Polymeric BODIPY dyes and methods of using same

Polymeric BODIPY dyes with a multichromophore structure address the challenge of molecular recognition and labeling by enhancing emission intensity and specific binding, improving bioanalytical techniques.

JP7785708B2Active Publication Date: 2025-12-15BECTON DICKINSON & CO
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
JP2023006032
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2015-03-12
Filing Date
2023-01-18
Publication Date
2025-12-15
Estimated Expiration
2036-03-02

AI Technical Summary

Technical Problem

Existing fluorescent dyes lack efficient methods for molecular recognition and labeling of target biomolecules, particularly in applications requiring high signal-to-noise ratios and specific binding capabilities.

Method used

Development of polymeric BODIPY dyes with a multichromophore structure containing a light-harvesting BODIPY unit and an acceptor chromophore covalently linked for energy transfer, which can be conjugated to specific binding members for targeted analyte detection and labeling.

Benefits of technology

Enhances molecular recognition and labeling efficiency by providing higher emission intensity and specific binding capabilities, improving the accuracy and sensitivity of bioanalytical techniques.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007785708000071
    Figure 0007785708000071
  • Figure 0007785708000072
    Figure 0007785708000072
  • Figure 0007785708000001
    Figure 0007785708000001
Patent Text Reader

Abstract

Polymeric tandem dyes are provided that allow for the penetration of excitation radiation into biological samples, minimize background fluorescence, and / or achieve high signal-to-noise ratios. [Solution] Polymeric BODIPY dyes are provided that include a multichromophore that includes a light-harvesting BODIPY unit. In some embodiments, the dye is a polymeric tandem dye that includes a multichromophore that includes a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in energy-accepting proximity. The polymeric tandem dye can be covalently linked to a specific binding member. Also provided are methods for evaluating a sample for the presence of a target analyte and methods for labeling a target molecule using a composition that includes the polymeric tandem dye. Kits and systems for carrying out the subject methods are also provided.
Need to check novelty before this filing date? Find Prior Art

Description

[Background technology]

[0001] Fluorescent dyes are compounds that emit light (usually at various wavelengths) when irradiated with light of a wavelength they absorb. Fluorescent dyes find use in a variety of applications in biochemistry, biology, and medicine, such as diagnostic kits, microscopy, or drug screening. Fluorescent dyes are characterized by a number of parameters that allow users to select an appropriate dye depending on the desired purpose. Parameters of interest include maximum excitation wavelength, maximum emission wavelength, Stokes shift, extinction coefficient, fluorescence quantum yield, and fluorescence lifetime. Dyes can be selected depending on the intended application, for example, to allow penetration of excitation radiation into biological samples, minimize background fluorescence, and / or achieve a high signal-to-noise ratio.

[0002] Molecular recognition requires the specific binding of two molecules. Molecules with binding specificity for target biomolecules find use in a variety of research and diagnostic applications, such as analyte labeling and separation, flow cytometry, in situ hybridization, enzyme-linked immunosorbent assay (ELISA), Western blot analysis, magnetic cell separation, and chromatography. Target biomolecules can be detected by labeling them with fluorescent dyes. Summary of the Invention [Means for solving the problem]

[0003] Polymeric BODIPY dyes are provided that include a multichromophore containing a light-harvesting BODIPY unit. In some embodiments, the dye is a polymeric tandem dye that includes a multichromophore containing a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity. The polymeric tandem dye can be covalently linked to a specific binding member. Also provided are methods for evaluating a sample for the presence of a target analyte and methods for labeling a target molecule using a composition containing the polymeric tandem dye. Kits and systems for carrying out the subject methods are also provided.

[0004] It is understood that the drawings below are for illustrative purposes only and are not intended to limit the scope of the present teachings in any way. [Brief explanation of the drawings]

[0005] [Figure 1] 1 illustrates the absorption and emission of exemplary polymeric tandem dyes with various acceptor dyes attached at internal linker sites. No specific binding members are attached to these structures. [Figure 2] Figure 1 illustrates the absorption and emission of exemplary polymer-tandem dyes with various dye molecules attached at internal linker sites. The absorption for all solutions is 0.04 OD. Note that the emission intensity is significantly higher for the polymers with the attached acceptor chromophore relative to the polymer alone. No specific binding members are attached to these polymers. DETAILED DESCRIPTION OF THE INVENTION

[0006] definition Before describing the exemplary embodiments in more detail, the following definitions are set forth to illustrate and define the meaning and scope of terms used herein.

[0007] Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention belongs. Singleton, et al., DICTIONARY OF MICROBIOLOGY AND MOLECULAR BIOLOGY, 2D ED., John Wiley and Sons, New York (1994), and Hale & Markham, THE HARPER COLLINS DICTIONARY OF BIOLOGY, Harper Perennial, NY (1991) provide those skilled in the art with the general meaning of many of the terms used herein. Furthermore, certain terms are defined below for clarity and ease of reference.

[0008] It should be noted that the singular forms "a," "an," and "the," as used in this specification and the appended claims, include the plural unless the context clearly dictates otherwise. For example, the term "primer" refers to one or more primers, i.e., a single primer and multiple primers. It is further noted that the claims may be written to exclude any element. As such, this description is intended to serve as a basis prior to using such exclusive terminology, such as "solely," "only," etc., in connection with the recitation of claim elements, or for using a "negative" limitation.

[0009] The term "sample," as used herein, refers to a material or mixture of materials, optionally in liquid form, containing one or more analytes of interest. In some embodiments, the term, used in its broadest sense, refers to plant, animal, or bacterial material containing cells or containing cellular metabolites, such as tissue or body fluids isolated from an individual (including, but not limited to, plasma, serum, cerebrospinal fluid, lymph, tears, saliva, and tissue sections), or ex vivo cell culture components, and samples from their environment. The term "sample" can also refer to a "biological sample."

[0010] As used herein, the term "biological sample" refers to a whole organism or a subset of its tissues, cells, or components (e.g., bodily fluids, including but not limited to, blood, mucus, lymph, synovial fluid, cerebrospinal fluid, saliva, amniotic fluid, amniotic cord blood, urine, vaginal fluid, and semen). "Biological sample" can also refer to a whole organism or a subset of its tissues, cells, or components, or an extract prepared from a fraction or portion thereof, including, but not limited to, plasma, serum, spinal fluid, lymph, skin, external sections of the respiratory, intestinal, and genitourinary tracts, tears, saliva, milk, blood cells, tumors, and organs.

[0011] In certain embodiments, the sample is removed from an animal or plant. The biological sample may include a cell. The term "cell" is used in its conventional sense to refer to the basic structural unit of both eukaryotic and prokaryotic organisms, having at least a nucleus and a cell membrane. In certain embodiments, the cell includes a prokaryotic cell, such as a cell derived from bacteria. In other embodiments, the cell includes a eukaryotic cell, such as a cell obtained from a biological sample derived from an animal, plant, or fungus.

[0012] As used herein, the terms "affinity" and "binding activity" have the same meaning and are used interchangeably herein. "Affinity" refers to the strength of binding, and higher binding affinity correlates with lower Kd.

[0013] As used herein, "determining," "measuring," and "assessing," and "assay" are used interchangeably and include both quantitative and qualitative determinations.

[0014] As used herein, the terms "carrier-bound" and "bound to a carrier" are used interchangeably and refer to a moiety (e.g., a specific binding moiety) that is covalently or non-covalently linked to a target carrier. Covalent linkage involves the chemical reaction of two compatible functional groups (e.g., two chemoselective functional groups, an electrophile and a nucleophile) to form a covalent bond between two target moieties (e.g., a carrier and a specific binding member). In some cases, non-covalent linkage can involve specific binding between two target moieties (e.g., two affinity moieties, such as a hapten and an antibody, or a biotin moiety and streptavidin). In certain cases, non-covalent linkage can involve absorption to a substrate.

[0015] As used herein, the term "biomolecule" refers to an organic molecule or macromolecule of the naturally occurring class of molecules, or derivatives thereof. Biomolecules are meant to include polypeptides (e.g., peptides, antibodies or antibody fragments), polynucleotides, carbohydrates (e.g., sugars), and lipids. In some cases, a biomolecule is a specific binding member (e.g., a member described herein).

[0016] As used herein, the term "polypeptide" refers to polymeric forms of amino acids of any length, including peptides ranging from 2 to 50 amino acids in length and polypeptides greater than 50 amino acids in length. "Polypeptide" and "protein" are used interchangeably herein. The term "polypeptide" includes polymers of coded and non-coded amino acids, chemically or biochemically modified or derivatized amino acids, and polypeptides with modified peptide backbones in which the conventional backbone is replaced with a non-natural or synthetic backbone. Polypeptides can be of any convenient length, e.g., two or more amino acids in length, such as four or more amino acids, ten or more amino acids, twenty or more amino acids, fifty or more amino acids, one hundred or more amino acids, three hundred or more amino acids, e.g., up to 500, or up to 1000 or more amino acids. A "peptide" can be two or more amino acids, such as four or more amino acids, ten or more amino acids, twenty or more amino acids, e.g., up to 50 amino acids. In some embodiments, peptides are 5 to 30 amino acids in length.

[0017] As used herein, the term "isolated" refers to a moiety of interest that is at least 60%, at least 75%, at least 90%, at least 95%, at least 98%, or even at least 99% separated from other components with which the moiety is associated prior to purification.

[0018] A "plurality" contains at least two members. In certain cases, a plurality can be 100 or more, 1000 or more, 10,000 or more, 100,000 or more, 10 6 That's it, 10 7 That's it, 10 8 More than or equal to 10 9 The group may have 10 or more members, such as 10 or more members.

[0019] Numeric ranges are inclusive of the members defining the range.

[0020] As used herein, the term "separation" refers to the physical separation of two elements (e.g., by size or affinity, etc.) as well as the degradation of one element while leaving the other intact.

[0021] As used herein, the term "specific binding" refers to the ability of a capture agent (or a first member of a specific binding pair) to preferentially bind to a particular analyte (or a second member of a specific binding pair) present, for example, in a homogeneous mixture of different analytes. In some cases, the specific binding interaction discriminates between desired and undesired analytes in a sample, with 10-fold or greater specificity for the desired analyte over the undesired analyte, such as 100-fold or greater, or 1000-fold or greater. In some cases, the affinity between the capture agent and the analyte when they are specifically bound in a capture agent / analyte complex is at least 10. -8 M, at least 10 -9 M, e.g. 10 -10 Up to M.

[0022] The method described herein comprises multiple steps. Each step can be performed after a predetermined time period, if necessary. Thus, the time between each step can be 1 second or more, 10 seconds or more, 30 seconds or more, 60 seconds or more, 5 minutes or more, 10 minutes or more, 60 minutes or more, and 5 hours or more. In certain embodiments, each subsequent step is performed immediately after the completion of the previous step. In other embodiments, a step can be performed after an incubation or waiting time, for example, a waiting time of several minutes to overnight, following the completion of the previous step.

[0023] As used herein, the term "linker" or "linkage" refers to a linking moiety that connects two groups and has a main chain length of 100 or more atoms. The linker or linkage can be a covalent bond connecting two groups or a chain of 1 to 100 atoms in length, e.g., a chain of 1, 2, 3, 4, 5, 6, 8, 10, 12, 14, 16, 18, 20 or more carbon atoms in length, and the linker can be linear, branched, cyclic, or a single atom. Optionally, the linker is a branched linker, meaning a linking moiety that connects three or more groups.

[0024] In certain cases, 1, 2, 3, 4, or 5 or more carbon atoms of the linker backbone may be optionally substituted with sulfur, nitrogen, or oxygen heteroatoms. The bond between the backbones may be saturated or unsaturated, and optionally, 1, 2, or 3 or fewer unsaturated bonds may be present in the linker backbone. The linker may include one or more substituents, such as an alkyl group, an aryl group, or an alkenyl group. Linkers include, but are not limited to, polyethylene glycol, ether, thioether, tertiary amine, alkyl (which may be linear or branched), such as methyl, ethyl, n-propyl, 1-methylethyl (isopropyl), n-butyl, n-pentyl, 1,1-dimethylethyl (t-butyl), and the like. The linker backbone may include a cyclic group, such as an aryl group, a heterocycle, or a cycloalkyl group, with two or more atoms of the cyclic group, such as 2, 3, or 4 atoms, being included in the backbone. The linker may be cleavable or non-cleavable.

[0025] As used herein, the terms "polyethylene oxide," "PEO," "polyethylene glycol," "PEG," and "PEG moiety" are used interchangeably and refer to a group of compounds of the formula --(CH2--CH2--O--) n"-" refers to a polymeric group comprising a chain represented by the formula: - or derivatives thereof. In some embodiments, "n" is 5000 or less, e.g., 1000 or less, 500 or less, 200 or less, 100 or less, 50 or less, 40 or less, 30 or less, 20 or less, 15 or less, e.g., 3 to 15, or 10 to 15. It is understood that the PEG polymeric group can be of any convenient length and can include a variety of end groups and / or additional substituents, including but not limited to alkyl, aryl, hydroxyl, amino, acyl, acyloxy, and amido end groups and / or substituents.

[0026] PEG groups that can be adapted for use with the subject multichromophores include those described in S. Zalipsky, "Functionalized poly(ethylene glycol) for preparation of biologically relevant conjugates," Bioconjugate Chemistry 1995, 6(2), 150-165; and Zhu et al., "Water-Soluble Conjugated Polymers for Imaging, Diagnosis, and Therapy," Chem. Rev., 2012, 112(8), pp. 4687-4735.

[0027] As used herein, the terms "chemoselective functional group," "chemoselective tag," and "conjugated tag" are used interchangeably and refer to a functional group that can selectively react with another compatible functional group to form a covalent bond, in some cases after optional activation of one of the functional groups.Chemical selective functional groups of interest include, but are not limited to, thiol and maleimide or iodoacetamide, amine and carboxylic acid or its active ester, and groups that can react with each other by click chemistry, such as azide and alkyne groups (e.g., cyclooctyne groups), as well as hydroxyl, hydrazide, hydrazino, aldehyde, ketone, azide, alkyne, phosphine, epoxide, etc.In some cases, the chemoselective functional group is a protected functional group that must be deprotected before covalent linkage.In certain cases, the chemoselective functional group can be activated before or during covalent linkage with a compatible functional group.

[0028] As used herein, the term "alkyl," by itself or as part of another substituent, means a saturated branched or straight-chain monovalent hydrocarbon radical derived by removing one hydrogen atom from a single carbon atom of a parent alkane. Alkyl groups of interest include, but are not limited to, methyl; propyl, such as ethyl, propan-1-yl, or propan-2-yl; and butyl, e.g., butan-1-yl, butan-2-yl, 2-methylpropan-1-yl, or 2-methylpropan-2-yl. In some embodiments, an alkyl group contains 1 to 20 carbon atoms.

[0029] In some embodiments, an alkyl group contains 1 to 10 carbon atoms. In certain embodiments, an alkyl group contains 1 to 6 carbon atoms, such as 1 to 4 carbon atoms. This term includes, by way of example, straight-chain and branched hydrocarbyl groups such as methyl (CH), ethyl (CHCH), n-propyl (CHCHCH-), isopropyl ((CH)CH-), n-butyl (CHCHCHCHCH), isobutyl ((CH)CHCH), s-butyl ((CH)(CHCH)CH-), t-butyl ((CH)C-), n-pentyl (CHCHCHCHCHCH-), and neopentyl ((CH)CCH-).

[0030] The term "substituted alkyl" refers to one or more carbon atoms in the alkyl chain that are optionally substituted with O-, N-, S-, -S(O), n -(n is 0-2), -NR- (R is hydrogen or alkyl), and substituted with a heteroatom such as alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-aryl, -SO-heteroaryl, -SO2-alkyl, -SO2-aryl, SO2-heteroaryl, and -NR a R b (R a and R b means an alkyl group, as defined herein, having 1 to 5 substituents, which may be the same or different, selected from the group consisting of hydrogen, optionally substituted alkyl, cycloalkyl, alkenyl, cycloalkenyl, alkynyl, aryl, heteroaryl, and heterocyclic.

[0031] "Alkynyl" refers to a straight or branched chain monovalent hydrocarbyl group having two to six carbon atoms, preferably two to three carbon atoms, and having at least one, preferably one or two, triple bond sites. Examples of such alkynyl groups include acetylenyl (C≡CH) and propargyl (CHC≡CH).

[0032] The term "substituted alkynyl" refers to an alkynyl group, as defined herein, having from one to five substituents selected from alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloalkenyl, substituted cycloalkenyl, acyl, acylamino, acyloxy, amino, substituted amino, aminoacyl, aminoacyloxy, oxyaminoacyl, azido, cyano, halogen, hydroxyl, oxo, thioketo, carboxyl, carboxylalkyl, thioaryloxy, thioheteroaryloxy, thioheterocyclooxy, thiol, thioalkoxy, substituted thioalkoxy, aryl, aryloxy, heteroaryl, heteroaryloxy, heterocyclyl, heterocyclooxy, hydroxyamino, alkoxyamino, nitro, -SO-alkyl, -SO-substituted alkyl, SO-aryl, -SO-heteroaryl, -SO2-alkyl, SO2-substituted alkyl, -SO2-aryl, and -SO2-heteroaryl.

[0033] "Aryl" by itself or as part of another substituent refers to a monovalent aromatic hydrocarbon radical derived by removing a hydrogen atom from a single carbon atom of an aromatic ring structure. Aryl groups of interest include, but are not limited to, groups derived from aceanthrylene, acenaphthylene, acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene, fluoranthene, fluorene, hexacene, hexaphene, hexalene, as-indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene, pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene, pyrene, pyranthrene, rubicene, triphenylene, trinaphthalene, and the like. In certain embodiments, aryl groups contain 6 to 20 carbon atoms. In certain embodiments, aryl groups contain 6 to 12 carbon atoms. Examples of aryl groups are phenyl and naphthyl.

[0034] "Heteroaryl" by itself or as part of another substituent means a monovalent heteroaromatic radical derived by the removal of a hydrogen atom from a single atom of an aromatic heterocyclic ring system. Heteroaryl groups of interest include, but are not limited to, groups derived from acridine, arsindole, carbazole, β-carboline, chroman, chromene, cinnoline, furan, imidazole, indazole, indole, indoline, indolizine, isobenzofuran, isochromene, isoindole, isoindoline, isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine, phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran, pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolidine, quinazoline, quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, triazole, benzotriazole, thiophene, triazole, xanthene, benzodioxole, and the like.

[0035] In certain embodiments, the heteroaryl group is a 5- to 20-membered heteroaryl. In certain embodiments, the heteroaryl group is a 5- to 10-membered heteroaryl. In certain embodiments, the heteroaryl group is a group derived from thiophene, pyrrole, benzothiophene, benzofuran, indole, pyridine, quinoline, imidazole, oxazole, and pyrazine.

[0036] The term "alkaryl" or "aralkyl" refers to alkylene-aryl and substituted alkylene-aryl groups, where alkylene, substituted alkylene, and aryl are defined herein.

[0037] "Alkoxy" refers to the group -O-alkyl, where alkyl is as defined herein. Alkoxy includes, by way of example, methoxy, ethoxy, n-propoxy, isopropoxy, n-butoxy, t-butoxy, sec-butoxy, n-pentoxy, and the like. The term "alkoxy" also refers to the groups alkenyl-O-, cycloalkyl-O-, cycloalkenyl-O-, and alkynyl-O-, where alkenyl, cycloalkyl, cycloalkenyl, and alkynyl are as defined herein.

[0038] The term "substituted alkoxy" refers to the groups substituted alkyl-O-, substituted alkenyl-O-, substituted cycloalkyl-O-, substituted cycloalkenyl-O-, and substituted alkynyl-O-, where substituted alkyl, substituted alkenyl, substituted cycloalkyl, substituted cycloalkenyl, and substituted alkynyl are as defined herein.

[0039] "Alkylene" refers to a straight or branched chain and includes -O-, -NR 10 -, NR 10 C(O)-, -C(O)NR 10"Aliphatic alkylene" refers to a divalent aliphatic hydrocarbyl group, preferably having 1 to 6 carbon atoms, more preferably 1 to 3 carbon atoms, optionally interrupted by one or more groups selected from, for example, methylene (CH), ethylene (CHCH), n-propylene (CHCHCH), iso-propylene (CHCH(CH)), (C(CH)CHCH), (C(CH)CHC(O)), (C(CH)CHC(O)NH), (CH(CH)CH-), and the like. "Substituted alkylene" refers to an alkylene group in which 1 to 3 hydrogen atoms have been replaced with substituents, as described for carbon in the definition of "substituted" below.

[0040] "Substituted" means a group in which one or more hydrogen atoms are independently replaced with the same or different substituents. Substituents of interest include, but are not limited to, alkylenedioxy (such as methylenedioxy), -M, R 60 , -O - , =O, -OR 60 , -SR 60 , -S - , =S, -NR 60 R 61 , =NR 60 , -CF3, -CN, -OCN, -SCN, -NO, -NO2, =N2, -N3, -S(O)2O - , -S(O)2OH, -S(O)2R 60 , -OS(O)2O - , -OS(O)2R 60 , -P(O)(O - )2, -P(O)(OR 60 )(O - ), -OP(O)(OR 60 )(OR 61 ), -C(O)R 60 , C(S)R 60 , -C(O)OR 60 , -C(O)NR 60 R 61 , -C(O)O - , -C(S)OR 60 , -NR 62 C(O)NR 60 R 61 , -NR62 C(S)NR 60 R 61 , -NR 62 C(NR 63 )NR 60 R 61 and -C(NR 62 )NR 60 R 61 wherein M is a halogen and R 60 , R 61 , R 62 and R 63 are independently hydrogen, alkyl, substituted alkyl, alkoxy, substituted alkoxy, cycloalkyl, substituted cycloalkyl, cycloheteroalkyl, substituted cycloheteroalkyl, aryl, substituted aryl, heteroaryl, or substituted heteroaryl, or optionally R 60 and R 61 together with the nitrogen atom to which they are attached form a cycloheteroalkyl or substituted cycloheteroalkyl ring; R 64 and R 65 are independently hydrogen, alkyl, substituted alkyl, aryl, cycloalkyl, substituted cycloalkyl, cycloheteroalkyl, substituted cycloheteroalkyl, aryl, substituted aryl, heteroaryl, or substituted heteroaryl, or optionally R 64 and R 65 together with the nitrogen atom to which they are attached form a cycloheteroalkyl or substituted cycloheteroalkyl ring. In certain embodiments, substituents include -M, -R 60 , =O, -OR 60 , -SR 60 ,-S,=S,-NR 60 R 61 , =NR 60 , -CF3, -CN, -OCN, -SCN, -NO, -NO2, =N2, -N3, -S(O)2R 60 , -OS(O)2O - , -OS(O)2R 60 , -P(O)(O - )2, -P(O)(OR 60 )(O - ), -OP(O)(OR 60 )(OR 61), -C(O)R 60 , -C(S)R 60 , -C(O)OR 60 , -C(O)NR 60 R 61 , -C(O)O - , -NR 62 C(O)NR 60 R 61 In certain embodiments, substituents include -M, -R 60 , =O, -OR 60 , -SR 60 , -NR 60 R 61 , -CF3, -CN, -NO2, -S(O)2R 60 , -P(O)(OR 60 )(O - ), -OP(O)(OR 60 )(OR 61 ), -C(O)R 60 , -C(O)OR 60 , -C(O)NR 60 R 61 , -C(O)O - In certain embodiments, substituents include -M, -R 60 , =O, -OR 60 , -SR 60 , -NR 60 R 61 , -CF3, -CN, -NO2, -S(O)2R 60 , -OP(O)(OR 60 )(OR 61 ), -C(O)R 60 , -C(O)OR 60 , -C(O)O - In the formula, R 60 , R 61 and R 62 is as defined below. For example, the substituent may have one, two, or three substituents selected from a methylenedioxy group, a halogen atom, a (1-4C) alkyl group, and a (1-4C) alkoxy group. When the substituted group is an aryl or heteroaryl group, the substituent (e.g., as described herein) may be referred to as an "aryl substituent."

[0041] Additional definitions of terms appear throughout this specification.

[0042] As summarized above, polymeric tandem dyes are provided. In some embodiments, the polymeric tandem dyes comprise a multichromophore comprising a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity. The polymeric tandem dyes can be covalently linked to specific binding members. Also provided are methods for evaluating a sample for the presence of a target analyte and methods for labeling a target molecule using a composition comprising the polymeric tandem dye. Kits and systems for carrying out the subject methods are also provided.

[0043] Before describing various embodiments in more detail, it is to be understood that the teachings of this disclosure are not limited to particular embodiments described, which may, of course, vary. It is also to be understood that the terminology used herein is for purposes of describing particular embodiments only, and is not intended to be limiting, since the scope of the present teachings will be limited only by the appended claims.

[0044] The section headings used herein are provided for organizational purposes only and should not be construed as limiting the subject matter described. To the extent that the teachings of the present invention are described in conjunction with various embodiments, it is not intended that the teachings of the present invention be limited to such embodiments. To the contrary, the teachings of the present invention encompass various alternatives, modifications, and equivalents, as will be appreciated by those skilled in the art.

[0045] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. Although methods and materials similar or equivalent to those described herein can also be used in the practice or testing of the teachings of the present invention, some exemplary methods and materials are described.

[0046] Citation of a publication is for its disclosure prior to the filing date and should not be construed as an admission that the claims of the present invention are entitled to antedate such publication by virtue of prior invention. Further, the publication date may be different from the actual publication date, which may be separately identified.

[0047] As will be apparent to those skilled in the art upon reading this disclosure, the individual embodiments described and illustrated herein have individual components and features which can be readily separated from or combined with the features of any of the other embodiments without departing from the scope or spirit of the inventive teachings. The recited method can be carried out in the order of events recited or in any other order which is logically possible.

[0048] All patents and publications referenced herein, including all sequences disclosed within such patents and publications, are expressly incorporated by reference.

[0049] In further describing the present invention, polymeric dyes and tandem dyes containing acceptor chromophores are first described in more detail. Next, conjugates containing the polymeric dyes are described. Methods in which compositions containing the subject polymeric tandem dyes are intended to be used are then outlined. Systems and kits that can be used in practicing the methods of the present invention are also described.

[0050] Multichromophores containing light-harvesting BODIPY units As summarized above, the present disclosure provides polymeric BODIPY dyes. In some embodiments, the polymeric dyes include a multichromophore comprising a light-harvesting BODIPY unit. In some embodiments, the multichromophore itself is fluorescent. In certain cases, the multichromophore is a polymeric tandem dye. Thus, in some embodiments, the multichromophore further includes an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity.

[0051] As used herein, the terms "light-harvesting multichromophore," "polymer dye," and "conjugated polymer" are used interchangeably to refer to a conjugated polymer having a structure capable of collecting light having a specific absorption maximum wavelength and converting it into emitted light at a longer emission maximum wavelength. In some cases, the light-harvesting multichromophore itself is fluorescent. Conjugated polymers (CPs) are characterized by a delocalized electronic structure, and their backbones may contain multiple conjugated segments in close proximity, resulting in an effective conjugation length substantially shorter than the length of the polymer chain. In some cases, conjugated polymers are effective in light harvesting, providing optimal light amplification to the acceptor through Förster energy transfer. In some embodiments, the conjugated polymer includes multiple first optically active units forming a conjugated system in which the first optically active units absorb light at an absorption wavelength (e.g., as described herein) to form an excited state. In certain cases, the polymer dye has a conjugated polymer segment or oligomer structure including n-conjugated repeat units that lower the band gap.

[0052] As used herein, the term "unit" refers to a structural subunit of a polymer. The term unit is meant to include monomers, comonomers, coblocks, conjugated segments, repeat units, and the like. A "repeating unit" is a subunit of a polymer defined by the minimum number of different structural features required for the unit to be considered a monomer, such that the resulting structure when the unit is repeated n times indicates a polymer or block thereof. In some cases, a polymer contains two or more different types of repeating units; for example, if the polymer is a multiblock polymer, each block may define a different repeating unit. In some cases, the repeating unit of a polymer contains a single monomer group. In certain cases, the repeating unit of a polymer contains two or more monomer groups, i.e., two, three, four or more comonomer groups, etc.

[0053] As used herein, the term "comonomer" or "comonomer group" refers to a structural unit of a polymer that may itself be part of a repeat unit of the polymer. In some embodiments, the conjugated polymer comprises a block copolymer composed of blocks of polymerized monomers. In such cases, the block copolymer may be described as having different repeat units, each corresponding to a separate coblock of the polymer. In some cases, the polymer is a diblock copolymer containing two different coblocks. In such cases, the polymer may be described as comprising coblocks, and each coblock may be composed of comonomers, such as one, two, three, or more comonomers.

[0054] As used herein, the term "BODIPY unit" refers to the boron-dipyrromethene (BODIPY) core structure shown below:

[0055] [ka]

[0056] where each R is independently selected from the group consisting of F, OH, H, alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkoxy, substituted alkoxy, alkynyl, and substituted alkynyl. The BODIPY core structure may be linked to adjacent units of the multichromophore through any convenient position on the core structure and may optionally be further substituted. In some cases, the BODIPY unit may be π-conjugated to adjacent units of the polymer.

[0057] In some embodiments, the BODIPY unit defines a repeat unit. In certain embodiments, the BODIPY unit defines a comonomer that is part of a repeat unit. Any convenient BODIPY-containing structure may be adapted for use as a BODIPY unit in the subject multichromophores. BODIPY-containing structures of interest include, but are not limited to, those BODIPY dyes and derivatives described by Loudet and Burgess, "BODIPY Dyes and Their Derivatives: Syntheses and Spectroscopic Properties," Chem. Rev. 2007, 107(11):4891-4932.

[0058] In certain embodiments, the BODIPY unit has the structure:

[0059] [ka]

[0060] where: R1, R2, R3 and R4 are each independently selected from H, alkyl or substituted alkyl; R5 is alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, or substituted heteroaryl; R 5 is optionally substituted with a water-soluble group, and Each R is selected from the group consisting of F, OH, H, alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkoxy, substituted alkoxy, alkynyl, and substituted alkynyl.

[0061] Any convenient light-harvesting multichromophore can be adapted to include a BODIPY unit. Subject light-harvesting multichromophores that can be modified to include BODIPY units include, but are not limited to, those disclosed in U.S. Patent Application Publication Nos. 20040142344, 20080293164, 20080064042, 20100136702, 20110256549, 20120028828, 20120252986, and 20130190193, and U.S. Patent Nos. 8,575,303 and 8,802,450 by Gaylord et al., the disclosures of which are incorporated herein by reference in their entireties. al., J. Am. Chem. Soc., 2001, 123(26), pp6417-6418; Feng et al., Chem. Soc. Rev., 2010, 39, 2411-2419; and Traina et al., J. Am. Chem. Soc., 2011, 133(32), pp12600-12607.

[0062] The subject multichromophores can be water-soluble. Convenient water-soluble groups can be included in the multichromophores to increase the water solubility of the dyes. The increase in solubility can vary, but in some cases the increase is 2-fold or more (compared to the compound without WSG), e.g., 5-fold, 10-fold, 25-fold, 50-fold, 100-fold, or more. The term "water-soluble group" (WSG) refers to a group that is sufficiently solvated in an aqueous environment, e.g., under physiological conditions, and confers improved water solubility to the molecule to which it is attached. In some embodiments, WSG increases the solubility of the multichromophore in primarily aqueous solutions, compared to the multichromophore without WSG. The water-soluble group can be any convenient hydrophilic group that is sufficiently solvated in an aqueous environment. Optionally, the hydrophilic water-soluble group is charged, e.g., carrying a positive or negative charge.

[0063] In certain cases, the hydrophilic water-soluble group is a neutral hydrophilic group. In some embodiments, the WSG is a hydrophilic polymer, such as polyethylene glycol, cellulose, chitosan, or a derivative thereof. Water-soluble groups of interest include, but are not limited to, carboxylate, phosphonate, phosphate, sulfonate, sulfate, sulfinate, sulfonium, ester, polyethylene glycol (PEG) and modified PEG, hydroxyl, amine, ammonium, guanidinium, pyridinium, polyamine and sulfonium, polyhydric alcohol, linear or cyclic saccharide, primary, secondary, tertiary, or quaternary amine and polyamine, phosphonate group, phosphinate group, ascorbic acid group, glycol, e.g., polyether, -COOM', -SO3M', -PO3M', -NR3 + , Y', (CH2CH2O) p R and mixtures thereof (Y' can be halogen, sulfate, sulfonate, or oxygen-containing anion; p can be 1 to 500; each R can independently be H or alkyl (such as methyl); M' can be a cationic counterion or hydrogen, --(CHCHO) yy CH2CH2XR yy , --(CH2CH2O) yy CH2CH2X--, --X(CH2CH2O) yy CH2CH2--, glycol, and polyethylene glycol, where yy is selected from 1 to 1000, and X is O, S, and NR ZZ Selected from R ZZ and R YY are independently selected from H and C1-C3 alkyl.

[0064] Multiple WSGs can be included at a single location in the subject multichromophore via a branched linker. Any convenient branched linker can be utilized to provide linkage to multiple WSGs. Contemplated branched linkers include, but are not limited to, tertiary amino groups (e.g., where N is the branching atom), amino acid residues, substituted aryl groups, substituted heteroaryl groups, substituted heterocyclic groups, dendrimers, and the like. In certain embodiments, the branched linker is an aralkyl substituent that is further disubstituted with water-soluble groups. Thus, in some cases, the branched linker group is a substituent of the multichromophore that connects the multichromophore to two or more water-soluble groups. In some cases, the incorporation of multiple WSGs via a branched linker confers desirable solubility to the multichromophore. In some embodiments, the multichromophore includes a substituent selected from the group consisting of alkyl, aralkyl, and heterocyclic groups, each of which is further substituted with a water-soluble group. In certain cases, the WSG is a hydrophilic polymer group, such as polyethylene glycol (PEG) (eg, PEG of 2 to 20 units).

[0065] The multichromophore may be of any convenient length. In some cases, the specific number of monomer repeat units or segments of the multichromophore may fall within the range of 2 to 500,000, such as 2 to 100,000, 2 to 30,000, 2 to 10,000, 2 to 3,000, or 2 to 1,000 units or segments, or 5 to 100,000, 10 to 100,000, 100 to 100,000, 200 to 100,000, or 500 to 50,000 units or segments. In some cases, the specific number of monomer repeat units or segments of the multichromophore may fall within the range of 2 to 1,000, such as 2 to 500, 2 to 100, 3 to 100, 4 to 100, 5 to 100, 6 to 100, 7 to 100, 8 to 100, 9 to 100, or 10 to 100 units or segments.

[0066] The multichromophore may have any convenient molecular weight (MW). In some cases, the MW of the multichromophore is expressed as an average molecular weight. In some cases, the polymeric dye has an average molecular weight of 500 to 500,000, such as 1,000 to 100,000, 2,000 to 100,000, 10,000 to 100,000, or an average molecular weight of 50,000 to 100,000.

[0067] In some embodiments, the BODIPY units comprise 25% or more (by molar concentration) of the multichromophore, such as 30% or more, 40% or more, 45% or more, 50% or more, 60% or more, 70% or more. In such cases, the multichromophore may include 5 or more repeating units, such as 10 or more, 20 or more, 30 or more, 40 or more, 50 or more, 60 or more, 70 or more, 80 or more, 90 or more, 100 or more, 200 or more, 500 or more, 1000 or more, 10,000 or more. In such cases, the multichromophore may include 5 or more comonomer units, such as 10 or more, 20 or more, 30 or more, 40 or more, 50 or more, 60 or more, 70 or more, 80 or more, 90 or more, 100 or more, 200 or more, 500 or more, 1000 or more, 10,000 or more.

[0068] The subject multichromophores may have one or more desirable spectroscopic properties, such as a particular wavelength of absorption maximum, a particular wavelength of emission maximum, an extinction coefficient, a quantum yield, narrowband spectral features, a low-energy absorption band, and the like.

[0069] In certain embodiments, the multichromophore has narrow-band spectral features. Narrow-band spectral features refer to absorbance or emission spectra with a full width at half maximum (FWHM) of 50 nm or less, with a peak centered at 500 nm or more. In some embodiments, the dye has a low-energy absorption band with a bandwidth of 200 nm or less, for example, 150 nm or less, 100 nm or less, 90 nm or less, 80 nm or less, 70 nm or less, 60 nm or less, 50 nm or less, 40 nm or less, 30 nm or less, 20 nm or less, or even less. In some cases, the bandwidth is determined by full width at half maximum (FWHM) measurement. In certain embodiments, the dye has a low-energy absorption band with a bandwidth of 50 nm or less.

[0070] In some embodiments, the multichromophore has an absorption maximum wavelength in the range of 300-900 nm, e.g., 350-850 nm, 350-600 nm, 360-500 nm, 370-500 nm, 380-500 nm, 390-500 nm, or 400-500 nm. Specific examples of desired absorption maxima include, but are not limited to, 590 nm, 630 nm, 650 nm, 680 nm, and 750 nm. In certain embodiments, the multichromophore has an absorption maximum wavelength of 590 nm ± 5 nm, 630 nm ± 5 nm, 650 nm ± 5 nm, 680 nm ± 5 nm, or 750 nm ± 5 nm. In some embodiments, the multichromophore has an emission maximum wavelength in the range of 300-900 nm, e.g., 350-850 nm, 350-600 nm, 360-500 nm, 370-500 nm, 380-500 nm, 390-500 nm, or 400-500 nm. Specific examples of desired emission maxima include, but are not limited to, 605 nm, 650 nm, 680 nm, 700 nm, and 805 nm. In certain embodiments, the multichromophore has an emission maximum wavelength of 605 nm ± 5 nm, 650 nm ± 5 nm, 680 nm ± 5 nm, 700 nm ± 5 nm, or 805 nm ± 5 nm.

[0071] In some cases, the multichromophore has an extinction coefficient of 5×10 5 cm -1 M -1For example, 6 x 10 5 cm -1 M -1 That's it, 7 x 10 5 cm -1 M -1 That's it, 8 x 10 5 cm -1 M -1 That's it, 9 x 10 5 cm -1 M -1 or more, for example, 1×10 6 cm -1 M -1 That's it, 1.5 x 10 6 cm -1 M -1 That's it, 2 x 10 6 cm -1 M -1 That's it, 2.5 x 10 6 cm -1 M -1 That's it, 3 x 10 6 cm -1 M -1 That's it, 4 x 10 6 cm -1 M -1 That's it, 5 x 10 6 cm -1 M -1 That's it, 6 x 10 6 cm -1 M -1 That's it, 7 x 10 6 cm -1 M -1 or more, or 8 x 10 6 cm -1 M -1 In such cases, the multichromophore may have 5 or more repeating units, such as 6 or more, 7 or more, 8 or more, 9 or more, 10 or more, etc. In some embodiments, the multichromophore has a molar extinction coefficient of 5×10 5 M -1 cm -1 In certain embodiments, the multichromophore has a molar extinction coefficient of 1×10 or greater. 6 M -1 cm -1 The above applies.

[0072] In some cases, the multichromophore has 40,000 cm per comonomer.-1 M -1 or more, for example, 45,000 cm per comonomer -1 M -1 or more, 50,000 cm per comonomer -1 M -1 or more, 55,000 cm per comonomer -1 M -1 More than 60,000 cm per comonomer -1 M -1 More than 70,000 cm per comonomer -1 M -1 or more, 80,000 cm per comonomer -1 M -1 or more, 90,000 cm per comonomer -1 M -1 or more, 100,000 cm per comonomer -1 M -1 It has an extinction coefficient equal to or greater than 1000 .mu.m.

[0073] In some cases, the multichromophore has 40,000 cm per repeat unit. -1 M -1 For example, 45,000 cm per repeat unit -1 M -1 More than 50,000 cm per repeat unit -1 M -1 More than 55,000 cm per repeat unit -1 M -1 More than 60,000 cm per repeat unit -1 M -1 More than 70,000 cm per repeat unit -1 M -1 More than 80,000 cm per repeat unit -1 M -1 More than 90,000 cm per repeat unit -1 M -1 or more, 100,000 cm per repeat unit -1 M -1 or more, 100,000 cm per repeat unit -1 M -1or more, 120,000 cm per repeat unit -1 M -1 It has an extinction coefficient equal to or greater than 1000 .mu.m.

[0074] In certain cases, the extinction coefficients described herein are average extinction coefficients. In certain cases, the repeat unit of a multichromophore may include a single monomer, two comonomers, or three or more comonomers.

[0075] In certain embodiments, the multichromophore has a quantum yield of 0.05 or greater, e.g., 0.1 or greater, 0.15 or greater, 0.2 or greater, 0.25 or greater, 0.3 or greater, 0.35 or greater, 0.4 or greater, 0.45 or greater, 0.5 or greater, 0.6 or greater, 0.7 or greater, or even greater. In certain cases, the multichromophore has a quantum yield of 0.1 or greater. In certain cases, the multichromophore has a quantum yield of 0.3 or greater.

[0076] It is understood that in some cases, the multichromophores may include coblocks (e.g., n and m coblocks). The subject multichromophores may include any convenient linear arrangement of n and m coblocks of various lengths within the overall polymer structure. Furthermore, the multichromophores may include any convenient arrangement of comonomers within such n and / or m coblocks. In producing the subject multichromophores, various polymer synthesis methods can be used to produce the subject comonomers and coblocks. It is understood that compositions comprising an ensemble of conjugated polymers, optionally with some variation in particular lengths and / or end groups (e.g., terminal groups) present in each CP of the ensemble, may be produced by this polymerization method. The formulas shown herein may refer to a single compound or a subset of polymeric compounds.

[0077] In some embodiments, the multichromophore has formula (I):

[0078] [ka]

[0079] wherein the conjugated segment comprises a BODIPY represented by the formula: B is a BODIPY unit (e.g., as described herein); M is a π-conjugated comonomer; each L is a terminal group, and n is an integer from 1 to 100,000. In certain cases of Formula (I), each L is independently selected from the group consisting of an end group, a π-conjugated segment, a linker, and a linked specific binding member.

[0080] Any convenient π-conjugated comonomer may be utilized in the subject multichromophores. As used herein, the term "π-conjugated comonomer" refers to any convenient monomer subunit of a polymer that is capable of π-conjugation (i.e., delocalization of π electrons across adjacent units) to adjacent groups along the polymer backbone. In certain embodiments of Formula (I), M is selected from the group consisting of fused 6-5-6 tricyclic comonomers, fluorene comonomers, phenylene-vinylene comonomers, phenylene-ethynylene comonomers, carbazole comonomers, C2-C6 12 Selected from alkyne comonomers, arylene-ethynylene comonomers, heteroarylene-ethynylene comonomers, arylene comonomers and heteroarylene comonomers.

[0081] In certain embodiments of Formula (I), M is a phenylene-vinylene comonomer. In certain instances of Formula (I), M is a phenylene-ethynylene comonomer. In certain instances of Formula (I), M is a carbazole comonomer. In certain instances of Formula (I), M is a C2-C 12 In certain instances of Formula (I), M is an alkyne comonomer. In certain embodiments of Formula (I), M is an arylene-ethynylene comonomer. In some embodiments of Formula (I), M is a heteroarylene-ethynylene comonomer. In certain instances of Formula (I), M is an arylene comonomer. In certain instances of Formula (I), M is a heteroarylene comonomer.

[0082] In some embodiments of formula (I), M is a fused 6-5-6 tricyclic comonomer. The 6-5-6 fused tricyclic comonomer is a comonomer comprising a tricyclic aromatic group having three fused rings in a 6-5-6 configuration, i.e., two benzo rings fused to a central five-membered ring. The five-membered ring can be a carbocyclic or heterocyclic ring, and can further comprise a side chain substituent at the ring atom not fused to the benzo ring. In certain cases, the 6-5-6 fused tricyclic comonomer has the following structure:

[0083] [ka]

[0084] where: Z is -C(R 1 )2- or -N(R 1 )-and; R are each independently H or one or more aryl substituents; R 1 each independently represents an alkyl, a substituted alkyl, an aralkyl, a substituted aralkyl, a PEG moiety, and -L 1 -Z 1 (L 1 is a linker, and Z 1 is a chemoselective tag (e.g., a tag containing a chemoselective functional group) or WSG. * means the site or end group of covalent attachment to the unsaturated backbone of a conjugated polymer. In some embodiments, Z is —N(R 1 )-, the 6-5-6 fused tricyclic comonomer is a carbazole comonomer. Any convenient carbazole comonomer can be used in the subject multichromophores.

[0085] In some embodiments, Z is —C(R 1)2-, the 6-5-6 fused tricyclic comonomer is a fluorene comonomer. Any convenient fluorene comonomer can be used in the subject multichromophores. In some embodiments of formula (I), M is a carbazole comonomer. In certain instances of fused 6-5-6 tricyclic comonomers, each R 1 is selected from a benzyl group substituted with one, two or more PEG moieties, or an alkyl group substituted with two or more PEG moieties.

[0086] In some embodiments of formula (I), M is a fluorene comonomer. The fluorene comonomer is an aromatic group having a 9H-fluorene core structure substituted at the 9-position with any convenient side chain substituent. In some cases, the fluorene comonomer is a 9,9-disubstituted fluorene. The fluorene comonomer can be conjugated to adjacent polymer backbone groups via any convenient position on the fluorene core structure, for example, any two convenient positions selected from positions 1 to 8 (see numbering scheme below). In some embodiments, the fluorene core structure is linked to adjacent groups on the polymer backbone via positions 2 and 7 (see numbering scheme below). In certain embodiments, the fluorene comonomer has the following structure:

[0087] [ka]

[0088] where each R 1 is an alkyl, substituted alkyl, aralkyl, substituted aralkyl, PEG moiety and -L 1 -Z 1 wherein L is independently selected from 1 is a linker, and Z 1 is a chemoselective tag (e.g., a tag containing a chemoselective functional group) or WSG. In the particular case of fluorene comonomers, each R 1is selected from a benzyl group substituted with one, two or more PEG moieties, or an alkyl group substituted with two or more PEG moieties. 1 comprises a functional group used in covalently linking a multichromophore to an acceptor chromophore (e.g., as described herein). In certain cases, Z 1 contains an amino group for covalent linkage to an acceptor chromophore.

[0089] In certain cases, Z 1 contains a carboxylic acid group, or a derivative thereof, for covalent linkage to an acceptor chromophore. 1 is two or more Z 1 In certain cases, the fluorene comonomer is a branched linker linked to a group (e.g., WSG). In certain cases, the fluorene comonomer is linked to one, two, or more R groups located at positions selected from the 1, 3, 4, 5, 6, and 8 positions. 5 and / or R 6 is further substituted with a substituent, R 5 and R 6 is independently selected from a water-soluble group (WSG) and an aryl substituent (eg, as described herein).

[0090] In some cases, the fluorene comonomer has the following structure:

[0091] [ka]

[0092] where R 2 are each alkyl substituted with a water-soluble group or a branched linker connected to two or more water-soluble groups (e.g., PEG disubstituted benzyl or PEG substituted alkyl). In the particular case of fluorene comonomers, R 2 are each one, two, or three PEG moieties (e.g., -O(CH2CH2O) nR' is a benzyl group substituted with R' (R' is H or alkyl and n is 1-20, for example, 3-16, e.g., n is 8-16). In the particular case of fluorene comonomers, R 2 Each is one -O(CH2CH2O) n A benzyl group substituted with an R' group (eg, at the 2-, 3- or 4-position), where R' is H or alkyl, and n is 1-20, such as 3-16, for example, n is 8-16.

[0093] In the particular case of fluorene comonomers, R 2 are two -O(CH2CH2O) n benzyl groups substituted with R' groups (e.g., at the 2,4-, 3,4-, or 3,5-positions), where each R' is independently H or alkyl, and each n is independently 1 to 20, e.g., 3 to 16, e.g., n is 8 to 16. In the particular case of fluorene comonomers, R 2 are each three -O(CH2CH2O) n benzyl groups substituted with R' groups (e.g., at the 2,2,4,6-, 2,4,5-, or 3,4,5-positions), where R' is H or alkyl, and n is 1 to 20, such as 3 to 16, e.g., n is 8 to 16. In the particular case of fluorene comonomers, R 2 are each lower alkyl substituted with a trivalent branched group, each substituted with two PEG moieties (e.g., —CO—NR″ or —O(CHR″) trivalent branched groups), and each R″ is independently a PEG moiety (e.g., —O(CHCHO) n R' (wherein R' is H or alkyl and n is 1 to 20, such as 3 to 16, for example, n is 8 to 16). In certain embodiments, the fluorene comonomer has the following structure:

[0094] [ka]

[0095] where R 3 is an alkyl substituted with a water-soluble group (e.g., a PEG-substituted alkyl), and R 4 L 1 -Z 2 where L 1 is a linker, and Z 2 is a chemoselective tag (e.g., for conjugation to an acceptor chromophore) or acceptor chromophore. Any convenient chemoselective functional group may be included in the subject multichromophores, including, but not limited to, carboxylic acid, active ester (e.g., NHS or sulfo-NHS ester), amino, hydroxyl, thiol, maleimide, iodoacetyl, hydrazide, hydrazino, aldehyde, ketone, azide, alkyne, phosphine, epoxide, etc. In some cases, a chemoselective tag is utilized to covalently link any convenient moiety (e.g., an acceptor chromophore) to the multichromophore.

[0096] In certain cases, Z 2 contains an amino group for covalent linkage to an acceptor chromophore. 2 contains a carboxylic acid group, or a derivative thereof, for covalent linkage to an acceptor chromophore. In certain cases of fluorene comonomers, R 3 is a lower alkyl group substituted with a trivalent branched group, each of which is substituted with two PEG moieties (e.g., —CO—NR″ or —O(CHR″)), where each R″ is a PEG moiety (e.g., —O(CHCHO) n R', where R' is H or alkyl, and n is 1 to 20, for example, 3 to 16, for example, n is 8 to 16).

[0097] In some cases, the fluorene comonomer has the following structure:

[0098] [ka]

[0099] where: R 3 is a substituent containing a water-soluble group (e.g., as described herein); R 4 L 1 -Z 2 where L 1 is a linker, and Z 2 is a chemoselective tag (e.g., for conjugation to an acceptor chromophore) or an acceptor chromophore, and R 5 and R 6 is independently selected from H, a water-soluble group, and an aryl substituent (e.g., alkyl, substituted alkyl, alkoxy, substituted alkoxy, halogen, or nitro). In certain cases of fluorene comonomers, R 3 is a lower alkyl group substituted with a trivalent branching group, each of which is substituted with two PEG moieties (e.g., -CO-NR'' or -O(CHR'') trivalent branching groups, where each R'' is a PEG moiety (e.g., -O(CHCHO) n R', where R' is H or alkyl, and n is 1 to 20, for example, 3 to 16, for example, n is 8 to 16).

[0100] Any convenient terminal group can be utilized at the terminus of the subject multichromophores. Terminal groups of interest include, but are not limited to, end-capping groups, π-conjugated segments, linkers, and linked specific binding members. In some embodiments, the end-capping group is a monovalent group that is conjugated to the backbone of the multichromophore after polymerization. In certain cases, the end-capping group is an aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkyl, or substituted alkyl. In some embodiments, the end-capping group is substituted with any convenient moiety, such as a linker and / or conjugated tag, to which a specific binding member can be attached.

[0101] In certain cases, the terminal group is a group derived from a monomer used in the polymerization process, such as a group capable of undergoing further conjugation, such as a halogen (e.g., Br), a boronic acid, or a boronic ester. In some cases, the terminal group is a π-conjugated segment. As used herein, π-conjugated segment refers to any convenient additional segment of a conjugated polymer to which a multichromophore can be conjugated (i.e., allowing for delocalization of π electrons across adjacent units).

[0102] In certain embodiments, the terminal unit is a linker, e.g., a linker comprising a functional group suitable for conjugation to a specific binding moiety. It is understood that the linker and conjugation tag located at the end of the multichromophore may be selected so as to be perpendicular to any other linkers and chemoselective tags that may be present in the side chains of the multichromophore. As used herein, the terms chemoselective tag and conjugation tag may be used interchangeably and refer to any convenient group that comprises a functional group of interest (e.g., a chemoselective functional group described herein). In certain embodiments, an amino functional group or a derivative thereof is attached to the terminal group (e.g., G 1 and / or G 2 ) and the carboxylic acid functional group or its derivative is contained in Z 1 In certain embodiments, the carboxylic acid functional group or derivative thereof is a terminal group (e.g., G 1 and / or G 2 ) and the amino functional group or its derivative is contained in Z 1 is included in.

[0103] Polymer Tandem Dyes As summarized above, the present disclosure provides polymeric tandem dyes comprising a multichromophore comprising a light-harvesting BODIPY unit. Any of the light-harvesting BODIPY unit-containing multichromophores described herein can be utilized in the subject polymeric tandem dyes. In some embodiments, the polymeric tandem dyes comprise a light-harvesting BODIPY unit-containing multichromophore and an acceptor chromophore covalently linked to the multichromophore in energy-accepting proximity. In some embodiments, the light-harvesting multichromophore is water-soluble.

[0104] Polymeric tandem dyes comprise two covalently linked moieties: a donor light-harvesting multichromophore (e.g., as described herein) and an acceptor chromophore. As used herein, the term "acceptor chromophore" refers to a light-absorbing molecule that can accept or absorb energy transferred from the multichromophore. In some cases, the acceptor chromophore can emit the energy received from the multichromophore as light or dissipate the energy as heat.

[0105] Unless otherwise specified, in the structures and formulas depicted herein, the label "dye" is understood to refer to an "acceptor chromophore." In some cases, the acceptor chromophore is a quencher. As used herein, the term "quencher" refers to an acceptor chromophore that can absorb energy from a multichromophore and not emit light, but rather dissipate the energy as heat. In certain cases, the acceptor chromophore is a fluorescent dye. In some embodiments, the polymeric tandem dye can be excited at the absorption maximum wavelength of the donor multichromophore and emit light at the emission wavelength of the acceptor chromophore. In some cases, the light-harvesting multichromophore can transfer energy to an acceptor chromophore species in its energy-accepting proximity. Mechanisms for energy transfer include, for example, resonance energy transfer (e.g., Förster (or fluorescence) resonance energy transfer, FRET), quantum charge exchange (Dexter energy transfer), and the like.

[0106] In some cases, these energy transfer mechanisms are relatively short-range; i.e., the proximity of the light-harvesting multichromophore system to the acceptor chromophore results in efficient energy transfer. In some cases, under conditions for efficient energy transfer, when the number of individual chromophores in the light-harvesting multichromophore system is large, amplification of emission from the acceptor chromophore occurs. That is, emission from the signaling chromophore is more intense when the incident light ("pump light") is at a wavelength absorbed by the light-harvesting multichromophore than when the signaling chromophore is directly excited by the pump light.

[0107] In some cases, "efficient" energy transfer means that 5% or more, e.g., 10% or more, 20% or more, 30% or more, 40% or more, 50% or more, or even more, of the collected energy is transferred to the acceptor. In some cases, when the acceptor chromophore is a fluorescent dye, the term efficient energy transfer can refer to a fluorescence quantum yield of 0.05 or more, e.g., 0.1 or more, 0.2 or more, 0.3 or more, 0.4 or more, 0.5 or more, or even more.

[0108] By "amplification" is meant that the signal from the acceptor chromophore, when excited by the light-harvesting chromophore, is 1.5-fold or more, e.g., 2.0-fold or more, 2.5-fold or more, 3-fold or more, 4-fold or more, 5-fold or more, 6-fold or more, 7-fold or more, 8-fold or more, 10-fold or more, or even more, compared to direct excitation with incident light of equal intensity. The signal can be measured using any convenient method. In some cases, a signal of 1.5-fold or more refers to the intensity of emitted light. In certain cases, a signal of 1.5-fold or more refers to an increase in the signal-to-noise ratio. In certain embodiments of the polymeric tandem dye, the emission of the acceptor chromophore is 1.5-fold or more when excited by the multichromophore compared to direct excitation of the acceptor chromophore with incident light.

[0109] In some cases, the polymer tandem dye is 5×10 5 cm -1 M-1 More than, for example, 6 x 10 5 cm -1 M -1 That's it, 7 x 10 5 cm -1 M -1 That's it, 8 x 10 5 cm -1 M -1 That's it, 9 x 10 5 cm -1 M -1 or more, for example, 1×10 6 cm -1 M -1 That's it, 1.5 x 10 6 cm -1 M -1 That's it, 2 x 10 6 cm -1 M -1 That's it, 2.5 x 10 6 cm -1 M -1 That's it, 3 x 10 6 cm -1 M -1 That's it, 4 x 10 6 cm -1 M -1 That's it, 5 x 10 6 cm -1 M -1 That's it, 6 x 10 6 cm -1 M -1 That's it, 7 x 10 6 cm -1 M -1 or more, or 8 x 10 6 cm -1 M -1 In some embodiments, the polymeric tandem dye has an extinction coefficient of 5×10 or greater. 5 M -1 cm -1 In certain embodiments, the polymeric tandem dye has a molar extinction coefficient of 1×10 or greater. 6 M -1 cm -1 It has a molar extinction coefficient of at least 1000 ppm.

[0110] In certain embodiments, the polymeric tandem dye has a quantum yield of 0.05 or more, for example, 0.10 or more, 0.15 or more, 0.20 or more, 0.25 or more, 0.30 or more, 0.35 or more, for example, 0.40 or more, 0.45 or more, 0.5 or more, or even more. In certain cases, the polymeric tandem dye has a quantum yield of 0.1 or more. In certain cases, the polymeric tandem dye has a quantum yield of 0.3 or more.

[0111] As the acceptor chromophore, any convenient fluorescent dye can be used in the subject polymeric tandem dyes. The terms "fluorescent dye" and "fluorophore" are used interchangeably herein. In some embodiments, the acceptor chromophore is a cyanine dye, a xanthene dye, a coumarin dye, a thiazine dye, or an acridine dye.

[0112] Fluorescent dyes of interest include, but are not limited to, fluorescein, 6-FAM, rhodamine, Texas Red, tetramethylrhodamine, carboxyrhodamine, carboxyrhodamine 6G, carboxyrhodol, carboxyrhodamine 110, Cascade Blue, Cascade Yellow, coumarin, Cy2, Cy3, Cy3.5, Cy5, Cy5.5, Cy-chrome, phycoerythrin, PerCP (peridinin chlorophyll-a protein), PerCP-Cy5.5, JOE (6-carboxy-4',5'-dichloro-2',7'-dimethoxyfluorescein), NED, ROX (5-(and-6)-carboxy-X-rhodamine), HEX, Lucifer Yellow, Marina Blue, Oregon Green 488, Oregon Green 500, Oregon Green 514, Alexa Fluor 350, Alexa Fluor 430, Alexa Fluor 488, Alexa Fluor 532, Alexa Fluor 546, Alexa Fluor 568, Alexa Fluor 594, Alexa Fluor 633, Alexa Fluor 647, Alexa Fluor 660, Alexa Fluor 680, Alexa Fluor 700, 7-amino-4-methylcoumarin-3-acetic acid, BODIPYFL, BODIPYFL-Br.sub.2, BODIPY 530 / 550, BODIPY 558 / 568, BODIPY 564 / 570, BODIPY 576 / 589, BODIPY581 / 591, BODIPY 630 / 650, BODIPY 650 / 665, BODIPYR 6G, BODIPYTMR, BODIPYTR, conjugates thereof, and combinations thereof.

[0113] Lanthanide chelates of interest include, but are not limited to, europium chelates, terbium chelates, and samarium chelates. In some embodiments, a polymeric tandem dye refers to a polymeric dye linked to an acceptor fluorophore selected from Cy3, Cy3.5, Cy5, Cy5.5, Cy7, Alexa 488, Alexa 647, and Alexa 700. In certain embodiments, the polymeric tandem dyes include polymeric dyes linked to acceptor fluorophores selected from Dyomics dyes (e.g., DY 431, DY 485XL, DY 500XL, DY 530, DY 610, DY 633, DY 640, DY 651, DY 654, DY 682, DY 700, DY 701, DY 704, DY 730, DY 731, DY 732, DY 734, DY 752, DY 754, DY 778, DY 782, DY 800, or DY 831), Biotium CF555, Cy3.5, and diethylaminocoumarin.

[0114] In certain embodiments of the polymeric tandem dye, the ratio of comonomers lacking an acceptor chromophore to comonomers comprising an attached acceptor chromophore is in the range of 40:1 to 3:1, e.g., in the range of 20:1 to 3:1, 10:1 to 3:1, 9:1 to 3:1, 5:1 to 3:1, or 4:1 to 3:1, or in the range of 20:1 to 4:1, 20:1 to 5:1, 20:1 to 9:1, or 20:1 to 10:1.

[0115] In some cases, the polymeric tandem dye has the formula (II):

[0116] [ka]

[0117] where: B 1 and B 2 are each independently BODIPY units, Each M 1 and each M2 are independently π-conjugated comonomers, a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 or an integer from 1 to 100,000, where n+m≧1; p is an integer from 1 to 100,000, and Each L 2 are independently terminal groups.

[0118] In certain instances of formula (II), each L 2 are independently selected from terminal groups, π-conjugated segments, linkers, and linked specific binding members. In some embodiments of Formula (II), when b is 0, a and c are each 1; when e is 0, d and f are each 1; when b is 1, a + c ≧ 1, and when e is 1, d + f ≧ 1. In some embodiments of Formula (II), b is 1 and e is 0. In some embodiments of Formula (II), b is 0 and e is 1. In some embodiments of Formula (II), b is 1 and e is 1. In some embodiments of Formula (II), b is 2 and e is 0. In some embodiments of Formula (II), b is 0 and e is 2. In some embodiments of Formula (II), b is 2. In some embodiments of Formula (II), e is 2.

[0119] In some cases of formula (II), B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 is the acceptor chromophore. In certain cases of formula (II), B 1 and B 2 At least one of the -L 1 -C 1 In some cases of formula (II), M 1 and M2 At least one of the -L 1 -C 1 In some cases of formula (II), M 1 -L 1 -C 1 Including M 2 In certain cases of formula (II), M 2 -L 1 -C 1 Including M 1 does not include it. In certain cases of formula (II), B 1 -L 1 -C 1 Including B 2 does not include it. In certain cases of formula (II), B 2 -L 1 -C 1 Including B 1 does not include it.

[0120] In some embodiments of Formula (II), a is 0. In certain instances of Formula (II), a is 1. In certain embodiments of Formula (II), c is 0. In certain instances of Formula (II), c is 1. In certain instances of Formula (II), a is 1 and c is 0. In certain instances of Formula (II), a is 0 and c is 1. In certain instances of Formula (II), d is 0. In certain instances of Formula (II), d is 1. In some embodiments of Formula (II), f is 0. In certain instances of Formula (II), f is 1. In certain instances of Formula (II), d is 1 and f is 0. In certain instances of Formula (II), d is 0 and f is 1.

[0121] In some cases, the polymeric tandem dye has formula (III):

[0122] [ka]

[0123] where B 1 , B2 , M 1 , M 2 , n, m, p and each L 2 is as defined for formula (II), and each L 1 is independently an optional linker, and each C 1 is independently an acceptor chromophore. In some instances of formula (III), each M 1 and each M 2 is independently a fluorene comonomer optionally substituted with a water-soluble group. In certain instances of formula (III), each M 1 and each M 2 are independently a fused 6-5-6 tricyclic comonomer, optionally substituted with a water-soluble group, such as a fluorene comonomer or a carbazole comonomer. In certain embodiments of Formula (III), the ratio of n to m is in the range of 20:1 to 3:1, e.g., 10:1 to 3:1, 9:1 to 3:1, 5:1 to 3:1, or 4:1 to 3:1, or 20:1 to 4:1, 20:1 to 5:1, 20:1 to 9:1, or 20:1 to 10:1.

[0124] In some embodiments, the polymeric tandem dye has formula (IV):

[0125] [ka]

[0126] where B 1 , M 2 , n, m, p and each L 2 is as defined for formula (II), and each L 1 is an optional linker, and each C 1 is an acceptor chromophore. In certain embodiments of Formula (IV), each M 2 is independently a fluorene comonomer optionally substituted with a water-soluble group. In certain instances of formula (IV), each M 2are independently a fused 6-5-6 tricyclic comonomer, such as a fluorene comonomer or a carbazole comonomer, optionally substituted with a water-soluble group. In certain cases of formula (IV), the ratio of n to m is in the range of 20:1 to 3:1, for example, 10:1 to 3:1, 9:1 to 3:1, 5:1 to 3:1, or 4:1 to 3:1, or 20:1 to 4:1, 20:1 to 5:1, 20:1 to 9:1, or 20:1 to 10:1.

[0127] In some embodiments, the polymeric tandem dye has formula (V):

[0128] [ka]

[0129] where B 1 , B 2 , M 2 , n, m, p and each L 2 is as defined for formula (II), and each L 2 is an optional linker, and each C 1 is an acceptor chromophore. In certain embodiments of Formula (V), each M 2 is independently a fluorene comonomer optionally substituted with a water-soluble group. In certain instances of formula (V), each M 2 are independently a fused 6-5-6 tricyclic comonomer, optionally substituted with a water-soluble group, such as a fluorene comonomer or a carbazole comonomer. In certain cases of Formula (V), the ratio of n to m is in the range of 20:1 to 3:1, for example, 10:1 to 3:1, 9:1 to 3:1, 5:1 to 3:1, or 4:1 to 3:1, or 20:1 to 4:1, 20:1 to 5:1, 20:1 to 9:1, or 20:1 to 10:1.

[0130] In some embodiments, the polymeric tandem dye has formula (VI):

[0131] [ka]

[0132] where B 1 , M 1 , M 2 , n, m, p and each L 2 is as defined for formula (II), and each L 1 is an optional linker, and each C 1 is an acceptor chromophore. In certain embodiments of Formula (VI), each M 1 is a carbazole comonomer, and each M 2 is a fluorene comonomer optionally substituted with a water-soluble group. In some instances of formula (VI), each M 1 and each M 2 are independently a fused 6-5-6 tricyclic comonomer, such as a fluorene comonomer or a carbazole comonomer, optionally substituted with a water-soluble group. In certain cases of formula (VI), the ratio of n to m is in the range of 20:1 to 3:1, for example, 10:1 to 3:1, 9:1 to 3:1, 5:1 to 3:1, or 4:1 to 3:1, or 20:1 to 4:1, 20:1 to 5:1, 20:1 to 9:1, or 20:1 to 10:1.

[0133] In some embodiments of formulas (II)-(VI), B 1 and B 2 has the following structure:

[0134] [ka]

[0135] wherein R 6 is an aryl, heteroaryl, or linker optionally substituted with one or more water-soluble groups (WSG). In certain cases, R 6 is a branched linker that connects the BODIPY core structure to two or more WSGs. 6is an aryl or heteroaryl moiety further substituted with one, two or more WSGs via an optional linker. In certain embodiments, R 6 is a phenyl group substituted with one, two, three or more hydrophilic polymer substituents (eg, PEG or modified PEG substituents).

[0136] In certain cases, R 6 may contain one, two, or three PEG moieties (e.g., -O(CH2CH2O) n R', where R' is H or alkyl and n is 1-20, e.g., 3-16, e.g., n is 8-16. In certain cases, R 6 is one -O(CH2CH2O) (e.g., in the 2-, 3-, or 4-position) n R' is a phenyl substituted with an R' group, where R' is H or alkyl, and n is 1 to 20, for example, 3 to 16, for example, n is 8 to 16. In certain cases, R 6 is a group consisting of two -O(CH2CH2O) (e.g., in the 2,4, 3,4 or 3,5 positions). n phenyl substituted with R' groups, wherein each R' is independently H or alkyl, and each n is independently 1 to 20, for example, 3 to 16, e.g., n is 8 to 16.

[0137] In certain cases, R 6 is a group consisting of three -O(CH2CH2O) (e.g., in the 2,4,6 positions, the 2,4,5 positions, or the 3,4,5 positions). n phenyl substituted with R' groups, wherein each R' is independently H or alkyl, and each n is independently 1 to 20, for example, 3 to 16, e.g., n is 8 to 16.

[0138] In some cases of formulas (II) to (VI), B 1 and B 2 are each independently represented by the following structure:

[0139] [ka]

[0140] wherein each R' is independently selected from H and alkyl, and p is 0 or an integer from 1 to 20, e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, or 12. In certain cases, each R' is methyl. In certain cases, each p is 3.

[0141] In some embodiments of Formulas (II)-(VI), at least one L 2 The group is -L 3 -Z, wherein L 3 is a linker and Z is a specific binding member (e.g., as described herein). In some embodiments of Formulas (II)-(VI), at least one L 2 -L 3 -Z, wherein L 3 is a linker (e.g., as described herein) and Z is a chemoselective tag (e.g., as described herein). In some cases, Z is selected from carboxylic acid, active ester (e.g., N-hydroxysuccinimidyl ester (NHS) or sulfo-NHS), amino, maleimide, iodoacetyl, and thiol. In certain embodiments of Formulas (II)-(VI), at least one L 2 The group is represented by the structure: *-Ar-LZ wherein Ar is a π-conjugated aryl or heteroaryl group, L is a linker, and Z is a chemoselective tag or specific binding member. In certain embodiments of formulas (II)-(VI), at least one L 2 The group has the following structure:

[0142] [ka]

[0143] wherein q is 0 or an integer from 1 to 12, L is an optional linker, and Z is a chemoselective tag or specific binding member. In certain embodiments of Formulas (II)-(VI), at least one L 2 The group has the following structure:

[0144] [ka]

[0145] where q is 0 or an integer from 1 to 12, L is an optional linker, and Z is a chemoselective tag or a specific binding member. In certain cases, -NH-LZ includes an amide linkage to a chemoselective tag or a specific binding member. In certain embodiments, Z is a specific binding member that is a biomolecule. In certain cases, Z is an antibody. In certain cases, Z is an antibody fragment or a conjugated derivative thereof. In certain cases, the antibody fragment or conjugated derivative thereof is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a bispecific antibody, and a trispecific antibody.

[0146] In some embodiments of Formulas (II)-(VI), C 1 is selected from cyanine dyes, xanthene dyes, coumarin dyes, thiazine dyes, and acridine dyes. In certain cases, the linker is selected from alkyl, substituted alkyl, alkyl-amide, alkyl-amide-alkyl, and PEG moieties. In certain embodiments of Formulas (II)-(VI), the acceptor chromophore C 1is selected from DY431, DY485XL, DY500XL, DY610, DY640, DY654, DY682, DY700, DY701, DY704, DY730, DY731, DY732, DY734, DY752, DY778, DY782, DY800, DY831, Biotium CF555, Cy3.5, and diethylaminocoumarin. In certain cases of formulas (II)-(VI), the acceptor chromophore is selected from Cy3, Cy3.5, Cy5, Cy5.5, Cy7, Alexa488, Alexa647, and Alexa700.

[0147] In some embodiments, the polymeric tandem dye has formula (VII):

[0148] [ka]

[0149] where: each q and r is independently an integer from 1 to 20; each R' is independently hydrogen or alkyl (e.g., methyl); Each R 1 are independently alkyl, aryl, heteroaryl, or a linker optionally substituted with one, two, or more water soluble groups (WSG) (e.g., PEG-disubstituted benzyl or PEG-substituted alkyl); The dye is the acceptor chromophore, n, m, p and L 2 is as defined for formula (II), and L is a linker and Z is a chemoselective tag or specific binding member. In certain cases for formula (VII), L is -O-(CH) n -NH-, where n is 2 to 12, for example, n is 4. In certain cases, each R 1 The structure:

[0150] [ka]

[0151] wherein each q is independently an integer from 2 to 20, and each R' is independently hydrogen, alkyl, or substituted alkyl. In certain cases, each R' is methyl. In certain cases, each q is 2. In certain cases, each q is 3. In certain cases, each q is 4. In certain cases, each q is 5. In certain cases, each q is 6. In certain cases, each q is 7. In certain cases, each q is 8. In certain cases, each q is 9. In certain cases, each q is 10. In certain cases, each q is 11. In certain cases, L 2 is the terminal group.

[0152] In some embodiments, the polymeric tandem dye has formula (VIII):

[0153] [ka]

[0154] where: each q and r is independently an integer from 1 to 20; each R' is independently hydrogen, alkyl, or substituted alkyl; n, m, p and L 2 is as defined for formula (II), Each R 1 are independently alkyl, aryl, heteroaryl, or a linker optionally substituted with one, two, or more water soluble groups (WSG) (e.g., PEG-disubstituted benzyl or PEG-substituted alkyl); the dye is an acceptor chromophore, and L is a linker and Z is a chemoselective tag or specific binding member. In certain cases, each R' is methyl.

[0155] In certain cases of formula (VIII), LZ is -O-(CH2) n -NH2, where n is 2 to 12 (e.g., n is 2, 3, or 4). In certain cases of formula (VIII), L is -O-(CH2) n In certain cases of formula (VIII), LZ is -(CH2) n In certain cases of formula (VIII), L is —NH, where n is 2 to 12 (e.g., n is 2, 3, or 4). n and Z is a specific binding member (e.g., a biomolecule), where n is 2 to 12 (e.g., n is 2, 3, or 4). It is understood that the dye group of formula (VIII) that is linked to the fluorene comonomer via a -CONH-dye linkage may alternatively be linked via a -NHCO-dye connection. In such an alternative description of formula (VIII), L is -(CH2) n -CO-, where n is 2 to 12 (e.g., n is 2, 3, or 4). In certain cases, each R 1 has the following structure:

[0156] [ka]

[0157] wherein each q is independently an integer from 2 to 20, and each R' is independently hydrogen, alkyl, or substituted alkyl. In certain cases, each R' is methyl. In certain cases, each q is 2. In certain cases, each q is 3. In certain cases, each q is 4. In certain cases, each q is 5. In certain cases, each q is 6. In certain cases, each q is 7. In certain cases, each q is 8. In certain cases, each q is 9. In certain cases, each q is 10. In certain cases, each q is 11. In certain cases, L 2 is the terminal group.

[0158] In some embodiments, the polymeric tandem dye has formula (IX):

[0159] [ka]

[0160] where: each q is independently an integer from 1 to 20; each R' is independently hydrogen, alkyl, or substituted alkyl; Each R 1 are independently alkyl, aryl, heteroaryl, or a linker optionally substituted with one, two, or more water soluble groups (WSG) (e.g., PEG-disubstituted benzyl or PEG-substituted alkyl); The dye is the acceptor chromophore, n, m, p and L 2 is as defined in formula (II), and L is a linker, and Z is a chemoselective tag or specific binding member. In certain cases, each R' is methyl. In certain cases for formula (IX), L is -O-(CH) n -NH-, where n is 2 to 12, for example, n is 4. In certain cases, each R 1has the following structure:

[0161] [ka]

[0162] wherein each q is independently an integer from 2 to 20, and each R' is independently hydrogen, alkyl, or substituted alkyl. In certain cases, each R' is methyl. In certain cases, each q is 2. In certain cases, each q is 3. In certain cases, each q is 4. In certain cases, each q is 5. In certain cases, each q is 6. In certain cases, each q is 7. In certain cases, each q is 8. In certain cases, each q is 9. In certain cases, each q is 10. In certain cases, each q is 11. In certain cases, L 2 is the terminal group.

[0163] In some embodiments, the polymeric tandem dye has formula (X):

[0164] [ka]

[0165] where: Each PEG n are independently 1 to 20 units of PEG or modified PEG, Each R 1 are independently alkyl, aryl, heteroaryl, or a linker optionally substituted with one, two, or more water soluble groups (WSG) (e.g., PEG-disubstituted benzyl or PEG-substituted alkyl); The dye is the acceptor chromophore, n, m, p and L 2 is as defined in formula (II), and Each L is a linker and Z is a chemoselective tag or specific binding member. In certain cases of formula (X), L is -O-(CH) n -NH-, where n is 2 to 12, for example, n is 4. In certain cases of formula (X), R 1 is alkyl. In certain embodiments of Formula (X), the ratio of n to m ranges from 20:1 to 3:1, e.g., from 15:1 to 4:1, from 10:1 to 4:1, or from 9:1 to 5:1.

[0166] In some embodiments, the polymeric tandem dye has formula (XI):

[0167] [ka]

[0168] where: each q is independently an integer from 1 to 20; each R' is independently hydrogen, alkyl, or substituted alkyl; The dye is the acceptor chromophore, n, m, p and L 2 is as defined in formula (II), and Each L is a linker and Z is a chemoselective tag or specific binding member. In certain cases of formula (XI), L is -O-(CH) n -NH-, where n is 2 to 12, for example, n is 4. In certain cases of formula (XI), L is -(CH2) n -CONH-, where n is 1 to 12, for example, n is 1.

[0169] In some embodiments, the polymeric tandem dye has formula (XII):

[0170] [ka]

[0171] where: each q is independently an integer from 1 to 20; each R' is independently hydrogen, alkyl, or substituted alkyl; The dye is the acceptor chromophore, n, m, p and L 2 is as defined in formula (II), and Each L is a linker and Z is a chemoselective tag or specific binding member. In certain cases of formula (XII), L is -O-(CH) n -NH-, where n is 2 to 12, for example, n is 4. In certain cases of formula (XII), L is -(CH2) n -CONH-, where n is 1 to 12, for example, n is 1.

[0172] In certain instances of fluorene comonomers of any one of formulas (II)-(XII), each R 1 or R 2 The side groups may be one, two, or three PEG moieties (e.g., -O(CH2CH2O) n R', where R' is H or alkyl and n is 1 to 20, e.g., 3 to 16, e.g., n is 8 to 16. In certain instances of the fluorene comonomer of any one of formulas (II)-(XII), each R 1 or R 2 The side chain group may be one -O(CH2CH2O) (e.g., at the 2-, 3-, or 4-position). n benzyl groups substituted with R' groups, where R' is H or alkyl, and n is 1 to 20, such as 3 to 16, for example, n is 8 to 16. In certain instances of the fluorene comonomer of any one of formulas (II) to (XII), each R 1 or R 2 The side chain groups may be two -O(CH2CH2O) (e.g., at the 2,4, 3,4, or 3,5 positions). nbenzyl substituted with R' groups, wherein each R' is independently H or alkyl, and each n is independently 1 to 20, for example, 3 to 16, e.g., n is 8 to 16.

[0173] In certain instances of fluorene comonomers of any one of formulas (II)-(XII), each R 1 or R 2 The side chain groups may be three -O(CH2CH2O) (e.g., at the 2,4,6 positions, the 2,4,5 positions, or the 3,4,5 positions). n benzyl groups substituted with R' groups, where each R' is independently H or alkyl, and each n is independently 1 to 20, e.g., 3 to 16, e.g., n is 8 to 16. In certain instances of the fluorene comonomer of any one of formulas (II)-(XII), each R 1 or R 2 The side groups are lower alkyl groups substituted with trivalent branching groups, each of which is substituted with two PEG moieties (e.g., -CO-NR'' or -O(CHR'') trivalent branching groups, where each R'' is independently a PEG moiety (e.g., -O(CHCHO) n R', where R' is H or alkyl, and n is 1 to 20, for example, 3 to 16, for example, n is 8 to 16).

[0174] It is understood that the polymeric tandem dye of any one of formulas (I)-(XII) can alternatively be represented by a formula indicating what mol% values ​​of each comonomer are in the polymer. For example, in some cases, any one of formulas (II)-(XII) can be represented by the following formula: L 2 -(B 1 ) x (M 1 ) y (M 2 -L 1 -C 1 ) z -L 2 L 2 -(B 1 ) x (M2 ) y (B 2 -L 1 -C 1 ) z -L 2 L 2 -(B 1 ) x (M 2 ) y (M 2 -L 1 -C 1 ) z -L 2 L 2 -(B 1 ) x (M 2 ) y (M 1 -L 1 -C 1 ) z -L 2 where x, y, and z are the mol% values ​​of the comonomers in the conjugated polymer.

[0175] In certain cases of the formula, x is 1 mol% or more, e.g., 2 mol% or more, 3 mol% or more, 4 mol% or more, 5 mol% or more, 10 mol% or more, 15 mol% or more, 20 mol% or more, 25 mol% or more, 30 mol% or more, 35 mol% or more, 40 mol% or more, 45 mol% or more, 50 mol% or more, or even more. In certain cases of the formula, x is in the range of 1 mol% to 50 mol%, e.g., 5 mol% to 25 mol% or 10 mol% to 25 mol%, or e.g., 1 mol% to 25 mol%, 1 mol% to 10 mol%, or 1 mol% to 5 mol%. In certain cases of the formula, z is 10 mol% or more, e.g., 15 mol% or more, 20 mol% or more, 25 mol% or more, 30 mol% or more, 35 mol% or more, 40 mol% or more, 45 mol% or more, 50 mol% or even more.

[0176] In some cases of the formula, z is 25 mol% or less, e.g., 20 mol% or less, 15 mol% or less, 10 mol% or less, 8 mol% or less, 6 mol% or less, 5 mol% or less, 2 mol% or less, 1 mol% or less, or even less. In some cases of the formula, y is 1 mol% or more, e.g., 5 mol% or more, 10 mol% or more, 15 mol% or more, 20 mol% or more, or 25 mol% or more. In some cases of the formula, y is 25 mol% or less, e.g., 20 mol% or less, 15 mol% or less, 10 mol% or less, 8 mol% or less, 6 mol% or less, 5 mol% or less, 2 mol% or less, 1 mol% or less, or even less.

[0177] For any of the structures and formulas shown herein, it is understood that in some cases shown herein, the end group shown may be located at the opposite end of that shown in some cases of the subject polymeric tandem dyes, e.g., the end group may be switched. In some embodiments of the multichromophores described herein (e.g., Formulas (I)-(XII)), at least one end group (e.g., L, L 2 , G 1 , G 2 , LZ) are represented by the following structures 1 to 33:

[0178] [ka]

[0179] [ka]

[0180] [ka]

[0181] wherein R' is independently selected from H, halogen, C1-C 12 Alkyl, (C1-C 12 Alkyl)NH2, C2~C 12 Alkenes, C2-C12 Alkynes, C3-C 12 Cycloalkyl, C1-C 12 Haloalkyl, C2-C 18 (Hetero)aryl, C2-C 18 (Hetero)arylamino, -[CH2-CH2] r’ -Z 1 , or (C1~C 12 )Alkoxy-X 1 (In the formula, Z 1 is -OH or -COOH, and X 1 is -NH2, -NHCOOH, -NHCOOC(CH3)3, -NHCO(C3-C12)cycloalkyl(C1-C4)alkyl-N-maleimide; or -NHCO[CH2-CH2-O] s’ (CH2) s’ NH2, r' is an integer from 1 to 20, and each s' is independently an integer from 1 to 20), (CH2)3(OCH2CH2) x’’ OCH3 (wherein x'' is independently an integer from 0 to 50), or one or more halogens, hydroxyl, C1 to C 12 Alkoxy, or (OCH2CH2) y’’ benzyl optionally substituted with CH3, wherein each y" is independently an integer from 0 to 50; R' is different from R; k is 2, 4, 8, 12, or 24; and R 15 is a group l-u having the following structure:

[0182] [ka]

[0183] is selected from.

[0184] In some embodiments of the multichromophores described herein (e.g., Formulas (I)-(XII)), at least one terminal group (e.g., L, L 2 , G 1 , G 2 , LZ) has the following structure:

[0185] [ka]

[0186] wherein r is 0 or an integer from 1 to 50 (e.g., 1 to 20), k is 0 or an integer from 1 to 50 (e.g., 1 to 20), and R 1 is as defined for any of the fluorene comonomers described herein, and R 16 are H, OH, NH2, -NH(CH2)r-NH2, and -NH(CH2) r COOH. Labeled specific binding members Aspects of the present disclosure include labeled specific binding members. The labeled specific binding members are conjugates of a specific binding member with a multichromophore (e.g., as described herein) comprising the subject BODIPY units. The multichromophore can be a polymeric dye. The multichromophore can be a polymeric tandem dye. The specific binding member and the multichromophore can be conjugated (covalently bonded) to each other via a convenient position on the multichromophore, optionally via a linker.

[0187] As used herein, the term "specific binding member" refers to one member of a pair of molecules that have binding specificity with each other. One member of the pair of molecules has a region on its surface or cavity that specifically binds to a region on the surface or cavity of the other member of the pair of molecules. Thus, the members of the pair have the property of specifically binding to each other to form a binding complex. In some embodiments, the affinity between the specific binding members in the binding complex is greater than or equal to 10. -7 M or less, etc. 10 -6 M or less, e.g. 10 -8 M or less, e.g., 10 -9 M or less, 10 -10 M or less, 10 -11 M or less, 10 -12 M or less, 10 -13 M or less, 10 -14 M or less, e.g. 10 -15 K below M dIn some embodiments, a specific binding member specifically binds with high avidity. High avidity means that the binding member specifically binds with a dissociation constant greater than 10×10 -9 M or less, e.g., 1×10 -9 M or less, 3×10 -10 M or less, 1×10 -10 M or less, 3×10 -11 M or less, 1×10 -11 M or less, 3×10 -12 M or less or 1 x 10 -12 Apparent K below M d This means that the antibody specifically binds with an apparent affinity characterized by:

[0188] As used herein, the term "proteinaceous" refers to a moiety (e.g., a specific binding member) comprised of amino acid residues. A proteinaceous moiety can be a polypeptide. In some embodiments, a specific binding member is proteinaceous. In particular cases, a proteinaceous specific binding member is an antibody. In particular embodiments, a proteinaceous specific binding member refers to an antibody fragment, e.g., a binding fragment of an antibody that specifically binds to a polymeric dye. As used herein, the terms "antibody" and "antibody molecule" are used interchangeably and refer to a protein consisting of one or more polypeptides substantially encoded by all or part of a recognized immunoglobulin gene.

[0189] For example, in humans, recognized immunoglobulin genes include the kappa (k), lambda (l), and heavy chain loci (which together contain numerous variable region genes), and the constant region genes mu (u), delta (d), gamma (g), sigma (e), and alpha (a) (which encode the IgM, IgD, IgG, IgE, and IgA isotypes, respectively). Immunoglobulin light or heavy chain variable regions consist of a "framework" region (FR) interrupted by three hypervariable regions, also called "complementarity-determining regions" or "CDRs." The extent of the framework regions and CDRs has been precisely defined (see "Sequences of Proteins of Immunological Interest," E. Kabat et al., USDapartment of Health and Human Services, (1991)).

[0190] All antibody amino acid sequences described herein are numbered according to the Kabat system. The sequences of the framework regions of different light or heavy chains are relatively conserved within species. The framework regions of an antibody, i.e., the combined framework regions of the light and heavy chain components, serve to position and align the CDRs. The CDRs are primarily responsible for binding to the antigen epitope.

[0191] The term antibody is meant to encompass full-length antibodies and may refer to natural antibodies from any organism, genetically engineered antibodies, or antibodies recombinantly produced for experimental, therapeutic, or other purposes. Antibody fragments of interest include, but are not limited to, Fab, Fab', F(ab')2, Fv, scFv, or other antigen-binding sequences of antibodies generated by modification of whole antibodies or synthesized de novo using recombinant DNA technology. Antibodies can be monoclonal or polyclonal and may have other specific activities against cells (e.g., antagonist, agonist, neutralizing, blocking, or stimulatory antibodies). It is understood that the antibody may have additional conservative amino acid substitutions that do not substantially affect antigen binding or other antibody functions.

[0192] In certain embodiments, the specific binding member is an antibody. In certain embodiments, the specific binding member is a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, or a triabody. Optionally, the specific binding member is a murine antibody or a binding fragment thereof. In certain cases, the specific binding member is a recombinant antibody or a binding fragment thereof.

[0193] In some embodiments, the labeled specific binding member comprises a polymeric tandem dye comprising a multichromophore comprising a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in energy-accepting proximity thereof, and a specific binding member covalently linked to the multichromophore. In certain instances of the labeled specific binding member, the light-harvesting multichromophore is water-soluble. In some instances of the labeled specific binding member, the dye has narrowband spectral features. In some instances of the labeled specific binding member, the dye has a low-energy absorption band with a bandwidth of 100 nm or less, e.g., 50 nm or less.

[0194] In one particular case of labeled specific binding members, the multichromophore is 5×10 5 M -1 cm -1The multichromophore has a molar extinction coefficient of 0.05 or greater (e.g., as described herein). In certain cases of labeled specific binding members, the multichromophore has a quantum yield of 0.05 or greater (e.g., as described herein). In some embodiments, the labeled specific binding member further comprises an acceptor chromophore covalently linked to the multichromophore in energy-accepting proximity thereto, e.g., the multichromophore is a polymeric tandem dye. In some embodiments of the labeled specific binding member, the dyes have a ratio in the range of 1:40 to 1:4, e.g., 1:20 to 1:4, 1:10 to 1:4, 1:9 to 1:4, 1:8 to 1:4, 1:7 to 1:4, 1:6 to 1:4, or 1:5 to 1:4, or a ratio of acceptor chromophore to multichromophore repeat units in the range of, e.g., 1:40 to 1:5, 1:40 to 1:6, 1:40 to 1:7, 1:40 to 1:8, 1:40 to 1:9, 1:40 to 1:10, or 1:40 to 1:20.

[0195] In certain cases, the acceptor chromophore is a fluorophore. In some embodiments of the labeled specific binding member, the emission of the acceptor chromophore, when excited by the multichromophore, is 1.5 times or more greater (e.g., 2.0 times or more greater, 2.5 times or more greater, 3 times or more greater, 4 times or more greater, 5 times or more greater, 6 times or more greater, 7 times or more greater, 8 times or more greater, 9 times or more greater, 10 times or more greater, or even more) compared to direct excitation of the acceptor chromophore by the incident light.

[0196] In some cases of labeled specific binding members, the multichromophore has the formula (I):

[0197] [ka]

[0198] wherein B is a BODIPY unit, M is a π-conjugated comonomer, each L is independently selected from an end group, a π-conjugated segment, a linker, and a linked specific binding member, and n is an integer from 1 to 100,000. In certain embodiments of Formula (I), the BODIPY unit comprises a conjugated segment having the structure:

[0199] [ka]

[0200] wherein R1, R2, R3, and R4 are each independently selected from H, alkyl, and substituted alkyl; R5 is selected from alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, and substituted heteroaryl; R5 is optionally substituted with a water-soluble group; and each R is selected from F, OH, H, alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkoxy, substituted alkoxy, alkynyl, and substituted alkynyl. In certain embodiments of Formula (I), M is selected from a fluorene comonomer, a phenylene-vinylene comonomer, a phenylene-ethynylene comonomer, a carbazole comonomer, a C2-C 12 Selected from alkyne comonomers, arylene-ethynylene comonomers, heteroarylene-ethynylene comonomers, arylene comonomers and heteroarylene comonomers.

[0201] In some embodiments of the labeled specific binding member, the multichromophore has formula (II):

[0202] [ka]

[0203] where B 1 and B 2 are each independently BODIPY units, and each M 1 and each M2 are independently π-conjugated comonomers; a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and one L 2 The group is a terminal group (G 1 ) and other L 2 In certain embodiments of Formula (II), B is a linked specific binding member (e.g., LZ). 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 is the acceptor chromophore.

[0204] In certain embodiments of Formula (II), the linked specific binding member is an antibody. In some cases of Formula (II), the linked specific binding member is an antibody fragment or a linked derivative thereof. In some cases of Formula (II), the linked specific binding member is an antibody fragment or a linked derivative thereof selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody. In some cases of Formula (II), the acceptor chromophore is selected from a cyanine dye, a xanthene dye, a coumarin dye, a thiazine dye, and an acridine dye.

[0205] In certain instances of formula (II), the acceptor chromophore is selected from DY431, DY485XL, DY500XL, DY610, DY640, DY654, DY682, DY700, DY701, DY704, DY730, DY731, DY732, DY734, DY752, DY778, DY782, DY800, DY831, Biotium CF555, Cy3.5, and diethylaminocoumarin. In certain instances of formula (II), the acceptor chromophore is selected from Cy3, Cy3.5, Cy5, Cy5.5, Cy7, Alexa488, Alexa647, and Alexa700.

[0206] In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (III), wherein one L 2 In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (IV), wherein one L 2 In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (V), wherein one L 2 In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (VI), wherein one L 2 The groups are linked specific binding members.

[0207] In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (VII) and Z is a specific binding member. In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (VIII) and Z is a specific binding member. In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (IX) and Z is a specific binding member. In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (X) and Z is a specific binding member. In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (XI) and Z is a specific binding member. In some embodiments, the labeled specific binding member is a polymeric tandem dye of formula (XII) and Z is a specific binding member.

[0208] In certain embodiments, the labeled specific binding member is represented by the following structure:

[0209] [ka]

[0210] [ka]

[0211] In certain embodiments, the labeled specific binding member is represented by the following structure:

[0212] [ka]

[0213] In certain embodiments, the labeled specific binding member is represented by the following structure:

[0214] [ka]

[0215] In certain embodiments, the labeled specific binding member is represented by the following structure:

[0216] [ka]

[0217] In certain embodiments, the labeled specific binding member is represented by the following structure:

[0218] [ka]

[0219] In certain embodiments, the labeled specific binding member is represented by the following structure:

[0220] [ka]

[0221] Also provided are polymeric tandem dye precursors of any one of the structures shown above that include a terminal amino functional group suitable for conjugation to a "biomolecule." Such polymeric tandem dye precursor structures can be represented by replacing the "biomolecule" group shown in the structures above with an "H." In some cases of the structures shown above, the linked "dye" is a linked fluorescent dye. method As summarized above, aspects of the present invention include methods for evaluating a sample for the presence of a target analyte. In some embodiments, the method includes (a) contacting the sample with a polymer-dye conjugate that specifically binds to the target analyte to produce a labeling-composition-contacted sample, and (b) assaying the labeling-composition-contacted sample for the presence of a polymer-dye conjugate-target analyte-binding complex to assess whether the target analyte is present in the sample. In certain embodiments of the method, the polymer-dye conjugate includes (i) a multichromophore (e.g., as described herein) comprising a light-harvesting BODIPY unit, (ii) an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity, and (iii) a specific binding member (e.g., as described herein).

[0222] Any convenient method can be used to contact a sample with a polymer dye conjugate that specifically binds to a target analyte to produce a sample contacted with a labeling composition. As used herein, the terms "polymer dye conjugate" and "labeled specific binding member" are used interchangeably. In some cases, the sample is contacted with the polymer dye conjugate under conditions in which the specific binding member, if present, specifically binds to the target analyte. A suitable solution can be used that maintains the biological activity of the sample components and the specific binding member for specific binding of the specific binding member of the conjugate to the target analyte.

[0223] The solution can be a balanced salt solution, such as normal saline, PBS, or Hank's solution, conveniently supplemented with fetal bovine serum, human platelet lysate, or other factors in combination with an acceptable buffer at a low concentration, such as 5 to 25 mM. Convenient buffers include HEPES, phosphate buffer, and lactate buffer. Various media are commercially available, including dMEM, HBSS, dPBS, RPMI, and Iscove's medium, which can be used depending on the nature of the target analyte. Fetal bovine serum or human platelet lysate may be added, if necessary. The final components of the solution can be selected depending on the components of the sample to be contained.

[0224] The temperature at which specific binding of the specific binding member of the conjugate to the target analyte occurs can vary and, in some cases, can range from 5 to 50°C, e.g., 10 to 40°C, 15 to 40°C, or 20 to 40°C, e.g., 20°C, 25°C, 30°C, 35°C, or 37°C (e.g., temperatures as described above). In some cases, the temperature at which specific binding occurs is selected to be compatible with the biological activity of the specific binding member and / or the target analyte. In particular cases, the temperature is 25°C, 30°C, 35°C, or 37°C. In particular cases, the specific binding member is an antibody or fragment thereof, and the temperature at which specific binding occurs is room temperature (e.g., 25°C), 30°C, 35°C, or 37°C. A convenient incubation time for specific binding is selected to allow a desired amount of binding complex to form and, in some cases, can be 1 minute or more, e.g., 2 minutes or more, 10 minutes or more, 30 minutes or more, 1 hour or more, 2 hours or more, or even 6 hours or more.

[0225] Any convenient specific binding member can be used in the polymer-dye conjugate. Specific binding members of interest include, but are not limited to, agents that specifically bind to cell surface proteins of various cell types, including, but not limited to, stem cells, e.g., pluripotent stem cells, hematopoietic stem cells, T cells, T regulatory cells, dendritic cells, B cells, e.g., memory B cells, antigen-specific B cells, granulocytes, leukemia cells, lymphoma cells, viral cells (e.g., HIV cells), NK cells, macrophages, monocytes, fibroblasts, epithelial cells, endothelial cells, and erythroid cells. Target cells of interest include cells bearing convenient cell surface markers or antigens that can be captured by a convenient specific binding member conjugate.

[0226] In some embodiments, the target cells are selected from HIV-containing cells, Treg cells, antigen-specific T cell populations, tumor cells, or hematopoietic progenitor cells (CD34+) from whole blood, bone marrow, or umbilical cord blood. Any convenient cell surface protein or cell marker can be targeted for specific binding to the polymer-dye conjugate in the subject method. In some embodiments, the target cells include a cell surface marker selected from a cell receptor and a cell surface antigen. In some cases, the target cells may comprise cell surface antigens such as CD11b, CD123, CD14, CD15, CD16, CD19, CD193, CD2, CD25, CD27, CD3, CD335, CD36, CD4, CD43, CD45RO, CD56, CD61, CD7, CD8, CD34, CD1c, CD23, CD304, CD235a, T cell receptor alpha / beta, T cell receptor gamma / delta, CD253, CD95, CD20, CD105, CD117, CD120b, Notch4, Lgr5 (N-terminal), SSEA-3, TRA-1-60 antigen, disialoganglioside GD2, and CD71.

[0227] Convenient targets can be selected for evaluation using the subject method.Target of interest includes, but is not limited to, nucleic acids, such as RNA, DNA, PNA, CNA, HNA, LNA or ANA molecules, proteins, such as fusion proteins, modified proteins, such as phosphorylated, glycosylated, ubiquitinated, sumoylated or acetylated proteins, or antibodies, peptides, aggregated biomolecules, cells, small molecules, vitamins and drug molecules.As used herein, the term "target protein" refers to all members of the target family and their fragments.

[0228] Target proteins can be any protein of interest, such as therapeutic or diagnostic targets, including, but not limited to, hormones, growth factors, receptors, enzymes, cytokines, osteoinductive factors, colony-stimulating factors, and immunoglobulins. The term "target protein" is intended to encompass recombinant and synthetic molecules that can be produced using any convenient recombinant expression method or using convenient synthetic methods, or that can be purchased commercially. In some embodiments, the polymer-dye conjugate includes an antibody or antibody fragment. Any convenient target analyte that specifically binds to the antibody or antibody fragment of interest can be targeted in the subject methods.

[0229] In some embodiments, the target analyte is associated with a cell. In certain cases, the target analyte is a cell surface marker of the cell. In certain cases, the cell surface marker is selected from a cell receptor and a cell surface antigen. In some cases, the target analyte is an intracellular target, and the method further comprises lysing the cell. In certain cases, the method further comprises extracting a protein from the cell. Any convenient method and agent can be used in lysing the cell. Methods and agents of interest include those cell lysis and protein extraction methods and agents described at www.piercenet.com / method / traditional-methods-cell-lysis.

[0230] In some embodiments, the sample comprises a heterogeneous cell population from which target cells are isolated. In some cases, the sample comprises peripheral whole blood, peripheral whole blood from which red blood cells have been lysed before cell isolation, umbilical cord blood, bone marrow, density gradient-purified peripheral blood mononuclear cells, or homogenized tissue. In some cases, the sample comprises hematopoietic progenitor cells (e.g., CD34+ cells) in whole blood, bone marrow, or umbilical cord blood. In certain embodiments, the sample comprises tumor cells in peripheral blood. In certain cases, the sample is a sample that contains (or is suspected of containing) viral cells (e.g., HIV).

[0231] The subject labeled specific binding members find use in the subject methods, for example, to label target cells, particles, targets, or analytes with polymeric dyes or polymeric tandem dyes. For example, the labeled specific binding members find use in labeling cells to be processed (e.g., detected, analyzed, and / or sorted) in a flow cytometer. The labeled specific binding members may include antibodies that specifically bind to, for example, cell surface proteins of various cell types (e.g., as described herein). The labeled specific binding members can be used to examine various biological (e.g., cellular) characteristics or processes, such as the cell cycle, cell proliferation, cell differentiation, DNA repair, T cell signaling, apoptosis, cell surface protein expression and / or presentation, etc. The labeled specific binding members can be used in any application that includes (or may include) antibody-mediated labeling of cells, particles, or analytes.

[0232] In some embodiments, the polymer-dye conjugate comprises a polymer-tandem dye (e.g., as described herein). Thus, in some embodiments, the polymer-dye conjugate further comprises an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity. In certain embodiments, the conjugate has Formula (II):

[0233] [ka]

[0234] where B 1 and B 2 are each independently BODIPY units, and each M 1 and each M 2 are independently π-conjugated comonomers; a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and one L 2 The group is a terminal group (G 1 ) and other L 2In certain embodiments, B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 is the acceptor chromophore.

[0235] Once the sample has been contacted with the polymer dye conjugate, any convenient method can be used to assay the resulting labeling composition-contacted sample for the presence of a polymer dye conjugate-target analyte binding complex. The polymer dye conjugate-target analyte binding complex, if present, is a binding complex formed upon specific binding of the specific binding member of the conjugate to the target analyte. Assaying the labeling composition-contacted sample can include detecting a fluorescent signal from the binding complex, if present. Optionally, the assay includes a separation step in which the target analyte, if present, is separated from the sample. Various methods can be used to separate the target analyte from the sample, for example, by immobilization on a support. Assay methods of interest include, but are not limited to, convenient methods and assay formats that find use and are of interest using specific binding member pairs, such as avidin-biotin or hapten-antihapten antibody. Methods and assay formats of interest that can be adapted for use with the subject compositions include, but are not limited to, flow cytometry, in-situ hybridization, enzyme-linked immunosorbent assay (ELISA), Western blot analysis, magnetic cell separation assays, and fluorescent dye purification chromatography.

[0236] In certain embodiments, the method further comprises contacting the sample with a second specific binding member that specifically binds to the target analyte. In certain cases, the second specific binding member is carrier-bound. Any convenient carrier can be used to immobilize components of the subject method (e.g., the second specific binding member). In certain cases, the carrier is a particle, such as a magnetic particle. In some cases, the second specific binding member and the polymer dye conjugate form a sandwich complex, if present, that can be isolated and detected using any convenient method. In some embodiments, the method further comprises analyzing the polymer dye conjugate-target analyte binding complex, i.e., the fluorescently labeled target analyte, by flow cytometry. Assaying for the presence of the polymer dye conjugate-target analyte binding complex provides an assay result (e.g., qualitative or quantitative assay data) that can be used to assess whether the target analyte is present in the sample.

[0237] Any convenient carrier can be used in the subject method.The target carrier includes, but is not limited to, a solid substrate, and the substrate can have various shapes, such as a sheet, beads, other structures such as a plate with holes; beads, polymer particles, fiber mesh, hydrogel, porous matrix, pins, microarray surface, chromatography support, etc.In some cases, the carrier is selected from particles, planar solid substrates, fiber mesh, hydrogel, porous matrix, pins, microarray surface, chromatography support.The carrier can be incorporated into a system that provides cell isolation, assisted by a simple method such as a manual syringe, a centrifuge, or an automated liquid handling system.In some cases, the carrier is found to be used in an automated liquid handling system for high-throughput cell isolation, such as a flow cytometer.

[0238] In some embodiments of this method, the separation step includes immobilizing the magnetic particles by applying an external magnetic field. Any convenient magnet can be used as the external magnetic field source (e.g., a magnetic field gradient). Optionally, the external magnetic field is generated by a magnetic source, for example, a permanent magnet. Optionally, immobilizing the magnetic particles means that the magnetic particles accumulate near the surface closest to the magnetic field gradient source, i.e., the magnet.

[0239] The separation may further include one or more optional washing steps to remove unbound material from the support. Any convenient washing method may be used, for example, the immobilized support may be washed with a biocompatible buffer that maintains the specific binding interaction between the polymer dye and the specific binding member. Separation of unbound material from the support and optional washing provides an enriched target cell population from which unwanted cells and materials have been removed.

[0240] In certain embodiments, the method further comprises detecting the labeled target, which may comprise exciting the multichromophore with one or more lasers and subsequently detecting fluorescent emission from the polymer dye using one or more optical detectors.

[0241] Also provided are methods for labeling target molecules. The subject polymeric dyes, including tandem dyes, are used in a variety of labeling, separation, detection, and / or analysis methods. In some embodiments, the method includes contacting a target molecule with a polymeric tandem dye to produce a labeled target molecule, where the polymeric tandem dye includes a multichromophore (e.g., as described herein) comprising a light-harvesting BODIPY unit and a conjugated tag. In certain cases, the polymeric dye is itself fluorescent. In some embodiments, the polymeric dye is a polymeric tandem dye. Thus, in certain cases, the polymeric dye further includes an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity. As used herein, the term "labeled target molecule" refers to a target molecule covalently linked to a subject multichromophore.

[0242] In some embodiments, the polymeric dye has formula (II):

[0243] [ka]

[0244] where B 1 and B 2 are each independently BODIPY units, and each M 1 and each M 2 are independently π-conjugated comonomers; a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and one L 2 The group is a terminal group (G 1 ) and other L 2 In certain cases of formula (II), B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 is the acceptor chromophore.

[0245] As used herein, the term "conjugation tag" refers to a group containing a chemoselective functional group (e.g., as described herein) that can be covalently linked to a compatible functional group on a target molecule after activation and / or deprotection. Any convenient conjugation tag can be used in the subject polymer dyes to conjugate the dye to a target molecule of interest. In some embodiments, the conjugation tag comprises a terminal functional group selected from an amino acid, a carboxylic acid or its derivative, a thiol, a hydroxyl, a hydrazine, a hydrazide, an azide, an alkyne, and a protein-reactive group (e.g., an amino-reactive, a thiol-reactive, a hydroxyl-reactive, an imidazolyl-reactive, or a guanidinyl-reactive).

[0246] Any convenient method or reagent can be adapted for use in the subject labeling method to covalently link conjugated tag to target molecule.The subject method for labeling target includes, but is not limited to, the method and reagent described in Hermanson, Bioconjugate Techniques, Third Edition, Academic Press, 2013.The contacting step can be carried out in aqueous solution.In some cases, the conjugated tag comprises an amino functional group, and the target molecule comprises an activated ester functional group such as NHS ester or sulfo-NHS ester, or vice versa.In certain cases, the conjugated tag comprises a maleimide functional group, and the target molecule comprises a thiol functional group, or vice versa.

[0247] Any convenient target molecule can be selected for labeling using the subject method. Target molecules of interest include, but are not limited to, nucleic acids such as RNA, DNA, PNA, CNA, HNA, LNA, or ANA molecules, proteins such as fusion proteins, modified proteins such as phosphorylated, glycosylated, ubiquitinated, sumoylated, or acetylated proteins, aggregated biomolecules, cells, small molecules, vitamins, and drug molecules. As used herein, the term "target protein" refers to all members of a target family and fragments thereof. Target proteins can be any protein of interest, such as therapeutic or diagnostic targets, including, but not limited to, hormones, growth factors, receptors, enzymes, cytokines, osteoinductive factors, colony-stimulating factors, and immunoglobulins.

[0248] The term "target protein" is intended to encompass recombinant and synthetic molecules that can be produced using convenient recombinant expression methods or using convenient synthetic methods, or that can be purchased commercially. In some embodiments, the target molecule is a specific binding member (e.g., as described herein). In particular cases, the specific binding member is an antibody. In some cases, the specific binding member is an antibody fragment or binding derivative thereof. In some cases, the antibody fragment or binding derivative thereof is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody.

[0249] Optionally, the method includes a separation step in which the labeled target molecule is separated from the reaction mixture, e.g., excess reagents and unlabeled target. A variety of methods can be used to separate the target from the sample, e.g., by immobilization on a support, precipitation, chromatography, etc.

[0250] In some cases, the method further comprises detecting and / or analyzing the labeled target molecule. In some cases, the method further comprises fluorescently detecting the labeled target molecule. In combination with the subject method and composition, the labeled target molecule can also be detected and / or analyzed using a simple method. Methods for analyzing the target of interest that can be used in the subject method include, but are not limited to, flow cytometry, in-situ hybridization, enzyme-linked immunosorbent assay (ELISA), Western blot analysis, cell magnetic separation assay, and fluorescent dye purification chromatography. Methods for detecting the target of interest include, but are not limited to, fluorescence spectroscopy, nucleic acid sequencing, fluorescence in-situ hybridization (FISH), protein mass spectrometry, flow cytometry, etc.

[0251] Detection can be achieved directly via a reporter molecule or indirectly by a secondary detection system. The latter is based on any one or a combination of several different principles, including, but not limited to, antibody-labeled anti-species antibodies and other forms of immunological or non-immunological cross-linking and signal amplification systems (e.g., biotin-streptavidin technology, protein-A and protein-G mediated technology, or nucleic acid probe / anti-nucleic acid probe, etc.). The label used for direct or indirect detection can be any detectable reporter molecule. Suitable reporter molecules can be molecules known in the fields of immunocytology, molecular biology, light, fluorescence, and electron microscopy, cell immunophenotyping, cell sorting, flow cytometry, cell visualization, detection, enumeration, and / or signal output quantification.

[0252] Labels of interest include, but are not limited to, fluorophores, luminescent labels, metal complexes, radioisotopes, biotin, streptavidin, enzymes, or other detection labels, and combinations of labels such as enzymes and luminogenic substrates. Enzymes of interest and their substrates include alkaline phosphatase, horseradish peroxidase, β-galactosidase, and luciferase. Multiple antibodies of specific and / or non-specific nature can be labeled simultaneously or sequentially and used to improve target detection, identification, and / or analysis. Labels of interest include, but are not limited to, FITC (fluorescein isothiocyanate), AMCA (7-amino-4-methylcoumarin-3-acetic acid), Alexa Fluor 488, Alexa Fluor 594, Alexa Fluor 350, DyLight 350, phycoerythrin, allophycocyanin, and nuclear stains such as Hoechst 33342, LDS751, TO-PRO, and DAPI. system Aspects of the present invention further include systems used to practice the subject methods and compositions. A sample analysis system can include a flow channel into which a sample and a labeled specific binding member are loaded. In some embodiments, the system is a flow cytometry system comprising a flow cytometer flow path including a flow path; and a composition in the flow path, the composition including the sample; and a labeled specific binding member (e.g., as described herein). In some cases of the system, the labeled specific binding member includes a multichromophore (having an ultraviolet absorption maximum) including a light-harvesting BODIPY unit, and a specific binding member that specifically binds to a target analyte and is covalently linked to the multichromophore. The multichromophore can be a polymeric dye that is itself fluorescent. The multichromophore can be a polymeric tandem dye. In certain cases, the labeled specific binding member further includes an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity. In some embodiments, the labeled specific binding member has a structure represented by Formula (II):

[0253] [ka]

[0254] where B 1 and B 2 are each independently BODIPY units, and each M 1 and each M 2 are independently π-conjugated comonomers; a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and one L 2 The group is a terminal group (G 1 ) and other L 2 In certain cases of formula (II), B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L1 is an optional linker, and C 1 is the acceptor chromophore.

[0255] In certain embodiments of the system, the composition further comprises a second specific binding member bound to a carrier and that specifically binds to the target analyte. Optionally, the carrier comprises magnetic particles. Thus, in certain cases, the system may also include a controllable external paramagnetic magnetic field configured to apply to the assay region of the flow channel.

[0256] The sample may contain cells. In some cases, the sample is a cell-containing biological sample. In some cases, the sample is a labeled specific binding member that specifically binds to a target cell. In certain cases, the target analyte specifically bound by the specific binding member is a cell surface marker of the cell. In certain cases, the cell surface marker is selected from a cell receptor and a cell surface antigen.

[0257] In certain embodiments, the system may also include a light source configured to directly illuminate the assay region of the flow channel. The system may include a detector configured to receive a signal from the assay region of the flow channel, where the signal is provided by the fluorescent composition. Optionally, the sample analysis system may further include one or more additional detectors and / or light sources for detecting one or more additional signals.

[0258] In certain embodiments, the system may further include a computer-based system configured to detect the presence of a fluorescent signal. By "computer-based system" is meant the hardware, software, and data storage means used to analyze the information of the present invention. The minimum hardware of the computer-based system of the present invention includes a central processing unit (CPU), input means, output means, and data storage means. Those skilled in the art will readily appreciate that any currently commercially available computer-based system is suitable for use in the subject system. The data storage means may include any generation, including recording of the information of the present invention, or memory access means capable of accessing such generation.

[0259] "Recording" data, programming, or other information on a computer-readable medium refers to a process of storing the information, using such methods known in the art. Any convenient data storage structure may be selected based on the means used to access the stored information. A variety of data programs and formats can be used for storage, e.g., word processing text files, database formats, etc.

[0260] A "processor" refers to a combination of hardware and / or software that performs the functions required thereof. For example, a processor herein may be a programmable digital microprocessor, such as those available in the form of an electronic controller, central processing unit, server, or personal computer (desktop or portable). If the processor is programmable, appropriate programming may be communicated to the processor remotely or may be pre-stored in a computer program product (such as a portable or stationary computer-readable storage medium, whether magnetic, optical, or solid-state device-based). For example, a magnetic medium or optical disk may carry the programming, which may be read by an appropriate reading device in communication with the respective processor at its corresponding station.

[0261] In addition to the sensor device and signal processing module, for example as described above, the systems of the present invention may include a number of additional components, such as data output devices, e.g., monitors and / or speakers, data input devices, e.g., interface ports, keyboards, etc., fluid handling components, and power sources.

[0262] In certain embodiments, the system comprises a flow cytometer.Suitable flow cytometers include, but are not limited to, the devices described in U.S. Patent No. 4,704,891; U.S. Patent No. 4,727,029; U.S. Patent No. 4,745,285; U.S. Patent No. 4,867,908; U.S. Patent No. 5,342,790; U.S. Patent No. 5,620,842; U.S. Patent No. 5,627,037; U.S. Patent No. 5,701,012; U.S. Patent No. 5,895,922; and U.S. Patent No. 6,287,791, the disclosures of which are incorporated herein by reference.

[0263] Other systems may also find use in practicing the subject methods. In certain aspects, the system may be a fluorometer or microscope loaded with a sample having a fluorescent composition of any of the embodiments described herein. The fluorometer or microscope may include a light source configured to directly illuminate the assay region of the flow channel. The fluorometer or microscope may also include a detector configured to receive a signal from the assay region of the flow channel, the signal being provided by the fluorescent composition. kit Aspects of the invention further include kits and compositions for use in practicing the subject methods. The compositions of the invention can be included as reagents in kits, as starting materials, or provided for use in the methodologies described above, for example.

[0264] The kit may include a multichromophore comprising a light-harvesting BODIPY unit, the multichromophore having an ultraviolet absorption maximum (e.g., as described herein), and one or more components selected from a polymeric tandem dye, a fluorophore, a specific binding member, a specific binding member conjugate, a specific binding member bound to a support, cells, a support, a biocompatible aqueous elution buffer, and instructions for use. In some kit embodiments, the multichromophore is covalently linked to the specific binding member. In some cases, the specific binding member is an antibody. In certain cases, the specific binding member is an antibody fragment or binding derivative thereof. In certain cases, the antibody fragment or binding derivative is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody. The multichromophore may be a polymeric dye that is itself fluorescent. The multichromophore may be a polymeric tandem dye. Optionally, the multichromophore further includes a receptor chromophore covalently linked to the multichromophore in its energy-accepting proximity.

[0265] In certain embodiments, the kit is used in evaluating a sample for the presence of a target analyte, such as an intracellular target. Thus, in some cases, the kit includes one or more components suitable for lysing cells. One or more additional components of the kit can be provided in separate containers (e.g., separate tubes, bottles, wells in a multi-well strip or plate).

[0266] In certain embodiments, the kit further comprises reagents for performing a flow cytometry assay. Reagents of interest include, but are not limited to, reconstitution and dilution buffers, buffers for contacting cell samples with multichromophores, wash buffers, control cells, control beads, fluorescent beads for flow cytometer calibration, and combinations thereof. The kit may also include one or more cell fixation reagents, such as paraformaldehyde, glutaraldehyde, methanol, acetone, formalin, or combinations thereof or buffers thereof. The kit may further comprise a cell permeabilizing reagent, such as methanol, acetone, or a detergent (e.g., triton, NP-40, saponin, tween 20, digitonin, leucoperm, or any combination thereof or buffers thereof. Other protein transport inhibitors, cell fixatives, and cell permeabilizing agents known to those skilled in the art are within the scope of the subject kits.

[0267] The compositions of the kit can be provided in the form of a liquid composition, such as any suitable buffer solution. Alternatively, the compositions of the kit can be provided in a dry composition (e.g., lyophilized), and the kit can optionally include one or more buffers for reconstituting the dry composition. In certain embodiments, the kit can include aliquots of the compositions provided in separate containers (separate tubes, bottles, wells in a multi-well strip or plate).

[0268] Additionally, one or more components can be combined in a single container, such as a glass or plastic vial, tube, or bottle. In certain cases, the kit can further include a container (e.g., a box, bag, insulated container, bottle, tube, etc.) in which all of the components (and their separate containers) are present. The kit can further include a package separate from or attached to the kit container and having printed thereon information about the kit, the kit components, and / or instructions for using the kit.

[0269] In addition to the above components, the subject kit may further include instructions for carrying out the subject method. These instructions may be present in the subject kit in various forms, one or more of which may be present in the kit. One form in which these instructions may be present is in the form of information printed on a suitable medium or substrate, such as one or more sheets of paper with the information printed thereon, such as a package insert, that are included in the kit's packaging. Another means would be a computer-readable medium, such as a diskette, CD, DVD, portable flash drive, etc., on which the information is recorded. Yet another means that may be present is a website address that can be used via the Internet to access the information remotely. Any convenient means may be present in the kit. usefulness The compositions, methods, and systems described herein may find use in a variety of applications, such as diagnostic and research applications, where labeled detection and / or analysis of a target of interest is desired. Such applications include methodologies such as blood cytometry, microscopy, immunoassays (e.g., competitive or non-competitive), free analyte assessment, receptor-bound ligand assessment, and the like. The compositions, systems, and methods described herein may be useful in the analysis of any of a number of samples, including, but not limited to, biological fluids, cell culture samples, and tissue samples. In certain embodiments, the compositions, systems, and methods described herein may find use in methods where an analyte, if present, is detected in a sample using a fluorescent label, for example, in fluorescence-activated cell sorting or analysis, immunoassays, immunostaining, and the like. In certain cases, the compositions and methods find use in applications where evaluation of a sample for the presence of a target analyte is of interest.

[0270] In some cases, the methods and compositions find use in any assay format in which detection and / or analysis of a target from a sample is of interest, such as, but not limited to, flow cytometry, in-situ hybridization, enzyme-linked immunosorbent assay (ELISA), Western blot analysis, magnetic cell sorting assays, and fluorescent dye purification chromatography. In certain cases, the methods and compositions find use in any application in which fluorescent labeling of a target molecule is of interest. The subject compositions can be adapted for use in any convenient application in which pairs of specific binding members find use, such as biotin-streptavidin and hapten-antihapten antibodies.

[0271] The following examples are offered by way of illustration and not by way of limitation. [Example]

[0272] experiment Example 1 A series of tandem dyes were prepared based on the core structure 1 shown below, comprising a series of linked fluorophores, DY633, DY651, DY682 and DY752.

[0273] [ka]

[0274] Figure 1 shows the absorption and emission of polymeric tandem dyes based on core structure 1 attached to various acceptor dyes (e.g., dyes DY633, DY651, DY682, and DY752) at internal linker sites. No specific binding members are attached to these structures.

[0275] A second series of tandem dyes was prepared based on the core structure 1 shown above, which contains a series of linked acceptor dye fluorophores at internal linker sites: DY633, DY654, DY682, DY754, and DY752. Figure 2 illustrates the fluorescence of these polymeric tandem dyes based on structure 1 with various dye molecules attached at the internal linker sites. The absorbance for all solutions is 0.04 OD. Note that the emission intensity is significantly higher for the polymers with the attached acceptor chromophore relative to the polymer alone. No specific binding members are attached to these polymers.

[0276] The quantum yield of the tandem pairs is brighter than that of the core polymer alone. For Structure 1, a series of acceptor chromophores were attached, and the resulting tandem pairs were spectroscopically compared to a polymer without a secondary chromophore. All solutions prepared had the same optical density at an excitation wavelength of 562 nm. As can be seen in Figure 2, the peak heights and peak areas for the tandem pairs (peaks 2–6) are all larger than the emission from the underlying polymer (peak 1). Thus, extensive prototyping of increasingly bright underlying polymers is unnecessary; the tandem pairs are limited in brightness primarily by the quantum yield of the acceptor.

[0277] Notwithstanding the appended claims, the disclosure set forth herein is also defined by the following appendix.

[0278] 1. Polymeric tandem dyes comprising a multichromophore containing a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity.

[0279] 2. A dye according to Appendix 1 that is water-soluble.

[0280] 3. A dye according to appendix 1 or 2 having narrowband spectral features.

[0281] 4. A dye according to any one of appendices 1 to 3, having a low-energy absorption band with a bandwidth of 100 nm or less.

[0282] 5.5×10 5 M -1 cm -1 5. The dye according to any one of claims 1 to 4, having a molar extinction coefficient of at least 1.

[0283] 6. The dye of any one of claims 1 to 5, having a ratio of acceptor chromophore to multichromophore repeat units in the range of 1:40 to 1:4.

[0284] 7. The dye according to any one of appendices 1 to 6, wherein the acceptor chromophore is a fluorophore.

[0285] 8. The dye according to any one of Appendices 1 to 6, wherein the acceptor chromophore is a quencher.

[0286] 9. The dye of claim 7, wherein the emission of the acceptor chromophore when excited by the multichromophore is at least 1.5 times greater than upon direct excitation of the acceptor chromophore by incident light.

[0287] 10. A dye according to claim 8 having a quantum yield of 0.05 or greater.

[0288] 11. The multichromophore has the formula (I):

[0289] [ka]

[0290] wherein the conjugated segment comprises a BODIPY represented by the formula: B is a BODIPY unit, M is a π-conjugated comonomer; each L is independently selected from an end group, a π-conjugated segment, a linker, and a linked specific binding member; and The dye according to any one of Appendices 1 to 10, wherein n is an integer of 1 to 100,000.

[0291] 12. The BODIPY unit has the following structure:

[0292] [ka]

[0293] where: R1, R2, R3 and R4 are each independently selected from H, alkyl or substituted alkyl; R5 is selected from alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, R5 is optionally substituted with a water-soluble group; and 12. The dye according to any one of claims 1 to 11, wherein each R is selected from F, OH, H, alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkoxy, substituted alkoxy, alkynyl, and substituted alkynyl.

[0294] 13. M is a fluorene comonomer, a phenylene-vinylene comonomer, a phenylene-ethynylene comonomer, a carbazole comonomer, a C2-C 12 12. The dye according to claim 11, selected from alkyne comonomers, arylene-ethynylene comonomers, heteroarylene-ethynylene comonomers, arylene comonomers, and heteroarylene comonomers.

[0295] 14. The multichromophore has the formula (II):

[0296] [ka]

[0297] where: B 1 and B 2 are each independently BODIPY units, Each M 1 and each M 2 are independently π-conjugated comonomers, a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 or an integer from 1 to 100,000, where n+m≧1; p is an integer from 1 to 100,000, and Each L 2 is independently selected from a terminal group, a π-conjugated segment, a linker, and a linked specific binding member.

[0298] 15. When b is 0, a and c are each 1, When e is 0, d and f are each 1; When b is 1, a+c≧1, and 15. The dye of claim 14, wherein when e is 1, d+f≧1.

[0299] 16.B 1 , B 2 , M 1 and M 2 At least one of -L 1 -C 1 wherein L 1 is an optional linker, and C 1 is the acceptor chromophore.

[0300] 17.Formula (III):

[0301] [ka]

[0302] where each L 1 is an optional linker, and each C 1 The dye according to any one of Appendices 14 to 16, which is an acceptor chromophore.

[0303] 18.Each M 1 and each M 2 and R are independently a fluorene comonomer optionally substituted with a water-soluble group.

[0304] 19. The dye according to appendix 17 or 18, wherein the ratio of n to m is in the range of 20:1 to 3:1.

[0305] 20.Formula (IV):

[0306] [ka]

[0307] where each L 1 is an optional linker, and each C 1 The dye according to any one of Appendices 14 to 16, which is an acceptor chromophore.

[0308] 21.Each M 1 and are independently a fluorene comonomer optionally substituted with a water-soluble group.

[0309] 22. The dye according to Appendix 20 or 21, wherein the ratio of n to m is in the range of 20:1 to 3:1.

[0310] 23.Formula (V):

[0311] [ka]

[0312] where each L 2 is an optional linker, and each C 1 The dye according to any one of Appendices 14 to 16, which is an acceptor chromophore.

[0313] 24.Each M 2 24. The dye of claim 23, wherein is a fluorene comonomer optionally substituted with a water-soluble group.

[0314] 25. The dye according to appendix 23 or 24, wherein the ratio of n to m is in the range of 20:1 to 3:1.

[0315] 26. Formula (VI):

[0316] [ka]

[0317] where each L 1 is an optional linker, and each C 1 The dye according to any one of Appendices 14 to 16, which is an acceptor chromophore.

[0318] 27.Each M 1 is a carbazole comonomer, and each M 2 is a fluorene comonomer.

[0319] 28. The dye according to appendix 26 or 27, wherein the ratio of n to m is in the range of 20:1 to 3:1.

[0320] 29.B 1 and B 2 has the following structure:

[0321] [ka]

[0322] wherein R 6 is aryl or heteroaryl optionally substituted with one or more water-soluble groups.

[0323] 30.B 1 and B 2 has the following structure:

[0324] [ka]

[0325] wherein: each R' is independently selected from H and alkyl; and 30. The dye according to any one of Appendices 14 to 29, wherein p is 0 or an integer of 1 to 12.

[0326] 31. At least one L 2 -L 3 -Z, wherein L 3 31. The dye according to any one of Appendices 14 to 30, wherein is a linker and Z is a specific binding member.

[0327] 32. At least one L 2 has the following structure:

[0328] [ka]

[0329] where: q is an integer from 1 to 12, and The dye according to any one of Appendices 14 to 31, wherein Z is a specific binding member.

[0330] 33. The dye according to Supplementary Note 31 or 32, wherein Z is a biomolecule.

[0331] 34. The dye according to any one of appendices 31 to 33, wherein Z is an antibody.

[0332] 35. The dye according to any one of appendices 31 to 33, wherein Z is an antibody fragment or a conjugated derivative thereof.

[0333] 36. The dye according to claim 35, wherein the antibody fragment or conjugated derivative thereof is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody.

[0334] 37.L 1 is an alkyl, substituted alkyl, alkyl-amido, alkyl-amido-alkyl, or PEG moiety, and C 1 The dye according to any one of Appendices 16 to 36, which is selected from a cyanine dye, a xanthene dye, a coumarin dye, a thiazine dye, and an acridine dye.

[0335] 38. The dye according to any one of appendices 1 to 37, wherein the acceptor chromophore is selected from Cy3, Cy3.5, Cy5, Cy5.5, Cy7, Alexa488, Alexa647, and Alexa700.

[0336] 39.Each M 1 and M 2 are independently selected from fluorene comonomers, carbazole comonomers, vinylene comonomers, arylene-ethynylene comonomers, and arylene-vinylene comonomers, each of which is optionally substituted with a water-soluble group.

[0337] 40.Each M 1 and M 2 and n is independently selected from phenylene-ethynylene comonomers and ethynylene comonomers optionally substituted with a water-soluble group.

[0338] 41.Each M 1 and M 2 has the following structure:

[0339] [ka]

[0340] wherein: Each R 7 is an alkyl, substituted alkyl, aralkyl, substituted aralkyl, PEG moiety and -L 1 -C 1 The dye according to any one of Appendices 14 to 39, independently selected from:

[0341] 42.M 1 has the following structure:

[0342] [ka]

[0343] where each R 8 is a substituted aralkyl containing a water-soluble group, and M 2 has the following structure:

[0344] [ka]

[0345] where R 9 is a substituted alkyl containing a water-soluble group, and R 10 -L 1 -C 1 39. The dye according to any one of Appendices 14 to 39, wherein

[0346] 43. A polymeric tandem dye comprising a multichromophore comprising a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity; and Specific binding members covalently linked to multichromophores a labeled specific binding member having

[0347] 44. The labeled specific binding member of claim 43, wherein the light-harvesting multichromophore is water-soluble.

[0348] 45. A labeled specific binding member according to appendix 43 or 44, wherein the dye has narrowband spectral features.

[0349] 46. ​​A labeled specific binding member according to any one of clauses 43 to 45, wherein the dye has a low energy absorption band with a bandwidth of 100 nm or less.

[0350] 47. The dye is 5 x 10 5 M -1 cm -1 47. A labelled specific binding member according to any one of appendices 43 to 46, having a molar extinction coefficient of not less than

[0351] 48. A labeled specific binding member according to any one of claims 43 to 47, wherein the dye has a ratio of acceptor chromophore to multichromophore repeat unit in the range of 1:40 to 1:4.

[0352] 49. The labeled specific binding member of any one of claims 43 to 48, wherein the acceptor chromophore is a fluorophore.

[0353] 50. A labeled specific binding member according to claim 49, wherein the emission of the acceptor chromophore when excited by the multichromophore is at least 1.5 times greater compared to direct excitation of the acceptor chromophore by incident light.

[0354] 51. A labeled specific binding member according to claim 49, wherein the dye has a quantum yield of 0.05 or greater.

[0355] 52. The multichromophore has the formula (I):

[0356] [ka]

[0357] wherein the conjugated segment comprises a BODIPY represented by the formula: B is a BODIPY unit, M is a π-conjugated comonomer; each L is independently selected from an end group, a π-conjugated segment, a linker, and a linked specific binding member; and 52. A labelled specific binding member according to any one of appendices 43 to 51, wherein n is an integer between 1 and 100,000.

[0358] 53. The BODIPY unit has the following structure:

[0359] [ka]

[0360] where: R1, R2, R3 and R4 are each independently selected from H, alkyl or substituted alkyl; R5 is selected from alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, R5 is optionally substituted with a water-soluble group; and 53. The labeled specific binding member of any one of claims 43-52, wherein each R is selected from F, OH, H, alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkoxy, substituted alkoxy, alkynyl, and substituted alkynyl.

[0361] 54.M is a fluorene comonomer, a phenylene-vinylene comonomer, a phenylene-ethynylene comonomer, a carbazole comonomer, a C2-C 12 54. A labeled specific binding member of claim 52 or 53, selected from an alkyne comonomer, an arylene-ethynylene comonomer, a heteroarylene-ethynylene comonomer, an arylene comonomer, and a heteroarylene comonomer.

[0362] 55. The multichromophore has the formula (II):

[0363] [ka]

[0364] where: B 1 and B 2 are each independently BODIPY units, Each M 1 and each M 2 are independently π-conjugated comonomers, a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and 1 L 2 The group is a terminal group (G 1 ) and other L 2 55. A labelled specific binding member according to any one of clauses 43 to 54, wherein the group is a linked specific binding member.

[0365] 56.B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 is an acceptor chromophore.

[0366] 57. A labeled specific binding member according to any one of appendices 43 to 56, wherein the specific binding member is an antibody.

[0367] 58. A labelled specific binding member according to any one of clauses 43 to 56, wherein the specific binding member is an antibody fragment or binding derivative thereof.

[0368] 59. A labeled specific binding member according to claim 58, wherein the antibody fragment or binding derivative thereof is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody.

[0369] 60. The labeled specific binding member of any one of claims 43 to 59, wherein the acceptor chromophore is selected from cyanine dyes, xanthene dyes, coumarin dyes, thiazine dyes, and acridine dyes.

[0370] 61. A labeled specific binding member according to any one of claims 43 to 50, wherein the acceptor chromophore is selected from Cy3, Cy3.5, Cy5, Cy5.5, Cy7, Alexa488, Alexa647 and Alexa700.

[0371] 62. (a) contacting a sample with a polymer-tandem dye conjugate that specifically binds to a target analyte to produce a sample contacted with a labeling composition, wherein the polymer-tandem dye conjugate: (i) multichromophores containing light-harvesting BODIPY units; (ii) an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity; and (iii) a specific binding member and (b) assaying the sample contacted with the labeling composition for the presence of a polymer-tandem dye conjugate-target analyte binding complex to assess whether the target analyte is present in the sample; 1. A method of evaluating a sample for the presence of a target analyte, comprising:

[0372] 63. The multichromophore has the formula (II):

[0373] [ka]

[0374] where: B 1 and B2 are each independently BODIPY units, Each M 1 and each M 2 are independently π-conjugated comonomers, a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and 1 L 2 The group is a terminal group (G 1 ) and other L 2 63. The method of claim 62, wherein the group is a linked specific binding member.

[0375] 64.B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 64. The method of claim 63, wherein is an acceptor chromophore.

[0376] 65. The method of any one of clauses 62-64, further comprising contacting the sample with a second specific binding member that is carrier-bound and that specifically binds to the target analyte.

[0377] 66. The method of claim 65, wherein the carrier comprises magnetic particles.

[0378] 67. The method of any one of appendices 62 to 66, wherein the target analyte is associated with a cell.

[0379] 68. The method of claim 67, wherein the target analyte is a cell surface marker of a cell.

[0380] 69. The method of claim 68, wherein the cell surface marker is selected from a cell receptor and a cell surface antigen.

[0381] 70. The method of claim 67, wherein the target analyte is an intracellular target and further comprises lysing the cell.

[0382] 71. The method of any one of claims 62 to 69, further comprising analyzing the fluorescently labeled target analyte by flow cytometry.

[0383] 72. Contacting a target molecule with a polymeric tandem dye to produce a labeled target molecule; A method for labeling a target molecule, wherein the polymeric tandem dye has a multichromophore containing a light-harvesting BODIPY unit, an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity, and a conjugated tag.

[0384] 73. The method of claim 72, further comprising fluorescently detecting the labeled target molecule.

[0385] 74. The multichromophore has the formula (II):

[0386] [ka]

[0387] where: B 1 and B 2 are each independently BODIPY units, Each M 1 and each M 2 are independently π-conjugated comonomers, a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and 1 L 2 The group is a terminal group (G 1 ) and other L 2 74. The method of claim 72 or 73, wherein the group is a conjugated tag.

[0388] 75.B 1 , B 2 , M 1 and M 2 At least one of the -L 1 -C 1 wherein L 1 is an optional linker, and C 1 75. The method of claim 74, wherein is an acceptor chromophore.

[0389] 76. The method of any one of claims 72 to 75, wherein the conjugation tag comprises a terminal functional group selected from amino, thiol, hydroxyl, hydrazine, hydrazide, azide, alkyne, and a protein-reactive group.

[0390] 77. The method of any one of claims 72 to 76, wherein the target molecule is a specific binding member.

[0391] 78. The method of claim 77, wherein the specific binding member is an antibody.

[0392] 79. The method of claim 77, wherein the specific binding member is an antibody fragment or binding derivative thereof.

[0393] 80. The method of claim 79, wherein the antibody fragment or binding derivative is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody. 81. A flow cytometry system comprising a flow cytometer including a flow path and a composition in the flow path, The composition comprises: A sample; a multichromophore comprising a light-harvesting BODIPY unit, an acceptor chromophore covalently linked to the multichromophore in energy-accepting proximity thereof, and a labeled specific binding member that specifically binds a target analyte and has a specific binding member covalently linked to the multichromophore. A flow cytometry system comprising:

[0394] 82. The multichromophore has the formula (II):

[0395] [ka]

[0396] where: B 1 and B 2 are each independently BODIPY units, Each M 1 and each M 2 are independently π-conjugated comonomers, a, b, c, d, e, and f are each independently 0, 1, or 2, where b+e≧1; n and m are independently 0 to 100,000, where n+m≧1; and 1 L 2 The group is a terminal group (G 1 ) and other L 2 82. The system of claim 81, wherein the group is a linker connecting the specific binding members.

[0397] 83.B 1 , B 2 , M 1 and M 2 At least one of the following is -L 1 -C 1 wherein L 1 is an optional linker, and C 1 83. The system of claim 82, wherein is an acceptor chromophore.

[0398] 84. The system of any one of clauses 81-83, wherein the composition further comprises a second specific binding member that is carrier-bound and specifically binds to the target analyte.

[0399] 85. The system of claim 84, wherein the carrier comprises magnetic particles.

[0400] 86. The system of any one of appendices 81 to 85, wherein the sample comprises cells.

[0401] 87. The system of claim 86, wherein the target analyte is a cell surface marker of a cell.

[0402] 88. The system of claim 87, wherein the cell surface marker is selected from a cell receptor and a cell surface antigen.

[0403] 89. A polymeric tandem dye comprising a multichromophore comprising a light-harvesting BODIPY unit and an acceptor chromophore covalently linked to the multichromophore in its energy-accepting proximity; and one or more components selected from a polymer dye, a fluorophore, a specific binding member, a specific binding member conjugate, a cell, a support, a biocompatible aqueous elution buffer, and instructions for use. Kit including:

[0404] 90. The kit of claim 89, wherein the multichromophore is covalently linked to the specific binding member.

[0405] 91. The kit of claim 90, wherein the specific binding member is an antibody.

[0406] 92. The kit of claim 90, wherein the specific binding member is an antibody fragment or binding derivative thereof.

[0407] 93. The kit according to claim 92, wherein the antibody fragment or binding derivative thereof is selected from a Fab fragment, a F(ab')2 fragment, an scFv, a diabody, and a triabody.

[0408] Although the foregoing invention has been described in some detail by way of illustration and example to facilitate understanding, it will be readily apparent to those skilled in the art in light of the teachings of the invention that certain changes and modifications thereof can be made without departing from the spirit or scope of the appended claims.

[0409] Thus, the foregoing description merely illustrates the principles of the present invention. It will be understood that those skilled in the art will be able to devise various configurations, not expressly described or shown herein, which embody the principles of the present invention and are within its spirit and scope. Furthermore, all examples and conditional language set forth herein are intended primarily to facilitate understanding of the principles and concepts of the present invention contributed by the inventors to advance the art, and should not be construed as being limited to the examples and conditions so explicitly set forth. Furthermore, all statements herein reciting principles, aspects, and examples of the present invention, as well as specific examples thereof, are intended to encompass both structural and functional equivalents thereof. Furthermore, such equivalents are intended to encompass both currently known equivalents and equivalents developed in the future, i.e., any elements developed that perform the same function, regardless of structure. Thus, the scope of the present invention is not intended to be limited to the exemplary embodiments shown and described herein. Rather, the scope and spirit of the present invention are embodied by the following. CROSS-REFERENCE TO RELATED APPLICATIONS Pursuant to 35 U.S.C. §119(e), this application claims priority to the filing date of U.S. Provisional Patent Application No. 62 / 132,446, filed March 12, 2015, the disclosure of which is incorporated herein by reference.

Claims

1. A polymeric tandem dye comprising: a donor multichromophore comprising a light-harvesting BODIPY unit; an acceptor chromophore covalently linked to said donor multichromophore in its energy-accepting proximity; It contains The donor multichromophore has formula (I): 【Chemistry 1】 wherein the conjugated segment comprises a BODIPY represented by the formula: B is a BODIPY unit, M is a π-conjugated comonomer; each L is independently selected from the group consisting of an end group, a π-conjugated segment, a linker, and a linked specific binding member; and n is an integer from 1 to 100,000; The polymeric tandem dye comprises a C group that is directly or indirectly covalently linked to M in energy-accepting proximity, that is proximal to the B-containing structure, and that can receive energy from the B-containing structure and release the energy as light or dissipate the energy as heat. Polymer tandem dyes.

2. The BODIPY unit has the following structure: 【Chemistry 2】 where: R 1 , R 2 , R 3 and R 4 are each independently selected from H, alkyl, or substituted alkyl; R 5 is selected from alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, and substituted heteroaryl; R 5 is optionally substituted with a water-soluble group, and each R is selected from F, OH, H, alkyl, substituted alkyl, aryl, substituted aryl, heteroaryl, substituted heteroaryl, alkoxy, substituted alkoxy, alkynyl, and substituted alkynyl; The polymeric tandem dye of claim 1 .

3. The BODIPY unit has the following structure: 【Transformation 3】 where R 6 is aryl or heteroaryl optionally substituted with one or more water-soluble groups; The polymeric tandem dye of claim 2 .

4. At least one L has the following structure: 【Chemistry 4】 where: q is an integer from 1 to 12, and Z is a specific binding member; The polymeric tandem dye according to any one of claims 1 to 3.

5. M is independently selected from fluorene comonomers, carbazole comonomers, vinylene comonomers, arylene-ethynylene comonomers, and arylene-vinylene comonomers, each of which is optionally substituted with a water-soluble group; The polymeric tandem dye according to any one of claims 1 to 4.

6. the donor multichromophore comprises a polyethylene glycol water-soluble group; The polymeric tandem dye according to any one of claims 1 to 5.

7. The donor multichromophore has the following structure: 【Transformation 5】 wherein: each q is independently an integer from 2 to 20; each R' is independently hydrogen, alkyl, or substituted alkyl; The polymeric tandem dye according to any one of claims 1 to 6.

8. The donor multichromophore has the following structure: 【Transformation 6】 wherein: R 3 is a substituent comprising a polyethylene glycol water-soluble group or a lower alkyl group substituted with a trivalent branched group each substituted with two polyethylene glycol groups, R 4 Is, L 1 -Z 2 wherein L 1 is a linker, and Z 2 is the acceptor chromophore, and R 5 and R 6 are independently selected from H, water-soluble groups, and aryl substituents; The polymeric tandem dye of any one of claims 1 to 7.

9. A polymeric tandem dye according to any one of claims 1 to 8; a specific binding member covalently linked to said donor multichromophore; a labeled specific binding member having

10. 1. A method for evaluating a sample for the presence of a target analyte, comprising: (a) contacting the sample with a polymer-tandem dye conjugate that specifically binds to the target analyte to produce a sample contacted with a labeling composition, wherein the polymer-tandem dye conjugate comprises the polymer-tandem dye of any one of claims 1 to 8; (b) assaying the sample contacted with the labeling composition for the presence of a polymer-tandem dye conjugate-target analyte binding complex to assess whether the target analyte is present in the sample; A method comprising:

Citation Information

Patent Citations

  • Chromophoric polymer dots with narrow-band emission

    WO2013101902A2