used

A method for selecting and providing pairs of single-stranded LNA oligonucleotides capable of forming antiparallel duplexes in aqueous solutions at ambient temperatures without denaturation, using a method that involves mixing equimolar amounts of oligonucleotides with complementary sequences and detecting duplex formation.

Benefits of technology

Enables stable and specific duplex formation under non-denaturing conditions, suitable for immunoassays, without prior denaturation, ensuring rapid and irreversible binding of analyte-specific capture receptors.

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Abstract

A method for identifying and providing binding pairs of single-stranded all-LNA oligonucleotides.SOLUTION: The present report demonstrates that single-stranded (ss -) To provide a method for hybridizing an oligonucleotide. This document presents hybridization experiments with pairs of fully complementary ss-oligonucleotides that are unable to form duplexes within a given time interval. The present report provides methods for identifying such incompatible oligonucleotide pairs. In another aspect, the present report provides a pair of complementary ss-oligonucleotides capable of rapid duplex formation. This report also provides methods for identifying and selecting compatible oligonucleotide pairs. In yet another aspect, the present report provides the use of a pair of interchangeable oligonucleotides as binding partners in a binding assay, such as a receptor-based assay.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] This report relates to the hybridization of single-stranded (ss-) oligonucleotides composed entirely of locked nucleic acid (LNA) monomers. This document presents hybridization experiments using pairs of perfectly complementary ss-oligonucleotides that are unable to form duplexes within a given time interval. This report provides methods for identifying such incompatible oligonucleotide pairs. In another aspect, this report provides pairs of complementary ss-oligonucleotides capable of rapid duplex formation. This report also provides methods for identifying and selecting compatible oligonucleotide pairs. In yet another aspect, this report provides the use of compatible oligonucleotide pairs as binding partners in binding assays, e.g., immunoassays. In certain embodiments, it is discussed that compatible LNA oligonucleotide pairs are used to immobilize analyte-specific capture molecules in assays for detecting or quantifying an analyte in a sample. [Background technology]

[0002] The focus is on common biochemical applications where the specific interaction and eventual interconnection of the two partners of a binding pair plays a functional role due to molecular recognition. Very frequently, for example, immunoassays use a biotin:(streptavidin) binding pair to immobilize an analyte-specific capture receptor to a solid phase. This report conceptualizes, describes, and details applications such as immunoassays that use alternative binding pairs. Specifically, an alternative binding pair consisting of two single-stranded LNA oligonucleotides capable of forming a duplex upon hybridization provides a technological alternative to the biotin:(streptavidin) binding pair.

[0003] This disclosure focuses on the means by which capture receptors are tethered to solid phases during immunoassays. In particular, this disclosure focuses on binding pairs that facilitate the immobilization of analyte-specific capture receptors in the presence of an analyte-containing sample and / or can tether detection complexes after the complex has formed. Binding pairs in immunoassays must have specific technical characteristics. First, the interaction between the two binding partners must be specific. Furthermore, the kinetics of binding partner bond formation must ensure rapid speed at which the two separate partners of the binding pair interact and ultimately associate, i.e., bind, with each other. Furthermore, it is desirable that the bond between the two binding partners be stable once formed. Furthermore, for immunoassay applications, the binding partners must be suitable for chemical conjugation with other molecules, such as analyte-specific receptors or solid surfaces.

[0004] In immunoassays, it is important to understand that receptors, and typically the analytes being detected, retain their conformation and function only under specific conditions. These conditions may vary depending on the specific receptor or analyte under consideration; therefore, the receptor molecule or analyte may tolerate only limited deviation from these conditions. Such conditions include, to name just a few, a buffered aqueous solution having a pH ranging from about pH 6 to about pH 8, one or more dissolved salts, one or more helper substances (e.g., selected from stabilizers, oxygen scavengers, preservatives, and detergents), a total amount of solutes ranging from about 200 to about 500 mosm / kg, the absence of denaturing compounds such as certain non-aqueous solvents, helix-destabilizing agents such as formamide and chaotropes, and a preferred storage and / or assay temperature ranging from 0°C to 40°C. Essential, however, are any components and / or conditions that may cause denaturation of the analyte being assayed or the analyte-specific receptor used in a particular assay.

[0005] The separate partners of the binding pair are capable of binding to a solid phase via conjugation, particularly to a capture molecule or receptor. They must be suitable for conjugation to a surface without losing their ability to specifically associate and bind to each other. For conjugation in an immunoassay, each separate binding partner of the alternative binding pair must be functional under the assay conditions. The same reasoning applies to all other materials required for conjugation with binding partners, including, but not limited to, the analyte, the carrier material, the solid phase, and other substances or compounds that may be present during the course of the assay.

[0006] Single-stranded oligonucleotides with complementary sequences, i.e., oligonucleotides capable of forming a duplex upon hybridization, have previously been proposed as binding pair means for linking macromolecules or attaching molecules to solid phases. European Patent No. 0488152 discloses heterogeneous immunoassays using a solid phase in which an analyte-specific capture antibody is immobilized by a nucleic acid duplex linking the antibody to the solid phase. In embodiments, one hybridized oligonucleotide is attached to the antibody and the complementary oligonucleotide is attached to the solid phase, thereby forming a linked duplex. Similar disclosures are provided in documents EP0698792, WO1995 / 024649, WO1998 / 029736, and EP0905517. WO 2013 / 188756 discloses a method for flow cytometry and a composition comprising an antibody bound to a first oligonucleotide, an oligosphere bound to a second oligonucleotide having the same sequence as the first oligonucleotide, and an oligonucleotide probe having a label and a third sequence complementary to the first and second oligonucleotides. In certain embodiments, the oligosphere is magnetic. This document reports the specific use of the oligosphere as a reference for standardization procedures.

[0007] Modified oligonucleotides, such as peptide nucleic acids (PNAs) and locked nucleic acids (LNAs), have been primarily explored for biochemical applications. LNAs contain a methylene linker between the 2'-oxygen and 4'-carbon of the ribose moiety, thereby locking the sugar into a C3-endo conformation, hence the name "locked nucleic acid." This chemical modification confers nuclease resistance, as well as higher affinity and specificity for oligonucleotide targets, in applications involving duplex formation upon hybridization of LNA monomer-containing oligonucleotides with complementary target sequences. LNA monomers are provided as 2'-O,4'-C-methylene-(D-ribofuranosyl)nucleoside monomers (Singh SK et al., Chem. Commun. 4 (1998) 455-456; Koskin AA et al., Tetrahedron 54 (1998) 3607-3630; Wengel J. Acc. Chem. Res. 32 (1999) 301-310). Furthermore, WO 1998 / 39352 discloses locked nucleic acid (LNA) structures. Chemical synthesis can be used to synthesize single strands consisting solely of LNA nucleoside analogue monomers ("all-LNA").

[0008] Mixed DNA-LNA oligonucleotides containing DNA and LNA monomers exhibit significantly improved thermal stability when hybridized to complementary DNA and RNA. In fact, compared to other synthetic high-affinity nucleic acid mimics, such as peptide nucleic acid (PNA), hexitol nucleic acid (HNA), and 2'-fluoro-N3'-phosphoramidate, LNA exhibits exceptional binding affinity. The hybridization kinetics of LNA-DNA mixed oligonucleotides, also known as "mixmers," have been reported by Christensen et al. (Biochem J 354 (2001) 481-484). The crystal structure of an "all locked" nucleic acid duplex consisting of two complementary ss-oligonucleotides, each consisting of seven LNA monomers, was reported by Eichert A. et al. (Nucleic Acids Research 38 (2010) 6729-6736).

[0009] In most cases, single-stranded mixed LNA / DNA oligonucleotides (LNA / DNA and LNA / RNA, i.e., mixer single-stranded). So far, there have been few reports on the characterization of hybridizing single-stranded oligonucleotides made only from LNA monomers (i.e., "all-LNA" single-stranded oligonucleotides), especially by Koshkin AA et al. (J Am Chem So 120 (1998) 13252-13253) and Mohrle BP et al. (Analyst 130 (2005) 1634-1638). Eze NA et al. (Biomacromolecules 18 (2017) 1086-1096) reported that the binding rate from DNA / LNA mixer and DNA probe was 10 5 M -1 s -1 reported that the hybridization rate in solution was less than 100%. According to these authors, the hybridization rate in solution does not appear to be affected by the replacement of one or more DNA monomers with LNA monomers, considering one-third of the monomers available for replacement. Childs JL (PNAS 99 (2002) 11091-11096) reported an all-LNA octamer (TACCTTTC) capable of concentration-dependently inhibiting self-splicing of the C. albicans group I intron in vitro. To anneal the octamer to the target RNA, the octamer was heated to a temperature of 68°C and then cooled to 37°C. The annealed LNA oligomer was found to disrupt the tertiary structure of the intron, thereby affecting its biological function.

[0010] WO 2000 / 066604 and WO 2000 / 056746 disclose particular stereoisomers of LNA nucleoside monomers.

[0011] WO 1999 / 14226 suggests the use of oligonucleotides with LNA monomers in the construction of affinity pairs for attachment to molecules of interest and solid supports. However, it is also known in the art that hybridization of complementary all-LNA single strands poses technical problems. The LNA-related user manual written by Jesper Wengel and published by Exiqon refers to the tendency of single-stranded LNA-containing oligonucleotides to form intramolecular LNA:LNA duplexes, also known as self-hybridization. Therefore, this document considers secondary structure as a limiting factor in applications, i.e., a technical obstacle ("LNA Hybridization" in: "Locked Nucleic Acid Technology"). TM :A brief overview'', retrieved on May 8, 2019, as an internet download (electronic file https: / / www.exiqon.com / ls / Documents / Scientific / Locked%20Nucleic%20Acid%20Technology%20a%20brief%20overview.pdf). Therefore, thermodynamic analysis of hybridization of oligonucleotide analogs consisting only of LNA is largely empirical, and sequence prediction of hybridizing pairs of complementary all-LNA oligomers in the absence of a prior denaturation step (e.g., heating prior to hybridization to remove intramolecular secondary structures) does not appear to be possible so far.

[0012] Predictions regarding the thermodynamic behavior of LNA-containing oligonucleotides are aided by a dedicated computer program referenced by Tolstrup N. et al. (Nucleic Acids Research 31 (2003) 3758-3762). However, this report explicitly mentions that the prediction error for LNA oligonucleotides is higher not because of a lack of experimental data, but because the properties of these LNA oligonucleotides are more complex. Furthermore, the disclosed algorithm is not expected to provide guidance in the design of all complementary pairs of LNA oligonucleotides. The same conclusion is reached in a more recent publication reporting on the molecular thermodynamics of LNA:LNA base pairs in DNA / LNA mixer oligonucleotides (Fakhfakh K. et al. American Institute of Chemical Engineers Journal). al 61(2015)2711-2731.

[0013] Specifically, this report shows that complementary single-stranded oligonucleotides consisting only of LNA monomers may be practically unpredictable with respect to their ability to form double-stranded molecules with Watson-Crick base pairing. Therefore, in order to provide a technically suitable alternative to the biotin:(strep)abdine binding pair in applications that specifically use such molecular recognition, technical means are needed to select and provide alternative binding pairs, and for the purposes of this report, it is desirable that such binding pairs consist of complementary single-stranded oligonucleotides containing only LNA monomers. - The oligonucleotide pair must contain complementary sequences, which must be capable of duplex formation and Watson-Crick base pairing. - Under the conditions of storage and routine biochemical applications in molecular recognition, the oligonucleotide pair must not require any denaturing treatment before the actual use of the binding pair in an application, which means the technical requirement that each oligonucleotide of the binding pair must not contain any secondary structures formed intramolecularly or intermolecularly that may substantially reduce the ability of each oligonucleotide to align with its binding partner, i.e., the complementary oligonucleotide or complementary sequence therein, and form a duplex. - Under the conditions of routine biochemical applications, the single-stranded pair must be able to form Watson-Crick paired oligonucleotide duplexes sufficiently rapidly while simultaneously ensuring sufficient specificity in molecular recognition. The duplex formed by the pair of complementary oligonucleotides is sufficiently stable and preferably formed irreversibly in the course of a given biochemical application that employs molecular recognition of the binding pair.

[0014] Therefore, the general objective of this report is to identify and provide single-stranded all-LNA oligonucleotide binding pairs that can hybridize without a prior denaturation step, thereby forming duplex molecules through Watson-Crick base pairing as binding pairs in analyte detection assays under appropriate assay conditions. In other words, we seek binding pairs that are capable of duplex formation under non-denaturing conditions, more specifically, under conditions compatible with the function of analyte-specific receptors in analyte detection assays (such as, but not limited to, immunoassays). Importantly, there is a need for single-stranded all-LNA oligonucleotides that can be stored under ambient conditions or even refrigerated without forming inter- or intramolecular secondary structures that could inhibit hybridization and duplex formation of complementary oligonucleotides. There is also a need for single-stranded all-LNA oligonucleotides that can hybridize to each other without prior denaturation under assay conditions, such as in aqueous solution at ambient temperature (e.g., room temperature). The absence of denaturation specifically refers to the discontinuous process of removing any inter- or intra-molecular secondary structure that may interfere with hybridization and duplex formation of complementary oligonucleotides used as binding pairs in analyte detection assays. Summary of the Invention

[0015] The present disclosure, in a first aspect relative to all other aspects and embodiments disclosed herein, unexpectedly provides a pair of separate ss-oligonucleotides, each consisting of 5 to 15 LNA monomers, and the separate ss-oligonucleotides capable of forming an antiparallel duplex with each other in aqueous solution in the absence of denaturing conditions prior to or during duplex formation. The present disclosure further discloses another embodiment of the first aspect, which is a pair of separate ss-oligonucleotides, each consisting of 5 to 15 LNA monomers, and the separate ss-oligonucleotides capable of forming an antiparallel duplex with each other comprising 5 to 15 consecutive base pairs in aqueous solution in the absence of denaturing conditions prior to or during duplex formation. The present report further discloses another embodiment of the first aspect, which is a pair of separate ss-oligonucleotides, each consisting of 5 to 15 LNA monomers, which are capable of forming an antiparallel duplex containing 5 to 7 consecutive base pairs with each other in aqueous solution in the absence of denaturing conditions before or during duplex formation. The present report further discloses yet another embodiment of the first aspect, which is a pair of separate ss-oligonucleotides, each consisting of 5 to 7 LNA monomers, which are capable of forming an antiparallel duplex containing 5 to 7 consecutive base pairs with each other in aqueous solution in the absence of denaturing conditions before or during duplex formation.

[0016] In a second aspect, with respect to all other aspects and embodiments disclosed herein, the present disclosure provides a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes having 5 to 15 consecutive base pairs in aqueous solution at a temperature between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 5 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 5 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0017] The present disclosure provides, in a second aspect with respect to all other aspects and embodiments disclosed herein, a liquid composition comprising an aqueous solvent and a binding pair consisting of a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, Each oligonucleotide comprises 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and the nucleobase of the monomer is a first nucleotide of the first oligonucleotide. forming a second nucleobase sequence of the base sequence and a second oligonucleotide; the first nucleobase sequence and the second nucleobase sequence are selected such that the first oligonucleotide and the second oligonucleotide can form an antiparallel duplex of 5 to 15 consecutive Watson-Crick base pairs at a temperature of 0°C to 40°C; The above binding pairs provide a composition obtainable by the method according to the first aspect disclosed herein. DETAILED DESCRIPTION OF THE INVENTION

[0018] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.

[0019] The articles "a" and "an" are used herein to refer to one or to more than one (i.e., to at least one) of the grammatical object of the article. By way of example, "an item" means one item (one single item) or more than one item (plural items). When "a" refers to a member that is part of a two-member pair, "a" can refer to one member of the pair or both members of the plurality, i.e., one member or both members of the pair as a whole.

[0020] It will be further understood that as used herein, the terms "include" and / or "have" specify the presence of stated features, items, steps, operations, elements, and / or components, but do not exclude the presence or addition of at least one other feature, item, step, operation, element, component, and / or group thereof. Similarly, "with" also specifies the presence of stated features, etc.

[0021] As used herein, the terms "comprising," "contains," "containing," "includes," "including," "has," "having," or any other variation thereof, are intended to include a non-exclusive inclusion. For example, a process, method, article, or apparatus that includes a list of features is not necessarily limited to only those features and may include other features not expressly listed or inherent to such process, method, article, or apparatus. In contrast, "consists of," "consisting of," or any other variation thereof, specifies an exclusive list of features. In particular, an exclusive list of a given feature is understood to represent a particular embodiment of the non-exclusive list of those features.

[0022] As used herein, unless expressly stated to the contrary, "or" refers to an inclusive disjunction rather than an exclusive disjunction. For example, condition A or B is satisfied by any one of the following: A is true (or present) and B is false (or absent), A is false (or absent) and B is true (or present), or A and B are both true (or present).

[0023] As used herein, "substantially," "relatively," "generally," "usually," "about," and "approximately" are relative modifiers intended to indicate acceptable variations from the property so modified. They are not intended to be limited to the absolute value or property that they modify, but rather to approach or approximate such physical or functional property. Unless otherwise indicated, the term "about" in combination with a numerical value n ("about n") is understood to indicate a value x within the interval given by the numerical value of the value ±5%, i.e., n-0.05*n≦x≦n+0.05*n. When the term "about" in combination with a numerical value n describes an embodiment of the invention, unless otherwise indicated, the value of n is closest to the value of the numerical value. preferable.

[0024] In this detailed description, references to "one embodiment," "an embodiment," or "in embodiments" mean that the referenced feature is included in at least one embodiment of the technology in all its aspects according to the present disclosure. Furthermore, individual references to "one embodiment," "an embodiment," or "embodiments" do not necessarily refer to the same embodiment. However, such embodiments are not mutually exclusive unless otherwise stated and unless readily apparent to one of ordinary skill in the art. Thus, the technology in all its aspects according to the present disclosure may include any various combinations and / or integrations of the embodiments described herein.

[0025] The term "solid phase" as used herein refers to a wide variety of materials, including solids, semi-solids, gels, films, membranes, meshes, felts, composites, particles, papers, and the like, commonly used by those skilled in the art to capture molecules and separate molecules. Solid phases can be non-porous or porous. Suitable solid phases include those developed and / or used as solid phases in solid phase binding assays. See, for example, Immunoassay, E.P. Dianiandis and T.K. Christopoulos, incorporated by reference. eds., Academic Press: New York, 1996. Examples of suitable solid phases include membrane filters, cellulose-based papers, beads (including polymeric, latex, and paramagnetic particles), glass, silicon wafers, microparticles, nanoparticles, TentaGels, AgroGels, PEGA gels, SPOCC gels, and multiwell plates. For example, Leon et al.,Bioorg.Med.Chem.Lett.8:2997,1998;Kessler et al.,Agnew.Chem.Int.Ed.40:165,2001;Smith et al.,J.Comb.Med.1:326,1999;Orain et al.,Tetrahedron See Lett.42:515,2001;Papanikos et al., J.Am.Chem.Soc.123:2176,2001;Gottschling et al.,Bioorg.Med.Chem.Lett.11:2997,2001.

[0026] The surface of such solid phases can be modified to provide binding sites by, for example, bromoacetylation, silylation, addition of amino groups using nitric acid, and attachment of intermediate proteins, dendrimers, and / or star polymers. This list is not meant to be limiting, and any method known to one of skill in the art can be used.

[0027] Particle-based analyte-specific binding assays are widely used, for example, in certain turbidimetric assays, certain latex agglutination assays, and many highly sensitive sandwich-type assays employing a wide variety of labeling or detection techniques.

[0028] Particles are an embodiment of a solid phase. As used herein, "particle" refers to a small, localized object that can be attributed physical properties such as volume, mass, or average size. Thus, microparticles can be symmetrical, spherical, essentially spherical or spherical, or irregular, asymmetric shapes or forms. The size of particles contemplated by the present invention can vary. In one embodiment, microparticles are used that are spherical in shape, e.g., have diameters in the nanometer and micrometer range. In one embodiment, microparticles used in methods according to the present disclosure have diameters between 50 nanometers and 20 micrometers. In a further embodiment, microparticles have diameters between 100 nm and 10 μm. In one embodiment, microparticles used in methods according to the present disclosure have diameters between 200 nm and 5 μm or 750 nm and 5 μm. Has.

[0029] The microparticles defined herein above can comprise or consist of any suitable material known to those skilled in the art; for example, they can comprise, consist of, or consist essentially of inorganic or organic materials. Typically, they can comprise, consist of, or consist essentially of metals or metal alloys, or organic materials, or can comprise, consist of, or consist essentially of carbohydrate elements. Examples of possible materials for the microparticles include agarose, polystyrene, latex, polyvinyl alcohol, silica, and ferromagnetic metals, alloys, or composition materials. In one embodiment, the microparticles are magnetic or ferromagnetic metals, alloys, or compositions. In further embodiments, the material can have specific properties, such as hydrophobicity or hydrophilicity. Such microparticles typically disperse in aqueous solutions and possess a small negative surface charge to separate the microparticles and avoid nonspecific clustering.

[0030] In one embodiment of the present invention, the microparticles are paramagnetic microparticles, and separation of such particles in the measurement methods according to the present disclosure is facilitated by magnetic force. Magnetic force is applied so that the paramagnetic or magnetic particles are drawn out of the solution / suspension, the liquid of the solution / suspension can be removed, and the particles can be, for example, washed, while retaining them as desired. The microparticles used in the methods according to the present invention are coated with a first member of a specific binding pair.

[0031] In general, the term "receptor" refers to any compound or composition capable of recognizing a specific spatial and polar organization of a target molecule, i.e., an epitope site of an analyte. Thus, the term "analyte-specific receptor" referred to herein includes an analyte-specific reactant capable of binding to or forming a complex with an analyte, including, but not limited to, an antibody, particularly a monoclonal antibody or antibody fragment. Such a receptor can function, for example, as an analyte catcher to immobilize the analyte. The epitope recognized by the antibody binds, followed by the binding of a labeled antibody specific for another epitope of the analyte. Other receptors are known to those skilled in the art. The specific uses of various receptors in receptor-based assays will be understood by those skilled in the art with reference to the present disclosure.

[0032] An "analyte" can be any molecule that can be bound by an analyte-specific receptor. In one embodiment, an analyte within the context of this disclosure is a nucleic acid (DNA or RNA) molecule, a peptide, a protein, a drug molecule, a hormone, or a vitamin. In one embodiment, an analyte within the context of this disclosure is a peptide, a protein, a drug molecule, a hormone, or a vitamin. In another embodiment, an analyte includes several variants that are different genotypes, isozymes, isoforms, serotypes, or mutants of the analyte. In one embodiment, the analyte is an antigen of an infectious pathogen. Examples of infectious pathogens are viral, bacterial, and protozoan pathogens that infect humans. In one embodiment, the analyte is a viral antigen, and in one embodiment, a hepatitis virus antigen or a human retrovirus antigen. In one embodiment, the analyte is a hepatitis C virus, a hepatitis B virus, or an HIV antigen.

[0033] In the context of the present disclosure, the term "antibody" refers to an intact immunoglobulin molecule, specifically IgM, IgD, IgE, IgA or IgG, as well as an Fab fragment or V L -, V H - or CDR regions. Furthermore, the term relates to modified and / or altered antibodies such as chimeric antibodies and humanized antibodies. The term also relates to modified or altered monoclonal or polyclonal antibodies, as well as recombinantly or synthetically produced / synthesized antibodies. The term also relates to intact antibodies and antibody fragments / portions thereof such as separated light and heavy chains, Fab, Fab / c, Fv, Fab', F(ab')2, etc. "Antibody" refers to a fragment or fragments of an antibody that are amplified by a nucleotide sequence. The term "antibody" also includes antibody derivatives, diabodies, and antibody constructs such as single chain Fv (scFv), bispecific scFv, or antibody fusion proteins.

[0034] A "detectable label" includes a moiety that is detectable or can be made detectable. Those skilled in the art know a label as a compound or composition that can be combined with physical activation (or excitation) or a chemical reagent to provide a detectable signal, and can be modified to decrease or increase a particular signal.

[0035] Specific embodiments of detectable labels include labels that are detectable by many commercially available instruments that utilize electrochemiluminescence (ECL) for analytical measurements. Species that can be induced to emit ECL (ECL-active species) are used as ECL labels. Examples of ECL labels include i) organometallic compounds derived from Group VIII noble metals, including organometallic compounds such as Ru- and Os-containing tris-bipyridyl-ruthenium (RuBpy) moieties, and ii) luminol and related compounds. Species involved in ECL labeling in the ECL process are referred to herein as ECL coreactants. Commonly used coreactants include tertiary amines for ECL from RuBpy (see, e.g., U.S. Pat. No. 5,846,485), oxalates, and persulfates, and hydrogen peroxide for ECL from luminol (see, e.g., U.S. Pat. No. 5,240,863). The light generated by ECL labels can be used as a reporter signal in diagnostic procedures (Bard et al., U.S. Pat. No. 5,238,808). For example, ECL labels can be covalently attached to binding reagents such as antibodies, nucleic acid probes, receptors, or ligands, and the participation of the binding reagent in a binding interaction can be monitored by measuring the ECL released from the ECL label. Alternatively, the ECL signal from an ECL-active compound can indicate the chemical environment (see, e.g., U.S. Pat. No. 5,641,623, which describes an ECL assay that monitors the formation or destruction of an ECL coreactant).For more information on ECL, ECL labels, ECL assays, and equipment for performing ECL assays, see U.S. Patent Nos. 5,093,268, 5,147,806, 5,324,457, 5,591,581, 5,597,910, 5,641,623, 5,643,713, 5,679,519, 5,705,402, 5,846,485, 5,866,434, 5,786,141, and 5,731,142. ,147, U.S. Patent No. 6,066,448, U.S. Patent No. 6,136,268, U.S. Patent No. 5,776,672, U.S. Patent No. 5,308,754, U.S. Patent No. 5,240,863, U.S. Patent No. 6,207,369 and U.S. Patent No. 5,589,136, as well as WO 99 / 63347, WO 00 / 03233, WO 99 / 58962, WO 99 / 32662, WO 99 / 14599, WO 98 / 12539, WO 97 / 36931 and WO 98 / 57154.

[0036] In line with common knowledge in the field of biochemistry, a "binding pair" is understood to be a set of two different partners, i.e., a first partner or partner species or partner species and a second partner or partner species or partner species, or the first and second members of the pair, or the first and second species. Under non-denaturing conditions, a partner can specifically recognize a partner of another species at the molecular level. Upon recognition, the partners of the binding pair form a stable, non-covalent intermolecular bond connecting the first and second partners. When selecting partner species to create a binding pair, it is important that each partner does not form a bond with another partner of the same species. That is, no stable intramolecular bond should be formed between two first partners or two second partners.

[0037] Throughout this document, a punctuation mark (":") between a first and second member of a binding pair can be used to indicate a specific bond between the first and second members of the binding pair, or the ability to form such a specific bond, and is therefore represented as "member 1:member 2." Typically, the first and second members belong to different species, i.e., the first and second members are not the same compound. Thus, depending on the context, "member 1:member 2" can mean that member 1 and member 2 can form a binding pair, and that member 1 can specifically recognize and bind to member 2. Alternatively, depending on the context, "member 1:member 2" can mean that member 1 and member 2 are a bound pair. Furthermore, unless otherwise specified, it is understood that a member includes not only a member as an isolated compound, but also a member bound to, e.g., forming part of, another entity. As an example, the "(strept)avidin:biotin" ("biotin:(strept)avidin") binding pair is fully known to those skilled in the art. Biotin or a biotin moiety on the one hand and (strept)avidin or (strept)avidin bound to another structure on the other hand represent the two members of this exemplary binding pair.

[0038] A single-stranded "nucleic acid" is a polymer composed of nucleotide monomer units. Each nucleotide in a nucleic acid consists of a phosphate, a sugar, and a nucleobase. The nucleotide chains in a nucleic acid are linked by 3',5' phosphodiester bonds, which means that the 5'-phosphoryl group of one nucleotide is esterified with the 3'-hydroxyl group of the adjacent nucleotide.

[0039] A single-stranded "oligonucleotide" is a short nucleic acid typically consisting of up to about 15 nucleotide monomers connected by a phosphodiester bond between the 3' carbon atom of one sugar molecule and the 5' carbon atom of another sugar molecule. The monomers (in the general sense) contained in an oligonucleotide can be naturally occurring monomers as well as non-naturally occurring monomers, also referred to as nucleotide analogs. In a non-limiting manner, exemplary analogs include sugar moieties other than ribose or deoxyribose, particularly ribose in which the sugar ring is "locked" by a methylene bridge connecting the 2'-O atom and the 4'-C atom. For purposes of this disclosure, the term "nucleotide" encompasses both naturally occurring and non-naturally occurring nucleotides as monomers in an oligonucleotide. Thus, an oligonucleotide according to this definition can be composed exclusively of natural or non-naturally occurring monomers, or a mixture thereof. Additionally, different classes of unnatural monomers (e.g., PNA, D-LNA, L-LNA, homoDNA (containing hexose sugars), HNA (containing hexitols, hexitol sugars, hexitol nucleic acids), L-DNA, etc.) can be included in the oligonucleotide unless otherwise specified.

[0040] The non-natural monomer may contain a nucleobase, which may itself be a naturally occurring nucleobase or its non-naturally occurring analog. A "nucleobase" is a nitrogen-containing unsaturated hydrocarbon compound containing a planar heterocyclic moiety. Naturally occurring nucleobases can be classified into two major forms: purines and pyrimidines. Purines and pyrimidines are both heterocyclic aromatic compounds, but they can be distinguished based on their chemical structure. Purines occur as two carbon rings, while pyrimidines occur as a single carbon ring. Purines have a pyrimidine ring fused to an imidazole ring. Pyrimidines have only a pyrimidine ring, and purines have four nitrogen atoms, while pyrimidines have two. Nucleobases form nucleosides when attached to a sugar moiety, usually a five-carbon ribose or deoxyribose, or their derivatives (e.g., ribosomal ribose). Nucleosides are thus glycosylamines, including, for example, cytidine, uridine, adenosine, guanosine, thymidine, and inosine. In these examples, the anomeric carbon of the five-carbon sugar is linked via a glycosidic bond to the N9 of the purine or the N1 of the pyrimidine.

[0041] A nucleoside is a component of a nucleotide that further contains a phosphate moiety or a derivative or functional analog thereof. Nucleotides are the monomeric units of single-stranded nucleic acids. In double-stranded nucleic acids such as DNA, the nucleobases are paired. Two complementary nucleobases are connected by hydrogen bonds.

[0042] The term "nucleobase" includes standard and non-standard naturally occurring nucleobases and their analogs. Many non-naturally occurring nucleobases are known. For the purposes of this disclosure, these nucleobase analogs are specifically considered embodiments, where a nucleobase analog that is part of a first oligonucleotide strand can form one or more hydrogen bonds with another adjacent nucleobase in a second oligonucleotide strand, and the two oligonucleotide strands pair to form a duplex, specifically an antiparallel duplex. Typically, the nucleobases of the base pairs in the duplex are in a planar orientation. For the purposes of this disclosure, non-limiting compilations of nucleobases include N, N- ... 4-acetylcytosine, 5-acetyluracil, 4-amino-6-chloropyrimidine, 4-amino-5-fluoro-2-methoxypyrimidine, 6-amino-1-methyluracil, 5-aminoorotic acid, 5-aminouracil, 6-aminouracil, 6-azauracil, N 4 -benzoylcytosine, 5-bromouracil, 5-chlorouracil, 6-chlorouracil, 6-chloromethyluracil, 6-chloro-3-methyluracil, cytosine, 5,6-dimethyluracil, 5-ethyluracil, 5-ethynyluracil, 5-fluorocytosine, 5-fluoroorotic acid, 5-fluorouracil, 5-iodo-2,4-dimethoxypyrimidine, 5-iodouracil, isocytosine, 5-methylcytosine, 6-methyl-5-nitrouracil, 2-methylthio-4-pyrimidinol, 5-methyl-2-thiouracil, 6-methyl-2-thiouracil, 6-methyl Uracil, 5-nitrouracil, orotic acid, 6-phenyl-2-thiouracil, 6-propyl-2-thiouracil, 2-thiouracil, 4-thiouracil, thymine, 5-(trifluoromethyl)uracil, uracil, adenine, 8-azahypoxanthine, 8-azaguanine, allopurinol, 4-aminopyrazolo[3,4-d]pyrimidine, 2-aminopurine, 2-acetamido-6-hydroxypurine, 2-amino-6-chloropurine, 2-amino-6-iodopurine, azathioprine, 4-amino-6-hydroxypyrazolo[3,4-d]pyrimidine, aminophylline, N 6 -benzyladenine, N 6-Benzoyladenine, 6-benzyloxypurine, 8-bromotheophylline, 8-bromo-3-methylxanthine, 8-bromo-7-(2-butyn-1-yl)-3-methylxanthine, 6-chloropurine, 8-chlorotheophylline, 6-chloro-2-fluoropurine, 6-chloro-7-deazapurine, 2-chloroadenine, 6-chloro-7-iodo-7-deazapurine, 2,6-diaminopurine, 2,6-dichloropurine , 6-(dimethylamino)purine, 2,6-dichloro-7-deazapurine, 5,6-dichlorobenzimidazole hydrochloride, 7-deazahypoxanthine, 2-fluoroadenine, guanine, hypoxanthine, isoguanine, 3-iodo-1H-pyrazolo-[3,4-d]pyrimidin-4-amine, kinetin, 6-mercaptopurine, 6-methoxypurine, 3-methylxanthine, 1-methylxanthine, 3-methyladenine, O 6 7-(cyclohexylmethyl)guanine, 6-thioguanine, 2-thioxanthine, xanthine, 5-propynyl-uracil, 5-propynyl-cytidine, 7-deazaadenine, 7-deazaguanine, 5-propynyl-uracil, 5-propynyl-cytosine, 7-deazaadenine, 7-deazaguanine, 7-propynyl-7-deazaadenine, 7-propynyl-7-deazaguanine, and derivatives thereof.

[0043] Complementary single-stranded oligo- or polynucleotides can form double-stranded ("duplex") nucleic acids. Duplex formation is also known as "hybridization," which refers to the formation of partially or completely double-stranded (duplex) nucleic acids (e.g., DNA:DNA, DNA:RNA, RNA:RNA, LNA:DNA, LNA:LNA, etc.) by sequence-specific interaction of two at least partially complementary single-stranded nucleic acids as an embodiment of a binding pair. Complementary The term "reunion of complementary single-stranded nucleic acids" or "renaturation of separated (denatured) double strands" is often used to describe hybridization between perfectly complementary strands.

[0044] Hybridization in aqueous solution, also known as "annealing," is an integral part of this disclosure. With respect to hybridized oligo- or polynucleotide (including analogs thereof) double-stranded molecules, those skilled in the art understand that melting temperature, hybridization rate, and dissociation rate and temperature are interrelated.

[0045] In line with common knowledge, a "Watson-Crick base pair" is a single non-covalent bridge in a double-stranded nucleic acid helix (duplex), and each strand of the double strand is an oligonucleotide.Therefore, in an exemplary embodiment of the double strand, the two oligonucleotide strands are bridged by a pair of purine and pyrimidine bases that protrude inward from the oligonucleotide backbone sugar, and are bonded by hydrogen bonds, for example, adenine pairs with thymine, and cytosine pairs with guanine.In line with the above, as long as the pair of nucleic acid bases can interact complementarily, thereby forming a single non-covalent bridge in the double-stranded nucleic acid helix (duplex), the nucleic acid bases can be naturally occurring nucleic acid bases or their analogs.

[0046] It is common knowledge that secondary structural motifs in single-stranded nucleic acids generally impair the intended hybridization reaction (e.g., as discussed by Koehler RT & Peyret N. Comput Biol Chem. 29 (2005) 393-397). This knowledge also applies to ss-oligonucleotides, including single-stranded LNA oligonucleotides. Secondary structures can arise from internal folding of single-stranded molecules driven by intramolecular interactions such as hydrogen bonds or hydrophobic interactions. In the specific case of a first single-stranded oligonucleotide, a specific folded structure may be thermodynamically favored, which in turn prevents the unhindered display of the nucleobase sequence of the complementary second oligonucleotide. Therefore, efforts are needed to predict and avoid such structures. Conversely, the secondary structure of the target binding site may also impair hybridization. Therefore, evaluation of the secondary structure of both partners in a binding pair consisting of oligonucleotides is necessary. Several challenges confound this goal, including the imperfect empirical rules and parameters underlying the predictions and the fact that folding algorithms scale poorly with sequence length.

[0047] Furthermore, among members of the same oligonucleotide species, i.e., oligonucleotides sharing the same nucleobase sequence, there may be one or more portions that may be partially complementary, thereby potentially allowing intermolecular interactions to occur through Watson-Crick base pairing of one or more nucleobases. Alternatively, there may be one or more portions within the sequence that may cause intermolecular interactions through non-Watson-Crick (e.g., Hoogsteen) base pairing or other forms of intermolecular interactions. As in the case of intramolecular folding (see above), intramolecular interactions between members of a first single-stranded oligonucleotide may result in a thermodynamically favorable structure, which then prevents the unhindered presentation of the nucleobase sequence of a complementary second oligonucleotide.

[0048] If unwanted inter- or intramolecular structures occur, they can be eliminated by denaturation. From the use of ss-oligonucleotides in the technical field of polymerase chain reaction (PCR), it is known that the annealing step is usually preceded by a heating step, whereby the oligonucleotides are denatured during the heating step, i.e., the intramolecular secondary structures are destroyed. The heating step is usually followed by a stepwise and controlled decrease in temperature, aimed at providing suitable conditions for annealing between the oligonucleotide and the target sequence. However, PCR requires sufficiently thermostable reaction partners, e.g., oligonucleotide primers, nucleases, etc. These processes involve oligonucleotide triphosphates, salts, buffers, and thermostable polymerase enzymes. However, other processes in which oligonucleotide annealing may play a role prohibit the application of heat or other types of denaturing treatments, as such processes may contain denaturation-sensitive components that may irreversibly degrade. This is particularly (though not exclusively) the case for analyte detection assays in which proteinaceous analyte-specific receptors, such as antibodies, play a key functional role. Therefore, the present disclosure and reporting of surprising findings specifically address technical settings in which the application of heat, specifically incubation at temperatures above 68°C (as in Childs JLPNAS 99 (2002) 11091-11096), is not possible. For practical reasons, temperatures above 40°C are undesirable in most assays, such as immunoassays. That is, when using binding pairs consisting of complementary oligonucleotides, particularly desirable conditions are 0°C to 40°C. Furthermore, under these conditions, any technical application must be unaffected by intramolecular or intermolecular structures that would likely be true for the isolated binding partners of the oligonucleotide binding pair.

[0049] Other options for denaturing nucleic acids, including oligonucleotides, are known to those skilled in the art from reports on DNA. Several methods for DNA denaturation are known in the art, including heating, incubation under alkaline conditions equivalent to more than 0.01 mol / L NaOH in water (pH 12 or higher), incubation in the presence of dimethyl sulfoxide (DMSO), incubation in the presence of formamide, incubation in the presence of chaotropic compounds, and incubation in the presence of sonication. Although such treatments not only provide conditions for producing and / or stabilizing ss-DNA but also ss-LNA, they are nevertheless undesirable in assays for detecting analytes in which proteinaceous analyte-specific receptors, such as antibodies, play an important functional role.

[0050] Therefore, in any aspect and embodiment of the technical approach presented in this report, the "denaturing conditions" which on the one hand may be able to negate undesired intra- and intermolecular structures of all LNA ss-oligonucleotide species in aqueous solution, but on the other hand should be avoided, are selected from the group consisting of application of temperatures above 40°C, application of temperatures above 68°C (heat), application of sonication, incubation under alkaline conditions equivalent to more than 0.01 mol / L NaOH in water, incubation in the presence of dimethyl sulfoxide (DMSO) at a concentration capable of disrupting intra- and intermolecular structures, incubation in the presence of formamide at a concentration capable of disrupting intra- and intermolecular structures, incubation in the presence of chaotropic compounds at a concentration capable of disrupting intra- and intermolecular structures, and mixtures thereof. For the purposes of this report, embodiments in which denaturing conditions are not present (embodiments under non-denaturing conditions) are the absence and / or lack of application of temperatures above 40°C, temperatures above 68°C (heat), application of sonication, incubation under alkaline conditions equivalent to more than 0.01 mol / L NaOH in water, incubation in the presence of dimethyl sulfoxide (DMSO) at a concentration capable of disrupting intra- and intermolecular structures, incubation in the presence of formamide at a concentration capable of disrupting intra- and intermolecular structures, incubation in the presence of chaotropic compounds at a concentration capable of disrupting intra- and intermolecular structures, and mixtures thereof.

[0051] Specifically, it is desirable that under non-denaturing conditions, each partner of a binding pair not form any intramolecular bonds that would render them unable to form bonds with partners of the other species. As explained previously, by way of example, in such undesired cases, intramolecular folding and stabilization of a particular fold in the partner species would result in a secondary structure that is sufficiently stable under non-denaturing conditions to inhibit or prevent the desired intramolecular binding of the two different species of the binding pair.

[0052] All-LNA ss-oligonucleotides containing 5 or more monomers have characteristics that cannot be reliably predicted by the tools available to those skilled in the art, taking into account non-denaturing conditions, specifically excluding the application of the denaturing treatment detailed herein.For practical reasons, this study was limited to ss-oligonucleotides consisting of up to 15 LNA monomers in order to identify ss-oligonucleotides that can form hybridized duplexes from two separate single-stranded species in the absence of denaturing conditions.That is, each member of the binding pair must be sufficiently devoid of any inter- or intramolecular structure.This report shows that this case cannot be taken for granted for complementary all-LNA oligonucleotides.

[0053] Thus, the present disclosure, in a first aspect with respect to all other aspects and embodiments disclosed herein, unexpectedly provides pairs of distinct ss-oligonucleotides, each consisting of 5-15 LNA monomers, capable of forming antiparallel duplexes with each other in aqueous solution in the absence of denaturing conditions prior to duplex formation. Regardless of the reliability of theoretical and / or computer-implemented models, such pairs may be unexpectedly identified and provided by the method of the second aspect, as follows. To the best of the authors' knowledge, such a method has not previously been shown or proposed.

[0054] Thus, the present disclosure provides in a second aspect, with respect to all other aspects and embodiments disclosed herein, a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes having 5 to 15 consecutive base pairs in aqueous solution at a temperature between 0°C and 40°C, comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 5 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 5 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0055] In particular, in embodiments, steps (c) and (d) are carried out in the absence of the conditions designated above as "denaturing conditions."

[0056] Certain embodiments of this second aspect, and certain embodiments of all other aspects and embodiments disclosed herein, provide a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes having 5 to 7 consecutive base pairs in aqueous solution at temperatures between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 5 to 7 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 5 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, and predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form a duplex with each other by virtue of the complementarity, the predicted duplex comprising or consisting of 5 to 7 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0057] In particular, in embodiments, steps (c) and (d) are carried out in the absence of the conditions designated above as "denaturing conditions."

[0058] Each single-stranded oligonucleotide is composed of a monomer, each of which is a ribonucleoside analog, in which a methylene connects the 2'-oxygen atom and the 4'-carbon atom in the ribose portion of the ribonucleoside analog, thereby locking the ribose in a C3-endo conformation. All-LNA ss-oligonucleotides according to the present disclosure can be chemically synthesized using building blocks such as protected phosphoramidites of single LNA nucleosides using standard techniques.

[0059] Each LNA monomer comprises a nucleobase, the nucleobase being selected from canonical or non-canonical naturally occurring and non-naturally occurring nucleobases. 4-acetylcytosine, 5-acetyluracil, 4-amino-6-chloropyrimidine, 4-amino-5-fluoro-2-methoxypyrimidine, 6-amino-1-methyluracil, 5-aminoorotic acid, 5-aminouracil, 6-aminouracil, 6-azauracil, N 4 -benzoylcytosine, 5-bromouracil, 5-chlorouracil, 6-chlorouracil, 6-chloromethyluracil, 6-chloro-3-methyluracil, cytosine, 5,6-dimethyluracil, 5-ethyluracil, 5-ethynyluracil, 5-fluorocytosine, 5-fluoroorotic acid, 5-fluorouracil, 5-iodo-2,4-dimethoxypyrimidine, 5-iodouracil, isocytosine, 5-methylcytosine, 6-methyl-5-nitrouracil, 2-methylthio-4-pyrimidinol, 5-methyl-2-thiouracil, 6-methyl-2-thiouracil, 6-methyl Uracil, 5-nitrouracil, orotic acid, 6-phenyl-2-thiouracil, 6-propyl-2-thiouracil, 2-thiouracil, 4-thiouracil, thymine, 5-(trifluoromethyl)uracil, uracil, adenine, 8-azahypoxanthine, 8-azaguanine, allopurinol, 4-aminopyrazolo[3,4-d]pyrimidine, 2-aminopurine, 2-acetamido-6-hydroxypurine, 2-amino-6-chloropurine, 2-amino-6-iodopurine, azathioprine, 4-amino-6-hydroxypyrazolo[3,4-d]pyrimidine, aminophylline, N 6 -benzyladenine, N 6-benzoyladenine, 6-benzyloxypurine, 8-bromotheophylline, 8-bromo-3-methylxanthine, 8-bromo-7-(2-butyn-1-yl)-3-methylxanthine, 6-chloropurine, 8-chlorotheophylline, 6-chloro-2-fluoropurine, 6-chloro-7-deazapurine, 2-chloroadenine, 6-chloro-7-iodo-7-deazapurine, 2,6-diaminopurine, 2,6-dichloropurine, 6-(dimethylaminopurine), aminopurine, 2,6-dichloro-7-deazapurine, 5,6-dichlorobenzimidazole hydrochloride, 7-deazahypoxanthine, 2-fluoroadenine, guanine, hypoxanthine, 9-(2-hydroxyethyl)adenine, isoguanine, 3-iodo-1H-pyrazolo-[3,4-d]pyrimidin-4-amine, kinetin, 6-mercaptopurine, 6-methoxypurine, 3-methylxanthine, 1-methylxanthine, 3-methyladenine, O 6 The nucleic acid comprises a nucleobase selected from the group consisting of -(cyclohexylmethyl)guanine, 6-thioguanine, 2-thioxanthine, xanthine, 5-propynyl-uracil, 5-propynyl-cytidine, 7-deazaadenine, 7-deazaguanine, 7-propynyl-7-deazaadenine, 7-propynyl-7-deazaguanine, and derivatives thereof.

[0060] All LNA ss-oligonucleotides according to all aspects and embodiments disclosed herein may comprise a number of monomers selected from the group consisting of 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, and 15. In a related embodiment of all aspects and embodiments disclosed herein, the first ss-oligonucleotide consists of 8 to 15 monomers (i.e., a number selected from 8, 9, 10, 11, 12, 13, 14, and 15 monomers). In another related embodiment of all aspects and embodiments disclosed herein, the first ss-oligonucleotide consists of 9 to 11 monomers (i.e., a number selected from 9, 10, and 11 monomers), and in a more particular embodiment of all aspects and embodiments disclosed herein, the first ss-oligonucleotide consists of 9 monomers.

[0061] In initial experiments, these oligo sizes were used because they provide a combination of, first, high binding specificity for the binding partner, second, a favorable rate at which the two partners of the binding pair hybridize to form a duplex, and third, the formation of a stable duplex with no substantial detectable tendency to dissociate again into single strands. Surprisingly, 7, 6, and even It has been found that even all-LNA ss-oligonucleotide binding pairs with complementary nucleobase sequences consisting of five consecutive LNA monomers can satisfy the criteria of sufficient specificity, pairing rate, and duplex stability. Even more surprisingly, these criteria were met under specific ambient conditions that are prerequisites for using all-LNA ss-oligonucleotide binding pairs as a means of molecular recognition in assays for the detection of target analytes, including but not limited to immunoassays. Accordingly, a particular embodiment, related to all other aspects disclosed herein, is a method for selecting and providing single-stranded all-LNA oligonucleotide binding pairs capable of forming antiparallel duplexes with 5, 6, or 7 consecutive base pairs in aqueous solution at temperatures between 0°C and 40°C, which method is a particular embodiment described.

[0062] Another specific embodiment, related to all other aspects and embodiments disclosed herein, is a pair of separate ss-oligonucleotides, each consisting of 5 to 7 LNA monomers, capable of forming an antiparallel duplex with each other in aqueous solution in the absence of denaturing conditions prior to duplex formation. Another embodiment, related to all other aspects, is a pair of ss-oligonucleotides sharing a complementary nucleobase sequence of 5, 6, or 7 LNA monomers contained in each ss-oligonucleotide, capable of forming an all-LNA duplex in aqueous solution in the absence of denaturing conditions. As already explained above, the absence of denaturing conditions means that neither of the ss-oligonucleotides has undergone denaturation prior to duplex formation, nor is there a denaturing treatment part of the incubation after the members of the binding pair have contacted each other in aqueous solution.

[0063] Shorter LNA oligomers are less complex, more economical to synthesize, and provide an ideal source of complementary binding partners for molecular recognition in aqueous solution.

[0064] In certain embodiments relating to all aspects of this report, the members of the binding pair are all-LNA The all-LNA ss-oligonucleotide is a fragment of a larger all-LNA ss-oligonucleotide, and the larger ss-oligonucleotide is one member, partner, or species of a binding pair selected and provided by the method for selecting and providing single-stranded all-LNA binding pairs according to the second aspect provided herein. In certain embodiments thereof, the larger oligonucleotide comprises 8 to 15 LNA monomers, and the fragment comprises a contiguous nucleobase subsequence of the larger fragment, the fragment comprising 5 to 7 LNA monomers. Thus, in certain embodiments, the binding pair consists of a first all-LNA ss-oligonucleotide and a second all-LNA ss-oligonucleotide, each comprising 5, 6, or 7 LNA monomers, wherein the nucleobase sequences of the first all-LNA ss-oligonucleotide and the second all-LNA ss-oligonucleotide are complementary and thereby capable of forming an antiparallel duplex with 5, 6, or 7 base pairs, and each member of the binding pair is a fragment of a larger all-LNA ss-oligonucleotide selected and provided by the method according to the second aspect provided herein. In certain embodiments, the first all-LNA ss-oligonucleotide and the second all-LNA ss-oligonucleotide each consist of 5 monomers. In another particular embodiment, the first all-LNA ss-oligonucleotide and the second all-LNA ss-oligonucleotide each consist of 6 monomers. In yet another particular embodiment, the first all-LNA ss-oligonucleotide and the second all-LNA ss-oligonucleotide each consist of 7 monomers.

[0065] Accordingly, the present disclosure provides in a third aspect, particularly relating to the second aspect as well as all other aspects and embodiments disclosed herein, a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes having 5 to 7 consecutive base pairs in aqueous solution at a temperature between 0°C and 40°C, comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 8 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 8 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 8 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) selecting a first contiguous nucleobase subsequence from the binding pair oligonucleotide selected in step (f), thereby generating an oligonucleotide fragment, the fragment consisting of 5 to 7 LNA monomers; (h) optionally selecting a second contiguous nucleobase subsequence from the other oligonucleotide of the binding pair selected in step (f), wherein the second subsequence is complementary to the first subsequence of step (g), thereby generating another oligonucleotide, the fragment consisting of 5 to 7 LNA monomers; (i) separately synthesizing the ss-oligonucleotide fragment of step (g) and the ss-oligonucleotide fragment of step (h), Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0066] In particular, in embodiments, steps (c) and (d) are carried out in the absence of the conditions designated above as "denaturing conditions."

[0067] Selected fragments can be readily identified for the property of being able to form antiparallel duplexes in aqueous solution at temperatures between 0° C. and 40° C. Thus, in certain embodiments, the method comprises the additional steps of: (k)(c) mixing the first ss-oligonucleotide fragment and the second ss-oligonucleotide fragment in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (l) Incubating the mixture of (k) for a time interval of not more than 20 minutes, thereby forming the first oligonucleotide fragment and the second oligonucleotide fragment as ss-oligonucleotides. obtaining a mixture still containing the nucleotide fragments or a mixture comprising or consisting of the first oligonucleotide fragment and the second oligonucleotide fragment as a duplex; (m) selecting the binding pair from step (l) in the double stranded state but without detectable presence of ss-oligonucleotide fragments;

[0068] The present report provides single-stranded all-LNA oligonucleotides as binding pairs that can replace other binding pairs such as biotin and (strept)avidin. That is, in relation to all aspects and embodiments herein, all binding pairs of ss-oligonucleotides (including binding pairs that are fragments thereof) consisting of LNA monomers and obtained by the method according to the second and / or third aspect presented above are specifically capable of duplex formation under non-denaturing conditions. Thus, each such ss-oligonucleotide provided and optionally stored under non-denaturing conditions is capable of hybridizing with its binding partner under non-denaturing conditions and retains this quality under non-denaturing conditions.

[0069] More specifically, "denaturing conditions" in the context of the present disclosure include, as an embodiment, any presence or addition of a denaturing agent capable of lowering the melting temperature of a DNA duplex 20 base pairs in length and having a 50% G+C content by 15°C or more.

[0070] Denaturing conditions exclude conditions under which assays for detecting target analytes using proteinaceous analyte-specific receptors must be performed to maintain the necessary capacity and function of these compounds. That is, the necessary capacity and function of these compounds may be lost in the presence of denaturing conditions. At the same time, these non-denaturing conditions exclude temperatures above 68°C, application of sonication, incubation under alkaline conditions equivalent to more than 0.01 mol / L NaOH in water, incubation in the presence of dimethyl sulfoxide (DMSO), incubation in the presence of formamide, incubation in the presence of chaotropic compounds, and mixtures thereof. When single-stranded all-LNA ss-oligonucleotides are present, any of these conditions may disrupt the intra- and intermolecular structures of the single-stranded all-LNA ss-oligonucleotides, which may prevent hybridization and duplex formation between the oligonucleotide and complementary single-stranded all-LNA ss-oligonucleotides. Importantly, the all-LNA ss-oligonucleotides taught by this report do not require any of such denaturing conditions, nor do they require the oligonucleotides in isolated form or as binding pairs, i.e., while one member is in contact with the other.

[0071] The first ss-oligonucleotide and the second ss-oligonucleotide do not have to be the same size, i.e., they do not have to consist of the same number of monomers, however, the same number of monomers comprising the first ss-oligonucleotide and the second ss-oligonucleotide is a specific embodiment relevant to all aspects and embodiments disclosed herein.

[0072] As known to those skilled in the art, two oligonucleotides are antiparallel when they run parallel to each other but with opposite sequences. A specific example is provided by the two complementary strands of a double strand running in opposite directions alongside each other. As a result, each end of the double strand contains the 5' end of the first strand adjacent to / aligned with the 3' end of the second strand on the opposite side. Similar to DNA and RNA, LNA exhibits Watson-Crick base pairing (Koshkin, AA et al. J Am Chem Soc 120 (1998) 13252-13260).

[0073] Certain Watson-Crick base pairings involving hydrogen-bonding bases on complementary opposite strands are , a feature well known to those skilled in the art and widely published in the art. Examples include the standard base pairs adenine:thymine, adenine:uracil, and cytosine:guanine. Other Watson-Crick base pairs include 5-methylcytosine:guanine, 5-hydroxymethylcytosine:guanine, 7-deazaguanine:cytosine, and 5-chlorouracil:7-deazaadenine. Many more are known in the art.

[0074] To bind two members of a binding pair, one must be connected to the other. Following the contacting step, the two members can interact with each other to form a duplex. As explained above, denaturing conditions are not required for this purpose. Importantly, after contacting with two different (i.e., first and second) ss-oligonucleotides (see, for example, step (c) according to the second aspect disclosed above), step (d) of the method reported herein specifies an incubation time interval of 20 minutes or less. That is, duplex formation is rapid, and to the extent that a duplex can be formed, this process is substantially complete within 20 minutes. In this regard, it should be noted that in all aspects and embodiments disclosed herein, single-stranded all-LNA binding partners (oligonucleotides) can bind to each other under conditions comparable to those of biotin and (strept)avidin, particularly in terms of molecular recognition and binding. In certain embodiments relating to all aspects and embodiments disclosed herein, the time interval for duplex formation (i.e., following the contacting step) is selected from the group consisting of 1 second to 20 minutes, 1 second to 15 minutes, 1 second to 10 minutes, 1 second to 5 minutes, 1 second to 1 minute, 1 second to 30 seconds, 1 second to 20 seconds, 1 second to 10 seconds, and 1 second to 5 seconds. Highly desirable and advantageous time intervals are selected from 1 second to 10 seconds and 1 second to 5 seconds.

[0075] Importantly, prior to step (c), the first ss-oligonucleotide and the second ss-oligonucleotide do not require denaturation treatment, but are simultaneously stored or maintained under non-denaturing conditions, particularly at non-denaturing temperatures, to avoid undesirable results. In particular, the ss-oligonucleotides reported herein are characterized by a very low, if not non-existent, tendency to stably fold into secondary structures, which may interfere with the ability of complementary all-LNA oligonucleotides to form duplexes. In embodiments related to all aspects and embodiments disclosed herein, the first ss-oligonucleotide and the second ss-oligonucleotide are maintained at temperatures between -80°C and 40°C, specifically between 0°C and 40°C, and more specifically between 25°C and 37°C. The non-denaturing temperature for single-stranded all-LNA oligonucleotides containing 5 to 15 monomers is below 68°C, more specifically below 40°C.

[0076] In particular embodiments relating to all aspects and embodiments disclosed herein (particularly the second and third), in step (c) and / or step (d), the temperature is below 68°C, more particularly below 40°C, and even more particularly between 0°C and 37°C. In the method of the second or third aspect, the temperature in step (c) is selected independently of the temperature in step (d), and vice versa. In particular embodiments relating to all aspects and embodiments disclosed herein, the temperatures in steps (c) and (d) do not differ by more than 5°C, or both steps are carried out at the same temperature. In even more particular embodiments relating to all aspects and embodiments disclosed herein, the temperature in step (c) and / or step (d) is between 25°C and 40°C, even more particularly between 25°C and 37°C. In another particular embodiment related to all aspects and embodiments disclosed herein, prior to step (c), the first ss-oligonucleotide and the second ss-oligonucleotide are maintained at a temperature between -80°C and 40°C, particularly between 0°C and 40°C, more particularly between 25°C and 37°C.

[0077] In another embodiment related to all (particularly the second and third) aspects and embodiments disclosed herein, prior to step (c), the first ss-oligonucleotide and the second ss-oligonucleotide are prepared by adjusting the pH of the solution to between pH 6 and pH 8, more particularly between pH 6.5 and pH 8. It is stored and / or maintained in an aqueous solution containing a buffer that maintains a pH of 7.5.

[0078] In yet another embodiment related to all (particularly the second and third) aspects and embodiments disclosed herein, in step (c), the aqueous solution comprises a buffer that maintains the pH of the solution between pH 6 and pH 8, more particularly between pH 6.5 and pH 7.5. In another embodiment related to all (particularly the second and third) aspects and embodiments disclosed herein, in step (c), the aqueous solution comprises a total amount of dissolved substances between 10 mmol / L and 500 mmol / L, more particularly between 200 mmol / L and 300 mmol / L, even more particularly between 10 mmol / L and 150 mmol / L, and even more particularly between 50 mmol / L and 200 mmol / L.

[0079] The conditions described herein for the mixing (step (c)) and incubation (step (d)) steps equally apply to the conditions under which the separate ss-oligonucleotides are maintained. Thus, in embodiments, each ss-oligonucleotide of either step (a) or step (b) is maintained in the absence of denaturing conditions prior to step (c). This includes any embodiment in which each ss-oligonucleotide of either step (a) or step (b) is pre-incubated in the absence of denaturing conditions prior to step (c). In embodiments, prior to step (c), each ss-oligonucleotide of either step (a) or step (b) is maintained in aqueous solution at a temperature between -80°C and 40°C, specifically between 0°C and 40°C, more specifically between 25°C and 37°C. In further embodiments, prior to step (c), each ss-oligonucleotide of either step (a) or step (b) is maintained in aqueous solution in the absence of a denaturing compound, specifically in the absence of both formamide and DMSO.

[0080] The incubation in step (d) provides conditions for duplex formation, provided that the two complementary all-LNA ss-oligonucleotides can actually molecularly recognize each other. Furthermore, the inter- and intramolecular structures within one or both species of the suspected binding pair are accounted for. For example, the presence of secondary structure in one species prior to step (c) may inhibit duplex formation in step (d). The next step (e) is necessary to determine whether duplex formation occurred in the absence of denaturation. Step (e) involves detecting and quantifying the ss-oligonucleotide and double-stranded oligonucleotide in the mixture obtained in step (d). In embodiments related to all aspects and embodiments disclosed herein, step (e) includes subjecting the incubated mixture of step (d) to column chromatography using an aqueous solvent as the mobile phase. Thus, column chromatography can be advantageously used to separate the separate double-stranded molecules from the ss-oligonucleotides. Suitable column chromatography methods, such as HPLC, are well known to those skilled in the art in this regard. However, any alternative method that can distinguish and quantify ss-oligonucleotides and double strands is also suitable, including SPR (surface plasmon resonance; e.g. Biacore) and electrophoresis.

[0081] If intermolecular and intramolecular structures exist in one or both ss-oligonucleotides prior to step (c), which involves mixing approximately equimolar amounts of a first ss-oligonucleotide and a second ss-oligonucleotide in aqueous solution, duplex formation is inhibited. When inhibition is complete, only the ss-oligonucleotides are detectably present after step (d), which involves incubating the mixture. However, inhibition may be incomplete. Therefore, depending on the strength of the intermolecular and intramolecular structures, they may undergo temporary "unfolding," i.e., specific changes sufficiently expose the nucleobases of the inhibited first ss-oligonucleotide. In the unfolded form, the first ss-oligonucleotide can then form a duplex with a complementary second ss-oligonucleotide. The same requirement for unfolding may also apply to the complementary second ss-oligonucleotide. In such cases, the amount of duplex formed may vary depending on the incubation time. The unfolding time reflects the number of unfolding events during the incubation period, i.e. the incubation time applied in step (d). In the ideal case, following step (d), substantially no ss-oligonucleotides are detectably present anymore and only the double strand is detectable.

[0082] K d The value is the equilibrium dissociation constant between the first and second members of the binding pair. This value provides a quantitative measure that characterizes the affinity of the binding partners of the binding pair. The equilibrium dissociation constant, K d is the k between the first and second members of the bonding pair off / k on is the ratio of K d and affinity are inversely proportional. d The value relates to the concentration of a member that is still sufficient to molecularly interact and bind to other members, K dThe lower the value (lower the concentration), the higher the affinity between the first member and the other members. In an embodiment, the affinity K of a binding partner selected by the method of the present specification, which is a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, each of which is composed of 5 to 15 locked nucleic acid monomers, is d teeth, 1×10 -15 Less than M ~ 1 x 10 -5 In a further embodiment, the affinity K of a binding partner selected by the method herein, which is comprised of a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, each of which is comprised of 5 to 15 locked nucleic acid monomers of each other, is greater than M. d is 1 x 10 -12 Less than M ~ 1 x 10 -5 In a further embodiment, the affinity K of a binding partner selected by the method herein, which is comprised of a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, each of which is comprised of 8 to 15 locked nucleic acid monomers of each other, is greater than M. d is 2 x 10 -12 M~1×10 -15 I am M.

[0083] In a further embodiment, the affinity K of a binding partner selected by the method herein is a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, each of which consists of 5 to 7 locked nucleic acid monomers of each other. d is 1 x 10 -12 M~2×10 -5 I am M.

[0084] In particular, the K d is strongly influenced by the G+C content of the binding partner: for a binding pair with a given number of complementary base pairs, the affinity of the binding partner generally increases with increasing G+C content.

[0085] To eliminate the interference of naturally occurring oligonucleotides or polynucleotides with the molecular recognition (i.e., duplex formation) of binding pairs consisting of LNA oligonucleotides, stereoisomers of LNA monomers are advantageously used as building blocks in the synthesis of all-LNA ss-oligonucleotides. The rationale for this approach is to select stereoisomeric monomers that prevent the ss-oligonucleotide from forming a duplex with naturally occurring oligonucleotides or polynucleotides, in particular from forming a Watson-Crick duplex with naturally occurring oligonucleotides or polynucleotides.

[0086] In a related embodiment of all aspects and embodiments disclosed herein, the first ss-oligonucleotide and the second ss-oligonucleotide (and any fragments thereof) are composed of beta-D-LNA monomers. That is, the first ss-oligonucleotide is composed entirely of beta-D-LNA monomers, and the second ss-oligonucleotide is composed entirely of beta-D-LNA monomers. In yet another related embodiment of all aspects and embodiments disclosed herein, the first ss-oligonucleotide and the second ss-oligonucleotide (and any fragments thereof) are composed entirely of beta-L-LNA monomers. That is, the first ss-oligonucleotide is composed entirely of beta-L-LNA monomers, and the second ss-oligonucleotide is composed entirely of beta-L-LNA monomers. The use of beta-L-LNA has been found to be advantageous, since duplex formation is not hindered in the presence of naturally occurring nucleic acids. In this regard, currently, all-D-LNA It should be noted that the extensive technical experience regarding hybridization conditions for oligonucleotide pairs and all-L-LNA oligonucleotide pairs is rather limited.

[0087] This paper discloses pairs of distinct ss-oligonucleotides, each consisting of 5 to 15 LNA monomers, capable of forming antiparallel duplexes with each other in aqueous solution without denaturing conditions before or during duplex formation. The teachings of this paper conveniently and advantageously enable the selection and provision of such ss-oligonucleotides, where the monomers are LNA monomers. To the best of the authors' knowledge, the method described herein represents the first successful approach to overcome the limitations of algorithms known in the art in predicting the hybridization properties of all LNA ss-oligonucleotides. The nucleobase sequence of the first ss-oligonucleotide is complementary to the nucleobase sequence of the second ss-oligonucleotide, allowing pairing of the two ss-oligonucleotides in an antiparallel orientation to form a duplex.

[0088] In an embodiment related to all other aspects and embodiments, a pair of separate ss-oligonucleotides is provided, each oligonucleotide consisting of 5 to 15 LNA monomers, the separate ss-oligonucleotides in aqueous solution are capable of forming antiparallel duplexes with each other in the absence of denaturing conditions prior to or during duplex formation, the pair of ss-oligonucleotides being obtainable and / or obtained by carrying out a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes with 5 to 15 consecutive base pairs in aqueous solution at a temperature between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 5 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 5 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0089] In an embodiment related to all other aspects and embodiments, a pair of separate ss-oligonucleotides is provided, each oligonucleotide consisting of 5 to 7 LNA monomers, the separate ss-oligonucleotides in aqueous solution are capable of forming antiparallel duplexes with each other in the absence of denaturing conditions prior to or during duplex formation, the pair of ss-oligonucleotides being obtainable and / or obtained by carrying out a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes with 5 to 7 consecutive base pairs in aqueous solution at a temperature between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 8 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 8 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 8 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) selecting a first contiguous nucleobase subsequence from the binding pair oligonucleotide selected in step (f), thereby generating an oligonucleotide fragment, the fragment consisting of 5 to 7 LNA monomers; (h) optionally selecting a second contiguous nucleobase subsequence from the other oligonucleotide of the binding pair selected in step (f), wherein the second subsequence is complementary to the first subsequence of step (g), thereby generating another oligonucleotide, the fragment consisting of 5 to 7 LNA monomers; (i) separately synthesizing the ss-oligonucleotide fragment of step (g) and the ss-oligonucleotide fragment of step (h), Thereby, 5 to 7 binding pairs of single-stranded all-LNA oligonucleotides are selected and provided. In one embodiment, specifically, steps (c) and (d) are carried out in the absence of the conditions designated as "denaturing conditions" as above. The selected fragments can be easily confirmed for their ability to form antiparallel duplexes in aqueous solution at temperatures between 0°C and 40°C. Therefore, in a specific embodiment, the method comprises the following additional steps: (k) mixing in an aqueous solution approximately equimolar amounts of a first ss-oligonucleotide fragment and a second ss-oligonucleotide fragment, mixing the first ss-oligonucleotide fragment and the second ss-oligonucleotide fragment, which is carried out at a temperature between 0°C and 40°C; (l) incubating the mixture of (k) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first oligonucleotide fragment and the second oligonucleotide fragment as ss-oligonucleotides or a mixture comprising or consisting of the first oligonucleotide fragment and the second oligonucleotide fragment as a duplex; (m) selecting the binding pair from step (l) in the double stranded state but without detectable presence of ss-oligonucleotide fragments;

[0090] Each single-stranded all-LNA oligonucleotide can comprise four different nucleobases.In an embodiment related to all aspects and embodiments disclosed herein, each ss-oligonucleotide comprises three different nucleobases.In another embodiment related to all aspects and embodiments disclosed herein, each ss-oligonucleotide comprises two different nucleobases.In yet another embodiment related to all aspects and embodiments disclosed herein, each ss-oligonucleotide comprises only one different nucleobase.In this latter embodiment, all nucleobases in the ss-oligonucleotide are the same.

[0091] In embodiments relating to all aspects and embodiments disclosed herein, the G+C content of the nucleobases of each ss-oligonucleotide is less than 75%. In certain embodiments, the G+C content is lower than a value selected from 74%, 73%, 72%, 71%, and 70%. In yet other embodiments relating to all aspects and embodiments disclosed herein, each LNA monomer in the binding pair comprises a nucleobase selected from the group consisting of adenine, thymine, uracil, guanine, cytosine, and 5-methylcytosine. In more specific embodiments, each cytosine of the nucleobases in each ss-oligonucleotide is substituted with 5-methylcytosine.

[0092] In a related embodiment of all aspects and embodiments disclosed herein, the binding pair of two distinct compatible binding partners is a pair of all-LNA ss-oligonucleotides selected from the group consisting of: 5'tgctcctg3' (SEQ ID NO: 1) and 5'caggagca3' (SEQ ID NO: 2), 5'tgctcctgt3' (SEQ ID NO: 9) and 5'acaggagca3' (SEQ ID NO: 10), 5'gtgcgtct3' (SEQ ID NO: 11) and 5'agacgcac3' (SEQ ID NO: 12), and

[0093] 5'gttggtgt3' (SEQ ID NO: 13) and 5'acaccaac3' (SEQ ID NO: 14).

[0094] In certain embodiments, the monomers of the ss-oligonucleotides in any selected pair from the aforementioned group are both beta-D-LNA monomers. In yet other specific embodiments, the monomers of the ss-oligonucleotides in any selected pair from the aforementioned group are both beta-L-LNA monomers.

[0095] Several such pairs of single-stranded all-LNA oligonucleotides have been found and are reported herein as exemplary embodiments, i.e., non-limiting examples showing pairs of separate ss-oligonucleotides that can bind to each other by hybridization and duplex formation under non-denaturing conditions. A non-limiting compilation thereof is shown in Table 1. The sequences described are oligonucleotides containing all LNA nucleosides, i.e., only LNA monomers. It is understood that the sequences are given in the conventional direction, ie, from the 5' end to the 3' end. [Table 1]

[0096] The binding pairs shown in Table 1 reflect specific embodiments. Any reference to a "first" and a "second" member of a binding pair is understood to be arbitrary in that the "second" member can equally be considered the first member if the second member is substituted for the "first" member. That is, the references as "first" and "second" shown in the table are arbitrary, and the manner in which they are designated can be varied. Thus, illustratively, the binding pair (SEQ ID NO: 16):(SEQ ID NO: 20) is the same as (SEQ ID NO: 20):(SEQ ID NO: 16). In embodiments relevant to all aspects and embodiments disclosed herein, the binding pair of two separate compatible binding partners is a pair of all-LNA ss-oligonucleotides selected from the group consisting of: (SEQ ID NO: 1): (SEQ ID NO: 2), (SEQ ID NO: 9): (SEQ ID NO: 10), (SEQ ID NO: 11): (SEQ ID NO: 12), (SEQ ID NO: 13): (SEQ ID NO: 14), (SEQ ID NO: 9): (SEQ ID NO: 15), (SEQ ID NO: 16): (SEQ ID NO: 20), (SEQ ID NO: 21): (SEQ ID NO: 18), (SEQ ID NO: 21): (SEQ ID NO: 20), (SEQ ID NO: 21): (SEQ ID NO: 19), (SEQ ID NO: 23): (SEQ ID NO: 17), (SEQ ID NO:25):(SEQ ID NO:28).

[0097] In a relevant embodiment of all aspects and embodiments disclosed herein, the binding pair of two separate compatible binding partners is the pair of all-LNA ss-oligonucleotides of SEQ ID NO: 16 and SEQ ID NO: 20. The binding pair is therefore gttggt:accaac.

[0098] In certain embodiments, the monomers of the ss-oligonucleotides in any selected pair from the aforementioned group are beta-D-LNA monomers. In yet another specific embodiment, the monomers of the ss-oligonucleotides in any selected pair from the aforementioned group are beta-L-LNA monomers.

[0099] In contrast, pairs of single-stranded all-LNA oligonucleotides were found that were unable or poorly able to form duplexes under non-denaturing conditions, a non-limiting compilation of which is shown in Table 2. [Table 2]

[0100] The pair represented by SEQ ID NO: 29 and SEQ ID NO: 39 illustrates a case where the sequence complexity is minimal, with one member of the binding pair containing only four monomers. The binding properties characterizing this particular binding pair were found to be insufficient. One possible explanation is that the 4-mer is simply too short, resulting in insufficient intramolecular interactions with the corresponding single strand. This finding is in stark contrast to the case where the 4-mer is replaced by a 6-mer (the combination of SEQ ID NO: 27 and SEQ ID NO: 39).

[0101] It was found that for other pairs of all LNA oligonucleotides presented in Table 2, there is always one binding partner comprising or consisting of the sequence "gcctgacg" (SEQ ID NO: 3). Therefore, this particular sequence and its complementarity appear to adversely affect the ability of all such LNA oligonucleotides to form duplexes under non-denaturing conditions. This particularly surprising finding can actually guide those skilled in the art to select advantageous single-stranded oligonucleotide pairs having 8 or more monomers. Accordingly, embodiments and embodiments of all other aspects provided herein are pairs of separate ss-oligonucleotides, each consisting of 8 to 15 LNA monomers, wherein the separate ss-oligonucleotides in aqueous solution are capable of forming antiparallel duplexes with each other in the absence of denaturing conditions before or during duplex formation, and the ss-oligonucleotide pairs are obtainable and / or obtained by carrying out a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes with 8 to 15 consecutive base pairs in aqueous solution at a temperature between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 8 to 15 (i.e., a number selected from any of 8, 9, 10, 11, 12, 13, 14, and 15) locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, the nucleobases of the first ss-oligonucleotide forming a first nucleobase sequence, the first nucleobase sequence not consisting of or not including a sequence selected from 5'gcctgacg3' (SEQ ID NO: 3) and 5'cgtcaggc3' (SEQ ID NO: 4); (b) providing a second ss-oligonucleotide consisting of 8 to 15 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, and predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form a duplex with each other by complementarity, the predicted duplex comprising or consisting of 8 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds, and the second nucleobase sequence does not consist of or include a sequence selected from 5'gcctgacg3' (SEQ ID NO: 3) and 5'cgtcaggc3' (SEQ ID NO: 4); (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0102] By the method of the second aspect or the method of the third aspect disclosed herein and by utilizing any of its embodiments, including but not limited to the binding pairs shown in Table 1 Thus, alternatively or additionally, by selecting a binding pair excluding a sequence selected from 5'gcctgacg 3' (SEQ ID NO: 3) and 5'cgtcaggc 3' (SEQ ID NO: 4) when the number of monomers in one or both oligonucleotides is between 8 and 15, the present disclosure provides an antiparallel all-LNA duplex obtainable and / or obtainable under non-denaturing conditions at a preselected temperature between 25°C and 40°C from a non-denaturing pair of complementary single-stranded all-LNA oligonucleotides. Such a duplex in aqueous solution can be considered a fourth aspect of the present disclosure. Each oligonucleotide strand of the duplex comprises an LNA monomer, the number of LNA monomers being selected from the group consisting of 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, and 15, more particularly, the number being selected from the group consisting of 5, 6, and 7. The double strand is formed by complementary Watson-Crick base pairs, and the number of base pairs in the double strand is a number selected from the group consisting of 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, and 15, more specifically, any number selected from 8 to 15, or any number selected from 5 to 7.

[0103] In a fifth aspect relating to all aspects and embodiments disclosed herein, the present disclosure provides a liquid composition comprising an aqueous solvent and a binding pair consisting of a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, each oligonucleotide consisting of 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising nucleobases of the monomers forming a first nucleobase sequence of the first oligonucleotide and a second nucleobase sequence of the second oligonucleotide, the first nucleobase sequence and the second nucleobase sequence being such that the first oligonucleotide and the second oligonucleotide can form an antiparallel duplex of 5 to 15 consecutive Watson-Crick base pairs at a temperature of 0°C to 40°C, and the binding pair is obtainable by a method according to the second or third aspect disclosed herein.

[0104] In certain embodiments related to all aspects and embodiments disclosed herein, there is provided a liquid composition comprising an aqueous solvent and a binding pair consisting of a first single-stranded oligonucleotide and a second single-stranded oligonucleotide, each oligonucleotide consisting of 5 to 15, specifically 5 to 7 or 8 to 15, locked nucleic acid (LNA) monomers, each monomer comprising nucleobases of the monomers forming a first nucleobase sequence of the first oligonucleotide and a second nucleobase sequence of the second oligonucleotide, the first nucleobase sequence and the second nucleobase sequence being such that the first oligonucleotide and the second oligonucleotide can form an antiparallel duplex of 5 to 15, specifically 5 to 7 or 8 to 15 consecutive Watson-Crick base pairs at a temperature of 0°C to 40°C, and the binding pair is obtainable by a method according to the method of the second or third aspect disclosed herein.

[0105] In another embodiment related to all aspects and embodiments disclosed herein, each oligonucleotide consists of 5 to 15 LNA monomers, and the first nucleobase sequence and the second nucleobase sequence are selected such that the first oligonucleotide and the second oligonucleotide form an antiparallel duplex of 5 or more consecutive Watson-Crick base pairs at a temperature between 0°C and 40°C, and the binding pairs are obtainable or obtainable by the method of the second or third aspect and embodiments thereof.

[0106] In another embodiment, it has been further surprisingly discovered that there exist longer complementary all-LNA ss-oligonucleotides that can form antiparallel duplexes under non-denaturing conditions. Accordingly, the present disclosure provides a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides that can form antiparallel duplexes with 16 to 20 consecutive base pairs in aqueous solution at temperatures between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 16 to 20 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; -) providing an oligonucleotide, (b) providing a second ss-oligonucleotide consisting of 16 to 20 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 16 to 20 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0107] In one embodiment, steps (c) and (d) are specifically carried out in the absence of the conditions designated above as "denaturing conditions."

[0108] Certain embodiments of this second aspect, and certain embodiments related to all other aspects and embodiments disclosed herein, provide a method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes having 5 to 15 consecutive base pairs in aqueous solution at temperatures between 0°C and 40°C, the method comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 16 to 20 LNA monomers, the second ss-oligonucleotide consisting of at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence of the second ss-oligonucleotide, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation, the complementarity predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 5 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which step is carried out at a non-denaturing temperature, more particularly mixing the first ss-oligonucleotide and the second ss-oligonucleotide, which is carried out at a temperature of 0°C to 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, binding pairs of single-stranded all-LNA oligonucleotides are selected and provided.

[0109] In one embodiment, steps (c) and (d) are specifically carried out in the absence of the conditions designated above as "denaturing conditions."

[0110] Exemplary binding pairs of a first all-LNA ss-oligonucleotide and a second all-LNA ss-oligonucleotide have been identified as follows, as reflected in Table 3. These binding pairs are specific embodiments. [Table 3]

[0111] Finally, the sequences shown in Table 3 do not include the partial sequence gcctgacg (SEQ ID NO: 3) or its complement, which are described in detail above.

[0112] In an embodiment relating to all aspects and embodiments disclosed herein, one ss-oligonucleotide of the binding pair is attached (covalently or non-covalently) to a solid phase selected from the group consisting of magnetic beads, paramagnetic beads, synthetic organic polymer (latex) beads, polysaccharide beads, test tubes, microwell plate cavities, cuvettes, membranes, scaffold molecules, quartz crystals, films, filters, disks, and chips. In another embodiment relating to all aspects and embodiments disclosed herein, one ss-oligonucleotide of the binding pair is linked (covalently or non-covalently) to a molecule selected from the group consisting of peptides, polypeptides, oligonucleotides, polynucleotides, sugars, glycans, haptens, and dyes. In yet another embodiment relating to all aspects and embodiments disclosed herein, the ss-oligonucleotide is covalently attached to a linker. In yet another embodiment relating to all aspects and embodiments disclosed herein, the ss-oligonucleotide is covalently attached to an analyte-specific receptor useful in receptor-based assays, such as, but not limited to, immunoassays.

[0113] In very general terms, an immunoassay provides one or more receptors capable of specifically binding to a target analyte. Such receptors include analyte-specific immunoglobulins. An example of such a receptor-based assay is a purine-based assay. Hence the name immunoassay. However, for purposes of this disclosure, other types of analyte-specific receptors are also considered. Therefore, the more general term receptor-based assay is appropriate and is used synonymously with the term immunoassay.

[0114] Thus, a sixth aspect, related to all other aspects and embodiments disclosed herein, is the use of a pair of single-stranded all-LNA oligonucleotides of the first aspect in a receptor-based assay for determining an analyte, the receptor-based assay comprising an analyte-specific receptor and a solid phase for immobilizing the analyte to the solid phase, wherein a first ss-oligonucleotide of the pair is bound to the analyte-specific receptor and a second ss-oligonucleotide of the pair is bound to the solid phase. An embodiment of this aspect is any such use of a pair of single-stranded all-LNA oligonucleotides, wherein the pair of single-stranded all-LNA oligonucleotides is obtained by an embodiment according to either the second or third aspect of the present report.

[0115] In receptor-based assays, the analyte binds to an analyte-specific receptor. The analyte-bound receptor can be immobilized to a solid phase via the duplex formed by a pair of single-stranded LNA oligonucleotides. Consequently, a complex is formed, which includes the solid phase, the duplex, the receptor, and the analyte. In a further step, the immobilized analyte can be detected using an additional analyte-specific binding substance, which is itself labeled or whose presence can be detected by other means. In competitive assay formats, no additional binding substance is required. Instead, a predetermined amount of labeled analyte is added and competes for binding with the unlabeled analyte, whose presence and / or concentration is to be detected.

[0116] Typically, the analyte is contained in a sample, which is a complex mixture of different molecules. For the purposes of this disclosure, liquid samples are considered. A liquid sample comprises a liquid phase, i.e., a liquid solvent, which is usually an aqueous solvent. In the aqueous solvent, multiple molecules are present in a dissolved state. Thus, in certain embodiments, the sample is in a liquid aggregate state, which is a single-phase homogeneous mixture. In other specific embodiments, the sample comprises an insoluble portion, which is therefore a heterophase mixture, and the analyte is uniformly distributed throughout the sample. Typically, the analyte is contained in the mixture in dissolved form, and one or more additional molecules are also present in the mixture in dissolved form.

[0117] For the detection of a target analyte present or suspected to be present in a liquid sample, an essential step is for the analyte to specifically bind. Specific binding means the presence or addition of an analyte-specific receptor, which has high binding affinity and specificity for the target analyte and low or no binding affinity for additional molecules also present in the sample. In certain embodiments (and many existing assays exemplified), a compound containing a receptor capable of specifically binding to the analyte is added to the sample. Importantly, the mixture of the sample and the receptor-containing compound must provide conditions that allow for the specific interaction of the receptor in the sample with the target analyte. This includes the fact that the conditions in the mixture must be permissive for the actual binding of the analyte by the receptor, and the conditions should also stabilize the receptor with the bound target analyte. At the same time, it is desirable that the mixture of the sample and the compound not support or stabilize nonspecific binding of additional molecules to the receptor, or to the compound containing the receptor as a whole.

[0118] The analyte is then immobilized. Immobilization is a key step in the detection process, allowing the analyte to be separated from the surrounding complex mixture, particularly from additional molecules of the sample. Immobilization requires a solid phase to which the target analyte becomes attached. Once immobilized, the analyte can be separated from the mixture by phase separation. The analyte is then detected after being separated from the mixture (i.e., purified).

[0119] Considering receptor-based assays and immobilization steps, it is necessary to provide a solid phase and establish a link between the solid phase and the target analyte, preferably by a self-assembly process.

[0120] Immunoassays are a particular embodiment and are well-established bioanalytical methods for the detection or quantification of analytes that rely on the reaction of the analyte with at least one analyte-specific receptor, resulting in the formation of an analyte:receptor complex. A non-limiting example is the reaction between an antigen and an antibody, respectively.

[0121] Thus, a seventh aspect, related to all aspects and embodiments disclosed herein, is a method of performing a receptor-based assay for determining an analyte, comprising contacting the analyte with a solid phase having attached thereto a first member of a pair of separate ss-oligonucleotides of the first aspect disclosed herein and a second member of the pair, and incubating the analyte, thereby forming a complex comprising the solid phase, the analyte-specific receptor bound to the solid phase, and the analyte bound to the analyte-specific receptor, an antiparallel duplex is formed, the duplex consisting of the first and second members of the pair, the duplex connecting the analyte-specific receptor and the solid phase in the complex, followed by detecting the analyte bound to the complex, thereby determining the analyte. In one embodiment, the latter step of detection can be carried out, for example, using a labeled analyte-specific antibody capable of binding to the analyte in the complex, also known in the art as a "sandwich" assay.

[0122] Certain embodiments of "sandwich" immunoassays can be used for analytes with multiple recognition epitopes (i.e., two or more recognition epitopes). Therefore, sandwich assays require at least two receptors that attach to non-overlapping epitopes on the analyte. In a "heterogeneous sandwich immunoassay," one of the receptors functions as an analyte-specific capture receptor, and this receptor is immobilized on a solid phase or becomes immobilized (during the assay). The second analyte-specific receptor is provided in dissolved form in the liquid phase. When each analyte is bound by the first and second receptors, a sandwich complex is formed (receptor-1:analyte:receptor-2). The sandwich complex is also called a "detection complex." Within the detection complex, the analyte is sandwiched between the receptors. That is, within such a complex, the analyte represents the link between the first and second receptors.

[0123] The term "heterogeneous" (as opposed to "homogeneous") refers to two essential, separate steps in the assay procedure. In the first step, a label-containing detection complex is formed and immobilized, with unbound label still surrounding the complex. Before determining the label-dependent signal, the unbound label is washed away from the immobilized detection complex, thus representing the second step. In contrast, a homogeneous assay generates an analyte-dependent detectable signal by a single-step incubation and does not require a wash step.

[0124] In heterogeneous assays, the solid phase is functionalized such that it may bind a functional capture receptor (first receptor) to its surface before contacting the analyte, or the surface of the solid phase is functionalized such that it can tether the first receptor after reacting with (i.e., binding to) the analyte. In the latter case, the tethering process must not interfere with the receptor's ability to specifically capture and bind the analyte. A second analyte-specific receptor present in the liquid phase is used to detect the bound analyte, i.e., the analyte that is immobilized or immobilized to the solid phase. Thus, in an immunoassay, the analyte can bind to the first (capture) receptor and the second (detection) receptor, thereby sandwiching the analyte between the capture receptor and the detection receptor. A "detection complex" is formed by binding the detection receptor to the analyte. In a typical embodiment, the detection receptor is labeled before contacting the analyte. Alternatively, the label specifically attaches to the detection receptor after the analyte binds. If the detection complex is immobilized on a solid phase, the amount of detectable label on the solid phase corresponds to the amount of sandwiched analyte. After a washing step to remove unbound label, the immobilized label can be detected, indicating the presence and amount of analyte.

[0125] In heterogeneous immunoassays, the washing step requires non-covalent linkage between the first binding partner and the second binding partner for sufficient stability. However, the degree of stability required for the linkage varies depending on the strength of the washing step applied. Importantly and unexpectedly, the binding pair as shown herein is exceptionally well suited to facilitating the immobilization step in immunoassays. That is, in immunoassays, the first binding partner of the binding pair of the entire LNA oligonucleotide attached to the solid phase and the second binding partner of the binding pair attached to the analyte-specific capture receptor are suitable for promoting the immobilization of the receptor to the solid phase. Similarly, such immobilization also favors the capture receptor bound to the target analyte and the detection complex.

[0126] Another well-known embodiment is the competitive immunoassay, which, in its simplest form, differs from the sandwich format by the lack of a second detection receptor. In contrast, a sample containing the analyte is mixed with an artificially generated, labeled analog capable of cross-reacting with the analyte-specific receptor. In the assay, the analyte and analog compete for binding to the immobilized or immobilized capture receptor. Following this binding step, the greater the amount of immobilized label, the less unlabeled analyte is able to compete for the capture receptor. The immobilized label is quantified after a washing step. Thus, the amount of detectable label on the solid phase corresponds inversely to the amount of analyte originally present in the sample.

[0127] In all aspects and embodiments disclosed herein, the binding strength of the duplex formed by the all-LNA oligonucleotide pair exceeds the binding strength holding together either the analyte or the analyte-specific (capture and / or detection) receptor, which is used in an assay for analyte detection (such as, but not limited to, an immunoassay). If the binding strength of the duplex needs to be fine-tuned, binding pairs can be selected to provide Watson-Crick pairing regions of different lengths and / or different base pair compositions. More generally, pairs of complementary single-stranded all-LNA oligonucleotides can be provided and selected according to specific technical needs, with the first and second components bound to each other by the all-LNA binding pair.

[0128] The binding strength of a Watson-Crick paired complementary all-LNA oligonucleotide duplex with a given number of paired nucleobases can be fine-tuned by altering individual base pairs in the duplex (e.g., by replacing A:T base pairs with C:G base pairs) or by lengthening or shortening the duplex. In either case, the fine-tuned single-stranded all-LNA pair must be subjected to a method for selecting and providing single-stranded all-LNA oligonucleotide binding pairs capable of forming antiparallel duplexes with 5 to 15 consecutive base pairs in aqueous solution at temperatures between 0°C and 40°C, as disclosed elsewhere in this document.

[0129] An eighth aspect, however, related to all other aspects and embodiments disclosed herein, is a kit for performing a receptor-based assay for determining an analyte, the kit comprising in a first container an analyte-specific receptor having attached thereto a first member of a pair of separate ss-oligonucleotides according to the first aspect disclosed herein or a first member of a pair of separate ss-oligonucleotides obtained by a method according to the second or third aspect disclosed herein, the kit comprising a second member of said pair The second container further comprises an attached solid phase.

[0130] Even in more general terms, there is provided a kit for non-covalently linking a first component and a second component, the kit comprising, in a first separate compartment, a first component having attached thereto a first member of a pair of separate ss-oligonucleotides according to the first aspect disclosed herein or obtained by a method according to the second or third aspect disclosed herein, the kit further comprising, in a second container, a second component having attached thereto a second member of said pair.

[0131] It is understood that the binding pairs disclosed in this report can serve as general substitutes for established binding pairs such as biotin:(strept)avidin. Thus, all-LNA binding pairs can be used to connect first and second components attached to the first and second members, respectively, of a complementary pair of ss-oligonucleotides that can form duplexes under non-denaturing conditions. Those skilled in the art will be familiar with numerous applications beyond the analyte detection assays described in more detail herein, but also extending to, for example, in situ analysis of target antigens in tissue samples.

[0132] In principle, the binding pairs of the present disclosure also allow for the provision of separate, different binding pairs in the same aqueous solution, thereby opening the way for multiplexed assays. Many different additional applications become possible thanks to the identification of different binding pairs of oligonucleotides that do not share complementary base sequences.

[0133] Particular aspects and embodiments include the following more formal list of items: This list of numbered items forms part of the initial disclosure of this report. A method for selecting and providing binding pairs of single-stranded all-LNA oligonucleotides capable of forming antiparallel duplexes having 5 to 15 consecutive base pairs in aqueous solution at a temperature of 1.0°C to 40°C, comprising: (a) providing a first single-stranded (ss-) oligonucleotide consisting of 5 to 15 locked nucleic acid (LNA) monomers, each monomer comprising a nucleobase, and wherein the nucleobases of the first ss-oligonucleotide form a first nucleobase sequence; (b) providing a second ss-oligonucleotide consisting of 5 to 15 LNA monomers, the second ss-oligonucleotide comprising at least as many monomers as the first ss-oligonucleotide, each monomer of the second ss-oligonucleotide comprising a nucleobase, the nucleobases of the second ss-oligonucleotide forming a second nucleobase sequence, the second nucleobase sequence comprising or consisting of a nucleobase sequence complementary to the first nucleobase sequence in an antiparallel orientation; and predicting the ability of the first ss-oligonucleotide and the second ss-oligonucleotide to form an antiparallel duplex with each other, the predicted duplex comprising or consisting of 5 to 15 consecutive base pairs, the two bases of each base pair being linked to each other by hydrogen bonds; (c) mixing the first ss-oligonucleotide and the second ss-oligonucleotide in approximately equimolar amounts in an aqueous solution, which is carried out at a non-denaturing temperature, more specifically at a temperature between 0°C and 40°C; (d) incubating the mixture of (c) for a time interval of not more than 20 minutes, thereby obtaining a mixture still comprising the first and second oligonucleotides as ss-oligonucleotides or a mixture comprising or consisting of the first and second oligonucleotides as double strands; (e) detecting and quantifying the ss-oligonucleotides and double-stranded oligonucleotides in the mixture obtained in step (d), followed by (f) selecting the binding pair if a duplex is detectably present in step (e) and if the molar amount of the duplex is higher than the molar amount of the ss-oligonucleotide; (g) optionally, separately synthesizing the first and second ss-oligonucleotides of the binding pair selected in step (f); Thereby, a method for selecting and providing binding pairs for single-stranded all-LNA oligonucleotides.

[0134] 2. The method according to Item 1, wherein in step (a), when the number of monomers of the first oligonucleotide is 8 to 15, the first nucleic acid base sequence is not composed of or does not include a sequence selected from 5'gcctgacg3' (SEQ ID NO: 3) and 5'cgtcaggc3' (SEQ ID NO: 4).

[0135] 3. The method according to Item 1 or 2, wherein when the number of monomers of the second oligonucleotide is 8 to 15, the second nucleic acid base sequence is not composed of or does not include a sequence selected from 5'gcctgacg3' (SEQ ID NO: 3) and 5'cgtcaggc3' (SEQ ID NO: 4).

[0136] 4. The method according to any one of items 1 to 3, wherein, prior to step (e), the mixture obtained in step (d) is subjected to an additional step of separating ss-oligonucleotides and double-stranded oligonucleotides.

[0137] 5. The method according to any one of items 1 to 4, wherein steps (c) and (d) are carried out at a non-denaturing temperature, specifically a temperature selected from the group consisting of 0°C to 5°C, 5°C to 10°C, 10°C to 15°C, 15°C to 20°C, 20°C to 25°C, 25°C to 30°C, 30°C to 35°C, and 35°C to 40°C.

[0138] 6. The method according to any one of items 1 to 5, wherein steps (c) and (d) are carried out at a temperature of 25°C to 37°C.

[0139] 7. The method according to any one of items 1 to 6, wherein prior to step (c), each ss-oligonucleotide of either step (a) or step (b) is maintained in the absence of denaturing conditions.

[0140] 8. The method according to Item 7, wherein, prior to step (c), each ss-oligonucleotide in either step (a) or step (b) is maintained in an aqueous solution at a temperature of -80°C to 40°C, specifically 0°C to 40°C, more specifically 25°C to 37°C.

[0141] 9. The method of claim 7, wherein prior to step (c), each ss-oligonucleotide of either step (a) or step (b) is maintained in aqueous solution in the absence of a denaturant compound capable of lowering the melting temperature of a DNA duplex 20 base pairs in length and having a G+C content of 50% or more by at least 15°C, specifically in the absence of formamide and DMSO.

[0142] 10. The method according to any one of items 1 to 9, wherein in step (d), the time interval is selected from the group consisting of 1 second to 20 minutes, 1 second to 5 minutes, 1 second to 60 seconds, and 1 second to 30 seconds.

[0143] 11. The method according to any one of items 1 to 10, wherein the mixture in step (c) contains a buffer that maintains the pH of the mixture at pH 6 to pH 8, more specifically pH 6.5 to pH 7.5.

[0144] 12. The method according to any one of items 1 to 11, wherein the mixture of step (c) contains the dissolved substance in an amount of about 10 mmol / L to about 1000 mmol / L, specifically about 10 mmol / L to about 500 mmol / L, more specifically about 200 mmol / L to about 300 mmol / L.

[0145] 13. The method of any one of paragraphs 1 to 12, wherein steps (c) and (d) are carried out in the absence of a denaturant compound capable of lowering the melting temperature of a DNA duplex 20 base pairs in length and having a 50% G+C content by at least 15°C, more specifically in the absence of both formamide and dimethyl sulfoxide.

[0146] 14. Each LNA monomer is N 4-acetylcytosine, 5-acetyluracil, 4-amino-6-chloropyrimidine, 4-amino-5-fluoro-2-methoxypyrimidine, 6-amino-1-methyluracil, 5-aminoorotic acid, 5-aminouracil, 6-aminouracil, 6-azauracil, N 4 -benzoylcytosine, 5-bromouracil, 5-chlorouracil, 6-chlorouracil, 6-chloromethyluracil, 6-chloro-3-methyluracil, cytosine, 5,6-dimethyluracil, 5-ethyluracil, 5-ethynyluracil, 5-fluorocytosine, 5-fluoroorotic acid, 5-fluorouracil, 5-iodo-2,4-dimethoxypyrimidine, 5-iodouracil, isocytosine, 5-methylcytosine, 6-methyl-5-nitrouracil, 2-methylthio-4-pyrimidinol, 5-methyl-2-thiouracil, 6-methyl-2-thiouracil, 6-methyl Uracil, 5-nitrouracil, orotic acid, 6-phenyl-2-thiouracil, 6-propyl-2-thiouracil, 2-thiouracil, 4-thiouracil, thymine, 5-(trifluoromethyl)uracil, uracil, adenine, 8-azahypoxanthine, 8-azaguanine, allopurinol, 4-aminopyrazolo[3,4-d]pyrimidine, 2-aminopurine, 2-acetamido-6-hydroxypurine, 2-amino-6-chloropurine, 2-amino-6-iodopurine, azathioprine, 4-amino-6-hydroxypyrazolo[3,4-d]pyrimidine, aminophylline, N 6 -benzyladenine, N 6-Benzoyladenine, 6-benzyloxypurine, 8-bromotheophylline, 8-bromo-3-methylxanthine, 8-bromo-7-(2-butyn-1-yl)-3-methylxanthine, 6-chloropurine, 8-chlorotheophylline, 6-chloro-2-fluoropurine, 6-chloro-7-deazapurine, 2-chloroadenine, 6-chloro-7-iodo-7-deazapurine, 2,6-diaminopurine, 2,6-dichloropurine , 6-(dimethylamino)purine, 2,6-dichloro-7-deazapurine, 5,6-dichlorobenzimidazole hydrochloride, 7-deazahypoxanthine, 2-fluoroadenine, guanine, hypoxanthine, isoguanine, 3-iodo-1H-pyrazolo-[3,4-d]pyrimidin-4-amine, kinetin, 6-mercaptopurine, 6-methoxypurine, 3-methylxanthine, 1-methylxanthine, 3-methyladenine, O 6 Item 14. The method according to any one of Items 1 to 13, wherein the nucleic acid comprises a nucleic acid base selected from the group consisting of -(cyclohexylmethyl)guanine, 6-thioguanine, 2-thioxanthine, xanthine, 5-propynyl-uracil, 5-propynyl-cytidine, 7-deazaadenine, 7-deazaguanine, 7-propynyl-7-deazaadenine, 7-propynyl-7-deazaguanine, and derivatives thereof.

[0147] 15. The method of paragraph 14, wherein each LNA monomer comprises a nucleobase selected from the group consisting of adenine, thymine, uracil, guanine, cytosine, and 5-methylcytosine.

[0148] 16. The method according to any one of items 1 to 15, wherein prior to step (e), the incubated mixture of step (d) is subjected to a step of separating ss-oligonucleotides and double-stranded oligonucleotides.

[0149] 17. The method according to item 16, wherein the incubated mixture of step (d) is subjected to column chromatography and / or electrophoresis.

[0150] 18. The method according to any one of items 1 to 17, wherein the monomer of the ss-oligonucleotide in either step (a) or step (b) is a beta-D-LNA monomer.

[0151] 19. The method according to any one of items 1 to 17, wherein the monomer of the ss-oligonucleotide in either step (a) or step (b) is a beta-L-LNA monomer.

[0152] 20. A pair of separate, complementary ss-oligonucleotides, each ss-oligonucleotide consisting of 5 to 15 LNA monomers, wherein the separate ss-oligonucleotides in aqueous solution are capable of forming antiparallel duplexes with each other in the absence of denaturing conditions prior to or during duplex formation.

[0153] 21. A pair of separate, complementary ss-oligonucleotides, each ss-oligonucleotide consisting of 8 to 15 LNA monomers, wherein the separate ss-oligonucleotides in aqueous solution are capable of forming antiparallel duplexes with each other in the absence of denaturing conditions prior to or during duplex formation, and wherein each ss-oligonucleotide does not contain a sequence selected from the group consisting of 5'gcctgacg 3' (SEQ ID NO: 3) and 5'cgtcaggc 3' (SEQ ID NO: 4).

[0154] 22. A pair of separate, complementary ss-oligonucleotides, each ss-oligonucleotide consisting of 5 to 7 LNA monomers, wherein the separate ss-oligonucleotides in aqueous solution are capable of forming antiparallel duplexes with each other in the absence of denaturing conditions prior to or during duplex formation.

[0155] 23. A pair of separate, complementary ss-oligonucleotides according to any one of paragraphs 20 to 22, wherein the pair of ss-oligonucleotides is obtained by carrying out the method according to any one of paragraphs 1 to 19.

[0156] 24. A pair of separate, complementary ss-oligonucleotides, said pair being selected from the group consisting of: (SEQ ID NO: 1): (SEQ ID NO: 2), (SEQ ID NO: 9): (SEQ ID NO: 10), (SEQ ID NO: 11): (SEQ ID NO: 12), (SEQ ID NO: 13): (SEQ ID NO: 14), (SEQ ID NO: 9): (SEQ ID NO: 15), (SEQ ID NO: 16): (SEQ ID NO: 20), (SEQ ID NO: 21): (SEQ ID NO: 18), (SEQ ID NO: 21): (SEQ ID NO: 20), (SEQ ID NO: 21): (SEQ ID NO: 19), (SEQ ID NO: 23): (SEQ ID NO: 17), (SEQ ID NO:25):(SEQ ID NO:28). 25. A pair of separate, complementary ss-oligonucleotides according to paragraph 24, wherein the pair is selected from the group consisting of: (SEQ ID NO: 1): (SEQ ID NO: 2), (SEQ ID NO:28): (SEQ ID NO:24), (SEQ ID NO: 16): (SEQ ID NO: 20).

[0157] 26. A pair of separate, complementary ss-oligonucleotides according to any one of paragraphs 20 to 25, wherein the first ss-oligonucleotide of the pair is attached to a first target and the second ss-oligonucleotide is attached to a second target.

[0158] 27. A pair of separate, complementary ss-oligonucleotides according to paragraph 26, wherein the ss-oligonucleotides are covalently or non-covalently bound to their respective targets.

[0159] 28. A pair of separate, complementary ss-oligonucleotides according to paragraph 26 or 27, wherein the targets are independently selected from the group consisting of a solid phase, a biomolecule, and a chemically synthesized compound.

[0160] 29. A pair of separate, complementary ss-oligonucleotides according to any one of paragraphs 26 to 28, wherein the targets are independently selected from the group consisting of an amino acid or analog thereof, a peptide, a polypeptide, a protein, a nucleic acid base, a nucleoside, an oligonucleotide, a nucleic acid, a lipid, and an analyte-specific receptor, a receptor including an antibody, an antibody derivative, and an antibody fragment.

[0161] 30. The pair of separate complementary ss-oligonucleotides of any of paragraphs 26 to 28, wherein the targets are independently selected from the group consisting of peptides, polypeptides, proteins, steroid or non-steroid hormones, haptens, and conjugates thereof.

[0162] 31. The pair of separate complementary ss-oligonucleotides of any one of paragraphs 26 to 28, wherein the target comprises a conjugate consisting of a plurality of different molecules selected from the group consisting of peptides, polypeptides, proteins, steroid or non-steroid hormones, haptens, nucleobases, nucleosides, oligonucleotides, nucleic acids, lipids, analyte-specific receptors, analyte cross-linkers, and mixtures thereof.

[0163] 32. A pair of separate, complementary ss-oligonucleotides according to any one of paragraphs 26 to 28, wherein the target comprises a solid phase.

[0164] 33. A pair of separate, complementary ss-oligonucleotides according to any one of paragraphs 26 to 28, wherein the target comprises a detectable label. 34. A method for forming antiparallel all-LNA duplexes in the absence of denaturing conditions, comprising: (a) separately providing a first member and a second member of a pair of single-stranded all-LNA oligonucleotides according to any one of paragraphs 20 to 33, wherein each single-stranded all-LNA oligonucleotide is dissolved separately in an aqueous solution in the absence of a denaturing agent and maintained at a temperature between 0°C and 40°C; (b) contacting the pair of single-stranded all-LNA oligonucleotides with each other at a temperature between 0°C and 40°C in the absence of a denaturing agent, Thereby forming an antiparallel all-LNA duplex.

[0165] 35. An antiparallel duplex formed by a first member and a second member of a pair of single-stranded all-LNA oligonucleotides, the antiparallel duplex being obtained by the method of paragraph 34.

[0166] 36. Use of a pair of single-stranded all-LNA oligonucleotides according to any one of paragraphs 20 to 33 in a liquid aqueous medium to connect a first and a second component of a complex, wherein the first component is attached to the first member of the pair and the second component is attached to the second member of the pair.

[0167] 37. Use of a pair of single-stranded all-LNA oligonucleotides according to any one of clauses 20 to 33 in a receptor-based assay for determining an analyte, the receptor-based assay comprising an analyte-specific receptor and a solid phase for immobilizing the analyte on the solid phase, wherein a first ss-oligonucleotide of the pair is bound to the analyte-specific receptor and a second ss-oligonucleotide of the pair is bound to the solid phase.

[0168] 38. A kit for performing a receptor-based assay for determining an analyte. 34. A kit comprising in a first container an analyte-specific receptor having attached thereto a first member of a pair of separate ss-oligonucleotides according to any one of paragraphs 20 to 33, the kit further comprising in a second container a solid phase having attached thereto a second member of said pair.

[0169] 39. A method for performing a receptor-based assay for determining an analyte, comprising the steps of contacting the analyte with a first member of a pair of separate ss-oligonucleotides according to any one of paragraphs 20 to 33, having attached thereto an analyte-specific receptor, and a solid phase having attached thereto a second member of the pair, and incubating, thereby forming a complex comprising the solid phase, the analyte-specific receptor bound to the solid phase, and the analyte bound to the analyte-specific receptor, wherein an antiparallel duplex is formed, the duplex consisting of the first and second members of the pair, the duplex connecting the analyte-specific receptor and the solid phase in the complex, and subsequently detecting the analyte bound to the complex, thereby determining the analyte.

[0170] For all aspects and embodiments disclosed herein, one skilled in the art will understand that the analyte-specific receptor specifically comprises an antibody or antibody fragment.

[0171] The following examples and figures are provided to aid the understanding of the present invention, the true scope of which is set forth in the appended claims. It is understood that modifications can be made in the procedures set forth without departing from the spirit or scope of the invention. [Brief explanation of the drawings]

[0172] [Figure 1A] Schematic diagram (Example 2) showing the screening approach for compatible all-LNA oligonucleotide binding pairs. The black bars represent the amount of each single-stranded molecule, double-stranded molecule, or other complex molecule. The first (1) and second (2) single-stranded oligonucleotides are in contact with each other. A: Neither of the two oligonucleotides features inter- or intramolecular secondary structure, and neither interferes with molecular recognition of their respective partners. As a result, double-strands are predominantly abundant in the resulting product, while single-strands are undetectable or present in trace amounts (the desired outcome). [Figure 1B]Schematic diagram (Example 2) showing a screening approach for compatible all-LNA oligonucleotide binding pairs. The black bars represent the amount of each single-stranded molecule, double-stranded molecule, or other complex molecule. A: The first (1) and second (2) single-stranded oligonucleotides are in contact with each other. B: At least one of the two oligonucleotides features an intermolecular or intramolecular secondary structure. As a result, double strands are less abundant, and the majority of single strands are still present, and duplexes form, but at a reduced rate (an undesirable result). [Figure 1C] Schematic diagram (Example 2) showing the screening approach for compatible all-LNA oligonucleotide binding pairs. The black bars represent the amount of each single-stranded molecule, double-stranded molecule, or other complex molecule. The first (1) and second (2) single-stranded oligonucleotides are in contact with each other. C: Both oligonucleotides feature intermolecular or intramolecular secondary structure. As a result, no duplexes are formed, or only a small amount of duplexes are formed, and single strands still exist even after prolonged incubation (an undesirable result). [Figure 2] HPLC analysis of single-stranded LNA1 (SEQ ID NO: 1; Example 2); the displayed retention time of the main peak is 3.353 min. [Figure 3] HPLC analysis of single-stranded LNA2 (SEQ ID NO: 2; Example 2); the indicated retention time of the minor peak is 6.440 min, and the indicated retention time of the main peak is 7.145 min. [Figure 4] HPLC analysis of mixed LNA1 and LNA2, immediate injection into the HPLC system (Example 2). The displayed retention time of the minor peak is 1.671 min, and the displayed retention time of the main peak is 6.641 min. [Figure 5] HPLC analysis of mixed LNA1 and LNA2 after heat denaturation before injection (Example 2). Positive control: duplex formation; the displayed retention time of the minor peak is 1.710 min, the displayed retention time of the main peak is 6.656 min. [Figure 6] HPLC analysis of single-stranded LNA3 (SEQ ID NO: 5; Example 2); the displayed retention time of the main peak is 3.353 min. [Figure 7] HPLC analysis of single-stranded LNA4 (SEQ ID NO: 6; Example 2); the indicated retention time of the minor peak is 6.440 min, and the indicated retention time of the main peak is 7.145 min. [Figure 8] HPLC analysis of mixed LNA3 and LNA4, immediate injection into the HPLC system (Example 2). Slow duplex formation (ratio <0.05). The displayed retention time of the first peak is 3.387 min, and the displayed retention time of the main peak is 7.157 min. [Figure 9] HPLC analysis of mixed LNA3 and LNA4, 50 minutes post-injection (Example 2). Slow duplex formation (ratio = 0.05). The first peak has an indicated retention time of 3.365 minutes, the second peak has an indicated retention time of 6.871 minutes, and the third peak has an indicated retention time of 7.148 minutes. [Figure 10] HPLC analysis of mixed LNA3 and LNA4 after heat denaturation before injection (Example 2). Positive control: duplex formation. The indicated time of the main peak is 6.882 min. [Figure 11] HPLC analysis of single-stranded LNA 5'-Bi-Heg-accaac-3' (5'-modified SEQ ID NO: 20). The displayed retention time of the main peak is 6.184 min. [Figure 12] HPLC analysis of single stranded LNA 5'-gttggt-3' (SEQ ID NO: 16). The indicated retention time of the minor peak is 1.496 min and the indicated retention time of the main peak is 1.865 min. [Figure 13] HPLC analysis of mixed LNA 5'-Bi-Heg-accaac-3'' (SEQ ID NO: 20) and 5'-gttggt-3' (SEQ ID NO: 16) (mixed at room temperature and immediately injected). The indicated retention time of the main peak is 6.568 min. Rapid duplex formation (100% duplex formation: ratio 1.0). 5'-gttggt-3' (SEQ ID NO: 14) was used for duplex formation, and some residual single-stranded LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) was detectable. [Figure 14]HPLC analysis of mixed LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) and 5'-gttggt-3' (SEQ ID NO: 16) (stored and mixed at +4°C to +6°C, immediately injected). The indicated retention time of the main peak is 6.588 min, with an alternative retention time of 7.056 min. Rapid duplex formation (100% duplex formation: ratio 1.0). 5'-gttggt-3' (SEQ ID NO: 16) was used for duplex formation, and a small amount of residual single-stranded LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) was detectable. [Figure 15] HPLC analysis of mixed LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) and 5'-gttggt-3' (SEQ ID NO: 16) (stored at 0°C and mixed (ice bath) and immediately injected). The indicated retention time of the main peak is 6.552 minutes. Rapid duplex formation (100% duplex formation: ratio 1.0). 5'-gttggt-3' (SEQ ID NO: 16) was used for duplex formation, and a small amount of residual single-stranded LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) was detectable. [Figure 16] HPLC analysis of mixed LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) and 5'-gttggt-3' (SEQ ID NO: 16) (stored at -10°C and mixed (magnesium chloride / ice bath) and immediately injected). The indicated retention time of the main peak is 6.547 min. Rapid duplex formation (100% duplex formation: ratio 1.0). 5'-gttggt-3' (SEQ ID NO: 16) was used for duplex formation, and a small amount of residual single-stranded LNA 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) was detectable. [Figure 17] HPLC analysis of mixed 5'-Bi-Heg-accaac-3' (SEQ ID NO: 20) and 5'-gttggt-3' (SEQ ID NO: 16) after heat denaturation and annealing prior to injection. The displayed retention time of the main peak is 6.583 minutes, with an alternate retention time of 6.967 minutes shown. Positive control for duplex formation. [Figure 18]HPLC analysis of single stranded LNA 5'-Bi-Heg-cgtcaggcagttcag-3' (5' modified SEQ ID NO: 47). The displayed retention time of the main peak is 6.840 min. [Figure 19] HPLC analysis of single stranded LNA 5'-ctgaactgcctgacg-3' (SEQ ID NO: 48). The displayed retention time of the main peak is 3.488 min. [Figure 20] HPLC analysis of mixed LNA 5'-Bi-Heg-cgtcaggcagttcag-3' (SEQ ID NO: 47) / 5'-ctgaactgcctgacg-3' (SEQ ID NO: 48) (mixed at room temperature and injected immediately). The indicated retention time of the first peak is 3.594 minutes, and the indicated retention time of the second peak is 6.580 minutes. Identification of a sequence pair with slow duplex formation. Slow duplex formation (ratio <0.5). [Figure 21] HPLC analysis of mixed LNA 5'-Bi-Heg-cgtcaggcagttcag-3' (SEQ ID NO: 47) / 5'-ctgaactgcctgacg-3' (SEQ ID NO: 48) (stored and mixed at 0°C, immediate injection). The indicated retention time of the first peak is 3.541 minutes, and the indicated second retention time of each peak is 6.853 minutes. Slow duplex formation (ratio <0.5). [Figure 22] HPLC analysis of mixed LNA 5'-Bi-Heg-cgtcaggcagttcag-3' (SEQ ID NO: 47) / 5'-ctgaactgcctgacg-3' (SEQ ID NO: 48) (stored and mixed (magnesium chloride / ice bath) at -10°C and immediately injected). The indicated retention time of the first peak is 3.516 minutes, and the indicated second retention time of each peak is 6.848 minutes. Slow duplex formation (ratio <0.5). [Figure 23] HPLC analysis of mixed LNA 5'-Bi-Heg-cgtcaggcagttcag-3' (SEQ ID NO: 47) / 5'-ctgaactgcctgacg-3' (SEQ ID NO: 48) after heat denaturation and annealing before injection. The displayed retention time of the main peak is 6,580 min. Positive control: duplex formation. [Figure 24A]A: Schematic of the Biacore sensor used in Example 4. B: Individual components shown in A: 1: sensor surface, 2: streptavidin attached to the sensor surface, 3: biotin, 4: linker molecule covalently linking the first ss-oligonucleotide to the biotin, 5: first ss-oligonucleotide, 6: second ss-oligonucleotide. a: Depicted is the situation when the second ss-oligonucleotide comes into contact with the sensor with the first ss-oligonucleotide attached. b: Depicted is the result of the two ss-oligonucleotides being compatible and forming a duplex under non-denaturing conditions. As a result, the bound second ss-oligonucleotide causes a change that can be detected by the Biacore instrument. [Figure 24B] A: Schematic of the Biacore sensor used in Example 4. B: Individual components shown in A: 1: sensor surface, 2: streptavidin attached to the sensor surface, 3: biotin, 4: linker molecule covalently linking the first ss-oligonucleotide to the biotin, 5: first ss-oligonucleotide, 6: second ss-oligonucleotide. a: Depicted is the situation when the second ss-oligonucleotide comes into contact with the sensor with the first ss-oligonucleotide attached. b: Depicted is the result of the two ss-oligonucleotides being compatible and forming a duplex under non-denaturing conditions. As a result, the bound second ss-oligonucleotide causes a change that can be detected by the Biacore instrument. [Figure 25] Results of Example 4. [Figure 26] Results of Example 4. [Figure 27] Results of Example 4. [Figure 28] Results of Example 4. [Figure 29] Results of Example 4. [Figure 30] Results of Example 4. [Figure 31] Results of Example 4. [Figure 32] Results of Example 4. [Figure 33] Results of Example 4. [Figure 34] Results of Example 4. [Figure 35] Results of Example 4. [Figure 36] Results of Example 4. [Figure 37] Results of Example 4. [Figure 38] Results of Example 4. [Figure 39] Results of Example 4. [Figure 40] Results of Example 4. [Figure 41] Results of Example 4. [Figure 42] Results of Example 4. [Figure 43] Results of Example 4. [Figure 44] Results of Example 4. [Figure 45] Results of Example 4. [Figure 46] Results of Example 4. [Figure 47] Results of Example 4. [Figure 48] Results of Example 4. [Figure 49] Results of Example 4. [Figure 50] Results of Example 4. [Figure 51A] Schematic of the Biacore experiment of Example 5. [Figure 51B] Schematic of the Biacore experiment of Example 5. [Figure 51C] Schematic of the Biacore experiment of Example 5. [Figure 52-1] Results of Example 5. [Figure 52-2] Results of Example 5. [Figure 53-1] Results of Example 5. [Figure 53-2] Results of Example 5. [Figure 54] Schematic of the Biacore experiment of Example 6. [Figure 55-1] LNA-construct binding to Bi-LNA-construct; binding constant at 25°C. [Figure 55-2]LNA-construct binding to Bi-LNA-construct; binding constant at 25°C. [Figure 56-1] LNA-construct binding to Bi-LNA-construct; binding constant at 37°C. [Figure 56-2] LNA-construct binding to Bi-LNA-construct; binding constant at 37°C.

[0173] Example 1 Synthesis of LNA oligonucleotides LNA oligonucleotides were synthesized using standard automated solid-phase DNA synthesis procedures, applying phosphoramidite chemistry on an ABI 394 DNA synthesizer in 1 μmole-scale synthesis. Glen UniSupport PS (Glen Research Cat. No. 26-5040) and LNA phosphoramidites (Qiagen / Exiqon Cat. Nos. 33970 (LNA-A(Bz), 339702 (LNA-T), 339705 (LNA-mC(Bz) and 339706 (LNA-G(dmf); beta-L-LNA analogs were obtained from A.A. Koshkin et al., J. Org. Chem. The D-beta-LNA phosphoramidite was synthesized according to the method of the present invention starting from L-glucose (Carbosynth, Cat. No. MG05247) as well as the D-beta-LNA phosphoramidite, using the spacer phosphoramidite 18 (Glen Research Cat. No. 10-1918) and 5'-biotin phosphoramidite (Glen Research Cat. No. 10-5950) as building blocks. The phosphoramidites were applied at a concentration of 0.1 M in DNA-grade acetonitrile. Standard DNA cycles with extended coupling times (180 s), extended oxidation times (45 s), and detritylation times (85 s) were used for the assembly of LNA oligonucleotides, along with standard synthesis reagents and solvents. The 5'-biotinylated LNA oligonucleotides were synthesized DMToff, whereas the unmodified LNA oligonucleotides were synthesized DMTon. Next, a standard cleavage program was applied to cleave the LNA oligonucleotides from the support with concentrated ammonia. Residual protecting groups were cleaved by treatment with concentrated ammonia (56 °C for 8 h). The crude LNA oligonucleotides were evaporated and purified by RP HPLC (column: PRP-1, 7 μm, 250 x 21.5 mm (Hamilton, part The oligonucleotides were purified on a 500-kJ / LNA column (Waters part no. 79352) or an XBridge BEH C18 OBD, 5 μm, 10 x 250 mm (Waters part no. 186008167) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient. The product fractions were combined and desalted by dialysis against water (MWCO 1000, SpectraPor 6, part no. 132638) for 3 days, which also cleaved the DMT group of the DMTon-purified oligonucleotides. Finally, the LNA oligonucleotides were lyophilized.

[0174] The yields ranged from 85 to 360 nmol.

[0175] LNA oligonucleotides were analyzed by RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient. Typical purity was >90%. The identity of the LNA oligonucleotides was confirmed by LC-MS analysis.

[0176] The various oligonucleotides were synthesized and stored separately.

[0177] Example 2 Identification of LNA oligonucleotide sequences capable of forming duplexes without prior denaturation using RP-HPLC analysis a) General method: The LNA oligonucleotides of Example 1 were dissolved in buffer (0.01 M Hepes pH 7.4, 0.15 M NaCl) and analyzed on a RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (8-24% acetonitrile in 10 min, detection at 260 nm).

[0178] The strand and the corresponding counterstrand LNA oligonucleotide were mixed at equimolar concentrations at room temperature and immediately analyzed on an RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (24% B in 8–10 min; detection at 260 nm).

[0179] In the first control experiment, the strand and the corresponding counterstrand LNA oligonucleotide were mixed at equimolar concentrations and incubated for 1 h at room temperature, followed by analysis on an RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (8–25% acetonitrile in 10 min, detection at 260 nm).

[0180] A second strand showing the duplex-forming (positive control) strand and the corresponding opposing strand LNA oligonucleotide In control experiments, equimolar mixtures were mixed at room temperature, heat denatured at 95°C (10 min), and then, after reaching room temperature, reanalyzed on an RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (8–24% acetonitrile in 10 min, detection at 260 nm).

[0181] Duplex formation can be detected by the formation of a new peak at a different retention time compared to the individual single-stranded LNA oligonucleotides. In a positive control, the mixed and opposing strands are heat denatured prior to injection to generate duplexes. Time-dependent injections after mixing of the strands and opposing LNAs at room temperature, without prior denaturation, allow monitoring of the kinetics of duplex formation.

[0182] After annealing for 5-60 minutes at room temperature without prior denaturation, an LNA sequence is considered capable of rapid duplex formation if the HPLC% ratio of the formed duplex to one of both single-stranded LNAs (corrected for extinction coefficients; if both strands are not exactly equimolar, a higher ratio value is considered) is >0.9.

[0183] b) Identification of sequences that rapidly form double strands LNA 1: 5'-tgctcctg-3' (SEQ ID NO: 1) LNA 2: 5'-Bi-Heg-caggagca-3' (5' modified SEQ ID NO: 2) Heg = hexaethylene glycol Bi = biotin label attached via the carboxy function of the valerate moiety of biotin The results are shown in Figures 2 to 10.

[0184] c) Identification of sequences that slowly form double strands For the 10 bp hybridization experiment, the following ratio calculations were performed: LNA 3: 5'-ctgcctgacg-3' LNA 4 (conjugate): 5'-Bi-Heg-cgtcaggcag-3' [Table 4] HPLC%*ε -1 *1000(LNA3 / LNA4 double strand) / HPLC%* -1 *1000(LNA3 single strand)=0.023 / 0.456=0.05 HPLC%* -1 *1000(LNA3 / LNA4 double strand) / HPLC%* -1 *1000 (LNA4 single strand) = 0.023 / 0.457 = 0.05

[0185] Example 3 Identification of LNA oligonucleotide sequences capable of forming duplexes without prior denaturation using RP-HPLC analysis a) General method: The LNA oligonucleotides of Example 1 were dissolved in a buffer (0.01 M Hepes pH 7.4 , 0.15M NaCl) and analyzed on a RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1M triethylammonium acetate pH 7 / acetonitrile gradient (8 to 24% acetonitrile in 10 minutes, detection at 260 nm).

[0186] The strand and corresponding opposite strand LNA oligonucleotides (i.e., first and second oligonucleotides) were mixed in equimolar concentrations at room temperature or at a temperature selected from 0°C to 40°C and immediately analyzed on an RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (24% B in 8–10 min; detection at 260 nm).

[0187] In one type of control experiment, the strand and the corresponding counterstrand LNA oligonucleotide were mixed at equimolar concentrations and incubated for 1 hour at room temperature. The mixture was then analyzed on an RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (8 to 25% acetonitrile in 10 min, detection at 260 nm). Other experiments were performed at various temperatures. The temperatures were selected from 0°C to 70°C, more specifically, 0°C to 5°C, 0°C to 5°C, 0°C to 10°C, 0°C to 20°C, 0°C to 30°C, 5°C to 10°C, 10°C to 15°C, 15°C to 20°C, 20°C to 25°C, 25°C to 30°C, 30°C to 35°C, and 35°C to 40°C. Chromatographic analysis was performed at room temperature.

[0188] In control experiments, duplex-forming (positive control) strands and the corresponding opposing strand LNA oligonucleotides were mixed in equimolar concentrations at room temperature, heat-denatured at 95°C (10 min), cooled again to room temperature, and then analyzed again on an RP18 HPLC (Chromolith RP18e, Merck part no. 1.02129.0001) using a 0.1 M triethylammonium acetate pH 7 / acetonitrile gradient (8–24% acetonitrile in 10 min, detection at 260 nm).

[0189] Duplex formation is detected when a new peak appears at a different retention time than the peaks corresponding to the individual single-stranded LNA oligonucleotides. In a positive control (control experiment, see above), the mixed and counterstrands were heat-denatured prior to injection, thereby disrupting the porous structure that could prevent duplex formation. Thus, following heat denaturation, duplexes were obtained. The kinetics of duplex formation was monitored by time-dependent injection after mixing the counterstrand and LNA at room temperature, without prior denaturation.

[0190] LNA sequences were analyzed for their ability to rapidly form duplexes. In exemplary, but non-limiting cases, after annealing for 5-60 minutes at room temperature without prior denaturation (HPLC % corrected for extinction coefficients, not taking into account the high color intensity of the duplex), a positive result was obtained if the HPLC % ratio (corrected for extinction coefficients, taking into account higher ratio values ​​if both strands are not exactly equimolar) of the formed duplex to both single-stranded LNAs was >0.9.

[0191] b) Identification of exemplary sequence pairs capable of rapid duplex formation under non-denaturing conditions. In a first experiment, a first LNA oligonucleotide 5'-tgctcctg-3' (SEQ ID NO: 1) and a second LNA oligonucleotide Bi-Heg-5'-caggagca-3' (5' modified SEQ ID NO: 2) were obtained. Heg = hexaethylene glycol Bi = biotin label attached via the carboxy function of the valeric acid moiety of biotin. These results and others are reflected in the figure.

[0192] The presence of the HEG moiety was found to have no effect on the hybridization properties of the respective oligonucleotides: no differences were observed between the beta-D-LNA and beta-L-LNA oligonucleotide pairs in terms of nucleobase sequence and hybridization properties.

[0193] The following list provides further exemplary results for oligonucleotide pairs that can be kept separate under non-denaturing conditions and that can form duplexes under non-denaturing conditions when contacted with each other.

[0194] 15-mer 5'caccaacacaccaac 3' (SEQ ID NO: 32, tested as 5' modified Bi-Heg molecule) and 15-mer 5'gttggtgtgttggtg 3' (SEQ ID NO: 31) showed rapid duplex formation when in contact with each other.

[0195] Number of Watson-Crick complementary base pairs: 5 5'ggaag 3' / 5'cttcc 3' was found with rapid duplex formation; (SEQ ID NO: 34 and SEQ ID NO: 33, respectively). 5'ggagc 3' / 5'gctcc 3' was found to rapidly form double strands. (SEQ ID NO: 43 and SEQ ID NO: 42, respectively).

[0196] Number of Watson-Crick complementary base pairs: 6 5'accaac 3' / 5'gttggt 3' was found to rapidly form double strands. (SEQ ID NO: 20 and SEQ ID NO: 16, respectively). 5'tttttt 3' / 5'aaaaaa 3' was found to rapidly form a double strand. (SEQ ID NO: 27 and SEQ ID NO: 39, respectively). 5'ggagca 3' / 5'tgctcc 3' was found to rapidly form double strands. (SEQ ID NO: 45 and SEQ ID NO: 44, respectively). 5'ctgtca 3' / 5'tgacag 3' was found to have a rapid double-strand formation. (SEQ ID NO: 40 and SEQ ID NO: 41, respectively). 5'ggaaga 3' / 5'tcttcc 3' was found to rapidly form double strands. (SEQ ID NO: 36 and SEQ ID NO: 35, respectively).

[0197] Number of Watson-Crick complementary base pairs: 8 5'caggagca 3' / 5'tgctcctg 3' was found to rapidly form double strands. (SEQ ID NO: 2 and SEQ ID NO: 1, respectively).

[0198] Number of Watson-Crick complementary base pairs: 9 5'ggaagagaa 3' / 5'ttctcttcc 3' was found to rapidly form double strands. (SEQ ID NO: 38 and SEQ ID NO: 37, respectively).

[0199] Number of Watson-Crick complementary base pairs: 15 5'caccaacacaccaac 3' / 5'gttggtgtgttggtg 3' was found to rapidly form double strands. (SEQ ID NO: 32 and SEQ ID NO: 31, respectively).

[0200] Typically, the first oligo of the binding pair described above was used as the Bi-Heg conjugate, as described in the first experiment. See Figures 11 to 17 for an explanation.

[0201] c) Identification of sequences that slowly form double strands Number of possible Watson-Crick complementary base pairs: 10 5'cgtcaggcag 3' / 5'ctgcctgacg 3' was found to have slow duplex formation. (SEQ ID NO: 6 and SEQ ID NO: 5, respectively). Number of possible Watson-Crick complementary base pairs: 15 5'cgtcaggcagttcag 3' / 5'ctgaactgcctgacg 3' were found to be slow in duplex formation (SEQ ID NOs: 47 and 48, respectively). For an explanation, please refer to Figures 18 to 20 and 21 to 23.

[0202] Figure 20 shows the identification of binding pairs showing slow hybridization. Calculation of the ratio of mixed LNA 5'-Bi-Heg-cgtcaggcagttcag-3' (5' modified SEQ ID NO: 47) in combination with 5'-ctgaactgcctgacg-3' (SEQ ID NO: 48). [Table 5] HPLC%*ε -1 1000(LNA double strand) / HPLC%*ε -1 1000(LNA single strand)=0.104 / 0.237=0.44

[0203] Example 4 Biospecific interaction analysis, immobilized first LNA oligonucleotide in contact with second LNA oligonucleotide, three different motifs; kinetic properties at 25°C and 37°C. a) Overview of the approach Twelve different oligonucleotide LNA sequences were designed and finally biotinylated (Bi-LNA sequences). Seven LNA oligonucleotide sequences were analyzed for binding to 12 immobilized Bi-LNA sequences at 25°C / 37°C. Flow rate 60 μl / min, 3 min association time, 5 dissociation times of 30 min each · LNA samples were pre-incubated in a slightly basic buffer solution overnight at RT (room temperature) according to the manufacturer's recommendations (chemical inactivation). The test setup is shown in Figure 24. b) Technical procedures Kinetic studies were performed on a GE Healthcare Biacore 8k instrument. A Biacore Biotin Capture Kit, Series S Sensor (Cat. No. 28-9202-34) was installed in the instrument and hydrodynamically addressed and analyzed according to the manufacturer's instructions. The system buffer was HBS-T (10 mM HEPES pH 7.4, 150 mM NaCl, 0.05% TWEEN® 20). The sample buffer was system buffer. Biotin capture reagent, provided by the manufacturer, GE Healthcare, was diluted 1:50 in system buffer and injected into all measurement flow cells at 10 μl / min for 60 s. Reference cells were not immobilized and served as blank controls. 10 nM of each biotinylated ligand was injected at 30 μl / min, yielding ligand capture levels ranging from 4 RU to 30 RU. A series of analyte concentrations in solution was injected at 60 μl / min for 3 min. Dissociation was monitored for 5 min. High-affinity interactions were monitored over a 30-min dissociation time. The analyte concentration series was 0 nM (buffer), 0.11 nM, 0.33 nM, 3 nM, 9 nM, and 27 nM. In other embodiments, the concentrations were 0 nM, 0.56 nM, 1.67 nM, 5 nM, 15 nM, and 45 nM. The CAP sensor was fully regenerated by injecting 100 mM NaOH for 1 minute. Kinetic data were determined using Biacore Evaluation software.

[0204] result Seven different LNA oligonucleotides representing three different sequence motifs were analyzed for binding to 12 different complementary biotinylated LNA oligonucleotides (Bi-LNA) with various sequence lengths at two different temperatures, 25°C and 37°C.

[0205] In the SPR measurements, 0.05% Tween 20 was used as a surfactant.

[0206] Initial molar ratios of MR = 1.0–0.7 (data not shown) indicated 1:1 binding, and the MR decreased during the analytical cycle (MR = 0.5–0.3), likely due to inactivation of the streptavidin surface by the use of harsh basic pH in the regeneration step.

[0207] Motif "Array 1" The 9mer LNA showed binding to the complementary Bi-LNA 7-9mer of motif 1.

[0208] At 37°C, "Bi-(HEG)4-5'caggagca 3' (5'-modified SEQ ID NO: 2)" and "Bi-(HEG)4-5'caggagc 3' (5'-modified SEQ ID NO: 15)" showed high complex stability with the complementary oligonucleotide 5'tgctcctgt 3' (SEQ ID NO: 9)', regardless of the presence or absence of the (HEG)4-MH-5'-tag.

[0209] t / 2 diss( Bi-LNA 7 and 8mer / 9mer) => 247 / 228 min, t / 2 diss (Bi-LNA 7 and 8mer / 9mer containing Heg4-MH5') =>734 / 800 min, resulting in high affinity (K D =6~9pM): Hybridization with "Seq2"-LNA showed weaker binding to the Seq1 Bi-LNA 7-9mer.

[0210] No binding of the 9-mer A sequence '5'aaaaaaaaa'3' (SEQ ID NO: 28) containing a (HEG)4-MH-5'-tag is detected.

[0211] Motif "Array 2" Bi-LNAs representing motif 2 of various lengths (12mer, 10mer, 8mer, 7mer, and 6mer) showed no binding to LNA motifs 1 or 3.

[0212] Motif 2-LNA binding of various lengths showed comparable complex formation between 6-mer and 8-mer. The 2mer showed only a slightly slower complex formation. Complex stability varies: Bi-LNA 7mer showed the highest complex stability in these experiments, followed by Bi-LNA 8mer. t / 2 diss( Bi-LNA 7mer / 6mer) = 238 min, t / 2 diss( Bi-LNA 7mer / 7mer) = 720 min, t / 2 diss(Bi-LNA 7mer / 8mer) = 644 min, t / 2 diss( Bi-LNA 8mer / 7mer) = 545 min, t / 2 diss( Bi-LNA 8mer / 8mer) = 433 min, resulting in high affinity (K D =1~5pM) Motif 2 was estimated to be superior to motif 1.

[0213] Motif "Array 3" The 5' modified polyA sequence (HEG) 4-MH-5' sequence 5'aaaaaaaaa 3' (SEQ ID NO: 28)'' was used as a negative control. This control showed no binding to either biotinylated sequence 1 or 2. However, specific binding was detected with the complementary Poly-T sequence of "Group 3".

[0214] At 37°C, increasing the LNA length from 6- to 9-mers to 1000-fold (t / 2 diss = 1 to over 1160 min) significantly improved complex stability, resulting in a 55-fold decrease in complex formation, with resulting affinities in the range of KD = 300 pM to 10 pM.

[0215] -ssL-DNA hybridization slowed as the length increased from 6-mer to 9-mer, and complex stability was persistently high, with overhangs of more than two unpaired nucleotides clearly decreasing complex stability for PolyA / PolyT pairings.

[0216] d) Conclusion With the aim of providing an alternative to the streptavidin:biotin binding pair in mind, it is important to select a low affinity (preferably in the pM range) binding pair that already has a very fast binding rate constant at 25°C and maintains high complex stability at 37°C.

[0217] All LNA oligonucleotide duplexes with 4-5 complementary LNA nucleobase pairs representing the motif "Sequence 2" meet the requirements of the desired binding pair in that they exhibit rapid binding to saturation and high complex stability.

[0218] To ensure rapid association, it is desirable that the binding pair be as short as possible to avoid time-consuming "mispriming" intermediates. The 'Bi-(HEG)4-5'caccaac 3' 7mer oligonucleotide, SEQ ID NO: 19) linked to 5'gttggt 3' and Bi-(HEG)4-MH-5'gttggtgt 3' (5' modified SEQ ID NO: 16) provides a t / 2 diss = 720 and 644 minutes, respectively, demonstrating complex formation and stability at 37°C. D Bi-(HEG)-5'acaccaac 3' (8mer, 5'-modified SEQ ID NO: 14) bound to (HEG)-MH-5'gttggtg 3' (5'-modified SEQ ID NO: 21) and to (HEG)-MH-5'gttggtgt 3' (5'-modified SEQ ID NO: 13) showed sufficient complex formation and complex stability with t / 2 diss = 545 and 433 min, respectively, resulting in high affinity (KD = 2 pM) at 37°C.

[0219] LNAs with various lengths of the motif "Sequence 1" did not bind. As a negative control, the sequence 5'aaaaaaaaa 3' (SEQ ID NO: 28) containing the (HEG)4-MH-5'-tag was tested, but no measurable intermolecular interaction was observed.

[0220] Example 5 Biospecific interaction analysis a) Overview of approach and assay setup Reversible capture streptavidin conjugate via CAP-Kit Streptavidin binds to complementary ss-LNA Reversible oligo binding to pre-immobilized ss-LNA oligos on SCM The following decisions: Capture level (CL), association rate constant k a , · Dissociation rate constant k d , · Dissociation equilibrium constant K D Molar ratio (MR) The test setup is shown in Figure 51A. Four free LNA constructs of various lengths (6-, 8-, and 12-mer) called "motif 2" and LNA-Fab <tsh>Conjugate (LNA-Fab <tsh>= antibody Fab fragment specific for the TSH antigen) were analyzed for binding to complementary Bi-LNA sequences at 25° / 37°C. Bi-LNA sequences are captured as ligands on the CAP-Chip via a reversible Biotin-Capture-Kit, Free LNA or LNA-Fab <tsh>-Conjugates were used as analytes in solution Hybridization was analyzed with an association time of 3 minutes and a dissociation time of 30 minutes. · Flow rate 60μl / min · C(遊離LNAs) =9~0.1nM, c(LNA-Fab <tsh> -コンジュゲート) < / tsh> = 45 to 0.6 nM, c (12merLNA / Fab <tsh> -コンジュゲート) < / tsh> =45~0.6nM LNA samples were pre-incubated overnight at RT in a slightly basic buffer (chemical inactivation) as recommended by the customer. b) Reagent: Sequence "Motif 2"

[0221] Biotinylated Ligands 'Bi-(HEG)4-5'accaac3' (SEQ ID NO: 20) BMO 28.542740,GO4094,ID 6681,6mer,MW 3.8 kDa 'Bi-(HEG)4-5'caccaac 3' (SEQ ID NO: 19) BMO 28.542739,GO4093,ID 6681,7mer,MW 4.1 kDa 'Bi-(HEG)4-5'acaccaac 3' (SEQ ID NO: 14) BMO 28.542738,GO4092,ID 6680,8mer,MW 4.4 kDa 'Bi-(HEG)4-5'caacacaccaac 3' (SEQ ID NO: 52) BMO 28.542742,GO4096,ID 6684,12mer,MW 5.8 kDa

[0222] Analyte 2300 / 103(HEG)4-MH-5'gttggt 3'(SEQ ID NO: 16)' BMO 28.170333,AO581,ID 6719,6mer,MW 3.8 kDa 2300 / 104(HEG)4-MH-5'gttggtg 3'(SEQ ID NO:21)' BMO 28.170334,AO582,ID 6720,7mer,MW 4.1 kDa 2300 / 105(HEG)4-MH-5'gttggtgt 3'(SEQ ID NO: 13)' BMO 28.170335,AO583,ID 6721,8mer,MW 4.4 kDa 2300 / 102(HEG)4-MH-5'gttggtgtgttg 3'(SEQ ID NO:53)' BMO 28.542727,GO4073,ID 6653,12mer,MW 5.8 kDa mAb <tsh>M-Tu1.20-F(ab')2-SATP-D-LNA-conjugate 2331 / 111 mAb <tsh>M-Tu1.20-F(ab')2-SATP-D-LNA-5'gttggt 3' (SEQ ID NO: 16), 6mer, MW 104 kDa 2331 / 112 mAb <tsh>M-Tu1.20-F(ab')2-SATP-D-LNA-5'gttggtg 3' (SEQ ID NO: 21), 7mer, MW 104 kDa 2331 / 113 mAb <tsh>M-Tu1.20-F(ab')2-SATP-D-LNA-5'gttggtgt 3' (SEQ ID NO: 13), 8mer, MW 104 kDa 2331 / 114 mAb <tsh>M-Tu1.20-F(ab')2-SATP-D-LNA-5'gttggtgtgttg 3' (SEQ ID NO: 53), 12mer, MW 106 kDa mAb <tsh>M-Tu1.20-F(ab')2 means the F(ab')2 fragment of a monoclonal antibody specific for human thyroid-stimulating hormone (TSH). D-LNA means that the oligonucleotide containing the following nucleic acid base sequence is composed of D-LNA monomers. D-LNA oligonucleotides were used.

[0223] c) Result The four different 5'-modified LNA oligonucleotides described above, and the F(ab')2 oligonucleotides having the same respective sequences <tsh>The oligonucleotides contained in the conjugates represented the 6-, 7-, 8- and 12-mer lengths of the sequence "motif 2". All were analyzed for binding of complementary Bi-LNA sequences at 25° / 37°C.

[0224] Hybridized LNA-Fab <tsh>TSH binding to the conjugate (TSH is the analyte) was also analyzed.

[0225] Sequence "motif 2" Bi-LNAs of various lengths showed comparable complex formation, with complex stability in the pM affinity range (K D 3-10 pM) / 2 diss At 37°C, complex formation occurs in the pM affinity range (K D The hybridization rates of the free oligos were mass-transfer limited at 25°C and 37°C (data shown in red), and MTL corrections were performed using a SW scrubber. Molar ratios (MR) of 0.8 to 1.1 indicated stoichiometric 1:1 hybridization at both temperatures. The 12-mer association phase was supersaturated at 25°C.

[0226] LNA-Fab <tsh>The conjugates showed a 2-4 fold delay in complex formation compared to the unconjugated LNA oligonucleotides. <tsh>-LNA-conjugate hybridization does not have MTL. Complex stability t / 2 diss Over 232 min at 25°C in the pM affinity range (K D =22~11pM) .

[0227] At 37°C, FAb <tsh>The -LNA conjugates (7, 8 and 12 mer) showed no significant difference in complex formation when compared to free LNA of the same length, with affinity in the pM range (K D <12-14 pM), and the complex stability t / 2 diss > 232 minutes.

[0228] LNA-Fab <tsh>Conjugate molar ratios of 0.1 to 0.6 showed substoichiometric 1:1 binding. Hybridized LNA-FAbs of various lengths <tsh>TSH binding to the conjugate was analyzed. <tsh>TSH binding to the conjugates (6-8mer and 12mer) showed comparable kinetic profiles. / 2 diss Sufficient complex formation in 31-33 minutes, affinity K D = 0.7nM

[0229] The binding constant is in the range of known affinities for this interaction.

[0230] A molar ratio (MR) of 1.8 / 1.9 indicates a fully functional stoichiometric 2:1 bond, indicating binding of a functional conjugate.

[0231] The hybridized Fab conjugate was found to exhibit the full antigen binding activity of the antibody portion in the conjugate. Results See Figure 52.

[0232] See also Figure 51C for the following data: [Table 6] Table: Molar ratio epitope accessibility matrix showing hTK sandwich formation for four anti-hTK antibodies. MR EA =1, completely independent epitope, MR EA <1 overlapping epitope.

[0233] Antibody A can form immune complexes with 23C11, 6C6, and 4H4, which share the same epitope. d) Alternative Approach (See Figure 51B, Results Figure 53)

[0234] Prehybridized LNA-FAbs of various lengths (6, 7, 8, and 12 mers) <tsh>TSH binding to the conjugate was analyzed at 37°C.

[0235] See slide 10 for assay format and slide 11 for binding profile. Three Bi-LNA sequences were irreversibly bound to the SA chip of Fc2-4. LNA-Fab <tsh>Conjugations (6-, 7-, and 8-mers) were prehybridized with complementary Bi-LNA at 37°C. TSH, 3-minute binding time and 5-minute dissociation time · Flow rate 60 μl / min, c TSH = 270 nM was used as the analyte solution Please refer to Figure 53.

[0236] Example 6 Biospecific interaction analysis a) Overview of approach and assay setup A schematic diagram of the experiment is shown in Figure 54. Free LNA constructs and sequences of various lengths (5, -6, 9, or 15mer) were analyzed for binding to complementary Bi-LNA sequences (4, 6, 9, or 15mer) at 25° / 37°C. Bi-LNA sequences were captured as ligands on the CAP-Chip via a reversible Biotin-Capture-Kit. Free LNA was used as the analyte in solution. Hybridization was analyzed with an association time of 3 minutes and a dissociation time of 30 minutes. · Flow rate 60μl / min · C(遊離LNAs) = Optimized for each interaction

[0237] Determination of: capture level (CL), association rate constant k a , dissociation rate constant k d , dissociation equilibrium constant K D , molar ratio (MR). Reversibly captured SA-conjugate via CAP-Kit, which is streptavidin (=SA) conjugated with a complementary ss-LNA oligo that reversibly binds to a pre-immobilized ss-LNA oligo. b) Reagents Biotinylated Ligands 2387 / L01 Bi-(HEG)-5'accaac 3' (SEQ ID NO: 20) BMO 28.170341,AO591,ID 6730,6mer,MW 2.71 kDa 2387 / L02 Bi-(HEG)-5'cacaccaac 3' (SEQ ID NO: 30) BMO 28.170342,AO592,ID 6731,9mer,MW 3.71 kDa 2387 / L03 Bi-(HEG)-5'caccaacacaccaac 3' (SEQ ID NO: 54) BMO 28.170343,AO593,ID6732,15mer,MW 5.73 kDa 2387 / L04 Bi-(HEG)-5'ggaag 3' (SEQ ID NO: 34) BMO 28.170347,AO597,ID6736,5mer,MW 2.44 kDa 2387 / L05 Bi-(HEG)-5'ggaaga 3' (SEQ ID NO: 36) BMO 28.170348,AO598,ID 6737,6mer,MW 2.78 kDa 2387 / L06 Bi-(HEG)-5'ggaagagaa 3' (SEQ ID NO: 38) BMO 28.170349,AO599,ID 6738,9mer,MW 3.82 kDa 2300 / 12 Bi-(HEG)4-5'tttttt 3' (SEQ ID NO: 27) BMO 28.170336,AO584,ID 6722,6mer,MW 3.71 kDa 2387 / L08 Bi-(HEG)-5'ctgtca 3' (SEQ ID NO: 40) BMO 28.170354,AO604,ID 6743,6mer,MW 2.71 kDa 2387 / L09 Bi-(HEG)-5'cgtcaggcagttcag 3' (SEQ ID NO: 55) BMO 28.170356,AO606,ID 6745,15mer,MW 5.12 kDa 2387 / L10 Bi-(HEG)-5'ggagc 3' (SEQ ID NO: 43) BMO 28.170358,AO608,ID 6747,5mer,MW 2.43 kDa 2387 / L11 Bi-(HEG)-5'ggagca 3' (SEQ ID NO: 45) BMO 28.170360,AO610,ID 6749,6mer,MW 2.77 kDa 2387 / L12 Bi-(HEG)4-5'-ccaac 3' (SEQ ID NO: 46) BMO 28.542748,GO4105,ID 6764,5mer,MW 3.40 kDa 2387 / L13 Bi-(HEG)4-5'caac 3' (SEQ ID NO: 56) BMO 28.542749,GO4106,ID 6765,4mer,MW 3.07 kDa 2387 / L14 Bi-(HEG)4-5'ttttt 3' (SEQ ID NO: 57) BMO 28.542750,GO4107,ID 6766 5mer,MW 3.38 kDa 2387 / L15 Bi-(HEG)4-5'tttt 3' (SEQ ID NO: 58) BMO 28.542751,GO4108,ID 6768 4mer,MW 3.05 kDa Analyte 2387 / A01 3'-TGG TTG-5' BMO 28.170344,AO594,ID,6733,6mer,MW 2.01 kDa 2387 / A02 3'-GTG TGG TTG-5' BMO 28.170345,AO595 / ID 6734,9mer,MW 3.05 kDa 2387 / A03 3'-GTG GTT GTG TGG GTT-5' BMO 28.170346,AO596,ID 6735,15mer,MW 5.12 kDa 2387 / A04 3'-CCT TC-5' BMO 28.170350,AO600,ID 6739,5mer,MW 1.60 kDa 2387 / A05 3-'CCT-TCT-5' BMO 28.170351,AO601,ID 6740,6mer,MW 1.93 kDa 2387 / A06 3'-CCT TCT CTT-5' BMO 28.170352,AO602,ID 6741,9mer,MW 2.92 kDa 2387 / A07 3'-AAA AAA-5' BMO 28.170353,AO603,ID 6742,6mer,MW 1.99 kDa 2387 / A08 3'-GAC AGT-5' BMO 28.170355,AO605,ID 6744,6mer,MW 2.00 kDa 2387 / A09 3'-GCA GTC CGT CAA GTC-5' BMO 28.170357,AO607,ID 6746,15mer,MW 5.04 kDa 2387 / A10 3'-CCT CG-5' BMO 28.170359,AO609,ID 6748,5mer,MW 1.62 kDa 2387 / A11 3'-CCT CGT-5' BMO 28.170361,AO611,ID 6750,6mer,MW 1.95 kDa

[0238] c) Result Eleven LNAs with different sequences were analyzed for binding to their complementary Bi-LNA sequences. Furthermore, the association of two Bi-LNAs of different lengths (5-mer and 4-mer) with a free LNA 6-mer was analyzed at 25°C / 37°C.

[0239] The sequences "Motif 2" (2387 / L01-L03) and "Short Motif 2" (2387 / L12&L13) 6mer and 9mer Bi-LNA 5'-Bi-Heg-ACC AAC-3' and 5'-Bi-Heg-CAC ACC AAC-3' show high affinity binding to their complementary LNA 6mer 3'-TGG TTG-5' and 9mer 3'-GTG TGG TTG-5', respectively. Kinetic properties include fast hybridization, complex stability, and t / 2 diss = pM affinity range (K over 160–232 min and at 25°C and 37°C) D = 1-9 pM), the hybridization rate was mass-transfer limited at 25°C and 37°C, and MTL correction was also performed.

[0240] A molar ratio (MR) of 1.1 / 1.2 indicates stoichiometric 1:1 hybridization of the 6-mer pair at both temperatures, while a MR of 1.3 / 1.5 indicates excess stoichiometric binding of the 9-mer pair. The Bi-LNA 15-mer exhibits slower hybridization rates and slightly lower affinity compared to the 6- and 9-mers. K D =24 / 53 pM, MR 1.3 indicates slight stoichiometric excess binding.

[0241] Binding of the 5mer (2387 / L12) Bi-LNA 5'Bi-4x(HEG)-CCA AC-3' to the free 6mer-LNA 3'-TGG TTG-5' resulted in reduced complex stability with a double-digit pM affinity range. / 2 diss = 50 min, and when bound to the 4mer (2387 / L13) 5'Bi-4x(HEG)-CAA C-3', the complex stability was t / 2 diss The binding time decreases to <1 min, resulting in double-digit nM affinity. MRs of 1.1–1.3 indicate slight excess of stoichiometric binding.

[0242] Therefore, an overhang with one or two mismatched nucleotides may be interpreted in this case as reducing the complex stability to some extent.

[0243] "Motif 3" Poly-T control "short" (2300 / L12 and 2387 / L14&L15); three PolyT-control Bi-LNAs of various lengths (5- and 6-mer) showed binding to PolyA-6mer with typical fast on / off profiles, complex half-lives at 25°C and 37°C. / 2 diss <2 min, indicating that the Bi-LNA 4mer binds weakly or not at all to the PolyA-6mer.

[0244] "Motif 4" (2387 / L04-L06) 5-, 6-, or 9-mer 5'-Bi-Heg-GGA AG-3', 5'-Bi-Heg-GGA AGA-3', or 5'-Bi-Heg-GGA AGA GAA-3' binds to complementary LNA poorly compared to "Motif 2," with complex half-lives of t / 2 diss A 2-3 digit pM affinity can be achieved in 20-65 minutes at 25°C.

[0245] "Motif 5" (2387 / L08) 5'-Bi-Heg-CTG TCA-3' binds to the complementary LNA 3'-GAC AGT-5' and shows slightly slower hybridization than the 6-mer.

[0246] "Motif 2", complex stability with double-digit pM affinity at 25° and 37° C. The molar ratio 0.3 / 0.4 indicates substoichiometric binding.

[0247] The 15-mer 5'-Bi-Heg-CGT CAG GCA GTT CAG-3' linking "motif 6" (2387 / L09) 3'-GCA GTC CGT CAA GTC-5' exhibits a single-digit nM affinity interaction caused by a slower rate of hybridization and reduced complex stability, with a molar ratio of 0.1 / 0.4 indicating substoichiometric binding.

[0248] "Motif 7" (2387 / L10 and L11) The 5-mer 5'-Bi-Heg-GGA GC-3' outperforms the 6-mer 5'-Bi-Heg-GGA GCA-3' in binding to the complementary LNA, resulting in a complex half-life t / 2 diss From 174 to 62 min, the affinity ranged from 32 / 186 pM at 25°C, and the 5-mer showed an interaction of 29 pM at 37°C. The molar ratio MR of 0.5 / 0.3 showed substoichiometric binding at 25°C, which increased at 37°C (MR of 1.2 / 0.6).

[0249] d) Conclusion Both Bi-LNA 5'-Bi-Heg-ACC AAC-3' and 5'-Bi-Heg-CAC ACC AAC-3' ("motif 2") are complementary LNA 6-mers. The LNA hybridization complexes show high affinity binding to 3'-TGG TTG-5' and 9-mer 3'-GTG TGG TTG-5', respectively. The molar ratio indicates fully functional 1:1 LNA hybridization. 5'-Bi-Heg-ACC AAC-3' / 3'-TGG TTG-5' exhibits slightly improved hybridization kinetics compared to 5'-Bi-(HEG)4-ACCAAC-3' / 3'-TGG-TTG-5'-Heg4-MH-5', due to a two-fold increase in complex stability.

[0250] The absolute density of Bi-LNA 5'-Bi-Heg-ACC AAC-3' captured on the sensor surface used in the experiment was 1000RU = 1ng / mm (Vendor information). 2 Based on 11 fmol / mm 2 (30pg / mm 2 ) In the case of hydrogel, this is assumed to correspond to a concentration of 0.3 mg / mL.< / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh> < / tsh>

Claims

1. A pair of separate complementary ss-oligonucleotides, each ss-oligonucleotide consisting of 5 to 15 LNA monomers, wherein the separate ss-oligonucleotides in aqueous solution can form antiparallel double helixes with each other in the absence of denaturation conditions before or during double-strand formation, and the pair is (Sequence ID 33): (Sequence ID 34) (Sequence ID 42): (Sequence ID 43), (Sequence ID 16): (Sequence ID 46) (Sequence ID 16): (Sequence ID 19), (Sequence ID 16): (Sequence ID 17) (Sequence ID 16): (Sequence ID 18) (Sequence ID 16): (Sequence ID 14) (Sequence ID 40): (Sequence ID 41), (Sequence ID 44): (Sequence ID 45), (Sequence ID 35): (Sequence ID 36), (Sequence ID 21): (Sequence ID 17), (Sequence ID 21): (Sequence ID 14) (Sequence ID 13): (Sequence ID 17) (Sequence ID 13): (Sequence ID 18) (Sequence ID 13): (Sequence ID 19), (Sequence ID 13): (Sequence ID 20), (Sequence ID 9): (Sequence ID 2), (Sequence ID 23): (Sequence ID 18), (Sequence ID 23): (Sequence ID 14), (Sequence ID 23): (Sequence ID 19), (Sequence ID 23): (Sequence ID 20), (Sequence ID 28): (Sequence ID 24), (Sequence ID 28): (Sequence ID 25), (Sequence ID 28): (Sequence ID 26), (Sequence ID 28): (Sequence ID 27), (Sequence ID 39): (Sequence ID 27), (Sequence ID 22): (Sequence ID 17) (Sequence ID 59): (Sequence ID 60), (Sequence ID 61): (Sequence ID 62), (Sequence ID 63): (Sequence ID 64), (Sequence ID 65): (Sequence ID 66), (Sequence ID 67): (Sequence ID 68), (Sequence ID 69): (Sequence ID 70), (Sequence ID 10): (Sequence ID 21), (Sequence ID 10): (Sequence ID 13) (Sequence ID 10): (Sequence ID 23), (Sequence ID 15): (Sequence ID 21), (Sequence ID 15): (Sequence ID 13), (Sequence ID 15): (Sequence ID 23), (Sequence ID 2): (Sequence ID 16), (Sequence ID 2): (Sequence ID 21), (Sequence ID 2): (Sequence ID 13), (Sequence ID 2): (Sequence ID 23), (Sequence ID 56): (Sequence ID 16), (Sequence ID 57): (Sequence ID 39), and, (Sequence ID 71): (Sequence ID 32) A pair of separate complementary ss-oligonucleotides selected from the group consisting of the following.

2. The pair of separate complementary ss-oligonucleotides according to claim 1, wherein the first ss-oligonucleotide of the pair attaches to a first target and the second ss-oligonucleotide attaches to a second target.

3. The pair of separate complementary ss-oligonucleotides according to claim 2, wherein the first target and the second target are independently selected from the group consisting of solid phases, biomolecules, and chemically synthesized compounds.

4. A method for forming antiparallel all-LNA double strands in the absence of denaturation conditions, (a) A step of separately providing a first member and a second member of a pair of single-stranded whole LNA oligonucleotides according to claim 1, comprising the steps of separately dissolving each single-stranded whole LNA oligonucleotide in an aqueous solution in the absence of a denaturing agent and maintaining the solution at a temperature of 0°C to 40°C, (b) The process includes bringing the pair of single-stranded whole LNA oligonucleotides into contact with each other at a temperature of 0°C to 40°C in the absence of a denaturing agent, The method for forming the antiparallel all-LNA double strands thereby.

5. Use of a pair of separate complementary ss-oligonucleotides according to any one of claims 1 to 3 in a receptor-based assay for determining an analyte, wherein the receptor-based assay comprises an analyte-specific receptor and a solid phase for immobilizing the analyte on a solid phase, the first ss-oligonucleotide of the pair being bound to the analyte-specific receptor and the second ss-oligonucleotide of the pair being bound to the solid phase.

6. A kit for performing a receptor-based assay to determine an analyte, comprising, in a first container, an analyte-specific receptor to which a first member of a pair of separate complementary ss-oligonucleotides according to any one of claims 1 to 3 is attached, wherein the kit further comprises, in a second container, a solid phase to which the second member of the pair is attached.

7. A method for performing a receptor-based assay to determine an analyte, comprising the steps of contacting the analyte with an analyte-specific receptor to which a first member of a pair of separate complementary ss-oligonucleotides described in any one of claims 1 to 3 is attached, and a solid phase to which a second member of the pair is attached, and incubating the analyte, thereby forming a complex comprising the solid phase, the analyte-specific receptor bound to the solid phase, and the analyte bound to the analyte-specific receptor, thereby forming an antiparallel double helix, wherein the double helix consists of the first and second members of the pair, the double helix connects the analyte-specific receptor and the solid phase in the complex, and subsequently detecting the analyte bound to the complex, thereby determining the analyte.