Ph-responsive block copolymer compositions, micelles, and methods of use
Block copolymers with pH-responsive micelles address the challenges of slow drug release and limited specificity by leveraging pH differences for targeted drug delivery, achieving rapid and specific drug release at tumor sites.
Patent Information
- Application Number
- JP2025163036
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-11-04
- Filing Date
- 2025-09-30
- Publication Date
- 2026-02-10
AI Technical Summary
Existing pH-responsive micelle compositions for therapeutic applications face challenges in achieving increased drug payload, extended blood circulation time, rapid drug delivery at target sites, and responsiveness within a specific, narrow pH range, particularly for tumor or organelle targeting, with issues like slow drug release and limited specificity.
Development of block copolymers with specific structures that form micelles capable of encapsulating therapeutic agents, utilizing pH differences between cancerous and normal tissues for targeted drug delivery, enhancing responsiveness and specificity.
The block copolymers enable rapid drug release at target sites with increased payload and extended circulation time, providing highly sensitive and specific responses for tumor treatment.
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Figure 2026021309000001_ABST
Abstract
Description
[Technical Field]
[0001] This application claims the benefit of U.S. Provisional Application No. 62 / 930,530, filed November 4, 2019, which is incorporated herein by reference in its entirety. [Background technology]
[0002] Multifunctional nanoparticles have attracted attention in a wide range of applications, including biosensors, diagnostic nanoprobes, and targeted drug delivery systems. These efforts have been driven largely by the need to improve biological specificity with reduced side effects in diagnostics and therapeutics through precise spatiotemporal control of drug delivery in various physiological systems. To achieve this goal, efforts have been directed toward developing stimuli-responsive nanoplatforms. Environmental stimuli that have been utilized to target delivery efficiency include pH, temperature, enzyme expression, redox reactions, and light triggering. Among these activation signals, pH triggering is one of the most extensively studied stimuli based on two types of pH differences: (a) pathological tissue (e.g., tumor) versus normal tissue, and (b) acidic intracellular compartments.
[0003] For example, due to the unusual acidity of the tumor extracellular microenvironment (pH ∼6.5), some pH-responsive nanosystems have been reported to increase the sensitivity of tumor imaging or the efficacy of treatment. However, for polymeric micelle compositions that release drugs by hydrolysis in an acidic environment, drug release can take several days, during which time the body may excrete or degrade the micelles.
[0004] To target acidic endo- / lysosomal compartments, nanovectors with pH-cleavable linkers have been investigated to improve payload bioavailability. Furthermore, several smart nanovectors with pH-triggered charge conversion have been designed to increase drug efficacy. The endocytic system is composed of a series of compartments with distinct roles in the sorting, processing, and degradation of internalized cargo. Selective targeting of different endocytic compartments with pH-sensitive nanoparticles is particularly challenging due to the short nanoparticle residence time (<min) and the small pH difference in these compartments (e.g., <1 pH unit between early endosomes and lysosomes).
[0005] Immunotherapy has become a powerful strategy for cancer treatment. Although immune modulators such as interleukin-2 (IL-2) can induce antitumor immune responses, their clinical application is limited by unfavorable pharmacokinetic properties that can elicit severe dose-limiting toxicities (e.g., broad-spectrum toxicities / side effects, e.g., vascular leak syndrome). Summary of the Invention [Problem to be solved by the invention]
[0006] What is needed are improved pH-responsive micelle compositions for therapeutic applications, particularly compositions that have increased drug payload, extended blood circulation time, rapid delivery of drugs at target sites, and responsiveness within a specific, narrow pH range (e.g., for tumor or specific organelle targeting). [Means for solving the problem]
[0007] (Summary of the Invention) The block copolymers described herein are useful therapeutic agents for the treatment of primary and metastatic tumor tissue (including lymph nodes). The block copolymer and micelle compositions presented herein take advantage of this ubiquitous pH difference between cancerous and normal tissues, providing highly sensitive and specific responses after cellular uptake, thus enabling the placement of therapeutic payloads in tumor tissue.
[0008] In one aspect, provided herein is a block copolymer having the structure of Formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0009] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 are independently hydrogen, acyl, or ICG; L 1 is a bond or -C(O)-, or an optionally substituted C1-C 10 an alkylene linker or a PEG linker; Y is a therapeutic agent. In some embodiments, each R 1 and R 2is independently an optionally substituted C1-C6 alkyl. In some embodiments, each R 1 and R 2 is independently -CH2CH3, -CH2CH2CH3, or -CH2CH2CH2CH3. In some embodiments, each R 1 and R 2 is independently -CH2CH2CH2CH3. In some embodiments, R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. 1 and R 2 are taken together to form -CH2(CH2)2CH2-, -CH2(CH2)3CH2-, or -CH2(CH2)4CH2-. In some embodiments, x1 is an integer of 50 to 200, 60 to 160, or 90 to 140. In some embodiments, x1 is an integer of 90 to 140. In some embodiments, y1 is 0. In some embodiments, z1 is an integer of 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3. In some embodiments, z1 is 0. In some embodiments, n1 is an integer of 60 to 150 or 100 to 140. In some embodiments, n1 is 100 to 140. In some embodiments, X 1 is a halogen. 1 is bromide. 3 is independently acyl or ICG. 1 is optionally substituted C1-C 10an alkylene linker, optionally substituted with a maleimide residue. In some embodiments, the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the cytokine is IL-2, IL-12, or IL-15 or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T cell engager. In some embodiments, the small molecule is maytansine or a derivative thereof.
[0010] In some embodiments provided herein, the block copolymer of Formula (I) has the structure of Formula (Ia), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0011] [ka] (In the formula: m1 is an integer of 10 to 200; A is a bond or -C(O)-, optionally substituted with a maleimide residue. In another aspect, provided herein is a block copolymer having the structure of Formula (Ib), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0012] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2 are each independently a substituted or unsubstituted C1 to C6 alkyl, C3 to C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 are independently hydrogen, acyl, or ICG; L 3 is a bond, C1~C 10 an alkylene linker or a PEG linker; B is maleimide,
[0013] [ka] ). In another aspect, provided herein is a block copolymer having the structure of formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0014] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R 6 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2is —NH—, —O—, or a substituted triazole; L 2 is a bond, or -C(O)-, or an optionally substituted C1-C 10 an alkylene linker or a PEG linker; Y is a therapeutic agent. In some embodiments, each R 5 and R 6 is independently an optionally substituted C1-C6 alkyl. In some embodiments, each R 5 and R 6 is independently -CH2CH3, -CH2CH2CH3, or -CH2CH2CH2CH3. In some embodiments, each R 5 and R 6 is -CH2CH2CH2CH3. In some embodiments, R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. 5 and R 6 are taken together to form -CH2(CH2)2CH2-, -CH2(CH2)3CH2-, or -CH2(CH2)4CH2-. In some embodiments, x2 is an integer of 50 to 200, 60 to 160, or 90 to 140. In some embodiments, x2 is an integer of 90 to 140. In some embodiments, y2 is an integer of 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3. In some embodiments, y2 is 0. In some embodiments, n2 is an integer of 60 to 150 or 100 to 140. In some embodiments, n2 is 100 to 140. In some embodiments, X 2 is a halogen. In some embodiments, X 2 is -Br. In some embodiments, Z 1 is —O— or —NH—. In some embodiments, Z 2 is —O— or —NH—. In some embodiments, Z 2 is an optionally substituted triazole residue. In some embodiments, L2 is optionally substituted C1-C 10 An alkylene linker optionally substituted with a maleimide residue. In some embodiments, L 2 is an optionally substituted PEG linker, optionally substituted with a maleimide residue. In some embodiments, the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the cytokine is IL-2, IL-12, or IL-15 or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T cell engager. In some embodiments, the small molecule is maytansine or a derivative thereof.
[0015] In some embodiments, the block copolymer of Formula (II) has the structure of Formula (II-a), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0016] [ka] (In the formula: m2 is 2 to 200; A is a bond or -C(O)- optionally substituted with a maleimide residue. In another aspect, provided herein is a block copolymer having the structure of Formula (II-b), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0017] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R6 are each independently a substituted or unsubstituted C1 to C6 alkyl, C3 to C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole; L 4 is a bond, C1~C 10 an alkylene linker or a PEG linker; B is maleimide,
[0018] [ka] ). In another aspect, provided herein is a micelle comprising: (i) A block copolymer of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0019] [ka] (In the formula: n3 is an integer from 10 to 200; x3 is an integer between 40 and 300; y3 is an integer from 0 to 6; z3 is an integer from 0 to 10; X 3 is halogen, —OH or —C(O)OH; Each R 10 are independently hydrogen or ICG; R 8 and R 9are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 8 and R 9 together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; and (ii) Therapeutic agents encapsulated by block copolymers.
[0020] In another aspect, provided herein is a micelle comprising: (i) A block copolymer of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0021] [ka] (In the formula: n3 is an integer from 10 to 200; x3 is an integer between 40 and 300; y3 is an integer from 0 to 6; z3 is an integer from 0 to 10; X 3 is halogen, —OH or —C(O)OH; Each R 10 are independently hydrogen or ICG; R 8 and R 9 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 8 and R 9 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. (ii) A block copolymer of formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0022] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 are independently hydrogen, acyl, or ICG; L 1 is a bond or -C(O)-, or an optionally substituted C1-C 10 an alkylene linker or a PEG linker; Y is a therapeutic agent; and / or (iii) A block copolymer of formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0023] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R 6 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole residue; L 2 is a bond or -C(O)-, or an optionally substituted C1-C 10 an alkylene linker or a PEG linker, optionally substituted with a maleimide residue; Y is a therapeutic agent. In some embodiments, each R 8 and R 9 is independently an optionally substituted C1-C6 alkyl. In some embodiments, each R 8 and R 9 is independently -CH2CH3, -CH2CH2CH3, or -CH2CH2CH2CH3. In some embodiments, each R 8 and R 9 is -CH2CH2CH2CH3. In some embodiments, R 8 and R 9 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. 8 and R 9taken together are -CH2(CH2)2CH2-, -CH2(CH2)3CH2-, or -CH2(CH2)4CH2-. In some embodiments, x3 is an integer of 50 to 200, 60 to 160, or 90 to 140. In some embodiments, x3 is an integer of 90 to 140. In some embodiments, y3 is an integer of 1 to 6, 1 to 5, 1 to 4, or 1 to 3. In some embodiments, y3 is 0. In some embodiments, z3 is an integer of 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3. In some embodiments, z3 is 0. In some embodiments, n3 is an integer of 60 to 150 or 100 to 140. In some embodiments, the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the cytokine or fragment thereof is IL-12 or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T cell engager. In some embodiments, the small molecule is maytansine or a derivative thereof.
[0024] In some embodiments present herein, the micelles comprise: (i) a block copolymer of formula (III); and (ii) a block copolymer of formula (I). In some embodiments present herein, the micelles comprise: (i) a block copolymer of formula (III); and (ii) a block copolymer of formula (II). In some embodiments present herein, the micelles comprise: (i) a block copolymer of formula (III); (ii) a block copolymer of formula (I); and (iii) a block copolymer of formula (II). In some embodiments present herein, the micelles comprise about 1:99 to about 99:1 of (i) the block copolymer of formula (III) to (ii) the block copolymer of formula (I) or (II).
[0025] In another aspect, provided herein are pH-responsive compositions comprising a block copolymer or a micelle composition described herein, wherein the composition has a pH transition point and, optionally, an emission spectrum. In some embodiments, the pH transition point is between 4 and 8, 6 and 7.5, or 4.5 and 5.5. In some embodiments, the pH-responsive composition has a pH response of less than 0.25 or 0.15 pH units. In some embodiments, the emission spectrum is between 700 and 900 nm.
[0026] Another aspect is a method for treating cancer in an individual in need thereof, comprising administering to the individual an effective amount of a pH-sensitive micelle composition comprising a chemotherapeutic agent as described herein. In some embodiments, the cancer comprises a solid tumor. In some embodiments, the tumor is a cancer of the breast, cervix, ovary, pancreas, prostate, peritoneal metastasis, colorectum, bladder, kidney, esophagus, head and neck (HNSSC), lung, brain, or skin (including melanoma and sarcoma).
[0027] Other objects, features, and advantages of the block copolymers, micelle compositions, and methods described herein will become apparent from the following detailed description. It should be understood, however, that the detailed description and specific examples, while indicating particular embodiments, are given by way of illustration only, since various changes and modifications within the spirit and scope of the disclosure will become apparent to those skilled in the art from this detailed description.
[0028] References All publications, patents, and patent applications mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication, patent, or patent application was specifically and individually indicated to be incorporated by reference.
[0029] Various aspects of the present disclosure are described in detail in the appended claims. A better understanding of the features and advantages of the present disclosure can be obtained from the following detailed description, which illustrates exemplary embodiments in which the principles of the present disclosure are used, and reference to the appended drawings below.
Brief Description of the Drawings
[0030] [Figure 1] It is a diagram showing a schematic of a super pH-sensitive nanoparticle platform that enables encapsulation and pH-dependent release of a payload (e.g., IL-2). When pH > pHt, the block copolymer exists as nanoparticles; once pH < pHt, the nanoparticles decompose into unimers, thereby releasing the encapsulated payload. [Figure 2] It is a diagram showing pH-dependent IL-2 release characteristics. (Left): Quantitative measurement of acidic buffer-triggered IL-2 payload release. (Right): Size change of nanoparticles under acidic buffer conditions tested by DLS. [Figure 3] It is a diagram showing that PEG113-b-PDBA90-160 micelles can fill IL-2. Dot blot of IL-2 following SEC confirmed the filling of IL-2. [Figure 4-1] It is a diagram showing encapsulation of a bispecific antibody using pH-sensitive micelles. 4A is a diagram showing the SEC chromatograph after bispecific antibody encapsulation and the size distribution by DLS of micelle-encapsulated bispecific antibody (three replicates). The smallest bispecific antibody exists as an unencapsulated free format. [Figure 4-2] It is a diagram showing encapsulation of a bispecific antibody using pH-sensitive micelles. 4B shows the quantitative analysis of bispecific antibody filling and the size of the formulation by Western blot and DLS. [Figure 5]Figure 1 shows the pH-dependent binding of nanoparticle-encapsulated antibodies to GSU cells. Nanoparticle-encapsulated bispecific antibodies exhibited low binding affinity to cells bearing the antibody's target at neutral pH. Once acidified, the bispecific antibodies were released from the micelles. The released bispecific antibodies exhibited equal affinity for their cellular targets compared to the original format. [Figure 6] Biodistribution profiles of a pH-sensitive nanoparticle non-covalently encapsulated Fab formulation (compound 1) demonstrate significantly increased tumor accumulation and altered pharmacokinetics compared to free Fab in mice bearing orthotopic head and neck tumors. Representative in vivo (A, 1 h, 3 h, 24 h) and ex vivo (B, 24 h) major organ biodistribution profiles are shown. Quantification of in vivo tumor (C) and ex vivo organ (D) fluorescence was performed. Statistical analysis was performed by Student's t-test (**p<0.01), N=3. The Fab was labeled with a near-infrared fluorophore for imaging purposes. [Figure 7] FIG. 1 shows a scheme for the preparation of covalent protein-polymer formulations in hydrophobic / amine blocks. [Figure 8] Biodistribution profiles of pH-sensitive nanoparticles and non-covalently bound IL-2 formulations (compound 2) demonstrate significant tumor accumulation and altered pharmacokinetics compared to free IL-2 in mice bearing orthotopic head and neck tumors. Representative in vivo (A, 1 h, 3 h, 24 h) and ex vivo (B, 24 h) major organ biodistribution profiles are shown. Quantification of in vivo tumor (C) and ex vivo organ (D) fluorescence was performed. Statistical analysis was performed by Student's t-test (**p<0.01), N=3. IL-2 was labeled with a near-infrared fluorophore for imaging purposes. [Figure 9]Biodistribution profiles of pH-sensitive nanoparticles (compound 3) covalently conjugated to a Fab formulation demonstrate significant tumor accumulation and altered pharmacokinetics compared to free Fab antibody in mice bearing orthotopic head and neck tumors. Representative in vivo (A, 1 h, 3 h, 24 h) and ex vivo (B, 24 h) major organ biodistribution profiles are shown. Quantification of in vivo tumor (C) and ex vivo organ (D) fluorescence was performed. Statistical analysis was performed by Student's t-test (**p<0.01), N=3. The Fab was labeled with a near-infrared fluorophore for imaging purposes. [Figure 10] FIG. 1 shows a representative scheme for conjugation of rhIL-2 to PEG113-PDBA90-160-AMA-OPSS polymer. [Figure 11] Figure 1 shows purification and characterization of block copolymer-IL-2 covalent conjugates. (Top): FPLC chromatogram of PEG113-b-(PDBA90-160-r-OPSS4-IL-2 covalent conjugate purification. (Bottom): Western blot of FPLC fractions confirms conjugation of IL-2 by alteration of electrophoretic mobility. [Figure 12-1] Figure 1 shows the in vitro bioactivity of pH-sensitive polymer-IL-2 covalent formulations. (A) shows PEG-PDBA-OPSS-IL-2 conjugated via SAT(PEG4) chemistry. (B) shows PEG-PDBA-OPSS-IL-2 conjugated via Traut's reagent chemistry. (C) shows PEG-PDBA-Mal-IL-2 conjugated via SAT(PEG4) chemistry. (D) shows PEG-PDBA-Mal-IL-2 conjugated via Traut's reagent chemistry. The parent compounds used were PEG113-b--(PDBA120-r-OPSS4) or PEG113-b(PDBA120-r-Mal1). [Figure 12-2]Figure 1 shows the in vitro bioactivity of pH-sensitive polymer-IL-2 covalent formulations. (A) shows PEG-PDBA-OPSS-IL-2 conjugated via SAT(PEG4) chemistry. (B) shows PEG-PDBA-OPSS-IL-2 conjugated via Traut's reagent chemistry. (C) shows PEG-PDBA-Mal-IL-2 conjugated via SAT(PEG4) chemistry. (D) shows PEG-PDBA-Mal-IL-2 conjugated via Traut's reagent chemistry. The parent compounds used were PEG113-b--(PDBA120-r-OPSS4) or PEG113-b(PDBA120-r-Mal1). [Figure 13] FIG. 1 shows a representative scheme for the preparation of PEG-terminated covalent protein-block copolymer conjugates. [Figure 14] FIG. 1 shows a representative synthetic scheme for a block copolymer-small molecule (mertansine) conjugate. [Figure 15A] Figure 15 shows the characterization of the block copolymer-small molecule (mertansine) conjugate (compound 4). Figure 15A shows the H NMR spectrum for the starting material of the PDBA-AMA polymer, (PEG113-PDBA90-160-AMA4). [Figure 15B] Figure 15B shows the characterization of the block copolymer-small molecule (mertansine) conjugate (compound 4). Figure 15B shows the H NMR spectrum of the PDBA-AMA-SMCC-DM1 conjugate. The integration of the o-methoxy peak at 3.3 ppm was used to determine drug loading with a single proton integrated peak from the DM1 drug, and a loading of approximately 3.5 DM1 molecules per block copolymer chain was calculated. [Figure 15C] Figure 15 shows the characterization of block copolymer-small molecule (mertansine) conjugate (compound 4). Figure 15C shows HPLC analysis of PEG-PDBA-AMA-SMCC-DM1 modified polymer. [Figure 16] FIG. 1 shows a representative synthetic scheme for the synthesis of PEG-PDBA-OPSS-DM1. [Figure 17] Figure 17 shows the characterization of PEG-PDBA-OPSS-DM1 (compound 5). Figure 17A shows the H NMR spectrum for the PEG-PDBA-OPSS starting material using DM1 conjugate. Figure 17B shows the H NMR spectrum of the PEG-PDBA-OPSS polymer material after DM1 conjugation. The integral indicates 80% loading of the polymer with the drug. [Figure 17C] 17A-17C show the characterization of PEG-PDBA-OPSS-DM1 (Compound 5). FIG. 17C shows the HPLC analysis of Compound 5 modified polymer. [Figure 18] FIG. 1 shows a representative synthetic scheme for PEG-PDBA-Mal-DM1. DETAILED DESCRIPTION OF THE INVENTION
[0031] Detailed Description of the Disclosure Provided herein are block copolymers conjugated to a therapeutic agent. In other embodiments, provided herein are micellar compositions comprising a therapeutic agent.
[0032] I. Block Copolymers In one aspect, provided herein is a block copolymer having the structure of Formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0033] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 are independently hydrogen, acyl, or ICG; L 1 is a bond or -C(O)-, or an optionally substituted C1-C 10 an alkylene linker or a PEG linker, each of which is optionally substituted with a maleimide residue; Y is a therapeutic agent. In some embodiments, R 1 and R 2 are the same group. In some embodiments, R 1 and R 2 are different groups.
[0034] In some embodiments, each R 1 and R 2 are independently optionally substituted C1-C6 alkyl. In some embodiments, alkyl is a straight chain or branched alkyl. In some embodiments, alkyl is a straight chain alkyl. In some embodiments, each R 1 and R 2 is independently -CH2CH3, -CH2CH2CH3, or -CH2CH2CH2CH3. In some embodiments, each R 1 and R 2 is -CH2CH2CH2CH3.
[0035] In some embodiments, each R 1 and R 2 are each independently an optionally substituted C to C 10 cycloalkyl or aryl. In some embodiments, each R 1 and R 2is independently an optionally substituted cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, or cycloheptyl. 1 and R 2 is independently optionally substituted phenyl.
[0036] In some embodiments, R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. 1 and R 2 taken together is —CH(CH)CH—, —CH(CH)CH—, or —CH(CH)CH—. In some embodiments, R 1 and R 2 together form -CH2(CH2)4CH2-.
[0037] In some embodiments, each R 3 is independently acyl or ICG. 3 is independently acyl. 3 is independently ICG. 3 are independently hydrogen.
[0038] In some embodiments, L 1 is an optionally substituted bifunctional linker capable of attaching to the block copolymer and to a therapeutic agent. In some embodiments, L 1 is optionally substituted C1-C 10 An alkylene linker optionally substituted with a maleimide residue. In some embodiments, L 1 is an optionally substituted PEG linker, optionally substituted with a maleimide residue.
[0039] In some embodiments, L 1 teeth,
[0040] [ka] (In the formula, m1 is an integer of 2 to 20 or any integer therein.) is.
[0041] In some embodiments, the block copolymer of Formula (I) has the structure of Formula (Ia): or a pharmaceutically acceptable salt or solvate thereof:
[0042] [ka] (In the formula: m1 is an integer from 2 to 200; A is a bond or -C(O)- optionally substituted with a maleimide residue. In some embodiments, m1 is an integer of 2 to 20, or any integer therein. In some embodiments, m1 is an integer of 2 to 5, 6 to 9, 10 to 14, or 15 to 20, or any integer therein.
[0043] In some embodiments, A is a bond. In some embodiments, A is -C(O)- optionally substituted with a maleimide residue.
[0044] In some embodiments, the block copolymer of Formula (I) has the structure of Formula (Ic), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0045] [ka]
[0046] In some embodiments of the block copolymers of Formula (I), (Ia), and (Ic), the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the cytokine is IL-2, IL-12, or IL-15, or a fragment thereof. In some embodiments, the cytokine is IL-2 or a fragment thereof. In some embodiments, the cytokine is IL-12 or a fragment thereof. In some embodiments, the cytokine is IL-15 or a fragment thereof. In some embodiments, the cytokine is a Fab or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T cell engager. In some embodiments, the small molecule is maytansine or a derivative thereof.
[0047] In another aspect, provided herein is a block copolymer having the structure of formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0048] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R 6 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole; L 2 is a bond or —C(O)—, or an optionally substituted C1-C 10 an alkylene linker or a PEG linker; Y is a therapeutic agent. In some embodiments, R 5 and R 6 are the same group. In some embodiments, R 5 and R 6 are different groups.
[0049] In some embodiments, each R 5 and R 6 are independently optionally substituted C1-C6 alkyl. In some embodiments, alkyl is a straight chain or branched alkyl. In some embodiments, alkyl is a straight chain alkyl. In some embodiments, each R 5 and R 6 is independently -CH2CH3, -CH2CH2CH3, or -CH2CH2CH2CH3. In some embodiments, each R 5 and R 6 is -CH2CH2CH2CH3.
[0050] In some embodiments, each R 5 and R 6 are independently optionally substituted C-C 10 cycloalkyl or aryl. In some embodiments, each R 5 and R 6 is independently an optionally substituted cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, or cycloheptyl. 5 and R 6 is independently optionally substituted phenyl.
[0051] In some embodiments, R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. 5 and R 6 together are —CH2(CH2)2CH2—, —CH2(CH2)3CH2—, or —CH2(CH2)4CH2—.
[0052] In some embodiments, each R 7 is independently acyl or ICG. 7 is independently acyl. 7 is independently ICG. 7 are independently hydrogen.
[0053] In some embodiments, Z 1 is —O—. In some embodiments, Z 1 is -NH-.
[0054] In some embodiments, Z 2 is —NH— or —O—. 2 is —O—. In some embodiments, Z 2 is -NH-. In some embodiments, Z 2 is a substituted triazole.
[0055] In some embodiments, L 2 is an optionally substituted bifunctional linker capable of attaching to the block copolymer and to a therapeutic agent. In some embodiments, L 2 is optionally substituted C1-C 10 An alkylene linker optionally substituted with a maleimide residue. In some embodiments, L 2 is an optionally substituted PEG linker, optionally substituted with a maleimide residue. In some embodiments, L 2teeth,
[0056] [ka] (In the formula, m2 is 2 to 200.) is.
[0057] In some embodiments, the block copolymer of Formula (II) has the structure of Formula (II-a), or a pharmaceutically acceptable salt or solvate thereof:
[0058] [ka] (In the formula: m2 is 2 to 200; A is a bond or -C(O)- optionally substituted with a maleimide residue. In some embodiments, m2 is an integer from 2 to 20. In some embodiments, m2 is an integer from 2 to 5, 6 to 9, 10 to 14, or 15 to 20, or any integer therein.
[0059] In some embodiments, A is a bond. In some embodiments, A is -C(O)- optionally substituted with a maleimide residue.
[0060] In some embodiments, the block copolymer of Formula (II) has the structure of Formula (II-c), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0061] [ka]
[0062] In some embodiments, the block copolymer of Formula (II) has the structure of Formula (II-a2), or a pharmaceutically acceptable salt or solvate thereof:
[0063] [ka] (In the formula: Z 1 is -O-. In some embodiments of the block copolymer of Formula (II), (II-a), (II-a2), or (II-c), the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the cytokine is IL-2, IL-12, or IL-15, or a fragment thereof. In some embodiments, the cytokine is IL-2 or a fragment thereof. In some embodiments, the cytokine is IL-2 or a fragment thereof. In some embodiments, the cytokine is IL-15 or a fragment thereof. In some embodiments, the cytokine is a Fab or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T cell engager. In some embodiments, the small molecule is maytansine or a derivative thereof.
[0064] In another embodiment, provided herein is a block copolymer having the structure of Formula (Ib), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0065] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2 are each independently a substituted or unsubstituted C1 to C6 alkyl, C3 to C 10 is cycloalkyl or aryl; or R 1 and R 2taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 are independently hydrogen, acyl, or ICG; L 3 is a bond, C1~C 10 an alkylene linker or a PEG linker; B is maleimide,
[0066] [ka] ). In some embodiments of the block copolymer of Formula (Ib), L 3 is C1~C 10 In some embodiments, L is an alkylene linker or a PEG linker. 3 is a PEG linker containing 2 to 200 PEG units, or any integer therein. 3 is a bond.
[0067] In some embodiments of the block copolymer of Formula (Ib), B is maleimide. In some embodiments, B is N-hydroxysuccinimide or carbonyldiimidazole.
[0068] In some embodiments, the block copolymer having the structure of Formula (Ib) is:
[0069] [ka] TIFF2026021309000026.tif126166 (wherein m1 is 2 to 200.) or a pharmaceutically acceptable salt, solvate or hydrate thereof.
[0070] In another embodiment, provided herein is a block copolymer having the structure of Formula (II-b), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0071] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R 6 are each independently a substituted or unsubstituted C1 to C6 alkyl, C3 to C 10 is cycloalkyl or aryl; or R 5 and R 6 together with the corresponding nitrogen to which they are attached form a substituted or unsubstituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole; L 4 is a bond, C1~C 10 an alkylene linker or a PEG linker; B is maleimide,
[0072] [ka] ). In some embodiments, the block copolymer of Formula (II-b) has the structure of Formula (II-b2), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0073] [ka] (In the formula: Z 1is -O-; the other variables are defined in the embodiment of formula (II-b). In some embodiments of the block copolymer of Formula (II-b) or (II-b2), L 4 is C1~C 10 In some embodiments, L is an alkylene linker or a PEG linker. 4 is a PEG linker comprising 2 to 200 PEG units. 4 is a bond.
[0074] In some embodiments of the block copolymer of Formula (II-b) or (II-b2), B is maleimide. In some embodiments, B is N-hydroxysuccinimide or carbonyldiimidazole.
[0075] In some embodiments, the block copolymer is:
[0076] [ka] TIFF2026021309000031.tif76166 or a pharmaceutically acceptable salt, solvate or hydrate thereof.
[0077] In some embodiments, the block copolymer is:
[0078] [ka] TIFF2026021309000033.tif43166 (wherein m1 is 2 to 200.) or a pharmaceutically acceptable salt, solvate or hydrate thereof.
[0079] In some embodiments, the block copolymer is a diblock copolymer. In some embodiments, the block copolymer comprises a hydrophilic polymer segment and a hydrophobic polymer segment. In some embodiments, the hydrophilic polymer segment comprises poly(ethylene oxide) (PEO). In some embodiments, the hydrophilic polymer segment is about 2 kDa to about 10 kDa in size. In some embodiments, the hydrophilic polymer segment is about 2 kDa to about 5 kDa in size. In some embodiments, the hydrophilic polymer segment is about 3 kDa to about 8 kDa in size. In some embodiments, the hydrophilic polymer segment is about 4 kDa to about 6 kDa in size. In some embodiments, the hydrophilic polymer segment is about 5 kDa in size.
[0080] In some embodiments, each n1, n2, and n3 is independently an integer from 1 to 5, 5 to 10, 10 to 15, 15 to 20, 20 to 25, 25 to 30, 30 to 35, 35 to 40, 40 to 45, 45 to 50, 50 to 55, 55 to 60, 60 to 65, 65 to 70, 70 to 75, 75 to 80, 80 to 85, 85 to 90, 90 to 95, 95 to 99, 100 to 109, 110 to 119, 120 to 129, 130 to 139, 140 to 149, 150 to 159, 160 to 169, 170 to 179, 180 to 189, 190 to 199, or any range derivable therein. In some embodiments, each n1, n2, and n3 is independently an integer from 60 to 150, from 100 to 140, or from 110 to 120. In some embodiments, each n1, n2, and n3 is independently an integer from 100 to 140.
[0081] In some embodiments, the block copolymer comprises a hydrophobic polymer segment. In some embodiments, the hydrophobic polymer segment comprises a tertiary amine. In some embodiments, the hydrophobic polymer segment is selected from the following:
[0082] [ka] (wherein x is a total of about 40 to 300).
[0083] In some embodiments, the hydrophobic segment comprises dibutylamine.
[0084] [ka] Includes.
[0085] In some embodiments, each x1, x2, and x3 is independently an integer from 1 to 5, from 5 to 10, from 10 to 15, from 15 to 20, from 20 to 25, from 25 to 30, from 30 to 35, from 35 to 40, from 40 to 45, from 45 to 50, from 50 to 55, from 55 to 60, from 60 to 65, from 65 to 70, from 70 to 75, from 75 to 80, from 80 to 85, from 85 to 90, from 90 to 95, from 95 to 99, from 100 to 109, from 110 to 119, from 120 to 129, from 130 to 139, from 140 to 149, from 150 to 159, from 160 to 169, from 170 to 179, from 180 to 189, from 190 to 199, or any range derivable therein. In some embodiments, each x1, x2, and x3 is independently an integer from 50 to 200, from 60 to 160, or from 90 to 140. In some embodiments, each x1, x2, and x3 is independently an integer from 90 to 140.
[0086] In some embodiments, each y1, y2, and y3 is independently an integer from 1 to 6, 1 to 5, 1 to 4, or 1 to 3, or any range derivable therein. In some embodiments, each y1, y2, and y3 is independently 1, 2, 3, 4, 5, or 6. In some embodiments, each Y1, y2, and y3 is independently 0.
[0087] In some embodiments, each z1 and z2 is independently an integer from 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3, or any range derivable therein. In some embodiments, each z1 and z2 is independently 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10. In some embodiments, each z1 and z2 is independently 0.
[0088] The term "r" indicates the connection between different block copolymer units / segments (e.g., represented by x1, y1, and z1). In some embodiments, each r is independently a bond connecting the carbon atoms of the units / segments, or an alkyl group -(CH2) where n is 1 to 10. n In some embodiments, the copolymer block segments / units (e.g., represented by x1, y1, and z1) can occur in any order, sequence, or configuration. In some embodiments, the copolymer block units occur sequentially as set forth in formulas (I), (Ia), (Ib), (Ic), (II), (II-a), (II-a2), (II-b), (II-b2), (II-c), (III-c), and (III).
[0089] In some embodiments, each m1 and m2 is independently an integer from 2 to 200. In some embodiments, each m1 and m2 is independently an integer from 2 to 20.
[0090] In some embodiments, each X 1 , X 2 and X 3 is a terminal group. In some embodiments, the end-capping group is the product of an atom transfer radical polymerization (ATRP) reaction. For example, the end-capping group can be a halogen, such as -Br, when atom transfer radical polymerization (ATRP) is used. In some embodiments, each X 1 , X 2 and X 3 is independently Br. In some embodiments, each X 1 , X 2 and X 3 is independently —OH. 1 , X 2 and X 3 is independently an acid. 1 , X 2 and X 3 is independently —C(O)OH.1 , X 2 and X 3 is independently H. The end groups may optionally be further modified following polymerization with an appropriate moiety.
[0091] In some embodiments, the linker L 1 and L 2 is a bifunctional linker having groups reactive with the block copolymer and the therapeutic agent. In some embodiments, the linker is a component used in maleimide-PEG-NHS, NHS-carbonate (N-hydroxysuccinimide carbonate), SPDB (N-succinimidyl-4-(2-pyridyldithio)butanoate), or CDI (carbonyldiimidazole).
[0092] In some embodiments, the linker is conjugated to a therapeutic agent. In some embodiments, the linker is covalently conjugated to a therapeutic agent. Methods known in the art can be used to conjugate a therapeutic agent, for example, to a hydrophobic polymer segment.
[0093] therapeutic agent In some embodiments, the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons.
[0094] In some embodiments, the therapeutic agent is a cytokine or a fragment thereof. Cytokines are a broad and loose category of small proteins important in cell signaling. Cytokines are peptides that cannot cross the lipid bilayer of cells and enter the cytoplasm. Cytokines have been shown to participate in autocrine, paracrine, and endocrine signaling as immunomodulators. Interleukin-2 (IL-2) is a type of cytokine signaling molecule in the immune system, an interleukin. It is a 15.5-16 kDa protein that regulates the activity of immune-responsible white blood cells. Interleukin-15 (IL-15) is a cytokine that shares structural similarities with interleukin-2. Like IL-2, IL-15 binds to and signals through a complex composed of the IL-2 / IL-15 receptor beta chain and common gamma chain. IL-15 is secreted by mononuclear phagocytes following viral infection. Interleukin-21 is a cytokine that has potent regulatory effects on cells of the immune system, including natural killer cells and cytotoxic T cells, which destroy virally infected or cancerous cells. Interleukin-12 (IL-12) is an interleukin naturally produced by dendritic cells, macrophages, neutrophils, and human B-lymphoblastoid cells (NC-37) in response to antigenic stimulation. In some embodiments, the cytokine is IL-2, IL-21, IL-12, or IL-15, or a fragment thereof. In some embodiments, the cytokine is IL-2 or IL-15, or a fragment thereof. In some embodiments, the cytokine is IL-2 or a fragment thereof. In some embodiments, the cytokine is IL-15 or a fragment thereof. In some embodiments, the therapeutic agent is a Fab or a fragment thereof.
[0095] Interferons (IFNs) are a group of signaling proteins that belong to a class of proteins known as cytokines, which are molecules used for cell-to-cell communication that trigger the immune system's protective defenses to help eradicate pathogens. In some embodiments, the cytokine is interferon alpha, interferon beta, or interferon gamma, or a fragment thereof.
[0096] Granulocyte-macrophage colony-stimulating factor, also known as colony-stimulating factor 2, is a monomeric glycoprotein secreted by macrophages, T cells, mast cells, natural killer cells, endothelial cells, and fibroblasts that functions as a cytokine. In some embodiments, the cytokine is granulocyte-macrophage colony-stimulating factor GM-CSF.
[0097] In some embodiments, the therapeutic agent is an engineered antibody fragment. In some embodiments, the engineered antibody fragment is a bispecific T cell engager. Bispecific T cell engagers (BiTEs) are a class of artificial, bispecific monoclonal antibodies being investigated for use as anti-cancer drugs. They direct the cytotoxic activity of the host's immune system, more specifically T cells, against cancer cells. In some embodiments, the therapeutic agent is a bispecific T cell engager (BiTE) or a fragment thereof.
[0098] In some embodiments, the therapeutic agent is a small molecule. In some embodiments, the therapeutic agent is a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the small molecule is maytansine, paclitaxel, doxorubicin, temozolomide, sunitinib, dacarbazine, gemcitabine, melphalan, fenretinide or a derivative thereof, or an EGFR-TKI (tyrosine kinase inhibitor). In some embodiments, the small molecule is maytansine, temozolomide, sunitinib, dacarbazine, gemcitabine, melphalan, fenretinide or a derivative thereof, or an EGFR-TKI (tyrosine kinase inhibitor). In some embodiments, the small molecule is not doxorubicin or paclitaxel. In some embodiments, the small molecule is maytansine or a derivative thereof. Maytansine or maytansine is a cytotoxic agent. It inhibits microtubule assembly by binding to tubulin at the rhizoxin binding site. It is an ansamycin-type macrolide and can be isolated from plants of the genus Maytenus. Derivatives are known as maytansinoids. Maytansine and its analogs (maytansinoids DM1 and DM4) are potent microtubule-targeting compounds that inhibit cell proliferation in mitosis. It inhibits microtubule assembly by binding to tubulin at the rhizoxin binding site. In some embodiments, the small molecule is maytansinoid DM1 (mertansine) or a derivative thereof; or maytansinoid DM4 or a derivative thereof. In some embodiments, maytansine has any of the following structures:
[0099] [ka]
[0100] In certain embodiments, the block copolymer comprises a fluorescent dye conjugated to the block copolymer via an amine. In some embodiments, the fluorescent dye is conjugated to a hydrophobic block of the block copolymer via an amine on the block copolymer. In some embodiments, the fluorescent dye is a cyanine dye or a derivative thereof. In some embodiments, the fluorescent dye is indocyanine green (ICG) or a derivative thereof. Indocyanine green (ICG) is used in medical diagnostics. In some embodiments, the structure of an ICG derivative is:
[0101] [ka]
[0102] In one aspect, the compounds described herein are in the form of pharmaceutically acceptable salts.Similarly, the active metabolites of these compounds having the same type of activity are included in the scope of the present disclosure.In addition, the compounds described herein can exist in unsolvated form as well as in solvated form with pharmaceutically acceptable solvents, such as water, ethanol, etc.The solvated form of the compounds described herein is also considered to be disclosed herein.
[0103] II. Micelles and Compositions One or more block copolymers described herein can be used to form pH-sensitive micelle compositions. In some embodiments, the composition contains a single type of micelle. In some embodiments, two or more different types of micelle can be combined to form a mixed micelle composition. In some embodiments, the micelle contains a block copolymer covalently conjugated to a therapeutic agent. In some embodiments, the micelle contains one or more block copolymers that non-covalently encapsulate a therapeutic agent.
[0104] In some embodiments, the block copolymer of Formula (I), (Ia), (Ib), or (Ic), or a pharmaceutically acceptable salt, solvate, or hydrate thereof, is in the form of a micelle. In some embodiments, the block copolymer of Formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof, is in the form of a micelle. In some embodiments, the block copolymer of Formula (Ic), or a pharmaceutically acceptable salt, solvate, or hydrate thereof, is in the form of a micelle.
[0105] In some embodiments, the block copolymer of Formula (II), (II-a), (II-b), or (II-c), or a pharmaceutically acceptable salt, solvate, or hydrate thereof, is in the form of a micelle. In some embodiments, the block copolymer of Formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof, is in the form of a micelle. In some embodiments, the block copolymer of Formula (II-c), or a pharmaceutically acceptable salt, solvate, or hydrate thereof, is in the form of a micelle.
[0106] In another embodiment, depicted herein is a micelle comprising: (i) A block copolymer having a structure of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0107] [ka] (In the formula: n3 is an integer from 10 to 200; x3 is an integer between 40 and 300; y3 is an integer from 0 to 6; z3 is an integer from 0 to 10; X 3 is halogen, —OH or —C(O)OH; Each R 10 are independently hydrogen or ICG; R 8 and R 9are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 8 and R 9 together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; and (ii) Therapeutic agents encapsulated by block copolymers.
[0108] In some embodiments, the encapsulation is non-covalent encapsulation, where the therapeutic agent is physically within the micelle. In some embodiments, the therapeutic agent is non-covalently encapsulated.
[0109] The therapeutic agent can be incorporated into the micelle using methods known in the art. In some embodiments, the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the cytokine is IL-2, IL-21, IL-12, or IL-15, or a fragment thereof. In some embodiments, the cytokine is IL-2 or IL-15, or a fragment thereof. In some embodiments, the cytokine is IL-2 or a fragment thereof. In some embodiments, the cytokine is IL-15, or a fragment thereof. In some embodiments, the cytokine is interferon alpha, interferon beta, or interferon gamma, or a fragment thereof. In some embodiments, the cytokine is a Fab, or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T-cell engager (BiTE), or a fragment thereof. In some embodiments, the small molecule is maytansine, paclitaxel, doxorubicin, temozolomide, sunitinib, dacarbazine, gemcitabine, melphalan, fenretinide or a derivative thereof, or an EGFR-TKI (tyrosine kinase inhibitor). In some embodiments, the small molecule is maytansine or a derivative thereof.
[0110] In some embodiments, when y3 and z3 are both 0, the block copolymer of Formula (III) does not non-covalently encapsulate paclitaxel or doxorubicin.
[0111] In some embodiments of the micelle, the block copolymer of formula (III) has the structure of formula (III-c), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0112] [ka]
[0113] In some embodiments, the micelle comprises (i) a block copolymer of Formula (III-c) and (ii) a therapeutic agent non-covalently encapsulated by the block copolymer. In some embodiments, the therapeutic agent is a cytokine or a fragment thereof, or an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons. In some embodiments, the therapeutic agent is a cytokine or a fragment thereof. In some embodiments, the cytokine is IL-2 or a fragment thereof. In some embodiments, the engineered antibody fragment is a bispecific T cell engager (BiTE) or a fragment thereof.
[0114] In another embodiment, depicted herein is a micelle comprising: (i) A block copolymer having a structure of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0115] [ka] (In the formula: n3 is an integer from 10 to 200; x3 is an integer between 40 and 300; y3 is an integer from 0 to 6; z3 is an integer from 0 to 10; X 3is halogen, —OH or —C(O)OH; Each R 10 are independently hydrogen or ICG; R 8 and R 9 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 8 and R 9 together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; and (ii) A block copolymer having a structure of formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0116] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 are independently hydrogen, acyl, or ICG; L 1 is a bond or -C(O)-, or an optionally substituted C1-C, optionally substituted with a maleimide residue 10 an alkylene linker or a PEG linker; Y is a therapeutic agent; or (ii) A block copolymer having a structure of formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0117] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R 6 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole; L 2 is a bond or -C(O)-, or an optionally substituted C1-C, optionally substituted with a maleimide residue 10 an alkylene linker or a PEG linker; Y is a therapeutic agent. In another embodiment, a micelle comprising: (i) A block copolymer having a structure of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0118] [ka] (In the formula: n3 is an integer from 10 to 200; x3 is an integer between 40 and 300; y3 is an integer from 0 to 6; z3 is an integer from 0 to 10; X 3 is halogen, —OH or C(O)OH; Each R 10 are independently hydrogen or ICG; R 8 and R 9 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 8 and R 9 together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; and (ii) A block copolymer having a structure of formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0119] [ka] (In the formula: n1 is an integer from 10 to 200; x1 is an integer between 40 and 300; y1 is an integer from 0 to 6; z1 is an integer from 0 to 10; X 1 is halogen, —OH or —C(O)OH; R 1 and R 2 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3are independently hydrogen, acyl, or ICG; L 1 is a bond or -C(O)-, or an optionally substituted C1-C, optionally substituted with a maleimide residue 10 an alkylene linker or a PEG linker; Y is a therapeutic agent; and (iii) A block copolymer having a structure of formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof:
[0120] [ka] (In the formula: n2 is an integer from 2 to 200; x2 is an integer between 40 and 300; y2 is an integer from 0 to 6; X 2 is halogen, —OH or —C(O)OH; R 5 and R 6 are each independently an optionally substituted C1-C6 alkyl, C3-C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 are independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole residue; L 2 is a bond or -C(O)-, or an optionally substituted C1-C, optionally substituted with a maleimide residue 10 an alkylene linker or a PEG linker; Y is a therapeutic agent. In some embodiments of formula (III) or (III-c), R 8 and R 9 are the same group. In some embodiments, R 8 and R 9 are different groups.
[0121] In some embodiments of Formula (III) or (III-c), each R 8 and R 9 are independently optionally substituted C1-C6 alkyl. In some embodiments, alkyl is a straight chain or branched alkyl. In some embodiments, alkyl is a straight chain alkyl. In some embodiments, each R 8 and R 9 is independently -CH2CH3, -CH2CH2CH3, or -CH2CH2CH2CH3. In some embodiments, each R 8 and R 9 is -CH2CH2CH2CH3. In some embodiments, each R 8 and R 9 are independently optionally substituted C-C 10 cycloalkyl or aryl. In some embodiments, each R 8 and R 9 is independently an optionally substituted cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, or cycloheptyl. 8 and R 9 is independently optionally substituted phenyl.
[0122] In some embodiments of formula (III) or (III-c), R 8 and R 8 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring. 8 and R 9 taken together is —CH(CH)CH—, —CH(CH)CH—, or —CH(CH)CH—. In some embodiments, R8 and R 9 together form -CH2(CH2)4CH2-.
[0123] In some embodiments, micelles contain one or more different types of block copolymer components from various unimers. In some embodiments, micelles contain (i) a block copolymer of Formula (III) and (ii) a block copolymer of Formula (I) or Formula (II). In some embodiments, micelles contain components (i) and (ii) in a ratio of 1:99 to 99:1; or any ratio therein. In some embodiments, micelles contain components (i) and (ii) in a ratio of 1:99, 10:90, 20:80, 30:70, 40:50, or 50:50. In some embodiments, micelles contain components (i) and (ii) in a 1:1 ratio.
[0124] In some embodiments, the micelles comprise a 1:99 ratio of block copolymer of Formula (III) to block copolymer of Formula (I). In some embodiments, the micelles comprise a 99:1 ratio of block copolymer of Formula (III) to block copolymer of Formula (I). In some embodiments, the micelles comprise a 1:99 ratio of block copolymer of Formula (III) to block copolymer of Formula (II). In some embodiments, the micelles comprise a 99:1 ratio of block copolymer of Formula (III) to block copolymer of Formula (II).
[0125] In some embodiments, the micelle comprises (i) a block copolymer of formula (III); (ii) a block copolymer of formula (I); and (iii) a block copolymer of formula (II). In some embodiments, the micelle comprises equal-portion components (i), (ii), and (iii). In some embodiments, the micelle comprises unequal-portion components (i), (ii), and (iii).
[0126] In some embodiments, each different type of block copolymer is conjugated to a different therapeutic agent. In some embodiments, each different type of block copolymer is conjugated to the same therapeutic agent.
[0127] In another aspect, presented herein is a micelle comprising: (i) a block copolymer of Formula (III); (ii) a block copolymer of Formula (I) and / or a block copolymer of Formula (II); and (iii) a therapeutic agent encapsulated by the block copolymer. In some embodiments, the therapeutic agent is non-covalently encapsulated within the micelle.
[0128] The use of micelles in cancer treatment can enhance antitumor efficacy and reduce toxicity to healthy tissue, due in part to the size of the micelles. While small molecules, such as certain chemotherapeutic agents, can enter both normal and tumor tissue, non-targeted micellar nanoparticles can preferentially traverse leaky tumor vasculature. The size of micelles is typically on the nanometer scale (i.e., between about 1 nm and 1 μm in diameter). In some embodiments, micelles have a size of about 10 to about 200 nm. In some embodiments, micelles have a size of about 20 to about 100 nm. In some embodiments, micelles have a size of about 30 to about 50 nm. In some embodiments, micelles have a diameter of less than about 1 μm. In some embodiments, micelles have a diameter of less than about 100 nm. In some embodiments, micelles have a diameter of less than about 50 nm.
[0129] pH-responsive composition In another aspect, provided herein are pH-responsive compositions. The pH-responsive compositions disclosed herein include one or more pH-responsive micelles and / or nanoparticles comprising a block copolymer and a therapeutic agent. Each block copolymer comprises a hydrophilic polymer segment and a hydrophobic polymer segment, where the hydrophobic polymer segment comprises an ionizable amine group that renders it pH-sensitive. This pH sensitivity can be utilized to provide compositions suitable as drug / therapeutic agent-conjugate therapeutic agents.
[0130] The micelles can have different pH transition values within the physiological range to target specific cells or microenvironments. In some embodiments, the micelles have a pH transition value of about 5 to about 8, or any value therein. In some embodiments, the micelles have a pH transition value of about 5 to about 6. In some embodiments, the micelles have a pH transition value of about 6 to about 7. In some embodiments, the micelles have a pH transition value of about 7 to about 8. In some embodiments, the micelles have a pH transition value of about 6.3 to about 6.9. In some embodiments, the micelles have a pH transition value of about 5.0 to about 6.2. In some embodiments, the micelles have a pH transition value of about 5.9 to about 6.2. In some embodiments, the micelles have a pH transition value of about 5.0 to about 5.5. In some embodiments, the pH transition point is 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, or 5.5. In some embodiments, the pH transition point is about 4.8. In some embodiments, the pH transition point is about 4.9. In some embodiments, the pH transition point is about 5.0. In some embodiments, the pH transition point is about 5.1. In some embodiments, the pH transition point is about 5.2. In some embodiments, the pH transition point is about 5.3. In some embodiments, the pH transition point is about 5.4. In some embodiments, the pH transition point is about 5.5.
[0131] The pH-sensitive micelle compositions of the present disclosure can advantageously have a narrow pH transition range, in contrast to other pH-sensitive compositions that have a very broad pH response (i.e., 2 pH units). In some embodiments, the micelles have a pH transition range of less than about 1 pH unit. In various embodiments, the micelles have a pH transition range of less than about 0.9, less than about 0.8, less than about 0.7, less than about 0.6, less than about 0.5, less than about 0.4, less than about 0.3, less than about 0.2, or less than about 0.1 pH units. In some embodiments, the micelles have a pH transition range of less than about 0.5 pH units. In some embodiments, the micelles have a pH transition range of less than about 0.25 pH units. A narrow pH transition range advantageously provides a sharper pH response, where the micelles can open to release cargo at specific locations (e.g., inside a tumor or specific organelle).
[0132] In some embodiments, the pH-responsive composition has an emission spectrum. In some embodiments, the emission spectrum is 600 to 800 nm. In some embodiments, the emission spectrum is 700 to 800 nm.
[0133] III. Method of Use Aerobic glycolysis, known as the Warburg effect, occurs in all solid cancers, where cancer cells preferentially take up glucose and convert it to lactate or other acids. Lactate or other acids preferentially accumulate in the extracellular space via monocarboxylate or other transporters. The resulting acidification of the extracellular space promotes extracellular matrix remodeling for further tumor invasion and metastasis.
[0134] Some embodiments provided herein describe compounds that form micelles at physiological pH (7.35-7.45). In some embodiments, the compounds described herein are covalently or non-covalently conjugated to a therapeutic agent. In some embodiments, the micelles form at 2×10 7 In some embodiments, the micelles have a molecular weight of about 2.7 x 10 Daltons. 7In some embodiments, the therapeutic agent is entrapped within the micelle core at physiological pH (7.35-7.45) (e.g., in the blood circulation). In some embodiments, when the micelle encounters an acidic environment (e.g., tumor tissue), the micelle has a molecular weight of about 3.7 x 10 4 The micelles dissociate into individual compounds, such as diblock copolymer unimers, having an average molecular weight of 100 daltons, allowing for release of the therapeutic agent. In some embodiments, the micelles dissociate at a pH below the pH transition point (e.g., the acidic conditions of the tumor microenvironment).
[0135] In some embodiments, therapeutic agents can be incorporated into the interior of micelles. Certain pH conditions (e.g., the acidic pH found in tumors and endocytic compartments) can lead to rapid protonation and dissociation of the micelles into unimers, thereby releasing the therapeutic agent (e.g., drug). In some embodiments, micelles provide stable drug encapsulation at physiological pH (pH 7.4) but can rapidly release the drug in acidic environments.
[0136] In some instances, the pH-sensitive micelle compositions described herein have a narrow pH transition range. In some embodiments, the micelles described herein have a pH transition range (ΔpH 10~90% In various embodiments, the micelles have a pH transition range of less than about 0.9, less than about 0.8, less than about 0.7, less than about 0.6, less than about 0.5, less than about 0.4, less than about 0.3, less than about 0.2, or less than about 0.1 pH units. In some embodiments, the micelles have a pH transition range of less than about 0.5 pH units. In some embodiments, the pH transition range is less than 0.25 pH units. In some embodiments, the pH transition range is less than 0.15 pH units. This sharp transition point allows the micelles to dissociate at the acid pH of the tumor microenvironment.
[0137] The micelles described herein can be used as drug delivery agents. Drug-containing micelles can be used to treat, for example, cancer or other diseases where the drug can be delivered to the appropriate location by a localized pH difference (e.g., a pH different from physiological pH (7.4)). In some embodiments, the disorder to be treated is cancer. In some embodiments, the cancer includes a solid tumor. In some embodiments, the tumor is a secondary tumor from the transition of a primary tumor. In some embodiments, drug delivery can be to lymph nodes or to the peritoneal or pleural surface.
[0138] In some embodiments are methods of treating cancer in a subject in need thereof, comprising administering to the subject a therapeutically effective amount of any of the block copolymers, micelles, or compositions disclosed herein.
[0139] In some embodiments, the cancer is carcinoma, sarcoma, lymphoma, leukemia, melanoma, mesothelioma, multiple myeloma, or seminoma.
[0140] In some embodiments, the tumor is cancer. In some embodiments, the cancer is breast cancer, head and neck squamous cell carcinoma (NHSCC), lung cancer, cervical cancer, ovarian cancer, pancreatic cancer, prostate cancer, bladder cancer, urethral cancer, kidney cancer, esophageal cancer, colorectal cancer, peritoneal metastasis, brain, or skin (including melanoma and sarcoma). In some embodiments, the cancer is breast cancer, head and neck squamous cell carcinoma (NHSCC), esophageal cancer, kidney cancer, or colorectal cancer. In some embodiments, the cancer is breast cancer. In some embodiments, the cancer is head and neck squamous cell carcinoma (NHSCC). In some embodiments, the cancer is esophageal cancer. In some embodiments, the cancer is colorectal cancer.
[0141] In some embodiments, the cancer is a solid tumor.
[0142] In some embodiments, tumors are reduced by about 5%, about 10%, about 15%, about 25%, about 30%, about 40%, about 50%, about 60%, about 70%, about 80%, or about 90%. In some embodiments, tumors are reduced by about 50%. In some embodiments, tumors are reduced by about 60%. In some embodiments, tumors are reduced by about 70%. In some embodiments, tumors are reduced by about 75%. In some embodiments, tumors are reduced by about 80%. In some embodiments, tumors are reduced by about 85%. In some embodiments, tumors are reduced by about 90%. In some embodiments, tumors are reduced by about 95%. In some embodiments, tumors are reduced by about 99%.
[0143] In some embodiments, the cancer is not a solid tumor.
[0144] Methods of administration and treatment regimens The pharmaceutical compositions of the present disclosure can be formulated to be compatible with the intended method or route of administration; exemplary routes of administration are described herein. In some embodiments, the pharmaceutical compositions disclosed herein are in a form for dosing or administration by oral, intravenous (IV), intramuscular, subcutaneous, intradermal injection, or intratumoral injection. In some embodiments, the pharmaceutical compositions are formulated for oral, intramuscular, subcutaneous, or intravenous administration. In some embodiments, the pharmaceutical compositions are formulated for intravenous administration. In some embodiments, the pharmaceutical compositions are formulated as an aqueous solution or suspension for intravenous (IV) administration. In some embodiments, the pharmaceutical compositions are formulated for administration as a single dose. In some embodiments, the pharmaceutical compositions disclosed herein are formulated for administration as a bolus via IV. In some embodiments, the pharmaceutical compositions disclosed herein are formulated for administration as an injection into a tumor.
[0145] In some embodiments, compositions containing the compounds disclosed herein are administered for preventive and / or therapeutic treatment.In certain therapeutic applications, the compositions are administered to patients already suffering from a disease or condition in an amount sufficient to cure or at least partially halt at least one symptom of the disease or condition.The amount effective for this use depends on the severity and course of the disease or condition, previous treatment, the patient's health status, weight, and response to drugs, and the judgment of the treating physician.Therapeutically effective amounts are optionally determined by methods including, but not limited to, dose escalation clinical trials.
[0146] Typical dosages range from about 0.001 mg to about 100 mg / kg per dose. In some embodiments, the dosage range is from about 0.01 mg to about 50 mg / kg. In some embodiments, a further dosage range is from about 0.05 mg to about 10 mg / kg per dose. In some embodiments, the dosage is about 50 mg / kg. In some embodiments, the dosage is about 100 mg / kg. The exact dosage will depend on the frequency and mode of administration, the sex, age, weight, and general health of the subject being treated, the nature and severity of the condition being treated and any concomitant diseases being treated, and other factors apparent to one skilled in the art.
[0147] In certain embodiments, the dose of the composition being administered can be temporarily reduced or temporarily suspended for a certain length of time (ie, a "drug holiday").
[0148] In some embodiments, the method comprises administering the composition once. In some embodiments, the method comprises administering the composition two or more times. In some embodiments, the composition is administered once per day.
[0149] In some embodiments, the subject is a mammal, hi some embodiments, the subject is a human.
[0150] Combination Therapy In another aspect, the compositions disclosed herein are administered together with one or more additional therapies. In some embodiments, the method further comprises a second anti-cancer treatment. In some embodiments, the second anti-cancer treatment is surgery, chemotherapy, radiation therapy, gene therapy, or immunotherapy. In some embodiments, the second anti-cancer treatment is immunotherapy. In some embodiments, the immunotherapy is checkpoint therapy. In some embodiments, the second anti-cancer treatment is radiation therapy. In some embodiments, the second treatment is surgery.
[0151] definition In the following description, certain specific details are set forth to provide a thorough understanding of various embodiments. However, those skilled in the art will understand that the present invention may be practiced without these details. In other instances, well-known structures are not shown or described in detail to avoid unnecessarily obscuring descriptions of the embodiments. Unless the context otherwise requires, throughout the following specification and claims, the word "comprise" and variations thereof, such as "comprises" and "comprising," should be interpreted in an open, inclusive sense, i.e., "including, but not limited to." Furthermore, the headings provided herein are for convenience only and do not interpret the scope or meaning of the claimed invention.
[0152] As used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content clearly dictates otherwise. It should also be noted that the term "or" is generally used in its sense, including "and / or," unless the content clearly dictates otherwise.
[0153] The following terms, as used herein, have the following meanings unless otherwise indicated: "Oxo" refers to the =O substituent.
[0154] "Thioxo" refers to the =S substituent.
[0155] "Alkyl" refers to a straight or branched hydrocarbon chain group having from 1 to 20 carbon atoms and attached to the rest of the molecule by a single bond. Alkyl containing up to 10 carbon atoms is C1-C 10 Similarly, when referred to as alkyl, for example, an alkyl containing up to 6 carbon atoms is a C1-C6 alkyl. Alkyl groups containing other numbers of carbon atoms (and other moieties defined herein) are represented similarly. Alkyl groups include, but are not limited to, C1-C 10 Examples of alkyl include alkyl, C1-C9 alkyl, C1-C8 alkyl, C1-C7 alkyl, C1-C6 alkyl, C1-C5 alkyl, C1-C4 alkyl, C1-C3 alkyl, C1-C2 alkyl, C2-C8 alkyl, C3-C8 alkyl, and C4-C8 alkyl. Representative alkyl groups include, but are not limited to, methyl, ethyl, n-propyl, 1-methylethyl (i-propyl), n-butyl, i-butyl, s-butyl, n-pentyl, 1,1-dimethylethyl (t-butyl), 3-methylhexyl, 2-methylhexyl, 1-ethylpropyl, and the like. In some embodiments, alkyl is methyl, ethyl, s-butyl, or 1-ethylpropyl. Unless stated otherwise specifically in the specification, an alkyl group may be optionally substituted as described below. "Alkylene" or "alkylene chain" refers to a straight or branched divalent hydrocarbon chain connecting the remainder of the molecule to a radical group. In some embodiments, the alkylene is saturated. In some embodiments, the alkylene is -CH2-, -CH2CH2-, or -CH2CH2CH2-. In some embodiments, the alkylene is -CH2-. In some embodiments, the alkylene is -CH2CH2-. In some embodiments, the alkylene is -CH2CH2CH2-. In some embodiments, the alkylene is -CH2CH2CH2-.
[0156] "Alkoxy" refers to a group of the formula -OR, where R is an alkyl group as defined herein. Unless otherwise specifically stated herein, an alkoxy group may be optionally substituted as described below. Representative alkoxy groups include, but are not limited to, methoxy, ethoxy, propoxy, butoxy, and pentoxy. In some embodiments, the alkoxy is methoxy. In some embodiments, the alkoxy is ethoxy.
[0157] "Heteroalkylene" refers to an alkyl group, as described above, in which one or more carbon atoms of the alkyl are replaced with an O, N, or S atom. "Heteroalkylene" or "heteroalkylene chain" refers to a straight or branched divalent heteroalkyl chain that connects the remainder of the molecule to a radical group. Unless stated otherwise specifically in the specification, a heteroalkyl or heteroalkylene group can be optionally substituted as described below. Representative heteroalkyl groups include, but are not limited to, -OCHOMe, -OCHCHOMe, or -OCHCHOCHCHNH. Representative heteroalkylene groups include, but are not limited to, -OCHCHO-, -OCHCHOCHCHO-, or -OCHCHOCHCHOCHCHO-.
[0158] "Alkylamino" refers to a group of the formula -NHR or -NRR, where each R is independently an alkyl group as defined above. Unless stated otherwise specifically in the specification, an alkylamino group can be optionally substituted as described below.
[0159] The term "aromatic" refers to a planar ring having a delocalized π-electron system containing 4n+2 π-electrons, where n is an integer. An aromatic may be optionally substituted. The term "aromatic" includes both aryl groups (e.g., phenyl, naphthalenyl) and heteroaryl groups (e.g., pyridinyl, quinolinyl).
[0160] "Aryl" refers to an aromatic ring in which each of the atoms forming the ring is a carbon atom. An aryl group may be optionally substituted. Examples of aryl groups include, but are not limited to, phenyl and naphthalenyl. In some embodiments, an aryl is phenyl. Depending on the structure, an aryl group can be a monoradical or a diradical (i.e., an arylene group). Unless specifically stated otherwise in this specification, the term "aryl" or the prefix "ar-" (e.g., in "aralkyl") is meant to include aryl groups that are optionally substituted.
[0161] "Carboxy" refers to -CO2H. In some embodiments, the carboxy moiety can be replaced with "carboxylic acid bioisostere," which refers to a functional group or moiety that exhibits similar physical and / or chemical properties as a carboxylic acid moiety. A carboxylic acid bioisostere has biological properties similar to those of a carboxylic acid group. A compound having a carboxylic acid moiety can have the carboxylic acid moiety replaced with a carboxylic acid bioisostere and have similar physical and / or biological properties when compared to a carboxylic acid-containing compound. For example, in one embodiment, a carboxylic acid bioisostere ionizes to approximately the same extent as a carboxylic acid group at physiological pH. Examples of carboxylic acid bioisosteres include, but are not limited to, the following:
[0162] [ka] etc.
[0163] "Cycloalkyl" refers to a monocyclic or polycyclic non-aromatic group in which each of the atoms forming the ring (i.e., the skeletal atoms) is a carbon atom. The cycloalkyl may be saturated or partially unsaturated. The cycloalkyl may be fused to an aromatic ring (in which case the cycloalkyl is attached via a non-aromatic ring carbon atom). Cycloalkyl groups include groups having 3 to 10 ring atoms. In some embodiments, the cycloalkyl is a C3-C6 cycloalkyl. In some embodiments, the cycloalkyl is a 3-6 membered cycloalkyl. Representative cycloalkyls include, but are not limited to, cycloalkyls having 3 to 10 carbon atoms, 3 to 8 carbon atoms, 3 to 6 carbon atoms, or 3 to 5 carbon atoms. Monocyclic cycloalkyl groups include, for example, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, and cyclooctyl. In some embodiments, the monocyclic cycloalkyl is cyclopropyl, cyclobutyl, cyclopentyl, or cyclohexyl. Polycyclic groups include, for example, adamantyl, norbornyl, decalinyl, and 3,4-dihydronaphthalen-1(2H)-one. Unless stated otherwise specifically in the specification, cycloalkyl groups can be optionally substituted.
[0164] "Fused" refers to any ring structure described herein that is fused to an existing ring structure. When the fused ring is a heterocyclyl ring or a heteroaryl ring, any carbon atom on the existing ring structure that becomes part of the fused heterocyclyl ring or fused heteroaryl ring can be replaced with a nitrogen atom.
[0165] "Halo" or "halogen" refers to bromo, chloro, fluoro, or iodo.
[0166] "Haloalkyl" refers to an alkyl group, as defined above, that is substituted by one or more halo groups, as defined above, e.g., trifluoromethyl, difluoromethyl, fluoromethyl, trichloromethyl, 2,2,2-trifluoroethyl, 1,2-difluoroethyl, 3-bromo-2-fluoropropyl, 1,2-dibromoethyl, etc. Unless stated otherwise specifically in the specification, a haloalkyl group can be optionally substituted.
[0167] "Haloalkoxy" refers to an alkoxy group, as defined above, that is substituted by one or more halo groups, as defined above, e.g., trifluoromethoxy, difluoromethoxy, fluoromethoxy, trichloromethoxy, 2,2,2-trifluoroethoxy, 1,2-difluoroethoxy, 3-bromo-2-fluoropropoxy, 1,2-dibromoethoxy, etc. Unless stated otherwise specifically in the specification, a haloalkoxy group can be optionally substituted.
[0168] "Heterocycloalkyl" or "heterocyclyl" or "heterocyclic ring" refers to a stable 3- to 14-membered non-aromatic ring radical containing 2 to 13 carbon atoms and 1 to 6 heteroatoms selected from the group consisting of nitrogen, oxygen, and sulfur. In some embodiments, a heterocycloalkyl is a C2-C7 heterocycloalkyl. In some embodiments, a heterocycloalkyl is a C2-C6 heterocycloalkyl. In some embodiments, a heterocycloalkyl is a C2-C5 heterocycloalkyl. In some embodiments, a heterocycloalkyl is a 3- to 8-membered heterocycloalkyl. In some embodiments, a heterocycloalkyl is a 3- to 7-membered heterocycloalkyl. In some embodiments, a heterocycloalkyl is a 3- to 6-membered heterocycloalkyl. In some embodiments, a heterocycloalkyl is a 3- to 5-membered heterocycloalkyl. Unless stated otherwise specifically in the specification, a heterocycloalkyl group can be a monocyclic or bicyclic ring system, which can include fused ring systems (when fused to an aryl or heteroaryl ring, the heterocycloalkyl is attached through a non-aromatic ring atom) or bridged ring systems. The nitrogen, carbon, or sulfur atoms in the heterocyclyl group can be optionally oxidized. The nitrogen atom can be optionally quaternized. The heterocycloalkyl group can be partially or fully saturated. Examples of such heterocycloalkyl groups include, but are not limited to, dioxolanyl, thienyl[1,3]dithianyl, decahydroisoquinolyl, imidazolinyl, imidazolidinyl, isothiazolidinyl, isoxazolidinyl, morpholinyl, octahydroindolyl, octahydroisoindolyl, 2-oxopiperazinyl, 2-oxopiperidinyl, 2-oxopyrrolidinyl, oxazolidinyl, piperidinyl, piperazinyl, 4-piperidonyl, pyrrolidinyl, pyrazolidinyl, quinuclidinyl, thiazolidinyl, tetrahydrofuryl, trithianyl, tetrahydropyranyl, thiomorpholinyl, thiamorpholinyl, 1-oxo-thiomorpholinyl, and 1,1-dioxo-thiomorpholinyl.The term heterocycloalkyl also includes all ring forms of carbohydrates, including, but not limited to, monosaccharides, disaccharides, and oligosaccharides. Unless otherwise noted, heterocycloalkyls have 2 to 10 carbons in the ring. In some embodiments, heterocycloalkyls have 2 to 8 carbons in the ring. In some embodiments, heterocycloalkyls have 2 to 8 carbons and 1 or 2 N atoms in the ring. When referring to the number of carbon atoms in a heterocycloalkyl, it is understood that the number of carbon atoms in the heterocycloalkyl is not the same as the total number of atoms (including heteroatoms) that make up the heterocycloalkyl (i.e., the skeletal atoms of the heterocycloalkyl ring). Unless specifically stated otherwise in this specification, heterocycloalkyl groups can be optionally substituted.
[0169] "Heteroaryl" refers to an aryl group containing one or more ring heteroatoms selected from nitrogen, oxygen, and sulfur. Heteroaryl is monocyclic or bicyclic. In some embodiments, heteroaryl is a 5- or 6-membered heteroaryl. In some embodiments, heteroaryl is a 5-membered heteroaryl. In some embodiments, heteroaryl is a 6-membered heteroaryl. Illustrative examples of monocyclic heteroaryls include pyridinyl, imidazolyl, pyrimidinyl, pyrazolyl, triazolyl, pyrazinyl, tetrazolyl, furyl, thienyl, isoxazolyl, thiazolyl, oxazolyl, isothiazolyl, pyrrolyl, pyridazinyl, triazinyl, oxadiazolyl, thiadiazolyl, furazanyl, indolizine, indole, benzofuran, benzothiophene, indazole, benzimidazole, purine, quinolizine, quinoline, isoquinoline, cinnoline, phthalazine, quinazoline, quinoxaline, 1,8-naphthyridine, and pteridine. Illustrative examples of monocyclic heteroaryls include pyridinyl, imidazolyl, pyrimidinyl, pyrazolyl, triazolyl, pyrazinyl, tetrazolyl, furyl, thienyl, isoxazolyl, thiazolyl, oxazolyl, isothiazolyl, pyrrolyl, pyridazinyl, triazinyl, oxadiazolyl, thiadiazolyl, and furazanyl. Illustrative examples of bicyclic heteroaryls include indolizine, indole, benzofuran, benzothiophene, indazole, benzimidazole, purine, quinolizine, quinoline, isoquinoline, cinnoline, phthalazine, quinazoline, quinoxaline, 1,8-naphthyridine, and pteridine. In some embodiments, heteroaryl is pyridinyl, pyrazinyl, pyrimidinyl, thiazolyl, thienyl, thiadiazolyl, or furyl. In some embodiments, heteroaryl contains 0 to 4 N atoms in the ring. In some embodiments, the heteroaryl contains 1 to 4 N atoms in the ring. In some embodiments, the heteroaryl contains 0 to 4 N atoms, 0 to 1 O atoms, and 0 to 1 S atoms in the ring. In some embodiments, the heteroaryl contains 1 to 4 N atoms, 0 to 1 O atoms, and 0 to 1 S atoms in the ring.
[0170] The term "optionally substituted" or "substituted" means that the group to which the reference is being made may be substituted with one or more additional groups individually and independently selected from alkyl, haloalkyl, cycloalkyl, aryl, heteroaryl, heterocycloalkyl, -OH, alkoxy, aryloxy, alkylthio, arylthio, alkylsulfoxide, arylsulfoxide, alkylsulfone, arylsulfone, -CN, alkyne, C-C alkylalkyne, halogen, acyl, acyloxy, -COH, -COalkyl, nitro, and amino, including mono- and di-substituted amino groups (e.g., -NH, -NHR, -N(R)), and protected derivatives thereof. In some embodiments, the optional substituents are independently selected from alkyl, alkoxy, haloalkyl, cycloalkyl, halogen, -CN, -NH, -NH(CH), -N(CH), -OH, -COH, and -COalkyl. In some embodiments, optional substituents are independently selected from fluoro, chloro, bromo, iodo, -CH, -CHCH, -CF, -OCH, and -OCF. In some embodiments, optional substituents are independently selected from fluoro, chloro, -CH, -CF, -OCH, and -OCF. In some embodiments, a substituted group is substituted with one or two of the preceding groups. In some embodiments, optional substituents on an aliphatic carbon atom (acyclic or cyclic, saturated or unsaturated carbon atom, excluding aromatic carbon atoms) include oxo (=O).
[0171] "Maleimide residue" refers to the compound structure that results from the reaction of a maleimide group with, for example, a thiol sulfur atom of a protein.
[0172] "Tautomer" refers to a proton shift from one atom of a molecule to another atom of the same molecule. The compounds presented herein can exist as tautomers. Tautomers are compounds that are interconvertible by migration of a hydrogen atom accompanied by switching of a single bond and an adjacent double bond. In bonding configurations where tautomerization is possible, a chemical equilibrium of tautomers exists. All tautomeric forms of the compounds disclosed herein are contemplated. The exact ratio of tautomers depends on several factors, including temperature, solvent, and pH. Some examples of tautomeric interconversions include the following:
[0173] [ka]
[0174] The term "co-administration" and the like, as used herein, is meant to encompass the administration of selected therapeutic agents to a single patient and is intended to include therapeutic regimens in which the agents are administered by the same or different routes of administration or at the same or different times.
[0175] The term "effective amount" or "therapeutically effective amount," as used herein, refers to a sufficient quantity of an agent or compound being administered to relieve to some extent one or more of the symptoms of the disease or condition being treated. The result can be a reduction and / or alleviation of the signs, symptoms, or causes of a disease, or any other desired alteration of a biological system. For example, an "effective amount" for therapeutic use is the amount of a composition comprising a compound as disclosed herein that is required to provide a clinically significant reduction in disease symptoms. An appropriate "effective" amount in any individual case can be determined using techniques such as a dose escalation study.
[0176] Unless otherwise specified, the following terms used in this application have the definitions provided below. The use of the term "including" and other forms such as "include," "includes," and "included" is not limiting. The section headings used herein are for organizational purposes only and should not be construed as limiting the subject matter described.
[0177] "Pharmaceutically acceptable," as used herein, refers to a material, such as a carrier or diluent, that does not abrogate the biological activity or properties of the block copolymer and is relatively non-toxic, i.e., the material may be administered to an individual without causing undesired biological effects or interacting in a deleterious manner with any of the components of the composition in which it is contained.
[0178] The term "pharmaceutically acceptable salt" refers to a form of a therapeutically active agent consisting of the cationic form of the therapeutically active agent in combination with a suitable anion, or, in an alternative embodiment, the anionic form of the therapeutically active agent in combination with a suitable cation. Handbook of Pharmaceutical Salts: Properties, Selection and Use. International Union of Pure and Applied Chemistry, Wiley-VCH 2002. S.M. Berge, L.D. Bighley, D.C. Monkhouse, J.Pharm.Sci. 1977, 66, 1-19. P.H. Stahl and C.G. Wermuth, editors, Handbook of Pharmaceutical Salts: Properties, Selection and Use, Weinheim / Zurich: Wiley-VCH / VHCA, 2002. Pharmaceutical salts are typically more soluble and rapidly soluble in gastric and intestinal fluids than the non-ionic species, and are therefore useful in solid dosage forms. Furthermore, because their solubility is often a function of pH, selective dissolution in one or another part of the gastrointestinal tract is possible, which can be manipulated as an aspect of delayed and sustained release behavior. Moreover, because salt-forming molecules can be in equilibrium with neutral forms, passage through biological membranes can be tailored.
[0179] In some embodiments, pharmaceutically acceptable salts are obtained by reacting the block copolymer with an acid. In some embodiments, the block copolymers disclosed herein (i.e., in free base form) are basic and are reacted with an organic or inorganic acid. Inorganic acids include, but are not limited to, hydrochloric acid, hydrobromic acid, sulfuric acid, phosphoric acid, nitric acid, and metaphosphoric acid. Organic acids include, but are not limited to, 1-hydroxy-2-naphthoic acid; 2,2-dichloroacetic acid; 2-hydroxyethanesulfonic acid; 2-oxoglutaric acid; 4-acetamidobenzoic acid; 4-aminosalicylic acid; acetic acid; adipic acid; ascorbic acid (L); aspartic acid (L); benzenesulfonic acid; benzoic acid; camphoric acid (+); camphor-10-sulfonic acid (+); capric acid (decanoic acid); caproic acid (hexanoic acid); caprylic acid (octanoic acid); carbonic acid; cinnamic acid; citric acid; cyclamic acid; dodecyl sulfuric acid; ethane-1,2-disulfonic acid; ethanesulfonic acid; formic acid; fumaric acid; galactaric acid; and gentisic acid. ; glucoheptanoic acid (D); gluconic acid (D); glucuronic acid (D); glutamic acid; glutaric acid; glycerophosphoric acid; glycolic acid; hippuric acid; isobutyric acid; lactic acid (DL); lactobionic acid; lauric acid; maleic acid; malic acid (-L); malonic acid; mandelic acid (DL); methanesulfonic acid; naphthalene-1,5-disulfonic acid; naphthalene-2-sulfonic acid; nicotinic acid; oleic acid; oxalic acid; palmitic acid; pamoic acid; phosphoric acid; propionic acid; pyroglutamic acid (-L); salicylic acid; sebacic acid; stearic acid; succinic acid; sulfuric acid; tartaric acid (+L); thiocyanic acid; toluenesulfonic acid (p); and undecylenic acid.
[0180] In some embodiments, the block copolymers disclosed herein are prepared as chloride, sulfate, bromide, mesylate, maleate, citrate, or phosphate salts.
[0181] In some embodiments, pharmaceutically acceptable salts are obtained by reacting the block copolymers disclosed herein with a base. In some embodiments, the block copolymers disclosed herein are acidic and are reacted with a base. In such situations, the acidic protons of the block copolymers disclosed herein are replaced by metal ions, such as lithium, sodium, potassium, magnesium, calcium, or aluminum ions. In some cases, the block copolymers described herein coordinate with organic bases, such as, but not limited to, ethanolamine, diethanolamine, triethanolamine, tromethamine, meglumine, N-methylglucamine, dicyclohexylamine, and tris(hydroxymethyl)methylamine. In other cases, the block copolymers described herein form salts with amino acids, such as, but not limited to, arginine and lysine. Acceptable inorganic bases used to form salts with block copolymers containing acidic protons include, but are not limited to, aluminum hydroxide, calcium hydroxide, potassium hydroxide, sodium carbonate, potassium carbonate, sodium hydroxide, and lithium hydroxide. In some embodiments, the block copolymers provided herein are prepared as sodium, calcium, potassium, magnesium, melamine, N-methylglucamine, or ammonium salts.
[0182] Reference to pharmaceutically acceptable salts should be understood to include solvent addition forms. In some embodiments, solvates contain either stoichiometric or non-stoichiometric amounts of solvent and are formed during the process of crystallization with a pharmaceutically acceptable solvent, such as water, ethanol, etc. Hydrates are formed when the solvent is water, or alcoholates are formed when the solvent is alcohol. Solvates of the compounds described herein are conveniently prepared or formed during the processes described herein. In addition, the compounds provided herein optionally exist in unsolvated as well as solvated forms.
[0183] The methods and formulations described herein include the use of N-oxides (where appropriate) or pharmaceutically acceptable salts of block copolymers having the structure of any of Formulas (I), (Ia), (Ib), (I-b2), (Ic), (II), (II-a), (II-b), (II-b2), (III) or (III-c), as well as active metabolites of these compounds that have the same type of activity.
[0184] In another embodiment, the compounds described herein are labeled isotopically (e.g., with a radioisotope) or by other means, including, but not limited to, the use of a chromophore or fluorescent moiety, a bioluminescent label, or a chemiluminescent label.
[0185] The compounds described herein include isotopically labeled compounds that are identical to those listed in the various formulas and structures depicted herein except for the fact that one or more atoms are replaced by an atom having an atomic mass or mass number different from the atomic mass or mass number normally found in nature. Examples of isotopes that can be incorporated into the compounds include, for example: 2 H, 3 H, 13 C. 14 C. 15 N, 18 O. 17 O. 35 S, 18 F, 36 Cl, 123 I, 124 I, 125 I, 131 I, 32 P and 33 and isotopes of hydrogen, carbon, nitrogen, oxygen, sulfur, fluorine, chlorine, iodine, and phosphorus, such as P. In one embodiment, the isotopically labeled compounds described herein, e.g., 3 H and 14Incorporation of radioactive isotopes such as C is useful in drug and / or substrate tissue distribution assays. In one aspect, substitution with isotopes such as deuterium confers certain therapeutic advantages resulting from greater metabolic stability, e.g., increased in vivo half-life or reduced dosage requirements.
[0186] As used herein, the terms "pH-responsive system," "pH-responsive composition," "micelle," "pH-responsive micelle," "pH-sensitive micelle," "pH-activatable micelle," and "pH-activatable micelle (pHAM) nanoparticle" are used interchangeably herein to refer to micelles containing one or more compounds that dissociate depending on the pH (e.g., above or below a certain pH). As a non-limiting example, at a certain pH, the block copolymer of formula (II) is substantially in a micellar form. As the pH changes (e.g., decreases), the micelles begin to dissociate, and as the pH changes further (e.g., decreases further), the block copolymer of formula (II) exists in a substantially dissociated (non-micellar) form.
[0187] As used herein, "pH transition range" refers to the pH range at which micelles dissociate.
[0188] As used herein, "pH transition value" (pH) refers to the pH at which half of the micelles are dissociated.
[0189] "Nanoprobe" is used herein to refer to a pH-sensitive micelle comprising an imaging labeling moiety. In some embodiments, the labeling moiety is a fluorescent dye. In some embodiments, the fluorescent dye is indocyanine green dye.
[0190] The terms "administer," "administering," "administration," and the like, as used herein, refer to methods that can be used to enable delivery of a compound or composition to a desired site of biological effect. These methods include, but are not limited to, oral routes, intraduodenal routes, parenteral injection (including intravenous, subcutaneous, intraperitoneal, intramuscular, intravascular, or infusion), topical, and rectal administration. Those of skill in the art are familiar with administration techniques that can be used with the compounds and methods described herein. In some embodiments, the compounds and compositions described herein are administered orally. In some embodiments, the compositions described herein are administered intravenously.
[0191] The term "co-administration" and the like, as used herein, is meant to encompass the administration of selected therapeutic agents to a single patient and is intended to include therapeutic regimens in which the agents are administered by the same or different routes of administration or at the same or different times.
[0192] The term "effective amount" or "therapeutically effective amount," as used herein, refers to a sufficient quantity of an administered agent or compound to relieve to some extent one or more of the symptoms of the disease or condition being treated. Results include reduction and / or alleviation of the signs, symptoms, or causes of a disease, or any other desired alteration of a biological system. For example, an "effective amount" for therapeutic use is the amount of a composition comprising a compound as disclosed herein required to provide a clinically significant reduction in disease symptoms. An appropriate "effective" amount in any individual case is optionally determined using techniques such as a dose escalation study.
[0193] The terms "enhance" or "enhancing," as used herein, means to increase or prolong, either in potency or duration, a desired effect. Thus, in regard to enhancing the effect of therapeutic agents, the term "enhancing" refers to the ability to increase or prolong, either in potency or duration, the effect of other therapeutic agents on a system. An "enhancing-effective amount," as used herein, refers to an amount adequate to enhance the effect of another therapeutic agent in a desired system.
[0194] The term "subject" or "patient" includes mammals. Examples of mammals include, but are not limited to, any member of the mammalian class: humans, non-human primates, such as chimpanzees, and other ape and monkey species; farm animals, such as cows, horses, sheep, goats, and pigs; livestock, such as rabbits, dogs, and cats; and laboratory animals, including rodents, such as rats, mice, and guinea pigs. In one embodiment, the mammal is a human.
[0195] The terms "treat," "treating," or "treatment," as used herein, include alleviating, attenuating, or ameliorating at least one symptom of a disease or condition, preventing additional symptoms, inhibiting a disease or condition, e.g., arresting the onset of a disease or condition, relieving a disease or condition, causing regression of a disease or condition, alleviating symptoms caused by a disease or condition, or arresting the symptoms of a disease or condition either prophylactically and / or therapeutically.
[0196] Use of the term "or" in the claims is used to mean "and / or" unless expressly indicated to refer to alternatives only or unless the alternatives are mutually exclusive, even if the disclosure supports a definition that refers to alternatives only and "and / or." Throughout this application, the term "about" is used to indicate that a value includes the standard deviation of error for the device or method being employed to determine the value. In accordance with long-standing patent law, the words "a" and "an," when used in conjunction with the word "comprising" in the claims or specification, indicate one or more unless specifically noted. [Example]
[0197] Example 1: Synthesis of block copolymer General synthesis method The block copolymers and micelles described herein are synthesized using standard synthetic techniques or methods known in the art.
[0198] Unless otherwise indicated, conventional methods of mass spectrometry, NMR, HPLC, protein chemistry, biochemistry, recombinant DNA technology, and pharmacology are employed. Block copolymers are prepared using standard organic chemistry techniques, such as those described in March's Advanced Organic Chemistry, 6th Edition, John Wiley and Sons, Inc.
[0199] Some abbreviations used herein are as follows: DCM: dichloromethane DMAP: 4-dimethylaminopyridine DMF: dimethylformamide DMF-DMA: N,N-dimethylformamide dimethyl acetal EDCI: 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide EtOAc: ethyl acetate EtOH: ethanol FPLC Fast Protein Liquid Chromatography ICG-OSu: Indocyanine green succinamide ester MeOH: Methanol PMDETA: N,N,N',N",N"-pentamethyldiethylenetriamine CDI Carbonyldiimidazole NHS-Carbonate N-Hydroxysuccinimide Carbonate SPDB N-Succinimidyl-4-(2-pyridyldithio)butanoate TEA: Triethylamine Hr time ISR sample reanalysis IV (intravenous) kg kilogram mg milligram mL milliliter μg microgram NC Not calculated NR Not Reported
[0200] Suitable PEG polymers can be purchased commercially (e.g., from Sigma-Aldrich) or synthesized according to methods known in the art. In some embodiments, hydrophilic polymers can be used as initiators for the polymerization of hydrophobic monomers to form block copolymers. For example, MPC polymers (e.g., narrowly distributed MPC polymers) can be prepared by atom transfer radical polymerization (ATRP) with commercially available small molecule initiators, such as ethyl 2-bromo-2-methylpropanoate (Sigma-Aldrich). These resulting MPC polymers can be used as macromolecular ATRP initiators for further copolymerization with other monomers to form block polymers, which can be synthesized using atom transfer radical polymerization (ATRP) or reversible addition-fragmentation chain transfer (RAFT) methods.
[0201] In some embodiments, suitable block copolymers and micelles can be synthesized using standard synthetic techniques or using methods known in the art in combination with the methods described in Patent Publication Nos. WO2012039741 and WO2015188157, which are incorporated herein by reference in their entireties.
[0202] Example 2: Micelle formation General method Methanol is added to the block copolymer in a glass round-bottom flask and dissolved using a sonication bath. After dissolution, the resulting solution is quantitatively transferred to an HDPE bottle containing a stir bar and cooled to 0°C using an ice bath. Water is added dropwise to the methanol polymer solution in the HDPE bottle using a peristaltic pump while stirring. The HDPE bottle containing the polymer solution is maintained in an ice bath, resulting in the formation of micelles. Methanol is removed from the micelle solution using five cycles of tangential flow filtration (TFF) through a 100k Pellicon® 2 Mini Ultrafiltration Module.
[0203] PEG-PDBA-IL-2 formulation prepared by simple mixing The polymeric micelle solution in water was diluted with water for injection (WFI). 10% (w / w) IL-2 (% of polymer) in phosphate buffer was added and mixed with pipette to create a solution of 1 mg / mL micelles and 0.1 mg / mL IL-2. The solution was incubated at room temperature for 10 minutes. The sample was then centrifuged at high speed in a microcentrifuge at ambient temperature (Eppendorf, 21,130 × g, 10 minutes). The solution was purified by membrane ultrafiltration (Amicon, 0.5 mL, MWCO 100 kDa) to remove all unencapsulated IL-2. 0.5 mL of the formulation was then added to an Amicon ultracentrifuge and centrifuged at 5,000 rcf for 2-3 minutes. The permeate was discarded, and the retentate, containing the micelle-IL-2 formulation, was diluted to 0.5 mL with water for injection. This process was repeated 10 times. The IL-2 concentration in the formulations was determined by Western blot or dot blot against a standard curve.
[0204] Purification of PDBA-IL-2 preparations by FPLC PEG-PDBA-IL-2 noncovalent formulations or conjugates were purified by one of several methods (e.g., simple mixing, acid-base titration, etc.). Crude PDBA-IL-2 formulations were purified by FPLC using an Äkta Pure 25M (GE) system equipped with a Superdex 200 Increase 10 / 300GL column (GE). Equilibration was performed in 1x PBS at 0.75 mL / min. Sample injection was performed using an appropriately sized sample loop or superloop. Isosolic elution was performed in 1x PBS at a flow rate of 0.5 mL / min while monitoring absorbance at multiple wavelengths (e.g., 214 nm, 280 nm, 700 nm). Fractions (0.5 mL) were collected in 1.5 mL tubes. Fractions containing formulation and free protein, as indicated by the chromatogram, were analyzed by SDS-PAGE, Western blot, or dot blot. Fractions containing IL-2 in the formulation were pooled.
[0205] PEG-PDBA-IL-2 formulation by double emulsion solvent evaporation (DESE) A 1.0 mg / mL polymer solution in dichloromethane (DCM) and 1.0 mg / mL IL-2 in phosphate buffer were chilled in an ice-water bath for 5 minutes. The IL-2 solution was added dropwise to the polymer solution in an ice-water bath under sonication to form a 10% (w / w, IL-2 / polymer) total volume to form a first emulsion solution. The first emulsion was added dropwise to a chilled PVA / THL solution in cold water under sonication to form a second emulsion solution. The second emulsion solution was stirred overnight at room temperature. The solution was purified by membrane ultrafiltration (Amicon, 0.5 mL, MWCO 100 kDa) to remove unencapsulated IL-2. 0.5 mL of the formulation was then added to an Amicon ultracentrifuge and centrifuged at 5,000 rcf for 2-3 minutes. The permeate was discarded, and the retentate, which contained the micelle-IL-2 formulation, was diluted to 0.5 mL in water for injection. This process was repeated 10 times. The IL-2 concentration in the formulation was determined by Western blot or dot blot against a standard curve.
[0206] PEG-PDBA-IL-2 formulation by acid-base titration 10% (w / w) IL-2 in phosphate buffer was added to a polymer solution in pH 4.47 phosphate buffer and vortexed at room temperature. 1 M NaOH solution was added to the solution under sonication. The solution was diluted with WFI to a final concentration of 1.0 mg / mL polymer and 0.1 mg / mL IL-2. The solution was purified by membrane ultrafiltration (Amicon, 0.5 mL, MWCO 100 kDa) to remove unencapsulated IL-2. Next, 0.5 mL of the formulation was added to an Amicon ultracentrifuge device and centrifuged at 5,000 rcf for 2-3 minutes. The permeate was discarded, and the retentate, containing the micellar IL-2 formulation, was diluted to 0.5 mL with water for injection. This process was repeated 10 times. The IL-2 concentration in the formulation was determined by Western blot or dot blot against a standard curve.
[0207] Quantification of IL-2 and micelles in formulations by dot blot The IL-2 and micelle content of the formulations was determined by dot blot. A 0.2 μm nitrocellulose membrane was incorporated into the Dot-Blot apparatus. Each well was washed under vacuum with 200 μL of 1× PBS and subsequently rehydrated with 100 μL of PBS. Samples and standards (10-100 μL) were added, and vacuum was applied to the membrane. The membrane was washed 2× with PBS.
[0208] IL-2 immunoblotting was performed by probing and blocking with PBS-T supplemented with 2% BSA (PBS with 0.05% Tween-20), probing with anti-IL-2 rabbit monoclonal antibody (Invitrogen, 2H20L7, 1:1000 dilution in PBS-T, 1 h), washing four times with PBS-T, and then probing with donkey anti-rabbit IgG labeled with IRDye® 680RD (LI-COR, 1:5000 dilution in PBS-T). Detection was performed using a ChemiDoc MP (Bio-Rad), and images were quantified by densitometric analysis using ImageLab (Bio-Rad). IL-2 content was determined by fitting to a standard curve.
[0209] Polymer content was determined by immunoblotting for polyethylene glycol against a polymer standard curve. Immunoblotting was performed by blocking the membrane with PBS supplemented with 2% BSA, probing with THE™ anti-PEG IGM mAb (Genscript, 1:1000 dilution in PBS), washing four times with PBS, and probing with goat anti-mouse IgM (μ chain specific) labeled with IRDye® 680RD (LI-COR, 1:5000 dilution in PBS). Detection was performed using a ChemiDoc MP (Bio-Rad), and images were quantified by densitometric analysis using ImageLab (Bio-Rad). Polymer content was determined by fitting to a PEG-PDBA standard curve.
[0210] Example 3: Block copolymer covalently conjugated to IL-2 and Fab PEG-PDBA conjugation to IL-2 in an amine block To 500 μl of a 1 mg / ml rhIL-2 solution (Genscript Z00368-1) in pH 7.5 PBS buffer, 13.5 μl of SAT(PEG)4 (Thermo, 25 mM in DMSO) was added. After 30 minutes, the reaction was quenched with 1 M Tris-HCl, and the solution was stirred at room temperature for 15 minutes. The intermediate was purified by transferring the solution to a 2 mL desalting column (Thermo Zeba, 7 kDa MWCO) and then adding 100 μL of 1× PBS to the top of the column. To recover the solution, 167 μL of deacetylation solution (0.5 M hydroxylamine, 25 mM EDTA in 1× PBS) was added, and the reaction solution was kept at room temperature for 2 hours. The protein precursor for polymer conjugation in the next step was then purified by transferring the solution to a 2 mL desalting column and then adding 100 μL of 1× PBS buffer to the top of the column.
[0211] To the solution, 5.6 mg of PEG-PDBA 100 The -AMA4-OPSS polymer was added, followed by 5 mL of pH 4.5 PBS buffer. The mixture was sonicated to create a clear solution. The polymer solution (1 mL) was diluted with 1.35 mL of pH 4.5 buffer solution and 1.35 mL of 1x PBS solution. The modified rhIL-2 solution was then added. The reaction was kept at room temperature overnight. The conjugate was then purified by transferring the solution to a 5 mL desalting column. The conjugate was concentrated to 0.4 mg / mL (based on rhIL-2 as API). The conjugate was purified by FPLC using pH 4.5 sodium acetate buffer as the mobile phase, and the IL-2 content was determined by Western blot. Micellization of the PEG-PDBA-IL-2 conjugate was performed by blending it with PEG-PDBA and forming micelles by acid-base titration.
[0212] Example 4: Block copolymer covalently conjugated to the small molecule mertansine PEG-PDBA-OPSS Mertansine (DM1) (13.35 mg, 0.018 mmol, 4.1 equiv.) was added to a solution of PEG-PDBA-OPSS (150 mg, 0.00441 mmol, 1.0 equiv.) in 2.5 ml of anhydrous THF / DMF (4 / 1 v:v). (The parent compound used was PEG.) 113 -b-(PDBA 120 The reaction mixture was stirred at 37°C for 20 hours. Purification was performed by diluting the crude reaction mixture to 30 ml with a methanol / water solution (1:1). The solution was transferred to an Amicon Ultra centrifugal membrane device (10k MWCO). The solution was concentrated to approximately 1 ml by centrifugation (2,500 rpm, 40-60 min), and the process was repeated for 5-7 hours. The supernatant from each cycle was analyzed by HPLC to monitor and confirm the complete removal of unconjugated DM1. Once purified, the polymer-DM1 conjugate was pipetted into a vial, and the solvent MeOH / water was removed under a stream of nitrogen, followed by lyophilization. The final product was obtained. 1 Drug loading was determined by characterization by 1 H NMR.
[0213] PEG-PDBA-AMA-DM1 NHS-ester conjugate mertansine (SMCC-DM1) (13.79 mg, 0.0128 mmol, 3.0 equiv.) was added to a solution of PEG-PDBA-AMA (150 mg, 0.00428 mmol, 1.0 equiv.) in 3 mL of anhydrous MeOH. The reaction mixture was stirred at 37 °C for 20 h. Purification was achieved by adding water (3 mL) to the crude reaction mixture, followed by dilution to 15 mL with a methanol / water solution (1:1). The solution was transferred to an Amicon Ultra centrifugal membrane device (10k MWCO). The solution was concentrated to approximately 1 mL by centrifugation (2,500 rpm, 40–60 min), and the process was repeated for 5–7 h. The supernatant from each cycle was analyzed by HPLC to monitor and confirm complete removal of unconjugated DM1. Once purified, the polymer-DM1 conjugate was pipetted into a vial and the solvent MeOH / water was removed under a stream of nitrogen, followed by lyophilization. The final product was purified by RP-HPLC and 1 Characterized by 1 H NMR. 1 NMR was used to determine drug loading by comparing the integrals of the aryl CH (δ 6.75 ppm, 1H) and vinyl CH (δ 4.7 ppm, 1H) from DM1 with the o-methoxy singlet (δ 3.4 ppm, 3H).
[0214] Example 5: General procedure for in vivo tumor mouse model Female NOD scid mice (strain NOD.CB17-Prkdc) approximately 6-8 weeks old were cultured. scid / J ) in 50 μL of 1× PBS in the submandibular triangle. 6 HN5 tumor cells were seeded onto the cells and the tumors were allowed to grow for approximately one week. PEG-PDBA-IL-2 or PEG-PDBA-Fab formulations were prepared with rhIL-2 fluorescently labeled with IRDye® 800CW (LiCOR) and measured by 800CW fluorescence (λ) using a plate reader. Ex 760nm, λ EmDosing was normalized by IR (780 nm). Non-encapsulated fluorescently labeled protein was used as a control. Micelle-IL-2 formulations or protein were administered via tail vein injection. Animals were anesthetized using isoflurane, and in vivo small animal imaging was performed using a Pearl Trilogy (LI-COR) with white light and the 800 nm channel at 1, 3, and 24 hours after test article administration. After the final in vivo imaging time point, animals were sacrificed by CO2 asphyxiation and cervical dislocation, and ex vivo imaging of major organs was performed. Fluorescence was quantified by ROI analysis using ImageStudio software (LI-COR).
[0215] Example 6 General Procedure for In Vitro IL-2 Bioactivity Assay IL-2 bioactivity in the formulations was measured using a thawed and used IL-2 Bioassay (Promega) according to the manufacturer's instructions. IL-2-encapsulated or IL-2-conjugated micelles were evaluated in either the acid-release or encapsulated state in a dose-response assay. Acid release was performed by mixing 20 μL of the formulation with 20 μL of pooled human serum followed by 40 μL of acidic sodium acetate buffer (0.1 M sodium acetate, 0.9% saline, pH approximately 4.5) and incubating for 15 minutes at room temperature, followed by the addition of 40 μL of 20× PBS. For encapsulated samples, the acidic acetate buffer was replaced with neutral acetate buffer (0.1 M sodium acetate, 0.9% saline, pH 7–7.6) and mixed using a similar process. 3-fold serial dilutions of the release or encapsulated formulations were prepared in assay buffer (90% RPMI 1640 / 10% fetal bovine serum). Formulation dilutions (25 μL) were added to wells containing pre-seeded IL-2 bioassay cells in white opaque 96-well or half-well microplates (Corning) according to the manufacturer's recommendations. Assay buffer alone and untreated cells were used as negative controls, while IL-2 alone was used as a positive control. The plates were covered and incubated for 6 hours in a humidified incubator (37°C, 5% CO). After incubation, 75 μL of Bio-Glo reagent (Promega) was added, incubated for 10 minutes, and bioluminescence was read using a plate reader (Tecan M200 Pro). Data were plotted using Prism (GraphPad), and ED50 values were calculated by nonlinear fit.
[0216] Example 7 General Procedure for SDS-PAGE Analysis of Formulations Micelle-IL-2 formulations were evaluated by SDS-PAGE to confirm IL-2 loading and integrity within the micelles. Samples were prepared to target 100–200 ng of protein loaded per lane. For characterization of IL-2-loaded formulation purification by FPLC, the loaded sample constituted the crude formulation without any purification, the spun loaded sample constituted the formulation after purification by high-speed centrifugation to eliminate aggregates and large particles, the micelle pool was prepared by combining fractions containing micelles, and the free IL-2 sample contained the fraction containing unencapsulated protein. Formulation samples were diluted in 4x Laemmli buffer (Bio-Rad) with or without β-mercaptoethanol, depending on the reduction requirement, and denatured at 65°C for 5 min. Samples were loaded onto Any kD™ or 4–20% SDS-PAGE gradient Mini-Protean gels (Bio-Rad) by stacking at 50 V for 30 min followed by separation at 100 V for 90 min. IL-2 detection was performed using Simply Blue Stain (Invitrogen). IL-2 was also determined by Western blot after transfer to a 0.2 μm nitrocellulose membrane by probing with an anti-IL-2 Ab clone (Cell Signaling Technology, Clone D7A5, 1:4000 dilution) followed by an HRP-conjugated anti-rabbit secondary (LI-COR, 1:2000 dilution). Detection was performed with ECL reagent (Pierce), and chemiluminescence was captured with a ChemiDoc MP Imager (Bio-Rad). Image processing and densitometric analysis were performed using ImageLab (Bio-Rad). IL-2 quantification, when required, was performed by fitting to an IL-2 standard curve.
[0217] [Example 8] Treatment method A human subject suffering from cancer (e.g., a solid tumor cancer) is administered a therapeutically effective amount of a therapeutic agent encapsulated by a block copolymer as disclosed herein (e.g., in the form of a micelle) by injection, e.g., intravenous injection, or in the range of 1 mg / kg to 100 mg / kg, e.g., 10 mg / kg to 50 mg / kg.
[0218] While preferred embodiments of the present invention have been shown and described herein, it will be apparent to those skilled in the art that such embodiments are provided by way of example only. Numerous variations, changes, and substitutions will now occur to those skilled in the art without departing from the invention. It should be understood that various alternatives to the embodiments of the invention described herein may be employed in practicing the invention. It is intended that the following claims define the scope of the invention, and that methods and structures within the scope of these claims and their equivalents be covered thereby.
Claims
1. A block copolymer having the structure of formula (I), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Chemistry 1】 (In the formula: n 1 is an integer from 10 to 200; x 1 is an integer from 40 to 300; y 1 is an integer from 0 to 6; z 1 is an integer from 0 to 10; X 1 is halogen, —OH, or —C(O)OH; R 1 and R 2 each independently represents an optionally substituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 is independently hydrogen, acyl, or ICG; L 1 is a bond or —C(O)—, or an optionally substituted C 1 ~C 10 an alkylene linker or a PEG linker; Y is a therapeutic agent.
2. R 1 and R 2 each independently represents an optionally substituted C 1 ~C 6 The block copolymer of claim 1 , wherein the aryl group is alkyl.
3. R 1 and R 2 each independently represents —CH 2 CH 3 , -CH 2 CH 2 CH 3 or -CH 2 CH 2 CH 2 CH 3 3. The block copolymer according to claim 1 or 2, wherein
4. R 1 and R 2 are each -CH 2 CH 2 CH 2 CH 3 The block copolymer according to any one of claims 1 to 3,
5. R 1 and R 2 and the corresponding nitrogens to which they are attached form an optionally substituted 5- to 7-membered ring.
6. R 1 and R 2 together, -CH 2 (CH 2 ) 2 CH 2 -, -CH 2 (CH 2 ) 3 CH 2 - or -CH 2 (CH 2 ) 4 CH 2 The block copolymer according to claim 1 or 5, wherein
7. x 1 The block copolymer according to any one of claims 1 to 6, wherein is an integer from 50 to 200, from 60 to 160, or from 90 to 140.
8. x 1 The block copolymer according to claim 7, wherein is 90 to 140.
9. y 1 The block copolymer of any one of claims 1 to 8, wherein is an integer from 1 to 6, 1 to 5, 1 to 4, or 1 to 3.
10. y 1 The block copolymer according to any one of claims 1 to 8, wherein is 0.
11. z 1 is an integer from 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3.
12. z 1 The block copolymer according to any one of claims 1 to 10, wherein is 0.
13. n 1 The block copolymer according to any one of claims 1 to 12, wherein is an integer from 60 to 150 or from 100 to 140.
14. n 1 The block copolymer according to any one of claims 1 to 12, wherein Mn is 100 to 140.
15. X 1 The block copolymer of any one of claims 1 to 14, wherein is a halogen.
16. X 1 The block copolymer of claim 15, wherein is —Br.
17. Each R 3 is independently acyl or ICG.
18. Each R 3 The block copolymer of any one of claims 1 to 16, wherein is independently hydrogen.
19. L 1 is optionally substituted C 1 ~C 10 19. The block copolymer of any one of claims 1 to 18, wherein the alkylene linker is optionally substituted with a maleimide residue.
20. L 1 19. The block copolymer of claim 1, wherein:
21. L 1 The block copolymer of any one of claims 1 to 18, wherein 【Chemistry 2】 (In the formula, m 1 is between 2 and 200.
22. 2. The block copolymer of claim 1, wherein the block copolymer of formula (I) has the structure of formula (I-a): 【Transformation 3】 (In the formula: m 1 is an integer from 10 to 200; A is a bond or -C(O)- optionally substituted with a maleimide residue.
23. 23. The block copolymer of any one of claims 1 to 22, wherein the therapeutic agent is a cytokine or a fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons.
24. 24. The block copolymer of claim 23, wherein the cytokine is IL-2, IL-12, or IL-15, or a fragment thereof.
25. 24. The block copolymer of claim 23, wherein the cytokine is IL-2 or a fragment thereof.
26. 24. The block copolymer of claim 23, wherein the engineered antibody fragment is a bispecific T cell engager.
27. 24. The block copolymer of claim 23, wherein the small molecule is maytansine or a derivative thereof.
28. A block copolymer having the structure of formula (II), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Chemistry 4】 (In the formula: n 2 is an integer from 2 to 200; x 2 is an integer from 40 to 300; y 2 is an integer from 0 to 6; X 2 is halogen, —OH, or —C(O)OH; R 5 and R 6 each independently represents an optionally substituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 is independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole; L 2 is a bond, or —C(O)—, or an optionally substituted C 1 ~C 10 an alkylene linker or a PEG linker; Y is a therapeutic agent.
29. R 5 and R 6 each independently represents an optionally substituted C 1 ~C 6 30. The block copolymer of claim 28, wherein the alkyl is alkyl.
30. R 5 and R 6 each independently represents —CH 2 CH 3 , -CH 2 CH 2 CH 3 or -CH 2 CH 2 CH 2 CH 3 30. The block copolymer of claim 28 or 29, wherein
31. R 5 and R 6 are each -CH 2 CH 2 CH 2 CH 3 The block copolymer according to any one of claims 28 to 30,
32. R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring.
33. R 5 and R 6 together, -CH 2 (CH 2 ) 2 CH 2 -, -CH 2 (CH 2 ) 3 CH 2 - or -CH 2 (CH 2 ) 4 CH 2 The block copolymer according to claim 28 or 32, wherein
34. x 2 is an integer from 50 to 200, from 60 to 160, or from 90 to 140.
35. x 2 The block copolymer according to claim 34, wherein is 90 to 140.
36. y 2 is an integer from 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3.
37. y 2 The block copolymer according to any one of claims 28 to 36, wherein is 0.
38. n 2 The block copolymer according to any one of claims 28 to 37, wherein is an integer from 60 to 150 or from 100 to 140.
39. n 2 The block copolymer of claim 38, wherein is 100 to 140.
40. X 2 The block copolymer of any one of claims 28 to 39, wherein is a halogen.
41. X 2 The block copolymer of claim 40, wherein is -Br.
42. Each R 7 is independently acyl or ICG.
43. Each R 7 The block copolymer of any one of claims 28 to 41, wherein is independently hydrogen.
44. Z 1 The block copolymer of any one of claims 28 to 43, wherein is -O-.
45. Z 1 The block copolymer of any one of claims 28 to 43, wherein is -NH-.
46. Z 2 The block copolymer according to any one of claims 28 to 45, wherein is -O- or -NH-.
47. Z 2 The block copolymer of any one of claims 28 to 46, wherein is an optionally substituted triazole residue.
48. L 2 is optionally substituted C 1 ~C 10 48. The block copolymer of any one of claims 28 to 47, wherein the alkylene linker is optionally substituted with a maleimide residue.
49. L 2 is an optionally substituted PEG linker, optionally substituted with a maleimide residue.
50. L 2 but, 【Transformation 5】 (In the formula, m 2 is between 2 and 200.) The block copolymer according to any one of claims 28 to 48, wherein
51. 29. The block copolymer of claim 28, wherein the block copolymer of formula (II) has the structure of formula (II-a): 【Transformation 6】 (In the formula: m 2 is 2 to 200; A is a bond or -C(O)- optionally substituted with a maleimide residue.
52. 52. The block copolymer of any one of claims 28 to 51, wherein the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons.
53. 53. The block copolymer of claim 52, wherein the cytokine is IL-2, IL-12, or IL-15, or a fragment thereof.
54. 53. The block copolymer of claim 52, wherein the cytokine is IL-2 or a fragment thereof.
55. 53. The block copolymer of claim 52, wherein the engineered antibody fragment is a bispecific T cell engager.
56. 53. The block copolymer of claim 52, wherein the small molecule is maytansine or a derivative thereof.
57. 57. The block copolymer of any one of claims 1 to 56, in the form of a micelle.
58. Micelles containing: (i) A block copolymer of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Transformation 7】 (In the formula: n 3 is an integer from 10 to 200; x 3 is an integer from 40 to 300; y 3 is an integer from 0 to 6; z 3 is an integer from 0 to 10; X 3 is halogen, —OH, or —C(O)OH; Each R 10 is independently hydrogen or ICG; R 8 and R 9 each independently represents an optionally substituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 8 and R 9 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; and (ii) A therapeutic agent encapsulated by a block copolymer.
59. R 8 and R 9 each independently represents an optionally substituted C 1 ~C 6 59. The micelle of claim 58, wherein the alkyl is alkyl.
60. R 8 and R 9 each independently represents —CH 2 CH 3 , -CH 2 CH 2 CH 3 or -CH 2 CH 2 CH 2 CH 3 60. The micelle of claim 58 or 59,
61. R 8 and R 9 are each -CH 2 CH 2 CH 2 CH 3 The micelle according to any one of claims 58 to 60,
62. R 8 and R 8 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring.
63. R 8 and R 9 together, -CH 2 (CH 2 ) 2 CH 2 -, -CH 2 (CH 2 ) 3 CH 2 - or -CH 2 (CH 2 ) 4 CH 2 - 63. The micelle of claim 58 or 62.
64. x 3 is an integer from 50 to 200, 60 to 160, or 90 to 140.
65. x 3 The micelle of claim 64, wherein is 90 to 140.
66. y 3 is an integer from 1 to 6, 1 to 5, 1 to 4, or 1 to 3.
67. y 3 A micelle according to any one of claims 58 to 65, wherein is 0.
68. z 3 is an integer from 1 to 9, 1 to 8, 1 to 7, 1 to 6, 1 to 5, 1 to 4, or 1 to 3.
69. z 3 67. The micelle of any one of claims 58 to 66, wherein is 0.
70. n 3 is an integer from 60 to 150 or from 100 to 140.
71. n 3 The micelle described in claim 66, wherein is 100 to 140.
72. X 3 72. The micelle of any one of claims 58 to 71, wherein is a halogen.
73. X 3 73. The micelle of claim 72, wherein is -Br.
74. 74. The micelle of any one of claims 58 to 73, wherein the therapeutic agent is a cytokine or fragment thereof, an engineered antibody fragment, or a small molecule having a molecular weight of less than 900 daltons.
75. 75. The micelle of claim 74, wherein the therapeutic agent is a cytokine or a fragment thereof.
76. The micelle of claim 75, wherein the cytokine is IL-2, IL-12, or IL-15, or a fragment thereof.
77. The micelle of claim 75, wherein the cytokine is IL-2 or a fragment thereof.
78. 75. The micelle of claim 74, wherein the engineered antibody fragment is a bispecific T cell engager or fragment thereof.
79. 75. The micelle of claim 74, wherein the small molecule is maytansine or a derivative thereof.
80. Micelles containing: (i) A block copolymer of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Transformation 8】 (In the formula: n 3 is an integer from 10 to 200; x 3 is an integer from 40 to 300; y 3 is an integer from 0 to 6; z 3 is an integer from 0 to 10; X 3 is halogen, —OH, or —C(O)OH; R 8 and R 9 each independently represents an optionally substituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 8 and R 9 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 10 is independently hydrogen or ICG; and (ii) a block copolymer according to any one of claims 1 to 27; or a block copolymer according to any one of claims 28 to 56.
81. Micelles containing: (i) A block copolymer of formula (III), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Chemistry 9】 (In the formula: n 3 is an integer from 10 to 200; x 3 is an integer from 40 to 300; y 3 is an integer from 0 to 6; z 3 is an integer from 0 to 10; X 3 is halogen, —OH, or —C(O)OH; Each R 10 is independently hydrogen or ICG; R 8 and R 9 each independently represents an optionally substituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 8 and R 9 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; (ii) a block copolymer according to any one of claims 1 to 27; and (iii) A block copolymer according to any one of claims 28 to 56.
82. 82. The micelle of claim 80 or 81, wherein the ratio of the block copolymer of formula (III) to the block copolymer of any one of claims 1 to 27 or any one of claims 28 to 56 is from 1:99 to 99:1, or any ratio therein.
83. 79. The pH responsive composition of any one of claims 58 to 78, having a pH transition point and optionally an emission spectrum.
84. 83. The pH responsive composition of any one of claims 79 to 82, having a pH transition point and optionally an emission spectrum.
85. 85. The pH-responsive composition of claim 83 or 84, wherein the pH transition point is between 4 and 8, 6 and 7.5, or 4.5 and 5.
5.
86. 85. The pH-responsive composition of claim 83 or 84, having a pH response of less than 0.25 or 0.15 pH units.
87. The pH-responsive composition according to claims 83 to 84, wherein the emission spectrum is between 700 and 900 nm.
88. 80. A method for treating cancer in a patient in need thereof, comprising administering to the patient a therapeutically effective amount of a micelle of any one of claims 58 to 78.
89. 89. The method of claim 88, wherein the cancer is a solid tumor.
90. 90. The method of claim 88 or 89, wherein the cancer is breast cancer, cervical cancer, head and neck squamous cell carcinoma (NHSCC), peritoneal metastasis, lung cancer, ovarian cancer, pancreatic cancer, prostate cancer, bladder cancer, kidney cancer, urethral cancer, esophageal cancer, colorectal cancer, brain cancer or skin cancer.
91. A block copolymer having a structure of formula (I-b), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Chemistry 10】 (In the formula: n 1 is an integer from 10 to 200; x 1 is an integer from 40 to 300; y 1 is an integer from 0 to 6; z 1 is an integer from 0 to 10; X 1 is halogen, —OH, or —C(O)OH; R 1 and R 2 are each independently a substituted or unsubstituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 1 and R 2 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 3 is independently hydrogen, acyl, or ICG; L 3 is a bond, C 1 ~C 10 an alkylene linker or a PEG linker; B is maleimide, 【Chemistry 11】 ). 【Request Item 92】 【Chemistry 12】 (In the formula, m 1 is between 2 and 200.) 92. The block copolymer of claim 91, wherein:
93. A block copolymer having a structure of formula (II-b), or a pharmaceutically acceptable salt, solvate, or hydrate thereof: 【Chemistry 13】 (In the formula: n 2 is an integer from 2 to 200; x 2 is an integer from 40 to 300; y 2 is an integer from 0 to 6; X 2 is halogen, —OH, or —C(O)OH; R 5 and R 6 are each independently a substituted or unsubstituted C 1 ~C 6 Alkyl, C 3 ~C 10 is cycloalkyl or aryl; or R 5 and R 6 taken together with the corresponding nitrogen to which they are attached form an optionally substituted 5- to 7-membered ring; Each R 7 is independently hydrogen, acyl, or ICG; Z 1 is —NH— or —O—; Z 2 is —NH—, —O—, or a substituted triazole; L 4 is a bond, C 1 ~C 10 an alkylene linker or a PEG linker; B is maleimide, 【Chemistry 14】 ). 【Request Item 94】 【Chemistry 15】 【change】 【change】 (In the formula, m 2 is between 2 and 200.) 94. The block copolymer of claim 93, wherein: