Biocompatible polymer drug carriers for delivering activators

A biocompatible copolymer-based delivery system addresses ADC heterogeneity and stability issues, achieving higher drug loads and target specificity for enhanced cancer therapy.

JP7837558B2Active Publication Date: 2026-03-31CIS BIOPHARMA AG
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Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-10-30
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing antibody-drug conjugates (ADCs) suffer from heterogeneity in drug-to-antibody ratios (DAR), stability issues, and rapid clearance from the bloodstream, limiting their efficacy in delivering cytotoxic agents to tumor cells while maintaining target affinity.

Method used

A biocompatible, hydrophilic copolymer is used to load multiple activator molecules, coupled to a tumor-targeting moiety like a monoclonal antibody or aptamer, ensuring homogeneous distribution and stability, with site-specific coupling preserving target affinity and enabling combination therapies.

Benefits of technology

The copolymer-based ADCs achieve higher drug-to-antibody ratios with improved stability and target specificity, enhancing therapeutic efficacy and reducing systemic side effects.

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Abstract

The present disclosure relates to the delivery of multiple copies of a payload molecule, such as an active agent or a chelator capable of entrapping an active agent, using as a delivery vehicle a biocompatible copolymer comprising side-chain-linked amino acids functionalized at the alpha-amino group with a reactive azide moiety, whereby the payload molecule is coupled to the copolymer, which is typically further functionalized to include a single copy of a cell-type or tissue-type specific targeting moiety.
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Description

[Technical Field]

[0001] Field of Invention The present invention relates to the delivery of activators, such as active pharmaceutical ingredients, using a biocompatible copolymer containing side-chain linked amino acids to which the activator is directly or via a linker molecule as a delivery carrier. [Background technology]

[0002] background Cancer is one of the major threats to human health, and given that its likelihood is a function of age, the number of cases increases with the aging of the population. Berger, NA et al. (2006) Cancer in the Elderly, Transactions of the American Clinical and Climatological Association 117: 147-156; Yancik, R (2005) Cancer J. 11: 437-41. In recent years, tumor therapy has seen significant improvements, mainly due to the use of tumor-specific drugs such as monoclonal antibodies. These antibodies slow tumor growth by blocking growth signals such as the epidermal growth factor pathway (EGFR) (cetuximab, Erbitux®, Merck KGaA / panitumumab, Vectibix®, Amgen / trastuzumab, Herceptin®, Roche) or by targeting the vascular endothelial growth factor (VEGF) pathway to prevent the formation of new blood vessels (bevacizumab, Avastin®, Roche). Because these target antigens are usually overexpressed in tumor tissue, healthy cells are less damaged, and therefore antibody therapy has fewer off-target effects compared to conventional cytotoxic agents. Zhou, Q. (2017) Biomedicines 5(4); Reichert, JM (2017) MAbs 9: 167-181. The unique specificity of antibodies has also been used in combination approaches aimed at targeting tumor cells with cytotoxic drugs. These so-called antibody-drug conjugates (ADCs) have been proven superior to monotherapy with antibodies or cytotoxic agents. Although known since the 1960s, the concept of ADCs has only recently attracted the interest of the pharmaceutical industry, with more than 60 ADCs currently undergoing clinical trials. Mullard, A (2013) Nat Rev Drug Discov 12: 329; Beck, A et al. (2017) Nat Rev Drug Discov 16: 315-337.

[0003] First-generation ADCs use free amino groups in antibodies to conjugate cytotoxic drugs and drug linker constructs. Using up to 80 free amino groups per antibody, these uncontrolled functionalizations result in highly heterogeneous ADC species due to varying drug-to-antibody ratios (DARs) and affinity resulting from unintended binding of cytotoxic drugs to the antibody binding interface. DAR heterogeneity can be limited to some extent by adjusting the stoichiometric amounts of the drug and antibody used in the reaction. Regarding site specificity, heterogeneity was limited only by the availability of the chemistry used in the initial clinical trials. It took another 20 years for the FDA to approve the first ADCs. ADC development has increased significantly since then, with 30 ADCs now in the reactive group. The latter heterogeneity was also a major issue and regulatory concern for the initial ADCs. Yao, H et al. (2016) Int J Mol Sci 17(2): 194. In addition, the initial ADCs were based on mouse immunoglobulins known to induce significant immune responses. Due to these shortcomings, the first ADCs did not show greater improvement than conventional therapies, and therefore, gemtuzumab ozogamicin (Mylotarg®), the first FDA-approved ADC, was voluntarily withdrawn from the market by Pfizer in 2010. Beck, A et al. (2017) Nat Rev Drug Discov 16(5): 315-337; Beck, A et al. (2010) Discov Med 10(53): 329-39.

[0004] Second-generation ADCs mitigate the latter difficulty by targeting free thiol groups in humanized antibodies. These free thiol groups are generated before a coupling reaction (e.g., using 1,4-dithiothreitol (DTT)) involving the mild reduction of four interchain disulfide crosslinks in the hinge region of the antibody. This strategy can reduce the number of potential binding sites to eight, resulting in higher homogeneity of the ADC. Given the fact that interchain disulfide bonds play a crucial role in antibody integrity, this higher homogeneity has often been offset by adverse effects on antibody stability. Although more specific linkers were designed to preserve the integrity of the disulfide crosslinks (detailed, e.g., Shaunak, S et al. (2006) Nat Chem Biol 2(6): 312-3 and Balan, S et al. (2007) Bioconug Chem 18(1): 61-76), the resulting ADCs suffered from low DAR, typically around 3-4. Further increases in drug load adversely affected antibody stability, leading to rapid clearance from the bloodstream. In addition, the affinity of the antibodies to these tumor cell-specific targets was adversely affected. Beck et al. (2017) Nat Rev Drug Discov 16(5): 315-337; Yao et al. (2016) Int J Mol Sci 17(2): 194.; Beck et al. (2010) Discov Med 10(53): 329-39. Because only a few cytotoxic entities coupled to these antibodies, conventional cytotoxic agents such as doxorubicin were demonstrated to be insufficiently effective in killing tumor cells. Tolcher, AW (1999) J Clin Oncol 17(2): 478-478. Therefore, a novel class of cytotoxic agents with several orders of magnitude higher cytotoxicity was needed. Examples of these substances are microtubule inhibitors such as mertansine (DM1) or monomethylauristatin E (MMAE). Beck et al. (2017).When using such potent active pharmaceutical ingredients (APIs), it is crucial that the API is released from the ADC only to its target site. Otherwise, severe side effects may occur. The linker between the drug and the antibody plays a significant role in this regard. Recently marketed ADCs such as trastuzumab emtansine (Kadcyla®, Roche) and brentuximab vedotin (Adcetris®, Tekada Pharmaceutical), as well as Mersana concept (Mersana Therapeutics Inc. (Cambridge, MA)), use maleimide-based linkers known to react with cysteine-carrying proteins, particularly serum albumin. Alley, SC et al. (2008) Bioconjug Chem 19(3): 759-765. Shen, BQ et al. (2012) Nat Biotechnol 30(2): 184-9.

[0005] So-called third-generation ADCs utilize site-specific coupling of drugs to antibodies. A notable example is Seattle Genetics' vadatuximab tailirine for acute myeloid leukemia (AML). This ADC is used to couple a pyrrolobenzodiazepine (PBD) dimer, which contains genetically modified cysteine ​​at position 239 of both heavy chains, allowing it to crosslink DNA and thereby block cell division and induce cell death. This ADC has been successfully tested in Phase I studies and is currently in Phase III clinical trials. Beck et al. (2017); Kennedy, DA et al. (2015) Cancer Res 75(15 Supp.), Abstract DDT02-04. Other examples of site-specific drug coupling to antibodies use smart tags, such as "aldehyde tags" (Redwood Biosciences, Catalent) or "sortase tags" (SMAC-Technology®, NBE Therapeutics; Stefan, N et al. (2017) Mol Cancer Ther 16(5): 879-892). The latter two methods involve introducing genetically modified peptide tags into antibodies to function as specific motifs in enzyme coupling reactions. Third-generation ADCs have increased stability and represent more homogeneous products, but still deliver only a few toxic entities per antibody.

[0006] To circumvent this limitation, a novel method using polymer carriers has recently been developed by Mersana Therapeutics. This concept is based on the functionalization of a degradable carrier polymer (called "Fleximer") with several cytotoxic drug molecules. The drug-loaded polymer is then coupled to a monoclonal antibody by conventional linker chemistry. This allows the DAR to be increased to 12-15 drug molecules per antibody molecule, with the drug molecules distributed across 3-5 bound polymer carriers. "Non-clinical pharmacokinetics of XMT-1522, a HER2 targeting auristatin-based antibody drug conjugate"; poster presentation at the American Association for Cancer Research (AACR) annual meeting in Washington DC, 2017. While this method has many advantages, the resulting ADCs contain Fleximer polymers of varying chain lengths and drug loads. The molecular weight of the ADCs varies to some extent depending on the combination with the thiol-maleinimide linker chemistry used. Furthermore, Fleximer polymers contain biodegradable ester linkages, raising concerns about long-term storage and / or serum stability. Koitka, M et al. (2010) J Pharm Biomed Anal 51(3): 664-78; Li, B et al. (2005) Biochem Pharmacol 70(11: 1673-84.

[0007] In addition to antibodies, other target-specific agents, including aptamers, are described in detail for treating metabolic diseases and cancer by blocking or activating abnormal pathways. Aptamers are small, single-stranded polynucleotides with a well-defined three-dimensional structure formed by Watson-Crick base pairing. Due to their well-defined structure, they can be conjugated with high affinity to specific targets, including isolated small molecules such as bacterial toxins or surface markers on cells. Mercier, MC et al. (2017) Cancers (Basel) 9(6): E69; Ruscito, A et al. (2016) Front Chem 4 :14. Aptamers are much smaller than antibodies, easier to produce, and lack immunogenicity. Ray, P et al. (2013) Archivum Immunologiae et Therapiae Experimentalis 61(4): 255-271; Pei, X et al. (2014) Mol Clin Oncol 2(3): 341-348; Zhou, G et al. (2016) Oncotarget 7(12):13446-63. These describe enrichment processes involving repeated binding, washing, and amplification steps, 10 15They are typically generated from a pool of up to 10^10 random polynucleotides. After each cycle, the aptamer with the best target affinity is selected for the next cycle. This results in the selection of molecules with binding affinity in the nano- and even sub-nanomole range after 10-12 cycles. This process is also known as systematic evolution of ligands by exponential enrichment (SELEX). Zhou, G et al. (2016). Similar to antibodies, the initial therapeutic aptamer approach aimed to block disease-related pathways through interactions with key proteins, receptors, or metabolites. A notable example is Macugen® (Pegaptanib; EyeTech Pharmaceuticals, Pfizer), the first FDA-approved aptamer therapeutic, which was introduced to the market in 2004. Macugen® is a 27-nucleotide-long RNA aptamer used for age-related macular degeneration (AMD), a serious eye disease that causes blindness. AMD is characterized by abnormal vascular formation resulting from elevated levels of growth factors. Macugen® targets VEGF, a growth factor involved in angiogenesis. 165(Isoform). Because this aptamer has a very short half-life due to rapid renal clearance and degradation, it was conjugated to a 40 kDa PEG polymer to increase its overall size. In addition, some nucleotides were substituted with 2'-fluoropyrimidine and 2'-O-methylpurine to avoid degradation by nucleases. Biagi, C et al. (2014) Eur J Clin Pharmacol 70(12): 1505-12; Pozarowska, D et al. (2016) Cent Eur J Immunol 41(3): 311-316. In contrast to anti-VEGF antibodies (e.g., bevacizumab, Avastin®, Roche), Macugen® has not been used or approved for the treatment of cancer, possibly due to its inadequate function in systemic administration, possibly due to compensation for the action of bypass pathways (e.g., PDGF-B). Alvarez, RH et al. (2006) Mayo Clin Proc 81(9): 1241-57. Following further improvements in recent years, several attempts have been made to use aptamers not only for targeting and blocking but also as carriers of cytotoxic agents. Bagalkot and colleagues developed an aptamer-doxorubicin conjugate. However, this conjugate suffers from insufficient loading efficiency and rapid systemic clearance. Bagalkot, V et al. (2006) Angew Chem Int Ed 45(48): 8149-8152. In 2010, a different approach was developed based on docetaxel / cisplatin-loaded PLGA-PEG nanoparticles. These particles were directed to prostate cancer cells by functionalization with A10, an aptamer that targets tumor cell membrane proteins. This somewhat complex drug delivery system showed promising results, at least in in vitro experiments. Kolishetti, N et al. (2010) Proc Natl Acad Sci USA 107(42): 17939-17944. The aptamer was further tested for the delivery of several nucleotide-based therapeutics, such as siRNA (short interfering RNA typically designed to suppress specific gene expression).Chu, TC et al. (2006) Nucleic Acids Res 34(10): e73. Despite the development of many different approaches that utilize the targeting ability of aptamers for tumor treatment, to date, aptamers suffer from insufficient loading capacity, serum instability, and rapid renal clearance, all of which limit their clinical application. Of these aptamer drug conjugates or complexes, none have reached Phase III clinical trials or entered the market. Zhou et al. (2016).

[0008] To overcome the aforementioned drawbacks and increase the drug-to-antibody / aptamer ratio (DAR) while simultaneously preserving the affinity of the antibody / aptamer to the corresponding target, a novel strategy has been developed utilizing biocompatible, hydrophilic, and non-degradable copolymers as carriers for activators. A large number (any desired number within limits) of activator molecules can be loaded onto the polymer. The copolymer can be coupled to a tumor targeting moiety, such as a monoclonal antibody or aptamer. This coupling can be performed either before or after loading the copolymer onto the activator or other payload. Due to its high hydrophilicity, the copolymer can carry even highly hydrophobic cytotoxic drugs while simultaneously maintaining the pharmacodynamic properties of the corresponding antibody / aptamer. The methods presented herein have the advantage that only one coupling site is required to bind multiple activator molecules to an antibody or aptamer molecule. By using site-directed coupling methods, such as an enzymatic coupling reaction, on a peptide tag at the C-terminus of the antibody's heavy chain, the activator-containing copolymer is positioned at an appropriate distance from the antibody-binding interface. This method preserves maximum affinity to the target tissue and also yields a relatively homogeneous product. The selected coupling strategy forms a stable peptide bond between the copolymer and the antibody / aptamer, which ensures high stability of the ADC in the bloodstream. Furthermore, copolymers of the selected design facilitate the coupling of two or more different activators to the same copolymer molecule, enabling combination therapy. When an activator (e.g., a cytotoxic drug in the context of cancer) is released into target cells, e.g., tumor cells, and the targeted portion (e.g., antibody or aptamer) is degraded, the relatively small copolymer is thought to be removed from the body by renal clearance. [Prior art documents] [Non-patent literature]

[0009] [Non-Patent Document 1] Berger, NA et al. (2006) Cancer in the Elderly, Transactions of the American Clinical and Climatological Association 117: 147-156 [Non-Patent Document 2] Yancik, R (2005) Cancer J. 11: 437-41 [Non-Patent Document 3] Zhou, Q. (2017) Biomedicines 5(4);Reichert, JM (2017) MAbs 9: 167-181 [Non-Patent Document 4] Mullard, A (2013) Nat Rev Drug Discov 12: 329; Beck, A et al. (2017) Nat Rev Drug Discov 16: 315-337

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[0010] Summary of the Invention This disclosure relates to a copolymer molecule comprising multiple molecules of a first payload molecule, and a method for producing this copolymer. The copolymer supporting the payload is (a)(1) A co-principal monomer of formula I containing the azide moiety, [ka] [wherein R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Z is H (if A is -O-) or -C n H 2n+1(Here, n=1 to 8, A is -O- or -NH-, and L is a linker / spacer that can be cleavable or non-cleavable under physiological conditions.) (2) A polymerizable main monomer characterized in that the monomer has at least one vinyl group and does not contain an amino acid moiety or an azide moiety, (3) Polymerizing a reaction mixture comprising an initiator system for generating free radical species, wherein the polymerization produces a copolymer, and (b) Coupling a first payload molecule, which is typically functionalized by a click-reactive group via a typical click reaction, to the azide moiety contained in the copolymer of step (a). It is made by [the following method / method]. The present invention provides, for example, the following items: (Item 1) A copolymer comprising multiple copies of a first payload molecule, wherein the copolymer is (a)(1) A monomer of formula I containing the azide moiety, [ka] [In the formula, R is -H, -CH] 3 ,-CH 2 -CH 3 or -(CH 2 ) 2 -CH 3 And X is -NH(CH 2 ) 4 -, -NH(CH 2 ) 3 -, -OC 6 H 4 -CH 2 -, -O-CH 2 -, -O-CH(CH 3 )-,-S-CH 2 -or-NH-C 6 H 4 -CH 2 - and Z is H or -C n H 2n+1 (Here, n=1 to 8, A is -O- or -NH-, and L is a linker / spacer.) (2) A monomer having at least one vinyl group and not containing either an amino acid or azide moiety, (3) Polymerizing a reaction mixture comprising an initiator system for generating free radical species, wherein the polymerization produces a copolymer, and (b) coupling the first payload molecule with the azide portion contained in the copolymer of step (a). A copolymer that can be obtained by [method]. (Item 2) The reaction mixture is, Formula II

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[0011] The term "amino acid moiety" refers to an amino acid containing alpha-amino and alpha-carboxyl functional groups that are coupled to the acrylic moiety via their reactive side chains and are functionalized or not functionalized. The term "azide moiety" refers to an azide group.

[0012] Preferably, the X portion is bonded to the C(O)- portion via its -NH-, -O-, or -S- group.

[0013] Within the scope of the present invention, the “initiator system for generating free radical species” is not intended to be particularly limited, and any such system known to those skilled in the art may be used. Examples are described herein. The term is also intended to encompass the use of UV radiation for generating free radical species.

[0014] As preferredly understood herein, if A is -O-, then Z is H or -C n H 2n+1 (Here, n=1 to 8), and on the other hand, if A is -NH-, then Z is -C nH 2n+1 (Here, n=1 to 8). Alternatively, Z is H or -C n H 2n+1 (Here, n can preferably be defined as n=1 to 8). Preferably, if A is -O-, then Z is preferably H.

[0015] The above reaction mixture is composed of the co-major monomers of formula II. [ka] [In the formula, R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Y is H or -CO-C n H 2n+1 (Here, n=1 to 8), and Z is either H (when A is -O-) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) and / or co-major monomers of formula III [ka] [In the formula, R is -H, -CH3, -CH2-CH3, or -(CH2)2-CH3, and Z is H (when A is O) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) It can further include

[0016] As preferredly understood herein, if A is -O-, then Z is H or -C n H 2n+1 (Here, n=1 to 8), and on the other hand, if A is -NH-, then Z is -C n H 2n+1 (Here, n=1 to 8). Alternatively, Z is H or -C n H 2n+1(Here, n can preferably be defined as n=1 to 8). Preferably, if A is -O-, then Z is preferably H.

[0017] An exemplary non-cutting linker / spacer L in formula I is -CO-C n H 2n (Here, n=1~10) or -CO-PEG n (Here, n can be 1 to 14). Preferably, PEG n This is the formula -(OCH2CH2) n -or-(CH2CH2O) n - is understood herein as a portion by which. The cleavable linker / spacer L of formula I includes cathepsin B-sensitive linkers such as dipeptide linkers, -CO-valine-citrulline-PABC or its variants, tripeptide linkers such as valine-lysine, valine-alanine, valine-arginine, or glutamate-valine-citrulline, pH-sensitive linkers such as hydrazone, or cis-aconityl-based linkers which are linkers for lysosome trafficking and cleavage, such as diester pyrophosphate. PABC is para-aniline-beta-carbamate. Variants are preferably defined herein as portions that replace citrulline with another amino acid residue.

[0018] Copolymers comprising monomers of formula I and formulas II and / or III can be loaded with two different payloads. The first payload is typically functionalized with a click-reactive group but reacts with the azide moiety of the monomer of formula I. The second payload is typically derivatized to contain a suitable reactive group but is bonded to either the alpha-amino or alpha-carboxyl group of the amino acid moiety of the monomers of formulas II and III. This requires that in at least one fraction of the monomers of formulas II and / or III, there is either an alpha-amino or alpha-carboxyl group or it is not functionalized (free), i.e., either or both of Y and Z in the monomer of formula II are H, and / or Z in the monomer of formula III is H. The copolymer of step (a) may be loaded first with the first payload and then with the second payload. Alternatively, the copolymer of step (a) may be loaded first with the second payload and then with the first payload. Therefore, the preparation of the payload-supported copolymer involves a polymerization step (a), a coupling step (b), and a further step in which a second payload molecule containing a reactive group is coupled to a comajor monomer of formula II and / or III. The latter step can be performed before or after step (b).

[0019] Depending on the structure of the activator, the activator molecule can react directly or indirectly via a linker structure with the azide group of the co-major monomer of formula I of the copolymer, or with the alpha-amino or alpha-carboxyl group of the co-major monomer of formula II and / or III. The latter linker should be stable during storage and in the bloodstream to avoid the unintended release of cytotoxic drugs. The linker may be cleavable by certain intracellular enzymes, or it may be of the "non-degradable" type, only destroyed in the harsh environment of lysosomes and peroxisomes.

[0020] In a preferred embodiment, the copolymer (of step (a)) is prepared by polymerization of a reaction mixture further comprising a RAFT agent for controlling copolymerization. The RAFT agent may comprise 2 to 30 units of monodisperse spacers. Furthermore, the RAFT agent may feature reactive groups that can be used, for example, to bind cell-type specific or tissue-type specific targeting moieties to the copolymer. The latter reactive groups may be thiols, aldehydes, alkynes, azides, amines, carboxyls, esters, diazilines, phenyl azides, thioesters, diazos, Staudinger-reactive phosphinoesters (or phosphinothioesters), hydrazines, oximes, acrylates for carrying out aza-Micheal ligation, or motifs that can be used in enzyme coupling reactions. The motifs may be oligoglycines containing 2 to 8 amino acids (this peptide motif enables saltase-mediated coupling reactions), transglutaminase-reactive substrates, aldehyde tags, autocatalytic intein sequences, or click-reactive groups. Alternatively, the RAFT agent may be converted after polymerization to provide a reactive group for the binding of cell-type specific or tissue-type specific targeting moieties of the copolymer. Generally, the RAFT agent is inactivated upon completion of polymerization and / or functionalization, where the elimination of the RAFT group is carried out by heat treatment, reaction with a suitable amine (aminogenesis), or a new reaction with an initiator molecule in the presence of a phosphorus oxoacid, or with an excess amount of initiator without the use of a phosphorus oxoacid.

[0021] The preparation of the copolymer (step (a)) may also involve two sequential polymerization reactions. The first reaction mixture comprises a polymerizable main monomer that does not contain an amino acid group or azide moiety, a RAFT agent for controlling copolymerization, and an initiator system for generating free radical species, and polymerization may yield a RAFT prepolymer. The second polymerization reaction is carried out in a second reaction mixture comprising the RAFT prepolymer from the first polymerization reaction, a co-main monomer of formula I, and an initiator system for generating free radical species. The second reaction mixture may further comprise a co-main monomer of one or both of formulas II and III, and / or a polymerizable main monomer that does not contain an amino acid moiety or azide moiety.

[0022] The copolymers of this disclosure are typically further functionalized by cell-type-specific or tissue-type-specific targeting moieties. The targeting moieties may be attached to the copolymer either before or after its functionalization by a first and / or second payload molecule, i.e., before or after step (b) or the step involving the coupling of the second payload molecule to the comajor monomer of formula II and / or III.

[0023] Potential targeting moieties include, but are not limited to, monoclonal antibodies, antibody fragments, nano-bodies (single-domain antibodies), DARPin (designed ankyrin repeat protein), peptide hormones, proteins that bind to proteins expressed on the surface of tumor cells, DNA or RNA-based aptamers, or small molecules that can bind to cell surface receptors known to be overexpressed on tumor cells, such as folic acid or biotin. Covalent bonding of the targeting moiety is carried out in a site-specific manner, typically involving a reactive group at the head group of the copolymer (usually introduced by a RAFT agent or a conversion of the aforementioned RAFT agent). Appropriate coupling strategies include so-called "click reactions" that use a reactive group at the head group of the copolymer (e.g., a strained alkyne for [3+2] cycloaddition or a strained alkene for [4+2] cycloaddition) and then use to bind a cell-type-specific or tissue-type-specific targeting moiety containing a "click reaction counterpart" (e.g., an azide for [3+2] cycloaddition or a tetrazine for [4+2] cycloaddition). The reactive moieties of the click reaction described above are intended to be interchangeable. The “click reaction” used to modify the copolymer with the payload molecule and to bind the target moiety to the copolymer can be carried out in a sequential manner, or “in parallel” with the use of orthogonal and compatible click reactions, such as a combination of [3+2] and [4+2] cycloaddition reactions.

[0024] Typically, modification of the target site using a click reaction counterpart should be carried out in a site-directed manner, for example, by using enzyme coupling techniques such as transglutaminase-mediated or saltase-mediated coupling, or by incorporating non-standard (non-natural) amino acids into the target site during or after synthesis.

[0025] In different embodiments, enzyme coupling reactions can also be used to directly modify cell-type or tissue-type-specific targeting moieties using copolymers containing multiple payload molecules. This is done by modifying the head groups of the polymer with appropriate tags, such as oligoglycine, aldehyde tags, or transglutaminase tags for saltase-mediated coupling. In the case of transglutaminase-mediated reactions, the head groups of the copolymer introduced by an appropriate chain transfer agent can include peptide motifs containing reactive lysine (or glutamine) residues, or non-peptide motifs, such as linker structures containing terminal amino groups. The latter head group modifications can be used in combination with microbial transglutaminases known to accept non-peptide motifs at high turnover rates, among other things.

[0026] The payload molecule may be an activator or a chelating agent. In the case of the payload-supported copolymer of this disclosure in which the payload is a chelating agent, the copolymer is incubated or exposed with an activator that can be captured by the chelating agent. Preferably, the circumstances under which the copolymer is exposed with an activator refer to contacting the copolymer with the activator, as disclosed herein. Using a chelating agent as the payload molecule may be particularly beneficial in the case of short-lived radioisotopes that can be conjugated to the payload-supported copolymer immediately before use in diagnosis or treatment.

[0027] For clarity, terms used above and in the claims, such as “comajor monomer of formula I,” “major monomer,” “comajor monomer of formula II,” “RAFT agent,” and “initiator system,” are not intended to refer to multiple molecules of the same kind. The singular form is intended to include the plural form. For example, the term “comajor monomer of formula I” is intended to indicate the presence of an amount of one or more chemically distinct compounds that satisfy the requirements of formula I.

[0028] In any of the copolymers described above that support multiple payload molecules, the copolymer has an average molecular weight of 5,000 to 80,000 daltons. More preferably, the copolymer has an average molecular weight of 5,000 to 40,000 daltons. Most preferably, the copolymer has an average molecular weight of 5,000 to 20,000 daltons. These molecular weights do not include the weight of the coupled targeted moiety. The average molecular weight of the copolymer in the present invention is preferably understood as a number-average molecular weight calculated based on size exclusion chromatography (SEC) / gel permeation chromatography (GPC) measurements compared to known molecular weight standards which are different pullulan polymers herein. See the method presented in Example 13 for details. Alternatively, or in addition, in any of the copolymers described above that support multiple payload molecules, at least 80%(w) of the copolymer molecules have an average molecular weight of 5,000 to 80,000 daltons. More preferably, at least 80%(w) of the copolymer molecules have an average molecular weight of 5,000 to 40,000 daltons. Most preferably, at least 80%(w) of the copolymer molecules have an average molecular weight of 5,000 to 20,000 daltons. Here, the percentage portions presented in the previous paragraph are the results of the polydispersity index (PDI) of the copolymer. The degree of dispersion (D), also called the polydispersity index (PDI) or isomerism index, is a measure of the distribution of molecular mass in a given polymer sample. The D(PDI) of a polymer is defined by the formula PDI = Mw / Mn, where Mw is the weight-average molecular weight and Mn is the number-average molecular weight measured by gel permeation chromatography using a known polymer as a reference standard. The degree of dispersion indicates the distribution of individual molecular masses in a batch of polymer. The PDI of the copolymer in the present invention is typically in the range of 1.03 to 1.4, preferably 1.05 to 1.35, more preferably 1.1 to 1.30, and most preferably 1.15 to 1.25. Unless otherwise specified, the PDI is characterized by the method presented in Example 13.

[0029] Preferably, in copolymers containing the co-major monomer of formula I as the sole co-major monomer, the average number of co-major monomers is 2 to 12. More preferably, the copolymer contains an average of 2 to 8 co-major monomers, most preferably 2 to 6. For copolymers also containing unfunctionalized co-major monomers of formula II and / or formula III, the preferred average number of all co-major monomers is 10 to 50. More preferably, the average number of co-major monomers is 10 to 40, and most preferably, the average number of co-major monomers is 10 to 30. When the co-major monomers of formula II and / or formula III are functionalized with the payload molecule, the preferred average number of all co-major monomers is 4 to 20. More preferably, the average number of co-major monomers is 4 to 15, and most preferably, the average number of co-major monomers is 4 to 10. As understood herein, the term “functionalized” refers to the bonding of a second payload molecule to the monomers of formula II and / or formula III. If a monomer is not functionalized, it should be understood that it is not included in the second payload molecule. In other words, the second payload molecule is not bound to it.

[0030] If the payload molecule contained in the copolymer of this disclosure is an activator, the activator may be a microtubule inhibitor, an insertion agent, alkylating agent, antimetabolite, hormone or hormone receptor modulator, tyrosine kinase inhibitor, polynucleotide-based drug capable of interfering with genes or corresponding messenger RNA, protein-based bacterial toxin, enzyme suitable for prodrug therapy (ADEPT concept), or radioisotope. The activator may also be a tracer molecule containing a small molecule fluorophore, protein / peptide-based fluorophore, near-infrared (NIR) fluorescent probe, bioluminescent probe, contrast agent, or radioisotope. The present invention preferably, A copolymer comprising multiple copies of a first payload molecule, (a) The monomer of formula II (1) and [ka] [In the formula, R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, Y is H, and Z is H (if A is -O-) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) (2) A monomer having at least one vinyl group and not containing either an amino acid or azide moiety, (3) Polymerizing a reaction mixture containing an initiator system for generating free radical species, wherein the polymerization produces a copolymer. (b) Treat the copolymer from step (a) with an amine-reactive agent containing the linker / spacer L and the azide moiety. (c) Coupling the first payload molecule to the azide portion contained in the copolymer of step (b). It further includes copolymers that can be obtained by [method].

[0031] Alternatively, Y is H or -C n H 2n+1 B can also be defined as (where n=1 to 8) (where B is H or OH), preferably Y is H. If A is -O- as preferred herein, then Z is H or -C n H 2n+1 (Here, n=1 to 8), and on the other hand, if A is -NH-, then Z is -C n H 2n+1 (Here, n=1 to 8). Alternatively, Z is H or -C n H 2n+1 (Here, n can preferably be defined as n=1 to 8). Preferably, if A is -O-, then Z is preferably H.

[0032] The above reaction mixture is a monomer of formula III. [ka] [In the formula, R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, and Z is H (when A is O) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) It may be further preferably supplemented with

[0033] As preferredly understood herein, if A is -O-, then Z is H or -C n H 2n+1 (Here, n=1 to 8), and on the other hand, if A is -NH-, then Z is -C n H 2n+1 (Here, n=1 to 8). Alternatively, Z is H or -C n H 2n+1 (Here, n can preferably be defined as n=1 to 8). Preferably, if A is -O-, then Z is preferably H. More preferably, the present invention relates to formula (R1a) [ka] [wherein R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Z is H (if A is -O-) or -C n H 2n+1 The present invention relates to copolymers comprising repeating units of [where n=1 to 8, A is -O- or -NH-, and L is a linker / spacer], where L is defined herein. Polymers defined herein can be obtained by the methods of the present invention.

[0034] As preferredly understood herein, if A is -O-, then Z is H or -C n H 2n+1 (Here, n=1 to 8), and on the other hand, if A is -NH-, then Z is -C n H 2n+1(Here, n = 1 - 8). Alternatively, Z is such that Z is H or -C n H 2n+1 It can also be preferably defined that (here, n = 1 - 8). Preferably, when A is -O-, Z is preferably H.

[0035] More preferably, the present invention relates to a copolymer containing repeating units of formula (R1)

Chemical formula

[0036] As preferably understood herein, when A is -O-, Z is H or -C n H 2n+1 (here, n = 1 - 8), while when A is -NH-, Z is -C n H 2n+1 (here, n = 1 - 8). Alternatively, Z is such that Z is H or -C n H 2n+1 It can also be preferably defined that (here, n = 1 - 8). Preferably, when A is -O-, Z is preferably H. Preferably, the copolymer containing repeating units of formula (R1a) or the copolymer containing repeating units of formula (R1) is of formula (R2):

Chemical formula

Chemical formula

[0037] As preferably understood herein, when A is -O-, Z is H or -C n H 2n+1 (where n = 1 to 8), while when A is -NH-, Z is -C n H 2n+1 (where n = 1 to 8). Alternatively, Z can be preferably defined as Z being H or -C n H 2n+1 (where n = 1 to 8). Preferably, when A is -O-, Z is preferably H.

[0038] Preferably, Z may be H and / or Y may be H. Alternatively, Z and / or Y may include a second payload molecule, which is defined herein. Alternatively, in certain embodiments, Z may be H or C n H 2n+1 (where n=1~8) or Z contains a second payload molecule.

[0039] More preferably, the copolymer of the present invention is obtained by polymerization of N,N-dimethylacrylamide, N-isobutylacrylamide, N-tert.butylacrylamide, N-hydroxyethylacrylamide, N-(2-hydroxypropyl)-acrylamide, N-(3-hydroxypropyl)-acrylamide, N-(3-hydroxypropyl)-methacrylamide, N-(2-hydroxypropyl)-methacrylamide, N-(3-aminopropyl)-acrylamide hydrochloride, or N-(3-aminopropyl)-methacrylamide hydrochloride. The material includes repeating units that can be obtained by polymerization of methacrylic acid, 2-hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 3-hydroxypropyl acrylate, 2-hydroxy-1-methylethyl acrylate, 2-aminoethyl acrylate hydrochloride, 3-hydroxypropyl methacrylate, 2-hydroxy-1-methylethyl methacrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, or 2-aminoethyl methacrylate hydrochloride.

[0040] More preferably, in the copolymer of the present invention, there are no repeating units of formula (R2) and (R3), and the average number of repeating units of formula (R1) per molecule of the copolymer is 2 to 12, preferably 2 to 8, and more preferably 2 to 6.

[0041] More preferably, in the copolymer of the present invention, the repeating units of formula (R2) or (R3) are not functionalized as defined herein, and the average number of repeating units of formula (R1), (R2), or (R3) per molecule of the copolymer is 10 to 50, preferably 10 to 40, more preferably 10 to 30.

[0042] More preferably, in the copolymer of the present invention, the repeating units of formula (R2) or (R3) are functionalized with a second payload molecule, and the average number of repeating units of formula (R1), (R2), or (R3) per molecule of copolymer is 4 to 20, preferably 4 to 15, more preferably 4 to 10.

[0043] This disclosure also relates to pharmaceutical compositions comprising an effective amount of the copolymer of this disclosure containing multiple molecules of an activator that are covalently bonded or captured by a covalently bonded chelating agent, and a carrier. Depending on the properties of the activator, these compositions can be used to treat various cancers or other diseases / conditions.

[0044] The Disclosure also includes methods for treating different types of cancer or other diseases and conditions, which include administering a pharmaceutical composition comprising an effective amount of the copolymer of the Disclosure, which contains multiple molecules of an activator captured by a covalently bonded activator or a covalently bonded chelating agent, and a carrier (also referred to herein as the “active portion”). The use of a pharmaceutical composition comprising an effective amount of the copolymer of the Disclosure, which contains multiple molecules of an activator captured by a covalently bonded activator or a covalently bonded chelating agent, and a carrier, for treating a target cancer or another disease or condition, including administering an effective amount of the copolymer to the target, is also within the scope of the Disclosure.

[0045] The present invention more preferably relates to the use of the copolymer in therapy, wherein the copolymer comprises a first payload molecule and a second payload molecule, the first payload molecule and the second payload molecule being two activators administered together as a combination therapy.

[0046] The present invention more preferably relates to copolymers for use in diagnostic applications, preferably for monitoring cancer. Preferably, cancer monitoring is performed concurrently with cancer therapy. Preferably, the copolymer contains radionuclides useful for diagnosis, as disclosed herein. [Modes for carrying out the invention]

[0047] Unless otherwise defined, all terms have their usual meanings in the relevant technology. The following terms are defined and have the following meanings:

[0048] As used herein, “pharmaceutically acceptable carriers or excipients” are intended to include any solvent, dispersion medium, coating, antimicrobial and antifungal agent, isotonic and absorption retardant, etc., that is suitable for pharmacopoeia administration, including, for example, sterile pyrogen-free water. Suitable carriers are listed in Remington's Pharmaceutical Sciences (Mack Publishing Co., Easton, PA, 19th ed. 1995), the standard reference text in this field, and are incorporated herein by reference. Non-limiting examples of materials that can function as pharmaceutically acceptable carriers include sugars such as lactose, glucose, and sucrose; cyclodextrins such as alpha-, beta-, and gamma-cyclodextrins; starches such as corn starch and potato starch; cellulose, and its derivatives such as sodium carboxymethylcellulose, ethylcellulose, and cellulose acetate; tragacanth powder; malt; gelatin; talc; excipients such as cocoa butter and suppository waxes; peanut oil, cottonseed oil, safflower oil, sesame oil, olive oil, corn oil, and dyes. Oils such as tung oil; glycols such as propylene glycol; esters such as ethyl oleate and ethyl laurate; agar; buffers such as magnesium hydroxide and aluminum hydroxide; alginic acid; pyrogen-free water; isotonic saline; Ringer's solution; ethyl alcohol; and phosphate buffer solution, as well as other non-toxic and compatible lubricants such as sodium lauryl sulfate and magnesium stearate. Similarly, colorants, release agents, coating agents, sweeteners, flavorings and fragrances, preservatives, and antioxidants may also be present in the composition at the discretion of the formulationer. Emulsifiers / surfactants such as cremophor EL and solutol HS15, lecithin, and phospholipids such as phosphatidylcholine are also included. Liposomes may also be used. The use of such media and agents in pharmaceutically active substances is well known in the art. Their use in the composition is considered unless any conventional media or agent is incompatible with the active compound.Supplemental active compounds can also be incorporated into the composition.

[0049] As used herein, the term "subject" refers to a mammalian subject. Preferably, the subject is a human subject.

[0050] The term “active moiety” refers to the copolymer of the present disclosure which includes multiple molecules of the payload molecule (which may be further functionalized by cell-type specific or tissue-type specific targeting moieties), and where the payload molecule is a chelating agent, the term also refers to the copolymer which includes the activator captured by the chelating agent.

[0051] In the context of this disclosure, the term “cell type or tissue type specific targeting moiety” refers to a molecule that binds to a surface marker on a cell of a particular type or tissue having binding activity, thereby becoming useful for delivering a cargo activator to the cell. This may be a monoclonal antibody, a single domain, a variable region fragment of an antibody chain, a single-chain antibody, DARPin (designed ankyrin repeat protein), a DNA or RNA-based aptamer, a peptide-based aptamer, a peptide or protein capable of binding to a cell surface marker, a hormone, or a small molecule capable of binding to a cell surface marker.

[0052] A "tracing molecule" is defined as a molecule that can produce a read signal for diagnostic or scientific applications. This can be a small molecule fluorophore, a protein / peptide-based fluorophore, a near-infrared (NIR) fluorescent probe, a bioluminescent probe, a contrast agent, or a radioisotope.

[0053] The “effective dose” of the active portion in this disclosure means the amount of the active portion that, when administered once or several times during a treatment, imparts a therapeutic effect to the subject being treated with a reasonable benefit / risk ratio applicable to any medical treatment. The therapeutic effect may be objective (i.e., measurable by some test or marker) or subjective (i.e., the subject communicates signs of or feels an effect). The effective dose of the active portion in this disclosure is preferably an amount of the active portion containing the activator in the range of about 0.01 mg / kg of body weight of the subject to about 50 mg / kg of body weight, more preferably about 0.1 to about 30 mg / kg of body weight. The effective dose also varies depending on the route of administration and the possibility of co-usage with other drugs. However, it is understood that the total amount of the active portion and pharmaceutical composition used per day in this disclosure should be determined within the scope of the reasonable medical judgment of the attending physician. The specific effective dose level for any particular patient is determined by a variety of factors, including the disorder being treated and its severity; the activity of the specific activator used; the specific composition used; the patient's age, weight, general health, sex, and diet; the timing, route of administration, and elimination rate of the specific active ingredient used; the duration of the treatment; drugs used in combination with or concurrently with the specific active ingredient used; and similar factors well known in medical technology. When used in the context of prevention or prevention, it should be noted that the “effective dose” of the active ingredient in this disclosure is intended to be the amount of the active ingredient that, when administered once or several times during the treatment, confers the desired preventive effect to the subject being treated.

[0054] The term "payload molecule" or "payload" refers to either an activator that is covalently bonded to a copolymer directly or via a linker, or a chelating agent that is covalently bonded to the copolymer and can capture the activator. Radioactive isotopes can be immobilized using chelating agents that are covalently coupled to the copolymer. Chelating agents include, but are not limited to, (1,4,7,10)-tetraazacyclododecane-1,4,7,10-tetraacetic acid [DOTA], 2,2',2”-(10-(2,6-dioxotetrahydro-2H-pyran-3-yl)-1,4,7,10-tetraazacyclododecane-1,4,7-triyl)triacetic acid [DOTA-GA], 1,4,7-triazacyclononane-N,N',N”-triacetic acid [NOTA], 1,4,8,11-tetraazacyclotetradecane-1,4,8,11-tetraacetic acid [TETA], diethylene-triamine-pentaacetic anhydride [DTPA], and sarcofadin chelators such as Sar (see Nicholas et al. 2019, Angewandte Chemie 131: 15133-15136).

[0055] The term “activator” means a therapeutically active substance bound to the copolymer of this disclosure. In the context of cancer therapy, activators are typically cytotoxic substances / molecules. Exemplary cytotoxic substances / molecules include microtubule inhibitors such as monomethyl auristatin E (MMAE) or emtansine (DM1), intercalation drugs such as doxorubicin, alkylating agents such as cyclophosphamide (CP), antimetabolites such as 5-fluorouracil (5-FU), hormone receptor modulators such as hormones or tamoxifen citrate, tyrosine kinase inhibitors such as afatinib or bosutinib, peptide-based toxins such as α-amanitin, immune checkpoint inhibitors such as nivolumab® or pembrolizumab®, and antibody-directed enzyme protozoa. This includes polynucleotide-based drugs that can interfere with enzymes, genes, or their corresponding messenger RNAs (siRNA, microRNA, or antisense RNA) suitable for drug therapy (ADEPT), as well as radioisotopes such as fluorine-18, copper-64, gallium-68, zirconium-89, indium-111, iodine-123 (for diagnostic use), copper-67, or strontium-89, yttrium-90, iodine-131, samarium-153, lutetium-177, radium-223, and actinium-225 (for therapeutic use). Further examples of active agents include scandium-43, scandium-44, terbium-152, and terbium-155 (for diagnostic use), or scandium-47, terbium-149, and terbium-161 (for therapeutic use). Some of the enumerated radionuclides are suitable for diagnostic and therapeutic applications. For example, terbium-161 can be used as a therapeutic agent and is also somewhat visible on gamma cameras due to its gamma emission, or terbium-149 can be used in targeted alpha therapy and is visible on PET scans. Furthermore, the radionuclides presented herein can be combined using a "theranostic-tandem" approach to visualize their in vivo distribution in therapeutic techniques.

[0056] The term "activator" also includes radioisotopes / radionuclides that are typically coupled to the co-major monomers of a copolymer by chelating agents that are covalently bonded to the monomers.

[0057] Within the scope of this invention, the terms “radioisotope / radionuclide” are preferably used synonymously and preferably refer to an atom that has excess nuclear energy and is thereby unstable. This excess energy can be used in one of three ways: emitted from the nucleus as gamma rays; transferred to one of its electrons and emitted as a conversion electron; or used to create and emit a new particle (alpha or beta particle) from the nucleus. Radioisotopes / radionuclides are used herein to mean 10 19 Preferably defined as an isotope having a half-life of less than a year.

[0058] The term "activator" further encompasses anti-inflammatory substances, including, for example, substances that can overcome the resistance of tumor cells by inhibiting anti-apoptotic factors such as Bcl-2, or by targeting cellular efflux pumps (such as the MDR-1 transporter), or corticosteroids, glucocorticoids, and non-steroidal anti-inflammatory drugs (e.g., prostaglandins) that are useful in reducing the side effects of inflammation-related therapies.

[0059] The term "amine-reactive agent" preferably refers to a portion that can be covalently bonded by reacting with an amino group.

[0060] The term "copy" preferably refers to multiple, i.e., more than one, example molecules, where more than one example molecules have the same chemical structure.

[0061] A "monomer" refers to a low molecular weight compound that can be polymerized. In the comajor or major monomers of formulas I-III, low molecular weight typically means a molecular weight of less than 800 daltons. When referred to in the context of copolymers, the term "monomer" refers to the smallest building block of the copolymer.

[0062] The term “repeating unit” preferably refers to a divalent substructure that is repeated multiple times in a (homo or co)polymer. Typically, in polymers that can be obtained by the (co)polymerization of monomers containing double bonds, the bond sites of the repeating unit correspond to the atoms connected by the double bonds. In other words, the repeating unit is derived from the monomer by its inclusions in the polymer.

[0063] The terms “RAFT agent” and “RAFT process” may preferably refer to any type of reversible addition-fragmentation chain transfer, and are not particularly limited. The terms “RAFT agent” and “RAFT process” involve conventional free radical polymerization of monomers in the presence of a suitable chain transfer agent (CTA). Commonly used RAFT agents include thiocarbonylthio compounds such as dithioesters, dithiocarbamates, trithiocarbonates, and xanthannes, which mediate polymerization via a reversible chain transfer process. Chiefari, J. et al. (1998) Macromolecules 31(16): 5559-62.

[0064] The term "prepolymer" refers to a short polymer in which the RAFT agent is located in the head portion and contains 10 to 25 units of a hydrophilic major monomer, such as dimethylacrylamide. Such prepolymers represent water-soluble macro-RAFT agents used in a second polymerization reaction to synthesize copolymers of major and comajor monomers in an aqueous environment.

[0065] The terms “substrate, motif, or tag” or “reactive substrate, motif, or tag” are used interchangeably with respect to chemical structures capable of participating in enzyme-catalyzed reactions. These chemical structures are recognized by the active site of an enzyme and may intermediately form covalent or electrostatic enzyme-substrate complexes before the enzyme-catalyzed reaction occurs. In the context of this disclosure, these reactions are often used to mediate the covalent bonding of the copolymers of this disclosure to tumor cells or tissue-specific targeting sites. Typical substrates, motifs, and tags are definitive sequences of amino acids or peptides, reactive functional groups such as amino, thiol, or carboxyl groups, or unsaturated carbon bonds in the mobile spacer region of copolymer head groups.

[0066] The term "polymer-like reaction" is preferably defined as an intentional alteration of the functional groups carried in the polymer chain, for the general purpose of maintaining the original degree of polymerization of the polymer.

[0067] The term “antibody-drug conjugate,” abbreviated as “ADC,” refers to a combination of an antibody that targets a cell-type or tissue-type specific antigen (including tumor antigens) and one or more drug molecules, where the drug molecules are covalently bound to the antibody. In the context of this disclosure, ADC refers to a conjugate of a cell-type or tissue-type specific antigen-targeting antibody and a copolymer presenting multiple molecules of the activators of this disclosure. As considered, the copolymers of this disclosure carry multiple activator molecules, or combinations of different activator molecules, covalently bound to the azide, alpha-amino, and alpha-carboxyl groups of the co-major monomers, either via linkers or directly. Multiple chelating agents may also be carried, covalently bound to the azide, alpha-amino, and alpha-carboxyl groups of the co-major monomers, either via linkers or directly, the chelating agents capturing the activator molecules.

[0068] The term “antibody-radionuclide conjugate” (ARC) is preferably defined as a variant of ADC, where “drug molecule or active molecule” refers to a radionuclide / radioisotope covalently bonded to an antibody polymer conjugate, for example, radioactive iodine, or to a metal chelator complex with, for example, radioactive lutetium, actinium, or terbium. The ARC thus formed can kill tumor cells by delivering a large amount of radiation to tumor tissue, thereby damaging DNA, essential enzymes, etc.

[0069] The term "aptamer" is defined as follows: An aptamer is an oligonucleotide or peptide molecule that binds to a specific target molecule. Aptamers are typically created by selecting from a large random sequence pool in a repeating enrichment process to identify the aptamer sequence with the best target affinity. This process is also known as "in vitro evolution (SELEX)". More specifically, aptamers can be classified into DNA, RNA, xeno nucleic acid (XNA) (synthetic substitutes for natural nucleic acids with different sugar backchains), or peptide aptamers. Aptamers consist of (usually short) chain oligonucleotides or sequences of amino acids. Here, oligonucleotide sequences can be formed from one type of nucleotide, e.g., DNA, or from a combination of different nucleotide types, e.g., DNA, RNA, and / or specially designed so-called "locked-nucleotides" that have a ribose moiety modified by an external crosslink connecting the 2' oxygen and 4' carbon. The aptamers in this disclosure also refer to peptide aptamers consisting of one (or more) short peptide domains.

[0070] The term "aptamer-drug conjugate" means a combination of an aptamer and an activator molecule or different activator molecules. In the context of this disclosure, the activator molecule is conjugated to the copolymer either before or after the coupling of the copolymer and the aptamer.

[0071] The term “enhanced permeability and persistence (EPR) effect” is used to describe the abnormal molecular and fluid transport dynamics in tumor tissue, particularly for macromolecular drugs. Molecules of certain sizes (typically liposomes, nanoparticles, and macromolecular drugs) tend to accumulate in tumor tissue at higher levels than in normal tissue. A common explanation for this phenomenon is that tumor cells must stimulate the production of blood vessels in order to proliferate rapidly. These newly formed tumor vessels are usually abnormal in morphology and structure, allowing macromolecular molecules to permeate them. Furthermore, tumor tissue typically lacks effective lymphatic drainage; therefore, once molecules enter the tumor tissue, they are not effectively removed from it.

[0072] In the context of co-major monomers, the term "side-chain linked amino acid" means that an amino acid is covalently linked to a moiety containing an acryloyl group via its side chain (e.g., via an ester or amide linkage). Monomers of formulas I-III include side-chain linked amino acids.

[0073] The terms “principle monomer” and “coprinciple monomer” are used primarily to facilitate the explanation of the present invention. A principal monomer refers to a monomer that does not contain an amino acid moiety, i.e., a functionalized or unfunctionalized amino acid, or an azide group, while a coprinciple monomer refers to a monomer that contains an amino acid moiety. Preferably, the terms “principle monomer” or “polymerizable principal monomer” are used interchangeably with the terms “a monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety” or “a monomer not containing an amino acid moiety or an azide moiety.” Preferably, the terms “principle” and “principal” are used interchangeably herein.

[0074] Side-chain linked amino acids that may be present in the co-major monomers of this disclosure include lysine (K), tyrosine (Y), serine (S), threonine (T), cysteine ​​(C), 4-hydroxyproline (HO-P), ornithine (ORN), and 4-aminophenylalanine (HOX). The amino acids may be L-type, D-type, or racemic mixtures. The copolymer may contain a single type of side-chain linked amino acid or multiple types of side-chain linked amino acids. For example, the copolymer may contain both acryloyl-L-lysine (AK) and acryloyl-L-threonine (AT). For clarity, all monomers described by formulas I-III contain side-chain linked amino acids. The monomer of formula I is functionalized with an azide group at the alpha-amino group of the amino acid. The monomers of formulas II and III may be unfunctionalized or functionalized with the alpha-amino and / or alpha-carboxyl groups of the amino acid moieties containing them. The amino acid-containing copolymers of this disclosure comprise one or more polymerizable major monomers having at least one vinyl group but not containing an amino acid residue or an azide residue, one or more co-major monomers of any of Formula I, and optionally one or more co-major monomers of Formula II and / or Formula III.

[0075] Preferably, in copolymers containing only the co-major monomers of formula I, the average number of co-major monomers is 2 to 12. More preferably, the copolymer contains an average of 2 to 8 co-major monomers, most preferably 2 to 6. For copolymers also containing unfunctionalized co-major monomers of formula II and / or formula III, the preferred average number of all co-major monomers is 10 to 50. More preferably, the average number of co-major monomers is 10 to 40, and most preferably, the average number of co-major monomers is 10 to 30. When the co-major monomers of formula II and / or formula III are functionalized, the preferred average number of all co-major monomers is 4 to 20. More preferably, the average number of co-major monomers is 4 to 15, and most preferably, the average number of co-major monomers is 4 to 10.

[0076] The synthesis of monomers containing side-chain linked amino acids has been previously described: Zbaida, D et al. (1987) Reactive Polymers, Ion Exchangers, Sorbents 6(2-3): 241-253. Such monomers can be prepared by reacting an amino acid copper complex of lysine, tyrosine, serine, threonine, cysteine, ornithine, 4-aminophenylalanine, or 4-hydroxyproline with one of acryloyl chloride, methacryloyl chloride, ethylacryloyl chloride, or propylacryloyl chloride, followed by treatment with a hydrogen sulfide gas stream or an acidic solution of sodium sulfide to produce an unprotected monomer. The synthesis is disclosed in International Patent Application Publication WO2017 / 055536 and in the examples.

[0077] In certain embodiments, the major monomer is a derivative of acrylamide and includes dimethylacrylamide, N-isobutylacrylamide, N-tert.butylacrylamide, N-hydroxyethylacrylamide, N-(2-hydroxypropyl)acrylamide, N-(3-hydroxypropyl)acrylamide, N-(3-hydroxypropyl)methacrylamide, N-(2-hydroxypropyl)methacrylamide, N-(3-aminopropyl)acrylamide hydrochloride, or N-(3-aminopropyl)methacrylamide hydrochloride. Herein, dimethylacrylamide is preferably understood as N,N-dimethylacrylamide. Preferably, the major monomer as understood herein also refers to monomers having at least one vinyl group and containing neither an amino acid moiety nor an azide moiety.

[0078] In other specific embodiments, the major monomer is a derivative of acrylic acid and includes 2-hydroxyethyl acrylate meth-acrylate, 2-hydroxypropyl acrylate, 3-hydroxypropyl acrylate, 2-hydroxy-1-methylethyl acrylate, 2-aminoethyl acrylate hydrochloride, 3-hydroxypropyl methacrylate, 2-hydroxy-1-methylethyl methacrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, and 2-aminoethyl methacrylate hydrochloride. Preferably, the major monomer as understood herein also refers to monomers having at least one vinyl group and not containing either an amino acid moiety or an azide moiety.

[0079] Copolymers comprising one or more co-major monomers of formula I and, optionally, formula II and / or formula III, are typically prepared by radical polymerization reactions. It is important that the copolymers of this disclosure have a narrow size distribution, as this requires precise control of drug load in various therapies, particularly in cancer therapy. Without careful control, overdose or insufficient efficacy may occur. To obtain copolymers with a narrow size distribution, the number of free radicals in the polymerization process must be controlled. This can be achieved by using polymerization techniques including atom transfer radical polymerization (ATRP), nitroxide-mediated polymerization (NMP), or reversible addition-fragmentation-chain transfer polymerization (RAFT polymerization). RAFT is the most preferred technique for the copolymers described herein because it is compatible with a wide range of monomers, particularly acrylic acid, and can be readily implemented in aqueous systems. Furthermore, RAFT polymerization can be used for the synthesis of block copolymers. In addition, RAFT groups can be used to add reactive moieties to the head groups of polymers (for example, for conjugation with antibodies or aptamers). RAFT technology was invented by researchers at the Commonwealth Scientific and Industrial Research Organization (CSIRO). Chiefari et al. (1998). Control of the chain size distribution is achieved via a chain transfer reaction from the growing polymer chain to the chain transfer agent. The so-called RAFT agent can form an intermediate and fragment the propagating chain into radicals (referred to as R groups) and stabilizing moieties (referred to as Z groups). As a result, the number of radicals is limited, all growing polymer chains have similar propagability, and a copolymer with a narrow size distribution is obtained. A typical polydispersity index (PDI) obtained by RAFT polymerization [defined as Mw / Mn, where Mw is the weight-average molar mass of the polymer and Mn is the number-average molar mass of the polymer] is in the range of 1.05 to 1.4. Suitable RAFT agents are thiocarbonylthio compounds.Thiocarbonylthio compounds can be divided into four main classes: dithiobenzoates, trithiocarbonates, dithiocarbamates, and xanthetes.

[0080] Accordingly, a typical polymerization mixture of the present disclosure comprises major and co-major monomers, a RAFT agent, and a radical initiator, preferably also called an "initiator system for generating free radical species." The mixture is then poured into a suitable vessel where polymerization is induced. The initiator may be a thermal initiator (e.g., VA-044, which is destabilized at high temperatures to produce reactive radicals), a redox initiator, or a photoinitiator. Preferred redox initiators for polymerization in aqueous solution are peroxides combined with sodium thiosulfate, such as ammonium persulfate or potassium persulfate, or azo compounds, such as 2,2'-azobis[2-(2-imidazolin-2-yl)propane] dihydrochloride or 4,4'-azobis(4-cyanovaleric acid). In polymerization reactions in non-aqueous solvents, azo-type initiators / catalysts, such as azobis(isobutyronitrile (AIBN), 1,1'-azobis(cyclohexane-1-carbonitride), and 2,2'-azobis(4-methoxy-2,4-dimethylvaleronitrile), are preferred. Polymer-modified azo-type initiators, such as (polydimethylsiloxane, polyethylene glycol), can also be used. The above-mentioned initiators are usually destabilized at high temperatures, leading to the formation of reactive radicals.

[0081] Alternatively, the monomers may be photopolymerized in a container that is transparent to radiation of wavelengths capable of initiating the polymerization of vinyl or acrylic monomers. Suitable photoinitiator compounds may be type I, e.g., α-aminoalkylphenone, or type II, e.g., benzophenone. Photosensitizers that allow the use of longer wavelengths may also be utilized. Depending on the initiator compound used, polymerization is initiated by heat, radiation, or the addition of a catalyst. In some embodiments of this disclosure, it is useful to synthesize a macro-RAFT or RAFT prepolymer consisting of 10 to 25 monomer units of hydrophilic major monomers before polymerization of the copolymer (including a mixture of major and co-major monomers). This can enhance the hydrophilicity of the RAFT agent, which is often hydrophobic, and facilitate the polymerization reaction in an aqueous environment.

[0082] In other embodiments, the RAFT agent itself is chemically modified by incorporating 3 to 25 units of water-soluble monodisperse polyethylene glycol (PEG) spacers. Preferably, the PEG spacer is of formula (OCH2CH2) n -or-(CH2CH2O) n -(where n is an integer between 3 and 25) is understood herein as a portion by the modified RAFT agent, which exhibits improved water solubility and enables the synthesis of hydrophilic amino acid-containing copolymers in a single polymerization step.

[0083] In other embodiments, polymer-like reactions may be useful for generating the co-major building blocks of formula I. For this purpose, the RAFT copolymer is first prepared according to the procedure presented above, except that the monomer mixture consists only of the major monomer and one or more monomers of formula II, and optionally one or more monomers of formula III. After purifying the copolymer and removing the RAFT group, the copolymer is treated with an amine-reactive agent containing a linker and azide groups to generate copolymers with azide groups in the side chains. For clarity, the copolymer obtained from this polymer-like reaction has the same structure as the copolymer produced by copolymerization involving monomers of formula I. To synthesize copolymers with different side-chain groups, for example, mixtures of formulas I and II and / or III can be synthesized in the polymer-like reaction by changing the molar ratio of the presented amine-reactive azides, thereby not converting all amino groups in the side chains of the copolymer.

[0084] RAFT agents are known to be unstable in the presence of amines and are the cause of the strong odor of the resulting copolymers; therefore, they should usually be deactivated once the polymerization and functionalization processes are complete. Preferred methods for deactivating RAFT groups in this disclosure are reaction with a nucleophile, thermal elimination, or a second reaction with a proton donor or an initiator in combination with an excess amount of a functionalization initiator.

[0085] Since the copolymers of this disclosure are intended for use in drug delivery to patients, it is generally preferred to purify the copolymers after polymerization or after functionalization (i.e., coupling of payload, targeting moiety, etc.). This step removes potentially harmful components, including residual initiators, monomers, or catalysts. Preferred methods for purifying the copolymers of the present invention are dialysis, tangential flow filtration, and capillary ultrafiltration.

[0086] It should be noted that determining useful parameter values ​​does not require excessive effort, thanks to both the limited number of parameters and the fact that preferred ranges for some parametric values ​​are publicly known. The level of co-major monomers in amino acid-containing copolymers is about 2% (mol) to 95% (mol), preferably about 3% (mol) to 40% (mol), and most preferably 4% (mol) to 25% (mol) of all monomers present in the polymerization mixture. The average molecular weight of amino acid-containing copolymers (excluding cell-type or tissue-type-specific targeting moieties) is generally about 5,000 to 80,000 Datons, preferably about 5,000 to 40,000 Da, and most preferably about 5,000 to 20,000 Da. The number of co-major monomers per copolymer of the present disclosure that may be included has been considered above for three scenarios: namely, for copolymers containing monomers of formula I as the sole type of monomer; for copolymers containing monomers of formula I and formula II and / or III, where only monomers of formula I are functionalized after polymerization (coupled to the first payload); and for similar copolymers where all co-major monomers are functionalized (coupled to the first and second payloads).

[0087] As understood herein, the term “monomer level” with respect to a particular type of monomer is preferably defined as the ratio of the number of repeating units by that particular type of monomer to the total number of repeating units by all monomers in the (co)polymer molecule. As understood herein, the level is preferably expressed as a percentage.

[0088] Once copolymerization is complete, the copolymer of the present invention, comprising the co-major monomer of formula I, is ready to be functionalized with an activator molecule and / or a cell-type-specific or tissue-type-specific targeting moiety (e.g., an antibody). This functionalization results in the establishment of a covalent bond between the copolymer and the activator molecule and / or targeting moiety. In the case of a particular activator, e.g., a particular radioisotope, the copolymer is functionalized with a chelating agent, and the activator is retained by the chelating agent. Depending on the properties of the particular activator to be bound to the copolymer, it should be noted that the copolymer may be functionalized with a cell-type-specific or tissue-type-specific targeting moiety before the activator is introduced, or the activator may be bound to the copolymer before the activator is functionalized with the targeting moiety.

[0089] The co-major monomer of formula I contains an azide moiety. The azide moiety is a highly reactive entity used in so-called "click reactions" with alkynes. In contrast to addition reactions of amines or thiols, azide-alkyne or tetrazine-transcyclooctene click reactions are rapid and highly selective. In fact, side reactions occur in addition reactions in the presence of amino and thiol groups in biological environments (peptides, proteins), making the azide group a perfect choice for drug delivery applications due to its orthogonal reactivity. Furthermore, monomers containing side-chain linked amino acids and (co)polymers containing an appropriate proportion of such monomers (at least 2 mol%) have the advantage of low toxicity. For example, acryloyl lysine monomer and (co)polymers containing this monomer do not exhibit any toxic effects in cell culture experiments at concentrations up to 5 mM. Therefore, an ideal drug carrier can be designed by functionalizing acryloyl lysine or other side-chain linked amino acids with an azide group, providing a biocompatible copolymer with a low potential for toxicity. In the field of antibody-drug conjugates (ADCs), highly toxic drugs are often used, making the preparation of such ADCs expensive and challenging from a safety standpoint. This disclosure introduces a co-reactive carrier copolymer that can be coupled to an antibody to generate a “drug-reactive” antibody polymer conjugate. The cytotoxic payload (i.e., a cytotoxic drug or a chelating agent that holds a cytotoxic drug) is coupled to the conjugate in the final phase of production. Thus, the number of production steps and downstream processes involving high-potency (HIPO) substances can be reduced. Furthermore, the techniques presented herein offer a high degree of flexibility, as the payload may also be coupled to the polymer carrier before it binds to the antibody. This may be particularly useful for antibodies that are sensitive to degradation or for other cancer cell-specific targeting moieties.

[0090] The copolymers of this disclosure may also include co-major monomers of formula II and / or III. The latter co-major monomers include side-chain linked amino acids containing free or functionalized alpha-amino and / or alpha-carboxyl groups. Copolymers comprising azide-containing monomers of formula I and monomers of formula II and / or III in which at least one alpha-amino or alpha-carboxyl group is not functionalized enable the "one-pot" coupling of antibodies with two different payload molecules. For example, the first payload molecule, e.g., a chelator for radioisotopes, is functionalized with an azide-reactive moiety (e.g., a strained alkyne), and the second payload molecule, e.g., a cytotoxic drug, is functionalized with an amine-reactive group (e.g., an NHS ester). This enables drug carriers for potent combination therapies without the risk of side reactions and "mis-labelling" due to the orthogonality of the two reactions. Furthermore, it can reduce the number of reaction and purification steps, such as dialysis, which are useful for highly sensitive and potent payload molecules. Furthermore, in cancer therapy applications, the combination techniques presented herein allow copolymers to be loaded with cytotoxic agents and diagnostic radioisotopes, and thus become traceable. Delivery of cytotoxic agents even to small tumor metastases can be tracked by high-resolution positron emission tomography (PET), providing useful information on the progression of therapy.

[0091] The hydrophilic / hydrophobic balance of the cancer cell-specific targeting moiety in antibody-drugs or polymer conjugates is crucial for the shelf life and circulation time of constructs, as aggregation tends to reduce both shelf life and circulation time, leading to decreased therapeutic efficacy. The use of polymer drug carriers is expected to reduce the risk of aggregation induced by highly hydrophobic payloads, such as certain anticancer drugs, because the drug is bound to the carrier rather than directly to the antibody. However, this positive effect can be attenuated or even negated by the much higher drug loading made possible by the use of drug carriers. In some embodiments of the copolymers of this disclosure, the latter problem is rectified by the inclusion of unfunctionalized co-major monomers of formulas II and / or III in the copolymer. Thus, azide-functionalized side-chain linked amino acids, such as acryloyl-lysine-azide, are used for coupling the payload to the carrier polymer, while highly hydrophobic unmodified side-chain linked amino acids, such as acryloyl-lysine, enable improved "solubility" of the hydrophobic payload. The overall "hydrophobicity" of the hydrophobic payload-loaded polymer carrier decreases, which in turn reduces its aggregation potential.

[0092] In certain embodiments, the activator (here, a cytotoxic drug or molecule used in cancer therapy) may be: microtubule inhibitors such as monomethyl auristatin E (MMAE) or emtansine (DM1); interstitial drugs, e.g., doxorubicin; alkylating agents such as cyclophosphamide (CP); antimetabolites such as 5-fluorouracil (5-FU); hormone receptor modulators such as hormones or tamoxifen citrate; tyrosine kinase inhibitors such as afatinib or bosutinib; peptide-based toxins, e.g., α-amanitin; or immunosuppressants such as nivolumab® or pembrolizumab®. Intogen inhibitors; enzymes suitable for antibody-directed enzyme prodrug therapy (ADEPT); polynucleotide-based drugs capable of interfering with genes or their corresponding messenger RNA, siRNA, microRNA, or antisense RNA; or radioactive isotopes such as fluorine-18, copper-64, gallium-68, zirconium-89, indium-111, iodine-123 (for diagnostic use), copper-67, or strontium-89, yttrium-90, iodine-131, samarium-153, lutetium-177, radium-223, and actinium-225 (for therapeutic use).

[0093] In certain embodiments, the activator (cytotoxic drug or molecule used in cancer therapy as herein) may be, but is not limited to, radioisotopes / radionuclides such as fluorine-18, scandium-43, scandium-44, copper-61, copper-64, gallium-68, zirconium-89, indium-111, iodine-123, terbium-152, terbium-155 (for diagnostic use), or scandium-47, copper-67, strontium-89, yttrium-90, iodine-131, terbium-149, samarium-153, terbium-161, lutetium-177, radium-223, and actinium-225 (for therapeutic use).

[0094] The inventors have found that copolymers according to the present invention, comprising a first payload molecule and a second payload molecule, are useful for co-delivering both activators to the same cancer cells, where the first and second payload molecules are activators useful in combination therapy. The cytotoxic payload may preferably be an agent that, in addition to its cytotoxic potential, has an effect on the "radiosensitivity" of cancer cells, for example, by inhibiting DNA repair mechanisms (e.g., protein kinase inhibitors) or by directly targeting DNA lines (e.g., by intercalation, as in the case of doxorubicin). Such agents are also preferably referred to herein as "radiosensitizers." In this context, such "radiosensitizers" are useful in combination therapy with radionuclides because they enhance the cell-killing effect of radiotherapy. The carrier technology disclosed herein therefore has the advantage that both agents can be bound to the same carrier molecule and coupled to the same cancer cell-specific targeting moiety to ensure "co-delivery" to the same cancer cells. For example, a first payload molecule, such as a chelator for radioisotopes, is functionalized with an azide-reactive moiety (e.g., a strained alkyne), and a second payload molecule, such as a cytotoxic drug, is functionalized with an amine-reactive group (e.g., an NHS ester).

[0095] Preferably, the radiosensitizer as understood herein for use with a radioisotope is a kinase inhibitor, preferably selected from aricertib, MK-1775, MK-2206, salakatinib, and temsirolimus, and more preferably selected from aricertib and MK-2206. Preferably, the radioisotope as understood herein for use with a radiosensitizer is selected from lutetium-177 and terbium-161. Therefore, preferably within the scope of the present invention, the radiosensitizer and radioisotope for use in combination are selected from aricertib and lutetium-177, aricertib and terbium-161, MK-2206 and lutetium-177, and MK-2206 and terbium-161.

[0096] As understood herein, alicertib is defined by the formula: [ka] It is a compound and can be included in the copolymer of the present invention by bonding via peptide bonds formed by its carboxyl group, for example.

[0097] As understood herein, MK-2206 is defined by the formula: [ka] The compounds are, for example, compounds that can be included in the copolymer of the present invention by bonding via peptide bonds formed by their amino groups. The inventors have surprisingly further found that the copolymer of the present invention is suitable for diagnostic applications, as well as combined diagnostic and therapeutic applications. Combined diagnostic and therapeutic applications may also be called theranostic applications. Preferably, according to the present invention, the copolymer of the present invention may include a cell-type specific or tissue-specific targeting moiety, for example, an antibody that targets a particular type of cancer cell, and a payload molecule that is a chelating agent with a radionuclide. Certain radionuclides disclosed herein can be monitored; for example, terbium-161 by its gamma emission can be visualized with a gamma camera and therefore used to detect cancer tissue or cell types targeted by the antibody. Terbium-149, which can be used in targeted alpha therapy, can be monitored because it is visible in PET scans. According to this disclosure, fluorine-18, scandium-43, scandium-44, copper-61, copper-64, gallium-68, zirconium-89, indium-111, iodine-123, terbium-152, and terbium-155 are particularly useful for the diagnostic applications described herein and may also be called diagnostically useful radionuclides. As is known to those skilled in the art, diagnostically useful radionuclides can be monitored by using appropriate methods, such as scintigraphy, single-photon emission computed tomography (SPE-CT); or positron emission tomography (PET-CT). Such uses of copolymers according to the present invention preferably take into consideration by monitoring the in vivo distribution of the copolymer. The in vivo distribution of a copolymer is understood herein as the distribution within the tissues of a subject, preferably a patient, at the time of administration of the copolymer.Those skilled in the art will understand that such copolymers, where the activator contains a radionuclide useful for therapeutic purposes, selected from, for example, copper-67, strontium-89, yttrium-90, iodine-131, samarium-153, lutetium-177, radium-223, and actinium-225 (these radionuclides may also be called therapeutically useful radionuclides), have substantially the same biodistribution as the copolymer, where the radionuclide is useful for diagnostic purposes. Accordingly, according to the present invention, the copolymers of the present invention can preferably be used to monitor the biodistribution of the therapeutic copolymer during therapy. For example, a copolymer containing an activator that is a therapeutically useful radionuclide is preferably supplemented for this purpose with less than 10% by weight of the copolymer, and the payload contains a diagnostically useful radionuclide as defined herein. More preferably, the copolymer of the present invention for use in combined therapeutic and diagnostic applications contains two radionuclides, one radionuclide useful for therapy and the other useful for diagnosis, which may be contained, for example, in first and second payload molecules, respectively. Preferred combinations are such that the radionuclide useful for therapy and the radionuclide useful for diagnosis are isotopes of the same element. Thus, preferred combinations include scandium-43 and scandium-47, copper-61 and copper-67, copper-64 and copper-67, iodine-123 and iodine-131, terbium-152 and terbium-161, and terbium-155 and terbium-161. Even more preferred combinations include isotopes of two different elements, for example, indium-111 and lutetium-177, and indium-111 and terbium-161. The copolymer of the present invention is also useful for diagnostic monitoring. For example, changes in the biodistribution of a copolymer containing a targeting moiety that targets a particular type of cancer tissue may indicate the progression of a therapy targeting the cancer tissue, even if the copolymer further contains radionuclides useful for diagnosis. In particular, this method may be useful for monitoring cancer, preferably the therapy of metastatic cancer.As disclosed herein, the copolymers of the present invention may be useful for monitoring cancer, as defined herein, as the distribution of cancerous tissue in the body of a subject, preferably a patient.

[0098] In other specific embodiments, the activator is a combination of a cytotoxic drug and a drug that can overcome the resistance of tumor cells, for example, by inhibiting anti-apoptotic factors such as Bcl-2, or by targeting cell efflux pumps (such as the MDR-1 transporter).

[0099] The aforementioned activators are non-limiting examples of agents and agent classes compatible with the copolymers of this disclosure, and those skilled in the art can use variations or derivatives of the disclosed agents and agent classes without exceeding the scope of this disclosure.

[0100] Depending on the structure of the activator or other payload molecule, the activator can be directly coupled to the azide moiety of the comatrix monomer of formula I, or to the alpha-amino or alpha-carboxyl group of the comatrix monomer of formula II or III contained in the copolymer, or it can be coupled to the copolymer via a linker structure. Such linkers may function as a simple spacer between the activator and the copolymer, act as a modifier of the copolymer's pharmacokinetics, or include elements that enable or facilitate the release of the activator in target cells. The linker should be stable in the bloodstream during and after storage to avoid unintended release of the activator. Release of the activator from the copolymer should occur only within target cells. Therefore, useful linkers (focusing on cancer therapy) should be sensitive to intracellular factors such as caspases or cathepsins, glucuronidase (GUSB) (β-glucuronide-based linkers), acidic pH (found in tumor tissue or cellular organelles [lysosomes]), or reducing environments (responding to increased intracellular glutathione concentration). Another possibility is the use of diamine or thioether-type non-degradable linkers, which are not targeted by specific enzymes and are only degraded in the harsh environment of lysosomes or peroxisomes. The latter linker type is preferred because it is associated with maximum serum stability and reduced nonspecific toxins.

[0101] The copolymers of this disclosure are typically functionalized with cell-type or tissue-type-specific targeting moieties. While this functionalization step may be performed after the activator has been coupled to the copolymer, it is often beneficial to prepare the copolymer conjugate and targeting moieties first (especially when using highly cytotoxic agents or radioisotopes with short half-lives). The loading of the activator onto the copolymer can then be carried out shortly before administration to the target. Potential targeting moieties include, but are not limited to, monoclonal antibodies, antibody fragments, nanoantibodies (single-domain antibodies), DARPin, peptide hormones, non-antibody proteins capable of binding to cell surface receptors, DNA / RNA-based aptamers, and small molecules capable of binding to cell surface receptors (e.g., folic acid or biotin in the context of tumors). In the context of cancer therapy, it is preferable that the aforementioned targeting moieties have low or negligible expression levels in healthy tissues and high expression levels / copy numbers on the cell surface of cancer cells to avoid adverse effects.Potential targets include CD19 (B lymphocyte surface antigen B4), CD20 (B lymphocyte antigen), CD21 (complement receptor type 2, CR2), CD22 (surface antigen classification 22), CD40 (surface antigen classification 40), CD52 (CAMPATH-1 antigen), CD152 (ETLA-4, cytotoxic T lymphocyte-associated protein 4), CD180 (RP105), CD274 (PD-L1, programmed cell death ligand 1), CD279 (PD-1, programmed cell death protein 1), EGFR (epidermal growth factor receptor), and FAP (fibroblast activation protein). These include, but are not limited to, chloroform (Citrate), GD2 (diciaroganglioside), GITR (glucocorticoid-induced TNFR family-related gene), HER2 (human epidermal growth factor receptor 2, ERBB2, erb-b2 receptor tyrosine kinase), KIR2DL1 (killer cell immunoglobulin-like receptor 2DL1), NKG2D (KLRK1), MSLN (mesothelin), PDGF (platelet-derived growth factor), PDGFR (platelet-derived growth factor receptor), VEGF (vascular endothelial growth factor), VEGFR (vascular endothelial growth factor receptor), CAE (carcinoembryonic antigen), CA9 / CA IX (carbonic anhydrase IX), α-folate receptor (folate receptor 1), and PSMA (prostate-specific membrane antigen).

[0102] The covalent bonding of the targeting moiety to the copolymer should be carried out in a site-specific manner to obtain a homogeneous product and to maintain binding affinity of the targeting moiety. Appropriate coupling strategies include enzyme-catalyzed reactions using peptide tags (e.g., saltase-mediated coupling), aldehyde tags, or transglutaminase tags, or so-called "click" reactions between the copolymer and the targeting moiety. The latter process can be achieved during synthesis by incorporating reactive non-standard (non-natural) amino acids into the protein-targeting moiety, such as an antibody (e.g., by codon extension techniques using reprogrammed stop codons recognized by the tRNA of the non-natural amino acid).

[0103] Saltases refer to a group of prokaryotic enzymes that modify surface proteins by recognizing and cleaving carboxyl-terminal sorting signals. In enzymes from Staphylococcus aureus, the recognition signal consists of the motif LPXTG (Leu-Pro-any-Thr-Gly), while in enzymes from Staphylococcus pyogenes, the motif is LPXTA (Leu-Pro-any-Thr-Ala). The signal sequence is led by a highly hydrophobic transmembrane sequence and a cluster of base residues such as arginine. Cleavage occurs between the Thr and Gly / Ala residues in the signal sequence, accompanied by transient binding of the Thr residue to the Cys residue in the active site of the saltase, followed by peptide transfer, which covalently binds the protein to cell wall components (e.g., the peptide-glycan layer of Gram-positive bacteria). Cozzi, R. et al. (2011) FASEB J 25(6): 1874-86. This enzymatic mechanism can be adapted to achieve peptide or protein fusion and has recently been used in the preparation of ADCs. European Patent Application No. 20130159484 (EP2777714); Beerli, RR et al. (2015) PloS One 10(7): e0131177. In the disclosed method, a monoclonal antibody was genetically modified to include a saltase motif at the C-terminus of its heavy and light chains, and a cytotoxic drug was modified to include an oligoglycine extension. The saltase-catalyzed reaction efficiently added the modified drug molecule to the C-terminus of the antibody chain, resulting in a homogeneous ADC.

[0104] By modifying the head group of the copolymer of this disclosure by oligoglycine extension, the copolymer itself becomes a target for saltase-catalyzed reactions. Since a large number of activators can be loaded onto the copolymer, this method results in an ADC in which many activator molecules are linked to a small number of fixed (non-standard) sites on the antibody (2-4 C-terminal saltase tags per antibody molecule). As a result, the DAR increases, thereby increasing the potency of the ADC. Oligoglycine extension of the copolymer can be introduced at the initiation of polymerization using a recently developed RAFT agent containing 2-8 glycine residues. When this functionalized RAFT agent is used, only one saltase motif is present on each copolymer molecule.

[0105] Another enzyme coupling method utilizes transglutaminase-catalyzed reactions. Transglutaminase, also known as protein glutamine gamma-glutamyltransferase, typically crosslinks proteins by transferring the γ-carboxyamide group of a glutamine residue in one protein to the ε-amino group of a lysine residue in the same or another protein. Over the past 20 years, these enzymes have been used as "meat-glue" in diverse fields such as the food industry (Martins IM et al. (2014), Appl. Microbiol. Biotechnol. 98: 6957-64), tissue engineering (Ehrbar M. et al. (2007) Bio-macromolecules, 8(10):3000-7), modification of therapeutic proteins (Mero A. et al. (2011) J Control Release, 154(1):27-34), or gene delivery (Trentin D. et al. (2005) J Control Release, 102(1):263-75).

[0106] In this context, microbial transglutaminase (MTg) is a preferred class of enzyme because, in contrast to endogenous human transglutaminase, it is a calcium- and nucleotide-independent enzyme. Compared to the four domains of human transglutaminase, microbial transglutaminase consists of a single domain and has a molecular weight approximately half that of human transglutaminase. Furthermore, MTg operates over a wide range of pH values, buffers, and temperatures and has a fairly large list of potential substrates. Kieliszek M et al. (2014) Rev Folia Microbiol. 59: 241-50; Martins IM. et al. (2014).

[0107] Similar to the saltase-mediated coupling strategy, the transglutaminase motif is introduced to the head group of the copolymer of this disclosure by modification with a RAFT agent, ensuring that only one transglutaminase motif is introduced per polymer chain. Suitable motifs are small peptides such as FKGG (Ehrbar M. et al. (2007)) as a potential lysine donor sequence and LQSP or TQGA (Caporale A. et al. (2015) Biotechnol J. 10(1):154-61) as a glutamine receptor sequence [in this case, the reactive lysine residue of the cancer cell-specific targeting moiety is used], or a monodisperse PEG spacer 3-25 units long containing a terminal amino group as a potential glutamine receptor sequence, but not limited to these.

[0108] A variant of this strategy utilizes transglutaminase for site-directed binding of a click-reactive group (e.g., azide or tetrazine) to a targeted moiety, such as a monoclonal antibody, and this antibody-linked reactive group is then used to react with a click-reactive group (alkyne or strained alkene) on the "opposite side" of the polymer head group of the copolymer of this disclosure. The aforementioned reactive moieties of the copolymer / antibody are intended to be interchangeable. This preferred strategy was used in the examples of this specification (Examples 16, 23, and 34).

[0109] Other methods may be used to link the targeting moiety to the copolymer. Targeting antibodies or other polypeptides may be modified post-translation, for example, by converting the hydroxyl functional group of the amino acid side chain to a reactive aldehyde. In the case of a polynucleotide-based targeting moiety, such as an aptamer, coupling to the copolymer of the present disclosure may be achieved by reaction with a reactive functional group (e.g., amine, thiol, aldehyde) incorporated into the aptamer during solid-phase synthesis. The copolymer can be coupled to the targeting moiety using other site-directed coupling techniques known in the art.

[0110] Pharmaceutical composition The pharmaceutical compositions of this disclosure comprise an effective amount of the active portion of this disclosure, formulated together with one or more pharmaceutically acceptable carriers or excipients.

[0111] The pharmaceutical compositions of this disclosure may be administered parenterally by inhalation spray, topically, intraocularly, rectally, nasally, buccally, vaginally, or via an implanted reservoir, preferably by injection (or infusion). The pharmaceutical compositions of this disclosure may contain any conventional non-toxic and pharmaceutically acceptable carrier, adjuvant, or vehicle. In some cases, the pH of the formulation may be adjusted with a pharmaceutically acceptable acid, base, or buffer to enhance the stability of the formulated active portion or its delivery form. The term parenteral, as used herein, includes subcutaneous, intradermal, intravenous, intramuscular, intra-articular, intra-arterial, intra-bursal, intrasternal, intrastellar, intrafocal, and intracranial injection or infusion techniques.

[0112] Injectable preparations, such as sterile aqueous or oily suspensions for injection, can be formulated according to known skills in using appropriate dispersing or wetting and suspending agents. Sterile injectable preparations may also be sterile injectable solutions, suspensions, or emulsions in non-toxic, parenterally acceptable diluents or solvents. Acceptable vehicles and solvents that can be used include water, Ringer's solution, USP, and sodium chloride isotonic solution. Solubilizing excipients include water-soluble organic solvents such as polyethylene glycol 300, polyethylene glycol 400, ethanol, propylene glycol, glycerin, N-methyl-2-pyrrolidone, dimethylacetamide, and dimethyl sulfoxide; Cremophor EL, Cremophor RH40, Cremophor RH60, Solutol HS15, d-α-tocopherol polyethylene glycol 1000 succinate, polysorbate 20, polysorbate 80, sorbitan monooleate, poloxamer 407, Labrafil M-1944CS, and Labrafil Nonionic surfactants such as M-2125CS, Labrasol, Gellucire 44 / 14, Softigen 767, and mono- and di-fatty acid esters of PEG300, 400, and 1750; castor oil, corn oil, cottonseed oil, olive oil, peanut oil, peppermint oil, safflower oil, sesame oil, soybean oil, hydrogenated vegetable oil, hydrogenated soybean oil, coconut oil and palm kernel oil. Water-insoluble lipids such as medium-chain triglycerides (of oil), α-cyclodextrin, β-cyclodextrin, hydroxypropyl-β-cyclodextrin (e.g., Kleptose), and various cyclodextrins such as sulfobutyl ether-β-cyclodextrin (e.g., Captisol); as well as phospholipids such as lecithin, hydrogenated soy phosphatidylcholine, distearoyl phosphatidylglycerol, L-α-dimiristoyl phosphatidylcholine, and L-α-dimiristoyl-phosphatidylglycerol. Strickley (2004) Pharm. Res. 21: 201-30.

[0113] Injectable formulations can be sterilized, for example, by filtering through a bacterial-retaining filter, or by incorporating a sterilizing agent into a sterile solid composition that can be dissolved or dispersed in sterile water or other sterile injectable medium before subsequent use (or by sterilizing the solid composition by irradiation).

[0114] To extend the effect of the activator, it is often desirable to slow down the absorption of the activator via subcutaneous or intramuscular injection. Delayed absorption of the parenterally administered active portion is achieved by dissolving or suspending the active portion in an oil vehicle. Depot formulations for injection are prepared by microencapsulating the active portion with biodegradable polymers such as polylactide-polyglycolide. The rate of activator release can be controlled depending on the ratio of the active portion to the polymer and the properties of the specific polymer used. Other examples of biodegradable polymers include poly(orthoesters) and poly(acid anhydrides). Depot injection formulations can also be prepared by encapsulating the active portion in liposomes or microemulsions that are compatible with body tissues.

[0115] Compositions for rectal or vaginal administration are preferably suppositories, which can be prepared by mixing the active portion of the present disclosure with a suitable non-irritating excipient or carrier such as cocoa butter, polyethylene glycol, or suppository wax, the excipient / carrier being solid at ambient temperature but liquid at body temperature, and thus melting in the rectum or vaginal cavity to release the active portion (and consequently the activator).

[0116] Ophthalmic preparations, ear drops, eye ointments, powders, and liquids are also considered to be within the scope of this disclosure.

[0117] In pulmonary delivery, the pharmaceutical compositions of this disclosure are formulated and administered to a patient by direct administration in solid or liquid particulate form, for example, by inhalation into the respiratory system. The solid or liquid particulate form of the active portion prepared for implementation of this disclosure includes breathable-sized particles, i.e., particles small enough to pass through the oral cavity and larynx upon inhalation and reach the bronchi and alveoli of the lungs. The delivery of aerosolized therapeutics, in particular aerosolized antibiotics, is known in the art (see, for example, U.S. Patent Nos. 5,767,068, 5,508,269 and WO98 / 43650). A consideration of pulmonary delivery of antibiotics can also be found in U.S. Patent No. 6,014,969.

[0118] The total daily dose of the active portion of this disclosure, administered to human subjects or patients in single or divided doses, preferably contains 0.01 to 50 mg / kg body weight of the activator, or more preferably 0.1 to 30 mg / kg body weight of the activator. A single-dose composition may contain such an amount, or a submultiple of such an amount, that constitutes the daily dose. Generally, treatment regimens according to this disclosure involve administering approximately 1 mg to 5000 mg of the activator (contained in the active component of this disclosure) per day to human subjects requiring such treatment, in single or divided doses. Mammalian doses can be estimated based on the latter human doses.

[0119] In copolymers of the present invention containing radionuclides, particularly those useful for therapy, the dose of the radionuclide may also be expressed in units of radioactivity, preferably MBq / kg body weight. The total daily dose of the copolymer containing the radionuclide of this disclosure administered to a human subject or patient in single or divided doses is preferably 3 to 300 MBq / kg body weight. As is known to those skilled in the art, a more preferred dosing regimen depends on the radionuclide used. In copolymers of the present invention containing yttrium-90, the total daily dose administered to a human subject or patient in single or divided doses is preferably 5 to 35 MBq / kg body weight, more preferably 7 to 25 MBq / kg body weight, and most preferably 10 to 15 MBq / kg body weight. In the copolymer of the present invention containing lutetium-177, the total daily dose administered to a human subject or patient in single or divided doses is preferably 5 to 100 MBq / kg body weight, more preferably 10 to 80 MBq / kg body weight, and most preferably 10 to 60 MBq / kg body weight. As understood herein, a single-dose composition may contain such an amount or a submultiple of such an amount constituting the daily dose. As understood herein, those skilled in the art can determine the preferred dose depending on the radionuclide and the desired application (e.g., treatment of solid tumors, treatment of hematological malignancies, lymphocyte depletion to enable effective CART-T therapy).

[0120] The active portion of the disclosed herein can be administered, for example, by intravenous, intra-arterial, subdermally, intraperitoneally, intramuscularly, or subcutaneously by injection, or by buccal, nasal, transmucosal, topical, in an ointment, or by inhalation, in a daily dose containing about 0.01 to about 50 mg / kg body weight of the activator. Alternatively, the dose (based on the latter daily dose of the activator) can be administered every 4 to 120 hours, or according to the requirements of the particular active portion. The methods herein consider administering an effective amount of the active portion (present in the pharmaceutical composition) to achieve the desired or described effect. Typically, the pharmaceutical compositions of the disclosed herein are administered about 1 to about 6 times per day, or alternatively, as continuous infusions. Such administrations can be used for chronic or acute treatment. The amount of active portion that can be combined with pharmaceutically acceptable excipients or carriers to produce a single dosage form varies depending on the host being treated and the particular mode of administration. Typical compositions contain about 5% to about 95% (w / w) of the active portion. Alternatively, such formulations may contain approximately 20% to 80% of the active portion. The specific dosage and treatment regimen for any particular patient will depend on a variety of factors, including the activity of the specific active portion used, age, weight, general health status, sex, diet, time of administration, elimination rate, drug combination, severity and course of the disease, condition or symptom, the patient's temperament to the disease, condition or symptom, and the judgment of the treating physician.

[0121] All references cited in this application, including publications, patents, and patent applications, shall be considered incorporated in their entirety.

[0122] The descriptions of value ranges in this specification are intended merely as a concise way of referring individually to each separate value within that range unless otherwise specifically indicated herein, and each separate value is incorporated into the specification as if it were described individually herein. Unless otherwise specifically indicated, all exact values ​​provided herein are representative of the corresponding approximations (for example, all exact exemplary values ​​provided with respect to a particular factor or measurement may, where appropriate, also be considered to provide the corresponding approximate measurement, modified with “about”).

[0123] Any description herein of any aspect or embodiment of the Invention using terms such as references to one or more elements is intended to provide support for similar aspects or embodiments of the Disclosure that "consist of," "substantially consist of," or "substantially include" those particular one or more elements, unless otherwise specifically stated or expressly refuted by the context (for example, a composition described herein as containing a particular element should be understood to also describe a composition consisting of that element, unless otherwise specifically stated or expressly refuted by the context).

[0124] To the maximum extent permitted by applicable law, this invention includes all modifications and equivalents of the subject matter described herein or in the embodiments presented herein or in the claims.

[0125] Therefore, the generally described herein will be more readily understood by referring to the following examples, which are provided as illustrations and are not intended to limit the invention. [Examples]

[0126] Note: In the examples related to the synthesis of side-chain linked amino acids, names are first given according to IUPAC nomenclature, followed by abbreviated names. Table 1 shows the correspondence. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4]

[0127] It should be noted that the copolymers of this disclosure are polymerized by controlled radical polymerization techniques such as RAFT polymerization and have a low polydispersity index (PDI), typically in the range of 1.1 to 1.4. The numbers given to the polymer drug carriers exemplified in this disclosure indicate the average monomer composition of the copolymer chain. Unless otherwise specified, the copolymers of this disclosure are random copolymers. (Example 1) Synthesis of 6-acrylamido-2-(2-azidoacetamide)hexanoic acid [ka]

[0128] A solution of 2,5-dioxopyrrolidine-1-yl-2-azidoacetate (4.0 equivalents) in tetrahydrofuran was added dropwise to a cooled solution of 6-acrylamido-2-aminohexanoic acid (1.0 equivalent) and sodium bicarbonate (2.0 equivalents) in H2O. The solution was stirred at 0°C for 1 hour, then at room temperature overnight. THF was removed from the solution under reduced pressure. The solution was then acidified to pH 1 with 6M HCl and extracted with ethyl acetate (3×). The combined organic phase was dried over Na2SO4 and concentrated under reduced pressure. The resulting oily film was dissolved in a small amount of ethyl acetate and added dropwise to heptane. A white precipitate of fine powder was filtered off and dried under vacuum to obtain the desired product (yield 95%). The structure of the obtained compound was verified by NMR spectroscopy. (Example 2) Synthesis of 6-acrylamido-2-(6-azidohexaneamide)hexanoic acid [ka]

[0129] 6-acrylamido-2-(6-azidohexaamide)hexanoic acid (85% yield) was prepared as described in Example 1, except that 2,5-dioxopyrrolidine-1-yl6-azidohexanoate (Sigma-Aldrich, Switzerland, 4.0 equivalents) was used. The structure of the obtained compound was verified by NMR spectroscopy. (Example 3) AK-PEG (4) - Azide synthesis [ka]

[0130] AK-PEG4-azide (82% yield) is used with azide-PEG (4) The compound was prepared as described in Example 1, except that NHS (Click Chemistry Tools, Scottsdale, USA, 4.0 equivalents) was used. The structure of the obtained compound was verified by NMR spectroscopy. (Example 4) Synthesis of (S)-6-acrylamido-2-aminohexanoic acid monomers via copper complexes

[0131] L-lysine (14.62 g, 100 mmol) was dissolved in 150 mL of deionized water and heated to approximately 80°C. Copper carbonate (16.6 g, 75 mmol) was added in small amounts over 30 minutes. The reaction mixture was stirred for another 30 minutes. The deep blue suspension was filtered through silica gel at high temperature. The filter was washed with a small amount of water. The next day, the combined filtrate containing the lysine-copper complex was cooled in an ice bath and 100 mL of tetrahydrofuran (THF) was added. A solution of acryloyl chloride in methyl tert-butyl ether (TBME) (8.9 mL, 110 mmol) was added dropwise over 1 hour. The pH was initially maintained at 8-10 by parallel dropwise addition of 10% sodium hydroxide solution. When half of the acryloyl chloride solution had been added, the product began to precipitate. When most of the acryloyl chloride had been added, the addition of sodium hydroxide was slowed down to lower the pH to approximately 6, and the temperature of the reaction mixture was brought to room temperature. The blue suspension was stirred for a further 2 hours and then filtered. The solid material retained on the filter was washed with water and acetone and then dried. A yield of 6.5 g of acryloyl-L-lysine copper complex was obtained.

[0132] Acryloyl-L-lysine copper complex (29.5 g) was suspended in 300 mL of deionized water and cooled in an ice bath. H2S gas was blown into the suspension until copper sulfide precipitation was complete. 3 grams of activated carbon were added to the suspension. The suspension was briefly heated to 100°C. After cooling to room temperature, 500 mL of acetone was added to the suspension, and then filtered through silica gel. The clear filtrate was placed in a rotary evaporator. After evaporating the solvent, the solid product was recrystallized in 200 mL of 50% aqueous acetone solution. A white powder yielding 17.76 g (70%) was obtained. The structure of this compound was verified by NMR and LC-MS spectroscopy. (Example 5) Synthesis of (2S)-3-(acryloyloxy)-2-aminopropanoic acid

[0133] A solution of L-serine (5 g, 47.6 mmol) in water (50 mL) was heated to 80°C, and solid copper carbonate (5.79 g, 26.2 mmol) was added. The solution was stirred for 10 minutes. The insoluble residue was then collected by filtration and washed with water (30 mL). The combined filtrate was cooled in an ice bath, and KOH (27.1 mL, 47.6 mmol) was slowly added. To this solution, a mixture of acryloyl chloride (4.52 mL, 59.5 mmol) in acetone (30 mL) was added dropwise. The reaction mixture was then incubated overnight at 4°C with stirring. The formed solid was isolated, washed with water (50 mL) / methanol (50 mL) / ethyl-tert-butyl ether (50 mL) (MTBE), and finally dried under reduced pressure to obtain O-acryloyl-L-serine-Cu 2+ A complex (3.8 g, 10.01 mmol, yield 42.1%) was obtained. Subsequently, copper in the complex was removed by a procedure similar to that described in Example 1. Acryloyl-L-serine was obtained as a white powder in a yield of 1.43 g (45%). The identity of this compound was verified by NMR and LC-MS spectroscopy. (Example 6) Synthesis of (2S)-3-(acryloyloxy)-2-aminobutanoic acid

[0134] A reaction vessel containing 6 mL of trifluoroacetic acid (TFA) was cooled in an ice bath. Then, solid L-threonine (2.00 g, 16.79 mmol) was added, and the mixture was stirred for 5 minutes. Trifluoromethanesulfonic acid (0.18 mL, 2.0 mmol), followed by acryloyl chloride (2.5 mL, 32.9 mmol), was added, and the reaction mixture was incubated at room temperature for 2 hours. After the reaction was complete, the product was precipitated with methyl tert-butyl ether (MTBE). After isolating the solid, the product was washed with MTBE and acetone. Finally, O-acryloyl-L-threonine hydrochloride was dried under reduced pressure to obtain a white powder (yield 32%). The structure of this compound was verified by NMR and LC-MS spectroscopy. (Example 7) Synthesis of (S)-3-(4-(acryloyloxy)phenyl)-2-aminopropanoic acid

[0135] O-Acryloyl-L-tyrosine-Cu 2+ The synthesis of the complex was carried out according to the procedure described in Example 1. Copper was removed from the complex by the following procedure: 73.15 g (140 mmol) of O-acryloyl-L-tyrosine-Cu 2+ The complex was dissolved in 220 mL of 2N HCl in a crushing dish. The mixture was homogenized using a Polytron® PT3000 instrument. The mixture was then filtered, and the residue was washed twice with 50 mL of 2N HCl. The solid compound was then dried under reduced pressure over NaOH at 40°C to obtain O-acryloyl-L-tyrosine hydrochloride (46.96 g, yield 63%). (Example 8) Synthesis of (S)-2-(4-acrylamidophenyl)-2-aminoacetic acid

[0136] Boc-4-amino-L-phenylalanine (2.50 g, 8.9 mmol, Anaspec, Fremont, CA) was dissolved in 25 mL of chloroform. Triethylamine (2.47 mL, 17.8 mmol) was added to this solution, and the mixture was cooled to -15°C. Subsequently, acryloyl chloride (0.79 mL, 9.8 mmol) in chloroform was added dropwise to the mixture while stirring. After the addition of acryloyl chloride was complete, the reaction mixture was stirred for a further 3 hours. The reaction mixture was then passed through a glass filter, and the protected (S)-2-(4-acrylamidophenyl)-2-aminoacetic acid was purified by column chromatography, and the residual solvent was evaporated. The obtained (S)-2-(4-acrylamidophenyl)-2-((tert-butoxycarbonyl)amino)acetic acid (500 mg, 1.5 mmol) was dissolved in 5 mL of dichloromethane (DCM). Trifluoroacetic acid (TFA) (800 μL, 10.38 mmol) was added, and the solution was stirred at room temperature for 1 hour. The solvent was then removed under reduced pressure, 5 mL of DCM was added, and the solvent was again removed under reduced pressure. This procedure was repeated several times. Finally, the product was dissolved in 3 mL of DCM and precipitated with methyl tert-butyl ether (MTBE). The solid was collected through a glass filter and dried under vacuum to obtain pure acryloyl-4-amino-L-phenylalanine in 15% yield. The structure of this compound was verified by NMR. (Example 9) Synthesis of (2S)-4-(acryloyloxy)pyrrolidine-2-carboxylic acid and (R)-3-(acryloylthio)-2-aminopropanoic acid

[0137] The synthesis of these compounds was carried out as described in Example 4. For (2S)-4-(acryloyloxy)pyrrolidine-2-carboxylic acid and (R)-3-(acryloylthio)-2-aminopropanoic acid, the starting materials were 4-hydroxy-L-proline and L-cysteine, respectively. (Example 10) Synthesis of AHOX-azide based on Example 8 [ka]

[0138] A solution of acryloyl-4-amino-L-phenylalanine (4.0 equivalents) in tetrahydrofuran is added dropwise to a cooled solution of 6-acrylamido-2-aminohexanoic acid (1.0 equivalent) and sodium bicarbonate (2.0 equivalents) in H2O. The solution is stirred at 0°C for 1 hour, then at room temperature overnight. THF is removed from the solution under reduced pressure. The solution is then acidified to pH 1 with 6M HCl and extracted with ethyl acetate (3×). The combined organic phases are dried over Na2SO4 and concentrated under reduced pressure. The resulting oily film is dissolved in a small amount of siRNA and added dropwise to heptane. A fine white precipitate is filtered off and dried under vacuum to obtain the desired product. (Example 11) BOC-G (3) Synthesis of RAFT agents Step 1: Synthesis of the RAFT-NHS intermediate: [ka]

[0139] EDC·HCl (21.48 g, 112 mmol, 1.1 equivalent) was added at 0°C to a solution of ethyl-RAFT (22.85 g, 102 mmol, 1.0 equivalent) synthesized as described in Tucker et al. (ACS Macro Letters (2017) 6(4): 452-457) and 1-hydroxypyrrolidine-2,5-dione (12.89 g, 112 mmol, 1.1 equivalent) in CH2Cl2. The reaction mixture was stirred at room temperature for 16 hours. The reaction mixture was then partially evaporated (to about half of the total volume) under a stream of N2 and diluted with AcOEt and redistilled water (ddH2O). The two-phase solution was transferred to a separatory funnel, extracted, and the organic phase was successively washed with ddH2O, saturated aqueous solution of NaHCO3 (3×), ddH2O (2×), and brine. The organic phase was dried (Na2SO4), and all volatiles were removed under reduced pressure. The residue was ground with n-hexane, and the resulting yellow suspension was filtered. The cake was washed with n-hexane. The yellow solid was dried under reduced pressure, and the resulting intermediate (RAFT-NHS) was used without further purification (31.8 g, 99.0 mmol, 97%). All analytical data were consistent with literature values. Yang et al. (2012) Macromolecular rapid communications 33(22): 1921-6. Step 2: Synthesis of the RAFT-EDA-BOC intermediate: [ka]

[0140] To a solution of RAFT-NHS starting material (1.22 g, 3.61 mmol, 1.0 equivalent) in CH2Cl2, a solution of t-butyl-(2-aminoethyl)carbamate (0.81 g, 5.0 mmol, 1.4 equivalents) and Et3N (1.0 mL, 7.2 mmol, 2.0 equivalents) in CH2Cl2 was added dropwise at -10°C. The reaction mixture was stirred at room temperature for 12 hours. The organic mixture was successively washed with saturated aqueous solution of NH4Cl (2×), saturated aqueous solution of NaHCO3 (2×), and brine. The organic phase was dried (Na2SO4), and all volatiles were removed under reduced pressure. The residue was recrystallized with a mixture of n-heptane and Et2O. The yellow crystals were filtered, washed with n-heptane, and dried under reduced pressure to obtain the following intermediate (RAFT-EDA-BOC, 1.26 g, 3.44 mmol, 95%). The structure of the obtained compound was verified by MS and NMR spectroscopy. Step 3: Synthesis of the RAFT-EDA-OTf intermediate: [ka]

[0141] A cold solution of RAFT-EDA-BOC (1.25 g, 3.41 mmol, 1.0 equivalent) in TFA was stirred for 60 minutes. The reaction mixture was then mixed with MeOH and CH2C. l2 The solution was diluted with (1 / 2) and volatile components were partially removed (2 / 3 of the total volume) under N2 flow. The resulting RAFT-EDA-OTf was isolated as a yellow oily substance (2.00 g, 3.29 mmol, 96%) and used in the next step without further purification. The structure of the resulting compound was verified by MS and NMR spectroscopy. Step 4: BOC-G (3) - Synthesis of RAFT intermediates: [ka]

[0142] BOC-G in CH2Cl2 (3)A solution of (Bachem AG, Bubendorf, Switzerland) (697 mg, 2.41 mmol, 1.0 equivalent), 1-hydroxybenzotriazole hydrate (HOBt hydrate) (92.0 mg, 600 μmol, 0.25 equivalents), and EDC·HCl (485 mg, 2.53 mmol, 1.05 equivalents) was stirred at 0°C for 30 minutes under an inert atmosphere (N2). To this solution, a solution of RAFT-EDA-OTf (917 mg, 2.41 mmol, 1.0 equivalent) in CH2Cl2 and DIPEA (2.13 mL, 12.5 mmol, 5.2 equivalents) were added dropwise. The reaction mixture was stirred at 0°C for 1 hour, then at room temperature overnight. The reaction mixture was diluted with CH2Cl2, and the organic mixture was washed sequentially with saturated NH4Cl solution (3×), saturated NaHCO3 solution, ddH2O, and brine. The organic phase was collected and dried (Na2SO4), and volatile matter was partially removed (2 / 3 of the total volume) under reduced pressure. HCl was added to the resulting solution. The resulting cloudy solution was then stored in a refrigerator overnight to obtain a yellow suspension, which was filtered, and the cake was washed with cold HCl. The yellow solid was dried under reduced pressure and BOC-G (3) -RAFT agent (396 mg, 736 μmol, 31%) was obtained. The structure of the obtained compound was verified by MS and NMR spectroscopy.

[0143] The examples presented herein are considered to be general procedures for the synthesis of RAFT agents functionalized with oligoglycine spacers. Longer or shorter spacers can be synthesized by replacing the oligoglycine constituent units. (Example 12) RAFT-PEG (5) Synthesis of -NH3Cl [ka]

[0144] A solution of RAFT-NHS starting material (1.4 mmol) in CH2Cl2 is mixed with BOC-PEG in CH2Cl2. (5)A solution of -CH2CH2-NH2 (1.4 mmol) and Et3N (1.5 mmol) was added dropwise at 0°C. The reaction mixture was then stirred overnight at room temperature. The mixture was evaporated and purified by RP-18 column chromatography (1:1 ACN:H2O) to obtain RAFT-PEG. (5) -BOC (1.2 mmol, 88%) was obtained. The structural assignment was determined from the mass and NMR spectroscopic data.

[0145] RAFT-PEG in HCl from 3M in HCl (5) A cold solution of -BOC (0.25 mmol) was stirred for 120 minutes. The reaction mixture was then evaporated and purified by RP-18 column chromatography (1:1 ACN:H2O + 0.1% acetic acid). The resulting RAFT-PEG (5) -NH3Cl was isolated as a yellow oily substance (0.21 mmol, 84%). Its structural assignment was determined from mass and NMR spectroscopic data. (Example 13) NH2-PEG (5) NH2-PEG using RAFT (5) -(DMA (45) AK-Azid (4) ) Synthesis of copolymers [ka]

[0146] 100 μL, 970 μmol, 30 equivalents of DMA and AK-azide (69.7 mg, 259 μmol, 8 equivalents) in 0.1 M NaHCO3, then NH2-PEG (5)RAFT (16.92 mg, 32.2 μmol, 1.0 equivalent) and VA044 (3.14 mg, 9.7 μmol, 0.3 equivalents) were added sequentially. The reaction mixture was stirred at 60°C for 4 hours. The reaction mixture was diluted with ddH2O and dioxane. To this solution, phosphinic acid (50 w%, 27 μL, 158 μmol, 5 equivalents), TEA (22 μL, 158 μmol, 5 equivalents), and AIBN (1.6 mg, 9.5 μmol, 0.3 equivalents) were added sequentially. The reaction mixture was stirred at 75°C for 8 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain NH2-PEG. (5) -(DMA (45) -AK-Azid (4)The copolymer was obtained as a white powder (130 mg, 120 μmol, 85% in 2 steps). The structure of the obtained compound was verified by NMR spectroscopy and GPC using the following protocol: A storage solution of 3.33 mg / mL of the copolymer was prepared with elution buffer (deionized water containing 0.05% (w / v) NaN3) and filtered through a 0.45 μm syringe filter. Subsequently, 0.4 mL of the storage solution was injected into the port of a GPC instrument (1260 Infinity LC-System, Agilent, Santa Clara, CA). Chromatography was performed at a constant flow rate of 0.5 mL / min with elution buffer. Copolymer samples were separated using a Suprema3 column system (pre-column, 1000 Å, 30 Å; particle size 5 μm; PSS, Mainz, Germany) installed in an external column oven at 55°C. The copolymer was analyzed using RI (refractive index) and UV detectors. Calibration curves (10 points) were established using pullulan standards obtained from PSS (Mainz, Germany) for the following 10 polymers (Mw, Mn, and PDI are given): (1) Mw:342 / Mn:342, PDI 1.0; (2) Mw:1320 / Mn:1080, PDI 1.23; (3) Mw:6200 / Mn:5900, PDI 1.05; (4) Mw:10000 / Mn:9200, PDI 1.09; (5) Mw:21700 / Mn:20000, PDI 1.09; (6) Mw:48800 / Mn:45500, PDI 1.07; (7) Mw:113000 / Mn:100000, PDI 1.13; (8) Mw: 210,000 / Mn: 189,000, PDI 1.11; (9) Mw: 366,000 / Mn: 318,000, PDI 1.15; (10) Mw: 805,000 / Mn: 636,000, PDI: 1.27. The molecular weights of the characterized copolymers were estimated by referring to this standard. For this purpose, the weight-average molecular weight (Mw) of the polymer, the number-average molecular weight (Mn) of the polymer, and its PDI were determined based on GPC measurements using the software PSS WinGPC Unichrom V:8.1 Build 2827 (PSS; https: / / www.pss-polymer.com / ). (Example 14) NH2-PEG (5) -(DMA (45) AK-DOTA (4) ) synthesis [ka]

[0147] NH2-PEG in 0.1M NaHCO3 (5) -(DMA (45) AK-Azid (4) A solution of (20 mg, 3.45 μmol) and the chelating agent BCN-DOTA (Chematech Dijon, France) (24 mg, 34 μmol) was stirred at 35°C for 24 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to produce NH2-PEG. (5) -(DMA (45) AK-DOTA (4) The obtained compound was analyzed by NMR spectroscopy. (Example 15) DBCO-NH-PEG (5) -(DMA (45) AK-DOTA (4) ) synthesis [ka]

[0148] NH2-PEG synthesized according to Example 14 in DMF (5) -(DMA (45) AK-DOTA (4) A solution of (10 mg, 1.15 μmol), DBCO-NHS (3.96 mg, 9.2 μmol), and TEA (1.275 μL, 9.2 μmol) was stirred at 25°C for 7 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to produce DBCO-NH-PEG. (5) -(DMA (45) AK-DOTA (4)The obtained compound was analyzed by NMR spectroscopy. To verify the activity of the DBCO group, the obtained polymer was dissolved in DMF, an excess amount of FAM-azide was added at room temperature, and the mixture was stirred for 4 hours. The obtained compound was analyzed by GPC using the protocol presented in Example 13. (Example 16) Radiolabeled trastuzumab-[NH-PEG] for diagnostic and therapeutic agents targeting Her2 receptor overexpressing cancer cells (4) -Triazole-PEG (5) -(DMA (45) AK-DOTA (4) ) Synthesis of 2 conjugates [ka]

[0149] In tumor diagnosis, the detection limit for primary tumors or their metastases is crucial for patient survival, as late-stage tumors are often associated with poor prognosis. The use of radiolabeled tumor tissue-specific antibodies in subsequent therapy, as well as in the detection of cancer cells, is a potentially promising method for radiomedicine. However, this type of technique is hampered by a low signal-to-noise ratio, which stems from the fact that only a small number of radioisotopes can bind to the targeting moiety / antibody, and that the radioisotope of interest has a short half-life (usually shorter than the antibody's half-life). Therefore, increasing the radioisotope cargo is highly desirable. This example describes radiolabeled antibody copolymer conjugates for improved detection and therapy of tumor cells.

[0150] DBCO-NH-PEG, a DBCO-functionalized copolymer synthesized by the procedure presented in Example 15. (5) -(DMA (45) -AK-DOTA (4)This was conjugated to an IgG-type cancer cell-specific antibody (trastuzumab targeting Her2+ cancer cells) in which the glutamine at position 295 (Q295) was functionalized with an azide group, according to the procedure described by Dennler et al. (Bioconjugate Chem. (2014) 25: 569-578).

[0151] In short, the antibody was deglycosylated with PNGase F (Merck KGaA, Darmstadt, Germany). A reaction mixture containing 1 unit of enzyme per 10 μg of trastuzumab (Carbosynth Ltd, Berkshir, UK) in PBS (pH 7.4) was incubated overnight at 37°C to activate Q295. Subsequently, deglycosylated trastuzumab (6.6 μm) in PBS (pH 8) was subjected to NH2-PEG. (4) - The mixture was incubated with azide (Click Chemistry Tools, Scottsdale, USA) (80 molar equivalents) and microbial transglutaminase (MTGase) (6 U / mL, Zedira, Darmstadt, Germany) at 37°C for 16 hours. After incubation, MTGase activity was blocked by adding an MTGase reaction stopper (Zedira, Darmstadt, Germany). To remove excess NH2-PEG4-azide, MTGase, and residual PNGase F, the reaction mixture was buffered with NH4OAc (0.5 m, pH 5.5) using an Amicon® Ultra 4 mL column (100 kDa MWCO, Merck KGaA, Darmstadt, Germany) (3 times).

[0152] Next, the actual click response was trastuzumab-(NH-PEG (4) Trastuzumab-[NH-PEG] was incubated overnight at 37°C with a 3x molar excess of azid-2 with DBCO-functionalized polymer. (4) -Triazole-PEG (5) -(DMA (45) AK-DOTA (4))]2 was produced. The success of the reaction was verified by SDS-PAGE using unmodified trastuzumab as a control. The reaction mixture (20 μl) was stopped by adding 5 μl of 4× SDS-PAGE additive (loading buffer) + 10% w / v β-mercaptoethanol (Biorad, Germany) and incubated (60 minutes, 37°C, constant shaking at 600 rpm). The sample was then electrophoresed on a 4-20% SDS-PAGE gel (Mini-PROTEAN® TGX® Precast Gels Biorad, Germany) at 150 V for 40 minutes, followed by Coomassie blue staining of the gel. These experiments revealed quantitative functionalization of the antibody heavy chain copolymer.

[0153] Excess polymer and residual non-functionalized trastuzumab can be removed by size exclusion chromatography (SEC), and fractions containing the desired product can be combined.

[0154] 111-InCl3 antibody copolymer conjugate (trastuzumab-[NH-PEG (4) -Triazole-PEG (5) -(DMA (45) AK-DOTA (4) Radiolabeling of 2 with 4 MBq per 1 μg is carried out at 37°C for 1 hour, and then the indium-111 labeled antibody polymer conjugate is purified by SEC on a Superdex75 10 / 300GL column (GE Healthcare, Chicago, USA) at a flow rate of 0.5 mL / min. The large peak fraction is pooled. The obtained trastuzumab-[NH-PEG (4) -Triazole-PEG (5) -(DMA (45) AK-DOTA-IN-111 (4)Using )2, Her2+ cancer cells can be detected by positron emission tomography (PET) in patients with, for example, breast cancer, colon cancer, or lung cancer, with higher sensitivity than that obtainable with conventional antibody-radioisotope complexes. The increased sensitivity is due to the increased amount of In-111 cargo supported by the antibody carrier complex compared to conventional radiolabeled antibodies.

[0155] Using the same procedure, therapeutic antibody copolymer conjugates loaded with suitable therapeutic radioisotopes such as lutetium-177 can be prepared [by replacing 111-InCl3 used in the procedure described above with 177-LuCl3]. (Example 17) NH2-PEG (5) -(DMA (45) AK-Azid (4) ) using tetrazine-NH-PEG (5) -(DMA (45) AK-Azid (4) ) Synthesis of copolymers [ka]

[0156] NH2-PEG synthesized according to Example 13 (5) -(DMA (45) AK-Azid (4) To a solution of (3.57 μmol) of tetrazine-NHS (18 μmol) and TEA (3.57 μmol) in DMF, the mixture was stirred at 25°C for 8 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain tetrazine-NH-PEG. (5) -(DMA (45) AK-Azid (4) The obtained compound was analyzed by NMR spectroscopy. (Example 18) BOC-G (3) - Synthesis of RAFT prepolymers [ka]

[0157] To a solution of DMA (1000 μL, 9704 μmol, 15 equivalents) in dioxane, BOC-G3-RAFT (348 mg, 647 μmol, 1.0 equivalent) and AIBN (31.9 mg, 194 μmol, 0.3 equivalents) were successively added. The reaction mixture was stirred at 70°C for 4 hours. The reaction mixture was diluted with n-hexane, and after washing with n-hexane, the prepolymer was obtained as a yellow powder. The structure of the obtained compound was verified by NMR spectroscopy and GPC using the following protocol: A storage solution of the copolymer at a concentration of 3.33 mg / mL was prepared with elution buffer (deionized water containing 0.05% (w / v) NaN3) and filtered through a 0.45 μm syringe filter. Subsequently, 0.4 mL of the storage solution was injected into the port of a GPC instrument (1260 Infinity LC-System, Agilent, Santa Clara, CA). Chromatography was performed at a constant flow rate of 0.5 mL / min using an elution buffer. Copolymer samples were separated using a Suprema3 column system (pre-column, 1000 Å, 30 Å; particle size 5 μm; PSS, Mainz, Germany) installed in an external column oven at 55°C. Copolymers were analyzed using RI (refractive index) and UV detectors. A calibration curve (10 points) was established using a pullulan standard. The molecular weight of the characterized copolymers was estimated by reference to this standard. (Example 19) Boc-G (3) -(DMA (45) AK (4) AK-Azid (4) ) synthesis [ka]

[0158] A solution of DMA (116 μL, 1120 μmol, 30 equivalents), AK (30 mg, 150 μmol, 4 equivalents), and AK-azide (42 mg, 150 μmol, 4 equivalents) in ddH2O was prepared by adding BOC-G derived from Example 16. (3)-RAFT prepolymer (79 mg, 37 μmol, 1.0 equivalent) and VA044 (3.6 mg, 11.2 μmol, 0.3 equivalent) were added sequentially. The reaction mixture was stirred at 60°C for 4 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain BOC-G (3) -(DMA (45) AK (4) AK-Azid (4) The obtained compound was analyzed by NMR spectroscopy and GPC using the protocol presented in Example 13. (Example 20) Boc-G (3) -(DMA (45) AK (4) AK-DOTA (4) ) synthesis [ka]

[0159] Boc-G3-(DMA) in DMF (45) AK (4) AK-Azid (4) To a solution of (260 mg, 37 μmol, 1 equivalent), DBCO-DOTA (199 mg, 300 μmol, 8 equivalents) in DMF was added. The reaction mixture was stirred at room temperature for 4 hours and diluted with dioxane. To this solution, phosphinic acid (50 w%, 32 μL, 185 μmol, 5 equivalents), TEA (26 μL, 158 μmol, 5 equivalents), and AIBN (1.9 mg, 11.1 μmol, 0.3 equivalents) were successively added. The reaction mixture was stirred at 75°C for 8 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain Boc-G3-(DMA (45) AK (4) AK-DOTA (4) The compound was obtained as a white powder (198 mg, 22 μmol, 56% in 3 steps). The structure of the obtained compound was verified by NMR spectroscopy and GPC using the protocol presented in Example 13. (Example 21) Boc-G3-(DMA(45) AK-MMAE (4) AK-DOTA (4) ) synthesis [ka]

[0160] Boc-G3-(DMA) in ddH2O (45) AK (4) AK-DOTA (4) To a solution of (14 mg, 1.5 μmol, 1 equivalent), add a solution of MMAE-NHS (5 equivalents) (cytotoxic agent) in DMSO and stir at 35°C for 24 hours. Then, dialyze the resulting mixture with ddH2O (MWCO 3.5 kDa), freeze-dry the concentrate, and process into Boc-G (3) -(DMA (45) AK-MMAE (4) -AK-DOTA (4) The structure of the obtained compound is verified by NMR spectroscopy. (Example 22) DBCO-G3-(DMA (45) AK-MMAE (4) AK-DOTA (4) ) synthesis [ka]

[0161] Boc-G (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4) Dissolve 28 mg (2 μmol) of NH3Cl-G3-(DMA) in a 1:1 solution of TFA in DCM. After 4 hours, remove the organic solvent under reduced pressure and dissolve NH3Cl-G3-(DMA). (45) AK-MMAE (4) AK-DOTA (4) ) is obtained. NH3Cl-G in DMF (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4)To a solution of (14.1 μmol, 1 equivalent), DBCO-NHS (3.4 mg, 8 μmol, 8.0 equivalents) and TEA (1.1 μL, 8 μmol, 8.0 equivalents) are continuously added. The reaction mixture is stirred at 25°C for 4 hours. The resulting mixture is diluted with ddH2O, then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate is freeze-dried to obtain DBCO-NH-G (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4) The obtained compound was examined by NMR spectroscopy. To verify the activity of the DBCO group, the obtained polymer was dissolved in DMF and FAM-azide was added. The obtained compound was examined by GPC using the protocol presented in Example 13.

[0162] (Example 23) Radiolabeled trastuzumab-[NH-PEG] for diagnostic and therapeutic agents targeting Her2 receptor overexpressing cancer cells (4) -Triazole-PEG-NH-G (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4) ]2 Conjugate Synthesis [ka]

[0163] Most tumor therapies are qualitatively monitored by tumor size reduction (CT, MRT scans), and the usual detailed characterization of cytotoxic agent distribution is not performed. In some cases, this is useful for obtaining information on actual tissue distribution in a non-invasive manner. This can be achieved by conjugating the same drug carrier to a cytotoxin in therapeutic applications and to a diagnostic radioisotope in monitoring applications. This technique allows for visualization of the fate of conjugated antibody polymers and provides useful information on potential side effects, such as unintended metabolism in the liver or aggregation in other tissues. This technique is particularly beneficial in Phase I clinical studies for dose determination and characterizing side effects.

[0164] DBCO-functionalized copolymer (DBCO-NH-G) synthesized by the procedure presented in Example 22 (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4) The )) is conjugated to an IgG-type cancer cell-specific antibody (trastuzumab targeting Her2+ cancer cells) in which the glutamine at position 295 (Q295) is functionalized with an azide group, according to the procedure described by Dennler et al. (Bioconjugate Chem. (2014) 25: 569-578).

[0165] In short, the antibody is deglycosylated with PNGase F (Merck KGaA, Darmstadt, Germany). A reaction mixture containing 1 unit of enzyme per 10 μg of trastuzumab (Carbosynth Ltd, Berkshir, UK) in PBS (pH 7.4) is incubated overnight at 37°C to activate Q295. Subsequently, deglycosylated trastuzumab (6.6 μm) in PBS (pH 8) is incubated with NH2-PEG4-azide (Click Chemistry Tools, Scottsdale, USA) (80 molar equivalents) and microbial transglutaminase (MTGase) (6 U / mL, Zedira, Darmstadt, Germany) at 37°C for 16 hours. After incubation, MTGase activity is blocked by adding an MTGase reaction inhibitor (Zedira, Darmstadt, Germany). To remove excess NH2-PEG4-azide, MTGase, and residual PNGase F, the reaction mixture was buffered with NH4OAc (0.5m, pH 5.5) using an Amicon® Ultra 4mL column (100kDa MWCO, Merck KGaA, Darmstadt, Germany) (3 times).

[0166] Next, the actual click reaction was carried out by incubating trastuzumab-(NH-PEG4-azide)2 with a 3-fold molar excess of DBCO-functionalized polymer overnight at 37°C, resulting in trastuzumab-[DBCO-NH-G (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4) This produces ]2. The success of the reaction is verified by SDS-PAGE using unmodified trastuzumab as a control. The reaction mixture (20 μl) is stopped by adding 5 μl of 4× SDS-PAGE additive + 10% w / v β-mercaptoethanol (Biorad, Germany) and incubated (60 minutes, 37°C, constant shaking at 600 rpm). The sample is then electrophoresed on a 4-20% SDS-PAGE gel (Mini-PROTEAN® TGX® Precast Gels Biorad, Germany) at 150 V for 40 minutes, followed by staining the gel with Coomassie blue.

[0167] Excess polymer and residual unfunctionalized trastuzumab can be removed by size exclusion chromatography (SEC) and by pooling fractions containing fully functionalized antibodies.

[0168] Antibody copolymer conjugate with 111-InCl3 (trastuzumab-[DBCO-NH-G (3) -(DMA (45) AK-MMAE (4) AK-DOTA (4) Radiolabeling of 2 with 4 MBq per 1 μg is carried out at 37°C for 1 hour, and then the indium-111 labeled antibody polymer conjugate is purified by SEC on a Superdex75 10 / 300GL column (GE Healthcare, Chicago, USA) at a flow rate of 0.5 mL / min. The large peak fraction is pooled. The obtained trastuzumab-[DBCO-NH-G (3) -(DMA (45) AK-MMAE (4)Using AK-azide-(DOTA-In-111)4]2, Her2+ cancer cells can be detected by positron emission tomography (PET) with higher sensitivity than that obtained with conventional antibody-radioisotope conjugates, for example, in patients with breast cancer, colon cancer, or lung cancer. The increased sensitivity is attributed to the increased amount of In-111 cargo supported by the antibody carrier conjugate compared to conventional radiolabeled antibodies. (Example 24) Tetrazine-G (3) -(DMA (45) AK-DOTA (4) AK-Azid (4) ) [ka]

[0169] Boc-G in ddH2O (3) -(DMA (45) AK (4) AK-Azid (4) To a solution of (14 mg, 1.5 μmol, 1 equivalent), add a solution of DOTA-NHS (6 μmol, 4 equivalents) in DMSO and stir at 35°C for 24 hours. Then, dialyze the resulting mixture with ddH2O (MWCO 3.5 kDa), freeze-dry the concentrate, and Boc-G (3) -(DMA (45) AK-DOTA (4) AK-Azid (4) ) was obtained. Next, Boc-G (3) -(DMA (45) AK-DOTA (4) AK-Azid (4) Dissolve (2 μmol) in a 1:1 solution of TFA in DCM. After 4 hours, remove the organic solvent under reduced pressure and collect NH2-G (3) -(DMA (45) AK-DOTA (4) AK-Azid (4) ) is obtained. NH2-G in DMF (3) -(DMA (45) AK-DOTA (4) AK-Azid (4)To a solution of (14.1 μmol), tetrazine-NHS (5 μmol) and TEA (2 μmol) are added sequentially. The reaction mixture is stirred at 25°C for 8 hours. The resulting mixture is diluted with ddH2O, then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate is freeze-dried to obtain tetrazine-NH-G (3) -(DMA (45) AK-DOTA (4) AK-Azid (4) The structure of the obtained compound is verified by NMR spectroscopy. (Example 25) HS-(DMA (45) AK-Azid (4) ) synthesis [ka]

[0170] To a solution of DMA (116 μL, 1120 μmol, 45 equivalents) and AK-azide (42 mg, 150 μmol, 4 equivalents) in ddH2O, ethyl-RAFT (see Example 11) (5.6 mg, 24.9 μmol, 1.0 equivalent) and VA044 (3.6 mg, 11.2 μmol, 0.3 equivalents) were successively added. The reaction mixture was stirred at 60°C for 4 hours. The reaction mixture was stirred at room temperature for 4 hours. Cyclohexylamine (493 μL, 4977 μmol, 200 equivalents) was added to the reaction mixture and stirred at 30°C for 3 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain HS-(DMA). (45) AK-Azid (4) The compound was obtained as a white powder (120 mg, 20 μmol, 81% in 3 steps). The structure of the obtained compound was verified by NMR spectroscopy and GPC using the protocol of Example 13. (Example 26) HS-(DMA (45) AK-DOTA (4) ) synthesis [ka]

[0171] HS-(DMA) in ddH2O (45 AK-Azid (4) A solution of DBCO-DOTA (19.0 mg, 24 μmol, 8 equivalents) in DMSO was added to a solution of (20 mg, 3.5 μmol, 1 equivalent) and stirred at 35°C for 24 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain HS-(DMA). (45) AK-DOTA (4) The obtained compound was analyzed by NMR spectroscopy. (Example 27) DBCO-(DMA (45) AK-DOTA (4) ) synthesis [ka]

[0172] HS-(DMA) in DMF (45) AK-DOTA (4) MC-DBCO (11.61 mg, 14.4 μmol, 8.0 equivalents) was added to a solution of (28 mg, 3 μmol). After 4 hours, the reaction mixture was diluted with ddH2O and then dialyzed with 0.1 M NH4HCO3 (MWCO 3.5 kDa). The concentrated solution was freeze-dried to obtain DBCO-(DMA). (45) AK-DOTA (4)The obtained compound was analyzed by NMR spectroscopy. To verify the activity of the DBCO group, the obtained polymer was dissolved in DMF and FAM-azide was added. The obtained compound was analyzed by GPC using the following protocol: A storage solution of 3.33 mg / mL of copolymer was prepared with elution buffer (deionized water containing 0.05% (w / v) NaN3) and filtered through a 0.45 μm syringe filter. Subsequently, 0.4 mL of the storage solution was injected into the port of a GPC instrument (1260 Infinity LC-System, Agilent, Santa Clara, CA). Chromatography was performed at a constant flow rate of 0.5 mL / min with elution buffer. Copolymer samples were separated using a Suprema3 column system (pre-column, 1000 Å, 30 Å; particle size 5 μm; PSS, Mainz, Germany) installed in an external column oven at 55°C. The copolymer was analyzed using RI (refractive index) and UV detectors. A calibration curve (10 points) was established using a pullulan standard. The molecular weight of the characterized copolymer was estimated by reference to this standard. In this test, the 495 nm signal (FAM) and RI signals of the copolymer showed overlay agreement, indicating that the copolymer was functionalized with active DBCO head groups. (Example 28) HS-(DMA (45) AK (4) AK-Azid (4) ) synthesis [ka]

[0173] To a solution of DMA (116 μL, 1120 μmol, 45 equivalents), AK (30 mg, 150 μmol, 4 equivalents), and AK-azide (42 mg, 150 μmol, 4 equivalents) in ddH2O, ethyl-RAFT (see Example 11) (5.6 mg, 24.9 μmol, 1.0 equivalent) and VA044 (3.6 mg, 11.2 μmol, 0.3 equivalents) were successively added. The reaction mixture was stirred at 60°C for 4 hours. The reaction mixture was stirred at room temperature for 4 hours. Cyclohexylamine (493 μL, 4977 μmol, 200 equivalents) was added to the reaction mixture and stirred at 30°C for 3 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain HS-(DMA). (45) AK (4) AK-Azid (4) The compound was obtained as a white powder (150 mg, 23 μmol, 88% in 3 steps). The structure of the obtained compound was verified by NMR spectroscopy and GPC using the protocol of Example 13. (Example 29) HS-(DMA (45) AK (4) AK-DOTA (4) ) synthesis [ka]

[0174] HS-(DMA) in ddH2O (45) AK (4) AK-Azid (4) A solution of DBCO-DOTA (16.3 mg, 24 μmol, 8 equivalents) in DMSO was added to a solution of (20 mg, 3 μmol, 1 equivalent) and stirred at 35°C for 24 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain HS-(DMA). (45) AK (4) AK-DOTA (4) The obtained compound was analyzed by NMR spectroscopy. (Example 30) HS-(DMA (45) AK (4) AK-DOTA(4) ) and coupling with MMAE [ka]

[0175] HS-(DMA) in ddH2O (45) AK (4) AK-DOTA (4) A solution of 14 mg, 1.5 μmol, 1 equivalent of ) was mixed with a solution of MMAE-NHS (15.16 mg, 12 μmol, 8 equivalents) in DMSO, and the mixture was stirred at 35°C for 24 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain HS-(DMA). (45) AK-MMAE (4) AK-DOTA (4) The structure of the obtained compound can be verified by NMR spectroscopy. (Example 31) DBCO-DMA (45) AK-MMAE (4) AK-DOTA (4) ) synthesis [ka]

[0176] HS-(DMA) in DMF (45) AK-MMAE (4) AK-DOTA (4) MC-DBCO (6.1 mg, 14.4 μmol, 8.0 equivalents) was continuously added to a solution of (28 mg, 1.8 μmol). After 4 hours, the reaction mixture was diluted with ddH2O and then dialyzed with 0.1 M NH4HCO3 (MWCO 3.5 kDa). The concentrated solution was freeze-dried to obtain DBCO-MC-S-(DMA). (45) AK-MMAE (4) AK-DOTA (4)The structure of the obtained compound is verified by NMR spectroscopy. To verify the activity of this DBCO group, a small sample of the copolymer is dissolved in DMF, FAM-azide is added, and the mixture is incubated at 37°C for 4 hours. The thus functionalized copolymer can then be analyzed by GPC using the protocol of Example 13, with detection of RI signals and UV (495 nm). In this test, the 495 nm signal (FAM) and RI signal of the copolymer showed an overlay agreement indicating that the copolymer was functionalized with an active DBCO head group. (Example 32) Tetrazine-(DMA) (45) AK-Azid (4) ) synthesis [ka]

[0177] HS-(DMA) in DMF (45) AK-Azid (4) ) (1 equivalent) of solution, tetrazine-PEG (4) -Add MC (8.0 equivalents). After 4 hours, dilute the reaction mixture with ddH2O, then dialyze with 0.1M NH4HCO3 (MWCO 3.5kDa), freeze-dry the concentrate, and extract tetrazine-(DMA). (45) AK-Azid (4) ) obtain. (Example 33) Tetrazine-(DMA) (45) AK-DOTA (4) AK-Azid (4) ) synthesis [ka]

[0178] HS-(DMA) in ddH2O (45) AK (4) AK-Azid (4)To a solution of (1 equivalent), add a solution of DOTA-NHS (6 μmol, 4 equivalents) in DMSO, and stir the mixture at 35°C for 24 hours. Then, dialyze the mixture with ddH2O (MWCO 3.5 kDa), freeze-dry the concentrate, and obtain HS-(DMA). (45) AK-DOTA (4) AK-Azid (4) ) obtain.

[0179] HS-(DMA) in DMF (45) AK-DOTA (4) AK-Azid (4) ) (1 equivalent) of solution, tetrazine-PEG (4) -Add MC (8.0 equivalents). After 4 hours, dilute the reaction mixture with ddH2O, then dialyze with 0.1M NH4HCO3 (MWCO 3.5kDa), freeze-dry the concentrate, and extract tetrazine-(DMA). (45) AK-DOTA (4) AK-Azid (4) ) obtain. (Example 34) Synthesis of radiolabeled trastuzumab azido copolymer (Examples 17, 24, 32, and 33) conjugates for diagnostic and therapeutic agents targeting Her2 receptor-overexpressing cancer cells.

[0180] A tetrazine-functionalized copolymer synthesized by one of the procedures presented in Examples 17, 24, 32, and 33 was used as a substrate for TCO-PEG. (3) - The glutamine at position 295 (Q295) is conjugated to an IgG-type cancer cell-specific antibody (e.g., trastuzumab targeting Her2+ cancer cells) functionalized with a TCO group, using the procedure described by Dennler et al. (Bioconjugate Chem. (2014) 25: 569-578) which uses an amine.

[0181] In short, the antibody is deglycosylated with PNGase F (Merck KGaA, Darmstadt, Germany). A reaction mixture containing 1 unit of enzyme per 10 μg of trastuzumab (Carbosynth Ltd, Berkshir, UK) in PBS (pH 7.4) is incubated overnight at 37°C to activate Q295. Subsequently, the deglycosylated trastuzumab (6.6 μm) in PBS (pH 8) is treated with TCO-PEG. (3) - Incubate with amine (80 molar equivalents) and microbial transglutaminase (MTGase) (6 U / mL, Zedira, Darmstadt, Germany) at 37°C for 16 hours. After incubation, block MTGase activity by adding an MTGase reaction inhibitor (Zedira, Darmstadt, Germany). Excess TCO-PEG (3) - To remove amines, MTGase, and residual PNGase F, the reaction mixture is buffered with NH4OAc (0.5m, pH 5.5) using an Amicon® Ultra 4mL column (100kDa MWCO, Merck KGaA, Darmstadt, Germany) (3 times).

[0182] Next, the actual click response was trastuzumab-(NH-PEG (3) -TCO) (2)The reaction is carried out by incubation overnight at 37°C with a 3-fold molar excess of tetrazine-functionalized polymer (Examples 17, 24, 32, or 33) to produce trastuzumab coupled to the copolymers synthesized in Examples 17, 24, 32, and 33. The success of the reaction is verified by SDS-PAGE using unmodified trastuzumab as a control. For this purpose, the reaction sample (20 μl) is stopped by adding 5 μl of 4× SDS-PAGE additive solution + 10% w / v β-mercaptoethanol (Biorad, Germany), and incubated at 37°C for 60 minutes with constant shaking at 600 rpm. The sample is then electrophoresed on a 4-20% SDS-PAGE gel (Mini-PROTEAN® TGX® Precast Gels Biorad, Germany) at 150 V for 40 minutes, followed by Coomassie blue staining of the gel. (Example 35) Loading of cytotoxic drugs by trastuzumab azido copolymer conjugates

[0183] DBCO-PEG is added to a solution of trastuzumab azido copolymer synthesized according to Example 34 in PBS. (3) -VC-PAB-MMAE(Lucerna-Chem, Lucerne, 3 equivalents / AK-azido monomer) is added, and the mixture is incubated at 37°C for 12 hours. The success of the reaction is verified by SDS-PAGE and GPC according to the procedure presented in the above examples, using unloaded trastuzumab-(azido copolymer) 2 as a control. (Example 36) Synthesis of DBCO-CF3 (model payload) [ka]

[0184] To a solution of commercially available DBCO-CO2H (1353016-70-2, 100 mg, 0.328 mmol) in dry DCM (6 mL), DIPEA (0.200 mL, 1.146 mmol) and PyBOP (170 mg, 0.328 mmol) were added at 0°C. The mixture was stirred at 0°C for 30 minutes, and 2,2,2-trifluoroethaneamine (0.039 mL, 0.491 mmol) was gradually added to the mixture. The reaction mixture was then stirred at 0°C for 2 hours and diluted with KHSO4 aqueous solution. The aqueous phase was then extracted with DCM (3 × 20 mL), and the combined organic phase was washed with brine and dried over Na2SO4. Volatile substances were then removed under reduced pressure, and the residue was purified by chromatography using silica gel column with 1,2 Hept / 1 siRNA as the eluent. The product was isolated as a white powder (125 mg, 0.324 mmol, 99%). (Example 37) HS-(DMA) via polymer-like reactions (55) -AK-(6-Azidohexanoyl) (4) ) synthesis [ka]

[0185] HS-(DMA) was obtained via RAFT polymerization of DMA (55 equivalents) and AK (4 equivalents) using ethyl-RAFT (1 equivalent) as the transfer reagent (200 mg, 31 μmol) in DMF (5 mL) (see Example 25 for a similar detailed protocol). (55) -AK (4) To the solution of ), 1(6-azidohexanoyl)pyrrolidine-2,5-dione (75 mg, 314 μmol) and TEA (44 μL, 314 μmol) were added. The reaction mixture was stirred at room temperature for 16 hours, diluted with ddH2O (12 mL), and dialyzed with ddH2O (10 L), aqueous NH4HCO3 solution (0.1 M, 3 L), and ddH2O (10 L). The concentrate was freeze-dried (-78°C, 0.010 mBar). The structure of the obtained construct was determined. 1 H / 13The DAR (=4.2) was verified by 13C-NMR spectroscopy after derivatization of the indicated compound with DBCO-CF3. 19 This was estimated by F-NMR spectroscopy. (Example 38) Model compound HS-(DMA) via polymer-like reaction (55) -(AK-Triazine-CF3) (1) -(AK-acetyl-CF3) (3) synthesis [ka]

[0186] HS-(DMA) in DMF-D6 (0.7 mL) (55) -AK-Azid (4) To a solution of ), 1-(6-azidohexanoyl)pyrrolidine-2,5-dione (5.98 mg, 25 μmol), 1-(3,3,3-trifluoropropanoyl)pyrrolidine-2,5-dione (5.25 mg, 25 μmol) (both substances were added simultaneously), and triethylamine (10.51 μl, 75 μmol) were added. The mixture was stirred at room temperature for 4 hours, then DBCO-CF3 (19.40 mg, 50 μmol) was added, and the reaction mixture was stirred overnight. The polymer was then purified by ultrafiltration (2000 MWCO, resuspended in 3 × 10 mL of ddH2O and filtered). The concentrate was then lyophilized to obtain a white powder (35 mg, 4.84 μmol, 77%). The white residue was 19 Analysis was performed using 1F-NMR spectroscopy. (Example 39) Model compound: Methyltetrazine-PEG4-succinate-S--(DMA (55) -(AK-Triazine-CF3) (1) -(AK-acetyl-CF3) (3) synthesis [ka]

[0187] HS-(DMA) in DMF-D6 (0.7 mL) (55)-(AK-Triazine-CF3) (1) -(AK-acetyl-CF3) (3) In the solution, tetrazine-PEG (4) -MC (8.0 equivalents) was added. After 4 hours, the reaction mixture was diluted with ddH2O, then dialyzed with 0.1M NH4HCO3 (MWCO 3.5kDa), and the concentrate was freeze-dried to obtain methyltetrazine-PEG4-succinate-S-(DMA). (55) -(AK-Triazine-CF3) (1) -(AK-acetyl-CF3) (3) I obtained it. (Example 40) HS-(HPA (55) -AK (4) ) synthesis

[0188] This compound was copolymerized using HPA(2-hydroxypropyl)acrylamide) (55 equivalents), obtained according to the protocol of Fairbanks and colleagues (dx.doi.org / 10.1021 / bm500654q), as a substitute for the DMA monomer, to form HS-(DMA) copolymer. (55) -AK-Azid (4) This was obtained in the same manner as (see Part 1 of Example 37). (Example 41) HS-(HEAa 53) AK (4) ) synthesis [ka]

[0189] To a solution of HEAa (368 μL, 3540 μmol, 53 equivalents) and AK (54 mg, 267 μmol, 4 equivalents) in ddH2O, ethyl-RAFT (see Example 11) (15 mg, 67 μmol, 1.0 equivalent) and VA044 (6.5 mg, 20 μmol, 0.3 equivalents) were successively added. The reaction mixture was stirred at 60°C for 4 hours. The reaction mixture was stirred at room temperature for 4 hours. Cyclohexylamine (1533 μL, 13.37 mmol, 200 equivalents) was added to the reaction mixture and stirred at 30°C for 3 hours. The resulting mixture was then dialyzed with ddH2O (MWCO 3.5 kDa), and the concentrate was freeze-dried to obtain HS-(HEAa (53) AK (4) The compound was obtained as a white powder (395 mg, 55.6 μmol, 83% in 3 steps). The structure of the obtained compound was verified by NMR spectroscopy and GPC using the protocol of Example 13.

[0190] Further aspects and / or embodiments of the present invention are disclosed in the following numbered sections. 1. A copolymer comprising multiple copies of a first payload molecule, (a)(1) Co-main monomers of formula I including the azide moiety, [ka] [wherein R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Z is H (if A is -O-) or -C n H 2n+1 (Here, n=1 to 8, A is -O- or -NH-, and L is a linker / spacer that can be cleavable or non-cleavable under physiological conditions.) (2) A polymerizable main monomer characterized in that the monomer has at least one vinyl group and does not contain an amino acid moiety or an azide moiety, (3) Polymerizing a reaction mixture comprising an initiator system for generating free radical species, wherein the polymerization produces a copolymer, and (b) coupling the first payload molecule with the azide portion contained in the copolymer of step (a). A copolymer produced by [the following method]. 2. The reaction mixture is of formula II [ka] [In the formula, R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Y is H or -CO-C n H 2n+1 (Here, n=1 to 8), and Z is either H (when A is -O-) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) Alternatively, Equation III [ka] [In the formula, R is -H, -CH3, -CH2-CH3, or -(CH2)2-CH3, and Z is H (when A is O) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) The copolymer described in any of item 1, further comprising one or both of the co-major monomers. 3. The copolymer according to item 2, wherein, after step (a) or (b), a further step is to couple a second payload molecule containing a reactive group to one or both of the comajor monomers of formula II or III, wherein one or both of Y and Z in the monomer of formula II is H, or Z in the monomer of formula III is H. 4. The copolymer according to any one of items 1 to 3, wherein the reaction mixture further comprises a RAFT reagent for controlling the copolymerization. 5. Divide step (a) into two sequential polymerization reactions, A first polymerization reaction is carried out in a first reaction mixture comprising a polymerizable main monomer that does not contain an amino acid moiety or an azide moiety, a RAFT agent for controlling the copolymerization, and an initiator system for generating free radical species, wherein the polymerization produces a RAFT prepolymer. A second polymerization reaction is carried out in a second reaction mixture comprising the RAFT prepolymer from the first polymerization reaction, the co-major monomer of formula I, and an initiator system for generating free radical species. The copolymer described in item 4. 6. The copolymer according to item 5, wherein the second reaction mixture further comprises one or both of the co-major monomers of formulas II and III, as well as a polymerizable major monomer that does not contain either an amino acid moiety or an azide moiety. 7. The copolymer according to any one of items 4 to 6, wherein the RAFT agent contains a reactive group or is converted after step (a) to provide a reactive group. 8. The copolymer according to items 4 to 7, wherein the RAFT agent comprises 2 to 30 units of monodisperse spacers. 9. The copolymer according to any one of items 7 to 8, wherein, prior to step (b), a cell-type specific or tissue-type specific targeting moiety is coupled to the reactive group. 10. The copolymer according to any one of items 7 to 8, wherein, after step (b), a cell type-specific or tissue type-specific targeting moiety is coupled to the reactive group. 11. The copolymer according to any one of items 1 to 10, wherein the first payload molecule is a chelating agent, the copolymer is exposed to an activator, and the activator is captured by the chelating agent. 12. The copolymer according to any one of items 1 to 11, wherein the copolymer has an average molecular weight of 5,000 daltons to 80,000 daltons. 13. The copolymer according to any one of items 1 to 11, wherein the copolymer has an average molecular weight of 5,000 daltons to 40,000 daltons. 14. The copolymer according to any one of items 1 to 11, wherein the copolymer has an average molecular weight of 5,000 daltons to 20,000 daltons. 15. The reaction mixture is (1) The co-major monomers of formula I, (2) A polymerizable main monomer characterized in that the monomer has at least one vinyl group and does not contain an amino acid moiety or an azide moiety, (3) If necessary, an agent for controlling radical polymerization, (3) Initiator system for generating free radical species and Includes, The copolymer comprises 2 to 12 molecules of the co-major monomer of formula I, The copolymer described in item 1. 16. The copolymer according to item 15, wherein the copolymer comprises 2 to 8 molecules of co-major monomers of formula I. 17. The copolymer according to item 15, wherein the copolymer comprises 2 to 6 molecules of co-major monomers of formula I. 18. The reaction mixture is (1) The co-major monomers of formula I, (2) One or both of the co-major monomers of formula II or III, (3) A polymerizable main monomer characterized in that the monomer has at least one vinyl group and does not contain an amino acid moiety or an azide moiety, (4) If necessary, an agent for controlling radical polymerization, (5) Initiator system for generating free radical species and Includes, The copolymer contains 10 to 50 molecules of any of the co-major monomers of formulas I to III. The copolymer described in item 2. 19. The copolymer according to item 18, wherein the copolymer comprises 10 to 40 molecules of any of the co-major monomers of formulas I to III. 20. The copolymer according to item 18, wherein the copolymer comprises 10 to 30 molecules of any of the co-major monomers of formulas I to III. 21. The reaction mixture is (1) The co-major monomers of formula I, (2) One or both of the co-major monomers of formula II or III, (3) A polymerizable main monomer characterized in that the monomer has at least one vinyl group and does not contain an amino acid moiety or an azide moiety, (4) If necessary, an agent for controlling radical polymerization, (5) an initiator system for generating free radical species, wherein the polymerization produces a copolymer, The copolymer contains 4 to 20 molecules of any of the co-major monomers of formulas I to III. The copolymer described in item 3. 22. The copolymer according to item 18, wherein the copolymer comprises 4 to 15 molecules of any of the co-major monomers of formulas I to III. 23. The copolymer according to item 18, wherein the copolymer comprises 4 to 10 molecules of any of the co-major monomers of formulas I to III. 24. A pharmaceutical composition comprising an effective amount of any copolymer described in item 1 to 23, and a pharmaceutically acceptable carrier or excipient. 25. Use of the pharmaceutical composition described in item 24 for treating cancer or another disease or condition of the subject, comprising administering the pharmaceutical composition to the subject.

[0191] Further aspects and / or embodiments of the present invention are disclosed in the following numbered paragraphs. 1. A copolymer comprising multiple copies of a first payload molecule, (a)(1) The co-major monomers of formula I and [ka] [In the formula, R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, Y is H, and Z is H (when A is -O-) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) (2) A polymerizable main monomer characterized in that the monomer has at least one vinyl group and does not contain an amino acid moiety or an azide moiety, (3) If necessary, a RAFT reagent for controlling the copolymerization, (4) Polymerizing a reaction mixture containing an initiator system for generating free radical species, wherein the polymerization produces a copolymer. (b) Treat the copolymer from step (a) with an amine-reactive agent containing the linker and azide moieties. (c) Coupling the first payload molecule to the azide portion contained in the copolymer of step (b). A copolymer produced by [the following method]. 2. The reaction mixture contains the co-major monomers of formula III. [ka] [In the formula, R is -H, -CH3, -CH2-CH3, or -(CH2)2-CH3, and Z is H (when A is O) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) The copolymer described in paragraph 1, further comprising: 3.L is -CO-C n H 2n -(where n=1~10) or -CO-(PEG) n-(where n=1~14) or the copolymer according to paragraph 1 or 2, wherein L is -CO-valine-citrulline-PABC or a variant thereof, valine-lysine, valine-alanine, valine-arginine, or glutamate-valine-citrulline. 4. The polymerizable main monomer is N,N-dimethylacrylamide, N-isobutylacrylamide, N-tert.butylacrylamide, N-hydroxyethylacrylamide, N-(2-hydroxypropyl)acrylamide, N-(3-hydroxypropyl)acrylamide, N-(3-hydroxypropyl)-methacrylamide, N-(2-hydroxypropyl)-methacrylamide, N-(3-aminopropyl)-acrylamide hydrochloride, or N-(3-aminopropyl)-methacrylamide hydrochloride. Alternatively, the polymerizable main monomer is methacrylic acid, 2-hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 3-hydroxypropyl acrylate, 2-hydroxy-1-methylethyl acrylate, 2-aminoethyl acrylate hydrochloride, 3-hydroxypropyl methacrylate, 2-hydroxy-1-methylethyl methacrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, or 2-aminoethyl methacrylate hydrochloride. The copolymer described in any one of paragraphs 1 to 3. 5. Formula [ka] [wherein R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Z is H (if A is -O-) or -C n H 2n+1 (Here, n=1 to 8, A is -O- or -NH-, and L is a linker / spacer that can be cleavable or non-cleavable under physiological conditions.) A copolymer containing repeating units. 6.Formula: [ka] [wherein R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Z is H (if A is -O-) or -C n H 2n+1 (where n=1~8, A is -O- or -NH-, L is a linker / spacer that can be cleavable or non-cleavable under physiological conditions, and P contains the first payload molecule.) A copolymer containing repeating units. 7.Formula: [ka] [In the formula, R is -H, -CH3, -CH2-CH3 or -(CH2)2-CH3, X is -NH(CH2)4-, -NH(CH2)3-, -O-C6H4-CH2-, -O-CH2-, -O-CH(CH3)-, -S-CH2- or -NH-C6H4-CH2-, and Y is H or -CO-C n H 2n+1 (Here, n=1 to 8), and Z is either H (when A is -O-) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) The repeating unit and / or formula: [ka] [In the formula, R is -H, -CH3, -CH2-CH3, or -(CH2)2-CH3, and Z is H (when A is O) or -C n H 2n+1 (Here, n=1 to 8, and A is either -O- or -NH-) The copolymer according to paragraph 5 or 6, further comprising repeating units. 8. The copolymer according to paragraph 7, wherein Y is H and / or Z is H. 9. The copolymer according to paragraph 7, wherein Y and / or Z comprise a second payload molecule. 10.L is -CO-C n H 2n -(where n=1~10) or -CO-(PEG) n -(where n=1~14) or the copolymer according to any one of paragraphs 5-9, wherein L is -CO-valine-citrulline-PABC or a variant thereof, valine-lysine, valine-alanine, valine-arginine, or glutamate-valine-citrulline. 11. Repeating units obtained by polymerization of N,N-dimethylacrylamide, N-isobutylacrylamide, N-tert.butylacrylamide, N-hydroxyethylacrylamide, N-(2-hydroxypropyl)-acrylamide, N-(3-hydroxypropyl)-acrylamide, N-(3-hydroxypropyl)-methacrylamide, N-(2-hydroxypropyl)-methacrylamide, N-(3-aminopropyl)-acrylamide hydrochloride, or N-(3-aminopropyl)-methacrylamide hydrochloride, or methacrylic The copolymer according to any one of paragraphs 5 to 10, further comprising repeating units obtained by polymerization of an acid, 2-hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 3-hydroxypropyl acrylate, 2-hydroxy-1-methylethyl acrylate, 2-aminoethyl acrylate hydrochloride, 3-hydroxypropyl methacrylate, 2-hydroxy-1-methylethyl methacrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, or 2-aminoethyl methacrylate hydrochloride. 12. The copolymer according to any one of paragraphs 6 to 11, wherein the repeating units of formulas (R2) and (R3) are absent, and the average number of repeating units by formula (R1) is 2 to 12, preferably 2 to 8, more preferably 1 to 6. 13. The copolymer according to any one of paragraphs 5 to 11, wherein the repeating units of formula (R2) or (R3) are not functionalized, and the average number of repeating units by formula (R1), (R2), or (R3) is 10 to 50, preferably 10 to 40, more preferably 10 to 30. 14. The copolymer according to any one of paragraphs 5 to 11, wherein the repeating units of formula (R2) or (R3) are functionalized with a second payload molecule, and the average number of repeating units according to formula (R1), (R2), or (R3) is 4 to 20, preferably 4 to 15, more preferably 4 to 10.

Claims

1. A copolymer comprising multiple copies of a first payload molecule, wherein the copolymer comprises (a) (1) a monomer of formula I including an azide moiety, 【Transformation 56】 [wherein, R is -H, -CH 3 , -CH 2 -CH 3 or -(CH 2 ) 2 -CH 3 ; X is -NH(CH 2 ) 4 -, -NH(CH 2 ) 3 -, -O-C 6 H 4 -CH 2 -, -O-CH 2 -, -O-CH(CH 3 )-, -S-CH 2 - or -NH-C 6 H 4 -CH 2 -; Z is H or -C n H 2n+1 (where n = 1 to 8); A is -O- or -NH-; L is a linker / spacer] (2) A monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety, (3) Polymerizing a reaction mixture containing an initiator system for generating free radical species, wherein the polymerization produces a copolymer, and (b) coupling the first payload molecule with the azide portion contained in the copolymer of step (a). This copolymer was obtained by The reaction mixture is, Formula II 【Chemistry 57】 [In the formula, R is -H, -CH] 3 ien-CH 2 -CH 3 or - (CH 2 ) 2 -CH 3 And X is -NH(CH 2 ) 4 -, -NH(CH 2 ) 3 -, -O-C 6 H 4 -CH 2 -, -O-CH 2 -, -O-CH(CH 3 )-,-S-CH 2 - or -NH-C 6 H 4 -CH 2 - and Y is H or -CO-C n H 2n+1 (Here, n = 1 to 8), and Z is either H or -C n H 2n+1 (Here, n = 1 to 8, and A is either -O- or -NH-) Alternatively, Equation III 【Chemistry 58】 [In the formula, R is -H, -CH] 3 ien-CH 2 -CH 3 or - (CH 2 ) 2 -CH 3 And Z is either H or -C n H 2n+1 (Here, n = 1 to 8, and A is either -O- or -NH-) Further comprising one or both monomers, A copolymer comprising, after step (a) or (b), a further step of coupling a second payload molecule containing a reactive group to one or both of the monomers of formula II or III, wherein one or both of Y and Z in the monomer of formula II is H, or Z in the monomer of formula III is H, the first or second payload molecule is a chelating agent, and optionally in a further step the copolymer is exposed to a radionuclide and the radionuclide is captured by the chelating agent.

2. The copolymer according to claim 1, wherein the reaction mixture further comprises a RAFT reagent for controlling the copolymerization.

3. Step (a) is divided into two sequential polymerization reactions. A first polymerization reaction is carried out in a first reaction mixture comprising a monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety, a RAFT agent for controlling the copolymerization, and an initiator system for generating free radical species, wherein the polymerization produces a RAFT prepolymer. The copolymer according to claim 2, wherein the second polymerization reaction is carried out in a second reaction mixture comprising the RAFT prepolymer of the first polymerization reaction, a monomer of formula I, and an initiator system for generating free radical species.

4. The copolymer according to claim 3, wherein the second reaction mixture further comprises one or both monomers of formulas II and III, and a monomer having at least one vinyl group and not containing either an amino acid moiety or an azide moiety.

5. The copolymer according to any one of claims 2 to 4, wherein the RAFT agent contains a reactive group or is converted after step (a) to provide a reactive group.

6. The copolymer according to claims 2 to 5, wherein the RAFT agent comprises 2 to 30 units of monodisperse spacers.

7. The copolymer according to any one of claims 5 to 6, wherein a cell-type specific or tissue-type specific targeting moiety is coupled to the reactive group prior to step (b).

8. The copolymer according to any one of claims 5 to 6, wherein, after step (b), a cell type-specific or tissue type-specific targeting moiety is coupled to the reactive group.

9. A copolymer comprising a plurality of copies of a first payload molecule, wherein the copolymer is (a) The monomer of formula II (1) and 【Chemistry 59】 [In the formula, R is -H, -CH] 3 ien-CH 2 -CH 3 or - (CH 2 ) 2 -CH 3 And X is -NH(CH 2 ) 4 -, -NH(CH 2 ) 3 -, -O-C 6 H 4 -CH 2 -, -O-CH 2 -, -O-CH(CH 3 )-,-S-CH 2 - or - NH-C 6 H 4 -CH 2 -, Y is H, and Z is H or -C n H 2n+1 (Here, n = 1 to 8, and A is -O- or -NH-) (2) A monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety, (3) Polymerizing a reaction mixture containing an initiator system for generating free radical species, wherein the polymerization produces a copolymer. (b) Treat the copolymer from step (a) with an amine-reactive agent containing the linker / spacer L and the azide portion, and (c) coupling the first payload molecule with the azide portion contained in the copolymer of step (b). This copolymer was obtained by The reaction mixture is a monomer of formula III. 【Transformation 60】 [In the formula, R is -H, -CH] 3 ien-CH 2 -CH 3 or - (CH 2 ) 2 -CH 3 And Z is H or -C n H 2n+1 (Here, n = 1 to 8, and A is -O- or -NH-) A copolymer further comprising a further step of coupling a second payload molecule containing a reactive group to the monomer of formula III, wherein Z in the monomer of formula III is H, the first or second payload molecule is a chelating agent, and optionally in a further step the copolymer is exposed to a radionuclide and the radionuclide is captured by the chelating agent.

10. The copolymer according to any one of claims 1 to 9, wherein the first payload molecule is a chelating agent, and optionally in a further step, the copolymer is exposed to a radionuclide and the radionuclide is captured by the chelating agent.

11. The copolymer according to any one of claims 1 to 10, wherein the copolymer has an average molecular weight of 5,000 daltons to 80,000 daltons.

12. The copolymer according to any one of claims 1 to 11, wherein the copolymer has an average molecular weight of 5,000 daltons to 40,000 daltons.

13. The copolymer according to any one of claims 1 to 12, wherein the copolymer has an average molecular weight of 5,000 daltons to 20,000 daltons.

14. The reaction mixture (1) The monomer of formula I, (2) A monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety, (3) If necessary, an agent for controlling radical polymerization, (4) Initiator system for generating free radical species and Includes, The copolymer comprises 2 to 12 molecules of the monomer of formula I, The copolymer according to claim 1.

15. The copolymer according to claim 14, wherein the copolymer comprises 2 to 8 molecules of the monomer of formula I.

16. The copolymer according to claim 15, wherein the copolymer comprises two to six molecules of the monomer of formula I.

17. The reaction mixture (1) The monomer of formula I, (2) One or both monomers of formula II or III, (3) A monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety, (4) If necessary, an agent for controlling radical polymerization, (5) Initiator system for generating free radical species and Includes, The copolymer comprises 10 to 50 molecules of any of the monomers of formulas I to III. The copolymer according to claim 1.

18. The copolymer according to claim 17, wherein the copolymer comprises 10 to 40 molecules of any of the monomers of formulas I to III.

19. The copolymer according to claim 17, wherein the copolymer comprises 10 to 30 molecules of any of the monomers of formulas I to III.

20. The reaction mixture (1) The co-major monomers of formula I, (2) One or both of the co-major monomers of formula II or III, (3) A monomer having at least one vinyl group and not containing an amino acid moiety or an azide moiety, (4) If necessary, an agent for controlling radical polymerization, (5) an initiator system for generating free radical species, wherein the polymerization produces a copolymer, The copolymer according to claim 1, wherein the copolymer comprises 4 to 20 molecules of any of the monomers of formulas I to III.

21. The copolymer according to claim 20, wherein the copolymer comprises 4 to 15 molecules of any of the monomers of formulas I to III.

22. The copolymer according to claim 20, wherein the copolymer comprises 4 to 10 molecules of any of the monomers of formulas I to III.

23. L is -CO-C n H 2n - (where n = 1 to 10) or -CO-(PEG) n - (where n = 1 to 14), or, L is -CO-valine-citrulline-PAABC (where PABC is p-aniline-beta-carbamate) or a variant thereof, valine-lysine, valine-alanine, valine-arginine, glutamate-valine-citrulline. The copolymer according to any one of claims 1 to 22.

24. The monomer having at least one vinyl group and not containing an amino acid moiety or azide moiety is N,N-dimethylacrylamide, N-isobutylacrylamide, N-tert.butylacrylamide, N-hydroxyethylacrylamide, N-(2-hydroxypropyl)acrylamide, N-(3-hydroxypropyl)acrylamide, N-(3-hydroxypropyl)methacrylamide, N-(2-hydroxypropyl)methacrylamide, N-(3-aminopropyl)acrylamide hydrochloride, or N-(3-aminopropyl)methacrylamide hydrochloride, or The monomer having at least one vinyl group and not containing an amino acid moiety or azide moiety is methacrylic acid, 2-hydroxyethyl acrylate, 2-hydroxypropyl acrylate, 3-hydroxypropyl acrylate, 2-hydroxy-1-methylethyl acrylate, 2-aminoethyl acrylate hydrochloride, 3-hydroxypropyl methacrylate, 2-hydroxy-1-methylethyl methacrylate, 2-hydroxyethyl methacrylate, 2-hydroxypropyl methacrylate, or 2-aminoethyl methacrylate hydrochloride. The copolymer according to any one of claims 1 to 23.

25. The copolymer according to any one of claims 1 to 24, wherein the chelating agent is a chelating agent containing a radionuclide.

26. Formula (R1) 【Transformation 62】 [wherein, R is -H, -CH 3 , -CH 2 -CH 3 or -(CH 2 ) 2 -CH 3 ; X is -NH(CH 2 ) 4 -, -NH(CH 2 ) 3 -, -O-C 6 H 4 -CH 2 -, -O-CH 2 -, -O-CH(CH 3 )-, -S-CH 2 - or -NH-C 6 H 4 -CH 2 -; Z is H or -C n H 2n+1 (where n = 1 to 8); A is -O- or -NH-; L is a linker / spacer; P contains a first payload molecule] Includes repeating units, Formula (R2): 【Transformation 63】 [In the formula, R is -H, -CH] 3 ien-CH 2 -CH 3 or - (CH 2 ) 2 -CH 3 And X is -NH(CH 2 ) 4 -, -NH(CH 2 ) 3 -, -O-C 6 H 4 -CH 2 -, -O-CH 2 -, -O-CH(CH 3 )-,-S-CH 2 - or -NH-C 6 H 4 -CH 2 - and Y is H or -CO-C n H 2n+1 (Here, n = 1 to 8), or Y contains a second payload molecule, and Z is H or -C n H 2n+1 (Here, n = 1 to 8, or Z contains a second payload molecule and A is -O- or -NH-) The repeating unit of and / or formula (R3): 【Chemistry 64】 [In the formula, R is -H, -CH] 3 ien-CH 2 -CH 3 or - (CH 2 ) 2 -CH 3 And Z is either H or -C n H 2n+1 (Here, n = 1 to 8, or Z contains a second payload molecule, and A is -O- or -NH-) Further including repeating units, Y and / or Z are copolymers comprising a second payload molecule, A copolymer in which the first or second payload molecule is a chelating agent.

27. ​​The copolymer according to claim 26, wherein the chelating agent is a chelating agent containing a radionuclide.

28. L is -CO-C n H 2n - (where n = 1 to 10) or -CO-(PEG) n The copolymer according to claim 26 or 27, wherein L is - (where n = 1 to 14), or L is -CO-valine-citrulline-PABC (where PABC represents p-aniline-beta-carbamate) or a variant thereof, valine-lysine, valine-alanine, valine-arginine, or glutamate-valine-citrulline.

29. N,N-dimethylacrylamide, N-isobutylacrylamide, N-tert. The copolymer according to any one of claims 26 to 28, further comprising repeating units obtained by polymerization of butyl-acrylamide, N-hydroxyethyl-acrylamide, N-(2-hydroxypropyl)-acrylamide, N-(3-hydroxypropyl)-acrylamide, N-(3-hydroxypropyl)-methacrylamide, N-(2-hydroxypropyl)-methacrylamide, N-(3-aminopropyl)-acrylamide hydrochloride, or N-(3-aminopropyl)-methacrylamide hydrochloride, or repeating units obtained by polymerization of methacrylic acid, 2-hydroxyethyl-acrylate, 2-hydroxypropyl-acrylate, 3-hydroxypropyl-acrylate, 2-hydroxy-1-methylethyl-acrylate, 2-aminoethyl acrylate hydrochloride, 3-hydroxypropyl-methacrylate, 2-hydroxy-1-methylethyl-methacrylate, 2-hydroxyethyl-methacrylate, 2-hydroxypropyl-methacrylate, or 2-aminoethyl methacrylate hydrochloride.

30. The copolymer according to any one of claims 26 to 29, wherein the repeating units of formulas (R2) and (R3) are absent, and the average number of repeating units of formula (R1) per molecule of the copolymer is 2 to 12.

31. The copolymer according to any one of claims 26 to 29, wherein the repeating units of formula (R2) or (R3) are not functionalized, and the average number of repeating units of formula (R1), (R2), or (R3) per molecule of the copolymer is 10 to 50.

32. The copolymer according to any one of claims 26 to 29, wherein the repeating units of formula (R2) or (R3) are functionalized with a second payload molecule, and the average number of repeating units of formula (R1), (R2), or (R3) per molecule of the copolymer is 4 to 20.

33. Z is H (if A is -O-) or -C n H 2n+1 The copolymer according to any one of claims 1 to 32, wherein n = 1 to 8.

34. A pharmaceutical composition comprising an effective amount of the copolymer according to any one of claims 1 to 33, and a pharmaceutically acceptable carrier or excipient.

35. The pharmaceutical composition according to claim 34 for treating a target cancer or another disease or condition.

36. A composition comprising the copolymer according to any one of claims 1 to 33, or a pharmaceutical composition according to claim 34, for use in therapeutic purposes.

37. The composition for use according to claim 36, wherein the therapy is the treatment of cancer.

38. The composition for use according to claim 36 or 37, wherein the copolymer comprises a first payload molecule and a second payload molecule, the first payload molecule and the second payload molecule being two activators administered together as a combination therapy.

39. A composition comprising the copolymer according to any one of claims 1 to 33 for use in diagnostic applications.

40. The composition according to claim 39, wherein the diagnostic use is to monitor cancer.

41. The composition according to claim 40, wherein monitoring of the cancer is performed simultaneously with cancer therapy.

42. The composition according to any one of claims 39 to 41, wherein the copolymer contains a radionuclide useful for diagnosis.

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