Peptide pet / spect probes specific to oncoproteins in tumor extracellular matrix

JP2025063147A5Pending Publication Date: 2025-10-07CASE WESTERN RESERVE UNIV
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2025003824
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-01-17
Filing Date
2025-01-10
Publication Date
2025-10-07

AI Technical Summary

Technical Problem

The prior art is difficult to effectively distinguish between cancer cells and normal cells, especially in early diagnosis and treatment, and there is a lack of imaging tools that can specifically label tumor cells.

Method used

A peptide-based positron emission tomography (PET)/single-photon emission computed tomography (SPECT) probe with specific amino acid sequences was developed, which specifically binds to specific molecules in the extramatrix matrix matrix of tumor-associated proteins and cancer cells.

Benefits of technology

By using these probes, the distribution and invasiveness of cancer cells can be effectively detected, the specificity and sensitivity of treatment can be improved, and the unspecific side effects of chemotherapy on systemic cells can be reduced.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2025063147000001
    Figure 2025063147000001
Patent Text Reader

Abstract

To provide peptide positron emission tomography (PET) / single photon emission computed tomography (SPECT) probes to oncoproteins in tumor and / or cancer extracellular matrix.SOLUTION: A PET / SPECT probe includes the following formula: P-L-C, where P is an EDB-FN targeting peptide, C is a PET / SPECT contrast agent; and L is an optional linker that covalently links the peptide to the contrast agent.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 62 / 793,789, filed January 17, 2019, the subject matter of which is incorporated herein by reference in its entirety.

[0002] government funds This invention was made with Government support under Grant Nos. CA211762 and CA194518 awarded by the National Institutes of Health (NIH). The United States Government has certain rights in this invention. [Background technology]

[0003] Cancer detection and treatment are hindered by the inability to distinguish between cancer cells and normal cells. Better detection tools for cancer or tumor imaging are needed for early cancer diagnosis. Molecular recognition of tumor cells would facilitate guided surgical resection. To improve surgical resection, targeted imaging tools must specifically label tumor cells not only in the main tumor but also along the edges of the tumor and in small tumor cell clusters dispersed throughout the body. Targeted imaging tools designed to label molecules that accumulate in the tumor microenvironment could also be effective as therapeutic targeting agents, as they could identify both the main tumor cell population and areas with infiltrating cells responsible for tumor recurrence. The ability to directly target tumor cells and / or their microenvironment would increase both the specificity and sensitivity of current treatments, thus reducing the non-specific side effects of chemotherapeutic agents that affect cells throughout the body.

[0004] Positron emission tomography (PET) imaging has been used to identify prostate cancer cells, primarily based on their elevated glucose metabolism compared to normal tissue. 18 F]-FDG has been used in clinical testing for prostate cancer. 18[F]-FDG PET has not demonstrated the ability to distinguish benign prostate cancer from aggressive ones. PSMA-specific PET probes have been recently developed for prostate cancer. Clinical trials have demonstrated the ability of PSMA probes in effectively detecting PSMA-positive prostate tumors. However, recent trials have cautioned that PSMA probes may not be able to distinguish benign tissue from prostate cancer. PET probes are needed to detect and risk stratify aggressive cancers and fulfill the clinical demand for a noninvasive diagnostic modality for accurate clinical management of cancer. Summary of the Invention

[0005] Embodiments described herein relate to peptide positron emission tomography (PET) / single photon emission computed tomography (SPECT) probes for oncoproteins in tumor and / or cancer extracellular matrix, which can be used to detect the location and / or distribution of cancer in a subject's tissue, the aggressiveness of cancer in a subject, and / or the efficacy of cancer treatments and / or therapies administered to a subject in need thereof.

[0006] In some embodiments, the PET / SPECT probe may comprise the formula: [ka] wherein P is a peptide comprising an amino acid sequence selected from the group consisting of SEQ ID NO:1, SEQ ID NO:2, SEQ ID NO:3, SEQ ID NO:4, SEQ ID NO:5, SEQ ID NO:6, SEQ ID NO:7, SEQ ID NO:8, SEQ ID NO:9, SEQ ID NO:19, SEQ ID NO:20, SEQ ID NO:21, SEQ ID NO:22, SEQ ID NO:23, SEQ ID NO:24, and retro-inverso amino acid sequences thereof; C is a PET or SPECT imaging agent; and L is an optional linker that covalently attaches the peptide to the PET / SPECT imaging agent.

[0007] In some embodiments, the linker is a non-peptide linker. The non-peptide linker can be a non-peptide aliphatic, heteroaliphatic, cyclic, and / or heterocyclic linker. The non-peptide linker can include, for example, an alkylene, alkylene oxide, arylene, or alkylenearylene linker that covalently bonds the peptide to the imaging agent.

[0008] The PET / SPECT imaging agent may include at least one of a metal chelator or a metallofullerene and a positron or gamma ray emitting radionuclide. Examples of metal chelating agents include diethylenetriaminepentaacetic acid (DTPA), 1,4,7,10-tetraazadodecanetetraacetic acid (DOTA), 1,4,7,10-tetraazadodecane-1,4,7-triacetic acid (DO3A), ethylenediaminetetraacetic acid (EDTA), 1,4,7,10-tetraazacyclotridecanetetraacetic acid (TRITA), 1,4,8,11-tetraazacyclotetradecane-1,4,8,11-tetraacetic acid (TETA), 1,4,7,10-tetraazadodecanetetramethylacetic acid (DOTMA), 1,4,7,10-tetraazadodecane-1,4,7-trimethylacetic acid (DO3MA), N,N',N'',N'''-tetraphosphonatomethyl-1,4,7,10-tetraaza The positron or gamma ray emitting radionuclide may include at least one of the following: 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetrakis(methylene methylphosphonic acid) (DOTMP), 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetrakis(methylene phenylphosphonic acid) (DOTPP), N,N'-ethylenedi-L-cysteine, 1,4,7-triazacyclononane-1,4,7-triacetic acid (NOTA), 1,4,7-triazacyclononane (TACN), N,N'-bis(2-hydroxy-5-(ethylene-beta-carboxy)benzyl)ethylenediamineN,N'-diacetic acid (HBED-CC), and derivatives thereof. The positron or gamma ray emitting radionuclide may include, for example, 67 Ga, 68 Ga, 64 Cu, 99m Tc, 111 In, 89Zr, 90 Y, 153 Sm, or 89 It may contain Sr.

[0009] In some embodiments, the PET / SPECT probe can have the formula: [ka] During the ceremony, P 1 is selected from the group consisting of SEQ ID NO:1, SEQ ID NO:2, SEQ ID NO:3, SEQ ID NO:4, SEQ ID NO:5, SEQ ID NO:6, SEQ ID NO:7, SEQ ID NO:8, SEQ ID NO:9, SEQ ID NO:19, SEQ ID NO:20, SEQ ID NO:21, SEQ ID NO:22, SEQ ID NO:23, SEQ ID NO:24, and retro-inverso amino acid sequences thereof; R 1 is optional and, if present, is -(CH 2 ) n -, -(OCH 2 CH 2 ) n or arylene, alkylene oxide, arylene, or alkylenearylene linkers, where n is an integer from 1 to 18; M is 67 Ga, 68 Ga, 64 Cu, 99m Tc, 111 In, 89 Zr, 90 Y, 153 Sm, or 89 Sr, or a salt thereof.

[0010] In yet another embodiment, the PET / SPECT probe can be administered to the subject systemically to detect the distribution and / or location of cancer in the subject, and the aggressiveness of cancer.Cancer can include, for example, at least one of breast cancer, liver cancer, stomach cancer, colon cancer, pancreatic cancer, ovarian cancer, lung cancer, kidney cancer, prostate cancer, testicular cancer, glioblastoma, sarcoma, bone cancer, brain cancer, head and neck cancer, or skin cancer. [Brief description of the drawings]

[0011] [Figure 1] 1 illustrates a schematic showing the synthesis of ZD2-DA-(64Cu-DOTA). [Diagram 2] Macroscopic bright field and 3D volume-rendered PET / CT images of two representative mice bearing LNCaP and PC3 tumors are shown at 4 and 22 hours after injection of ZD2-DA-(64Cu-DOTA). [Diagram 3] Quantitative tracer uptake in muscle, liver, heart, and LNCaP and PC3 tumors is shown at 4 and 22 hours after ZD2-DA-64Cu(DOTA) injection (N=4). [Figure 4] Graph showing the biodistribution of ZD2-DA-(64Cu-DOTA) in different tissues 24 hours after injection. Data are expressed as mean ± sem (N = 3). [Diagram 5] Images showing immunofluorescence staining of EDB-FN in LNCaP and PC3 prostate tumor sections are shown. Scale bar: 50 μm. [Figure 6] A schematic showing the synthesis procedure of ZD2-(Ga-NOTA) (4) is shown. [Figure 7] (A-B) show western blots (A) and fluorescent confocal images (B) showing the expression of EDB-FN in BXPC3, Capan-1, Panc10.05, and Panc-1 human pancreatic cancer cells (A) and tumor xenografts in mice (B). Tissue slides are stained with BC-1 anti-EDB-FN monoclonal antibody and secondary antibodies labeled with AF-488 and DAPI. [Figure 8] 1 shows images showing specific binding of ZD2-Cy5.5 to EDB-FN in BXPC3, Capan-1, Panc10.05, and Panc-1 human pancreatic cancer xenograft specimens. The BC-1 / ZD2 column indicates that binding of ZD2-Cy5.5 was blocked by preincubation of the specimens with the BC-1 antibody. [Figure 9]Fluorescence images showing the binding patterns of ZD2-Cy5.5 with EDB-FN in human pancreatic cancer, pancreatic intraepithelial neoplasia, and normal pancreas specimens are shown. [Figure 10] Two-dimensional coronal PET / CT images of mice bearing Capan-1 and BXPC3 human pancreatic cancer xenografts at 1 and 2 hours after intravenous injection of ZD2-(68Ga-NOTA) at a dose of 300 μCi / mouse. T: tumor, B: bladder. [Figure 11] Three-dimensional PET images of mice bearing Capan-1 and BXPC3 human PaCa xenografts 1 hour after intravenous injection of ZD2-(68Ga-NOTA) at a dose of 300 μCi / mouse. T: tumor, K: kidney, B: bladder. [Figure 12] 1 shows a schematic showing the synthesis of ZD2-HBED-CC. [Figure 13] 1 shows a schematic illustrating the synthesis of ZD2-AH-HBED-CC. [Figure 14] A schematic showing the synthesis of ZD2-(Ga-HBED-CC) is shown. [Figure 15] 1 shows a schematic illustrating the synthesis of ZD2-AH-(Ga-HBED-CC). [Figure 16] PET / CT images of ZD2-(68Ga-HBED-CC) of mice bearing BXPC3 and Capan-1 human pancreatic tumor xenografts are shown. [Figure 17] PET / CT images of ZD2-AH-(68Ga-HBED-CC) of mice bearing BXPC3 and Capan-1 human pancreatic tumor xenografts are shown. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] Methods including conventional molecular biology techniques are described herein. Such techniques are generally known in the art and are described in detail in methodological treatises such as Current Protocols in Molecular Biology, ed. Ausubel et al., Greene Publishing and Wiley-Interscience, New York, 1992 (with periodic updates). Unless otherwise defined, all technical terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs. Commonly understood definitions of molecular biology terms can be found, for example, in Rieger et al., Glossary of Genetics, Classical and Molecular, 5th Edition, Springer-Verlag: New York, 1991, and Lewin, Genes V, Oxford University Press: New York, 1994.

[0013] The articles "a" and "an" are used herein to refer to one or to more than one (i.e., to at least one) of the grammatical object of the article. By way of example, "an element" means one element or more than one element.

[0014] The terms "comprise," "comprising," "include," "including," "having," and "having" are used in an inclusive and open sense, meaning that additional elements may be included. As used herein, the terms "such as," "for example," and "for example" are non-limiting and for illustration purposes only. "Including" and "including but not limited to" are used interchangeably.

[0015] As used herein, the term "or" should be understood to mean "and / or" unless the context clearly dictates otherwise.

[0016] The term "agent" is used herein to denote a chemical compound, a mixture of chemical compounds, a biological macromolecule, or an extract of biological material.

[0017] The term "cancer" or "tumor" refers to any neoplastic growth in a subject, including primary tumors and any metastases. Cancer can be liquid or solid tumor type. Liquid tumors include tumors of hematological origin, such as myeloma (e.g., multiple myeloma), leukemia (e.g., Waldenstrom's syndrome, chronic lymphocytic leukemia, other leukemias), and lymphomas (e.g., B-cell lymphoma, non-Hodgkin's lymphoma). Solid tumors can occur in organs, including cancer of the lung, brain, breast, prostate, ovary, colon, kidney, and liver.

[0018] The term "cancer cell" or "tumor cell" can refer to a cell that divides at an abnormal (i.e., increased) rate. Cancer cells include carcinomas such as squamous cell carcinoma, non-small cell carcinoma (e.g., non-small cell lung carcinoma), small cell carcinoma (e.g., small cell lung carcinoma), basal cell carcinoma, sweat gland carcinoma, sebaceous gland carcinoma, adenocarcinoma, papillary carcinoma, papillary adenocarcinoma, cystadenocarcinoma, medullary carcinoma, undifferentiated carcinoma, bronchogenic carcinoma, melanoma, renal cell carcinoma, hepatocellular carcinoma, cholangiocarcinoma, cholangiocarcinoma, papillary carcinoma, transitional cell carcinoma, choriocarcinoma, semonoma, embryonal carcinoma, breast cancer, gastrointestinal cancer, colon cancer, bladder cancer, pancreatic cancer, prostate cancer, and squamous cell carcinoma of the head and neck region; fibrosarcoma, myxosarcoma, liposarcoma, chondrosarcoma, osteosarcoma, chordosarcoma, angiosarcoma, endothelial sarcoma, lymphosarcoma, leukocyte sarcoma, lymphoma, and lymphoma. sarcomas, such as lymphangiosarcoma, synovial sarcoma, and mesothelioma; hematological cancers, such as myeloma, leukemia (e.g., acute myeloid leukemia, chronic lymphocytic leukemia, granulocytic leukemia, monocytic leukemia, lymphocytic leukemia), lymphoma (e.g., follicular lymphoma, mantle cell lymphoma, diffuse large B-cell lymphoma, malignant lymphoma, plasmacytoma, reticulum cell sarcoma, or Hodgkin's disease), and tumors of the nervous system, including glioma, glioblastoma multiforme, meningioma, medulloblastoma, schwannoma, and epidermoidoma.

[0019] The term "isolated" as used herein with respect to a nucleic acid, such as DNA or RNA, or an amino acid, refers to a molecule that is separated from other DNA, or RNA, polypeptides, or proteins, respectively, present in the natural source of the macromolecule. The term isolated as used herein also refers to a nucleic acid or peptide that is substantially free of cellular material, or culture medium if produced by recombinant DNA technology, or chemical precursors or other chemicals if chemically synthesized. Furthermore, an "isolated nucleic acid" or an "isolated peptide" refers to a nucleic acid fragment or peptide fragment that is not naturally occurring as a fragment and would not be found in the natural state.

[0020] The term "nucleic acid" refers to polynucleotides such as deoxyribonucleic acid (DNA), and, where appropriate, ribonucleic acid (RNA). The term should also be understood to include, as equivalents, analogs of RNA or DNA made from nucleotide analogs, and, as applicable to the embodiments being described, single-stranded (such as sense or antisense) and double-stranded polynucleotides.

[0021] The terms "polynucleotide sequence" and "nucleotide sequence" are also used interchangeably herein.

[0022] The phrases "parenteral administration" and "administered parenterally" refer to It is an art-recognized term and includes methods of administration other than enteral and topical administration, such as injection, including, but not limited to, intravenous, intramuscular, intrapleural, intravascular, intrapericardial, intraarterial, intrathecal, intracapsular, intraorbital, intracardiac, intradermal, intraperitoneal, intratracheal, subcutaneous, subcuticular, intraarticular, subcapsular, subarachnoid, intraspinal and intrasternal injection and infusion.

[0023] The terms "patient," "subject," "mammalian host," and the like are used interchangeably herein and refer to mammals, including human and veterinary subjects.

[0024] The term "polypeptide" refers to a polymer consisting of amino acid residues related to naturally occurring structural variants and synthetic non-naturally occurring analogs thereof linked via peptide bonds or modified peptide bonds (i.e., peptide isosteres), related naturally occurring structural variants and synthetic non-naturally occurring analogs thereof, glycosylated polypeptides, and all "mimetic" and "peptidomimetic" polypeptide forms. Synthetic polypeptides can be synthesized, for example, using automated polypeptide synthesizers. The term can refer to oligopeptide, peptide, polypeptide, or protein sequences, or to fragments, portions, or subunits of any of these. The term "protein" usually refers to large polypeptides. The term "peptide" usually refers to short polypeptides.

[0025] A "portion" of a polypeptide or protein means at least about 3 consecutive amino acid residues of the polypeptide. It is understood that a portion of a polypeptide can include all of the amino acid residues of the polypeptide.

[0026] "Mutants," "derivatives," and "variants" of a polypeptide (or the DNA encoding it) are polypeptides that may be altered or changed at one or more amino acids (or one or more nucleotides) such that the peptide (or nucleic acid) is not identical to the wild-type sequence, but has homology to the wild-type polypeptide (or nucleic acid).

[0027] A "mutation" of a polypeptide (or the DNA encoding it) is an alteration or modification of one or more amino acids (or one or more nucleotides) such that the peptide (or nucleic acid) is not identical to a sequence recited herein, but has homology to the wild-type polypeptide (or nucleic acid).

[0028] As used herein, "recombinant" means that the protein is derived from a prokaryotic or eukaryotic expression system.

[0029] As used herein, the phrases "systemic administration," "administered systemically," "peripheral administration," and "administered peripherally" refer to administration of a compound, agent, or other substance not directly to a particular tissue, organ, or area of ​​the subject being treated (e.g., the brain), where it enters the animal's system and is subject to metabolic and other similar processes, e.g., subcutaneous administration.

[0030] The term "wild-type" refers to a naturally occurring polynucleotide sequence encoding a protein or a portion thereof, or a protein sequence or a portion thereof, respectively, as normally occurs in vivo.

[0031] Throughout this specification, when a composition is described as having, including, or comprising certain components, it is contemplated that the composition also consists essentially of or consists of the recited components. Similarly, when a method or process is described as having, including, or comprising certain process steps, the process also consists essentially of or consists of the recited processing steps. Furthermore, it is to be understood that the order of steps or the order for performing certain operations is not important so long as the compositions and methods described herein are operable. Moreover, two or more steps or operations can be performed simultaneously.

[0032] Embodiments described herein relate to peptide positron emission tomography (PET) / single photon emission computed tomography (SPECT) probes for oncoproteins in tumors and / or cancer extracellular matrix that can be used to detect, monitor, and / or image the distribution and / or location of cancer in a subject, and / or metastasis, migration, and / or invasion of cancer cells, to detect and / or monitor the aggressiveness and / or malignancy of cancer cells in a subject, and / or to determine and / or monitor the effectiveness of cancer treatments and / or therapies administered to a subject in need of cancer treatments and / or therapies.

[0033] The PET / SPECT probes described herein include targeting peptides having peptide sequences that specifically bind and / or complex with oncofetal fibronectin (onfFN) isoforms, extra domain-B fibronectin (EDB-FN), or extra domain-A fibronectin (EDA-FN). Cancers, particularly malignant cancers, have unique tumor microenvironments that promote cancer cell survival, proliferation, and metastasis. The presence of onfFN has been observed in various human cancer types, including prostate cancer, breast cancer, and pancreatic cancer. High expression of onfFN, EDB-FN, and / or EDA-FN correlated with cancer aggressiveness and inversely correlated with patient survival. It has been found that PET / SPECT probes containing targeting peptides that specifically bind to EDB-FN and / or EDB-FN can be used to detect, monitor, and / or image cancer cells in tissues of interest, as well as to determine the aggressiveness, malignancy, metastasis, migration, dispersion, and / or invasion of cancer cells.

[0034] PET / SPECT probes containing targeting peptides can be administered systemically to a subject, such as by intravenous or parenteral administration, and can readily target the extracellular matrix proteins EDB-FN and / or EDA-FN to define the location, distribution, and / or aggressiveness of cancer cells in a subject, as well as tumor margins.

[0035] In some embodiments, the PET / SPECT probe may comprise the formula: [ka] where P is a targeting peptide, C is a PET / SPECT imaging agent, and L is an optional linker that covalently attaches the peptide to the imaging agent.

[0036] In some embodiments, the targeting peptide is capable of specifically binding to EDB-FN. Targeting peptides that specifically bind to EDB-FN can include linear peptides having the amino acid sequences of TVRTSAD (SEQ ID NO:1), NWGDRIL (SEQ ID NO:2), NWGKPIK (SEQ ID NO:3), SGVKSAF (SEQ ID NO:4), GVKSYNE (SEQ ID NO:5), IGKTNTL (SEQ ID NO:6), IGNSNTL (SEQ ID NO:7), IGNTIPV (SEQ ID NO:8), and LYANSPF (SEQ ID NO:9), cyclic peptides having the amino acid sequences of CTVRTSADC (SEQ ID NO:10), CNWGDRILC (SEQ ID NO:11), CNWGKPIKC (SEQ ID NO:12), CSGVKSAFC (SEQ ID NO:13), CGVKSYNEC (SEQ ID NO:14), CIGKTNTLC (SEQ ID NO:15), CIGNSNTLC (SEQ ID NO:16), CIGNTIPVC (SEQ ID NO:17), or CLYANSPFC (SEQ ID NO:18), linear peptides with cysteine ​​linkers, or retro-inverso peptides having the retro-inverso amino acid sequences of those linear peptides.

[0037] In other embodiments, the targeting peptide can specifically bind to EDA-FN. The targeting peptide that specifically binds to EDA-FN can include linear peptides having the amino acid sequence of WNYPFRL (SEQ ID NO: 19), SNTSYVN (SEQ ID NO: 20), SFSYTSG (SEQ ID NO: 21), WSPAPMS (SEQ ID NO: 22), TREHPAQ (SEQ ID NO: 23), or ARIIDNA (SEQ ID NO: 24), cyclic peptides having the amino acid sequence of CWNYPFRLC (SEQ ID NO: 25), CSNTSYVNC (SEQ ID NO: 26), CSFSYTSGC (SEQ ID NO: 27), CWSPAPMSC (SEQ ID NO: 28), CTREHPAQC (SEQ ID NO: 29), or CARIIDNAC (SEQ ID NO: 30), linear peptides with cysteine ​​linkers, or retro-inverso peptides having the retro-inverso amino acid sequences of these linear peptides.

[0038] The targeting peptide may be subjected to various modifications, substitutions, insertions and deletions, and such modifications provide certain advantages in its use. In this regard, the targeting peptide that binds and / or complexes with EDB-FN and / or EDA-FN may be substantially homologous rather than identical to the sequence of the recited peptide, and one or more modifications are made, which maintain the ability to function to specifically bind and / or complex with EDB-FN and / or EDA-FN.

[0039] The targeting peptide can be any of a variety of forms of polypeptide derivatives, including amides, conjugates with proteins, cyclized polypeptides, polymerized polypeptides, retro-inverso peptides, analogs, fragments, chemically modified polypeptides, and similar derivatives.

[0040] Retro-inverso peptides are linear peptides in which the amino acid sequence is reversed and the chirality of the α-center of the amino acid subunits is also reversed. These types of peptides are designed by including D-amino acids in the reverse sequence to maintain a similar side chain topology as the original L-amino acid peptides and help make them more resistant to proteolysis. D-amino acids display the conformational mirror image of the natural L-amino acids present in natural proteins present in biological systems. Peptides containing D-amino acids have advantages over peptides containing only L-amino acids. In general, these types of peptides are less susceptible to proteolysis and have a longer shelf life when used. Furthermore, the insertion of D-amino acids in selected sequence regions as only D-amino acids or sequence blocks containing L-amino acids in the middle allows for the design of targeted peptides that are bioactive and have increased bioavailability in addition to being resistant to proteolysis. Furthermore, when properly designed, retro-inverso peptides can have similar binding properties as L-peptides.

[0041] The term "analog" includes any peptide having substantially the same amino acid residue sequence as specifically set forth herein, in which one or more residues are conservatively replaced with a functionally similar residue and which specifically binds and / or complexes with EDB-FN and / or EDA-FN as described herein. Examples of conservative substitutions include the replacement of one non-polar (hydrophobic) residue, such as isoleucine, valine, leucine, or methionine, with another, the replacement of one polar (hydrophilic) residue, such as between arginine and lysine, between glutamine and asparagine, between glycine and serine, the replacement of one basic residue, such as lysine, arginine, or histidine, with another, or the replacement of one acidic residue, such as aspartic acid or glutamic acid, with another.

[0042] The phrase "conservative substitution" also includes the use of a chemically derivatized residue in place of a non-derivatized residue, provided that such a peptide exhibits the requisite binding activity.

[0043] "Chemical derivative" refers to a subject peptide having one or more residues that are chemically derivatized by reaction of a functional side group. Such derivatized molecules include, for example, molecules in which free amino groups are derivatized to form amine hydrochlorides, p-toluenesulfonyl groups, carbobenzoxy groups, t-butyloxycarbonyl groups, chloroacetyl groups, or formyl groups. Free carboxyl groups may be derivatized to form salts, methyl and ethyl esters, or other types of esters or hydrazides. Free hydroxyl groups may be derivatized to form O-acyl or O-alkyl derivatives. The imidazole nitrogen of histidine may be derivatized to form N-benzylhistidine. Chemical derivatives also include polypeptides that contain one or more naturally occurring amino acid derivatives of the 20 standard amino acids. For example, 4-hydroxyproline may be substituted for proline, 5-hydroxylysine may be substituted for lysine, 3-methylhistidine may be substituted for histidine, homoserine may be substituted for serine, and ornithine may be substituted for lysine. The peptides described herein also include any peptide whose sequence has one or more additions and / or deletions or residues relative to the sequences of the peptides shown herein, so long as the required binding specificity or activity is maintained.

[0044] The term "fragment" refers to any subject peptide having an amino acid residue sequence shorter than that of the polypeptides depicted herein.

[0045] Any polypeptide or compound can also be used in the form of pharmaceutically acceptable salt.The acid that can form salt with polypeptide includes inorganic acids such as trifluoroacetic acid (TFA), hydrochloric acid (HCl), hydrobromic acid, perchloric acid, nitric acid, thiocyanic acid, sulfuric acid, phosphoric acid, propionic acid, glycolic acid, lactic acid, pyruvic acid, oxalic acid, malonic acid, succinic acid, maleic acid, fumaric acid, anthranilic acid, cinnamic acid, naphthalenesulfonic acid, sulfanilic acid, etc.

[0046] Bases that can form salts with the polypeptide include inorganic bases such as sodium hydroxide, ammonium hydroxide, potassium hydroxide, and organic bases such as mono-, di-, and tri-alkyl and aryl-amines (e.g., triethylamine, diisopropylamine, methylamine, dimethylamine, and the like) and optionally substituted ethanolamines (e.g., ethanolamine, diethanolamine, and the like).

[0047] The targeting peptide can be synthesized by any of the techniques known to those skilled in the art of polypeptides, including recombinant DNA techniques. Synthetic chemistry techniques, such as solid-phase Merrifield-type synthesis, can be used for reasons such as purity, antigen specificity, freedom from undesired by-products, ease of manufacture, etc. Summaries of the many techniques available are given in, for solid phase peptide synthesis, Steward et al., "Solid Phase Peptide Synthesis", W.H. Freeman Co., San Francisco, 1969; Bodanszky, et al., "Peptide Synthesis", John Wiley & Sons, Second Edition, 1976; J. Meienhofer, "Hormonal Proteins and Peptides", Vol. 2, p. 46, Academic Press (New York), 1983; Merrifield, Adv. Enzymol., 32:221-96, 1969; Fields et al., int. J. Peptide Protein Res., 35:161-214, 1990; and U.S. Pat. No. 4,244,946; and for conventional solution synthesis, Schroder et al., "The Peptides", Vol. 1, Academic Press (New York), 1996. New York, 1965, each of which is incorporated herein by reference. Suitable protecting groups that can be used in such synthesis are described in the above texts and in J.F.W. MacOmie, "Protective Groups in Organic Chemistry", Plenum Press, New York, 1973, which is incorporated herein by reference.

[0048] In general, the solid phase synthesis methods contemplated involve the sequential addition of one or more amino acid residues or suitably protected amino acid residues to a growing peptide chain. Usually, either the amino or carboxyl group of the first amino acid residue is protected by a suitable, selectively removable protecting group. Different selectively removable protecting groups are utilized for amino acids that contain reactive side groups, such as lysine.

[0049] Using solid phase synthesis as an example, a protected or derivatized amino acid can be attached to an inert solid support via its unprotected carboxyl or amino group. The amino or carboxyl protecting group is then selectively removed, and the next amino acid in the sequence, which has a suitably protected complementary (amino or carboxyl) group, is mixed and reacted under conditions suitable to form an amide bond with the residue already attached to the solid support. The amino or carboxyl protecting group can then be removed from this newly added amino acid residue, and the next amino acid (suitably protected) is added, and so on. After all the desired amino acids have been linked in the proper sequence, the remaining terminal and side group protecting groups (and solid support) can be removed sequentially or simultaneously to obtain the final linear polypeptide.

[0050] Furthermore, the targeting peptides described herein can be used as a starting point for developing higher affinity small molecules, peptides, antibodies, and / or antibody fragments with similar ligand binding capabilities. For example, the development and screening of small molecules from peptide pharmacophores using computational screening can be easily performed, and the binding affinity of such identified molecules can be easily screened against the targeting peptides using the assays described herein for selecting small molecule drugs.

[0051] Additional residues may also be added to either end of the peptide for the purpose of providing a "linker" by which the peptide can be conveniently linked and / or immobilized to other polypeptides, proteins, detectable moieties, labels, solid matrices, or supports.

[0052] Amino acid residue linkers are usually at least one residue and can be 40 or more residues, more often 1-10 residues. Typical amino acid residues used for linking include glycine, tyrosine, cysteine, lysine, glutamic acid, and aspartic acid. Additionally, subject targeting peptide agents can be provided with a terminal NH 2 The modified sequence can vary by acylation, e.g., acetylation, or thioglycolic acid amidation, by terminal carboxylamidation, e.g., ammonia, methylamine, etc., terminal modification. As is well known, terminal modifications are useful for reducing susceptibility to proteinase digestion and thus help to extend the half-life of the polypeptide in solution, especially in biological fluids where proteases may be present. In this regard, polypeptide cyclization is also a useful terminal modification, and is particularly preferred due to the stable structure formed by cyclization, and also in view of the biological activity observed for cyclic peptides as described herein.

[0053] When the linker is a peptide linker, the polypeptide linker can be produced as a single recombinant polypeptide using conventional molecular biology / recombinant DNA methods.

[0054] For example, the targeting peptide can contain a lysine that can react with a carbonyl-containing group, such as an anhydride or acid halide, or an alkyl group that contains a good leaving group (e.g., a halide). The targeting peptide can also contain a cysteine ​​that facilitates chemical coupling via thiol-selective chemistry (e.g., maleimide-activated compounds). In addition, the targeting peptide can contain a tyrosine that can be modified using a diazonium coupling reaction. In an exemplary embodiment, the amino acid residue linker is a cysteine-glycine (CG) linker.

[0055] In other embodiments, chemical linking agent groups can be used. Linking agent groups can serve to increase the chemical reactivity of substituents on either the targeting peptide or the compound or molecule to which the targeting peptide is attached, thus increasing coupling efficiency. Linking agent chemistry can include maleimidyl linking agents that can be used to link to thiol groups, isothiocyanate and succinimidyl (e.g., N-hydroxysuccinimidyl (NHS)) linking agents that can link to free amine groups, diazoniums that can be used to link to phenols, and amines that can be used to link to free acids, such as carboxylic acid groups, using carbodiimide activation.

[0056] Useful functional groups can be present in targeting peptides based on the specific amino acids present, and additional groups can be designed.It will be clear to those skilled in the art that a variety of bifunctional or multifunctional reagents, both homofunctional and heterofunctional (such as those listed in the catalog of Pierce Chemical Co., Rockford, Ill.), can be used as linker groups.Coupling can be accomplished, for example, via amino groups, carboxyl groups, sulfhydryl groups, or oxidized carbohydrate residues.

[0057] Other types of coupling chemistries are also available. For example, methods for conjugating polysaccharides to peptides use squaric acid diester (1,2-diethoxycyclobutene-3,4-dione) as a coupling agent (Tietze et al. Bioconjug Chem. 2:148-153 (1991)), NaIO via the α or ε-amino groups, 4Exemplary methods include, but are not limited to, coupling to activated oligosaccharides (Bocher et al., J. Immunol. Methods 27, 191-202 (1997)), coupling via peptide coupling agents in which the polysaccharide has a reducing end and does not contain a carboxyl group (U.S. Pat. No. 5,342,770), and coupling with a synthetic peptide carrier derived from the human heat shock protein hsp65 (U.S. Pat. No. 5,736,146). Additional methods for conjugating polysaccharides, proteins, and lipids to peptides are described in U.S. Pat. No. 7,666,624.

[0058] In some embodiments, the linker is a non-peptide linker. The non-peptide linker can be a non-peptide aliphatic, heteroaliphatic, cyclic, and / or heterocyclic linker. The non-peptide linker can include, for example, an alkylene, alkylene oxide, arylene, or alkylenearylene linker that covalently bonds the peptide to the imaging agent.

[0059] In other embodiments, the linker can be a PEG molecule linker. The PEG molecule can have a variety of lengths and molecular weights, including, for example, PEG200, PEG1000, PEG1500, PEG4600, PEG10,000, or combinations thereof.

[0060] The PET / SPECT contrast agent can be directly conjugated to the targeting peptide or linked to the targeting peptide via a linker. The role of the contrast agent is to facilitate the detection step of the detection or diagnosis method by allowing the visualization of the complex formed by the binding of the PET / SPECT probe containing the targeting peptide to EDB-FN and / or EDA-FN. The contrast agent can be selected to generate a signal that can be measured and whose intensity is related (preferably proportional) to the amount of the PET / SPECT probe bound to the tissue being analyzed.

[0061] In certain embodiments, the imaging agent comprises a chelating agent and a metal ion. The chelating agent generally has one or more groups that can form a covalent bond with the linker. Many different chelating agents known in the art can be used herein. In one aspect, the chelating agent comprises an acyclic or cyclic compound that comprises at least one heteroatom (e.g., oxygen, nitrogen, sulfur, phosphorus) that has a lone pair of electrons that can be coordinated with the imaging agent. Examples of metal chelating agents include diethylenetriaminepentaacetic acid (DTPA), 1,4,7,10-tetraazadodecanetetraacetic acid (DOTA), 1,4,7,10-tetraazadodecane-1,4,7-triacetic acid (DO3A), ethylenediaminetetraacetic acid (EDTA), 1,4,7,10-tetraazacyclotridecanetetraacetic acid (TRITA), 1,4,8,11-tetraazacyclotetradecane-1,4,8,11-tetraacetic acid (TETA), 1,4,7,10-tetraazadodecanetetramethylacetic acid (DOTMA), 1,4,7,10-tetraazadodecane-1,4,7-trimethylacetic acid (DO3MA), N,N',N'',N'''-tetraphosphonatomethyl-1,4,7,10-tetraaza The chelating agent may include at least one of the following: 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetrakis(methylenemethylphosphonic acid) (DOTMP), 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetrakis(methylenephenylphosphonic acid) (DOTPP), N,N'-ethylenedi-L-cysteine, 1,4,7-triazacyclononane-1,4,7-triacetic acid (NOTA), 1,4,7-triazacyclononane (TACN), N,N'-bis(2-hydroxy-5-(ethylene-beta-carboxy)benzyl)ethylenediamineN,N'-diacetic acid (HBED-CC), and derivatives thereof. The term "derivative" is defined herein as the corresponding salts of the chelating agent and its esters.

[0062] The choice of metal ion can vary depending on the detection technique (e.g., PET or SPECT). Metal ions useful for PET and SPECT imaging include: 67 Ga, 68Ga, 64 Cu, 99m Tc, 111 In, 89 Zr, 90 Y, 153 Sm, or 89 Contains Sr.

[0063] In some embodiments, the PET / SPECT probe can have the formula: [ka] During the ceremony, P 1 is selected from the group consisting of SEQ ID NO:1, SEQ ID NO:2, SEQ ID NO:3, SEQ ID NO:4, SEQ ID NO:5, SEQ ID NO:6, SEQ ID NO:7, SEQ ID NO:8, SEQ ID NO:9, WNYPFRL (SEQ ID NO:19), SNTSYVN (SEQ ID NO:20), SFSYTSG (SEQ ID NO:21), WSPAPMS (SEQ ID NO:22), TREHPAQ (SEQ ID NO:23), ARIIDNA (SEQ ID NO:24), and retro-inverso amino acid sequences thereof; R 1 is optional and, when present, comprises an alkylene, alkylene oxide, arylene, or alkylenearylene linker, e.g., -(CH 2 ) n -, -(OCH 2 CH 2 ) n or arylene, where n is an integer of 1 to 18. M is 67 Ga, 68 Ga, 64 Cu, 99m Tc, 111 In, 89 Zr, 90 Y, 153 Sm, or 89 Sr, or a salt thereof.

[0064] In another embodiment, the PET / SPECT probe has the formula: [ka]

[0065] In yet another embodiment, the PET / SPECT probe has the formula: [ka] and 67 Ga, 68 Ga, 64 Cu, 99m Tc, 111 In, 89 Zr, 90 Y, 153 Sm, or 89 The PET / SPECT radionuclide may be selected from the group consisting of Sr or a salt thereof.

[0066] The PET / SPECT probe described herein can be administered to a subject by, for example, systemic, local, and / or parenteral administration methods. These methods include, for example, injection, infusion, deposition, implantation, or local administration, or any other administration method that is desired for molecular probe to access tissue. In one example, the administration of the molecular probe can be by intravenous injection of the molecular probe in the subject. Single or multiple administrations of the probe can be performed. As used herein, "administered" refers to the provision or delivery of the molecular probe in an amount and duration effective to label cancer cells in the subject.

[0067] A PET / SPECT probe comprising the targeting peptide described herein can be administered to a patient in a pharmaceutical composition comprising a detectable amount of the molecular probe or a pharma- ceutically acceptable water-soluble salt thereof.

[0068] "Detectable amount" means that the amount of molecular probe administered is sufficient to allow detection of binding or complex formation of the probe to EDB-FN and / or EDA-FN expressed by cancer cells or other cells in the cancer cell microenvironment. "Imaging effective amount" means that the amount of PET / SPECT probe administered is sufficient to allow imaging of binding or complex formation of the molecular probe to EDB-FN and / or EDA-FN of cancer cells or other cells in the cancer cell microenvironment.

[0069] The formulation of the administered PET / SPECT probe will vary depending on the route of administration selected (e.g., solution, emulsion, capsule, etc.). Suitable pharmaceutically acceptable carriers may contain inactive ingredients that do not unduly inhibit the biological activity of the compound. Pharmaceutically acceptable carriers should be biocompatible, e.g., non-toxic, non-inflammatory, non-immunogenic, and devoid of other undesirable reactions upon administration to a subject. Standard formulation techniques can be used, such as those described in Remington's Pharmaceutical Sciences, supra. Suitable pharmaceutical carriers for parenteral administration include, for example, sterile water, saline, bacteriostatic saline (saline containing about 0.9% mg / ml benzyl alcohol), phosphate buffered saline, Hank's solution, lactated Ringer's solution, and the like.

[0070] The preparation of pharmacological compositions that contain active ingredients dissolved or dispersed therein is well understood in the art.Typically, such compositions are prepared as injections, either as liquid solutions or suspensions, although solid forms suitable for solution or suspension can also be prepared in liquid before use.Formulations vary according to the route of administration selected (e.g., solution, emulsion, capsule).

[0071] Any polypeptide or compound can also be used in the form of pharmaceutically acceptable salt.The acid that can form salt with polypeptide includes inorganic acids such as trifluoroacetic acid (TFA), hydrochloric acid (HCl), hydrobromic acid, perchloric acid, nitric acid, thiocyanic acid, sulfuric acid, phosphoric acid, propionic acid, glycolic acid, lactic acid, pyruvic acid, oxalic acid, malonic acid, succinic acid, maleic acid, fumaric acid, anthranilic acid, cinnamic acid, naphthalenesulfonic acid, sulfanilic acid, etc.

[0072] Bases that can form salts with the polypeptide include inorganic bases such as sodium hydroxide, ammonium hydroxide, potassium hydroxide, and organic bases such as mono-, di-, and tri-alkyl and aryl-amines (e.g., triethylamine, diisopropylamine, methylamine, dimethylamine, and the like) and optionally substituted ethanolamines (e.g., ethanolamine, diethanolamine, and the like).

[0073] The PET / SPECT probes described herein can be used in a method for detecting and / or determining the presence, location, and / or distribution of cancer cells expressing EDB-FN and / or EDA-FN in an organ, tissue, or body region of a subject. The presence, location, and / or distribution of the probes in an animal's tissue, such as prostate tissue, can be visualized (e.g., using the in vivo imaging modalities described above). As used herein, "distribution" is a spatial property of cancer cells scattered over an area or volume. In this case, "distribution of cancer cells" is a spatial property of cancer cells scattered over an area or volume contained in an animal's tissue, such as prostate tissue. And the distribution of the molecular probes can be correlated with the presence or absence of cancer cells in the tissue. The distribution can be a clue for the presence or absence of cancer cells, or can be combined with other factors and symptoms by the skilled artisan to clearly detect the presence or absence of migrating or dispersing cancer cells, cancer metastasis, or to clarify tumor margins in a subject.

[0074] In one embodiment, a PET / SPECT probe can be administered to a subject to assess the distribution of malignant or metastatic cancer cells in the subject and correlate the distribution to a specific location.Surgeons routinely use stereotactic techniques and intraoperative MRI (iMRI) in surgical resection.This allows them to specifically identify and sample tissue from different areas of the tumor, such as the tumor edge or tumor center.In many cases, they also sample areas of tissue at the tumor margin that are outside the tumor edge that appear normal to the naked eye, but are infiltrated by tumor cells that disperse upon histological examination.

[0075] PET / SPECT probes that specifically bind and / or complex with EDB-FN and / or EDA-FN associated with malignant or metastatic cells can be used in intraoperative imaging techniques to guide surgical resection and eliminate the surgeon's "educated guess" of the location of tumor margins. Previous studies have determined that more extensive surgical resection improves patient survival. Thus, probes that function as diagnostic molecular imaging agents have the potential to increase patient survival.

[0076] In some embodiments, microscopic intraoperative imaging (IOI) techniques can be combined with the systemically or locally administered PET / SPECT probes described herein to identify and facilitate removal of cancer cells. The PET / SPECT probes upon administration to a subject can target, detect and / or determine the presence, location and / or distribution of cancer cells, i.e., cancer cells associated with EDB-FN and / or EDA-FN expression, in an organ or body region of a patient. In one example, the probes can be combined with IOI to identify malignant cells that have invaded and / or are beginning to invade tumor margins. The method can be performed in real time during surgery. The method can include local or systemic application of a PET / SPECT probe that includes a detectable moiety, such as a PET or SPECT contrast agent. An imaging modality can then be used to detect and subsequently collect image data. The obtained image data can be used, at least in part, to determine surgical and / or radiological treatment. Alternatively, the image data can be used, at least in part, to control an automated surgical device (e.g., laser, scalpel, micromachine) or to assist in manual guidance of surgery. Additionally, the image data may be used to plan and / or control the delivery of therapeutic agents (eg, via microelectronic devices or micromachines).

[0077] Another embodiment described herein relates to a method for determining the aggressiveness or malignancy of cancer cells in a subject. It has been found that the binding strength of PET / SPECT probes to cancer correlates with the aggressiveness of cancer. Enhanced binding correlates with more aggressive cancer, while reduced or decreased binding correlates with less aggressive or benign tumors. In one example, the binding of probes to prostate tumor sections correlates with Gleason score based on the aggressiveness of tumors, and enhanced binding strength of molecular probes correlates with aggressive or malignant prostate cancer and distinguishes it from benign prostatic hyperplasia, which shows lower binding of probes. The method and molecular probe described herein can be used to monitor and / or compare the aggressiveness of cancer in a subject before, during, or after the administration of cancer treatment or cancer therapy.

[0078] Another embodiment described herein relates to a method for monitoring the effectiveness of a cancer treatment or therapy administered to a subject. The method described herein and the PET / SPECT probe can be used to monitor and / or compare the aggressiveness, invasion, migration, distribution and metastasis of cancer in a subject before, during or after the administration of a cancer treatment or therapy.

[0079] As used herein, "cancer treatment" or "cancer therapy" can include any agent or treatment regimen that can negatively affect cancer in an animal, for example, by killing cancer cells, inducing apoptosis in cancer cells, reducing the proliferation of cancer cells, reducing the incidence or number of metastases, reducing tumor size, inhibiting tumor growth, reducing blood supply to tumors or cancer cells, promoting an immune response to cancer cells or tumors, preventing or inhibiting the progression of cancer, or extending the lifespan of an animal with cancer. Cancer treatment can include one or more therapies, such as, but not limited to, chemotherapy, radiation therapy, hormonal therapy, and / or biological therapy / immunotherapy. For example, a reduction in the volume, proliferation, migration, and / or spread of cancer in a subject can indicate the effectiveness of a given therapy. This can provide a direct clinical efficacy endpoint measurement of cancer treatment. Thus, in another aspect, a method of monitoring the effectiveness of cancer treatment is provided. More specifically, an embodiment of the present application provides a method of monitoring the effectiveness of cancer therapy.

[0080] A method for monitoring the effectiveness of cancer treatment can include administering a PET / SPECT probe in vivo to an animal as described herein, then visualizing the distribution of the probe in the animal (e.g., using an in vivo imaging modality as described herein), and then correlating the distribution of the probe with the effectiveness of the cancer treatment. It is contemplated that the administration step can occur before, during, and after the course of a treatment regimen to determine the effectiveness of a selected treatment regimen. One method for evaluating the effectiveness of cancer treatment is to compare the distribution of the probe before and after cancer therapy.

[0081] In some embodiments, the PET / SPECT probe bound and / or complexed to EDB-FN and / or EDA-FN is detected in a subject to detect and / or provide the aggressiveness, location and / or distribution of cancer cells in the subject. The aggressiveness, location and / or distribution of cancer cells in the subject can then be compared to a control to determine the effectiveness of the cancer treatment and / or cancer therapy. The control can be the location and / or distribution of cancer cells in the subject before administration of the cancer treatment and / or cancer therapy. The location and / or distribution of cancer cells in the subject before administration of the cancer treatment and / or cancer therapy can be determined by administering a probe to the subject and detecting the probe bound and / or complexed to the cancer cells in the subject before administration of the cancer treatment and / or cancer therapy.

[0082] In certain embodiments, the methods and PET / SPECT probes described herein can be used to measure the effectiveness of a therapeutic agent administered to a subject to treat metastatic or aggressive cancer. In this embodiment, the probe can be administered to the subject before, during, or after administration of a therapeutic regimen, and the distribution of cancer cells can be imaged to determine the effectiveness of the therapeutic regimen. In one example, the therapeutic regimen can include surgical resection of metastatic cancer, and the probe can be used to define the distribution of metastatic cancer pre- and post-operatively to determine the effectiveness of the surgical resection. Optionally, the methods and probes can be used in intraoperative surgical procedures, such as surgical tumor resection, to more easily define and / or image the mass or volume of cancer cells during surgery.

[0083] In other embodiments, the targeting peptide can be conjugated to a therapeutic agent and administered to a subject to treat cancer, such as metastatic cancer. In this embodiment, the targeting peptide conjugated to a therapeutic agent can be administered to a subject and metastatic cells can be targeted with the therapeutic agent.

[0084] Therapeutic agents can include anti-proliferative agents that exert anti-tumor, chemotherapeutic, anti-viral, anti-mitotic, anti-tumorigenic, and / or immunotherapeutic effects directly on tumor cells, e.g., by cytostatic or cytocidal effects, e.g., preventing the development, maturation, or spread of neoplastic cells, and not indirectly through mechanisms such as alteration of biological responses. There are numerous anti-proliferative agents available in commercial use, clinical evaluation, and preclinical development. For ease of discussion, anti-proliferative agents are divided into the following classes, subtypes, and species: ACE inhibitors, alkylating agents, angiogenesis inhibitors, angiostatin, anthracycline / DNA intercalators, anticancer antibiotics or antibiotic-type agents, antimetabolites, antimetabolites, anti-metastatic compounds, asparaginase, bisphosphonates, cGMP phosphodiesterase inhibitors, calcium carbonate, cyclooxygenase-2 inhibitors, DHA derivatives, DNA topoisomerase, endostatin, epipodophyllotoxins, genistein, hormonal anticancer agents, hydrophilic bile acids (URSO), immunomodulatory or immunological agents, integrin antagonists, interferon antagonists or agents, MMP inhibitors, miscellaneous antineoplastic agents, monoclonal antibodies, nitrosoureas, NSAIDs, ornithine decarboxylase inhibitors, pBATT, radio / chemosensitizers / protectants, retinoids, selective inhibitors of endothelial cell proliferation and migration, selenium, stromelysin inhibitors, taxanes, vaccines, and vinca alkaloids.

[0085] The major categories into which some antiproliferative agents fall include antimetabolites, alkylating agents, antibiotic-type agents, hormonal anticancer agents, immunological agents, interferon-type agents, and various antineoplastic categories. Some antiproliferative agents function through multiple or unknown mechanisms and therefore can be classified into more than one category.

[0086] In some embodiments, the targeting peptide can be attached to the therapeutic agent using a linking molecule. The linking molecule can be a linker. Alternatively, the linking molecule can be a non-peptide linker. EXAMPLES

[0087] Example 1 The present inventors have 64 A Cu-DOTA conjugate was developed as a PET probe for EDB-FN, and its efficacy was evaluated for PET imaging in mice bearing aggressive PC3 and slow-growing LNCaP human prostate tumor xenografts. We showed that EDB-FN was highly expressed in aggressive PC3 tumors and negligibly expressed in slow-growing, nonmetastatic LNCaP tumors. MRI with the EDB-FN-targeted contrast agent ZD2-Gd(HP-DO3A) showed stronger contrast enhancement in PC3 tumors than in LNCaP tumors. 64 The use of Cu is particularly attractive because of its half-life of 12.74 hours, providing an extended imaging window for cancer detection, especially in the prostate, with minimal background speculation from the bladder. The PET probe conjugates the ZD2 peptide to DOTA, a macrocyclic ligand, followed by 64 CuCl 2 The ability of the PET probe in detecting cancer and characterizing tumor aggressiveness was evaluated in mice bearing PC3 and LNCaP tumors.

[0088] material and method Synthesis of ZD2-PEG-DOTA and chelates Reagents used in chemical synthesis were purchased from Sigma-Aldrich (Saint Louis, MO, USA) unless otherwise stated. Fmoc-protected amino acids and 2-chlorotrityl chloride resin were obtained from Chem-Impex International, Inc. (Wood Dale, IL). The spacer Fmoc-8-amino-3,6-dioxaoctanoic acid (Fmoc-NH-(CH 2 CH 2 O) 2 -CH 2COOH) was obtained from Chempep (Wellington, FL). 1,4,7,10-Tetraaza-cyclododecane-1,4,7-tris-tert-butylacetate-10-acetic acid (DOTA-tris(t-Bu)) was purchased from TCI America (Portland, OR).

[0089] ZD2 peptide (sequence: TVRTSAD), NH 2 -(CH 2 CH 2 O) 2 -CH 2 The precursor ZD2-DA-DOTA, which contains two repeats of COOH and DOTA, was synthesized by cleaving the corresponding protected amino acid, Fmoc-NH-(CH 2 CH 2 O) 2 -CH 2 The peptide was synthesized by sequential addition of t-Bu-DOTA, COOH, and t-Bu-DOTA on a solid-phase resin using standard Fmoc-peptide chemistry. It was then synthesized using trifluoroacetic acid / triisopropylsilane / H 2 The product was cleaved from the resin using O (96.5:1:2.5), stirred at room temperature for 3 h, and precipitated in ether to give the crude product. The final product was purified using preparative HPLC on an Agilent 1100 HPLC system equipped with a semi-preparative C18 column (Agilent Technologies, Santa Clara, CA). ZD2-PEG-DOTA was characterized by MALDI-TOF mass spectrometry on a Voyager DE-STR spectrometer (PerkinElmer, Waltham, MA) in linear mode with R2,5-dihydroxybenzoic acid as matrix (M+1: 1425.8, observed; 1425.7, calculated).

[0090] Cell culture and animal models Animal studies were approved by the Institutional Animal Care and Use Committee at Case Western Reserve University (CWRU), and all subjects signed informed consent forms. PC3 and LNCaP cells were obtained from the American Type Culture Collection (ATCC, Manassas, VA, USA) and cultured at 37°C and 5% CO in Roswell Park Memorial Institute medium (Thermo Fisher Scientific, Waltham, MA) supplemented with 10% fetal bovine serum, 100 U / mL penicillin, and 0.1 mg / mL streptomycin. 2 The cells were cultured in a humidified incubator maintained at 4°C. Male athymic nude mice (4–6 weeks old) were obtained from Case Comprehensive Cancer Center (Cleveland, OH, USA) and housed at the CWRU Animal Core Facility. Three million cells in high-concentration Matrigel (Corning, Tewksbury, MA) were used for tumor inoculation. LNCaP cells were inoculated subcutaneously into the left flank of the mice. Four weeks later, PC3 cells were inoculated into the right flank of the same mice for PET imaging.

[0091] radioactive label radioactive isotope 64 Cu(II) was obtained from the University of Wisconsin-Madison (Madison, WI). Chelation of ZD2-PEG-DOTA with Cu(II) was performed using non-radioactive CuCl in 0.1 N HCl aqueous solution under the same conditions as for radiolabeling. 2 First, ZD2-DA-DOTA and CuCl in PBS buffer (pH 7.4) were used. 2 Equimolar amounts of the solutions were mixed and stirred at 45° C. for 30 min. The formation of ZD2-DA-(Cu-DOTA) was verified by MALDI-TOF mass spectrometry (M+1: 1487.8, observed; 1486.04, calculated). For radiolabeling, 10 mCi of 64Cu(II) was dissolved in 200 μL of 0.1 N HCl. 64 The Cu(II) solution (approximately 1 mCi) was mixed with 480 μL of ZD2-DA-DOTA (0.05 mg / mL, large excess, PBS) in a 1.5 mL microcentrifuge tube. The vessel was then heated and maintained at 45 °C for 30 min with intermittent shaking. The final pH of the solution was adjusted to neutral using NaOH solution before injection.

[0092] PET imaging All in vivo imaging studies were performed in accordance with protocols and guidelines approved by the CWRU Animal Research Committee. Mice were anesthetized with 2% isoflurane in oxygen and injected with approximately 200 μCi [approximately 7.4 MBq] of ZD2-DA- 64 Cu(DOTA) was injected via the tail vein. Mice underwent PET scans (Inveon microPET, Siemens Medical Solutions USA Inc.) with 4 and 22 h uptake periods followed by a 10 min static PET scan. Images were reconstructed using 3D-OSEM with 3D histogram and zoom factor 1.0 (2 iterations followed by MAP with 18 iterations). CT scans (Siemens Medical Solutions USA Inc.) were performed after PET procedure for anatomical co-registration. PET / CT images were analyzed using AMIDE version 1.0.557 and AMIRA software. ROIs were drawn for PC3 and LNCaP tumors to calculate the ratio of specific to nonspecific (muscle) binding.

[0093] Biodistribution After the final microPET / CT imaging 22 h post-injection, three mice were euthanized, organs and blood were collected and weighed, and radioactivity was determined in a gamma counter. The percentage of injected dose per gram of tissue was calculated using a standard containing 2% of the injected dose.

[0094] Histological analysis After image acquisition, mice were euthanized. Tumors were harvested, embedded in optimal cutting temperature medium, frozen at -80°C, cryosectioned at 5 μm, and permeabilized with cold acetone. Tissues were blocked with bovine serum albumin (1%) in PBS for 1 h at room temperature. Anti-EDB-FN BC1 antibody (Abcam, Cambridge, MA) was incubated with tissue sections of PC3 and LNCaP tumors. After extensive washing, secondary anti-mouse Alexa Fluor488 antibody was incubated for 1 h. Tissue sections were counterstained with Prolong Gold antifade mounting medium supplemented with 4'6-diamidino-2-phenyl-indole (Thermo Fisher, Waltham, MA). Stained tissues were imaged with an Olympus FV1000 confocal laser scanning microscope.

[0095] result ZD2 64 Cu-DOTA conjugates were prepared by conjugating the ZD2 peptide to the macrocyclic chelate DOTA using solid-phase peptide chemistry, followed by 64 The targeting ligand ZD2-DA-DOTA was synthesized by complexation with CuCl2 (Figure 1). A short spacer with two repeats of 8-amino-3,6-dioxaoctanoic acid was introduced between the peptide and the chelator. The targeting ligand ZD2-DA-DOTA was purified by preparative high-performance liquid chromatography (HPLC) and characterized by matrix-assisted laser desorption / ionization time-of-flight (MALDI-TOF) mass spectrometry [m / z = 1425.8 (M+1), observed; 1425.5, calculated]. The preparation of the targeting PET probe consisted of ZD2-DA-DOTA in phosphate-buffered saline (PBS) buffer (pH 7.4) and non-radioactive CuCl2 in dilute HCl (0.1 N). 2 The formation of ZD2-DA-(Cu-DOTA) was verified by MALDI-TOF mass spectrometry [m / z=1487.8 (M+1), observed; 1486.04, calculated].

[0096] Next, ZD2-DA-( 64The efficacy of EDB-FN (Cu-DOTA) was investigated in male nude mice bearing both PC3 and LNCaP human prostate cancer xenografts. Previously, we showed that EDB-FN is highly expressed in aggressive PC3 tumors and negligibly expressed in slow-growing, non-metastatic LNCaP tumors. Tumor models were used to represent high- and low-risk prostate tumors and to test the ability of the probe to detect and stratify aggressive prostate cancer. Radiolabeling was performed in 20 μL of 1.5 mL microcentrifuge tubes. 64 It was performed by mixing Cu(II) solution (0.1N HCl, approximately 1 mCi or 37 MBq) with 480 μL of ZD2-DA-DOTA (0.05 mg / mL, large excess, PBS, pH=7.4) and maintained at 45 °C for 30 min with intermittent shaking. The reaction mixture was then diluted in a 1:2 ratio with PBS and tested with pH paper to ensure neutral pH for intravenous injection. The radiotracer was injected intravenously at a dose of 7.4 MBq (200 μCi) per mouse. PET images of mice were acquired in groups of 4 mice bearing both PC3 and LNCaP tumor xenografts at 4 and 22 h after injection.

[0097] Figure 2 shows the ZD2-DA-( 64 Representative three-dimensional (3D) volume rendering and axial PET / computed tomography (CT) images of two tumor-bearing mice are shown at 4 and 22 hours after injection of ZD2-DA-(Cu-DOTA). A stronger signal was visually evident in the aggressive PC3 tumors than in the slow-growing LNCaP tumors. The location and size of the PC3 tumors were clearly delineated in the PET images. Tracer uptake or signal intensity was quantitatively analyzed in regions of interest (ROIs) at 4 and 22 hours. As shown in Figure 3, ZD2-DA-( 64Cu-DOTA) resulted in higher probe uptake in PC3 tumors than in LNCaP tumors. At 22 h, PET revealed more than two-fold higher PET tracer accumulation in the more aggressive PC3 tumors (7711 ± 1994 Bq / mL) compared with the less aggressive LNCaP tumors (3213 ± 1511 Bq / mL) (N = 4, P < 0.05, two-tailed Student's t test). Other organs that showed substantial radiotracer uptake were the liver, stomach, and kidneys, indicating clearance of the radiotracer via the hepatic and renal pathways.

[0098] The biodistribution of the radiotracer was measured after scaring the mice 24 hours after injection (Figure 4). The biodistribution pattern was consistent with the PET imaging results, with strong uptake in the tumor, liver, and kidney. Other organs such as the brain and muscle showed low uptake of the radiotracer, which is a desirable property of a radiotracer. Comparison of the uptake of the radiotracer in PC3 and LNCaP tumors showed that the accumulation of the radiotracer in PC3 (1. 64 ID% / g) was shown to be higher than that in LNCaP tumors (0.86 ID% / g) (N=3, P=0.32, two-tailed Student's t-test), confirming that the probe preferentially accumulates in aggressive PC3 tumors over non-metastatic LNCaP tumors.

[0099] The expression of EDB-FN in prostate tumors was determined by immunofluorescence staining of tissue sections of PC3 and LNCaP tumors with anti-EDB-FN monoclonal antibody BC1 after PET imaging. Alexa Fluor488-conjugated anti-mouse antibody was used to stain BC1 antibody and EDB-FN. Figure 5 shows the fluorescence images of tumor sections acquired with an Olympus FV1000 confocal laser scanning microscope. Strong fluorescent staining was visually evident in PC3 tumor sections, whereas little staining was observed in LNCaP tumors. Consistently, we have already shown that EDB mRNA levels in LNCaP cells were lower than those in PC3 cells. The EDB-FN expression levels in the two different prostate tumors correlated well with the observations by PET molecular imaging. The results showed that ZD2-DA-( 64 These results suggest that Cu-DOTA is effective for sensitive and quantitative visualization of EDB-FN expression in prostate cancer.

[0100] In this example, the peptide probe ZD2-DA-( 64 We have demonstrated the feasibility of PET imaging of the ECM oncoprotein EDB-FN using Cu-DOTA. We have previously shown that EDB-FN is highly expressed in fast-growing PC3 tumors and lowly expressed in slow-growing LNCaP tumors. The ZD2 peptide-targeted MRI contrast agent was able to produce stronger signals in PC3 tumors than in LNCaP tumors. ZD2-DA-( 64 The results of PET molecular imaging EDB-FN with Cu-DOTA) are consistent with MR molecular imaging using ZD2 peptide-targeted MRI contrast agent, especially at 22 hours after injection. Comparing the probe uptake in tumors, a strong PET signal was detected in the fast-growing PC3 tumors, which have higher EDB-FN expression than in the slow-growing LNCaP tumors. However, significant signal intensity was still observed in the LNCaP tumors in PET images. This is because 64 This may be due to the relatively low chelation stability of Cu-DOTA monoamide. 64It has been shown that Cu(II) can accumulate in prostate tumors in animal models. The relatively high signal intensity in LNCaP tumors is due to free Cu(II) released from the probe. 64 This may be due to the accumulation of Cu(II). Nevertheless, the targeting effect of the ZD2 peptide of the probe still resulted in significantly higher signal intensity in PC3 tumors than in LNCaP tumors. Compared with MR molecular imaging, PET imaging produces sensitive and quantitative visualization and measurement of EDB-FN expression levels in prostate cancer, providing more accurate risk stratification of aggressive prostate cancer.

[0101] In general, PET imaging with relatively short half-life probes suffers from significant signal extrapolation from the bladder when imaging primary tumors in the prostate due to the limited imaging window. 64 Cu allows sufficient time for the bladder to empty and minimizes potential signal interference from the bladder, which is important for early detection of primary tumors in the prostate. Substantial signal was still visible in the tumor 22 hours after injection, with little signal in the bladder. Significant signal intensity was observed in the ZD2-DA-( 64 Cu-DOTA) in the liver, which could be attributed to the relatively low stability of the Cu-DOTA monoamide. 64 Release of Cu-(II) can lead to non-specific accumulation of the radioisotope in the liver.

[0102] Antibodies and antibody fragments have been developed targeting EDB-FN for the detection of cancers, including prostate cancer. This study showed that small peptide-targeted PET probes specific for EDB-FN also have potential for prostate cancer imaging. Compared with antibody-based probes, small peptide PET probes have several advantages, including cost-effective generation, excellent tumor penetration by diffusion and perfusion, and rapid excretion of unbound probe from the circulation.

[0103] Example 2 We showed that EDB-FN is highly expressed in human pancreatic cancer (PaCa) tissue from PaCa specimens and mouse PaCa models, but not in normal pancreatic tissue in either case. The presence of EDB-FN in PaCa tumor ECM allows rapid and specific binding of targeted tracers for sensitive molecular imaging and PaCa diagnosis. The peptide sequence of the EDB fragment is conserved in all mammalian species.

[0104] We identified a peptide, ZD2 (Thr-Val-Arg-Thr-Ser-Ala-Asp), that specifically binds to EDB-FN. The ZD2 peptide showed strong binding affinity to high-grade prostate tumors, weak binding affinity to low-grade tumors, and no binding in normal tissues. In this example, we show that the ZD2 peptide can be used to develop a PET probe for sensitive and quantitative molecular imaging of EDB-FN for accurate detection and risk stratification of pancreatic cancer. We designed and synthesized a ZD2 peptide-targeted Ga(III) PET probe by conjugating NOTA to the ZD2 peptide using the linker 6-aminohexanoic acid. We evaluated the efficacy of the targeted Ga(III) tracer for PET imaging in male nude mice bearing aggressive, fast-growing PC3 and slow-growing LNCaP prostate cancer xenografts.

[0105] experiment material Protected amino acids for peptide synthesis were purchased from Novabiochem (Burlington, MA, USA). N,N-Diisopropylethylamine (DIPEA) was purchased from MP Biomedical LLC (Santa Ana, CA, USA). O-Benzotriazole-N,N,N',N'-tetramethyl-uronium-hexafluorophosphate (HBTU) was purchased from Anaspec Inc (Fremont, CA, USA). Fmoc-6-aminohexanoic acid was purchased from Chem-IMPEX International (WD, IL, USA). t-Butyl bromoacetate was purchased from Sigma-Aldrich (St. Louis, MO, USA). All other chemical reagents were purchased from Thermo Fisher. 1 H-NMR spectra were acquired on a 500 MHz Varian Inova NMR spectrometer (supplier and address) using TMS as internal standard. Matrix-assisted laser desorption / ionization time-of-flight (MALDI-TOF) mass spectra were acquired on a Voyager DE-STR spectrometer (PerSeptive BioSystems) in linear mode with 2,5-dihydroxybenzoic acid as matrix. An Agilent 1100 equipped with a ZORBAX 300 SB-C18 column semi-preparative HPLC was used for purification of the ligand with the following conditions: eluent A, H 2 O / TFA (0.1%); B, MeCN / TFA (0.1%); 15 min at 0% B, 30 min at 0–50% B, 5 min at 50% B, 2 min at 50–100% B, 5 min at 100% B, flow rate 2 mL / min, UV detection at 210 nm. Ga was eluted with 0.1 M HCl. 68 Ge / 68 Ga generator (ITG isotope technologies Garching GmbH, Germany).

[0106] synthesis Synthesis of 1,4-bis(tert-butoxycarbonylmethyl)-1,4,7-triazanonane 1,4,7-Triazacyclononane (1.5 g, 11.62 mmol) was dissolved in anhydrous CHCl in an ice bath. 3 (15 mL) and dissolved in CHCl 3 tert-Butyl bromoacetate (4.98 g, 25.56 mmol) in 100 mL of tert-butyl bromoacetate was added slowly over 1.5 h. The mixture was stirred at room temperature for 24 h and the solvent was removed. The residue was treated with DI water (15 mL), adjusted to pH 3 with 1 M HCl, and extracted with ether (50 mL x 2). The organic phase was removed and the aqueous phase was adjusted to pH 8-9 with 1 M NaOH and diluted with CH 2 Cl 2 (25mL x 3) again. Finally, the organic phase was evaporated to give the product. Yield: 36%, 1 H NMR (500 MHz, CDCl 3 ):δ=1.48(s,18H),2.79(s,4H),3.03~3.07(m,4H),3.24(s,4H),3.37(s,4H),9.46(s,H).

[0107] Synthesis of NOTA-bis(t-Bu ester) 1,4-Bis(tert-butoxycarbonylmethyl)-1,4,7-triazanonane (0.3 g, 0.84 mmol) and bromoacetic acid (0.415 g, 3 mmol) were dissolved in methanol (3 mL) and diluted with K 2 CO 3 (0.53 g, 3.84 mmol) was added. The mixture was stirred at room temperature overnight and concentrated. The residue was then dissolved in water and adjusted to pH 4 with 1 M HCl. Water was removed by rotary evaporation and the product was purified by flash chromatography (methanol:ethyl acetate 6.5:3.5). Yield: 64 %, 1 H NMR (500MHz, D 2 O):δ=1.48(s,18H),2.84(s,4H),3.08(m,4H),3.35(s,4H),3.47(s,4H).

[0108] Synthesis of ZD2-HA-NOTA ZD2-HA was synthesized using solid-phase chemistry. A mixture of 6-aminohexanoic acid (1.5 eq.), HBTU (1.5 eq.), DIPEA (1.5 eq.) in 10 mL of anhydrous DMF was added to the resin at the end of the peptide synthesis (0.5 mmol peptide) and shaken until ninhydrin no longer changed color (Kaiser test). The resin was then washed using DMF (10 mL x 3) and DCM (10 mL x 3). This was followed by elution with TFA:H 2 ZD2-HA was cleaved from the resin for 3 h using a cocktail of O:TIBS (96.5:2.5:1). ZD2-HA was precipitated in cold ethyl ether, centrifuged and lyophilized. The product was characterized by MALDI-TOF mass spectrometry: m / z calculated for [M], C 47 H 83 N 15 O 18 , 1146.25; Measured (M+H + ), 1147.56.

[0109] Synthesis of non-radioactive Ga-ZD2-HA-NOTA A solution of ZD2-HA-NOTA (0.11 g, 0.1 mmol) in 10 mL of NaAc-Ac buffer (0.1 M, pH 5.5) was added to Ga(NO 3 ) 3 (0.076 g, 0.3 mmol) was added. The solution was stirred at room temperature overnight and finally the product was purified using preparative HPLC and lyophilized to give a fluffy white powder. Yield: 43%. The product was characterized by MALDI-TOF mass spectrometry: m / z calculated for [M], C 47 H 81 GaN 15 O 18 , 1212.51; Measured (M+H + ), 1213.54.

[0110] Results and Discussion Chemistry and Radiochemistry The synthesis of ZD2-HA-NOTA was shown in Figure 6. NOTA-bis(t-Bu ester) was prepared from TACN as the starting material by two rounds of displacement. Then, the precursor ZD2-HA-NOTA was successfully synthesized by conjugating with NOTA-bis(t-Bu ester) and ZD2-HA using solid-phase peptide chromatography and purified by RP-HPLC. The purified ZD2-HA-NOTA was characterized by MALDI-TOF (m / z=1147.56) and HPLC (purity: about 98%). Nat Ga-ZD2-HA-NOTA was also prepared and characterized by MALDI-TOF (m / z = 1213.54) and RP-HPLC (purity: approximately 96%).

[0111] Non-radioactive ZD2-(Ga-NOTA) was first synthesized according to the procedure shown in Figure 6. The macrocyclic ligand NOTA was used under relatively mild conditions. 68 This is because it can readily form a stable chelate with Ga(III), which is important for preserving the binding properties of the peptide. The ZD2 peptide was synthesized using standard solid-phase peptide synthesis, and then 6-aminohexanoic acid (HA) was conjugated to the N-terminus of the peptide as a spacer. NOTA-bis(t-Bu ester) was finally conjugated to the amino group on the resin, and the targeting ligand ZD2-NOTA was eluted in TFA:H 2 The resin was treated with a cocktail of O:TIBS (96.5:2.5:1). The final product was purified by preparative HPLC. The purified ZD2-NOTA was characterized by MALDI-TOF (m / z=1147.56 [M+1], observed; 1146.25, calculated) and had a purity of about 98% (HPLC), Figure 7A,B. Next, ZD2-( Nat Ga-NOTA is prepared by dissolving the ligand in an excess of GaCl in acetate buffer (0.1 M, pH 5.5). 3 It was prepared by reacting ZD2-( NatThe peptide and ZD2-(Ga-NOTA) were purified using preparative HPLC and characterized by MALDI-TOF (m / z=1213.54 [M+1], observed; 1212.51, calculated) with a purity of about 96% (HPLC), FIG. Nat Ga-NOTA) is highly water soluble, an advantageous property for minimizing nonspecific tissue binding.

[0112] Radioactive tracer ZD2-( 68 ZD2-NOTA was synthesized by mixing GaCl in sodium acetate buffer (0.1M, pH 5.5) at the radiopharmaceutical laboratory of University Hospitals, Cleveland (UH) in collaboration with Dr. Avril. 3 The radiolabeled tracer was radiosynthesized by reacting with 1,2-dichlorophenyl ether at 90°C for 15 min. The pH of the reaction was finally adjusted with NaOH. The radiochemical yield was approximately 77% as determined by HPLC equipped with a radioactive detector and a Zorbax Eclipse C18 column (gradient of water + 0.1% TFA / acetonitrile + 0.1% TFA, UV at 220 nm). The radiolabeled tracer was purified using reversed-phase HPLC equipped with a C-18 column prior to imaging. ZD2-( 68 The HPLC chromatogram of Ga-NOTA is shown in Figure 8, and the product parameters are summarized in Table 3. The small peaks around the main peak are probably 68 This may be due to complexation of Ga(III) with the peptide, which is commonly observed in radiolabeled peptide products. The radiolabeling yields are comparable to those of clinical tracers. The purity of the product is also comparable to that of clinical grade products. [Table 1]

[0113] Expression of EDB-FN in human pancreatic cancer cells and tumor xenografts Expression of EDB-FN was first demonstrated by Western blotting in four different human pancreatic cancer cell lines, including BXPC3, Capan-1, Panc10.05, and Panc-1 cells. These human PaCa cell lines are commonly used to develop mouse PaCa cancer models in preclinical trials. All cancer cell lines tested have high expression of EDB-FN, Figure 9A. Tumor models were developed by subcutaneous implantation of cancer cells in the flanks of female nude mice as described by ATCC. Expression of EDB-FN is demonstrated in tumor xenografts of human PaCa cells using immunofluorescence staining with BC-1 anti-EDB-FN monoclonal antibody. As shown in Figure 9B, substantial expression of EDB-FN was observed in all four PaCa subtypes, with no expression observed in normal pancreas and muscle, consistent with reported results. High expression of EDB-FN was observed in the ECM of PaCa tumors. The results indicate that EDB-FN is highly expressed by PaCa cells and tumors and is a promising oncoprotein target for molecular imaging and detection of PaCa.

[0114] ZD2 peptide binding to EDB-FN in PaCa tumors The ZD2 peptide (Thr-Val-Arg-The-Ser-Ala-Asp) targeted fluorescent tracer ZD2-Cy5.5 was synthesized according to a reported method to evaluate the binding of the peptide with EDB-FN in PaCa tumors. The binding specificity of the ZD2 peptide with EDB-FN in pancreatic cancer has been tested by incubation of ZD2-Cy5.5 with tumor slides of the tumor xenografts mentioned above. As shown in Figure 10, strong binding of ZD2-Cy5.5 (red) was observed in all four tumor tissues tested, similar to the immunofluorescence staining in Figure 9B. No significant binding of ZD2-Cy5.5 with normal pancreas and muscle was observed. The strong binding of ZD2-Cy5.5 with EDB-FN in PaCa was blocked by BC-1 anti-EDB-FN monoclonal antibody (BC-1 / ZD2). Little to no red fluorescent staining was observed in PaCa specimens preincubated with BC-1 antibody followed by ZD2-Cy5.5 (BC-1 / ZD2). The results suggest that both ZD2-Cy5.5 and BC-1 specifically bind to the same EDB-FN protein target in tumor tissues. The ZD2 peptide is a promising targeting agent for the specific binding of EDB-FN in PaCa tumors.

[0115] Expression of EDB-FN in human PaCa tumors EDB-FN expression in human pancreatic cancer is demonstrated by staining human pancreatic cancer specimens with ZD2-Cy5.5. As shown in Figure 11, strong red fluorescence was observed in human PaCa specimens, with little fluorescence observed in normal pancreas, but some fluorescence intensity was shown in precancerous pancreatic intraepithelial neoplasia. The fluorescence intensity suggests high EDB-FN expression in PaCa, low expression in precancerous tissues, and no expression in normal pancreas.

[0116] ZD2-( 68 PET imaging of PaCa using Ga-NOTA Highly sensitive molecular imaging of EDB-FN and ZD2-( 68 Effectiveness of Ga-NOTA was evaluated with microPET / CT in mouse models bearing Capan1 and BXPC3 human PaCa xenografts. The tumor models were developed in female nude mice as in C.1. The tracer synthesized using the method described above was injected intravenously at a dose of 300 μCi per mouse. Figure 12 shows representative 2D coronal PET / CT images showing the tumor at 1 and 2 h after injection of the tracer. Strong uptake of the tracer was observed in the tumor and bladder at both time points. In normal tissues and organs, especially the brain, liver, and lung, uptake was hardly observed at 1 h after injection. The background noise increased slightly at 2 h after injection, probably due to the drop in radioactivity and the extended scan time. The signal intensity of both tumors was about 5 times that in muscle at 1 and 2 h after injection. Three-dimensional PET images also showed strong uptake in the tumor with little nonspecific uptake in the surrounding normal tissues and organs other than the kidney and bladder, Figure 13. The high signal intensity in the kidney and bladder indicates that the tracer is mainly excreted via renal filtration. These results support the usefulness of ZD2-( 68 To demonstrate the efficacy and high specificity of Ga-NOTA and further validate the specific expression of EDB-FN in PaCa. ZD2 peptide targeting 68 Ga-chelates show promise for sensitive early detection of pancreatic cancer in clinical practice.

[0117] Example 3 Synthesis of ZD2-HBED-CC The ZD2 peptide was synthesized using standard solid-phase chemistry. HBED-CC-Tris(tBu) ester was then conjugated to the N-terminus of the ZD2 peptide on the resin. The peptide was then cleaved from the resin using a cocktail of TFA / water / TIBS (96.5 / 2.5 / 1). The product was precipitated in ethyl ether, purified by preparative HPLC, lyophilized, and characterized by MALDI-TOF mass spectrometry. (M+1) m / z, 1264.02 observed; 1264.32 calculated for C55H82N12O22.

[0118] Synthesis of ZD2-AH-HBED-CC The ZD2 peptide was synthesized using standard solid-phase chemistry. Fmoc-6-aminohexanoic acid was then conjugated to the N-terminus of the ZD2 peptide on the resin. HBED-CC-tris(tBu) ester was then reacted with the peptide, followed by cleavage from the resin using a cocktail of TFA / water / TIBS (96.5 / 2.5 / 1). The product ZD2-AH-HBED-CC was precipitated in ethyl ether, purified by preparative HPLC, lyophilized, and characterized by MALDI-TOF mass spectrometry. (M+1) m / z, 1377.1 found; 1377.48 calculated for C61H93N13O23.

[0119] Synthesis of ZD2-(Ga-HBED-CC) The ligand, linker-free ZD2-HBED-CC, and gallium nitrate were mixed in PBS for 2 min at 90 °C. The product ZD2-(Ga-HBED-CC) was then purified by preparative HPLC and characterized by MALDI-TOF mass spectrometry. (M+1) m / z, observed 1329.8; calculated for C55H79GaN12O22 1329.47.

[0120] Synthesis of ZD2-AH-(Ga-HBED-CC) The ligand, ZD2-HBED-CC with linker, and gallium nitrate were mixed in PBS for 2 min at 90 °C. The product ZD2-AH-(Ga-HBED-CC) was then purified by preparative HPLC and characterized by MALDI-TOF mass spectrometry. (M+1) m / z, 1442.9 observed; 1442.55 calculated for C61H90GaN13O23.

[0121] PET imaging of tumor-bearing mice All in vivo imaging studies were performed in accordance with protocols and guidelines approved by the CWRU Animal Research Committee. Mice bearing BxPC3 or Capan-1 human pancreatic xenografts were anesthetized with 2% isoflurane in oxygen. The tracer ZD2-(68 Ga-HBED-CC) or ZD2-AH-( 68 Ga-HBED-CC) was injected via the tail vein at a dose of 100–300 μCi [5.3–13.0 MBq]. Mice then underwent a 10- or 20-min static PET scan (Inveon microPET, Siemens Medical Solutions USA Inc.) after a 30- or 60-min uptake period. All PET procedures were followed by a CT scan for anatomical co-registration. PET / CT images were analyzed using Inveon Research Workplace version 3.0 and Horos software. Regions of interest (ROIs) were drawn for tumors, major organs, and muscles to calculate the ratio of specific and nonspecific tissue uptake. Images were processed with 3D reconstruction with a zoom factor of 1.0 using 3D-OSEM with two iterations followed by MAP with 18 iterations.

[0122] Highly sensitive molecular imaging of EDB-FN and ZD2-( 68 The efficacy of Ga-HBED-CC) was evaluated by microPET / CT in mouse models bearing Capan-1 and BxPC3 human pancreatic cancer xenografts. The figure shows representative 2D and 3D whole-body PET / CT images of tumor-bearing mice at 30 or 60 min post-injection. Strong uptake of the tracer was observed in the tumor, kidney, and bladder at 30 or 60 min post-injection as shown in the whole-body PET images. Tracer uptake in both tumors was significantly higher than normal organs and tissues including brain, heart, liver, and muscle. The high signal intensity in the kidney and bladder indicates that the tracer is mainly excreted via renal filtration.

[0123] Quantitative analysis revealed that the uptake in both BxPC3 and Capan-1 tumors was significantly higher than that in normal tissues, including brain, heart, liver, and muscle, at 30 or 60 minutes after injection. 68For Ga-HBED-CC), tumor uptake was approximately 18.3- and 13-fold higher in BxPC3 and Capan-1 tumors than in muscle at 60 min post-injection (p<0.01). 68 For ZD2-(Ga-HBED-CC), tumor uptake was approximately 10.2- and 7.3-fold higher than muscle at 60 min post-injection in BxPC3 and Capan-1 tumors, respectively (p<0.01). Tumor uptake remained significantly higher than normal tissue in both tumor models (p<0.05). These results support the conclusion that ZD2-( 68 Ga-HBED-CC) and ZD2-AH-( 68 We demonstrate that both the 5'-Ga-HBED-CC and the 5'-Ga-HBED-CC are highly specific for pancreatic cancer tumors, with minimal uptake in normal tissues, including the liver.

[0124] From the above description of the invention, those skilled in the art will recognize improvements, changes, and modifications. Such improvements, changes, and modifications within the art are intended to be covered by the appended claims. All references, publications, and patents cited in this application are incorporated herein by reference in their entirety. As describing the invention, the following are claimed:

Claims

1. A PET / SPECT probe for use in detecting, monitoring, and / or imaging cancer cells and / or cancer cell aggressiveness, comprising: 【Chemical 1】 or a salt thereof, During the ceremony, P 1 is an amino acid sequence selected from the group consisting of SEQ ID NO:1, SEQ ID NO:2, SEQ ID NO:3, SEQ ID NO:4, SEQ ID NO:5, SEQ ID NO:6, SEQ ID NO:7, SEQ ID NO:8, SEQ ID NO:9, SEQ ID NO:19, SEQ ID NO:20, SEQ ID NO:21, SEQ ID NO:22, SEQ ID NO:23, and SEQ ID NO:24; R 1 is an optional linker, which, when present, is an alkylene, alkylene oxide, arylene, or alkylenearylene linker; The probe wherein M is a positron or gamma ray emitting radionuclide.

2. M is 67 Ga, 68 Ga, 64 Cu, 99m Tc, 111 In, 89 Zr, 90 Y. 153 Sm, or 89 2. The probe of claim 1, wherein the metal is selected from the group consisting of Sr.

3. The probe of claim 1, wherein the cancer comprises at least one of breast cancer, liver cancer, stomach cancer, colon cancer, pancreatic cancer, ovarian cancer, lung cancer, kidney cancer, prostate cancer, testicular cancer, glioblastoma, sarcoma, bone cancer, brain cancer, head and neck cancer, or skin cancer.

4. The probe described in claim 1, formulated for in vivo administration.

5. The probe of claim 1, formulated for systemic administration to a subject having or suspected of having cancer.

6. A probe as described in claim 1 for detecting, monitoring, and / or imaging pancreatic cancer cells and / or pancreatic cancer cell aggressiveness.

7. The probe according to claim 1, wherein P 1 is the amino acid sequence of SEQ ID NO:1.