Macrocyclic ligands bearing pendant chelating moieties and complexes thereof

A new class of ligands with bridging and pendant chelating moieties addresses the challenges of biodistribution control in radioimmunotherapy by rapidly binding and stabilizing metal cations, facilitating targeted therapeutic and diagnostic applications.

JP7744952B2Active Publication Date: 2025-09-26LUMIPHOR INK

Patent Information

Application Number
JP2023131802
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-03-07
Filing Date
2023-08-14
Publication Date
2025-09-26
Estimated Expiration
2039-03-07

AI Technical Summary

Technical Problem

Current radioimmunotherapy practices face challenges with chelating agents that fail to control the biodistribution of lanthanide and actinide radiometal cations, leading to bone deposition and loss of signal specificity, necessitating improved chelating agents for therapeutic and diagnostic applications.

Method used

Development of a new class of ligands with bridging and pendant chelating moieties that rapidly bind isotopes, forming stable complexes with metal cations, preventing in vivo release, and allowing targeted delivery through linkers to reactive functional groups or targeting moieties.

Benefits of technology

The new ligands provide stable coordination of metal cations with fast complex formation kinetics, enabling effective therapeutic and diagnostic applications, including targeted radioisotope and sensitized luminescence uses.

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Patent Text Reader

Abstract

To provide macrocyclic ligands with pendant chelating moieties and complexes thereof.SOLUTION: The invention relates to ligands and complexes of metal ions with the ligands, useful in various applications, including therapeutic and diagnostic applications.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 62 / 639,939, filed March 7, 2018, which is expressly incorporated by reference in its entirety for all purposes.

[0002] STATEMENT OF GOVERNMENT RIGHTS This invention was made with government support under Grant No. IIP-1353612 awarded by the Federal Small Business Administration. The government has certain rights in this invention.

[0003] The present invention relates to compounds and complexes that can be used in therapeutic and diagnostic applications. [Background technology]

[0004] Current radioimmunotherapy practice utilizes two classes of chelating agents: acyclic species based on diethylenetriaminepentaacetic acid (DTPA) or macrocyclic derivatives similar to 1,4,7,20-tetraazacyclododecane N,N',N",N"'-tetraacetic acid (DOTA). The former exhibit faster association kinetics, while DOTA-like compounds tend to produce more stable complexes, although it should be noted that complexation typically requires more stringent conditions, such as elevated temperatures. Radiometals currently in clinical trials (according to clinicaltrials.gov) include actinium-225, bismuth-213, copper-64, gallium-67, gallium-68, holmium-166, indium-111, lutetium-177, rubidium-82, samarium-153, zirconium-89, strontium-89, technetium-99m, lead-212, and yttrium-90.

[0005] Lanthanide and actinide radiometal cations, in the absence of chelation, are deposited primarily in bone, which is a significant concern given the potential for bone marrow suppression. +3The recent toxicity concerns after the use of MRI contrast agents such as DTPA clearly show that the control of the biodistribution of metal cations by this chelating group is insufficient.Similarly, the loss of radioactive metals can result in the loss of signal specificity in targeted radiodiagnosis.Therefore, there is a recognized and urgent need for improved chelating agents for use in radioimmunotherapy.The present invention provides such chelating agents and complexes, as well as methods for their use. Summary of the Invention [Means for solving the problem]

[0006] The present invention provides a new class of ligands and metal complexes of these ligands that are particularly useful in therapeutic or diagnostic applications. The compounds (ligands) of the present invention comprise a mixture of bridging and pendant chelating moieties linked together to have the structure: [ka] In the formula, L 1 and L 2 are independently selected scaffold moieties, and A b1 and A b2 are independently selected bridging chelating moieties, and A p1 and A p2 are independently selected pendant chelating moieties.

[0007] The bridged chelating moieties and pendant chelating moieties of the present invention are independently selected from: [ka] wherein A and G are independently selected from carbon, nitrogen, and oxygen; J is selected from carbon and nitrogen; and each R 1 and R 2 are independently selected from H, an enzymatically labile group, a hydrolytically labile group, a metabolically labile group, a photolytically labile group, and a single negative charge. 6 , R7 , R 8 , R 9 , and R 10 is independently, L 1 or L 2 Bonding to L 1 or L 2 Alkanediyl, H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, halogen, CN, -CF3, -C(O)R 17 , -SO2NR 17 R 18 , -NR 17 R 18 , -OR 17 , -S(O)2R 17 , -COOR 17 , -S(O)2OR 17 , -OC(O)R 17 , -C(O)NR 17 R 18 , -NR 17 C(O)R 18 , -NR 17 SO2R 18 and -NO2, wherein R 6 , R 7 , R 8 , R 9 , and R 10 At least two of R are optionally joined to form a ring system selected from substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. 17 and R 18 is independently selected from H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted heterocycloalkyl; R 17 and R 18 are optionally joined together with the atoms to which they are attached to form a 5-, 6-, or 7-membered ring. When A is oxygen, R 9 is absent and G is oxygen, then R 7 does not exist. A b1 and A b2 is R 6 , R7 , R 8 , R 9 , and R 10 L through two members selected from 1 and L 2 is bound to A p1 and A p2 is R 6 , R 7 , R 8 , R 9 , and R 10 Through members selected from L 2 is combined with

[0008] An advantage of the compounds of the present invention is that such chelating ligands rapidly bind isotopes, making them practical for clinical laboratory preparation. Such compounds also stably bind cations, and therefore, none are released in vivo, at least prior to their decay. These apparently contradictory compound properties are embodied in practice by pre-organized chelating groups that retain a sufficient degree of flexibility.

[0009] Exemplary compounds of the invention also include a linker to a reactive functional group or a linker to a targeting moiety, so that the chelating ligands and their complexes provided herein can be directed to a site of interest for therapeutic or diagnostic purposes.

[0010] The compounds of the present invention and their metal ion complexes are particularly useful for targeted radioisotope applications and sensitized luminescence applications (such as Eu-sensitized luminescence immunoassays). As shown in the examples, the compounds (ligands) of the present invention stably coordinate metal cations, exhibit facile complex formation kinetics, and have very high aqueous quantum yields for Eu(III). [Brief explanation of the drawings]

[0011] [Figure 1]The ORTEP crystal structure of compound 7 is shown, which confirms which of the two methyl esters present in compound 6 is selectively hydrolyzed by lithium hydroxide at low temperatures. [Figure 2] The ORTEP crystal structure of [Eu-16][NMe4]·DMF is shown. [Figure 3] 1 shows the UV-vis titration of ligand 16 with europium chloride. [Figure 4] 1 shows the UV-vis titration of ligand 43 with europium chloride. [Figure 5] Photoluminescence titration of ligand 43 with europium chloride. [Figure 6] The UV-vis absorption spectrum of 16 measured in TBS buffer at pH=7.6 is shown. [Figure 7] The UV-vis absorption spectrum of 16·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 8] The photoluminescence spectrum of 16·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 9] The UV-vis absorption spectrum of 29·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 10] The photoluminescence spectrum of 29·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 11] The UV-vis absorption spectrum of 33·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 12] The photoluminescence spectrum of 33·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 13] The UV-vis absorption spectrum of 40·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 14] The photoluminescence spectrum of 40·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 15] The UV-vis absorption spectrum of 43 measured in TBS buffer at pH 7.6 is shown. [Figure 16] The UV-vis absorption spectrum of 43·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 17] The photoluminescence spectrum of 43·Eu measured in TBS buffer at pH 7.6 is shown. [Figure 18] The quantum yield determination of 16·Eu is shown. [Figure 19] Quantum yield measurements of 29·Eu are shown. [Figure 20] The quantum yield determination of 33·Eu is shown. [Figure 21] The quantum yield determination of 40·Eu is shown. [Figure 22] The quantum yield determination of 43·Eu is shown. [Figure 23] Change in integrated luminescence intensity over one day in the presence of approximately 25 mM competitor is shown. Competitive conditions: 5 μM concentration of Eu 43, approximately 25 mM of the indicated competitor, TBS buffer pH = 7.6. All samples were incubated at room temperature for 24 hours. [Figure 24] The time course of the integrated emission intensity at 612 nm (360 nm excitation) in the presence of 250 mM DTPA, pH=7.6 is shown. [Figure 25] Figures 25A-25C are HPLC chromatograms collected at 315 nm of a) 33 starting material, b) 33·NHS reaction product, and c) 33·NHS reaction product dissolved in DMF at room temperature for 1 day. Note that all of the desired 33·NHS reaction product is consumed by an unknown side reaction within the 1-day incubation. [Figure 26] Figures 26A-26C are HPLC chromatograms collected at 315 nm of a) the 33·Ca starting material, b) the 33·Ca·NHS reaction product, and c) the 33·Ca·NHS reaction product dissolved in DMF at room temperature for 1 day. Note that unlike the previous experiment, the 33·Ca·NHS reaction product persists after 1 day of incubation. [Figure 27] Figures 27A-B are HPLC chromatograms collected at 315 nm of 33·Ca·NHS (top) and 33·Mg·NHS (bottom) dissolved in DMF at room temperature for 1 day. DETAILED DESCRIPTION OF THE INVENTION

[0012] definition Where substituents are specified by a conventional chemical formula written from left to right, they optionally equally encompass the chemically identical substituents that result from writing the structure from right to left; for example, -CHO- is also intended to describe -OCH-.

[0013] The term "alkyl," by itself or as part of another substituent, means a straight- or branched-chain hydrocarbon that may be fully saturated, monovalent, or polyunsaturated, including monovalent, divalent, and polyvalent groups. Examples of saturated hydrocarbon radicals include, but are not limited to, groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, t-butyl, isobutyl, sec-butyl, cyclohexyl, (cyclohexyl)methyl, cyclopropylmethyl, and homologs and isomers of, for example, n-pentyl, n-hexyl, n-heptyl, n-octyl, and the like. Unsaturated alkyl groups are those having one or more double or triple bonds (i.e., alkenyl and alkynyl moieties). Examples of unsaturated alkyl groups include, but are not limited to, vinyl, 2-propenyl, crotyl, 2-isopentenyl, 2-(butadienyl), 2,4-pentadienyl, 3-(1,4-pentadienyl), ethynyl, 1- and 3-propynyl, 3-butynyl, and higher homologs and isomers. The term "alkyl" by itself or as part of another substituent can refer to "alkylene," which means a divalent radical derived from an alkane, exemplified, but not limited to, by -CH2CH2CH2CH2-. Typically, an alkyl (or alkylene) group has 1 to 30 carbon atoms. A "lower alkyl" or "lower alkylene" is a shorter chain alkyl or alkylene group, generally having 8 or fewer carbon atoms. In some embodiments, alkyl is any of the C1, C2, C3, C4, C5, C6, C7, C8, C9, C10, C11, C12, C13, C14, C15, C16, C17, C18, C19, C20, C21, C22, C23, C24, C25, C26, C27, C28, C29, C30, C31, C28, C29, C32, C33, C34, C35, C36, C37, C38, C39, C40, C41, C42, C43, C44, C45, C46, ​​C47, C48, C49, C50, C51, C52, C53, C54, C55, C56, C57, C58, C59, C60, C61, C62, C63, C64, C65, C66, C67, C68, C69, C70, C71, C72, C73, C74 10 , C 11 , C12 , C 13 , C 14 , C 15 , C 16 , C 17 , C 18 , C 19 , C 20 , C 21 , C 22 , C 23 , C 24 , C 25 , C 26 , C 27 , C 28 , C 29 , and C 30 In some embodiments, alkyl refers to an alkyl or combination of alkyls selected from C1 to C 25 In some embodiments, alkyl refers to a C1-C 20 In some embodiments, alkyl refers to a C1-C 15 In some embodiments, alkyl refers to a C1-C 10 In some embodiments, alkyl refers to C1-C6 alkyl.

[0014] The term "heteroalkyl," by itself or in combination with another term, refers to an alkyl in which one or more carbons are replaced with one or more heteroatoms selected from the group consisting of O, N, Si, and S (preferably O, N, and S), the nitrogen and sulfur atoms can be optionally oxidized, and the nitrogen heteroatom can be optionally quaternized. The heteroatoms O, N, Si, and S can be placed at any interior position of the heteroalkyl group or at the position at which the alkyl group is attached to the remainder of the molecule. In some embodiments, depending on whether the heteroatom is at a terminal or internal position of the chain, the heteroatom can be bonded to one or more H or substituents such as (C, C, C, C, C, or C) alkyl, depending on the heteroatom valency. Examples include, but are not limited to, -CH2-CH2-O-CH3, -CH2-CH2-NH-CH3, -CH2-CH2-N(CH3)-CH3, -CH2-S-CH2-CH3, -CH2-CH2,-S(O)-CH3, -CH2-CH2-S(O)2-CH3, -CH=CH-O-CH3, -Si(CH3)3, -CH2-CH=N-OCH3, and -CH=CH-N(CH3)-CH3. Up to two heteroatoms may be consecutive, and in some cases this may limit the number of heteroatom substitutions, for example, -CH2-NH-OCH3 and -CH2-O-Si(CH3)3. Similarly, the term "heteroalkylene," by itself or as part of another substituent, refers to a divalent group derived from heteroalkyl, exemplified, but not limited to, CH-CH-S-CH-CH- and -CH-S-CH-CH-NH-CH-. The specified number of carbon atoms in heteroforms of alkyl, alkenyl, and alkynyl includes the number of heteroatoms. For example, a (C, C, C, C, C, or C) heteroalkyl contains 1, 2, 3, 4, 5, or 6 atoms selected from C, N, O, Si, and S, respectively; thus, the heteroalkyl contains at least one C atom and at least one heteroatom, e.g., 1-5 C and 1 N or 1-4 C and 2 N. Additionally, a heteroalkyl can also contain one or more carbonyl groups.In some embodiments, heteroalkyl is any C to C. 30 Alkyl, C2-C 25 Alkyl, C2-C 20 Alkyl, C2-C 15 Alkyl, C2-C 10 alkyl, or C2-C6 alkyl, in any of which one or more carbons are replaced with one or more heteroatoms selected from O, N, Si, and S (or from O, N, S). In some embodiments, 1, 2, 3, 4, or 5 carbons are each replaced with a heteroatom. The terms "alkoxy," "alkylamino," and "alkylthio" (or thioalkoxy) are used in the conventional sense to refer to alkyl and heteroalkyl groups attached to the remainder of the molecule via an oxygen atom, a nitrogen atom (e.g., an amine group), or a sulfur atom, respectively.

[0015] The terms "cycloalkyl" and "heterocycloalkyl," by themselves or in combination with other terms, represent cyclic versions of "alkyl" and "heteroalkyl," respectively. Additionally, for heterocycloalkyl, a heteroatom can occupy the position at which the heterocycle is attached to the remainder of the molecule. Examples of cycloalkyl include, but are not limited to, cyclopentyl, cyclohexyl, 1-cyclohexenyl, 3-cyclohexenyl, cycloheptyl, and the like. Examples of heterocycloalkyl include, but are not limited to, 1-(1,2,5,6-tetrahydropyridyl), 1-piperidinyl, 2-piperidinyl, 3-piperidinyl, 4-morpholinyl, 3-morpholinyl, tetrahydrofuran-2-yl, tetrahydrofuran-3-yl, tetrahydrothien-2-yl, tetrahydrothien-3-yl, 1-piperazinyl, 2-piperazinyl, and the like.

[0016] The term "aryl" refers to a polyunsaturated aromatic substituent, which may be a single ring or optionally multiple rings (preferably 1, 2, or 3 rings) that are fused together or covalently linked. In some embodiments, the aryl is a 3-, 4-, 5-, 6-, 7-, or 8-membered ring that is optionally fused to one or two other 3-, 4-, 5-, 6-, 7-, or 8-membered rings. The term "heteroaryl" refers to an aryl substituent (or ring) containing 1, 2, 3, or 4 heteroatoms selected from N, O, and S, where the nitrogen and sulfur atoms are optionally oxidized and the nitrogen atom is optionally quaternized. A heteroaryl group can be attached to the remainder of the molecule through a heteroatom. Non-limiting examples of aryl and heteroaryl groups include phenyl, 1-naphthyl, 2-naphthyl, 4-biphenyl, 1-pyrrolyl, 2-pyrrolyl, 3-pyrrolyl, 3-pyrazolyl, 2-imidazolyl, 4-imidazolyl, pyrazinyl, 2-oxazolyl, 4-oxazolyl, 2-phenyl-4-oxazolyl, 5-oxazolyl, 3-isoxazolyl, 4-isoxazolyl, 5-isoxazolyl, 2-phenyl-4-ox ... -thiazolyl, 4-thiazolyl, 5-thiazolyl, 2-furyl, 3-furyl, 2-thienyl, 3-thienyl, 2-pyridyl, 3-pyridyl, 4-pyridyl, 2-pyrimidyl, 4-pyrimidyl, 5-benzothiazolyl, purinyl, 2-benzimidazolyl, 5-indolyl, 1-isoquinolyl, 5-isoquinolyl, 2-quinoxalinyl, 5-quinoxalinyl, 3-quinolyl, and 6-quinolyl.

[0017] In some embodiments, any of alkyl, heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, and heteroaryl are optionally substituted. That is, in some embodiments, any of these groups is substituted or unsubstituted. In some embodiments, the substituents for various groups are selected from those provided below.

[0018] Substituents for alkyl, heteroalkyl, cycloalkyl, and heterocycloalkyl groups (including groups often referred to as alkylene, alkenyl, heteroalkylene, heteroalkenyl, alkynyl, cycloalkyl, heterocycloalkyl, cycloalkenyl, and heterocycloalkenyl) are collectively referred to as "alkyl group substituents." In some embodiments, alkyl group substituents are selected from -halogen, -OR', ═O, ═NR', ═N—OR', —NR'R", —SR', —SiR'R"R"', —OC(O)R', —C(O)R', —COR', —CONR'R", —OC(O)NR'R", —NR"C(O)R', —NR'—C(O)NR"R"', —NR"C(O)R', —NR—C(NR'R"R'")═NR"", —NR—C(NR'R")═NR'", —S(O)R', —S(O)R', —S(O)NR'R", —NRSOR', —CN, and —NO in number ranging from zero to (2m'+1), where m' is the total number of carbon atoms in such group. In one embodiment, R', R", R'", and R"" are each independently selected from hydrogen, alkyl (e.g., C, C, C, C, C, and C alkyl). In one embodiment, R', R", R'", and R"" are each independently hydrogen, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, e.g., aryl substituted with 1 to 3 halogens, substituted or unsubstituted alkyl, alkoxy, or thioalkoxy groups, or arylalkyl groups. In one embodiment, R', R", R'", and R"" are each independently selected from hydrogen, alkyl, heteroalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl, alkoxy, thioalkoxy groups, and arylalkyl. When R' and R" are attached to the same nitrogen atom, they can be combined with the nitrogen atom to form a 5-, 6-, or 7-membered ring. For example, -NR'R" can include 1-pyrrolidinyl and 4-morpholinyl.In some embodiments, alkyl group substituents are selected from substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl.

[0019] Similar to the substituents described for the alkyl radical, substituents for the aryl and heteroaryl groups are collectively referred to as "aryl group substituents." In some embodiments, aryl group substituents replace zero to open valences on the aromatic ring system. and -N(O)R', ...), -N(O)R', -N(O)R', -N(O)R'), -N(O)R', -N(O)R', -N(O)R'), -N(O)R', -N(O)R', -N(O)R'), -N(O)R', -N(O)R'), -N(O)R', -N(O)R'), -N(O)R', -N(O)R'), -N(O)R', -N(O)R'), -N(O)R', -N(O)R'), -N(O)R', -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R'), -N(O)R In some embodiments, R', R", R'", and R"" are independently selected from hydrogen and alkyl (e.g., C, C, C, C, C, C, and C alkyl). In some embodiments, R', R", R'", and R"" are independently selected from hydrogen, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. In some embodiments, R', R", R'", and R"" are independently selected from hydrogen, alkyl, heteroalkyl, aryl, and heteroaryl. In some embodiments, aryl group substituents are selected from substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl.

[0020] Two of the substituents on adjacent atoms of the aryl or heteroaryl ring optionally have the formula -TC(O)-(CRR') q -U-, where T and U are independently -NR-, -O-, -CRR'-, or a single bond, and q is an integer from 0 to 3. Alternatively, two of the substituents on adjacent atoms of the aryl or heteroaryl ring may optionally be replaced by a substituent of the formula -A-(CH2) r A and B may be replaced with a substituent of the formula -B-, where A and B are independently -CRR'-, -O-, -NR-, -S-, -S(O)-, -S(O)2-, -S(O)2NR'-, or a single bond, and r is an integer from 1 to 4. One of the single bonds in the new ring thus formed may optionally be replaced with a double bond. Alternatively, two of the substituents on adjacent atoms of the aryl or heteroaryl ring may optionally be replaced with a substituent of the formula -(CRR') s -X-(CR”R'”) d -, where s and d are independently integers from 0 to 3, and X is -O-, -NR'-, -S-, -S(O)-, -S(O)2-, or -S(O)2NR'-. The substituents R, R', R", and R''' are preferably independently selected from hydrogen, or substituted or unsubstituted (C1-C6) alkyl.

[0021] The term "acyl" refers to a species containing the moiety -C(O)R, where R has the meaning defined herein. Exemplary species of R include H, halogen, substituted or unsubstituted alkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted heterocycloalkyl. In some embodiments, R is selected from the group consisting of H and (C1-C 6) alkyl.

[0022] The terms "halo" or "halogen," by themselves or as part of another substituent, mean, unless otherwise stated, a fluorine, chlorine, bromine, or iodine atom. Additionally, terms such as "haloalkyl" are meant to include monohaloalkyl and polyhaloalkyl. For example, the term "halo(C1-C4)alkyl" is meant to include, but not be limited to, trifluoromethyl, 2,2,2-trifluoroethyl, 4-chlorobutyl, 3-bromopropyl, and the like. In some embodiments, halogen refers to an atom selected from F, Cl, and Br.

[0023] As used herein, the term "heteroatom" includes oxygen (O), nitrogen (N), sulfur (S), and silicon (Si). In some embodiments, the heteroatom is selected from N and S. In some embodiments, the heteroatom is O.

[0024] Unless otherwise noted, the symbol "R" is a general abbreviation representing a substituent selected from acyl, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. When a compound contains more than one R, R', R", R'", and R"" groups, they are each independently selected.

[0025] For groups with solvent exchangeable protons, the ionized forms are contemplated as well. For example, -COOH can also be represented by -COO - -OH also refers to -O - Refers to...

[0026] Any compound disclosed herein can be made into a pharmaceutically acceptable salt. The term "pharmaceutically acceptable salt" includes salts of compounds prepared using relatively non-toxic acids or bases, depending on the specific substituents found on the compounds described herein. When a compound of the present invention contains a relatively acidic functional group, a base addition salt can be obtained by contacting the neutral form of such a compound with a sufficient amount of the desired base, either pure or in a suitable inert solvent. Examples of pharmaceutically acceptable base addition salts include sodium, potassium, calcium, ammonium, organic amino, or magnesium salts, or similar salts. When a compound of the present invention contains a relatively basic functional group, an acid addition salt can be obtained by contacting the neutral form of such a compound with a sufficient amount of the desired acid, either neat or in a suitable inert solvent. Examples of pharmaceutically acceptable acid addition salts include those derived from inorganic acids such as hydrochloric acid, hydrobromic acid, nitric acid, carbonic acid, monohydrogencarbonic acid, phosphoric acid, monohydrogenphosphate, dihydrogenphosphate, sulfuric acid, monohydrogensulfate, hydroiodic acid or phosphorous acid; and those derived from relatively non-toxic organic acids such as acetic acid, propionic acid, isobutyric acid, maleic acid, malonic acid, benzoic acid, succinic acid, suberic acid, fumaric acid, lactic acid, mandelic acid, phthalic acid, benzenesulfonic acid, p-tolylsulfonic acid, citric acid, tartaric acid, methanesulfonic acid etc. Also included are salts of amino acids such as alginate, and salts of organic acids such as glucuronic acid or galacturonic acid (see, for example, Berge et al., Journal of Pharmaceutical Science, 66:1-19 (1977)).Certain compounds of the present invention contain both basic and acidic functional groups, allowing compounds to be converted into either base or acid addition salts. The neutral forms of the compounds are preferably regenerated by contacting the salt with a base or acid and isolating the parent compound in the conventional manner. The parent form of the compound differs from the various salt forms in certain physical properties, such as solubility in polar solvents, but otherwise the salts are identical to the parent form of the compound for purposes of this invention.

[0027] In addition to salt forms, the present invention provides any compound disclosed herein in prodrug form. Prodrugs of the compounds described herein readily undergo chemical changes under physiological conditions to provide the compounds of the present invention.

[0028] Certain compounds of the present invention can exist in non-solvated form and solvated form, including hydrated form.In general, solvated form is equivalent to non-solvated form and is included within the scope of the present invention.Certain compounds of the present invention can exist in multiple crystalline or amorphous forms.In general, all physical forms are equivalent for the use contemplated by the present invention and are intended to be within the scope of the present invention.

[0029] The compounds of the present invention may also contain unnatural proportions of atomic isotopes at one or more of the atoms that constitute such compounds. For example, the compounds may contain deuterium ( 2 H), or may be labeled with, for example, tritium ( 3 H), iodine-125( 125 I), or carbon-14 ( 14 C). All isotopic variations of the compounds of the present invention, whether radioactive or not, are intended to be encompassed within the scope of the present invention.

[0030] Symbols displayed perpendicular to a bond [ka] indicates the point of attachment of the displayed moiety to the rest of the molecule.

[0031] In some embodiments, the definitions of terms used herein are in accordance with IUPAC.

[0032] composition The present invention provides a number of compounds (ligands) and their metal ion complexes. Generally, the ligands comprise multiple chelating moieties linked together by a scaffolding moiety.

[0033] The compounds (ligands) of the present invention and their metal ion complexes are particularly useful for targeted radioisotope applications and sensitized luminescence applications (such as Eu-sensitized luminescence immunoassays). As shown in the examples, the compounds (ligands) of the present invention stably coordinate metal cations, exhibit facile complex formation kinetics, and have very high aqueous quantum yields for Eu(III).

[0034] There are several factors to consider in the design of alpha chelators for anticancer therapy. Aside from kinetics, some key issues are high affinity for the target metal (e.g., Th) while simultaneously achieving low exchange rates with other biologically important metal ions. Therefore, ligand design must consider and match the electronic properties of the target metal and ligand. The chelate must also be able to assume the appropriate coordination cavity size and shape for the desired metal. In this case, the actinide ion, Th, is a "hard" cation with a large charge-to-radius ratio. Therefore, Th prefers "hard" electron donors and negatively charged oxygen donors. Because actinide ions tend to form stable complexes with a high density of ligands, coordination numbers of 8 or greater are generally preferred for actinide ions, but selectivity for thorium binding will depend on the design of the chelating unit. Effective but nonselective aminocarboxylic acid ligands, such as DTPA, can deplete patients of essential biological metal ions, potentially causing serious health problems. Therefore, choosing the right type of chelating unit is important to achieve high selectivity for a particular metal ion.

[0035] The ligand can contain multiple chelating moieties. Particularly useful ligands contain many chelating moieties, sufficient to provide, for example, 6, 8, or 10 heteroatoms, such as oxygen, to coordinate and complex with the metal ion. Heteroatoms, such as oxygen, provide electron density for forming coordinate bonds with positively charged ions, and therefore such heteroatoms can be considered "donors." In some embodiments, the multiple chelating moieties of the ligand contain multiple oxygen donors, and the metal ion (e.g., a radionuclide) is chelated to the ligand via at least one oxygen donor. In some embodiments, the ligand contains multiple oxygen donors, and the metal ion (e.g., a radionuclide) is chelated to the ligand via multiple or all oxygen donors.

[0036] Ligand In one aspect, the present invention provides a compound (ligand) having the structure: [ka] In the formula, L 1 and L 2 are independently selected scaffold moieties, and A b1 and A b2 are independently selected bridging chelating moieties, and A p1 and A p2 are independently selected pendant chelating moieties, wherein the scaffold moiety, the bridging chelating moiety, and the pendant chelating moiety are as defined herein.

[0037] L 1 , L 2 , A b1 , A b2 , A p1 , and A p2 Any combination of is encompassed by this disclosure and specifically provided by the present invention.

[0038] In some embodiments, the compound (ligand) includes a linker to the reactive functional group or to the targeting moiety.1 , L 2 , A p1 , and A p2 At least one of is replaced with a linker to a reactive functional group or a linker to a targeting moiety. The linker to a reactive functional group and the linker to a targeting moiety are as defined herein. In some embodiments, the functional moiety is a reactive functional group or a protected functional group.

[0039] In some embodiments, the compound (ligand) comprises one or more modifying moieties. The modifying moieties can be the same or different.

[0040] In some embodiments, A b1 and A b2 However, each [ka] where the compound includes a linker to the reactive functional group or a linker to the targeting moiety.

[0041] In some embodiments, A b1 and A b2 However, each [ka] where the compound includes a linker to the reactive functional group or a linker to the targeting moiety.

[0042] In some embodiments, the compounds (ligands) disclosed in WO2013 / 187971A2 are excluded.

[0043] In some embodiments, the compound (ligand) does not have the structure: [ka] In the formula, each A p1 is as defined in paragraph

[0052] of WO2013 / 187971A2, wherein each A p1 are independently selected from: [ka] In the formula, R s comprises a solubilizing group, R 11 is an unsubstituted C1, C2, C3, C4, C5, or C6 alkyl.

[0044] In some embodiments, the compound (ligand) does not have the following structure: [ka] (See paragraph

[0054] of WO2013 / 187971A2).

[0045] Scaffolding In some embodiments, L 1 has the following structure: [ka] In the formula, L 1a , L 1b , L 1c , L x6 , R L1 , and R L2 is as defined herein. 1a , L 1b , L 1c , L x6 , R L1 , and R L2 Any combination of is encompassed by this disclosure and specifically provided by the present invention.

[0046] In some embodiments, L 1 is substituted with a linker to a reactive functional group or a linker to a targeting moiety.

[0047] In some embodiments, L 1 has the following structure: [ka] In the formula, L 1ais as defined herein.

[0048] In some embodiments, L 1a is selected from substituted or unsubstituted alkyl, substituted or unsubstituted alkenyl, substituted or unsubstituted alkynyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted cycloalkenyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted arylalkyl, substituted or unsubstituted biaryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted polycyclic ring systems.

[0049] In some embodiments, L 1a has the following structure: [ka] In the formula, R e1 , R e2 , R e3 , and R e4 is independently selected from H, cyano, substituted or unsubstituted alkyl, substituted or unsubstituted alkenyl, substituted or unsubstituted alkynyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted cycloalkenyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl; R e1 , R e2 , R e3 , and R e4 At least two members selected from, together with the atoms to which they are attached, are optionally joined to form a substituted or unsubstituted ring (or ring system) selected from substituted or unsubstituted cycloalkyl, substituted or unsubstituted cycloalkenyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl. In some embodiments, R e1 or R e2 , and R e3 or R e4 is hydrogen.

[0050] In a preferred embodiment, L 1a has the following structure: [ka] In the formula, R e2 and R e3 is as defined herein.

[0051] In some embodiments, L 1a teeth, [ka] is selected from wherein n is an integer selected from 0, 1, 2, 3, 4, 5, and 6. Each R is as defined herein. 1 and R 1a are used interchangeably with reference to the above structure. In a preferred embodiment, R 1a is independently selected from H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, and the modifying moiety; and X is O, S, or CH.

[0052] In a preferred embodiment, L 1a is a member selected from a five-membered ring moiety and a six-membered ring moiety.

[0053] In another preferred embodiment, L 1a is a member selected from a 5-membered ring moiety and a 6-membered ring moiety, wherein the 5-membered ring moiety or the 6-membered ring moiety is part of a fused ring system.

[0054] In another preferred embodiment according to paragraph

[0032] , any implied hydrogen can be selected from substituted or unsubstituted alkyl, and 1, 2, 3, 4, 5, 6, 7, 8, 9-membered substituted or unsubstituted heteroalkyl selected from C or heteroatoms.

[0055] In some embodiments, the L 1aAny potential hydrogen atom of the moiety is optionally replaced by a substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, or modifying moiety.

[0056] In some embodiments, L 1a is not unsubstituted C1, C2, or straight chain C3 alkyl. In some embodiments, L 1a is not an unsubstituted linear alkyl. In some embodiments, L 1a is not an unsubstituted alkyl.

[0057] In a preferred embodiment, L 1a is selected from: [ka] wherein R is as defined herein.

[0058] In another preferred embodiment, L 1a is selected from: [ka] where n=0, 1, 2, or 3.

[0059] In another preferred embodiment, L 1a is selected from: [ka] where n=0, 1, 2, or 3, and R is as defined herein.

[0060] In another preferred embodiment, L 1a has the following structure: [ka]

[0061] In some embodiments, L 1a is selected from: [ka] wherein n is an integer selected from 0, 1, 2, 3, 4, 5, and 6, and R is as defined herein.

[0062] In some embodiments, L 1a is substituted with a linker to a reactive functional group or a linker to a targeting moiety.

[0063] In some embodiments, L 1b and L 1c is independently selected from a bond, —C(O)—, substituted or unsubstituted alkyl, and substituted or unsubstituted heteroalkyl. In some embodiments, independently, L 1b and L 1c is a bond, -C(O)-, -(CH2) a C(O)- and -O(CH2) a C(O)—, where a is an integer selected from 1, 2, 3, 4, 5, and 6. In some embodiments, L 1b and L 1c are each —C(O)—.

[0064] In some embodiments, L 1 has the following structure: [ka]

[0065] In some embodiments, L 2 has the following structure: [ka] In the formula, L 2a , L 2b , L 2c , L 2d , L 2e , L 2f , L 2g , R L3 , and RL4 is as defined herein. 2a , L 2b , L 2c , L 2d , L 2e , L 2f , L 2g , R L3 , and R L4 Any combination of is encompassed by this disclosure and specifically provided by the present invention.

[0066] In some embodiments, L 2 is substituted with a linker to a reactive functional group or a linker to a targeting moiety.

[0067] In some embodiments, L 2 has the following structure: [ka] In the formula, L 2a , L 2b , and L 2c is as defined herein. 2a , L 2b , and L 2c Any combination of is included in this disclosure and is specifically provided by the present invention.

[0068] In some embodiments, A p1 -L 2 -A p2 has the following structure: [ka] In the formula, L 2a , L 2b , L 2c , L 2d , L 2e , L 2f , L 2g , R L3 , R L4 , A p1 , and A p2 is as defined herein. 2a , L 2b , L 2c, L 2d , L 2e , L 2f , L 2g , R L3 , R L4 , A p1 , and A p2 Any combination of is encompassed by this disclosure and specifically provided by the present invention.

[0069] In some embodiments, A p1 -L 2 -A p2 has the following structure: [ka] In the formula, L 2a , L 2b , L 2c , A p1 , and A p2 is as defined herein. 2a , L 2b , L 2c , A p1 , and A p2 Any combination of is encompassed by this disclosure and specifically provided by the present invention.

[0070] In some embodiments, L 2a , L 2b , and L 2c is independently selected from substituted or unsubstituted alkyl and substituted or unsubstituted heteroalkyl.

[0071] In some embodiments, L 2a , L 2b , and L 2c is independently selected from substituted or unsubstituted C1-C8 alkyl.

[0072] In some embodiments, L 2a and L 2c are independently selected from substituted or unsubstituted C2, C3, and C4 alkyl; L 2b is selected from substituted or unsubstituted C2, C3, C4 and C5 alkyl.

[0073] In some embodiments, L 2a , L 2b , and L 2c In some embodiments, one or more of L is substituted with a linker to a reactive functional group or a linker to a targeting moiety. 2a is substituted with a linker to a reactive functional group or a linker to a targeting moiety. 2b is substituted with a linker to a reactive functional group or a linker to a targeting moiety. 2c is substituted with a linker to a reactive functional group or a linker to a targeting moiety.

[0074] In some embodiments, L 2d , L 2e , L 2f , and L 2g is independently selected from a bond, —C(O)—, substituted or unsubstituted alkyl, and substituted or unsubstituted heteroalkyl. In some embodiments, L 2d , L 2e , L 2f and L 2g are independently a bond, -C(O)-, or -(CH2) a C(O)- and -O(CH2) a C(O)—, where a is an integer selected from 1, 2, 3, 4, 5, and 6. In some embodiments, L 2d , L 2e , L 2f , and L 2g are each —C(O)—.

[0075] In some embodiments, R L3 and R L4 is selected from hydrogen, independently substituted or unsubstituted alkyl, and substituted or unsubstituted heteroalkyl. In some embodiments, R L3 and R L4 are H, respectively.

[0076] In some embodiments, A p1 -L 2 -A p2 has the following structure: [ka] In the formula, L x1 , L x2 , L x3 , L x4 , and L x5 is as defined herein.

[0077] In some embodiments, L x1 , L x2 , L x3 , L x4 , L x5 , and L x6 is independently selected from H, a linker to a reactive functional group, and a linker to a targeting moiety. x1 , L x2 , L x3 , L x4 , L x5 , and L x6 At least one of is a linker to a reactive functional group or a linker to a targeting moiety.

[0078] In some embodiments, L x1 is a linker to a reactive functional group or a linker to a targeting moiety, and L x2 , L x3 , L x4 , L x5 , and L x6 are H, respectively. In some embodiments, L x2 is a linker to a reactive functional group or a linker to a targeting moiety, and L x1 , L x3 , L x4 , L x5 , and L x6 are each H. In some embodiments, L x3 is a linker to a reactive functional group or a linker to a targeting moiety, and L x1 , Lx2 , L x4 , L x5 , and L x6 are each H. In some embodiments, L x4 is a linker to a reactive functional group or a linker to a targeting moiety, and L x1 , L x2 , L x3 , L x5 , and L x6 and each are H. In some embodiments, L X5 is a linker to a reactive functional group or a linker to a targeting moiety, and L x1 , L x2 , L x3 , L x4 , and L x6 are each H. In some embodiments, L X6は , a linker to a reactive functional group or a linker to a targeting moiety, and L x1 , L x2 , L x3 , L x4 , and L x5 are H, respectively.

[0079] In some embodiments, A p1 -L 2 -A p2 has the following structure: [ka] In the formula, L x1 and L x2 is as defined herein.

[0080] In various embodiments, the present invention provides a compound selected from: [ka] In the formula, L 1ais selected from substituted or unsubstituted alkyl, substituted or unsubstituted alkenyl, substituted or unsubstituted alkynyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted cycloalkenyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, substituted or unsubstituted arylalkyl, substituted or unsubstituted biaryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted polycyclic ring systems. x6 is selected from H, a linker to a reactive functional group, and a linker to a targeting moiety. 2a , L 2b , and L 2c is independently selected from substituted or unsubstituted alkyl and substituted or unsubstituted heteroalkyl.

[0081] In various embodiments, the present invention provides a compound selected from: [ka] In the formula, L x1 and L x6 is independently selected from H, a linker to a reactive functional group, and a linker to a targeting moiety.

[0082] Scaffolding, especially L 2 The precursor of can be synthesized as disclosed in WO2016 / 106241A1, the disclosure of which is incorporated herein by reference in its entirety.

[0083] Chelate part In some embodiments, A b1 , A b2 , A p1 , and A p2 are independently selected from: [ka] wherein A and G are independently selected from carbon, nitrogen, and oxygen; J is selected from carbon and nitrogen. 1 and R 2are independently selected from H, an enzymatically labile group, a hydrolytically labile group, a metabolically labile group, a photolytically labile group, and a single negative charge. 6 , R 7 , R 8 , R 9 , and R 10 is independently, L 1 or L 2 Bonding to L 1 or L 2 Alkanediyl, H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, halogen, CN, -CF3, -C(O)R 17 , -SO2NR 17 R 18 , -NR 17 R 18 , -OR 17 , -S(O)2R 17 , -COOR 17 , -S(O)2OR 17 , -OC(O)R 17 , -C(O)NR 17 R 18 , -NR 17 C(O)R 18 , -NR 17 SO2R 18 and -NO2, wherein R 6 , R 7 , R 8 , R 9 , and R 10 At least two of R are optionally joined to form a ring system selected from substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. 17 and R 18 is independently selected from H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted heterocycloalkyl; R 17 and R 18 are optionally joined together with the atoms to which they are attached to form a 5-, 6-, or 7-membered ring. When A is oxygen, R 9is absent and G is oxygen, then R 7 does not exist. A b1 and A b2 is R 6 , R 7 , R 8 , R 9 , and R 10 L through two members selected from 1 and L 2に Combined, A p1 and A p2 is R 6 , R 7 , R 8 , R 9 , and R 10 Through members selected from L 2 is combined with

[0084] In some embodiments, A b1 has a structure according to formula (I), then A b1 is R 6 and R 10 via L 1 and L 2 is bound to A b1 has a structure according to formula (II) or (III), then A b1 is R 6 and R 9 via L 1 and L 2 is bound to A b2 has a structure according to formula (I), then A b2 is R 6 and R 10 via L 1 and L 2 is bound to A b2 has a structure according to formula (II) or (III), then A b2 is R 6 and R 9 via L 1 and L 2 is bound to A p1 has a structure according to formula (I), then A p1 is R 6 or R 10 via L 2 is bound to Ap1 has a structure according to formula (II) or (III), then A p1 is R 6 or R 9 via L 2 is bound to A p2 has a structure according to formula (I), then A p2 is R 6 or R 10 via L 2 is bound to A p2 has a structure according to formula (II) or (III), then A p2 is R 6 or R 9 via L 2 is connected to

[0085] In some embodiments, A b1 , A b2 , A p1 , and A p2 are each independently selected from: [ka]

[0086] In some embodiments, A b1 has a structure according to formula (1), A b1 is R 6 and R 10 Through L 1 and L 2 is bound to A b1 has a structure according to formula (2a), (2b), (3), (4), or (5), then A b1 is R 6 and R 9 via L 1 and L 2 is bound to A b2 has a structure according to formula (1), A b2 is R 6 and R 10 via L 1 and L 2 is bound to A b2has a structure according to formula (2a), (2b), (3), (4), or (5), then A b2 is R 6 and R 9 via L 1 and L 2 is bound to A p1 has a structure according to formula (1), A p1 is R 6 or R 10 via L 2 is bound to A p1 has a structure according to formula (2a), (2b), (3), (4), or (5), A p1 is R 6 or R 9 via L 2 is bound to A p2 has a structure according to formula (1), A p2 is R 6 or R 10 via L 2 is bound to A p2 has a structure according to formula (2a), (2b), (3), (4), or (5), then A p2 is R 6 or R 9 via L 2 is connected to

[0087] In a preferred embodiment, each A b1 , A b2 , A p1 and A p2 has a structure according to formula (2b).

[0088] In another preferred embodiment, each A b1 , A b2 , A p1 , and A p2 has a structure according to formula (2a).

[0089] In another preferred embodiment, each A b1 , A b2 , A p1 , and A p2 has a structure according to formula (1).

[0090] In various embodiments, A b1 and A b2 is independently a member selected from: [ka] In the formula, R 7 , and R 8 is independently, L 1 or L 2 Bonding to L 1 or L 2 Alkanediyl, H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, halogen, CN, -CF3, -C(O)R 17 , -SO2NR 17 R 18 , -NR 17 R 18 , -OR 17 , -S(O)2R 17 , -COOR 17 , -S(O)2OR 17 , -OC(O)R 17 , -C(O)NR 17 R 18 , -NR 17 C(O)R 18 , -NR 17 SO2R 18 and -NO2, wherein R 6 , R 7 , R 8 , R 9 , and R 10 At least two of R are optionally joined to form a ring system selected from substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. 17 and R 18 is independently selected from H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted heterocycloalkyl; R 17 and R 18are optionally joined together with the atoms to which they are attached to form a 5-, 6-, or 7-membered ring.

[0091] In some embodiments, A b1 and A b2 are each independently selected from a moiety including: [ka]

[0092] In some embodiments, A b1 and A b2 and combinations thereof, members selected from the following are not moieties that include: [ka]

[0093] In some embodiments, A b1 and A b2 are each independently selected from a moiety including: [ka]

[0094] In some embodiments, A p1 and A p2 are each independently selected from a moiety including: [ka]

[0095] In some embodiments, A p1 and A p2 are each independently selected from a moiety including: [ka]

[0096] In some embodiments, A p1 and Ap2 are parts that each contain: [ka]

[0097] In some embodiments, A p1 and A p2 One or both of A and B comprise a modifying moiety. The modifying moiety is as defined herein. In some embodiments, A p1 , A p2 , or A p1 , and A p2 R 9 In some embodiments, A p1 , A p2 , or A p1 , and A p2 R 9 is -C(O)NR 17 R 18 and R 17 is H and R 18 is a modifying moiety. In some embodiments, A p1 , A p2 , or A p1 , and A p2の R 6 In some embodiments, A p1 , A p2 , or A p1 , and A p2 R 6 is -C(O)NR 17 R 18 and R 17 is H and R 18 is a modifying moiety. In an exemplary embodiment, R 6 and R 9 One or both of the following may be COOH or COO - is.

[0098] Linker to Functional / Targeting Moiety As used herein, a "linker," "linking member," or "linking moiety" is a moiety that covalently or non-covalently links a first moiety to a second moiety. In particular, a linker can attach a ligand described herein to another molecule, such as a targeting moiety. In some embodiments, a linker can attach a ligand described herein to a solid support. A linker that includes a reactive functional group that can further react with a reactive functional group on a structure of interest to attach the structure of interest to the linker is referred to as a "functionalized linker." In exemplary embodiments, the linker is a functionalized linker. In exemplary embodiments, the ligand includes one or more functionalized linkers. In some embodiments, the linker includes a targeting moiety. In some embodiments, the linker to the targeting moiety includes a bond to the targeting moiety. In some embodiments, the linker is a linker to a functional moiety or a linker to a targeting moiety. In some embodiments, the functional moiety is a reactive functional group or a protected functional group. In some embodiments, the linker is a linker to a reactive functional group or a linker to a targeting moiety.

[0099] The linker can be any useful structure for linking a ligand to a targeting moiety, such as a reactive functional group or an antibody. Examples of linkers include a zero-order linker (i.e., a bond), substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl. Further exemplary linkers include substituted or unsubstituted (C1, C2, C3, C4, C5, C6, C7, C8, C9, or C 10) alkyl, substituted or unsubstituted heteroalkyl, -C(O)NR'-, -C(O)O-, -C(O)S-, and -C(O)CR'R" where R' and R" are independently members selected from H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted heterocycloalkyl. In some embodiments, the linker comprises at least one heteroatom. Exemplary linkers also include -C(O)NH-, -C(O), -NH-, -S-, -O-, and the like. In an exemplary embodiment, the linker is a heteroalkyl substituted with a reactive functional group.

[0100] reactive functional groups In one embodiment, the linker comprises a reactive functional group (or, interchangeably, "reactive functional moiety") that can be further reacted to covalently attach the linker to the targeting moiety. Reactive functional groups and reaction classes useful in practicing the present invention are generally well known in the field of bioconjugate chemistry. Currently preferred classes of reactions available with the reactive functional groups of the present invention are those that proceed under relatively mild conditions. These include, but are not limited to, nucleophilic substitution (e.g., reactions of amines and alcohols with acyl halides and activated esters), electrophilic substitution (e.g., enamine reactions), and additions to carbon-carbon and carbon-heteroatom multiple bonds (e.g., Michael and Diels-Alder reactions). These and other useful reactions are discussed, for example, in March, Advanced Organic Chemistry (3rd Ed., John Wiley & Sons, New York, 1985), Hermanson, Bioconjugate Techniques (Academic Press, San Diego, 1996), and Feeney et al., Modification of Proteins, Advances in Chemistry Series, Vol. 198 (American Chemical Society, Washington, DC, 1982).

[0101] In some embodiments, reactive functional groups refer to groups selected from olefins, acetylenes, alcohols, phenols, ethers, oxides, halides, aldehydes, ketones, carboxylic acids, esters, amides, cyanates, isocyanates, thiocyanates, isothiocyanates, amines, hydrazines, hydrazones, hydrazides, diazos, diazoniums, nitros, nitriles, mercaptans, sulfides, disulfides, sulfoxides, sulfones, sulfonic acids, sulfinic acids, acetals, ketals, anhydrides, sulfates, sulfenic acids, isonitriles, amidines, imides, imidates, nitrones, hydroxylamines, oximes, hydroxamic acids, thiohydroxamic acids, allenes, orthoesters, sulfites, enamines, ynamines, ureas, pseudoureas, semicarbazides, carbodiimides, carbamates, imines, azides, azo compounds, azoxy compounds, and nitroso compounds. Reactive functional groups also include those used to prepare bioconjugates, e.g., N-hydroxysuccinimide esters, maleimides, etc. Methods for preparing each of these functional groups are well known in the art, and their application or modification for particular purposes is within the ability of one of ordinary skill in the art (see, e.g., Sandler and Karo, eds., Organic Functional Group Preparations, (Academic Press, San Diego, 1989)).

[0102] The reactive functional group can be selected depending on the reaction partner selected. For example, activated esters such as NHS esters are useful for labeling proteins via lysine residues. Sulfhydryl-reactive groups such as maleimides can be used to label proteins via amino acid residues bearing SH groups (e.g., cysteine). Antibodies can be labeled by first oxidizing their carbohydrate moieties (e.g., with periodate) and reacting the resulting aldehyde groups with hydrazine-containing ligands.

[0103] Reactive functional groups can be selected so that they do not participate in or interfere with the reactions required to construct the reactive ligand. Alternatively, reactive functional groups can be protected from participating in the reaction by a protecting group. Those skilled in the art will understand how to protect a particular functional group so that it does not interfere with a selected set of reaction conditions. For examples of useful protecting groups, see, for example, Greene et al., PROTECTIVE GROUPS IN ORGANIC SYNTHESIS, John Wiley & Sons, New York, 1991.

[0104] Amine and Amino-Reactive Groups In one embodiment, the reactive functional group is selected from amines (such as primary or secondary amines), hydrazines, hydrazides, and sulfonylhydrazides. The amines can be, for example, acylated, alkylated, or oxidized. Useful non-limiting examples of amino-reactive groups include N-hydroxysuccinimide (NHS) esters, sulfur-NHS esters, imidoesters, isocyanates, isothiocyanates, acyl halides, aryl azides, p-nitrophenyl esters, aldehydes, sulfonyl chlorides, thiazolides, and carboxyl groups.

[0105] NHS esters and sulfo-NHS esters react preferentially with primary (including aromatic) amino groups of reaction partners. The imidazole group of histidine is known to compete with primary amines for reaction, but the reaction product is unstable and easily hydrolyzed. The reaction involves the nucleophilic attack of the amine on the acid carboxyl of the NHS ester to form an amide and release N-hydroxysuccinimide.

[0106] Imidoesters are the most specific acylating reagents for reacting with amine groups on molecules such as proteins. At pH 7-10, imidoesters react only with primary amines. Primary amines nucleophilically attack the imidate to generate an intermediate, which decomposes to an amidine at high pH or to a new imidate at low pH. The new imidate can then react with another primary amine, crosslinking two amino groups, a case in which a supposedly monofunctional imidate reacts bifunctionally. The major product of the reaction with a primary amine is an amidine, which is a stronger base than the original amine. Therefore, the positive charge of the original amino group is retained. As a result, imidoesters do not affect the overall charge of the conjugate.

[0107] Isocyanates (and isothiocyanates) react with primary amines of conjugates to form stable bonds. Their reactions with sulfhydryl, imidazole, and tyrosyl groups give relatively unstable products.

[0108] Acyl azides may also be used as amino-specific reagents, where the nucleophilic amine of the reaction partner attacks the acidic carboxyl group under slightly alkaline conditions, for example pH 8.5.

[0109] Aryl halides such as 1,5-difluoro-2,4-dinitrobenzene react preferentially with the amino and tyrosine phenolic groups of the conjugate, but also with its sulfhydryl and imidazole groups.

[0110] p-Nitrophenyl esters of carboxylic acids are also useful amino-reactive groups. The reagents are not very specific, but α- and ε-amino groups appear to react most rapidly.

[0111] Aldehydes react with primary amines of conjugate components (e.g., the ε-amino group of lysine residues). Schiff bases, which are unstable, are formed by the reaction of protein amino groups with aldehydes. However, Schiff bases are stable when attached to another double bond. The resonance interaction of both double bonds prevents hydrolysis of the Schiff bond. Furthermore, high local concentrations of amines can attack the ethylenic double bond to form stable Michael addition products. Alternatively, stable bonds can be formed by reductive amination.

[0112] Aromatic sulfonyl chlorides react with a variety of sites on the conjugate, but reaction with amino groups is most important, leading to stable sulfonamide bonds.

[0113] Free carboxyl groups react with carbodiimides, which are soluble in both water and organic solvents, to form pseudoureas, which are then coupled to available amines to form amide bonds. Yamada et al., Biochemistry, 1981, 20:4836-4842, for example, teaches methods for modifying proteins with carbodiimides.

[0114] Sulfhydryls and sulfhydryl-reactive groups In another embodiment, the reactive functional group is selected from a sulfhydryl group (which can be converted to a disulfide) and a sulfhydryl-reactive group. Useful non-limiting examples of sulfhydryl-reactive groups include maleimides, alkyl halides, acyl halides (including bromoacetamide or chloroacetamide), pyridyl disulfides, and thiophthalimides.

[0115] Maleimides react preferentially with sulfhydryl groups of conjugates to form stable thioether bonds. They also react very slowly with primary amino and imidazole groups of histidines. However, at pH 7, maleimide groups can be considered sulfhydryl-specific groups because the reaction rate of simple thiols is 1000 times greater than that of the corresponding amines at this pH.

[0116] Alkyl halides react with sulfhydryl groups, sulfides, imidazoles, and amino groups. However, at neutral to slightly alkaline pH, alkyl halides react primarily with sulfhydryl groups to form stable thioether bonds. At higher pH, reaction with amino groups is favored.

[0117] Pyridyl disulfides react with free sulfhydryl groups by disulfide exchange to form mixed disulfides. As a result, pyridyl disulfides are relatively specific sulfhydryl-reactive groups.

[0118] Thiophthalimides also react with free sulfhydryl groups to form disulfides.

[0119] Other reactive functional groups Other exemplary reactive functional groups include: (i) carboxyl groups and various derivatives thereof, including, but not limited to, N-hydroxybenztriazole esters, acid halides, acylimidazoles, thioesters, p-nitrophenyl esters, alkyl, alkenyl, alkynyl, and aromatic esters; (ii) a hydroxyl group, which can be converted into an ester, ether, aldehyde, etc. (iii) haloalkyl groups, in which the halide is displaced by a nucleophilic group, such as an amine, a carboxylate anion, a thiol anion, a carbanion, or an alkoxide ion, thereby resulting in the covalent attachment of a new group at the site of the halogen atom; (iv) dienophile groups capable of participating in Diels-Alder reactions, such as maleimide groups; (v) aldehyde or ketone groups, which can be subsequently derivatized by formation of carbonyl derivatives, such as imines, hydrazones, semicarbazones, or oximes, or by mechanisms such as Grignard addition or alkyllithium addition; (vi) alkenes, which can undergo, for example, cycloaddition, acylation, Michael addition, etc. (vii) epoxides, which can react with, for example, amine and hydroxyl groups; (ix) phosphoramidites and other standard functional groups useful in nucleic acid synthesis; (x) Other functional groups useful for forming covalent bonds between the functionalized ligand and a molecular entity or surface.

[0120] Non-specific reactive functional groups In addition to the use of site-specific reactive moieties, the present invention contemplates the use of non-specific reactive groups to link the ligand to the targeting moiety. Non-specific groups include, for example, photoactivatable groups.

[0121] Photoactivatable groups are ideally inactive in the dark and converted to reactive species in the presence of light. In one embodiment, the photoactivatable group is selected from nitrene precursors generated upon heating or photolysis of azides. Electron-deficient nitrenes are highly reactive and react with a variety of chemical bonds, including NH, OH, CH, and C=C. Three types of azides (aryl, alkyl, and acyl derivatives) can be used, but aryl azides are preferred here. Upon photolysis, aryl azides are more reactive with NH and OH bonds than with C-H bonds. Electron-deficient aryl nitrenes rapidly ring-expand to form dehydroazepines, which readily react with nucleophiles and do not form C-H insertion products. The reactivity of aryl azides can be increased by the presence of electron-withdrawing substituents, such as nitro and hydroxyl groups, in the ring. Such substituents push the absorption maximum of aryl azides to longer wavelengths. Unsubstituted aryl azides have an absorption maximum in the range of 260-280 nm, while hydroxy and nitro aryl azides absorb significant light above 305 nm. Therefore, hydroxy and nitro aryl azides are most preferred because they allow for less harmful photolysis conditions for the affinity component than unsubstituted aryl azides.

[0122] In another preferred embodiment, the photoactivatable group is selected from fluorinated aryl azides, the photodecomposition products of which are aryl nitrenes, all of which undergo the characteristic reaction of this group, involving C-H bond insertion, with high efficiency (Keana et al., J. Org. Chem. 55:3640-3647, 1990).

[0123] In another embodiment, the photoactivatable group is selected from a benzophenone residue. Benzophenone reagents generally exhibit higher crosslinking yields than aryl azide reagents.

[0124] In another embodiment, the photoactivatable group is selected from diazo compounds that upon photolysis form electron-deficient carbenes that undergo a variety of reactions, such as insertion into C-H bonds, addition to double bonds (including aromatic systems), hydrogen attraction, and coordination to nucleophilic centers to generate carbon ions.

[0125] In yet another embodiment, the photoactivatable group is selected from diazopyruvates. For example, the p-nitrophenyl ester of p-nitrophenyl diazopyruvate reacts with aliphatic amines to produce diazopyruvic acid amides, which undergo ultraviolet photolysis to form aldehydes. The photolyzed diazopyruvic acid-modified affinity components react like formaldehyde or glutaraldehyde to form intraprotein crosslinks.

[0126] In some embodiments, a linker connects a ligand to a reactive functional group. In exemplary embodiments, a linker connects a ligand to a targeting moiety. That is, in exemplary embodiments, the linker comprises a targeting moiety. In some embodiments, the ligand comprises a linker to a targeting moiety. Any linker described herein can be a linker that includes a reactive functional group that can react with a reactive functional group on a targeting moiety to attach the linker to the targeting moiety. Any linker described herein can be a linker that includes a bond to a targeting moiety. The term "targeting moiety" refers to a moiety that acts to target or direct an attached molecule (e.g., a ligand or a ligand complexed with a metal ion (e.g., a radionuclide)) to a specific location or molecule. Thus, for example, a targeting moiety can be used to target a molecule to a specific target protein or enzyme, or to a specific cellular location, a specific cell type, or a diseased tissue. As will be appreciated by those skilled in the art, localizing proteins within cells is a simple way to increase their effective concentration. For example, by placing imaging agents and / or therapeutic agents into the nucleus, they are confined to a smaller space, thereby increasing their concentration. Finally, the physiological target may simply be localized to a particular compartment; the agent must be appropriately localized.

[0127] The targeting moiety can be a small molecule (e.g., MW<500D), including both non-peptides and peptides. Examples of targeting moieties also include peptides, polypeptides (proteins, particularly antibodies, including antibody fragments), nucleic acids, oligonucleotides, carbohydrates, lipids, hormones (including protein hormones and steroid hormones (e.g., estradiol)), growth factors, lectins, receptors, receptor ligands, cofactors, and the like. The target of the targeting moiety can include, for example, a complementary nucleic acid, receptor, antibody, antigen, or lectin.

[0128] In exemplary embodiments, the targeting moiety can bind to the target with high binding affinity. In other words, a targeting moiety with high binding affinity to a target has high specificity for the target or specifically binds to the target. In some embodiments, high binding affinity is greater than about 10 -7 Dissociation constant K less than M d In an exemplary embodiment, the high binding affinity is given by -8 M or less, about 10 -9 M or less, about 10 -10 M or less, about 10 -11 M or less, about 10 -12 M or less, about 10 -13 M or less, about 10 -14 M or less, or about 10 -15 Dissociation constant K less than M d A compound may have a high binding affinity for a target if it includes a moiety, such as a targeting moiety, that has a high binding affinity for the target.

[0129] In an exemplary embodiment, the targeting moiety is an antibody. "Antibody" refers to a protein comprising one or more polypeptides substantially encoded by all or part of a recognized immunoglobulin gene. For example, in humans, recognized immunoglobulin genes include the kappa (κ), lambda (λ), and heavy chain loci, which together comprise the various variable region genes, and the mu (μ), delta (δ), gamma (γ), sigma (ε), and alpha (α) constant region genes, which encode the IgM, IgD, IgG, IgE, and IgA isotypes, respectively. Antibody, as used herein, is meant to include full-length antibodies and antibody fragments and may refer to natural antibodies from any organism, engineered antibodies, or antibodies recombinantly produced for experimental, therapeutic, or other purposes, as further defined below. Antibody fragments include Fab, Fab', F(ab')2, Fv, scFv, or other antigen-binding subsequences of antibodies, and may include those produced by modification of whole antibodies or synthesized de novo using recombinant DNA technology. The term "antibody" refers to both monoclonal and polyclonal antibodies. Antibodies can be antagonistic, agonistic, neutralizing, inhibitory, or stimulatory.

[0130] To localize the compound to a specific area in an animal, a targeting moiety can be added to the ligand, but a specific ligand has a natural affinity for cells, tissues, organs, or other parts of an animal. For example, the ligands disclosed herein may have a natural or inherent affinity for bone. Thus, in some embodiments, the ligand does not include a targeting moiety or a linker to the targeting moiety. A ligand that lacks a targeting moiety can be used in any method that does not require specific targeting.

[0131] In some embodiments, the ligand comprises a linker to the solid support. That is, any linker described herein can be a linker that includes a reactive functional group that can react with a reactive functional group on the solid support to attach the linker to the solid support. Any linker described herein can be a linker that includes a bond to the solid support. A "solid support" is any material that can be modified to include individual sites suitable for ligand binding or association. Suitable substrates include biodegradable beads, non-biodegradable beads, silica beads, magnetic beads, latex beads, glass beads, quartz beads, metal beads, gold beads, mica beads, plastic beads, ceramic beads, or combinations thereof. Biocompatible polymers, including biodegradable polymers that are slowly removed from the system by enzymatic degradation, are particularly useful. Examples of biodegradable materials include starch, cross-linked starch, poly(ethylene glycol), polyvinylpyrrolidine, polylactide (PLA), polyglycolide (PGA), poly(lactide-co-glycolide) (PLGA), polyanhydrides, polyorthoesters, poly(DTH iminocarbonate), poly(bisphenol A iminocarbonate), polycyanoacrylates, polyphosphazenes, mixtures thereof, and combinations thereof. Other suitable materials for forming particles exist and can be used. In some embodiments, the solid support is a bead comprising cross-linked starch, e.g., cross-linked potato starch. Beads made from starch are typically completely biodegraded in the body by serum amylase, a naturally occurring enzyme found in the body. In these embodiments, the ligand optionally further comprises a targeting moiety or a linker to the targeting moiety. If the ligand bound to the solid support does not include a targeting moiety, the ligand can be localized directly by the practitioner, for example, by direct surgical implantation.

[0132] In some embodiments, the linker has the structure -L 11 -F x L 11is selected from a bond, acyl, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl; F x is selected from a reactive functional group, a protected functional group, or a targeting moiety.

[0133] In some embodiments, L 11 is selected from substituted or unsubstituted alkyl and substituted or unsubstituted heteroalkyl. In some embodiments, L 11 is heteroalkyl. In some embodiments, L 11 is (C1, C2, C3, C4, C5, C6, C7, C8, C9, C 10 , C 11 , C 12 , C 13 , C 14 , C 15 , C 16 , C 17 , C 18 , C 19 or C 20 ) alkyl, in which 1, 2, or 3 atoms are replaced by heteroatoms such as nitrogen or oxygen. In some embodiments, L 11 includes the modifying moiety.

[0134] In some embodiments, F x is selected from -NH, -C(O)OH, alkyl esters (e.g., methyl esters), N-hydroxysuccinimide (NHS) esters, sulfo-NHS esters, isothiocyanates, and maleimides. x is selected from —NH and —C(O)OH.

[0135] In some embodiments, -L 11 -F x is selected from: [ka]

[0136] In a preferred embodiment according to paragraph

[0113] , any implied hydrogen can be selected from substituted or unsubstituted alkyl, and 1, 2, 3, 4, 5, 6, 7, 8, 9-membered substituted or unsubstituted heteroalkyl selected from C or heteroatoms.

[0137] In some embodiments, the linker has the structure: [ka] In the formula, R L is selected from substituted or unsubstituted alkyl and substituted or unsubstituted heteroalkyl; F x is as defined herein. In some embodiments, R L is substituted or unsubstituted alkoxyalkyl. In some embodiments, R L is a substituted or unsubstituted monoether. In some embodiments, R L is a substituted or unsubstituted polyether. In some embodiments, the polyether has 2 to 10 (i.e., 2, 3, 4, 5, 6, 7, 8, 9, or 10) ether groups. In some embodiments, R L includes the modifying moiety.

[0138] In some embodiments, the linker has the structure: [ka] In the formula, R L is selected from: [ka] wherein n is an integer selected from 1, 2, 3, 4, 5, and 6; x is a reactive functional group (such as NH2) or a protected functional group.

[0139] In some embodiments, the linker has a structure selected from the following: [ka]

[0140] In preferred embodiments, the linker has a structure selected from the following: [ka]

[0141] In another preferred embodiment, the linker has a structure selected from the following: [ka]

[0142] In another preferred embodiment, the linker has a structure selected from the following: [ka]

[0143] In an exemplary embodiment, F x is a targeting moiety.

[0144] In exemplary embodiments, the linker is a linker to a targeting moiety. In some embodiments, the targeting moiety is selected from a polypeptide, a nucleic acid, a lipid, a polysaccharide, a small molecule, a cofactor, and a hormone. In exemplary embodiments, the targeting moiety is an antibody or an antibody fragment.

[0145] In linkers with multiple reactive functional groups, certain functional groups can be selected so that they do not participate in or interfere with the reaction that controls the attachment of the functionalized spacer component to another ligand component. Alternatively, reactive functional groups can be protected from participating in the reaction by the presence of a protecting group. Those skilled in the art will understand how to protect certain functional groups from interfering with a selected set of reaction conditions. For examples of useful protecting groups, see Greene et al., PROTECTIVE GROUPS IN ORGANIC SYNTHESIS, John Wiley & Sons, New York, 1991.

[0146] Modification part In some embodiments, the compound (ligand) comprises one or more modifying moieties. 1 , L 2 , A b1 , A b2 , A p1 , and A p2 In some embodiments, one or more of L 1a , L 1b , L 1c , R L1 , and R L2 , L 2a , L 2b , L 2c , L 2d , L 2e , L 2f , L 2g , R L3 , R L4 , A b1 , A b2 , A p1 , and A p2 In some embodiments, one or more of the linkers to the reactive functional group or the targeting moiety comprises a modifying moiety. Each of the modifying moieties can be the same or different.

[0147] The modifying moiety modifies various properties, such as solubility, charge, or affinity, of the ligand and / or the complex formed between the ligand and the metal ion. In some embodiments, the modifying moiety does not interact with the metal when the ligand is complexed with the metal. In some embodiments, the modifying moiety is a solubilizing group, a hormone-derived moiety, a prodrug moiety (e.g., having a cleavable moiety), an oligonucleotide, ssDNA, dsDNA, RNA, or a peptide. The solubilizing group improves the solubility of the ligand and / or the complex formed between the ligand and the metal ion in aqueous media. In some embodiments, the hormone (of the hormone-derived moiety) is a steroid. In some embodiments, the steroid is estradiol. In some embodiments, the modifying moiety is an estradiol-derived moiety. Hydrophilic and hydrophobic peptides, depending on their amino acid composition, can be used to adjust the solubility of the ligand and / or the complex formed between the ligand and the metal ion.

[0148] In some embodiments, the modifying moiety is a substituted or unsubstituted heteroalkyl. In some embodiments, the modifying moiety is a substituted or unsubstituted alkoxyalkyl. In some embodiments, the modifying moiety is a substituted or unsubstituted monoether. In some embodiments, the modifying moiety is a substituted or unsubstituted polyether. In some embodiments, the modifying moiety includes an estradiol-derived moiety. In some embodiments, the modifying moiety is a polyether substituted with an estradiol-derived moiety.

[0149] In some embodiments, the modifying moiety is selected from: [ka]

[0150] In some embodiments, the fluorescent moiety is a peptide. In some embodiments, the modifying moiety is: [ka]

[0151] In some embodiments, the modifying moiety comprises an oligonucleotide.

[0152] In some embodiments, the modifying moiety is selected from: [ka]

[0153] Exemplary Ligands In some embodiments, the present invention provides a ligand having the following structure: [ka] In the formula, L 1a , L 2a , L 2b , L 2c , L x6 , A b1 , A b2 , A p1 , and A p2 is as defined herein.

[0154] In some embodiments, the present invention provides a ligand having the following structure: [ka] In the formula, L 1a , L x1 , L x2 , L x3 , L x4 , L x5 , L x6 , A b1 , A b2 , A p1 , and A p2 is as defined herein.

[0155] In some embodiments, the present invention provides a ligand having the following structure: [ka] In the formula, L 1a , L 2a , L 2b , L 2c , L x6 , A p1 , and A p2 is as defined herein.

[0156] In some embodiments, the present invention provides a ligand having the following structure: [ka] In the formula, L 1a , L x1 , L x2 , L x3 , L x4 , L x5 , L x6 , A p1 , and A p2 is as defined herein.

[0157] In some embodiments, the present invention provides a ligand having the following structure: [ka] In the formula, L 1a , L x1 , L x2 , L x3 , L x4 , L x5 , and L x6 is as defined herein.

[0158] In some embodiments, the present invention provides a ligand having the following structure: [ka] In the formula, L 1a , L x6 , and L x1 is as defined herein.

[0159] Additional exemplary ligands are provided in the Examples.

[0160] complex In one aspect, the present invention provides a complex of a compound (ligand) disclosed herein with a metal ion.

[0161] In a preferred embodiment, the complex contains a +2 metal cation, e.g., Ca +2 or Mg +2 In a preferred embodiment, the +2 metal cation protects reactive moieties on the reagent that contact the complex from non-productive reactions with the complex during modification of the complex with the reagent. An exemplary reactive moiety is an imide moiety, e.g., N-hydroxysuccinimide (NHS). In a preferred embodiment, the complex of the +2 metal cation is converted to an NHS ester by contacting the complex with a reagent that includes an NHS moiety. In a preferred embodiment, the +2 metal cation is replaced by a cation of a valence higher than +2, e.g., +3 or +4, after reaction with the reagent, e.g., after NHS ester formation. In a preferred embodiment, the higher valence cation is selected from ions of lanthanides, transition metals, and actinides.

[0162] Any combination of a compound (ligand) disclosed herein and a metal ion disclosed herein is encompassed by the present disclosure and is specifically provided by the present invention.

[0163] In some embodiments, the complex is luminescent.

[0164] In some embodiments, the complex comprises a metal ion that is a known radioisotope.

[0165] Exemplary complexes are shown in the Examples.

[0166] In another aspect, the present invention provides complexes of the compounds (ligands) disclosed herein with elements or ions thereof from periods 4, 5, 6, and 7, and / or groups 13, 14, 15, and 16. In another aspect, the present invention provides complexes of the compounds (ligands) disclosed herein with elements or ions thereof from periods 3, 4, 7, 8, 9, 10, 11, 13, 14, and 15. In some embodiments, the present invention provides complexes of the compounds (ligands) disclosed herein with elements or ions thereof from periods 3, 4, and 13.

[0167] In some embodiments, the complexes disclosed in WO2013 / 187971A2 are excluded.

[0168] metal In some embodiments, the metal complexed by the ligands of the present invention is an actinide. In some embodiments, the actinide is thorium (Th). In some embodiments, the metal is a lanthanide. In some embodiments, the lanthanide is terbium (Tb). In some embodiments, the lanthanide is europium (Eu). In some embodiments, the lanthanide is dysprosium (Dy). In some embodiments, the lanthanide is lutetium (Lu). In some embodiments, the lanthanide is gadolinium (Gd). In some embodiments, the metal is yttrium (Y). In some embodiments, the metal is zirconium (Zr). In some embodiments, the metal ion is yttrium (III). In some embodiments, the metal ion is europium (III). In some embodiments, the metal ion is terbium (III). In some embodiments, the metal ion is zirconium (IV). In some embodiments, the metal ion is thorium (IV). In some embodiments, the metal ion is Th. 4+ , Zr 4+ ,EU 3+ , Dy 3+ , Tb 3+ , Lu 3+ , and Y 3+In some embodiments, the metal (ion) is a radionuclide. In some embodiments, the metal ion is 227 In some embodiments, the metal ion is Th(IV). 89 Zr(IV).

[0169] In some embodiments, the metal to which the ligands of the present invention are complexed is 177 In some embodiments, the metal is 166 In some embodiments, the metal is 153 In some embodiments, the metal is Sm. 90 Y. In some embodiments, the metal is 86 Y. In some embodiments, the metal is 166 In some embodiments, the metal is Dy. 165 In some embodiments, the metal is Dy. 169 In some embodiments, the metal is Er. 175 In some embodiments, the metal is Yb. 225 In some embodiments, the metal is Ac. 149 In some embodiments, the metal is Tb. 153 In some embodiments, the metal is Gd. 230 It's U.

[0170] In some embodiments, the metal to which the ligands of the present invention are complexed is 111 In some embodiments, the metal is 67 In some embodiments, the metal is Ga. 67 In some embodiments, the metal is Cu. 64 In some embodiments, the metal is Cu. 186 In some embodiments, the metal is Re. 188 In some embodiments, the metal is Re. 111 In some embodiments, the metal is Ag. 109 In some embodiments, the metal is Pd. 212 In some embodiments, the metal is Pb. 203In some embodiments, the metal is Pb. 212 In some embodiments, the metal is Bi. 213 In some embodiments, the metal is Bi. 195m In some embodiments, the metal is Pt. 201 In some embodiments, the metal is Tl. 55 Co. In some embodiments, the metal is 99m Tc.

[0171] In some embodiments, the metal complexed by the ligands of the present invention is selected from yttrium (Y), lanthanides, actinides, zirconium (Zr), iron (Fe), and indium (In). In some embodiments, the metal is selected from zirconium (Zr), iron (Fe), indium (In), europium (Eu), holmium (Ho), lutetium (Lu), yttrium (Y), terbium (Tb), ytterbium (Yb), gadolinium (Gd), samarium (Sm), dysprosium (Dy), erbium (Er), and thorium (Th). In some embodiments, the metal is selected from Eu, Tb, Sm, and Dy. In some embodiments, the metal is Gd.

[0172] In some embodiments, the metal ion complexed by the ligands of the present invention is selected from Zr(IV), Fe(III), Ga(III), In(III), Eu(III), Ho(III), Lu(III), Y(III), Tb(III), Yb(III), Gd(III), Sm(III), Dy(III), Er(III), and Th(IV). In some embodiments, the metal ion is 227 Th(IV), 89 Zr(IV), and 177 Lu(III).

[0173] In some embodiments, the metal is a radionuclide.

[0174] radionuclides The chelating moieties disclosed herein can be used to bind metal ions, particularly radionuclides. The term "radionuclide" or "radioisotope" refers to a radioactive isotope or element having an unstable nucleus that is prone to undergo radioactive decay. Numerous decay modes are known in the art, including alpha decay, proton emission, neutron emission, double proton emission, spontaneous fission, cluster decay, beta decay, and the like. - Decay, positron emission ( β+ decay), electron capture, bound-state beta decay, double beta decay, double electron capture, electron capture with positron emission, double positron emission, isomer transition, and internal conversion.

[0175] Exemplary radionuclides include alpha emitters, which emit alpha particles during decay, hi some embodiments, the radionuclides are emitters of particles selected from gamma rays or alpha particles, electrons, and positrons.

[0176] In some embodiments, the radionuclide is an actinide. In some embodiments, the radionuclide is a lanthanide. In some embodiments, the radionuclide is a 3 + In some embodiments, the radionuclide is a 4 + In some embodiments, the radionuclide is a 2 + It is an ion.

[0177] Radionuclides selected from isotopes of U, Pu, Fe, Cu, Sm, Gd, Tb, Dy, Ho, Er, Yb, Lu, Y, Th, Zr, In, Ga, Bi, Ra, At, and Ac are particularly useful in the complexes provided herein. In some embodiments, the radionuclide is selected from radium-223, thorium-227, astatine-211, bismuth-213, lutetium-177, and actinium-225. Other useful radioisotopes include bismuth-212, iodine-123, copper-64, iridium-192, osmium-194, rhodium-105, samarium-153, and yttrium-88, yttrium-90, and yttrium-91. In an exemplary embodiment, the radionuclide is thorium, specifically selected from thorium-227 and thorium-232. In some embodiments, thorium-226 is excluded. In some embodiments, U is excluded. In some embodiments, uranium-230 is excluded. That is, in some embodiments, the radionuclide is not U, or the radionuclide is not uranium-230, or the radionuclide is not thorium-226.

[0178] In preferred embodiments, the radionuclide is selected from Th(IV)-227, Zr(IV)-89, Lu(III)-177, Y(III)-90, Y(III)-86, and In(III)-111.

[0179] In another preferred embodiment, the radionuclide is Ac(III)-225.

[0180] In some embodiments, the radionuclide is selected from Tb(III)-149, Sc(III)-47, Dy(III)-166, Er(III)-169, Gd(III)-153, Ho(III)-166, Sm(III)-153, Yb(III)-175, Ac(III)-225, Bi(III)-212, and Bi(III)-213.

[0181] In a preferred embodiment, the complex is luminescent and comprises a metal ion selected from Tb(III), Eu(III), Sm(III), Dy(III), and Yb(III).

[0182] 232 Th has a half-life of 1.4x10 10 It occurs naturally as an α-emitter with a γ-value of 1.5 yr. In aqueous solution, Th(IV) is the only oxidation state. Thorium(IV) ions are larger than Pu(IV) and typically form complexes with coordination numbers of 9 or greater. For example, the crystal structures of Th(IV) complexes with both the simple bidentate 1,2-HOPO and Me-3,2-HOPO have been determined as nine-coordinate species.

[0183] Like other actinide ions, thorium(IV) prefers to form complexes with oxygen, especially with negative oxygen donor ligands. Thorium(IV) also prefers octadentate or higher polydentate ligands.

[0184] [Table 1]

[0185] Other radionuclides with diagnostic and therapeutic value that can be used with the compounds disclosed herein can be found, for example, in U.S. Pat. Nos. 5,482,698 and 5,601,800, and in Boswell and Brechbiel, Nuclear Medicine and Biology, 2007 October, 34(7):757-778 and the manuscript thereof available in PMC on October 1, 2008.

[0186] Purpose The ligands and complexes disclosed herein can be used in a wide variety of therapeutic and diagnostic settings.

[0187] In one aspect, the invention provides a method of treating a disease in an animal, comprising administering to the animal a complex disclosed herein, thereby ameliorating or eliminating the disease.

[0188] In one aspect, the present invention provides a method for diagnosing a disease in an animal, comprising: (a) administering to the animal a complex disclosed herein; and (b) detecting the presence or absence of a signal emitted by the complex. In some embodiments, the detecting step comprises obtaining an image based on the signal.

[0189] In some embodiments, the disease is cancer.

[0190] In some embodiments, the complex comprises a linker to the targeting moiety, and the method further comprises localizing the complex to the targeting site in the animal by binding the targeting moiety to the targeting site.

[0191] The compounds disclosed herein are particularly well suited for preparing stable, pre-labeled antibodies for use in the diagnosis and treatment of cancer and other diseases. For example, antibodies that exhibit affinity for specific tumors or tumor-associated antigens can be labeled with a diagnostic radionuclide-conjugated chelate, and the labeled antibody can be further stabilized by lyophilization. When used, the chelate is generally covalently attached to the antibody. The antibodies used can be polyclonal or monoclonal, and radionuclide-labeled antibodies can be prepared according to methods known in the art. The preparation method depends on the type of radionuclide and antibody used. The stabilized, lyophilized radiolabeled antibodies can be reconstituted with a suitable diluent at the time of intended use, greatly simplifying the on-site preparation process. The methods of the present invention can be applied to stabilize many types of pre-labeled antibodies, including, but not limited to, polyclonal and monoclonal antibodies against tumors associated with melanoma, colon cancer, breast cancer, prostate cancer, and the like. Such antibodies are known in the art and readily available. [Example]

[0192] The compounds and complexes of the present invention are synthesized by an appropriate combination of generally well-known synthetic methods. Techniques useful for synthesizing the compounds of the present invention are readily apparent and accessible to those skilled in the relevant art. The following discussion is provided to illustrate some of the various methods available for assembling the compounds of the present invention, but is not intended to limit the scope of reactions or reaction sequences useful for preparing the compounds of the present invention.

[0193] Example 1. Synthesis of bridged 1,2-HOPO intermediate 8. [ka] Scheme 1. Synthetic scheme for crosslinking 1,2-HOPO intermediate 8. The precursor 2-chloro-6-methylnicotinic acid (1) was purchased from A2Z Chemical (Irvine, CA). Unless otherwise stated, all other solvents and reagents were purchased from commercial sources and used as received. 1 H-NMR and 13 C-NMR spectra were acquired at 300 / 75 MHz, 400 / 100 MHz, or 500 / 125 MHz using a Bruker AV-300, AVB-400, or DRX-500 spectrometer, as indicated below. 1 H (or 13 C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23) and 2.50 (39.51) ppm for CDCl3 and DMSO-d6, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0194] 6-Chloropyridine-2,5-dicarboxylic acid (2). Potassium hydroxide (112 g, 2 mol) was dissolved in water (1.5 L), and then 2-chloro-6-methylnicotinic acid (1, 100 g, 0.583 mol) was dissolved in the basic solution. The reaction was heated to 90 °C with stirring, and then potassium permanganate (316 g, 2 mol) was added in approximately 50 g portions over 6 hours. The reaction was left stirring at 90 °C overnight. The reaction mixture was cooled to room temperature, and the dark suspension was filtered to remove MnO solids. The filter cake was washed with water (3 × 200 mL), and the colorless filtrates were combined and concentrated under vacuum to a total volume of approximately 1.5 L. Concentrated HCl (165.3 mL, 2 mol) was added slowly, liberating a large amount of gas as the crude product precipitated from solution. The crude product was filtered (without additional washings) and dried under a stream of air. The crude product was recrystallized by dissolving it in a solution of potassium hydroxide (44.8 g, 0.800 mol) in water (1 L), followed by the addition of concentrated HCl (66.1 mL, 0.800 mol) in one portion. The product was allowed to slowly crystallize at room temperature for several hours, and then the flask was cooled to 4 °C and placed in the refrigerator overnight. The recrystallized product was isolated by filtration, washed with isopropyl alcohol (4 × 100 mL), and dried under vacuum overnight to give a white, free-flowing solid, 2. Yield: 105.3 g, 89.6%. 1 H NMR(500 MHz,DMSO-d6)δ 13.85(br s,2H),8.34(d,J=7.5 Hz,1H)8.12(d,J=7.5 Hz,1H). 13 C NMR(125 MHz,DMSO-d6)δ 165.8,164.6,150.0,147.7,141.4,131.4,124.1.C7H3 35 HRMS-ESI of ClNO4 (m / z, [M-H] - ) Calculated value: 199.9756, measured value: 199.9750.

[0195] 3,6-Dicarboxy-2-chloropyridine 1-oxide (3). The starting material, 6-chloropyridine-2,5-dicarboxylic acid (2, 103.3 g, 512.5 mmol), was dissolved in trifluoroacetic acid (1.5 L) with stirring and the reaction vessel heated to 80 °C. Once all the starting material was dissolved, a fresh sample of concentrated (34-37% technical grade) HO (207 mL) was added all at once, and the reaction was maintained at 80 °C with relatively slow stirring for 4 h. The reaction was then cooled to room temperature, and the trifluoroacetic acid was removed under vacuum. Cold water was added until a final volume of approximately 500 mL was reached, precipitating the desired product. The product was collected by filtration, washed with cold water (3 × 50 mL), and dried under vacuum to give a dense white crystalline solid, 3. Yield: 98.1 g, 88.0%. 1 H NMR(300 MHz,DMSO-d6)δ 8.21(d,J=7.4 Hz,1H)8.06(d,J=7.4 Hz,1H). 13 C NMR(75 MHz,DMSO-d6)δ 163.6,160.3,140.5,139.9,133.8,130.6,125.9.C7H5 35 HRMS-ESI (m / z, [M+H] + ) Calculated value: 217.9856, measured value: 217.9850.

[0196] 1-Hydroxy-6-oxo-1,6-dihydropyridine-2,5-dicarboxylic acid (4). The starting material, 3,6-dicarboxy-2-chloropyridine 1-oxide (3, 97.8 g, 449.5 mmol), was dissolved in water (1 L) containing potassium hydroxide (300 g, 5.35 mol), and the reaction was heated to 80°C overnight with stirring. The reaction was cooled to room temperature, and then concentrated hydrochloric acid (500 mL, 6.05 mol) was added in small portions to avoid excessive heat generation. The product initially precipitated as a fluffy yellow powder, which became a dense brown solid upon further addition of HCl. The dense, dark brown solid was collected by filtration, washed with cold water (3 x 50 mL), and then dried under vacuum to give 4, a dense, free-flowing brown powder. Yield: 74.8 g, 83.6%. 1H NMR(300 MHz,DMSO-d6)δ 15.35(br s,2H)8.06(d,J=7.5 Hz,1H)7.19(d,J=7.5 Hz,1H). 13 C NMR(75 MHz,D2O-NaOD)δ 175.2,170.3,160.8,148.1,133.3,123.3,102.6.HRMS-ESI of C7H4NO6(m / z, [MH] - ) Calculated value: 198.0044, Measured value: 198.0044.

[0197] Dimethyl 1-hydroxy-6-oxo-1,6-dihydropyridine-2,5-dicarboxylate (5). The starting material, 1-hydroxy-6-oxo-1,6-dihydropyridine-2,5-dicarboxylic acid (4, 74.2 g, 372.6 mmol), was suspended in methanol (800 mL) and trimethylsilyl chloride (200 mL, 171.2 g, 1.576 mol) was added in one portion. The suspension was stirred at room temperature for 3 days. Upon completion of the reaction, the suspension was filtered to remove solid by-products, and the filtrate was evaporated under vacuum to give the desired compound 5 as a hard, solid residue. Yield: 71.2 g, 84.1%. 1 H NMR(300 MHz,DMSO-d6)δ 8.56(d,J=8.4 Hz,1H)7.81(d,J=8.4 Hz,1H),3.99(s,3H),3.92(s,3H). 13 C NMR(75 MHz,DMSO-d6)δ 161.7,157.9,154.9,142.3,135.3,117.9,116.6,54.8,53.8.HRMS-ESI of C9H9NO6(m / z, [M+Na] + ) Calculated value Na: 250.0322, measured value: 250.0320.

[0198] Dimethyl 1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2,5-dicarboxylate (6). The starting material, dimethyl 1-hydroxy-6-oxo-1,6-dihydropyridine-2,5-dicarboxylate (5, 70.70 g, 311.2 mmol), was dissolved in methanol (800 mL) containing benzyl bromide (55.9 g, 326.8 mmol). Tetramethylammonium hydroxide pentahydrate (56.40 g, 311.2 mmol) was separately dissolved in methanol (200 mL) and added dropwise to the first solution with stirring at room temperature. The reaction was stirred overnight at room temperature, and then the solvent was removed under vacuum. Water (500 mL) and dichloromethane (500 mL) were then added to the residue, and the dichloromethane layer was washed with water (3 × 300 mL) to remove tetramethylammonium bromide. The dichloromethane layer was then concentrated and loaded onto a large silica gel column, and the desired product was eluted with dichloromethane. The solvent was removed, and the residue was subjected to high vacuum overnight to remove residual benzyl bromide, yielding the desired product 6 as a hard, off-white solid. Yield: 95.1 g, 96.3%. 1 H NMR(400 MHz,CDCl3)δ 8.07(d,J=7.4 Hz,1H),7.51(dd,J=6.3,2.8 Hz,2H),7.36-7.28(m,3H),6.43(d,J=7.4 Hz,1H),5.36(s,2H),3.88(s,3H),3.83(s,3H). 13 C NMR(100 MHz,CDCl3)δ 164.60,159.96,155.81,142.86,142.55,133.39,130.34,129.43,128.63,124.93,105.19,79.00,53.62,52.76.C 16 H 16 HRMS-ESI of NO6 (m / z, [M+H] + ) Calculated value: 318.0972, measured value: 318.0979.

[0199] Lithium 1-(benzyloxy)-5-(methoxycarbonyl)-6-oxo-1,6-dihydropyridine-2-carboxylate (7). The starting material, dimethyl 1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2,5-dicarboxylate (6, 94.5 g, 297.8 mmol), was dissolved in a minimum amount of dichloromethane, and the resulting solution was concentrated until the residue became very viscous (maple syrup-like). The residue was then dissolved in methanol (1 L) and cooled on an ice bath. Separately, lithium hydroxide monohydrate (12.50 g, 297.8 mmol) was dissolved in water (200 mL), diluted with methanol (600 mL), and allowed to cool to room temperature for 1 h before use. The lithium hydroxide solution was then added dropwise to the cooled methanol solution of the starting material with efficient stirring. Once the addition was complete, the stir bar was removed, and the reaction was allowed to stand at 0 °C for 1 h. The crude product was collected by filtration, washed with methanol (3 x 100 mL), and dried under a stream of air. The crude product was recrystallized several times by heating a stirred suspension of the crude product in a 1:20 water:methanol mixture (500 mL) overnight. After the suspension was cooled to room temperature, the solid was collected the next morning, washed with methanol (3 x 100 mL) as before, and dried under vacuum. Recrystallization was stopped when the product was >99.5% pure by HPLC (measured at 315 nm), yielding a dense white crystalline solid, 7. Yield 65.2 g, 70.8%. 1 H NMR(500 MHz,DMSO-d6)δ 8.04(d,J=7.5 Hz,1H),7.61-7.52(m,2H),7.45-7.34(m,3H),6.02(d,J=7.5 Hz,1H),5.30(s,2H),3.75(s,3H),3.48(s,2H). 13 C NMR(125 MHz,DMSO-d6)δ 165.10,161.30,155.91,155.18,144.52,134.51,129.93,128.88,128.31,115.81,98.72,77.82,51.72.C 15 H 12 HRMS-ESI of NO6 (m / z, [M-Li] - ) Calculated value: 302.0670, measured value: 302.0663.

[0200] 1-(Benzyloxy)-5-(methoxycarbonyl)-6-oxo-1,6-dihydropyridine-2-carboxylic acid (8). The starting material, lithium 1-(benzyloxy)-5-(methoxycarbonyl)-6-oxo-1,6-dihydropyridine-2-carboxylate (7, 10.0 g, 32.3 mmol), was suspended in water (200 mL) with stirring. Concentrated hydrochloric acid (8.26 mL, 100 mmol) was diluted to a final volume of 50 mL and then added dropwise to the stirred suspension. The suspension was stirred at room temperature for 2 hours, and then the solid was collected by filtration, washed with dilute HCl (3 × 50 mL), and dried under vacuum overnight to give 8, a free-flowing white powder. Yield: 9.6 g, 98.0%. 1 H NMR(500 MHz,DMSO-d6)δ 8.10(d,J=7.4 Hz,1H),7.54-7.47(m,2H),7.46-7.39(m,3H),6.60(d,J=7.4 Hz,1H),5.28(s,2H),3.80(s,3H). 13 C NMR(125 MHz,DMSO-d6)δ 164.18,161.24,154.57,144.63,142.96,133.58,129.81,129.29,128.61,123.28,103.50,78.39,52.23.C 15 H 13 HRMS-ESI of NO6 (m / z, [M+Na] + ) Calculated value Na: 326.0635, detected value: 326.0633. Example 2. Crystallographic data and structure of key intermediate 7.

[0201] Single crystals suitable for X-ray diffraction of the key intermediate compound 7 were grown by slow cooling of a heated, concentrated solution of 7 in 1:9 methanol:water. Single-crystal X-ray diffraction data were collected on a Rigaku diffractometer equipped with a Pilatus 200K CCD detector at the University of California, Berkeley Small Molecule X-ray Crystallography Facility. The structure was solved using SIR-97 and refined using SHELX-97. The refined atomic positions are expressed as 50% thermal ellipsoids using mercury (Figure 1). The published data was generated using WinGX. The crystal structure confirms which of the two methyl esters present in compound 6 is selectively hydrolyzed by lithium hydroxide at low temperatures. The crystal data and structure refinement statistics are summarized in the table below.

[0202] [Table 2]

[0203] [Table 3]

[0204] Example 3. Synthesis of exemplary parent ligand 16. [ka] Scheme 2. Synthetic scheme for exemplary parent ligand 16. The precursor 1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2-carboxylic acid (14) was synthesized according to a previously reported method (Xu, J.; Durbin, PW; Kullgren, B.; Ebbe, SN; Uhlir, LC; Raymond, KNJ Med. Chem. 2002, 45, 3963). Unless otherwise stated, all other solvents and reagents were purchased from commercial sources and used as received. 1 H-NMR and 13C-NMR spectra were acquired at 300 / 75 MHz, 400 / 100 MHz, or 500 / 125 MHz using a Bruker AV-300, AVB-400, or DRX-500 spectrometer, as indicated below. 1 H (or 13 C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23), 2.50 (39.51), and 3.31 (49.15) ppm for CDCl3, DMSO-d6, and methanol-d4, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0205] Dimethyl 6,6'-((ethane-1,2-diylbis(azanediyl))bis(carbonyl))bis(1-(benzyloxy)-2-oxo-1,2-dihydropyridine-3-carboxylate) (10). Oxalyl chloride (4.8 g, 37.8 mmol) was added to a suspension of 8 (4.814 g, 15.87 mmol) in dichloromethane (50 mL), followed by two drops of dry N,N-dimethylformamide (DMF). The solution became homogeneous within 30 min, and the reaction was stirred at room temperature for a total of 3 h. The solvent was then removed overnight in vacuo. The residue was dissolved in dichloromethane (20 mL) and added dropwise to a vigorously stirred solution of 9 (372.6 mg, 6.20 mmol) in dichloromethane (20 mL) and 20 mL of aqueous KCO (2.76 g, 20 mmol) at 0 °C. The desired product precipitated within 1 h and was collected by filtration, washed with dichloromethane (3 x 50 mL), washed with water (3 x 50 mL), and dried under vacuum overnight to give a free-flowing white powder 10. Yield 3.7 g, 94.6%. 1 H NMR(500 MHz,DMSO-d6)δ 9.22(s,2H),8.10(d,J=7.3 Hz,2H),7.55-7.34(m,10H),6.44(d,J=7.2 Hz,2H),5.28(s,4H),3.80(s,6H),3.41(s,4H). 13C NMR(125 MHz,DMSO-d6)δ 164.29,159.98,154.52,147.70,143.18,133.66,129.77,129.24,128.58,122.21,102.58,78.80,52.18,38.53.C 32 H 30 N4O 10 HRMS-ESI of Na1 (m / z, [M+Na] + ) Calculated value: 653.1854, measured value: 653.1852.

[0206] 6,6'-((ethane-1,2-diylbis(azanediyl))bis(carbonyl))bis(1-(benzyloxy)-2-oxo-1,2-dihydropyridine-3-carboxylic acid) (11). Potassium hydroxide (1.30 g, 23.2 mmol) was dissolved in water (20 mL) and added to a suspension of 10 (3.65 g, 5.79 mmol) in methanol (100 mL), and the reaction was stirred at room temperature overnight. The next day, water (100 mL) was added, and the suspension dissolved into a homogeneous purple solution. The solvent was removed in vacuo, and the resulting residue was dissolved in water (200 mL). Dilute HCl was added dropwise with stirring until the solution was acidic by litmus test. The desired product was collected by filtration, washed with dilute HCl, and dried under vacuum overnight to give 11 as a white powder. Yield: 3.10 g, 88.9%. 1 H NMR(500 MHz,DMSO-d6)δ 13.55(s,2H),9.23(s,2H),8.33(d,J=7.2 Hz,2H),7.61-7.30(m,10H),6.70(d,J=7.2 Hz,2H),5.35(s,4H),3.44(s,4H). 13 C NMR(125 MHz,DMSO-d6)δ 164.12,159.56,158.67,147.45,143.77,133.30,129.89,129.43,128.66,120.74,105.32,79.54,38.61.C 30 H 25 N4O 10 HRMS-ESI (m / z, [M-H] - ) Calculated value: 601.1576, measured value: 601.1567.

[0207] N,N'-(ethane-1,2-diyl)bis(1-(benzyloxy)-6-oxo-5-(2-thioxothiazolidine-3-carbonyl)-1,6-dihydropyridine-2-carboxamide) (12). Starting material 11 (1.50 g, 2.49 mmol), N-[(dimethylamino)-1H-1,2,3-triazolo-[4,5-b]pyridin-1-ylmethylene]-N-methylmethanaminium hexafluorophosphate N-oxide (HATU, 1.99 g, 5.23 mmol), and 4-dimethylaminopyridine (DMAP, 30.4 mg, 0.249 mmol) were dissolved in dimethylformamide (10 mL). N,N-Diisopropylethylamine (DIPEA, 643.5 mg, 4.979 mmol) was added dropwise to the solution, and the reaction was stirred at room temperature for 1 hour. 2-Mercaptothiazoline (712 mg, 5.97 mmol) was then added to the homogeneous solution, followed by additional DIPEA (1.287 g, 9.96 mmol). The reaction was stirred at room temperature for an additional 20 minutes, and then the reaction mixture was evaporated to dryness under vacuum overnight. The residue was dissolved in dichloromethane and then washed with 3 x 75 mL of water to remove most of the urea by-product, concentrated, and then loaded onto a 6-inch high x 1-inch wide silica gel column. After a 2-propanol / dichloromethane gradient elution, the desired product was collected using 5% 2-propanol in dichloromethane. The solvent was removed under vacuum, and the residue was dissolved in 100 mL of dichloromethane. The organic solution was washed again with 3 x 75 mL of water to remove the last traces of urea by-product, and silica gel chromatography was repeated as above. Removal of the solvent under vacuum afforded the desired compound 12 as a yellow powder. Yield: 1.72 g, 85.8%. 1 H NMR(500 MHz,CDCl3)δ 7.43(s,2H),7.41-7.36(m,6H),7.33-7.27(m,6H),6.30(d,J=7.2 Hz,2H),5.18(s,4H),4.55(t,J=7.3 Hz,4H),3.46-3.37(m,8H). 13C NMR(125 MHz,CDCl3)δ 202.32,165.52,160.34,155.62,144.51,138.98,133.20,130.49,130.38,129.71,128.86,105.70,79.35,55.74,39.79,29.52.C 36 H 32 N6O8 32 HRMS-ESI of S4Na (m / z, [M+Na] + ) Calculated value: 827.1057, measured value: 827.1055.

[0208] Compound 13. Spermine (386.4 mg, 1.910 mmol) was dissolved in 2-propanol (50 mL), and 12 (1.614 g, 2.005 mmol) was dissolved in dichloromethane (50 mL) separately. Using a syringe pump, the two solutions were added dropwise (1 mL / h) over 2 days to a large flask containing 1:1 dichloromethane:2-propanol (1 L). The reaction was stirred at room temperature for an additional day, followed by removal of the solvent under vacuum. The crude residue of compound 13 was used directly in the next reaction without further purification.

[0209] Compound 15. Oxalyl chloride (4.00 g, 31.5 mmol) was added to a suspension of 14 (3.92 g, 16.0 mmol) in dichloromethane (50 mL), followed by two drops of dry dimethylformamide. The solution became homogeneous within 30 min, and the reaction was stirred at room temperature for a total of 3 h. The solvent was then removed overnight under vacuum. The residue was dissolved in dichloromethane (40 mL) and added dropwise to a solution of crude 13 (estimated at 1.469 g, 1.910 mmol) and 20 mL of aqueous KCO (4.42 g, 32 mmol) in dichloromethane (40 mL) at 0 °C with vigorous stirring. The dichloromethane layer was loaded directly onto a 4-inch high x 1-inch wide silica gel column. After a methanol / dichloromethane gradient elution, the desired product was collected using 4% methanol in dichloromethane. The solvent was removed under vacuum, the crude product was redissolved in dichloromethane, and the column chromatography was repeated twice in the same manner. After the last column chromatography step, the solvent was removed once more to give colorless foam 15. Yield over two steps: 1.69 g, 72.3%. 1 H NMR(500MHz,methanol-d4)δ 9.74-9.41(m,2H),8.22-7.94(m,2H),7.62-7.02(m,22H),6.78-5.89(m,6H),5.62-4.91(m,8H),3.77-2.84(m,16H),1.93-0.98(m,10H). C 66 H 66 N 10 O 14 HRMS-ESI of Na (m / z, [M+Na] + ) Calculated value Na: 1245.4652, measured value: 1245.4626.

[0210] Compound 16. Compound 15 (1.63 g, 1.33 mmol) was dissolved in a 1:1 mixture of concentrated HCl and glacial acetic acid (50 mL). The homogeneous solution was kept capped in the dark at room temperature for 30 days. Once the reaction was complete, the solvent was removed under vacuum. Residual solvent was removed by coevaporation with water followed by coevaporation with methanol. A concentrated methanolic solution of the product was added dropwise to diethyl ether to give a beige solid, 16. Purity was assessed by HPLC by first adding a 5-fold molar excess of EuCl3 to a sample dissolved in methanol. Quantitative yield and >95% purity. C 38 H 43 N 10 O 14 HRMS-ESI (m / z, [M+H] + ) Calculated value: 863.2955, measured value: 863.2949.

[0211] Example 4. Crystal structure of [Eu-16][NMe4] salt Single crystals suitable for X-ray diffraction of [Eu-16][NMe4] were grown by vapor diffusion of diethyl ether into a DMF solution containing Eu·16 and tetramethylammonium hydroxide (1.5 molar equivalents). Single-crystal X-ray diffraction data were collected on a Rigaku diffractometer equipped with a Pilatus 200K CCD detector at the University of California, Berkeley Small Molecule X-ray Crystallography Facility. The structure was solved using SIR-97 and refined using SHELX-97. The refined atomic positions are expressed as 50% thermal ellipsoids using mercury (Figure 2). Publications were generated using WinGX. The refinement tool SQUEEZE was used to remove disordered solvent electron density from the .hkl file used for the final refinement. The crystal structure confirms that the predicted Eu·16 structure and the orientation of the bridging 1,2-HOPO units are consistent with the crystal structure determined for key intermediate 7 (Example 2). The crystallographic data and structure refinement statistics are summarized in the table below.

[0212] [Table 4]

[0213] [Table 5-1]

[0214] [Table 5-2]

[0215] [Table 5-3]

[0216] Example 5. Synthesis of exemplary scaffold amine 23. [ka] Scheme 3. Synthetic scheme for exemplary scaffold amine 23. Precursor (S)-2-(((benzyloxy)carbonyl)amino)-6-((tert-butoxycarbonyl)amino)hexanoic acid (17,N α -ZN ε -Boc-L-lysine) was purchased from Chem-Impex (Wood Dale, IL). Unless otherwise noted, all other solvents and reagents were purchased from commercial sources and used as received. 1 H-NMR and 13 C-NMR spectra were acquired at 300 / 75 MHz, 400 / 100 MHz, or 500 / 125 MHz using a Bruker AV-300, AVB-400, or DRX-500 spectrometer, as indicated below. 1 H (or 13 C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23), 2.50 (39.51), and 3.31 (49.15) ppm for CDCl3, DMSO-d6, and methanol-d4, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0217] (S)-Benzyl tert-butyl(6-hydroxyhexane-1,5-diyl)dicarbamate (18). The reagent 1,1'-carbonyldiimidazole (CDI, 5.1 g, 31.5 mmol) was dissolved in THF (70 mL) to prepare the starting material (S)-2-(((benzyloxy)carbonyl)amino)-6-((tert-butoxycarbonyl)amino)hexanoic acid (17, N α -ZN ε The mixture was added to a stirred solution of 11.4 g (30 mmol) of 1H-Boc-L-lysine at room temperature. After 20 min, the THF solution was slowly transferred via a Teflon cannula (φ = 2 mm) to a stirred solution of sodium borohydride (2.25 g, 60 mmol) dissolved in water (10 mL) in a 1 L round-bottom flask immersed in a water bath at 5-10 °C. The addition produced vigorous evolution of hydrogen gas, and the mixture was stirred for 3 h. The volatiles were then removed on a rotary evaporator, and the residue was dissolved in ethyl acetate (150 mL). The ethyl acetate solution was extracted successively with cold 1 N HCl (2 × 50 mL), saturated sodium bicarbonate solution (2 × 50 mL), and brine (100 mL). The washed ethyl acetate solution was dried over anhydrous sodium sulfate, and the dried ethyl acetate solution was then passed through a 1-inch silica gel column eluting with ethyl acetate. The solvent was removed under vacuum to give a colorless solid, 18. Yield 9.9g, 90%. TLC R f =0.24(95:5:2 EtOAc:MeOH:H2O). 1 H NMR(500 MHz,CDCl3)δ 7.40-7.22(m,5H),5.15(s,1H),5.06(s,2H),4.62(s,1H),3.72-3.49(m,3H),3.18-2.97(m,2H),1.64-1.52(m,1H),1.52-1.21(m,15H). 13 C NMR(125 MHz,CDCl3)δ 156.7,156.4,136.4,128.5,128.1,128.0,79.2,66.7,64.8,52.9,39.7,29.8,28.4,22.6.

[0218] (S)-2-(((benzyloxy)carbonyl)amino)-6-((tert-butoxycarbonyl)amino)hexyl methanesulfonate (19). The starting material (S)-benzyl tert-butyl(6-hydroxyhexane-1,5-diyl)dicarbamate (18, 9.9 g, 27 mmol), triethylamine (7.1 g mL, 70 mmol), and a catalytic amount of DMAP (100 mg, 0.819 mmol) were dissolved in dichloromethane (350 mL) at 0 °C. Freshly distilled methanesulfonyl chloride (MsCl, 4.0 g, 35 mmol) dissolved in DCM (50 mL) was then added dropwise to the starting material solution over 30 min. After the addition of MsCl was complete, the reaction mixture was allowed to warm to room temperature and stirred under N for 2 h. The reaction mixture was cooled again to 0 °C, and excess reagent was quenched by adding 5% KHSO solution until the aqueous phase had a pH of 3–4. The dichloromethane phase was washed successively with HO (100 mL) and brine (3 × 100 mL). The organic portion was dried over NaSO, filtered, and concentrated under reduced pressure to give a pink solid 19 in 10.8 g, 90% yield. 1 H NMR(300 MHz,CDCl3)δ 7.43-7.25(m,5H),5.57-5.42(m,1H),5.18-5.03(m,2H),4.88-4.71(m,1H),4.29-4.08(m,2H) ),3.99-3.77(m,1H),3.18-3.00(m,2H),2.95(s,3H),1.64-1.51(m,2H),1.50-1.23(m,13H). 13 C NMR(75 MHz,CDCl3)δ 162.33,156.18,136.35,128.50,128.15,128.08,79.02,70.92,66.74,50.19,39.90,37.12,30.35,29.61,28.38,22.70.

[0219] (S)-Benzyl tert-butyl(6-azidohexane-1,5-diyl)dicarbamate (20). The starting material, 1-(S)-2-(((benzyloxy)carbonyl)amino)-6-((tert-butoxycarbonyl)amino)hexyl methanesulfonate (19, 10.7 g, 24 mmol), was dissolved in DMF (100 mL), followed by the addition of solid sodium azide (2.40 g, 36.9 mmol). The suspension was heated to 70 °C and stirred overnight under N. The reaction mixture was concentrated under reduced pressure to give a sticky white foam, which was dissolved in 250 mL of ethyl acetate and washed successively with HO (3 × 100 mL) and brine (1 × 100 mL). The organic fraction was dried over NaSO, filtered, and concentrated under reduced pressure to give a colorless crude syrup. The syrup was loaded onto a silica gel column and eluted with 25-50% ethyl acetate / hexane, then concentrated under vacuum to give a colorless syrup 20. Yield 8.9 g, 95%. 1 H NMR(300 MHz,CDCl3)δ 7.46-7.26(m,5H),5.26-5.03(m,3H),4.70(s,1H),3.77(s,1H),3.50-3.25(m,2H),3.10(s,2H),1.61-1.25(m,15H). 13 C NMR(75 MHz,CDCl3)δ 156.24,156.11,136.44,128.60,128.23,128.16,79.21,66.87,54.78,50.88,40.07,31.72,29.82,28.48,22.95.

[0220] (S)-Benzyl tert-butyl(6-aminohexane-1,5-diyl)dicarbamate (21). The azide group of the (S)-benzyl tert-butyl(6-azidohexane-1,5-diyl)dicarbamate (20) starting material was selectively reduced to the primary amine by catalytic hydrogenation using a poisonous 5% Pd / C catalyst. The CBZ protecting group was unaffected under these conditions. To prepare the poisonous 5% Pd / C catalyst, the Pd / C catalyst was suspended in methanol containing 2-mercaptothioazoline (20 wt%), and the mixture was stirred at room temperature for 10 min. The solvent was filtered off, and the catalyst bed was thoroughly washed with methanol and used directly in the selective hydrogenation. A solution of starting material 20 (8.9 g, 22.7 mmol) in methanol (40 mL) was added to an appropriately sized glass vessel, followed by the addition of 1 g of the poisonous 5% Pd / C catalyst. The vessel was placed in a Parr bomb, H (500 psi) was added, and the solution was stirred under high pressure at room temperature overnight. After depressurizing the bomb and removing the reaction vessel, TLC analysis indicated that no starting material remained, and a litmus test indicated that the solution was strongly basic. The solvent was removed in vacuo to give 21 as a thick, colorless oil. The crude yield was quantitative. 1 H NMR(300 MHz,CDCl3)δ 7.41-7.26(m,5H),5.47(d,J=8.7 Hz,1H),5.10(s,2H),5.03-4.87(m,1H),3.65-3.51(m,1H),3.17-2.95(m,2H),2.76(dd,J=13.0,4.2 Hz,1H),2.64(dd,J=13.0,6.5 Hz,1H),1.60-1.16(m,17H). 13 C NMR(75 MHz,CDCl3)δ 156.66,156.14,136.62,128.46,128.02,128.01,78.89,66.50,53.47,45.83,40.09,32.10,29.77,28.41,23.02.

[0221] (S)-Dibenzyl tert-butylhexane-1,2,6-triyltricarbamate (22). The starting material (S)-benzyl tert-butyl(6-aminohexane-1,5-diyl)dicarbamate (21, 8.2 g, 22.5 mmol) was suspended in dichloromethane (100 mL) and added KCO. 3の An aqueous solution (4 M, 50 mL) was added. The biphasic suspension was stirred vigorously at 0° C., and then a solution of benzyl chloroformate (CBZCl, 5.80 g, 34 mmol) dissolved in dry DCM (50 mL) was added dropwise over 1 h. The reaction mixture was stirred overnight while warming to room temperature, resulting in the precipitation of a fluffy white solid. The reaction mixture was filtered, and the solid was washed with methanol to give the first batch of product. The organic phase was then separated, the solvent evaporated to dryness, and the residue was treated with methanol. The methanol treatment resulted in the precipitation of more of the desired product, which was collected by filtration and washed with methanol to give the second batch of product. The combined first and second batches of product were dried under vacuum to give a white solid, 22. Yield 9.9 g, 87%. 1 H NMR(300 MHz,CDCl3)δ 7.42-7.19(m,10H),5.30(d,J=8.5 Hz,1H),5.06(d,J=2.4 Hz,4H),4.60(s,1H),3.67(s,1H),3.38-3.25(m,1H),3.26-3.13(m,1H),3.13-2.96(m,2H),1.79(s,1H),1.59-1.21(m,15H). 13 C NMR(75 MHz,CDCl3)δ 157.26,156.80,156.40,136.65,136.63,128.69,128.69,128.29,128.29,128.25 ,128.25,79.40,66.98,66.94,51.99,45.21,40.06,32.05,30.00,28.59,22.89.C 27 H 37 HRMS-ESI of N3O6Na(m / z, [M+Na] + ) Calculated value Na: 522.2575, measured value: 522.2565.

[0222] (S)-Tert-butyl(5,6-diaminohexyl)carbamate (23). In an appropriately sized glass vessel, the starting material (S)-dibenzyl tert-butylhexane-1,2,6-triyl tricarbamate (22, 2.5 g, 5 mmol) was dissolved in a 1:1 mixture of methanol and acetic acid (40 mL) and 5% Pd / C (300 mg) was added. The reaction vessel was placed in a Parr bomb, which was pressurized with H (500 psi). The pressurized reaction was stirred overnight at room temperature with a large egg-shaped stir bar. TLC confirmed the reaction was complete, indicating no starting material remained. The solvent was removed under vacuum to give the crude acetate salt as a clear, colorless, viscous oil. The oil was dissolved in a small amount of water, and the crude product was subjected to ion exchange chromatography to give the free amine product 23 as a colorless oil that solidified upon cooling. Yield: 0.95 g, 82%. 1 H NMR(300 MHz,CDCl3)δ 5.19-4.75(m,1H),3.00-2.76(m,2H),2.63-2.35(m,2H),2.30-2.13(m,1H),1.52-0.91(m,19H). 13 C NMR(75 MHz,CDCl3)δ 155.97,78.62,53.34,48.40,40.15,35.06,30.02,28.28,23.20.C 11 H 26 HRMS-ESI of NO (m / z, [M+H] + ) Calculated value: 232.2025, measured value: 232.2019.

[0223] Example 6. Synthesis of exemplary bifunctional chelator 29. [ka] Scheme 4. Synthesis of exemplary bifunctional chelator 29. 1 H-NMR and 13 C-NMR spectra were acquired at 300 / 75 MHz, 400 / 100 MHz, or 500 / 125 MHz using a Bruker AV-300, AVB-400, or DRX-500 spectrometer, as indicated below. 1 H (or13 C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23), 2.50 (39.51), and 3.31 (49.15) ppm for CDCl3, DMSO-d6, and methanol-d4, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0224] Compound 24. Oxalyl chloride (1.00 g, 7.88 mmol) was added to a suspension of 8 (910 mg, 3.00 mmol) in dichloromethane (15 mL), followed by one drop of dry dimethylformamide. The solution became homogeneous within 30 min, and the reaction was stirred at room temperature for a total of 3 h. The solvent was then removed under vacuum overnight. The residue was dissolved in dichloromethane (50 mL) and added dropwise to a solution of 23 (0.23 g, 1.0 mmol) and aqueous KCO (4 M, 30 mL) dissolved in dichloromethane (40 mL) with vigorous stirring at 0 °C. The dichloromethane layer was loaded directly onto a 4-inch high x 1-inch wide silica gel column. After a methanol / dichloromethane gradient elution, the desired product was collected using 3–4% methanol in dichloromethane. The solvent was removed under vacuum to give the colorless foam 24. Yield: 720 mg, 90%. 1 H NMR(300 MHz,CDCl3)δ 8.17-8.07(m,1H),7.98(d,J=8.7 Hz,1H),7.76(d,J=7.4 Hz,1H),7.67(d,J=7.4 Hz,1H),7.40-7.11(m,10H),6.13(d,J=7.4 Hz,1H),6.03(d,J=7.4 Hz,1H),5.31-5.00(m,5H),4.31-4.08(m,1H),3.77-3.57(m,7H),3.48-3.28(m,1H),2.90-2.72(m,2H),1.69-1.05(m,15H). 13C NMR (75 MHz, CDCl3) δ 164.43,164.26,162.40,160.37,159.75,156.04,155.79,155.73,14 8.18,147.95,143.29,133.30,133.26,130.06,130.03,129.32,129. 24,128.53,128.48,121.32,103.21,103.10,79.63,79.54,79.15,78 .87,52.65,52.54,50.40,42.86,40.20,31.05,29.38,28.46,22.94.C 41 H 47 N5O 12 HRMS-ESI of Na (m / z, [M+Na] + ) Calculated value Na: 824.3119, measured value: 824.3098.

[0225] Compound 25. Lithium hydroxide monohydrate (147 mg, 3.5 mmol) was dissolved in water (12 mL) and then added all at once to a suspension of 24 (1.00 g, 1.25 mmol) in methanol (12 mL). The reaction was stirred overnight at room temperature. The solvent was then removed under vacuum, and the residue was dissolved in water (25 mL). The solution was adjusted to pH 5-6 with 2N HCl, and then 5% KHSO4 solution was added until the pH dropped to 3-4, causing the product to precipitate. The precipitate was washed with a small amount of cold water and dried under vacuum overnight to give 25, a white powder. The product was used directly in the next reaction without further purification. 1 H NMR(300 MHz,CDCl3)δ 8.35-7.70(m,4H),7.64-7.21(m,10H),6.77-6.32(m,2H),5.60-5.22(m,4H),4.6 9(s,1H),4.32(s,1H),4.00-3.44(m,2H),3.18-2.59(m,2H),1.79-1.10(m,15H). 13C NMR(75 MHz,CDCl3)δ 171.27,164.97,164.89,160.50,159.75,159.40,156.25,147.88,147.53,144.18,144.08,132.68,132.63,130.49,130.41 ,129.86,129.78,128.74,119.64,119.49,106.33,106.00,80.72,80.61,79.16,50.55,39.78,30.89,29.45,28.40,22.73.C 39 H 43 N5O 12 HRMS-ESI of Na (m / z, [M+Na] + ) Calculated value Na: 796.2800, measured value: 796.2803.

[0226] Compound 26. The entire batch of compound 25 (estimated at 965 mg, 1.25 mmol) was dissolved in DMF (10 mL) and HATU (1.20 g, 3.15 mmol) and DIPEA (390 mg, 3.00 mmol) were added sequentially. The solution was stirred at room temperature for 15 minutes, and then 2-mercaptothiazoline (352 mg, 3.00 mmol) and DIPEA (390 mg, 3.00 mmol) were added sequentially. The reaction mixture was stirred at room temperature overnight, and then the reaction was evaporated to dryness and dissolved in dichloromethane (50 mL). The dichloromethane solution was washed with 5% KHSO (1 × 50 mL), brine (3 × 40 mL), and loaded onto a 4-inch high × 1-inch wide silica gel column. After 2-propanol / dichloromethane gradient elution, the desired product was collected using 5% 2-propanol in dichloromethane. The solvent was removed in vacuo to give a yellow foam 26. Yield over two steps: 0.70 g, 57%. 1 H NMR(300 MHz,CDCl3)δ 7.60(s,1H),7.52-7.14(m,13H),6.38-6.11(m,2H),5.36-5.07(m,4H),4.54(t,J=7.1 Hz,5H),4.10(s,1H),3.62-3.21(m,6H),3.01-2.72(m,2H),1.41(s,11H),1.22(s,4H). 13C NMR(75 MHz,CDCl3)δ 202.12,165.56,165.50,160.60,160.16,156.21,155.53,145.14,144.92,138.87,133.45,130.11,130.05 ,129.44,128.69,105.17,104.84,79.16,55.67,50.60,43.26,39.93,31.18,29.61,29.46,28.53,22.86.C 45 H 49 N7O 10 HRMS-ESI of S4Na (m / z, [M+Na] + ) Calculated value: 998.2322, measured value: 998.2319.

[0227] Compound 27. The same procedure as used for compound 13 was followed, using 26 (747.7 mg, 0.766 mmol) and spermine (147.6 mg, 0.7294 mmol) as starting materials. Similarly, the residue was used directly in the next reaction without further purification.

[0228] Compound 28. The same procedure as used for compound 15 was followed, using 27 (estimated 685.7 mg, 0.7294 mmol) and 14 (1.43 g, 5.84 mmol) as starting materials. Yield over two steps: 653 mg, 64.2%. 1 H NMR(500MHz,methanol-d4)δ 9.72-9.43(m,2H),8.31-7.81(m,2H),7.65-7.07(m,24H),6.83-5.90(m,6H), 5.67-4.91(m,8H),4.31-4.07(m,1H)3.91-2.80(m,16H),1.97-1.04(m,24H). C 75 H 83 N 11 O 16 HRMS-ESI of Na (m / z, [M+Na] + ) Calculated value Na: 1416.5911, measured value: 1416.5937.

[0229] Compound 29. The same procedure as used for compound 16 was followed, using 28 (600 mg, 0.430 mmol) as the starting material. Quantitative yield and purity greater than 95%. 42 H 52 N 11 O 14 HRMS-ESI (m / z, [M+H] + ) Calculated value: 934.3690, measured value: 934.3701.

[0230] Example 7. Synthesis of exemplary bifunctional chelator 33. [ka] Scheme 5. Synthetic scheme for exemplary bifunctional chelator 33. The precursor tert-butyl (2-(2-(2,5-bis((3-aminopropyl)amino)pentanamido)ethoxy)ethyl)carbamate (30) was synthesized according to a previously reported method (WO2016 / 106241). Unless otherwise stated, all other solvents and reagents were purchased from commercial sources and used as received. 1 H-NMR and 13 C-NMR spectra were acquired at 300 / 75 MHz, 400 / 100 MHz, or 500 / 125 MHz using a Bruker AV-300, AVB-400, or DRX-500 spectrometer, as indicated below. 1 H (or 13 C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23), 2.50 (39.51), and 3.31 (49.15) ppm for CDCl3, DMSO-d6, and methanol-d4, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0231] Compound 31. The same procedure as used for compound 13 was followed, using 12 (916.8 g, 1.139 mmol) and 30 (469.3 mg, 1.085 mmol) as starting materials. Similarly, the residue was used directly in the next reaction without further purification.

[0232] Compound 32. The same procedure as used for compound 15 was followed, using 31 (estimated 1.084 g, 1.085 mmol) and 14 (2.29 g, 8.68 mmol) as starting materials. Yield over two steps: 834 mg, 52.9%. 1 H NMR(500MHz,methanol-d4)δ 10.03-9.32(m,2H),8.32-7.81(m,2H),7.81-6.95(m,24H),6.85-5.85(m,6H),5.69-4.56(m,8H),4.14-2.61(m,24H),2.23-1.02(m,18H). C 76 H 84 N 12 O 18 HRMS-ESI of Na (m / z, [M+Na] + ) Calculated value Na: 1475.5919, measured value: 1475.5925.

[0233] Compound 33. The same procedure as used for compound 16 was followed, using 32 (750 mg, 0.516 mmol) as the starting material. Quantitative yield and purity greater than 95%. 43 H 51 N 12 O 16 HRMS-ESI (m / z, [M-H] - ) Calculated value: 991.3551, measured value: 991.3510.

[0234] Example 8. Synthesis of exemplary parent ligand 40. [ka] Scheme 6. Synthetic scheme for exemplary parent ligand 40. General method. The precursors (3R,4S)-tetrahydrofuran-3,4-diamine (34) and 1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2-carboxylic acid (14) were synthesized as previously reported (Zhang, Z.; Du, X.; Chopiuk, G. Heteropolycyclic Inhibitors. WO 0202562 (A2), January 10, 2002; Xu, J.; Durbin, P.W.; Kullgren, B.; Ebbe, S.N.; Uhlir, L.C.; Raymond, K.N.J. Med. Chem. 2002, 45, 3963). Unless otherwise noted, all other solvents and reagents were purchased from commercial sources and used as received. 1 H-NMR and 13 C-NMR spectra were obtained at 600 / 150 MHz or 500 / 125 MHz using either a Bruker AV-600 or DRX-500 spectrometer, as described below. 1 H (or 13 C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23) and 2.50 (39.51) ppm for CDCl3 and DMSO-d6, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0235] Dimethyl 6,6'-((((3R,4S)-tetrahydrofuran-3,4-diyl)bis(azanediyl))bis(carbonyl))bis(1-(benzyloxy)-2-oxo-1,2-dihydropyridine-3-carboxylate) (35). Oxalyl chloride (4.10 g, 32.3 mmol) was added to a suspension of 8 (4.10 g, 13.5 mmol) in dichloromethane (40 mL), followed by two drops of dry DMF. The solution became homogeneous within 30 min, and the reaction was stirred at room temperature for a total of 3 h. The solvent was then removed in vacuo overnight. The residue was dissolved in dichloromethane (20 mL) and added dropwise to a vigorously stirred solution of 34 (580 mg, 5.7 mmol) in dichloromethane (20 mL) and 40% KCO (20 mL) at 0 °C. The reaction was stirred overnight while warming to room temperature. The dichloromethane layer was loaded directly onto a 4-inch high x 1-inch wide silica gel column. After a methanol / dichloromethane gradient elution, the desired product was collected using 2.5% methanol in dichloromethane. The solvent was removed under vacuum to give the desired product as a hard glass. Recrystallization from methanol, followed by filtration and washing with 2-propanol, gave 35 as a free-flowing white powder. Yield: 3.2 g, 83%. 1 H NMR(600 MHz,CDCl3)δ 8.16(s,2H),7.73(d,J=7.3 Hz,2H),7.36-7.29(m,6H),7.28-7.23(m,4H),6.07(d,J=7.2 Hz,2H),5.22(d,J=8.2 Hz,2H),5.02(d,J=7.8 Hz,2H),4.95-4.85(m,2H),4.09(dd,J=9.0,6.3 Hz,2H),3.73(dd,J=8.5,4.2 Hz,2H),3.67(s,6H). 13 C NMR(150 MHz,CDCl3)δ 164.03,160.01,155.80,147.39,143.25,132.88,130.30,129.42,128.54,121.43,103.67,79.80,71.22,52.43,51.13.C 34 H 33 N4O 11 HRMS-ESI (m / z, [M+H] +) Calculated value: 673.2140, measured value: 673.2148.

[0236] 6,6'-((((3R,4S)-tetrahydrofuran-3,4-diyl)bis(azanediyl))bis(carbonyl))bis(1-(benzyloxy)-2-oxo-1,2-dihydropyridine-3-carboxylic acid) (36). Potassium hydroxide (934 mg, 16.6 mmol) was added to a suspension of 35 (2.80 g, 4.16 mmol) in 2:2:1 THF:MeOH:water (50 mL), and the reaction was heated to 50 °C with stirring overnight. The solvent was removed in vacuo, and the resulting residue was dissolved in water (250 mL). Dilute HCl was added dropwise with stirring until the solution was acidic by litmus test. The desired product was collected by filtration, washed with dilute HCl, and dried under vacuum overnight to give 36 as a white powder. Yield: 2.3 g, 86%. 1 H NMR(600 MHz,DMSO-d6)δ 13.53(s,2H),9.19(d,J=7.0 Hz,2H),8.28(d,J=7.4 Hz,2H),7.53-7.47(m,4H),7.47-7.39(m,6H),6.59(d,J=7.4 Hz,2H),5.37(d,J=8.6 Hz,2H),5.27(d,J=8.6 Hz,2H),4.80-4.70(m,2H),3.99(dd,J=8.8,6.3 Hz,2H),3.60(dd,J=9.0,4.8 Hz,2H). 13 C NMR(150 MHz,DMSO-d6)δ 163.98,159.36,158.61,147.09,143.63,133.23,129.73,129.31,128.55,120.56,105.44,79.52,69.53,51.29.C 32 H 27 N4O 11 HRMS-ESI (m / z, [M-H] - ) Calculated value: 643.1682, measured value: 643.1684.

[0237] N,N'-((3R,4S)-tetrahydrofuran-3,4-diyl)bis(1-(benzyloxy)-6-oxo-5-(2-thioxothiazolidine-3-carbonyl)-1,6-dihydropyridine-2-carboxamide) (37). HATU (2.40 g, 6.3 mmol), 36 (1.93 g, 3.00 mmol), and DMAP (73.3 mg, 0.6 mmol) were suspended in dichloromethane (75 mL). DIPEA (776 mg, 6 mmol) was added dropwise to the suspension, and the reaction was stirred at room temperature for 2 h. Upon completion, 2-mercaptothiazoline (894 mg, 7.5 mmol) was added to the homogeneous solution, followed by DIPEA (1.5 g, 11.6 mmol). The reaction was stirred at room temperature for an additional 1.5 h. The reaction mixture was then washed 3×75 mL with water to remove most of the urea by-product, concentrated, and then loaded onto a 6-inch high×1-inch wide silica gel column. After a 2-propanol / dichloromethane gradient elution, the desired product was collected using 5% 2-propanol in dichloromethane. The solvent was removed under vacuum, and the residue was dissolved in 100 mL of dichloromethane. The organic solution was washed again with 3×75 mL of water to remove the last traces of urea by-product, and the organic solution was concentrated to a volume of 10 mL. Addition of 2-propanol caused precipitation of the desired product, which was collected by evaporation of the solvent to give a yellow powder, 37. Yield: 1.83 g, 72%. 1 H NMR(500 MHz,CDCl3)δ 7.57(d,J=5.0 Hz,2H),7.44-7.37(m,4H),7.37-7.28(m,6H),7.25(d,J=7.0 Hz,2H),6.20(d,J=7.0 Hz,2H),5.26(d,J=8.7 Hz,2H),5.08(d,J=8.7 Hz,2H),4.79-4.68(m,2H),4.57-4.41(m,4H),3.98(dd,J=9.1,6.0 Hz,2H),3.62(dd,J=9.2,3.8 Hz,2H),3.49-3.33(m,4H). 13C NMR(125 MHz,CDCl3)δ 202.05,165.47,159.87,155.36,144.03,138.67,132.91,130.27,130.07,129.61,128.70,105.73,79.43,70.99,55.60,51.75,29.38.C 38 H 35 N6O9 32 HRMS-ESI (m / z, [M+H] + ) Calculated value: 847.1343, measured value: 847.1338.

[0238] Compound 38. Spermine (229 mg, 1.13 mmol) was dissolved in 2-propanol (50 mL), and 37 (957 mg, 1.13 mmol) was dissolved in dichloromethane (50 mL) separately. Using a syringe pump, the two solutions were added dropwise (0.5 mL / h) over 4 days to a large flask containing 1:1 dichloromethane:2-propanol (1 L). The reaction was stirred at room temperature for an additional day, followed by removal of the solvent under vacuum. The residue was dissolved in dichloromethane (200 mL) and extracted with aqueous potassium hydroxide to remove the 2-mercaptothiazoline by-product. Removal of the solvent afforded the desired product as a viscous oil 38, which was used in the next reaction without further purification. 1 H NMR(600 MHz,CDCl3)δ 9.60(s,2H),8.08(s,2H),7.64-7.11(m,12H),6.05(s,2H),5.35-5.08(m,4H),4.81(s, 2H),4.09(s,2H),3.85(s,2H),3.69-3.22(m,4H),2.96-2.37(m,8H),1.97-1.39(m,8H). 13 C NMR(150 MHz,CDCl3)δ 162.97,160.18,158.11,144.85,141.33,132.93,130.44,129.73,128.73, 123.83,104.66,79.89,71.46,51.59,49.65,47.25,37.26,29.53,27.30.C 42 H 51 HRMS-ESI (m / z, [M+H] +) Calculated value: 811.3774, measured value: 811.3768.

[0239] Compound 39. Oxalyl chloride (1.1 g, 8.7 mmol) was added to a suspension of 14 (1.11 g, 4.52 mmol) in dichloromethane (40 mL), followed by one drop of dry DMF. The solution became homogeneous within 30 minutes, and the reaction was stirred at room temperature for a total of 3 hours. The solvent was then removed under vacuum overnight. The residue was dissolved in dichloromethane (20 mL) and added dropwise to a solution of 38 (1.13 mmol) in dichloromethane (20 mL) and 40% K2CO3 (20 mL) with vigorous stirring at 0 °C. The reaction was stirred overnight while warming to room temperature. The dichloromethane layer was loaded directly onto a 4-inch high x 1-inch wide silica gel column. After a methanol / dichloromethane gradient elution, the desired product was collected using 4% methanol in dichloromethane. The solvent was removed under vacuum to give the desired product 39 as a hard glass. Yield over two steps: 520 mg, 36%. 1 H NMR(600 MHz,CDCl3)δ 9.60-8.98(m,2H),8.43-7.83(m,4H),7.80-7.05(m,20H),7.05-5.54(m,8H),5.49-4.98 (m,6H),4.98-4.69(m,2H),4.28-3.98(m,2H),3.93-2.75(m,14H),2.05-1.16(m,10H).C 68 H 69 N 10 O 15 HRMS-ESI (m / z, [M+H] + ) Calculated value: 1265.4938, measured value: 1265.4901.

[0240] Compound 40. Compound 39 (63 mg, 0.070 mmol) was dissolved in a 1:1 mixture of concentrated HCl and glacial acetic acid (5 mL). The homogeneous solution was stirred in the dark at room temperature for 3 weeks. Upon completion of the reaction, the solvent was removed under vacuum. Residual solvent was removed by coevaporation with water, followed by methanol, and finally diethyl ether to give a beige solid, 40. Purity was assessed by HPLC by first adding a 5-fold molar excess of EuCl3 to a sample dissolved in methanol. Quantitative yield and greater than 95% purity. 1 H NMR(500 MHz,DMSO-d6)δ 9.82-9.33(m,2H),9.07-7.94(m,4H),7.52-7.15(m,2H),6.86-6.44(m,4H),6.40 -6.05(m,2H),4.74(s,2H),4.03(s,2H),3.86-2.76(m,14H),1.97-1.17(m,8H).C 40 H 45 N 10 O 15 HRMS-ESI (m / z, [M+H] + ) Calculated value: 905.3060, measured value: 905.3053.

[0241] Example 9. Synthesis of exemplary bifunctional chelator 43. [ka] Scheme 7. Synthesis of exemplary bifunctional chelator 43. The precursor tert-butyl (2-(2-(2,5-bis((3-aminopropyl)amino)pentanamido)ethoxy)ethyl)carbamate (30) was synthesized according to a previously reported method (WO2016 / 106241). Unless otherwise stated, all other solvents and reagents were purchased from commercial sources and used as received. 1 H-NMR and 13 C-NMR spectra were obtained at 600 / 150 MHz or 500 / 125 MHz using either a Bruker AV-600 or DRX-500 spectrometer, as described below. 1 H (or 13C) Chemical shifts are reported relative to the residual solvent signal and were obtained as 7.24 (77.23) and 2.50 (39.51) ppm for CDCl3 and DMSO-d6, respectively. High-resolution electrospray ionization mass spectra (HRMS-ESI) were performed by the Microanalytical Laboratory at the University of California, Berkeley.

[0242] Compound 41. The same procedure as used for compound 38 was followed, using 37 (1.30 g, 1.54 mmol) and 30 (668 mg, 1.54 mmol) as starting materials. Similarly, the residue was used, washed with base, and used in the next reaction without further purification. 1 H NMR(500 MHz,CDCl3)δ C 52 H 69 N 10 O 13 HRMS-ESI (m / z, [M+H] + ) Calculated value: 1041.5040, measured value: 1041.5031.

[0243] Compound 42. Following the same procedure as used for compound 39, 41 (1.54 mmol) and 14 (1.51 g, 6.16 mmol) were used as starting materials. Yield over two steps: 1.08 g, 47%. 1 C 78 H 86 N 12 O 19 HRMS-ESI of Na (m / z, [M+Na] + ) Calculated value Na: 1517.6024, measured value: 1517.6063.

[0244] Compound 43. The same procedure as used for compound 40 was followed, using 42 (92 mg, 0.062 mmol) as the starting material. Quantitative yield and purity greater than 95%. 1 H NMR(500 MHz,DMSO-d6)δ 9.79-9.26(m,2H),8.85-7.79(m,5H),7.61-7.19(m,2H),6.75-6.40(m,4H),6.37 -6.02(m,2H),4.74(s,2H),4.04(s,2H),3.75-2.85(m,21H),1.94-1.29(m,8H).C 45 H 53 N 12 O 17 HRMS-ESI (m / z, [M-H] - ) Calculated value: 1033.3657, measured value: 1033.3646.

[0245] Example 10. Characterization of metal complexes of ligands 16, 29, 33, 40, and 43 Metal complexes of compounds 16, 29, 33, 40, and 43 can be readily prepared by treatment with the appropriate metal salt dissolved in methanol, as described below. Stock solutions were prepared by dissolving compounds 16, 29, 33, 40, or 43 (approximately 2 mg, 1 μmol) in methanol (1 mL) and then dividing the solution into several aliquots. Stock solutions of metal salts were prepared in methanol (1 mL) at concentrations ranging from 5 to 20 mM. For each metal salt, a volume equivalent to 1.5 molar equivalents was added to one of the aliquots containing 16, 29, 33, 40, or 43. The solvent was removed by evaporation in a stream of compressed air, and the samples were analyzed by mass spectrometry in methanol or 1:10 DMSO:methanol; the results are reported below. Metal salts tested include zirconium(IV) acetylacetonate, iron(III) nitrate nonahydrate, indium(III) chloride tetrahydrate, europium(III) chloride hexahydrate, holmium(III) chloride hexahydrate, lutetium(III) chloride hexahydrate, lanthanum(III) chloride heptahydrate, scandium(III) chloride hexahydrate, yttrium(III) chloride hexahydrate, terbium(III) chloride hexahydrate, ytterbium trifluoromethanesulfonate, gadolinium(III) chloride hexahydrate, samarium(III) chloride hexahydrate, dysprosium(III) chloride hexahydrate, erbium(III) chloride hexahydrate, and thorium(IV) nitrate hydrate (99.8%).

[0246] C 38 H 37 N 10 O 14 90 Zr[MH] - 16·Zr:FTMS-pESI calculated value 947.1543, measured value 947.1514.

[0247] C 38 H 38 N 10 O 14 45 Sc[M] - 16·Sc:FTMS-pESI calculated value 903.2134, observed value 903.2111.

[0248] C 38 H 38 N 10 O 14 139 La[M] - 16·La:FTMS-pESI calculated value 997.1638, observed value 997.1617.

[0249] C 38 H 38 N 10 O 14 89 Y[M] - 16·Y:FTMS-pESI calculated value 947.1633, actual value 947.1602.

[0250] C 38 H 38 N 10 O 14 175 Lu[M] - 16·Lu:FTMS-pESI calculated value 1033.1982, observed value 1033.1973.

[0251] C 38 H 38 N 10 O 14 115 In[M] - 16·In:FTMS-pESI calculated value 973.1613, observed value 973.1585.

[0252] C 38 H 38 N 10 O 14 151 Eu[M] - 16·Eu:FTMS-pESI: calculated value 1009.1773, found value 1009.1765.

[0253] C 38 H 39 N 10 O 14 232 Th[M+H] + 16·Th:FTMS+pESI: calculated value 1091.3022, observed value 1091.2992.

[0254] C 42 H 47 N 11 O 14 151 Eu[M] - 29·Eu:FTMS-pESI: calculated value 1080.2508, found value 1080.2480.

[0255] C 42 H 48 N 11 O 14 232 Th[M+H] + 29·Th:FTMS+pESI: calculated value 1162.3757, observed value 1162.3778.

[0256] C 43 H 48 N 12 O 16 151 Eu[M] - 33·Eu:FTMS-pESI: calculated value 1139.2515, found value 1139.2500.

[0257] C 43 H 49 N 12 O 16 232 Th[M+H] + 33·Th:FTMS+pESI: calculated value 1221.3765, observed value 1221.3738.

[0258] C 40 H 41 N 10 O 15 232 Th[M+H] + 40·Th:FTMS+pESI: calculated value 1133.3128, observed value 1133.3118.

[0259] C 45 H 51 N 12 O 17 90 Zr[M+H] +43 Zr:FTMS+pESI: calculated value 1121.2537, observed value 1121.2554.

[0260] C 45 H 52 N 12 O 17 56 Fe[M+2H] + 43·Fe:FTMS+pESI: calculated value 1088.2917, observed value 1088.2921.

[0261] C 45 H 50 N 12 O 17 115 In[M] - 43·In:FTMS-pESI: calculated value 1145.2461, observed value 1145.2462.

[0262] C 45 H 50 N 12 O 17 151 Eu[M] - 43·Eu:FTMS-pESI: calculated value 1181.2621, found value 1181.2619.

[0263] C 45 H 50 N 12 O 17 165 Ho[M] - 43·Ho:FTMS-pESI: calculated value 1195.2726, observed value 1195.2730.

[0264] C 45 H 50 N 12 O 17 175 Lu[M] - 43·Lu:FTMS-pESI: calculated value 1205.2830, observed value 1205.2836.

[0265] C 45 H 50 N 12 O 17 89Y[M] - 43·Y:FTMS-pESI: calculated value 1119.2481, observed value 1119.2476.

[0266] C 45 H 50 N 12 O 17 159 Tb[M] - 43 Tb:FTMS-pESI: calculated value 1189.2676, observed value 1189.2677.

[0267] C 45 H 50 N 12 O 17 174 Yb[M] - 43·Yb:FTMS-pESI: calculated value 1204.2811, observed value 1204.2812.

[0268] C 45 H 50 N 12 O 17 158 Gd[M] - 43·Gd:FTMS-pESI: calculated value 1188.2663, found value 1188.2677.

[0269] C 45 H 50 N 12 O 17 152 Sm[M] - 43·Sm:FTMS-pESI: calculated value 1182.2620, observed value 1182.2647.

[0270] C 45 H 50 N 12 O 17 164 Dy[M] - 43·Dy:FTMS-pESI: calculated value 1194.2714, observed value 1194.2737.

[0271] C 45 H 50 N 12 O 17166 Er[M] - 43·Er:FTMS-pESI: calculated value 1196.2725, observed value 1196.2737.

[0272] C 45 H 51 N 12 O 17 232 Th[M+H] + 43·Th:FTMS+pESI: calculated value 1263.3870, observed value 1263.3835.

[0273] Example 11. Europium titration experiment to determine extinction coefficient To determine the exact extinction coefficients of 16 and 16·Eu, titration experiments were performed using europium chloride as the titrant. Using a 100 mL volumetric flask, europium chloride hexahydrate (13.22 mg, 0.03608 mmol) was dissolved in 5 mM citrate buffer (pH = 4) to obtain a 0.3608 mM europium chloride solution. A 5 μL aliquot of this europium chloride solution was then titrated into a 0.5 mL solution of 16 in TBS buffer (Tris-buffered saline, 50 mM Tris, 150 mM NaCl, pH = 7.6). UV-vis spectra were adjusted for the increase in solvent volume with each injection. The UV-vis titration results are plotted in Figure 3.

[0274] From the UV-vis titration (Figure 3), it was found that 46.28 μL of 0.3608 mM europium chloride solution was required to reach the equivalence point. The volume of europium chloride corresponded to 16.70 nmol of europium, meaning that the starting concentration of ligand 16 was 33.40 μM. The λ maxima absorbances of 16 and 16·Eu were found to be 0.454 at 382 nm (total volume 500 μL) and 0.431 at 361 nm (total volume 555 μL) for the ligand and complex, respectively. From these absorbance and concentration values, the extinction coefficients of ligand 16 and complex 16·Eu were calculated to be 13,600 M -1 cm -1 and 14,300M -1 cm-1 The damping coefficient is obtained.

[0275] To determine the exact extinction coefficients of 43 and 43·Eu, titration experiments were performed using europium chloride as the titrant. Using a 10 mL volumetric flask, europium chloride hexahydrate (47.58 mg, 0.1299 mmol) was dissolved in 50 mM citrate buffer (pH = 4) to obtain a 12.99 mM europium chloride solution, which was then transferred to a 100 mL volumetric flask and diluted 1:10 with water. The resulting 1.299 mM europium chloride solution (in 5 mM citrate buffer) was then titrated into a 1 mL solution of 43 in TBS buffer using a 5 μL aliquot. The UV-vis spectra were adjusted for the increase in solvent volume with each injection. The UV-vis titration results are plotted in Figure 4.

[0276] From the UV-vis titration (Figure 4), it was found that 36.55 μL of 1.299 mM europium chloride solution was required to reach the equivalence point. The volume of europium chloride corresponded to 47.46 nmol of europium, meaning that the starting concentration of ligand 43 was 47.46 μM. The λ maxima absorbances of 43 and 43·Eu were found to be 0.618 at 383 nm and 0.607 at 357 nm for the ligand and complex, respectively. From these absorbance and concentration values, the extinction coefficients of the ligand and complex were calculated to be 13,000 M -1 cm -1 and 12,800M -1 cm -1 The damping coefficient is obtained.

[0277] The titration of ligand 43 was also performed by luminescence (Figure 5), monitoring the europium signal at 612 nm upon photoexcitation of the solution at 340 nm. The ligand solution used in the UV-vis titration of 43 above was first diluted 1:10 in TBS buffer. Similarly, a 1.299 mM europium stock solution was separately diluted 1:10 in water. The results of the luminescence titration are shown in Figure 5. It was found that 32.99 μL of 0.1299 mM europium chloride solution was required to reach the equivalence point. From this equivalence point, the extinction coefficients of 43 and 43·Eu were 14,400 M at 383 nm, respectively. -1 cm -1 and 14,200M at 357nm -1 cm -1 By averaging the values ​​from the UV-vis and luminescence titration experiments of 43, the extinction coefficients of 43 and 43·Eu were found to be 13,700 M at 383 nm, respectively. -1 cm -1 and 13,500M at 357nm -1 cm -1 is obtained.

[0278] Example 12. Photophysical properties of 16·Eu, 29·Eu, 33·Eu, 40·Eu, and 43·Eu. Europium complexes of ligands 16, 29, 33, 40, and 43 were prepared by separately dissolving 2 mg of each ligand in 200 μL of methanol. Excess europium chloride hexahydrate (approximately 5 equivalents) was dissolved in 200 μL of methanol, and the entire volume was added to each ligand solution. The solvent was removed, and the residue was dissolved in 50 μL of DMF. The europium complexes were then purified by semi-preparative HPLC on an Agilent 1260 Infinity instrument using an Eclipse XDB-C18 column (5 μm, 9.4 × 250 mm). The mobile phase was 10–30% acetonitrile in water containing 0.1% trifluoroacetic acid. Volatiles were removed from the HPLC eluent under vacuum, and the residues were separately dissolved in 500 μL of methanol to obtain methanol stock solutions of each europium complex with a purity of >98%. A few drops of these methanol solutions were evaporated to dryness, and the residue was then dissolved in TBS buffer at a concentration of approximately 3 μM to create a stock solution (20 mL) with an absorbance of 0.05 at 365 nm (1 cm path length). Five dilutions (1 / 6, 2 / 6, 3 / 6, 4 / 6, and 5 / 6) were made from these stock solutions to obtain six samples with equally spaced concentrations (3 mL each). Quinine sulfate dissolved in 0.05 M sulfuric acid was similarly diluted to a final absorbance of 0.05 at 365 nm, and this solution was similarly diluted (1 / 6, 2 / 6, 3 / 6, 4 / 6, and 5 / 6) to obtain six quinine sulfate reference samples with equally spaced concentrations. Quinine sulfate in 0.05 M sulfuric acid was used as a quantum yield standard (Φ = 0.508). The quantum yield of the new Eu complexes was determined by measuring the absorbance and emission of these diluted solutions. To improve the UV-vis signal-to-noise ratio, the absorbance of these diluted solutions was measured using a 5 cm pathlength quartz cuvette. Steady-state photoluminescence measurements were collected in a 1 cm emission cuvette with an excitation wavelength of 365 nm, 1 nm resolution, 10 nm excitation slit width, 1 nm emission slit width, and a 0.2 s integration time on an instrument described elsewhere (D'Aleo, A.; Moore, E. G.; Szigethy, G.; Xu, J.; Raymond, K. N. Inorg. Chem. 2009, 48, 9316).Absorption spectra were measured at 1 nm resolution, and the absorbance of each sample was taken as the average absorbance measured between 360 and 370 nm, reflecting the 10 nm excitation slit width used for emission measurements. Linear regression data for UV-vis spectra, emission spectra, and quantum yields are shown in Figures 6 through 22. Data obtained from these experiments and the titration experiment in Example 11 are summarized below.

[0279] [Table 6]

[0280] Example 13. Stability of europium complexes of 16, 29, 33, 40, and 43 in the presence of various competitors For a luminescent metal complex to be useful in practical terms, it must be stable in the presence of common competing metal cations and chelating ligands. We measured the stability of 43·Eu (approximately 7 μM) dissolved in TBS buffer in the presence of various competitors at approximately 25 mM. Specifically, manganese dichloride tetrahydrate (14.8 mg, 74.8 μmol) was dissolved in TBS buffer (100 μL) and added to an aliquot (3 mL) of 43·Eu, resulting in a final Mn(II) concentration of 24.1 mM. Magnesium chloride hexahydrate (33.6 mg, 165 μmol) was dissolved in TBS buffer (200 μL) and 100 μL was added to an aliquot (3 mL) of 43·Eu, resulting in a final Mg(II) concentration of 26.7 mM. Calcium chloride hexahydrate (55.8 mg, 255 μmol) was dissolved in TBS buffer (300 μL), and 100 μL was added to the 43·Eu aliquot (3 mL) to give a final concentration of 27.4 mM Eu and Ca(II). For DTPA, KOH (95.9 mg, 1.71 mmol) was first dissolved in 1 mL of water, and 389 μL of this basic solution (5 equiv.) was used to dissolve DTPA (52.3 mg, 133 μmol). 219 μL of this DTPA solution was then added to the 43·Eu aliquot (3 mL) to give a final DTPA concentration of 23.4 mM. EDTA (0.5 M, pH = 8, 150 μL) was added to the 43·Eu aliquot (3 mL) to give a final EDTA concentration of 23.8 mM. For phosphate competition, a methanol stock of 43·Eu was diluted in 25 mM phosphate buffer (pH = 8) to approximately 7 μM.

[0281] The results of the stability study (Figure 23) reveal that most of the competitors have no significant effect on the brightness of 43·Eu over a 24-hour period. Specifically, magnesium, calcium, and phosphate cause no detectable change in the brightness of the samples. A slight decrease in brightness was observed in the EDTA-containing solution (from 4% to 96%) and the manganese-containing solution (from 11% to 89%). The DTPA solution showed a steady decrease in luminescence, reaching 83% of its original brightness after 24 hours.

[0282] From these experiments, it is clear that 43·Eu is highly stable against a wide range of competing metal ions and chelators. The above competitor concentrations provide a good method for assessing the kinetic stability of the complex under various assay conditions. DTPA is a very good ligand for lanthanide ions and is therefore not typically used in practical assays. However, DTPA competition provides an excellent method for assessing the kinetic stability of the complexes reported here. In general, decorporation of europium by approximately 25 mM DTPA has been found to be too slow for reliable measurements. To compare the kinetic stability of the complexes reported here, a stock solution of 750 mM DTPA (25 mL) was prepared by dissolving DTPA (7.375 g, 18.75 mmol) in water (20 mL) containing potassium hydroxide (5.26 g, 93.75 mmol). The pH of the DTPA solution was adjusted to pH 7.6 by adding concentrated hydrochloric acid, and then the solution was diluted to a final volume of 25 mL to obtain a 750 mM DTPA stock solution at pH 7.6. The HPLC-purified europium complexes 16, 29, 33, 40, and 43 were separately diluted in TBS buffer, pH 7.6, to 11 μM. For each DTPA competition experiment, 1 mL of 750 mM DTPA solution was added to 2 mL of the 11 μM europium complex solution. Emission at 612 nm (365 nm excitation) was monitored as a function of time for these five separate solutions containing 250 mM DTPA and 7.1 μM of each europium complex. The results are summarized in the following table and Figure 24.

[0283] [Table 7]

[0284] In general, europium removal from these complexes in 250 mM DTPA occurs at approximately 10 times the rate of europium removal in 25 mM DTPA, as expected for pseudo-first-order kinetics. Comparison of 16·Eu (without sidearms) and 33·Eu (with spermine-based sidearms) indicates that the introduction of spermine-based sidearms reduces kinetic stability by a factor of two. Similarly, comparison of 40·Eu (without sidearms) and 43·Eu (with spermine-based sidearms) indicates that the introduction of spermine-based sidearms reduces kinetic stability by a factor of two. In general, europium complexes of ethylenediamine-based macrocycles (29·Eu and 33·Eu) are approximately five times more kinetically stable than m-tetrahydrofurandiamine-based macrocycles (40·Eu and 43·Eu). This result is surprising given that m-tetrahydrofurandiamine-based macrocycles are more rigid and therefore expected to be kinetically more stable than ethylenediamine-based macrocycles. Even more surprising is the fact that the ethylenediamine-based macrocycle, in which the side arm is removed from the ethylenediamine unit (29·Eu), was found to be the most kinetically stable complex measured here. It appears to be more stable than the ethylenediamine-based macrocycle (16·Eu) lacking the side arm. Surprisingly, the 29·Eu complex was found to be at least one order of magnitude more kinetically stable than 43·Eu upon challenge with DTPA. This result is remarkable because 43·Eu has been shown to exhibit superior stability against a variety of competing metal ions and chelators, as discussed above.

[0285] Example 14 In addition to the diamines reported here, ethylenediamine (9), (S)-tert-butyl(5,6-diaminohexyl)carbamate (23), and (3R,4S)-tetrahydrofuran-3,4-diamine (34), there are several diamines that could be contemplated for use within existing synthetic schemes. Representative examples of these new diamines for the formation of new monomacrocyclic ligands (n = 0, 1, 2, or 3, X = O, S, or CH) are shown below and grouped into rows. [ka]

[0286] Row A consists of several acyclic aliphatic linkers that may enhance or change the photophysical properties of Eu complexes by affecting the geometry of the ligand around the metal ion. Similarly, binding of other radiologically important metal ions may be altered or enhanced. Row B contains other cyclic aliphatic diamine linkers. The cyclic structures of these examples may enhance the rigidity of the ligand structure, which may enhance the stability of the resulting metal complexes. Row C contains cyclic aromatic diamine linkers, all of which have a two-carbon bridge very similar to the two-carbon diamine bridge synthesized here. These aromatic diamines may extend the electronic conjugation of the 1,2-HOPO unit, which may affect the photophysical properties of the ligand. The last entry in Row C may also contain a polyethylene glycol unit to enhance solubility. Rows D, E, and F contain additional examples of cyclic aromatic systems that may enhance the stability of metal complexes by modifying the geometry of the ligand. Row G contains various diamine bridges, all of which have functional group handles that can be used to link these metal monomacrocycle complexes to species of interest. The linkers on each of these diamines can be used to add functional handles to the metal complex. Row H contains diamine bridges that can provide a way to sense or react with species of interest. The first entry contains an 18-crown-6 ether functional group that binds potassium ions. The cyano and cyclohexene examples can bind certain transition metals, while the butyne diamine can facilitate reaction with organic azides.

[0287] Example 15 Representative new functional groups for attachment to the pendant 1,2-HOPO units for solubility and additional attachment points are shown below. [ka]

[0288] Instead of 14, structures such as those shown above can be obtained by reacting 8 (or its derivatives) with, for example, 27. Such species include aminopolyethylene glycol, glucosamine, 2-aminoacetic acid, 3-aminopropanoic acid, N-aminopropanoic acid, 1 ,N 1 -dimethylethane-1,2-diamine, and N 1 , N 1- Solubilizing groups such as diethylethane-1,2-diamine (see above) can be added to the ligand, thereby increasing the solubility of the metal complex in water. Adding a diamine (or similar bifunctional moiety) generates a ligand with additional attachment points. Furthermore, the use of 1,2-HOPO diamide chromophores at all four sites (as described above) may improve photophysical properties by more closely matching the absorption bands of the two 1,2-HOPO chromophores.

[0289] Example 16 [ka] Scheme 8. Representative synthetic scheme for compound 33b of the present invention and its precursor. The synthesis of 30b has been previously reported (WO2016 / 106241). Example 17 [ka] Scheme 9. Representative synthesis scheme of exemplary scaffold precursors. Example 18 [ka] Scheme 10. Representative synthesis scheme of HOPO-Lys-cyclic-RDGyK. The bivalent peptide conjugate HOPO-Lys-cyclo-RDGyK can be synthesized as outlined in Scheme 5. Cyclo(RDGyK) is a peptide available from Anaspec that binds to αβ integrin, which is overexpressed in pancreatic cancer.

[0290] Example 19 [ka] Scheme 11. Representative synthetic scheme for compound 23b. Example 20 [ka] Scheme 12. Representative synthetic scheme for compound 29b of the present invention and its precursors. Example 21 Synthesis of compound 29-Eu-NHS as a representative example of useful species that can be generated from compounds 29, 33, and 43. [ka] Scheme 13. Synthetic scheme for compound 29-Eu-NHS as a representative example of useful species that can be generated from compounds 29, 33, and 43. Reactive NHS esters of the complexes Eu·29, Eu·33, and Eu·43 can be generated by treating the appropriate Eu complex with an excess (10 equivalents) of di(N-succinimidyl)glutarate (DSG) in DMF and triethylamine. The reactive NHS esters are useful for coupling metal complexes to amines of lysine residues on proteins or other target groups of interest. For example, Eu·29 (20 mg, 18.5 μmol) was dissolved in DMF (200 μL). Separately, DSG (60.2 mg, 185 μmol) was dissolved in DMF (200 μL), and then triethylamine (18.7 mg, 185 μmol) was added to the DSG solution. The Eu·29 solution was added dropwise to the DSG solution with shaking. The reaction proceeded at room temperature with shaking for 1 hour. The product was isolated by precipitating the product from DMF four times using diethyl ether (4 mL per precipitation) and isolating the precipitate by centrifugation and decantation. The crude product was then similarly dissolved in dichloromethane (1 mL) and precipitated four times with ether (1 mL). After the final decantation step, residual solvent was removed under vacuum overnight to give Eu·29-NHS as a white powder. Yield 22.1 mg, 92.5%. 51 H 56 EuN 12 O 19 HRMS-ESI (m / z, [M] - ) Calculated value: 1291.2989, measured value: 1291.2986.

[0291] Example 22 Synthesis of Exemplary Parent Compounds [ka] Scheme 14. Synthesis scheme of parent compound 40' General method. The precursors (3R,4S)-tetrahydrofuran-3,4-diamine (34), 1-(benzyloxy)-6-(methoxycarbonyl)-2-oxo-1,2-dihydropyridine-3-carboxylic acid (8'), 1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2-carboxylic acid (14), and tert-butyl(2-(2-(2,5-bis((3-aminopropyl)amino)pentanamido)ethoxy)ethyl)carbamate (30) are synthesized according to previously reported methods. Unless otherwise stated, all other solvents and reagents are purchased from commercial sources and used as received.

[0292] Dimethyl 5,5'-((((3R,4S)-tetrahydrofuran-3,4-diyl)bis(azanediyl))bis(carbonyl))bis(1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2-carboxylate) (35'). Oxalyl chloride (4.10 g, 32.3 mmol) is added to a suspension of 8' (4.10 g, 13.5 mmol) in dichloromethane (40 mL), followed by one drop of dry DMF. The solution becomes homogeneous within 30 min, and the reaction is stirred at room temperature for a total of 3 h. The solvent is then removed overnight in vacuo. The residue is dissolved in dichloromethane (20 mL) and added dropwise to a vigorously stirred solution of 34 (580 mg, 5.7 mmol) in dichloromethane (20 mL) and 40% K2CO3 (20 mL) at 0 °C. The reaction is stirred overnight while warming to room temperature. The dichloromethane layer is loaded directly onto a 4-inch high x 1-inch wide silica gel column. After a methanol / dichloromethane gradient elution, the desired product is recovered using 2.5% dichloromethane in methanol. The solvent is removed under vacuum to give the desired product as a 35' hard glass.

[0293] 5,5'-((((3R,4S)-tetrahydrofuran-3,4-diyl)bis(azanediyl))bis(carbonyl))bis(1-(benzyloxy)-6-oxo-1,6-dihydropyridine-2-carboxylic acid) (36'). Potassium hydroxide (934 mg, 16.6 mmol) is added to a suspension of 35' (2.80 g, 4.16 mmol) in 2:2:1 THF:MeOH:water (50 mL), and the reaction is heated to 50 °C with stirring overnight. The solvent is removed in vacuo, and the resulting residue is dissolved in water (250 mL). Dilute HCl is added dropwise with stirring until the solution is acidic to the litmus test. The desired product is collected by filtration, washed with dilute HCl, and dried under vacuum overnight to give 36' as a white powder.

[0294] N,N'-((3R,4S)-tetrahydrofuran-3,4-diyl)bis(1-(benzyloxy)-2-oxo-6-(2-thioxothiazolidine-3-carbonyl)-1,2-dihydropyridine-3-carboxamide) (37'). HATU (2.40 g, 6.3 mmol), 36' (1.93 g, 3.00 mmol), and DMAP (73.3 mg, 0.6 mmol) are suspended in dichloromethane (75 mL). DIPEA (776 mg, 6 mmol) is added dropwise to the suspension, and the reaction is stirred at room temperature for 2 h. Upon completion, 2-mercaptothiazoline (894 mg, 7.5 mmol) is added to the homogeneous solution, followed by DIPEA (1.5 g, 11.6 mmol). The reaction is stirred at room temperature for an additional 1.5 h. The reaction mixture is then washed with 3 x 75 mL of water to remove most of the urea by-product, concentrated, and then loaded onto a 6" high x 1" wide silica gel column. After a 2-propanol / dichloromethane gradient elution, the desired product is recovered using 5% 2-propanol in dichloromethane. The solvent is removed under vacuum, and the residue is dissolved in 100 mL of dichloromethane. The organic solution is washed again with 3 x 75 mL of water to remove the last traces of urea by-product, and the organic solution is concentrated to a volume of 10 mL. Addition of 2-propanol causes precipitation of the desired product, which is collected by evaporation of the solvent to give a yellow powder 37'.

[0295] Compound 38'. Spermine (229 mg, 1.13 mmol) was dissolved in 2-propanol (50 mL), and 37' (957 mg, 1.13 mmol) was dissolved in dichloromethane (50 mL) separately. Using a syringe pump, the two solutions were added dropwise (0.5 mL / h) over 4 days to a large flask containing 1:1 dichloromethane:2-propanol (1 L). The reaction was stirred at room temperature for an additional day, followed by removal of the solvent under vacuum. The residue was dissolved in dichloromethane (200 mL) and extracted with aqueous potassium hydroxide to remove the 2-mercaptothiazoline by-product. Removal of the solvent afforded the desired product 38' as a viscous oil, which was used in the next reaction without further purification.

[0296] Compound 39'. Oxalyl chloride (1.1 g, 8.7 mmol) is added to a suspension of 14 (1.11 g, 4.52 mmol) in dichloromethane (40 mL), followed by one drop of dry DMF. The solution becomes homogeneous within 30 minutes, and the reaction is stirred at room temperature for a total of 3 hours. The solvent is then removed under vacuum overnight. The residue is dissolved in dichloromethane (20 mL) and added dropwise to a solution of 38' (1.13 mmol) dissolved in dichloromethane (20 mL) and 40% K2CO3 (20 mL) with vigorous stirring at 0 °C. The reaction is stirred overnight while warming to room temperature. The dichloromethane layer is loaded directly onto a 4-inch high x 1-inch wide silica gel column. After a methanol / dichloromethane gradient elution, the desired product is recovered using 4% dichloromethane in methanol. The solvent is removed under vacuum to give the desired product as a hard glass, 39'.

[0297] Compound 40'. Compound 39' (63 mg, 0.070 mmol) is dissolved in a 1:1 mixture of concentrated HCl and glacial acetic acid. The homogeneous solution is stirred in the dark at room temperature for 3 weeks. Once the reaction is complete, the solvent is removed under vacuum. Residual solvent is removed by coevaporation with water, followed by methanol, and finally diethyl ether to give 40', a beige solid. Purity is assessed by HPLC by first adding a 5-fold molar excess of EuCl3 to a sample dissolved in methanol.

[0298] Example 23. Synthesis of exemplary bifunctional chelators [ka] Scheme 15. Synthesis scheme for attachment point containing compound 43' Compound 41'. Follow the same procedure as used for compound 38', using 37' (1.30 g, 1.54 mmol) and 30 (668 mg, 1.54 mmol) as starting materials. Similarly, wash the residue with base and use it in the next reaction without further purification.

[0299] Compound 42'. Follow the same procedure as used for compound 39', using 41' (1.54 mmol) and 14 (1.51 g, 6.16 mmol) as starting materials.

[0300] Compound 43'. Follow the same procedure as used for compound 40', using 42' (92 mg, 0.062 mmol) as the starting material.

[0301] Example 24 In addition to the (3R,4S)-tetrahydrofuran-3,4-diamine (34) reported here, several diamines can be envisioned for use within existing synthetic schemes. Representative examples of these new diamines for forming new monomacrocyclic ligands (n = 0, 1, 2, or 3, X = O, S, or CH) are shown below and categorized into rows. [ka]

[0302] Row A consists of several acyclic aliphatic linkers that may enhance or modify the photophysical properties of similar 43'·Eu complexes by affecting the ligand geometry around the metal ion. Similarly, binding of other radiologically important metal ions may be modified or enhanced. Row B contains other cyclic aliphatic diamine linkers. The cyclic structures of these examples may enhance the rigidity of the ligand structure, which may enhance the stability of the resulting metal complexes. Row C contains cyclic aromatic diamine linkers, all of which have a two-carbon bridge very similar to the (3R,4S)-tetrahydrofuran-3,4-diamine two-carbon bridge reported here. These aromatic diamines may extend the electronic conjugation of the 1,2-HOPO unit, which may affect the photophysical properties of the ligand. The last entry in Row C may also contain a polyethylene glycol unit to enhance solubility. Rows D, E, and F contain additional examples of cyclic aromatic systems that may enhance the stability of metal complexes by modifying the ligand geometry. Row G contains various diamine bridges, all of which have functional handles that can be used to link 43'·Eu-type complexes to species of interest. Linkers to each of these diamines can be used to impart additional functional handles to 43'·Eu-type complexes or can be used as the sole functional linker in 40'·Eu-type complexes. Row H contains diamine bridges that can provide a way to sense or react with species of interest. The first entry contains an 18-crown-6 ether functional group that binds potassium ions. The cyano and cyclohexene examples can bind certain transition metals, while the butyne diamine can facilitate reaction with organic azides.

[0303] Example 25 Representative new functional groups and additional attachment points for attachment to the pendant 1,2-HOPO units for solubility are shown below. [ka]

[0304] By reacting 8' (or its derivatives) with 38' or 41' instead of 14, the structures shown above can be obtained. Such species allow for solubilization of groups such as aminopolyethyleneglycol and glucosamine (shown above) added to the ligand, increasing the solubility of the metal complex in water. Addition of a diamine (or similar bifunctional moiety) generates ligands with additional attachment points.

[0305] Example 26 [ka] Scheme 16. Representative synthetic scheme for compound 43b' of the present invention and its precursors. Example 27 [ka] Scheme 17. Representative synthetic scheme for HOPO-Lys-cyclic-RDGyK. The bivalent peptide conjugate HOPO-Lys-cyclo-RDGyK is synthesized as outlined in Scheme 17. Cyclo(RDGyK) is a peptide available from Anaspec that binds to αβ integrin, which is overexpressed in pancreatic cancer.

[0306] Example 28 [ka] Scheme 18. Representative synthetic scheme for compound 29b' of the present invention and its precursors. Example 29 Synthesis of compound 29-Ca-NHS as a representative example of useful species that can be generated from compounds 29, 33, and 43. [ka]

[0307] Scheme 19. Synthetic scheme for compounds 29·Ca or 29·Mg as representative examples of complexes that can be generated from compounds 29, 33, and 43.

[0308] For example, Ca 29 (or Mg·29) can be prepared by first mixing 29 with 1.2 molar equivalents of CaCl 2 (or MgCl 2 ) in DMF, followed by removal of the solvent under vacuum. [ka]

[0309] Scheme 20. Synthetic scheme for compound 29-Ca-NHS as a representative example of useful species that can be generated from compounds 29, 33, and 43.

[0310] Reactive NHS esters of the complexes Ca·29, Ca·33, and Ca·43 can be generated by treating the appropriate Ca(II) complex with an excess (10 equivalents) of di(N-succinimidyl)glutamate (DSG) in DMF and triethylamine. The reactive NHS esters are useful for attaching metal complexes to amines of lysine residues on proteins or other targeting groups of interest. For example, Ca·29 can be prepared by first mixing 29 with 1.2 molar equivalents of CaCl2 in DMF, followed by removal of the solvent under vacuum. The Ca·29 complex thus prepared can then be reacted with an excess of DSG in DMF, as described for Eu·29 in Example 21. 51 H 57 CaN 12 O 19HRMS-ESI (m / z, [M+H]-) calculated: 1181.3494, found: 1181.3502. Forming a Ca(II) complex prior to reaction with DSG protects the chelate from unproductively reacting with the NHS functional group. It should also be noted that Mg(II) can be successfully used for the same purpose. Both Ca(II) and Mg(II) can be easily replaced by higher-valence (oxidation state III or IV) metal ions that bind more strongly than Ca(II) or Mg(II), such as lanthanides (including Eu(III) and Lu(III)), actinides (including Th(IV)), and transition metals (including Zr(IV)). Therefore, Ca(II) or Mg(II) complexes are highly useful for providing conveniently reactive bifunctional chelators that can be labeled with desired radioisotopes.

[0311] To demonstrate the utility of first forming a Ca(II) or Mg(II) complex to prevent decomposition of 29-NHS, 33-NHS, or 43-NHS, the results of first forming 33-NHS without added Ca or Mg, and the resulting stability in DMF solution, are shown in the following figure: Note that all subsequent HPLC chromatograms in this example were collected after adding 10 molar equivalents of EuCl3 5 minutes prior to injection for analytical convenience.

[0312] Although it is possible to form and isolate 33·NHS in the absence of Ca(II) or Mg(II), the resulting 33·NHS product is extremely unstable, as evident from the HPLC data shown in Figure 25. When the 33·NHS product is dissolved in DMF and incubated at room temperature for 1 day, no measurable amount of the desired 33·NHS product remains in solution. For comparison, the exact same experiment was performed using the 33·Ca complex, as shown in Figure 26.

[0313] HPLC data demonstrate that the formation of a Ca complex of 33 (as a representative example) results in a 33·Ca·NHS reaction product that is more stable to decomposition in solution compared to the 33·NHS reaction product. The figure below shows HPLC data for both the 33·Ca·NHS and 33·Mg·NHS reaction products after incubation in DMF at room temperature for 1 day, demonstrating that Mg can be used for the same protective purposes as Ca.

[0314] It is understood that the examples and embodiments described herein are for illustrative purposes only, and that various modifications or variations therein will be suggested to those skilled in the art and are within the spirit and scope of this application and the appended claims. All publications, patents, and patent applications cited herein are incorporated by reference in their entirety for all purposes.

Claims

1. having the following structure: 【Chemical 1】 During the ceremony, L 1a is C 2 is alkylene, L x6 has the following structure: -L 11 -F x 、 In the ceremony, L 11 is selected from a bond, acyl, substituted or unsubstituted alkylene, substituted or unsubstituted heteroalkylene, substituted or unsubstituted cycloalkylene, substituted or unsubstituted heterocycloalkylene, substituted or unsubstituted arylene, and substituted or unsubstituted heteroarylene; F x is selected from H, a reactive functional group, and a targeting moiety; L 1b and L 1c are C(O), respectively, L 2d and L 2e is independently selected from a bond, C(O), substituted or unsubstituted alkylene, and substituted or unsubstituted heteroalkylene; L 2a and L 2c are independently substituted or unsubstituted C 2 , C 3 and C 4 alkylene; L 2b is unsubstituted C 2 , C 3 , C 4 and C 5 alkylene; L 2f and L 2g is independently selected from a bond, C(O), substituted or unsubstituted alkylene, and substituted or unsubstituted heteroalkylene; R L1 , R L2 , R L3 , and R L4 is independently selected from H, substituted or unsubstituted alkyl, and substituted or unsubstituted heteroalkyl; A p1 and A p2 are independently selected from: 【Chemistry 2】 wherein A and G are independently selected from carbon, nitrogen, and oxygen; J is selected from carbon and nitrogen; Each R 1 and R 2 are independently selected from H, an enzymatically labile group, a hydrolytically labile group, a metabolically labile group, a photolytically labile group, and a single negative charge; Each R 6 , R 7 , R 8 , R 9 , and R 10 are independently 2f or L 2g Bond to L 2f or L 2g Alkanediyl, H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, halogen, CN, —CF 3 , -C(O)R 17 , -SO 2 NR 17 R 18 , -NR 17 R 18 , -OR 17 , -S(O) 2 R 17 , -COOR 17 , -S(O) 2 OR 17 , -OC(O)R 17 , —C(O)NR 17 R 18 , -NR 17 C(O)R 18 , -NR 17 SO 2 R 18 , and -NO 2 wherein R 6 , R 7 , R 8 , R 9 , and R 10 at least two of are optionally joined to form a ring system selected from substituted or unsubstituted cycloalkyl, substituted or unsubstituted heterocycloalkyl, substituted or unsubstituted aryl, and substituted or unsubstituted heteroaryl; R 17 and R 18 is independently selected from H, substituted or unsubstituted alkyl, substituted or unsubstituted heteroalkyl, substituted or unsubstituted aryl, substituted or unsubstituted heteroaryl, and substituted or unsubstituted heterocycloalkyl, or R 17 and R 18 are optionally joined together with the atoms to which they are attached to form a 5-, 6-, or 7-membered ring; When A is oxygen, R 9 is absent, and when G is oxygen, R 7 does not exist, A p1 and A p2 is R 6 , R 7 , R 8 , R 9 , and R 10 L through a member selected from 2f and L 2g A compound that is bound to

2. 2. The compound of claim 1 having the following structure: 【Chemistry 3】

3. A p1 and A p2 2. The compound of claim 1, wherein: 【Chemistry 4】

4. -L 11 -F x has the following structure: 【Chemistry 5】 During the ceremony, R L is selected from substituted or unsubstituted alkylene, and substituted or unsubstituted heteroalkylene; F x The compound of claim 1 , wherein is selected from a reactive functional group and a targeting moiety.

5. L x6 2. The compound of claim 1, wherein: 【Chemistry 6】

6. 10. The compound of claim 1, wherein the targeting moiety is selected from an antibody, a polypeptide, a nucleic acid, an oligonucleotide, a carbohydrate, a lipid, a hormone, a growth factor, a lectin, a receptor ligand, and a cofactor.

7. The reactive functional group is (i) carboxyl groups, N-hydroxybenztriazole esters, acid halides, acylimidazoles, thioesters, p-nitrophenyl esters, alkyl, alkenyl, alkynyl, and aromatic esters; (ii) a hydroxyl group; (iii) a haloalkyl group; (iv) a dienophile group; (v) an aldehyde or ketone group; (vi) alkenes; (vii) an epoxide; and (ix) phosphoramidite 2. The compound of claim 1 selected from:

8. A complex comprising the compound of claim 1 and a metal ion complexed therewith.

9. 9. The complex of claim 8, wherein the metal ion is an ion of a metal selected from the lanthanides and actinides.

10. 9. The complex of claim 8, wherein the metal ion is an ion of a metal selected from zirconium (Zr), iron (Fe), indium (In), europium (Eu), holmium (Ho), lutetium (Lu), yttrium (Y), terbium (Tb), ytterbium (Yb), gadolinium (Gd), samarium (Sm), dysprosium (Dy), erbium (Er), thorium (Th), calcium (Ca), and magnesium (Mg).

11. The complex of claim 8 , wherein the complex is luminescent.

12. 9. The complex of claim 8, wherein the metal ion is an ion of a metal selected from Eu, Tb, Sm, and Dy.

13. 9. The complex of claim 8, wherein the metal ion is an ion of Gd.

14. 9. The complex of claim 8, wherein the metal ion is a radionuclide.

15. 9. The complex of claim 8, wherein the metal ion is selected from Zr(IV), Fe(III), Sc(III), In(III), Eu(III), Ho(III), Lu(III), Y(III), Tb(III), Yb(III), Gd(III), Sm(III), Dy(III), Er(III), Th(IV), Ca(II), Ac(III), and Mg(II).

16. The metal ion is 227 Th(IV), 89 Zr(IV), 225 Ac(III) and 177 9. The complex of claim 8, wherein the cation is selected from Lu(III).

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