TEIPP peptide variants and uses thereof
The SLP vaccination platform using TEIPP antigen FLGPWPAAV enhances cross-presentation and CD8+ T cell activation against TAP-deficient cancers, addressing the immune evasion challenge by targeting tumor antigens effectively.
Patent Information
- Application Number
- JP2022531591
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-11-29
- Filing Date
- 2020-11-25
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2040-11-25
AI Technical Summary
Cancer cells downregulate components of the antigen processing machinery, such as TAP, to evade CD8 T-cell immunity, making it difficult to effectively present tumor antigens and trigger an immune response.
Development of a synthetic long peptide (SLP) vaccination platform using a novel subset of tumor antigens (TEIPPs) like FLGPWPAAV, which is selectively presented by TAP-deficient cancers, enhancing cross-presentation by dendritic cells and stimulating CD8+ T cell responses.
The modified TEIPP antigen FLGPWPAAV effectively activates LRPAP1-specific T cells, recognizing and targeting TAP-deficient tumors, offering a potential therapeutic approach for immune-evasive cancers.
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Abstract
Description
[Technical Field]
[0001] Novel peptides, nucleic acid sequences, vectors, modified cells, binding agents, and pharmaceutical compositions are provided that are useful as pharmaceuticals, for example, in the prevention or treatment of cancer or viral infections associated with impaired HLA class I antigen presentation. Corresponding methods and uses are also provided. [Background technology]
[0002] Successful T cell-targeted immunotherapy relies on the presentation of tumor antigens on the cell surface of cancer cells. However, cancer cells often downregulate components of the antigen processing machinery to prevent presentation of tumor-associated and tumor-specific antigens by HLA class I molecules. 1~3 One key step in this intracellular process is the transport of free peptides to the ER membrane by a dedicated pump, TAP, which acts as a bottleneck and transports peptides to all HLA class I molecules. 2~4 Defects in TAP-specific processing allow tumors to evade CD8 T-cell immunity, a frequent observation in human cancers.
[0003] Interest in cancer vaccines has long since waned due to the complete failure of hundreds of clinical trials to produce meaningful clinical responses. However, cancer vaccines have emerged as novel platforms have demonstrated efficacy in inducing broad CD4 and CD8 antitumor T cell immunity, increasing the immune infiltration of human cancers, and eradicating premalignant lesions. 8~10 In recent years, vaccination has been attracting renewed attention. Furthermore, vaccination appears to be a very good match with immune checkpoint blockade therapy, in that vaccinated relapsed patients responded extremely well to PD-1 therapy, and importantly, adding a long peptide vaccine to a standardized PD-1 treatment schedule improved overall response rates and median overall survival (OS). 11、12 .
[0004] All T cell-driven vaccination platforms rely on the exceptional ability of antigen-presenting cells to deliver tumor antigens to the host and cross-present these tumor antigens in HLA class I and II molecules for subsequent T cell activation. For the successful development of a therapeutic cancer vaccine, many parameters are important, including the delivery system, route of administration, and adjuvants that are thought to activate the innate immune system and induce T cell costimulatory molecules. Summary of the Invention [Problem to be solved by the invention]
[0005] There is a need for new pharmaceutical compositions for preventing and / or treating cancer. [Means for solving the problem]
[0006] The present inventors have previously developed a synthetic long peptide (SLP) vaccination platform, demonstrating that peptides of 10-35 amino acids (preferably 20-35 amino acids) have the ability to trigger CD4 and CD8 T cell responses, resulting in the eradication of pre-malignant lesions. 9、13、14 , as well as chemotherapy, have been shown to improve overall survival in cancer patients when vaccinated (Melief et al., 2019). Cross-presentation of such peptides by host dendritic cells involves multiple sequential steps, including uptake via endocytosis, cytosolic cleavage of SLPs into short peptides by the predominant proteolytic enzyme, the proteasome, transport across the ER membrane by TAP, and loading onto MHC-I molecules. 15 .
[0007] A novel subset of tumor antigens (TEIPPs, tumor epitopes associated with impaired peptide processing) is selectively presented by cancers in which TAP expression is downregulated 5~7One such TEIPP antigen (FLGPWPAAS, SEQ ID NO: 2) is derived from the signal peptide of the ubiquitously expressed LRPAP1 protein and is presented in multiple HLA-A*0201-positive TAP-deficient cancers, including renal cell carcinoma, lymphoma, melanoma, and colon cancer. It is the most immunogenic and promising human TEIPP antigen identified to date.
[0008] FLGPWPAAS is present within the signal peptide (also called "leader sequence") of LRPAP1 and functions to direct the protein translation product into the sec61 translocation channel of the ER membrane. 22 These signal peptides are usually cleaved from nascent proteins by proteases called signal peptidases (SPases), resulting in small transmembrane protein remnants. These signal peptide fragments are released from the ER membrane by proteases called signal peptide peptidases (SPPases), which cleave within the lipid bilayer. 19 A portion of the signal peptide thus enters the ER in a TAP-independent manner, which explains why signal peptides are over-represented in the HLA class I binding repertoire of TAP-deficient cells. 23~25 Although not officially stated, LRPAP 21-30 Peptide release is most likely not mediated by the proteasome, which is responsible for the proteolytic cleavage of the majority of HLA class I-presented peptides. 4 .
[0009] Although the TEIPP antigen is over-represented in the HLA class I binding repertoire of TAP-deficient cells, we found that TAP-deficient tumors were unable to prime TEIPP-specific T cells (Doorduijn et al., 2017).
[0010] The data presented herein demonstrate that dendritic cells express natural LRPAP presented by HLA-A*0201. 21-30When the epitope (FLGPWPAAS) was extended by its native flanking sequence, the long version was unable to be cross-presented. Notably, changing the amino acid at the C-terminal anchor residue from serine (S) to valine (V) resulted in enhanced T cell stimulation. LRPAP was isolated using multimers presenting either the S or V variants. 21-30 Specific CD8+ T cells were able to co-stain with other multimers to the same extent and thus recognized other peptides, as well as TAP-deficient tumor cells. 21-30 Similar findings were obtained when V variant SLPs were transfected with specific TCRs. Importantly, in vitro vaccination with V variant SLPs resulted in cross-presentation of the peptide vaccine and the generation of polyclonal LRPAP1-specific CD8+ T cell cultures isolated from the normal T cell repertoire. CD8+ T cell clones expanded from these cultures not only recognized native S-containing peptides but also showed a highly selective ability to recognize TAP-deficient melanoma cells.
[0011] The data presented herein show that minor changes to the signal peptide epitope preserve the immunogenicity of TEIPP antigens, making them suitable candidates for SLP vaccine formats. Such vaccines may represent a rescue therapy for immune-evasive cancers by activating LRPAP1-specific T cells found in all tested healthy donors.
[0012] Among the multiple single amino acid peptide variants tested herein, FLGPWPAAV was found to be the most effective. The present invention is therefore based on the surprising discovery that a single, specific amino acid change in the sequence of the FLGPWPAAS peptide (to FLGPWPAAV, SEQ ID NO: 1) results in higher binding affinity of the peptide to HLA-A*02 and more efficient cross-presentation by monocyte-derived dendritic cells. Surprisingly, this specific amino acid change enables the peptide to be used as a more effective peptide vaccine.
[0013] Thus, in one aspect, the present invention provides an isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1).
[0014] Suitably, the peptide may have 35 or fewer amino acids.
[0015] Suitably, the peptide may consist of the amino acid sequence FLGPWPAAV (SEQ ID NO: 1).
[0016] Preferably, the peptide may contain the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and may consist of 10 to 35 amino acids.
[0017] Suitably, the peptide may be conjugated to a TLR ligand.
[0018] In another aspect, the present invention provides an isolated nucleic acid sequence encoding a peptide of the present invention.
[0019] Suitably, the nucleic acid sequence may be mRNA or DNA.
[0020] In another embodiment, the invention provides a binding agent that specifically binds to a peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1).
[0021] Suitably, the binding agent may be an HLA-A2*02 molecule.
[0022] In another aspect, the present invention provides a vector comprising a nucleic acid sequence of the present invention.
[0023] Preferably, the vector may be a plasmid or a viral vector. Optionally, the vector may be selected from the group consisting of retrovirus, lentivirus, adeno-associated virus, adenovirus, vaccinia virus, canarypox virus, herpes virus, minicircle vector, and synthetic DNA or RNA.
[0024] In another aspect, the present invention provides modified cells that have been transformed, transfected, or transduced with a nucleic acid sequence of the invention or a vector of the invention.
[0025] Preferably, the modified cells may be human cells.
[0026] In another aspect, the present invention provides a method for preparing a peptide of the present invention, comprising culturing a modified cell of the present invention in a culture medium and isolating the peptide from the culture medium or from a lysate of the modified cell after cell lysis.
[0027] In another aspect, the present invention provides cells loaded with the peptides of the present invention.
[0028] Suitably, the cell may be an antigen-presenting cell, which may be selected from a macrophage, a dendritic cell, a monocyte, a B cell, or a synthetic form of an antigen-presenting cell.
[0029] In another aspect, the present invention provides a pharmaceutical composition comprising an isolated peptide, nucleic acid sequence, vector, binding agent, or cell according to the invention and a pharmaceutically acceptable excipient, adjuvant, diluent, and / or carrier.
[0030] Suitably, the composition may be formulated as a vaccine.
[0031] In another aspect, the present invention provides a pharmaceutical composition according to the present invention for use as a medicament.
[0032] Suitably, the pharmaceutical composition may be for use in the prevention or treatment of cancer or viral infections associated with impaired HLA class I antigen presentation in a human subject.
[0033] In another aspect, the present invention provides a method of treating a condition in a human subject in need thereof, comprising administering to the subject a therapeutically effective amount of a pharmaceutical composition of the present invention.
[0034] Preferably, the method may be for the prevention or treatment of cancer or viral infections associated with impaired HLA class I antigen presentation.
[0035] Suitably, in any aspect of the present invention, the cancer may be a cancer associated with an impairment of the peptide processing mechanism.
[0036] Suitably, in any aspect of the invention, the cancer may be lung cancer, melanoma, renal cell carcinoma, Merkel cell carcinoma, head and neck cancer, cervical cancer, lymphoma, urothelial carcinoma, mismatch repair deficient tumors, squamous cell carcinoma, Alternatively, or additionally, the cancer may be pancreatic cancer, breast cancer, bladder cancer, prostate cancer, gastric cancer, or esophageal cancer.
[0037] In another embodiment, the present invention provides a method of treating cancer or a viral infection associated with impaired HLA class I antigen presentation in a human subject, comprising: (i) determining the presence of a peptide in a sample isolated from a subject, wherein the peptide is FLGPWPAAS (SEQ ID NO: 2); and (ii) administering to the subject a therapeutically effective amount of a pharmaceutical composition of the present invention. The present invention provides a method comprising:
[0038] In another aspect, the present invention provides a pharmaceutical composition according to the present invention for use in treating or preventing a cancer or viral infection associated with impaired HLA class I antigen presentation in a human subject, wherein the subject has been identified as having a cancer or viral infection associated with impaired HLA class I antigen presentation by the presence of a peptide in a sample isolated from the subject, and the peptide is FLGPWPAAS (SEQ ID NO: 2).
[0039] Throughout the description and claims of this specification, the words "comprise" and "contain" and variations thereof mean "including but not limited to" and are not intended to (and do not) exclude other moieties, additives, components, integers, or steps.
[0040] Throughout the description and claims of this specification, the singular encompasses the plural unless the context otherwise requires. Specifically, where the indefinite article is used, this specification shall be understood to contemplate the plural as well as the singular, unless the context otherwise requires.
[0041] It is understood that any property, integer, feature, compound, chemical moiety, or group described in connection with a particular aspect, embodiment, or example of the invention is applicable to any other aspect, embodiment, or example described herein, unless incompatible therewith.
[0042] Various aspects of the invention are described in further detail below.
[0043] Embodiments of the present invention are further described below with reference to the accompanying drawings. [Brief explanation of the drawings]
[0044] [Figure 1-1]Figure 1 shows that substitution of amino acids at the C-terminus of the LRPAP1 signal peptide enables cross-presentation by dendritic cells. (A) Monocyte-derived dendritic cells were incubated with long peptides containing the indicated LRPAP1 epitopes and cocultured with the TEIPP-specific CD8 T cell clone 1A8. The minimal epitope was extended using non-naturally occurring adjacent amino acids at the amino terminus, naturally occurring adjacent amino acids at the carboxy terminus, or naturally occurring adjacent amino acids at both termini. GM-CSF secretion by TEIPP-specific T cell clones was used to determine cross-presentation efficiency, and pulsing with the short peptide (FLGPWPAAS) was used as a positive control. (B) Predicted HLA-A2*01 binding affinity scores (MHCnet 4.0 algorithm) for LRPAP1 peptides with substituted amino acids at the C-terminus p9. Binding affinity scores were calculated based on IC50 values and ranking percentages (see Table 2 for exact values). (C) Predicted proteasomal cleavage activity of four different LRPAP1 peptides using the NetCHop 3.1 algorithm. A score of 1 is the highest and predicts proteasomal cleavage after the indicated amino acid. The arrow indicates the C-terminus of the LRPAP1 epitope. (D) Functional T cell avidity was measured as GM-CSF secretion by TEIPP-specific T cell clones stimulated with EBV-JY cells pulsed with short peptides at serial dilutions of the peptide. Means and standard deviations are plotted from one of three experiments with similar results. (E) EC50 values were calculated from the values obtained in D (EC value represents the dose of that peptide that produces a half-maximal response to a particular peptide variant). (F) Monocyte-derived dendritic cells were cultured with different long S and V peptides of the LRPAP1 sequence as indicated. Cross-presentation of the indicated long peptides was determined by the T cell clones. Each short peptide (9 amino acids in length) served as a positive control. (G) Summary of cross-presentation experiments using dendritic cells derived from eight different donors. [Figure 1-2] Same as above. [Figure 1-3] Same as above. [Figure 1-4]Same as above. [Figure 1-5] Same as above. [Figure 2-1] Figure 2 shows the isolation of LRPAP1-specific T cells using HLA-A2*01 tetramers containing either a short native-sequence peptide or a V-substituted peptide. (A) Schematic of the tetramer pull-down approach and subsequent stimulation with the short peptide. (B) Flow cytometry staining of T cells with two fluorescently labeled tetramers containing either the short native sequence (horizontal axis) or the V-substituted peptide (vertical axis) determined the specificity of T cells isolated with the polyclonal FLGPWPAAS peptide (upper panel) or the FLGPWPAAV peptide (lower panel). (C) Geometric mean of double tetramer-positive cells in T cells isolated with the FLGPWPAAS or FLGPWPAAV peptide. (D) IFNγ and GM-CSF production of polyclonal T cell bulks upon stimulation with peptide-pulsed EBV-JY cells, as measured by ELISA. Means and standard deviations are plotted from one of three independent experiments. (E) Reactivity of these polyclonal T cell bulks when stimulated with wild-type and TAP knockout 518A2 melanoma cells (rendered TAP-deficient by CRISPR / CAS9 technology) or non-tumor cells (control), as measured by production of the indicated cytokines using ELISA. [Figure 2-2] Same as above. [Figure 2-3] Same as above. [Figure 3-1]Figure 3 shows the use of LRPAP1-specific T cell receptors in gene transfer experiments to confer LRPAP1 specificity to other CD8 T cells. (A) Flow cytometry staining of control and LRPAP1-specific T cell clone 1A8 using three different Vβ antibodies (Vβ5.2, Vβ2, and Vβ12 in each quartile) reveals the expression of TCR Vβ2 usage by clone 1A8. (B) Transduction of the TCRαβ gene into T cells from a healthy donor. The transferred gene contains the murine TCR-Cβ domain, which enhances correct pairing of the transgenic alpha and beta chains. Expression of this domain is confirmed in TCR-transduced T cells (horizontal axis). (C) Staining of TCRαβ-transduced CD8 T cells with fluorescently labeled tetramers containing the native short peptide sequence (left panel) or V-substituted peptides (right panel). (D) Functional reactivity of tetramer-enriched TCR-transduced T cells to peptide-pulsed EBV-JY cells, as measured by the indicated cytokine production using ELISA. Means and standard deviations are shown from one of three experiments with similar results. (D) TCR-transduced T cells were stimulated with either wild-type versions of two different melanoma cell lines or TAP knockout (TAP KO) mutants generated by CRISPR / CAS9 technology. Wild-type cells pulsed with the native short peptide demonstrated that the T cells were able to recognize tumor cells. T cells alone served as a control. [Figure 3-2] Same as above. [Figure 4-1]Figure 4 shows that in vitro vaccination with V variant peptides delivered as synthetic long peptides (V-SLPs) using the described protocol results in the stimulation of LRPAP1-specific T cells. Briefly, CD14 monocytes isolated from PBMCs of healthy donors were differentiated into dendritic cells by culturing with GM-CSF and IL-4 for 6 days. On day 7, moDCs were seeded into 96-well plates and incubated with 20 μM V-SLP for 20 hours. For the final 18 hours, DCs were matured with 20 ng / μL LPS. On day 8, moDCs were washed and cocultured with PBMCs enriched for LRPAP1-specific T cells using FLGPWPAAS tetramers. (A) Overview of the in vitro vaccination protocol using two V variant peptides (C- and N-terminally extended) as synthetic long peptides that require cross-presentation by monocyte-derived dendritic cells for CD8 T cell priming. (B) The in vitro vaccination protocol resulted in T cell bulk cultures containing LRPAP1-specific CD8 T cells, as determined by flow cytometry using fluorescently labeled tetramers. Control cocultures were incubated without peptide. (C) LRPAP1-specific T cell clones were generated by single-cell FACS sorting, and their specificity for wild-type (S-mutant) and V-mutant peptides was assessed by flow cytometry using two fluorescently labeled tetramers containing the short wild-type sequence (horizontal axis) or the V-substituted peptide (vertical axis). Clone 1A8 was generated, as described in a previous study, and was used herein as the reference clone. (D) LRPAP1-specific T cell clones were evaluated for recognition of TAP-deficient melanoma cell lines and their wild-type counterparts. Means and standard deviations are shown from one of two experiments with similar results. Clone 1A8 served as a positive control. [Figure 4-2] Same as above. [Figure 4-3] Same as above. [Figure 4-4] Same as above. [Figure 5-1]Figure 5 shows the cross-presentation of an N-terminally extended variant of the V-variant peptide (FLGPWPAAV) using natural adjacent amino acids at the N-terminus of the short peptide epitope. (A) The specificity of the constructed LRPAP1-specific 1A8 T cell clone was verified by flow cytometry analysis using fluorescently labeled HLA-A*0201-FLGPWPAAS tetramer. (B) V-SLPs of different lengths were cross-presented by moDCs as described in Figure 4 and tested for recognition by clone 1A8. The natural short epitope FLGPWPAAS was used as a positive control and exogenously pulsed in moDCs. Incubation of moDCs without any peptide served as a negative control. GM-CSF production in the supernatant was measured by ELISA the following day. (C) LRPAP1 (FLGPWPAAS)-specific T cells generated from PBMCs of lung cancer patient x-23 were stained with fluorescently labeled HLA-A*0201-FLGPWPAAS tetramer to demonstrate the specificity of the T cell bulk. (D) moDCs were incubated with different N-terminally extended variants of the V variant peptide (FLGPWPAAV), which uses natural adjacent amino acids at the N-terminus of the epitope. GM-CSF production by the T cell bulk x-23 in the supernatant was measured by ELISA the following day. Two different peptide batches of V variant (FLGPWPAAV) with different lengths, produced by different manufacturers, were used in this experiment. All experiments were performed in triplicate. [Figure 5-2] Same as above. [Figure 5-3] Same as above. [Figure 5-4] Same as above. [Figure 6-1]FIG. 6 shows that synthetic long peptides of 18, 21, 24, and 27 amino acids in length containing the FLGPWPAAV sequence can stimulate the proliferation of HLA-A*02:01 FLGPWPAAS-specific CD8+ T cells that preferentially recognize TAP KO melanoma cells when used in the in vitro stimulation protocol described in FIG. 4 . A) The percentage of CD8+ T cells staining positive for the HLA-A*02:01 FLGPWPAAS tetramer in two different healthy blood donors stimulated 2-3 times with the indicated length variants of LRPAP121-30 FLGPWPAAV containing synthetic long peptides indicates proliferation of CD8+ T cells staining positive for the HLA-A*02:01 FLGPWPAAS tetramer, which preferentially recognize TAP KO melanoma cells as shown in B) using T cell cultures from A stimulated with the 24-mer long peptide and co-cultures with TAP-active and TAP KO melanoma cell lines. The 18-mer (also referred to as 18-mer) is SEQ ID NO: 4, the 21-mer (also referred to as 21-mer) is SEQ ID NO: 5, the 24-mer (also referred to as 24-mer) is SEQ ID NO: 6, and the 27-mer (also referred to as 27-mer) is SEQ ID NO: 7. [Figure 6-2] Same as above. DETAILED DESCRIPTION OF THE INVENTION
[0045] The patent documents, scientific documents, and technical documents referred to in this specification constitute the knowledge available to those skilled in the art at the time of filing.All disclosures of issued patents, published and pending patent applications, and other publications cited in this specification are incorporated herein by reference to the same extent as if each was specifically and individually indicated to be incorporated by reference.In the event of any discrepancy, the present disclosure shall prevail.
[0046] Various aspects of the invention are described in further detail below.
[0047] Immunogenic peptides Provided herein is an isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1).
[0048] A peptide comprising the amino acid sequence "FLGPWPAAV" (SEQ ID NO: 1) is also referred to herein as a "V variant" peptide or "V peptide." Similarly, a peptide comprising the amino acid sequence "FLGPWPAAS" (SEQ ID NO: 2) is also referred to herein as an "S variant" peptide, "S peptide," or "natural short epitope," or "natural short peptide epitope."
[0049] As used herein, "isolated peptide" refers to a peptide that is not in its natural environment. The peptide may therefore be of synthetic origin (or alternatively, of natural origin but isolated from its natural environment). In the context of the present disclosure, the natural environment of these peptides is the human body. Thus, when peptides are present, for example, in a pharmaceutical composition (including an adjuvant, etc.), they are considered to be in isolated form because they are not in their natural environment.
[0050] The peptide may consist solely of the amino acid sequence of SEQ ID NO: 1. Alternatively, the peptide may include additional amino acids and thus comprise the amino acid sequence of SEQ ID NO: 1.
[0051] In one example, a peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) may have a higher binding affinity to HLA-A*02 than an equivalent peptide in which the FLGPWPAAV (SEQ ID NO: 1) sequence is replaced with FLGPWPAAS (SEQ ID NO: 2). In a specific example, a peptide comprising FLGPWPAAV (SEQ ID NO: 1) has a higher binding affinity to HLA-A*02:01 than an equivalent peptide in which the FLGPWPAAV (SEQ ID NO: 1) sequence is replaced with FLGPWPAAS (SEQ ID NO: 2). Methods for determining the binding affinity of a peptide to an HLA molecule are well known in the art (see, for example, the experiments included in the "Examples" section below). Methods for determining the binding affinity of a peptide to an HLA molecule are well known in the art and are specifically described by Van der Burg et al. 1995 and Van der Burg et al. 1996.
[0052] In a further example, cross-presentation by monocyte-derived dendritic cells of a peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) may be more effective (improved / higher) than cross-presentation of an equivalent peptide in which the FLGPWPAAV (SEQ ID NO: 1) sequence is replaced with FLGPWPAAS (SEQ ID NO: 2). Methods for determining the effectiveness of cross-presentation of a particular peptide by monocyte-derived dendritic cells are well known in the art; see, for example, the experiments included in the "Examples" section below. In one example, cross-presentation of a long peptide comprising the equivalent peptide epitope can be tested by using monocyte-derived dendritic cells (DCs) and CD8+ T cell clones that recognize the peptide FLGPWPAAS in the context of HLA class I. Monocyte-derived DCs were obtained by incubating peripheral blood mononuclear cells with anti-CD14 magnetic beads for 20 minutes at 4°C, followed by isolation of CD14-positive monocytes using a magnetic separation column. CD14+ monocytes were cultured for 6 days in RPMI medium supplemented with 10% FCS, GM-CSF (800 units / ml), and IL-4 (500 units / ml) to generate immature monocyte-derived dendritic cells. On day 6, immature monocyte-derived DCs were incubated with different doses (e.g., 20 μg / ml, 10 μg / ml, 5 μg / ml) of synthetic long-chain peptides for 24 hours, and on day 7, they were matured by stimulation with LPS (20 ng / ml). Peptide cross-presentation by these monocyte-derived DCs was monitored by the reactivity of CD8+ T cell clones co-cultured with peptide-pulsed monocyte-derived DCs at different ratios (e.g., 10 T cells to 1 DC, 1 T cell to 5 DC, and 1 T cell to 1 DC). The reactivity of CD8+ T cell clones can be tested in various ways, including measuring cytokine production (e.g., GM-CSF or interferon-gamma) in the coculture supernatant and compared to control cocultures in which monocyte-derived DCs were pulsed with an irrelevant HLA class I-binding peptide or no peptide. As a positive control, monocyte-derived DCs can be pulsed with the natural short-chain epitope FLGPWPAAS.
[0053] In a further example, the peptides described herein may have high binding affinity for HLA-A*02 (e.g., HLA-A*02:01), and cross-presentation of these peptides by monocyte-derived dendritic cells may be more effective (improved / higher) than comparable peptides.
[0054] As will be apparent to one of skill in the art, as used above, an "equivalent peptide" is a peptide having the same amino acid sequence except for the listed differences (FLGPWPAAV (SEQ ID NO: 1) being replaced with FLGPWPAAS (SEQ ID NO: 2)).
[0055] The isolated peptides can be 35 amino acids or less in length, e.g., 35, 34, 33, 32, 31, 30, 29, 28, 27, 26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10, or 9 amino acids or less.
[0056] In one example, the isolated peptide may be 30 or fewer amino acids in length. In another example, the isolated peptide may be 29 or fewer amino acids in length. In one example, the isolated peptide may be 28 or fewer amino acids in length. In another example, the isolated peptide may be 27 or fewer amino acids in length. In another example, the isolated peptide may be 26 or fewer amino acids in length. In yet another example, the isolated peptide may be 25 or fewer amino acids in length. In another example, the isolated peptide may be 24 or fewer amino acids in length.
[0057] Peptides of different lengths have been shown to be particularly effective as peptide vaccines. For example, Ossendorp et al. (1998) described that peptides 9 to 19 amino acids in length can induce CD4+ helper T cell responses. Thus, the isolated peptides of the present invention may be 9 to 19 amino acids in length.
[0058] Peptides longer than the conventional 9-mer sequences presented by HLA may be more effective in inducing an immune response. Thus, consistent with the teachings of Ossendorp et al. (1998), the isolated peptides described herein may be 10-19 amino acids in length.
[0059] Bijker et al. (2007) demonstrated that a 9-mer HPV CTL epitope can induce CD8+ responses against RAHYNIVTF, but a 35-mer peptide containing this epitope is more efficient. This is further supported by Beyranvand-Nejad et al. (2016), who demonstrated that a 35-mer HPV peptide works well to induce RAHYNIVTF-specific CD8+ T cells. Furthermore, Rahimian et al. (2015) demonstrated that a 27-mer HPV peptide works well to induce responses against RAHYNIVTF. Thus, consistent with these teachings, the isolated peptides described herein may be 10 to 35 amino acids in length. For the avoidance of doubt, in this context, the isolated peptide has a total of 10 to 35 amino acids, which includes the FLGPWPAAV sequence. In other words, the isolated peptide has the FLGPWPAAV sequence and 1 to 26 additional amino acids. The 1 to 26 additional amino acids of the isolated peptide can be located N-terminally or C-terminally to the FLGPWPAAV sequence. Alternatively, when 2 to 26 additional amino acids are present, the additional amino acids can be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids are present N-terminally and C-terminally to the FLGPWPAAV sequence). Additional amino acids located N-terminally, C-terminally, or adjacent to the FLGPWPAAV are collectively referred to herein as "additional amino acids."
[0060] In another example, the isolated peptides described herein may be 15 to 30 amino acids in length. In other words, the isolated peptides have a FLGPWPAAV sequence and 6 to 21 additional amino acids. The 6 to 21 additional amino acids of the isolated peptide may be located N-terminally or C-terminally to the FLGPWPAAV sequence. Alternatively, if 6 to 21 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids will be located N-terminally and C-terminally to the FLGPWPAAV sequence).
[0061] In another example, the isolated peptides described herein may be 18 to 27 amino acids in length. In other words, the isolated peptides have a FLGPWPAAV sequence and 9 to 18 additional amino acids. The 9 to 18 additional amino acids of the isolated peptide may be located N-terminally or C-terminally to the FLGPWPAAV sequence. Alternatively, when 9 to 18 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids will be located N-terminally and C-terminally to the FLGPWPAAV sequence).
[0062] In a further example, the isolated peptides described herein may be 21 to 24 amino acids in length. In other words, the isolated peptides have a FLGPWPAAV sequence and 12 to 15 additional amino acids. The 12 to 15 additional amino acids of the isolated peptide may be located N-terminally or C-terminally to the FLGPWPAAV sequence. Alternatively, when 12 to 15 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids will be located N-terminally and C-terminally to the FLGPWPAAV sequence).
[0063] In another example, the isolated peptides described herein may be 27 amino acids in length. In a further example, the isolated peptides described herein may be 24 amino acids in length. In another example, the isolated peptides described herein may be 21 amino acids in length. In a particular example, the isolated peptides described herein may be 18 amino acids in length. Preferably, the isolated peptides described herein are 24 amino acids in length. For the avoidance of doubt, in this context, the isolated peptides have, for example, a total of 27, 24, 21, or 18 amino acids, including the FLGPWPAAV sequence. In other words, the isolated peptides have the FLGPWPAAV sequence and a suitable number of additional amino acids (i.e., to produce a peptide of 27, 24, 21, or 18 amino acids in length). The additional amino acids (e.g., 18 additional amino acids required to generate a peptide that is 27 amino acids in length, 15 additional amino acids required to generate a peptide that is 24 amino acids in length, 12 additional amino acids required to generate a peptide that is 21 amino acids in length, or 9 additional amino acids required to generate a peptide that is 18 amino acids in length) can be located N-terminal or C-terminal to the FLGPWPAAV sequence. Alternatively, the additional amino acids can be adjacent to the FLGPWPAAV sequence (i.e., there will be additional amino acids N-terminal and C-terminal to the FLGPWPAAV sequence).
[0064] The N-terminus of a peptide (also known as the amino terminus, NH2-terminus, N-terminus, or amine terminus) is the starting position of the peptide, ending with an amino acid having a free amine group (-NH2). By convention, peptide sequences are written from the N-terminus to the C-terminus (left to right). The C-terminus (also known as the carboxyl terminus, carboxyl terminus, C-terminal tail, C-terminus, or COOH-terminus) is the end of an amino acid chain (protein or polypeptide) that ends with a free carboxyl group (-COOH).
[0065] As used herein, the terms "N-terminal" and "C-terminal" are used to describe, for example, the relative location of a sequence within a peptide. Thus, an "N-terminal" sequence is located (relatively) closer to the N-terminus than the C-terminus of the peptide. In contrast, a "C-terminal" domain is located (relatively) closer to the C-terminus than the N-terminus of the peptide. As used herein, the term "located" refers to the location of a sequence within the linear amino acid sequence of a peptide.
[0066] A peptide comprising an N-terminal amino acid sequence (A) and a C-terminal amino acid sequence (B) is conventionally written as AB, ie, from N-terminal to C-terminal (left to right).
[0067] When the isolated peptides described herein include additional amino acids located at the N-terminus, C-terminus, or adjacent to FLGPWPAAV, any suitable additional amino acid sequence can be included. For example, the additional amino acids may be an amino acid sequence that is naturally located at the N-terminus, C-terminus, or adjacent to the FLGPWPAAS sequence in LRPAP1. In a specific example, the additional amino acids may be located N-terminally to the FLGPWPAAV sequence, or may be a naturally occurring sequence found N-terminally to the FLGPWPAAS sequence in LRPAP1. In another example, the additional amino acids may be located C-terminally to the FLGPWPAAV sequence, or may be a naturally occurring sequence found C-terminally to the FLGPWPAAS sequence in LRPAP1. Alternatively, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., additional amino acids will be present N-terminally and C-terminally to the FLGPWPAAV sequence), or may be a naturally occurring sequence that is adjacent to the FLGPWPAAS sequence in LRPAP1.
[0068] An isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consisting of 10 to 35 amino acids can include any suitable additional amino acid sequence. For example, the additional amino acids may be an amino acid sequence naturally located N-terminal, C-terminal, or adjacent to the FLGPWPAAS sequence in LRPAP1. For example, the additional 1 to 26 amino acids may all be located N-terminal to the FLGPWPAAV sequence, or may be a naturally occurring sequence found N-terminal to the FLGPWPAAS sequence in LRPAP1. In another example, the additional 1 to 26 amino acids may be located C-terminal to the FLGPWPAAV sequence, or may be a naturally occurring sequence found C-terminal to the FLGPWPAAS sequence in LRPAP1. Alternatively, when 2 to 26 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids are present N-terminally and C-terminally to the FLGPWPAAV sequence), or may be a naturally occurring sequence adjacent to the FLGPWPAAS sequence in LRPAP1.
[0069] In certain examples, an isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consisting of 15 to 30 amino acids can include any suitable additional amino acid sequence. For example, the additional amino acids may be an amino acid sequence naturally located N-terminal, C-terminal, or adjacent to the FLGPWPAAS sequence in LRPAP1. For example, the additional 6 to 21 amino acids may all be located N-terminal to the FLGPWPAAV sequence, or may be a naturally occurring sequence found N-terminal to the FLGPWPAAS sequence in LRPAP1. In another example, the additional 6 to 21 amino acids may be located C-terminal to the FLGPWPAAV sequence, or may be a naturally occurring sequence found C-terminal to the FLGPWPAAS sequence in LRPAP1. Alternatively, if 6 to 21 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids will be present N-terminally and C-terminally to the FLGPWPAAV sequence), or may be a naturally occurring sequence adjacent to the FLGPWPAAS sequence in LRPAP1.
[0070] In another example, an isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consisting of 18 to 27 amino acids can include any suitable additional amino acid sequence. For example, the additional amino acids may be an amino acid sequence naturally located N-terminal, C-terminal, or adjacent to the FLGPWPAAS sequence in LRPAP1. For example, the additional 9 to 18 amino acids may all be located N-terminal to the FLGPWPAAV sequence, or may be a naturally occurring sequence found N-terminal to the FLGPWPAAS sequence in LRPAP1. In another example, the additional 9 to 18 amino acids may be located C-terminal to the FLGPWPAAV sequence, or may be a naturally occurring sequence found C-terminal to the FLGPWPAAS sequence in LRPAP1. Alternatively, if 9 to 18 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., the additional amino acids will be present N-terminally and C-terminally to the FLGPWPAAV sequence), or may be a naturally occurring sequence adjacent to the FLGPWPAAS sequence in LRPAP1.
[0071] In a further example, an isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consisting of 21 to 24 amino acids can include any suitable additional amino acid sequence. For example, the additional amino acids can be an amino acid sequence naturally located N-terminal, C-terminal, or adjacent to the FLGPWPAAS sequence in LRPAP1. For example, the additional 12 to 15 amino acids can all be located N-terminal to the FLGPWPAAV sequence, or can be a naturally occurring sequence found N-terminal to the FLGPWPAAS sequence in LRPAP1. In another example, the additional 12 to 15 amino acids can be located C-terminal to the FLGPWPAAV sequence, or can be a naturally occurring sequence found C-terminal to the FLGPWPAAS sequence in LRPAP1. Alternatively, if 12 to 15 additional amino acids are present, the additional amino acids may be adjacent to the FLGPWPAAV sequence (i.e., there will be additional amino acids on the N- and C-terminal sides of the FLGPWPAAV sequence), or may be a naturally occurring sequence adjacent to the FLGPWPAAS sequence in LRPAP1.
[0072] As will be apparent to those skilled in the art, the examples of ranges provided above are equally applicable to isolated peptides of a particular length (e.g., peptides described herein that are 27, 24, 21, or 18 amino acids in length). For example, an isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consisting of 24 amino acids can include any suitable additional amino acid sequence. For example, the additional amino acids may be an amino acid sequence naturally located N-terminal, C-terminal, or adjacent to the FLGPWPAAS sequence in LRPAP1. For example, the additional 15 amino acids may all be located N-terminal to the FLGPWPAAV sequence, or may be the naturally occurring sequence found N-terminal to the FLGPWPAAS sequence in LRPAP1. In another example, the additional 25 amino acids may be located C-terminal to the FLGPWPAAV sequence, or may be the naturally occurring sequence found C-terminal to the FLGPWPAAS sequence in LRPAP1. Alternatively, the additional 15 amino acids may flank the FLGPWPAAV sequence (i.e., there will be additional amino acids N- and C-terminal to the FLGPWPAAV sequence), or may be the naturally occurring sequence that flanks the FLGPWPAAS sequence in LRPAP1. Suitable naturally occurring sequences derived from LRPAP1 are provided in the Examples section below.
[0073] For example, the peptide may include additional amino acids on the C-terminus, e.g., it may include the sequence FLGPWPAAVHGGKYSREKNQ (SEQ ID NO: 3). This is an example of a 20-mer with additional amino acids on the C-terminus, although other lengths, e.g., 18-mers, 21-mers, 24-mers, 27-mers, etc., may also be acceptable.
[0074] In another example, the peptide may include additional amino acids on the N-terminus, for example, it may include one of the following sequences: LPALLLLLLFLGPWPAAV (SEQ ID NO: 4), LRGLPALLLLLLFLGPWPAAV (SEQ ID NO: 5), RSFLRGLPALLLLLLFLGPWPAAV (SEQ ID NO: 6), or RRVRSFLRGLPALLLLLLFLGPWPAAV (SEQ ID NO: 7). These are examples of 18-mers, 21-mers, 24-mers, and 27-mers with additional amino acids on the N-terminus, although other lengths may also be acceptable.
[0075] In one example, the isolated peptide can comprise the amino acid sequence of SEQ ID NO: 4. In another example, the isolated peptide can consist of the amino acid sequence of SEQ ID NO: 4.
[0076] In one example, the isolated peptide can comprise the amino acid sequence of SEQ ID NO: 5. In another example, the isolated peptide can consist of the amino acid sequence of SEQ ID NO: 5.
[0077] In another example, the isolated peptide can comprise the amino acid sequence of SEQ ID NO: 6. In yet another example, the isolated peptide can consist of the amino acid sequence of SEQ ID NO: 6.
[0078] In a further example, the isolated peptide can comprise the amino acid sequence of SEQ ID NO: 7. In another example, the isolated peptide can consist of the amino acid sequence of SEQ ID NO: 7.
[0079] Alternative suitable naturally occurring sequences derived from LRPAP1 can also be identified by those skilled in the art, for example, they can be identified using the full-length LRPAP1 sequence found in SEQ ID NO:27.
[0080] In an alternative example, the additional amino acids may be an amino acid sequence that is not naturally located N-terminal, C-terminal, or adjacent to the FLGPWPAAS sequence in LRPAP1. Both natural and non-natural flanking sequences have been shown to be useful in isolated peptide vaccines, and therefore, either can be used in the peptides described herein. For example, the SIINFEKL epitope of the OVA antigen has been successfully used as a peptide vaccine when it is flanked by its natural sequence (Bijker et al., (2007)), when it is flanked by a non-natural C-terminal flanking sequence (Varypataki et al., (2015)), or when it has no N-terminal flanking sequence but has a glycine linker attached to a helper epitope at the C-terminal position, thus being completely outside the context of its own natural flanking sequence (Masuko et al., (2015)). Furthermore, Chen et al., (2016) described a 15-epitopes CTL vaccine with a small, non-natural linker to the next epitope that provides priming to the epitope. Thus, additional non-natural amino acid sequences at the N- and / or C-termini may be acceptable in peptide vaccine formats. Variations to these sequences, such as RGLPALLLLLFLGPWPAAV (SEQ ID NO: 8) (19-mer), can also be used, as long as the peptide sequences of SEQ ID NO: 2 and / or SEQ ID NO: 1 are present in these peptides.
[0081] A peptide may be a "naturally occurring peptide," i.e., a peptide composed of naturally occurring amino acids. Such peptides are composed of conventional amino acids defined by the genetic code, linked together by normal peptide bonds. Naturally occurring peptides can be produced, for example, by a cell (by protein expression, e.g., using a nucleic acid or vector described herein) or can be made synthetically (i.e., outside the cell, using chemical synthesis).
[0082] Alternatively, the peptide may be a "synthetic peptide." A synthetic peptide may contain a mix of naturally occurring amino acids and amino acids other than the conventional amino acids defined by the genetic code ("synthetic amino acids"). Alternatively, it may be composed entirely of synthetic amino acids. Examples of synthetic amino acids are known in the literature.
[0083] Natural and synthetic peptides may be modified. In other words, peptides may contain amino acids that have been modified by natural processes, such as post-translational maturation processes, or by chemical processes well known to those skilled in the art. Such modifications have been described in detail in the literature. These modifications may occur anywhere within the peptide, within the peptide backbone, within the amino acid chain, at the carboxy- or amino-terminus. Non-limiting examples of peptide modifications include acetylation, acylation, ADP-ribosylation, amidation, covalent attachment of nucleotides or nucleotide derivatives, covalent attachment of lipids or lipid derivatives, covalent attachment of phosphatidylinositol, covalent or non-covalent cross-linking, cyclization, disulfide bond formation, demethylation, glycosylation (e.g., PEGylation), hydroxylation, iodination, methylation, myristoylation, oxidation, proteolytic processing, phosphorylation, prenylation, racemization, selenoylation, sulfation, amino acid addition (e.g., arginylation or ubiquitination). Such modifications are well described in the literature. Thus, the terms "peptide," "polypeptide," and "protein" can include, for example, lipopeptides, lipoproteins, glycopeptides, glycoproteins, etc. As a further non-limiting example, peptides may be branched after ubiquitination or may be cyclic, with or without branching. Modifications of this type can be the result of natural or synthetic post-translational processes that are well known to those skilled in the art.
[0084] The peptides described herein may be conjugated, either directly or via a linker, to a therapeutic moiety, a polymer, a polypeptide, a ligand, and / or any other moiety, such as a detectable moiety. Such peptides are referred to herein as "peptide conjugates."
[0085] A peptide conjugate may comprise a peptide covalently bound to a Toll-like receptor ligand. A TLR ligand may also be referred to as a TLR agonist. As used herein, a "TLR agonist" is an agonist of a Toll-like receptor (TLR), i.e., it binds to and activates the TLR, resulting in, among other things, a biological response. As used herein, a "TLR peptide agonist" is a TLR agonist that is a peptide.
[0086] Peptide conjugates containing TLR agonists are covalently linked to peptides, and in particular, TLR agonists that are covalently linked to synthetic peptides are well known in the art.For example, Zom et al., (2018) describes the conjugation of TLR2 ligand Pam3CSK4 to synthetic long peptide (SLP).Furthermore, Zom et al., (2016) describes the conjugation of the synthetic long peptide encoded by human papillomavirus type 16 (HPV16) to TLR2 agonists based on Pam3CSK4.
[0087] Toll-like receptors (TLRs) are transmembrane proteins characterized by an extracellular domain, a transmembrane domain, and a cytoplasmic domain. The extracellular domain, which contains horseshoe-shaped leucine-rich repeats (LRRs), is involved in the recognition of common molecular patterns derived from diverse microorganisms. Toll-like receptors include TLRs 1 to 10. Compounds capable of activating TLR receptors and their modified and derivative forms have been well documented in the art. TLR1 can be activated by bacterial lipoproteins and their acetylated forms, while TLR2 can also be activated by Gram-positive bacterial glycolipids, LPS, LPA, LTA, pili, outer membrane proteins, heat shock proteins derived from bacteria or the host, and mycobacterial lipoarabinomannan. TLR3 can be activated by dsRNA, particularly those of viral origin, or by the chemical compound poly(LC). TLR4 can be activated by Gram-negative LPS, LTA, heat shock proteins of host or bacterial origin, viral coat or envelope proteins, taxol or its derivatives, hyaluronan-containing oligosaccharides, and fibronectin. TLR5 can be activated by bacterial flagella or flagellin. TLR6 can be activated by mycobacterial lipoproteins and group B streptococcal heat-labile lytic factor (GBS-F) or staphylococcal modulin. TLR7 can be activated by imidazoquinolines. TLR9 can be activated by unmethylated CpG DNA or chromatin-IgG complexes.
[0088] TLRs are expressed either on the cell surface (TLRs 1, 2, 4, 5, 6, and 10) or on the membranes of intracellular organelles, such as endosomes (TLRs 3, 4, 7, 8, and 9). The natural ligands for endosomal receptors are nucleic acid-based molecules (except for TLR 4). Cell surface-expressed TLRs 1, 2, 4, 5, 6, and 10 recognize molecular patterns of extracellular microorganisms (Monie, TP, Bryant, CE, et al. 2009: Activating immunity: Lessons from the TLRs and NLRs. Trends Biochem. Sci. 34(11), 553-561). TLRs are expressed on multiple cell types, but virtually all TLRs are expressed on DCs, enabling these specialized cells to sense all potential pathogens and danger signals.
[0089] TLR2, 4, and 5 are constitutively expressed on the surface of DCs.
[0090] TLR2 can detect a wide variety of ligands derived from bacteria, viruses, parasites, and fungi. Ligand specificity is often determined by the interaction of TLR2 with other TLRs, e.g., TLR1, 6, or 10, or with non-TLR molecules, e.g., Dectin-1, CD14, or CD36. Heterodimerization with TLR1 allows TLR2 to recognize triacyl lipoproteins or lipopeptides of microbial (mycobacterial) origin, such as Pam3CSK4 and peptidoglycan (PGA; Gay, N.) (Gangloff, M. (2007): Structure and function of Toll receptors and their ligands. Annu. Rev. Biochem. 76, 141-165; Spohn, R., Buwitt-Beckmann, U., et al. (2004): Synthetic lipopeptide adjuvants and Toll-like receptor 2-Structure-activity relationships. Vaccine 22(19), 2494-2499). Heterodimerization of TLR2 and 6 allows detection of diacyl lipopeptides and zymosan. Lipopolysaccharide (LPS) and its derivatives are ligands for TLR4, and flagellin is a ligand for TLR5 (Bryant, CE, Spring, DR, et al. (2010). The molecular basis of the host response to lipopolysaccharide. Nat. Rev. Microbiol. 8(1), 8-14).
[0091] TLR2 interacts with a wide and structurally diverse range of ligands, including molecules expressed by microorganisms and fungi. Several TLR2 agonists have been identified, including natural and synthetic lipopeptides (e.g., Mycoplasma fermentas macrophage-activating lipopeptide (MALP-2)), peptidoglycans (PGs, e.g., from Staphylococcus aureus), lipopolysaccharides (LPS) from various bacterial strains, polysaccharides (e.g., zymosan), glycosylphosphatidyl-inositol-anchored structures from Gram-positive bacteria (e.g., lipoteichoic acid (LTA)), and lipo-arabinomannan from mycobacteria and lipomannan from M. tuberculosis. Certain viral determinants can also trigger through TLR2 (Barbalat R, Lau L, Locksley RM, Barton G M. Toll-like receptor 2 on inflammatory monocytes induces type I interferon in response to viral but not bacterial ligands. Nat Immunol. 2009: 10(11):1200-7). Bacterial lipopeptides are structural components of cell walls. They consist of an acetylated s-glycerylcysteine moiety to which peptides can be conjugated via cysteine residues. Examples of bacterial lipopeptide TLR2 agonists include MALP-2 and its synthetic analogs di-palmitoyl-S-glycerylcysteine (Pam2Cys) or tri-palmitoyl-S-glycerylcysteine (Pam3Cys).
[0092] A variety of ligands interact with TLR4, including monophosphoryl lipid A (MPLA) from Salmonella minnesota R595, lipopolysaccharide (LPS), mannan (Candida albicans), glycoinositol phospholipids (Trypanosoma), viral envelope proteins (RSV and MMTV), and endogenous antigens including fibrinogen and heat shock proteins. Such TLR4 agonists are described, for example, in Akira S, Uematsu S, Takeuchi O. Pathogen recognition and innate immunity. Cell. Feb. 24; 2006: 124(4):783-801 or Kumar H, Kawai T, Akira S. Toll-like receptors and innate immunity. Biochem Biophys Res Commun. Oct. 30; 2009 388(4):621-5. LPS, found in the outer membrane of Gram-negative bacteria, is the most widely studied TLR4 ligand. Suitable LPS-derived TLR4 agonist peptides are described, for example, in WO 2013 / 120073 A1.
[0093] TLR5 is triggered by a region of the flagellin molecule that is expressed by almost all motile bacteria. Therefore, peptides or proteins derived from flagellin or variants or fragments of flagellin are also suitable as TLR peptide agonists to be included in the peptide conjugates of the present invention.
[0094] Thus, non-limiting examples of TLR peptide agonists include the TLR2 lipopeptide agonists MALP-2, Pam2Cys, and Pam3Cys, or modified forms thereof, different forms of the TLR4 agonist LPS, such as N. meningitidis wild-type L3-LPS and mutant pentaacylated LpxL1-LPS, and the TLR5 agonist flagellin.
[0095] A further non-limiting example of a TLR2 peptide agonist is Annexin II, or an immunomodulatory fragment thereof, which is described in detail in WO 2012 / 048190 A1 and US Patent Application No. 13 / 033,1546.
[0096] In a further non-limiting example, high mobility group box 1 protein (HMGB1) and its peptide fragments are expected to be TLR4 agonists. Such HMGB1-derived peptides are disclosed, for example, in U.S. Patent Application Publication No. 2011 / 0236406 A1.
[0097] The peptide conjugates according to the invention may comprise at least one TLR agonist, preferably the peptide conjugates may comprise more than one TLR agonist, in particular two, three, four, five, six, seven, eight, nine, ten or even more TLR agonists.
[0098] The at least one TLR agonist comprised by the peptide conjugate according to the present invention may be the same or different. Preferably, the various TLR agonists comprised by the peptide conjugate according to the present invention are different from each other.
[0099] It will be appreciated that several different TLR agonists that activate the same or different TLR receptors can advantageously be comprised by a single peptide conjugate according to the invention.
[0100] The isolated peptide can be administered to human subjects to treat or prevent cancer or viral infections associated with impaired HLA class I antigen presentation.For example, the isolated peptide can be administered to subjects to induce or enhance immune response.The peptide can thus be administered to subjects to induce T cell activation (for example, in vivo T cell activation) in subjects, where activated T cells are peptide-specific (therefore, specifically target cancer or virus-infected cells).
[0101] The isolated peptides can be administered as peptide vaccines to treat or prevent cancers or viral infections associated with impaired HLA class I antigen presentation. The isolated peptides can be administered to induce or enhance the activity of T cells specific to cancerous cells or virus-infected cells.
[0102] Similarly, the nucleic acid sequences and vectors encoding the peptides described herein can be administered as nucleic acid vaccines to treat or prevent cancers or viral infections associated with impaired HLA class I antigen presentation.The isolated nucleic acid sequences and vectors can be administered to induce or enhance the activity of T cells specific to cancerous cells or virus-infected cells.
[0103] The peptides described herein (and the corresponding nucleic acid sequences or vectors encoding them) may be particularly useful as immunotherapy for human subjects who are positive for HLA-A*02.
[0104] HLA-A*02 is a globally common human leukocyte antigen serotype within the HLA-A serogroup. Within the HLA-A*02 group, there are several subtypes, including HLA-A*0201, HLA-A*0202, HLA-A*0203, HLA-A*0204, HLA-A*0205, HLA-A*0206, HLA-A*0209, HLA-A*0211, HLA-A*0212, HLA-A*0216, HLA-A*0219, and HLA-A*0250. The data presented herein focuses on HLA-A*0201; however, as will be apparent to those skilled in the art, other subtypes within the HLA-A*02 group (including but not limited to those listed herein) can also bind to the natural short-chain epitope of LRPAP1, SEQ ID NO: 2 (see, e.g., Ressing et al., 1999, especially Tables 3 and 2). Thus, all HLA-A*02 subtypes are encompassed herein, although HLA-A*0201 is preferred (see Table 1 below).
[0105] [Table 1] Table 1: Predicted binding affinity of FLGPWPAAV and FLGPWPAAS to different HLA-A2 alleles. The predicted binding affinity of FLGPWPAAV (A) and FLGPWPAAS (B) to HLA-A2 alleles was determined using the MHCnet 4.0 algorithm. The values in the affinity column (in nanomolar units, nM) indicate the predicted binding affinity to the corresponding HLA-A2 allele. The rank (%) was determined by comparing the predicted binding affinity to a set of 400,000 random natural peptides. Strong binders were defined as having a rank below 0.5%, and weak binders had a rank below 2%.
[0106] Nucleic acid sequence Described herein are isolated nucleic acid sequences that encode peptides comprising the amino acid sequence of SEQ ID NO:1, as well as nucleic acid sequences that encode binding agents.
[0107] As used herein, "nucleic acid sequence," "polynucleotide," "nucleic acid," and "nucleic acid molecule" are used interchangeably to refer to an oligonucleotide sequence or a polynucleotide sequence. A nucleotide sequence may be of genomic, synthetic, or recombinant origin and may be double-stranded or single-stranded (representing the sense or antisense strand). The term "nucleotide sequence" can include genomic DNA, cDNA, synthetic DNA, and RNA (e.g., mRNA), as well as analogs of DNA or RNA produced by the use of nucleotide analogs.
[0108] As used herein, an "isolated nucleic acid sequence" refers to a nucleic acid sequence that is not in its natural environment in which it is linked to its naturally associated sequence, which is also in its natural environment. In other words, an isolated nucleic acid sequence is not a naturally occurring nucleotide sequence, where "naturally occurring nucleotide sequence" refers to an entire nucleotide sequence in its natural environment and operably linked to an entire naturally associated promoter, which promoter is also in its natural environment.
[0109] Vectors and modified cells In one aspect, the present invention provides a vector comprising a nucleic acid sequence described herein (eg, a nucleic acid sequence encoding a peptide comprising the amino acid sequence of SEQ ID NO:1).
[0110] Any suitable vector can be used.Just for example, vector can be plasmid or viral vector, for example, retroviral vector or lentiviral vector.Adenovirus, adeno-associated virus, vaccinia virus, canarypox virus, herpes virus, minicircle vector and naked (synthetic) DNA / RNA can also be used (for details of minicircle vector, see, for example, non-viral Sleeping Beauty transposition from minicircle vectors as published by R Monjezi, C Miskey, T Gogishvili, M Schleef, M Schmeer, H Einsele, Z Ivics and M Hudecek in Leukemia 2016).
[0111] The vector may include a nucleic acid sequence operably linked to a promoter.
[0112] As used herein, a "vector" refers to a nucleic acid sequence capable of transporting another nucleic acid sequence operably linked to it. A vector may be capable of autonomous replication or may integrate into host DNA. A vector may contain a restriction enzyme site for insertion of recombinant DNA and may contain one or more selectable markers or suicide genes. A vector may be a nucleic acid sequence in the form of a plasmid, bacteriophage, or cosmid. Preferably, the vector is suitable for expression in cells (i.e., the vector is an "expression vector"). Preferably, the vector is suitable for expression in human antigen-presenting cells. In certain embodiments, the vector is a viral vector, e.g., a retroviral vector, a lentiviral vector, or an adeno-associated viral vector. The vector may be selected from the group consisting of adenovirus, vaccinia virus, canarypox virus, herpes virus, minicircle vector, and synthetic DNA or RNA.
[0113] Preferably, the (expression) vector is capable of propagation in the host cell and being stably transmitted to subsequent generations.
[0114] As used herein, "operably linked" refers to a single control element, as described below, or a combination thereof, together with a coding sequence that are in a functional relationship with each other, e.g., in a linked relationship that directs expression of the coding sequence.
[0115] A vector may contain a regulatory sequence. As used herein, "regulatory sequence" refers to a DNA or RNA element that can control gene expression. Examples of expression control sequences include promoters, enhancers, silencers, TATA boxes, internal ribosome entry sites (IRES), transcription factor binding sites, transcription terminators, polyadenylation sites, etc. A vector may contain one or more regulatory sequences operably linked to a nucleic acid sequence to be expressed. Regulatory sequences include those that induce constitutive expression, as well as tissue-specific regulatory and / or inducible sequences.
[0116] A vector may contain a promoter. As used herein, "promoter" refers to a nucleotide sequence in DNA to which RNA polymerase binds and initiates transcription. A promoter may be inducible or constitutively expressed. Alternatively, a promoter is under the control of a repressor or stimulatory protein. A promoter may not be naturally found in a host cell (e.g., it may be an exogenous promoter). Those skilled in the art are well aware of suitable promoters to use for expressing a target protein, and the promoter selected will depend on the host cell.
[0117] Vector can contain transcription terminator.As used herein, "transcription terminator" refers to the DNA element that terminates the function of RNA polymerase, which is responsible for transcribing DNA into RNA.Preferred transcription terminator is characterized by a continuous piece that T residue precedes a GC-rich dyad symmetry region.
[0118] The vector may contain a translation control element. As used herein, "translation control element" refers to a DNA or RNA element that controls the translation of mRNA. A preferred translation control element is a ribosome binding site. Preferably, the translation control element is derived from a homologous system such as a promoter, for example, a promoter and its associated ribozyme binding site. Preferred ribosome binding sites are known and will depend on the host cell selected.
[0119] A vector may contain restriction enzyme recognition sites. As used herein, "restriction enzyme recognition site" refers to a motif on DNA that is recognized by a restriction enzyme.
[0120] The vector may contain a selectable marker. As used herein, "selectable marker" refers to a protein that, when expressed in a host cell, confers a phenotype to the cell, thereby allowing the selection of cells that express the selectable marker gene. Generally, this is a protein that confers a new beneficial property to the host cell (e.g., antibiotic resistance), or a protein that is expressed on the cell surface and is therefore accessible for antibody binding. Suitable selectable markers are well known in the art.
[0121] The vector may also contain a suicide gene. As used herein, the term "suicide gene" refers to a protein that induces the death of modified cells when treated with a specific drug. For example, treatment with certain nucleoside analogs, including ganciclovir, can induce suicide in cells modified with herpes simplex virus thymidine kinase gene, cells modified with human CD20 when treated with anti-CD20 monoclonal antibodies, and cells modified with inducible caspase 9 (iCasp9) when treated with AP1903 (see discussion by BS Jones, LS Lamb, F Goldman, A Di Stasi; Improving the safety of cell therapy products by suicide gene transfer. Front Pharmacol. (2014) 5:254). Suitable suicide genes are well known in the art.
[0122] Preferably, the vector contains those genetic elements necessary for the expression of the polypeptides described herein by a host cell. Elements required for transcription and translation in a host cell include a promoter, a coding region for the protein of interest, and a transcription terminator.
[0123] Those skilled in the art will be familiar with the molecular techniques available for preparing (expression) vectors and how (expression) vectors can be transduced or transfected into suitable host cells (thereby generating the modified cells described herein). The (expression) vectors of the present invention can be introduced into cells by conventional techniques, such as transformation, transfection, or transduction. "Transformation," "transfection," and "transduction" generally refer to techniques for introducing foreign (exogenous) nucleic acid sequences into host cells, and thus include methods such as electroporation, microinjection, gene gun delivery, transduction using retroviral, lentiviral, or adeno-associated viral vectors, lipofection, superfection, etc. The specific method used typically depends on both the type of vector and the cells. Suitable methods for introducing nucleic acid sequences and vectors into host cells, such as human cells, are well known in the art, see, for example, Sambrook et al. (1989) Molecular Cloning, A Laboratory Manual, Cold Spring Harbor Laboratory, Cold Spring Harbor, NY; Ausubel et al. (1987) Current Protocols in Molecular Biology, John Wiley and Sons, Inc., NY; Cohen et al. (1972) Proc. Natl. Acad. Sci. USA 69, 2110; Luchansky et al. (1988) Mol. Microbiol. 2, 637-646. Further suitable conventional methods for preparing expression vectors and introducing them into suitable host cells are described in detail, for example, in International Publication No. 2016 / 071758.
[0124] It should be understood that in some embodiments, the host cell is contacted with the vector (e.g., a viral vector) in vitro, ex vivo, and in some embodiments, the host cell is contacted with the vector (e.g., a viral vector) in vivo.
[0125] The term "host cell" includes any cell into which a nucleic acid sequence or vector described herein can be introduced (e.g., transduced). After a nucleic acid molecule or vector has been introduced into a cell, it may be referred to herein as a "modified cell." After a nucleic acid molecule or vector has been introduced into a host cell, the resulting modified cell should be capable of expressing the encoded polypeptide.
[0126] The term "modified cell" refers to a cell that has been genetically altered (e.g., transformed, transduced, or transfected). The term refers to the particular subject cell, as well as to the progeny or potential progeny of such a cell. Because certain modifications may occur in subsequent generations due to either mutations or environmental influences, such progeny may not, in fact, be identical to the parent cell, but are still included within the scope of the term as used herein.
[0127] The host cell (and thus modified cell) may be a bacterial cell, but is typically a eukaryotic cell, specifically a human cell that can overexpress an antigen for uptake by antigen-presenting cells (APCs), more specifically, an antigen-presenting cell, such as a dendritic cell (DC), B cell, monocyte, or macrophage. The host cell (and thus modified cell) may be an autologous cell, which refers to a cell derived from the same individual to which it is subsequently administered. In other words, the host cell (and thus modified cell) may be a cell derived from the subject to be treated. Preferably, the host cell (and thus modified cell) can be isolated from a blood sample, for example, by leukapheresis.
[0128] The modified cells are typically human cells.
[0129] Advantageously, the modified cells can express the polypeptides encoded by the nucleic acid sequences or vectors described herein, such that the modified cells provide immunotherapeutic agents that specifically target cancerous cells or virus-infected cells associated with impaired HLA class I antigen presentation, and can be used to treat or prevent cancers or viral infections associated with impaired HLA class I antigen presentation. Further details regarding this use are provided below.
[0130] Methods for preparing peptides As mentioned above, the peptides according to the present invention may be natural peptides or synthetic peptides. In another embodiment, the peptides of the present invention may be modified. Methods for preparing the peptides of the present invention are also provided herein. In one embodiment, the methods for preparing the peptides of the present invention provided herein may be natural methods. In another embodiment, the methods for preparing the peptides of the present invention may be synthetic methods. Alternatively, the methods for preparing the peptides of the present invention may include natural and synthetic methods.
[0131] The method for preparing the peptides of the present invention provided herein may be a natural method, which includes culturing modified cells transformed, transfected, or transduced with a nucleic acid (e.g., a vector) encoding the peptide of interest in a culture medium, and isolating the peptide from the culture medium or from the lysate of the modified cells after cell lysis.
[0132] In this context, modified cells are used to express the peptide of interest. Examples of such cells include, but are not limited to, bacterial cells, such as E. coli, and eukaryotic cells, such as yeast cells, animal cells, or plant cells. In one example, the cells are mammalian, such as human, CHO, HEK293T, PER.C6, NS0, myeloma, or hybridoma cells. Dendritic cells and dendritic cell lines are particularly preferred.
[0133] Typically, as described above, the nucleic acid encoding the peptide of interest is present in a vector, for example, an expression vector. In some cases, an appropriate secretion signal can be incorporated into the vector, so that the peptide encoded by the nucleic acid will be directed, for example, to the lumen of the endoplasmic reticulum, to the periplasmic space, on the membrane, or to the extracellular environment. The selection of an appropriate secretion signal can facilitate subsequent protein purification. The selection of an appropriate secretion signal is well within the capabilities of an average person skilled in the art.
[0134] Typically, the choice of culture medium will depend inter alia on the choice of cell type and / or cell line used to express the peptide of interest, and those skilled in the art will be familiar with suitable culture media that are appropriate for the selected cell type and / or cell line.
[0135] The cells are cultured in an appropriate culture medium for a period of time sufficient to induce expression of the encoded peptide. Suitable periods and conditions for culturing the cells are known in the art and depend on the particular cell type and / or cell line used.
[0136] After the peptide is expressed by cells, it can be purified using standard methods. For example, commercially available kits and / or reagents for protein extraction, such as Novagen's BugBuster™, can be used. Alternative standard methods, such as affinity chromatography, ion exchange chromatography, hydrophobic interaction chromatography, and immunoaffinity methods can also be used.
[0137] Alternatively, the peptides of the present invention may be prepared by synthetic methods. Such methods are described in detail in the literature. Non-limiting examples include liquid phase peptide synthesis methods or solid phase peptide synthesis methods, such as Merrifield solid phase peptide synthesis, t-Boc solid phase peptide synthesis, Fmoc solid phase peptide synthesis, BOP (benzotriazol-1-yl-oxy-tris-(dimethylamino)-phosphonium hexafluorophosphate) based solid phase peptide synthesis, etc.
[0138] Peptide-loaded cells Also provided are cells loaded with the peptides described herein, which may be advantageously used in the therapeutic methods described below.
[0139] As used herein, a "peptide-loaded" cell is a cell in which the peptide is associated with an MHC (major histocompatibility complex) on the cell surface. Typically, peptide-loaded cells do not express the peptide itself, but present an exogenous peptide in association with an MHC. The cells may be pulsed with an exogenous peptide to "load" the peptide onto them. Peptide-loaded cells may therefore also be referred to as cells containing a peptide of interest (e.g., an exogenous peptide), where the peptide of interest is part of an MHC complex on the cell surface. In other words, such cells contain extracellular (or cell surface) MHC complexed with the peptide of interest. The presence of a peptide within the MHC of an antigen-presenting cell is referred to herein as "antigen presentation." Antigen presentation is the expression of an antigen molecule on the surface of a macrophage or other antigen-presenting cell in association with an MHC class II molecule when the antigen is presented to CD4+ helper T cells, or in association with an MHC class I molecule when the presentation is to CD8+ cytotoxic T cells.
[0140] The cells loaded with the peptides defined herein can be cells derived from the subject to be treated. In particular, they can be cells isolated from the subject to be treated. Alternatively, cell lines, such as antigen-presenting cell lines, can also be used.
[0141] Preferably, the cells loaded with the peptides defined herein are antigen-presenting cells (APCs).Preferably, the antigen-presenting cells are selected from the group consisting of dendritic cells (DCs), macrophages, monocytes, B cells, and synthetic forms of antigen-presenting cells.Most preferred are dendritic cells, particularly dendritic cells (conventional and / or plasmacytoid) isolated from the subject to be treated.
[0142] Methods for isolating antigen-presenting cells, particularly dendritic cells, from a subject are known to those skilled in the art. These include harvesting monocytes or hematopoietic stem cells from bone marrow, umbilical cord blood, or peripheral blood. They also include the use of embryonic stem (ES) cells and induced pluripotent stem cells (iPS). Antigen-presenting cells, particularly dendritic cells and their precursors, can be enriched by methods including elutriation and magnetic bead-based separation, which may include enrichment of CD14+ precursor cells.
[0143] The method for loading the complex defined herein into cells, preferably the above-mentioned antigen-presenting cells, more preferably dendritic cells, and the technique for preparing such cells before administering them to a subject are known to those skilled in the art.For example, the preparation of dendritic cells can include their culture and differentiation using cytokines, which can include, for example, GM-CSF and IL-4.Dendritic cell lines can also be used.
[0144] Loading cells, preferably APCs, more preferably dendritic cells, with peptides can involve co-incubating the cells with the peptides in culture. Further culturing of the loaded cells, e.g., dendritic cells, to induce efficient maturation can include adding cytokines, including IL-1β, IL-6, TNFα, PGE2, IFNα, and adjuvants. Suitable methods and reagents are well known to those skilled in the art.
[0145] Pharmaceutical Composition Pharmaceutical compositions are provided that include a) an isolated peptide, b) a nucleic acid sequence, c) a vector, d) a binding agent, or e) a cell described herein, and a pharmaceutically acceptable excipient, adjuvant, diluent, and / or carrier.
[0146] For the avoidance of doubt, any one of a), b), c), or d) may be present in a pharmaceutical composition by being encoded or expressed (as appropriate) by a cell present within the pharmaceutical composition. By way of example, any one of b) or c) may be encoded by a cell and combined with a pharmaceutically acceptable excipient, adjuvant, diluent, and / or carrier to produce the pharmaceutical composition, or any of a) or d) may be expressed by a cell and combined with a pharmaceutically acceptable excipient, adjuvant, diluent, and / or carrier to produce the pharmaceutical composition. Further details regarding this are provided below.
[0147] The nucleic acid sequence, vector, cell, binding agent, isolated protein or peptide described herein can therefore be provided as part of pharmaceutical composition.Advantageously, such composition can be administered to human subject to treat or prevent the cancer or viral infection associated with the impaired HLA class I antigen presentation (for example, by inducing or enhancing the specific immune response against such cancerous cell or viral infected cell).
[0148] The terms "pharmaceutical composition" and "composition" are used interchangeably herein unless the context specifically requires otherwise.
[0149] Pharmaceutical compositions can include the nucleic acid sequences, vectors, cells, binding agents, or isolated proteins or peptides described herein together with a pharmaceutically acceptable excipient, adjuvant, diluent, and / or carrier.
[0150] For the avoidance of doubt, a nucleic acid sequence, vector, binding agent, or isolated peptide may be present in a pharmaceutical composition as part of a cell. In other words, the nucleic acid sequence or vector may be incorporated into a cell, or the binding agent or peptide may be expressed by the cell. The cell may be any suitable cell, such as a bacterial cell, or a eukaryotic cell, such as a mammalian cell, for example, a dendritic cell (DC) (in such cases, the mammalian cell is typically an ex vivo cell). Pharmaceutical compositions comprising the nucleic acid sequence, vector, binding agent, or isolated protein or peptide described herein therefore encompass pharmaceutical compositions comprising cells (e.g., bacterial cells, DCs, etc.) that encode the nucleic acid sequence or vector or can express the peptide or binding agent.
[0151] Preferably, the cells (e.g., bacterial cells, DCs, etc.) may be cells that have been modified to introduce (e.g., by transduction, transfection, or transformation) an appropriate nucleic acid sequence / vector into the cells, such that the modified cells are capable of encoding the nucleic acid sequence / vector and expressing the desired nucleic acid sequence, vector, peptide, or binding agent. Such cells may be combined with pharmaceutically acceptable excipients, adjuvants, diluents, and / or carriers to produce the pharmaceutical compositions of the present invention. The cells may be modified ex vivo. For example, they may be autologous cells derived from a subject to be treated with the pharmaceutical compositions described herein (e.g., to treat or prevent cancer or viral infections associated with impaired HLA class I antigen presentation). The cells may be modified ex vivo, for example, to introduce a nucleic acid sequence or vector into the cells, such that the modified cells are capable of encoding the nucleic acid sequence / vector and expressing the nucleic acid sequence or vector to produce the desired peptide or binding agent. The modified cells may then be administered to a subject as a pharmaceutical composition.
[0152] The compositions may routinely contain pharmaceutically acceptable concentrations of salts, buffering agents, preservatives, compatible carriers, supplemental immune enhancing agents such as adjuvants and cytokines, and may contain other therapeutic agents or compounds as appropriate.
[0153] As used herein, "pharmaceutically acceptable" refers to a material that is not biologically or otherwise undesirable, i.e., the material may be administered to an individual together with a selected nucleic acid sequence, vector, cell, binding agent, or isolated peptide without causing any undesirable biological effects or interacting in a deleterious manner with any of the other components of the pharmaceutical composition in which it is contained.
[0154] An excipient is a natural or synthetic substance formulated with an active ingredient (e.g., a nucleic acid sequence, vector, cell, binder, or isolated peptide provided herein) to bulk the formulation or to impart therapeutic enhancements to the active ingredient in the final dosage form, for example, to promote drug absorption or solubility. Excipients can also be useful in the manufacturing process to aid in the handling of the active ingredient under consideration, such as by promoting the flowability or non-stick properties of the powder, in addition to helping prevent in vitro stability, e.g., deterioration over the expected storage period. Pharmaceutically acceptable excipients are well known in the art. Suitable excipients can therefore be easily identified by those skilled in the art. By way of example, suitable pharmaceutically acceptable excipients include water, saline, aqueous dextrose, glycerol, ethanol, etc.
[0155] Adjuvants are pharmacological and / or immunological agents that modify the action of other agents in the formulation.Pharmaceutically acceptable adjuvants are well known in the art.Suitable adjuvants can therefore be easily identified by those skilled in the art.
[0156] A diluent is a diluting agent. Pharmaceutically acceptable diluents are well known in the art. Suitable diluents can therefore be easily identified by those skilled in the art.
[0157] Carrier is non-toxic to recipient at the dosage and concentration used, and is compatible with other components of the formulation.The term "carrier" refers to the natural or synthetic organic or inorganic component that is combined with active ingredient to facilitate application.Pharmaceutically acceptable carriers are well known in the art.Suitable carriers can therefore be easily identified by those skilled in the art.
[0158] The pharmaceutical compositions described herein can be administered to a subject as a monotherapy or as part of a combination therapy. For example, the combination of the vaccines described herein with immune checkpoint inhibitors or other immunomodulatory compounds can also be used, as shown for the combination of cancer-virus vaccination with PD-1 blockade. 11 This may be particularly useful for targeting immune-evading TAP-deficient cancers.
[0159] Thus, the pharmaceutical compositions provided herein can be used in combination with immune checkpoint inhibitors that block PD-1, CTLA-4, PD-L1, TIM3, TIGIT, VISTA, NKG2A, or LAG-3.
[0160] In certain instances, the pharmaceutical compositions provided herein may be used in combination with immune checkpoint inhibitors selected from antibodies that block CTLA-1, PD-1 / PD-L1, or NKG2A. Such antibodies have shown clinical promise in treating patients with various malignancies.
[0161] As a specific example, the immune checkpoint inhibitor may be an inhibitor of PD-1 and / or PD-L1 activity. In other words, the immune checkpoint inhibitor may result in PD-1 or PD-L1 blockade. The inhibitor of PD-1 and / or PD-L1 activity may be, for example, an antibody that blocks the binding of PD-L1 to PD1 (or vice versa).
[0162] The pharmaceutical composition and the immune checkpoint inhibitor may be administered in any order. Preferably, the pharmaceutical composition is administered simultaneously with or after the immune checkpoint inhibitor. Alternatively, the pharmaceutical composition is administered simultaneously with or before the immune checkpoint inhibitor.
[0163] Target treatment The pharmaceutical composition described herein can be advantageously used as a medicine.The composition can be used to treat or prevent cancer or viral infection associated with impaired HLA class I antigen presentation in human subjects.Preferably, the human subject is positive for HLA-A*02, for example, HLA-A*0201.
[0164] Pharmaceutical compositions for use as medicines (e.g., in the prevention or treatment of cancers or viral infections associated with impaired HLA class I antigen presentation in human subjects) can include the nucleic acid sequences, vectors, cells, binding agents, or isolated proteins or peptides described herein, together with pharmaceutically acceptable excipients, adjuvants, diluents, and / or carriers.As discussed elsewhere herein, this includes pharmaceutical compositions comprising cells encoding or expressing the appropriate nucleic acid sequences, vectors, peptides, or binding agents.
[0165] The methods of treating or preventing cancer or viral infection associated with impaired HLA class I antigen presentation described herein result in the induction or enhancement of an immune response (e.g., a cell-mediated response) in a subject (e.g., a targeted immune response against cancerous cells or virus-infected cells that present HLA-A-restricted peptides).
[0166] The phrase "induction or enhancement of an immune response" refers to an increase in a subject's immune response (e.g., a cell-mediated immune response, e.g., a T cell-mediated immune response) during or after treatment compared to the immune response before treatment. "Induction or enhancement" of an immune response therefore encompasses any measurable increase in an immune response that directly or indirectly targets the cancer or viral infection being treated.
[0167] The compositions of the present invention can be used to treat or prevent cancers associated with impaired HLA class I antigen presentation. Those skilled in the art will be familiar with cancers that are associated with impaired HLA class I antigen presentation and therefore can be treated by the present invention.
[0168] Preferably, the cancer is a cancer with an impaired peptide processing mechanism. In one example, the cancer is lung cancer.
[0169] The compositions of the present invention can also be used to treat or prevent viral infections associated with impaired HLA class I antigen presentation. Those skilled in the art will be familiar with viral infections that are associated with impaired HLA class I antigen presentation and therefore can be treated by the present invention.
[0170] As used herein, cancer or viral infection "associated with impaired HLA class I antigen presentation" refers to cancer or viral infection that causes alteration of the HLA class I antigen presentation pathway in cancerous cells or virus-infected cells, resulting in a reduction in HLA class I antigen presentation in these cells.In this context, reduction includes a reduction in the presentation of non-TEIPP HLA class I-restricted antigens on the cell surface of these cells (at a given time point) by at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, etc., compared with control cells (e.g., non-cancerous and non-virus-infected cells from the same subject).
[0171] There are several molecular pathways that can be altered in cancerous or virus-infected cells to impair HLA class I antigen presentation. For example, it is known that 1-2% of melanomas harbor deleterious mutations in TAP1 or TAP2, and that metastatic melanomas frequently exhibit low TAP1 expression due to epigenetic silencing. 5、7 .
[0172] Cancer or viral infection associated with impaired HLA class I antigen presentation may therefore be cancer or viral infection in which tumor cells or infected cells have mutant TAP1 or TAP2 genes. In one example, the mutation reduces TAP1 or TAP2 expression (so that tumor cells or virus-infected cells have low TAP1 or TAP2 expression). In another example, the mutation reduces TAP1 or TAP2 activity in cells (so that tumor cells or virus-infected cells have reduced / low TAP1 or TAP2 activity). In another example, the mutation reduces TAP1 or TAP2 protein level in cells (e.g., tumor cells or virus-infected cells have reduced / low TAP1 or TAP2 protein expression and / or reduced / low TAP1 or TAP2 protein stability).
[0173] TAP1 or TAP2 expression may also be reduced / low in cancerous cells or virus-infected cells due to epigenetic silencing.Methods for detecting TAP1 or TAP2 epigenetic silencing are well known in the art.
[0174] TAP1 or TAP2 expression, activity, protein levels, and / or protein stability may also be reduced / low in cancerous cells or virus-infected cells for reasons other than mutations in the TAP1 or TAP2 gene (e.g., due to the cancer / virus altering molecular mechanisms and cellular pathways).
[0175] The cancer or viral infection can therefore be one that is associated with reduced (or low) TAP1 or TAP2 protein expression, activity, level, or stability.
[0176] Methods for determining the presence of mutations in TAP1 or TAP2 are well known in the art. Furthermore, methods for determining TAP1 or TAP2 expression levels, TAP1 or TAP2 activity levels, TAP1 or TAP2 protein levels, and TAP1 or TAP2 protein stability are well known in the art.
[0177] For example, expression levels can be detected by measuring mRNA, for example, using Northern blot analysis or rtPCR. Protein levels can be detected using TAP1 or TAP2 specific antibodies (e.g., having detectable levels), and methods such as enzyme-linked immunosorbent assay (ELISA), immunoprecipitation, immunofluorescence, enzyme immunoassay (EIA), radioimmunoassay (RIA), and Western blot analysis can be used. Other standard methods for determining these parameters are well known in the art.
[0178] As discussed above, the cancer or viral infection can be one that is associated with reduced (or low) TAP1 or TAP2 protein expression, activity, level, or stability.
[0179] As used herein, "reduced (or low) TAP1 or TAP2 protein expression, activity, level, or stability" refers to a decrease in protein expression, activity, level, or stability (e.g., at least a 5%, 10%, 15%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100% decrease) compared to a control or reference level. As used herein, a "reference level" or "control" refers to a cell sample having a normal level of TAP1 or TAP2 protein expression, activity, level, or stability, e.g., a sample obtained from a healthy subject who does not have or is not suspected of having cancer or a viral infection, or alternatively, a cell sample from the same subject being tested, where the control or reference level cell sample is not (and is not suspected of being) cancerous or virally infected. Alternatively, the reference level can be a predetermined cutoff value, i.e., a value of TAP1 or TAP2 protein expression, activity, level, or stability obtained from a reference database that can be used to generate a diagnostic score that statistically predicts the absence or presence of symptoms or disease, or can be a predetermined reference level based on a standard population sample, or alternatively, can be a predetermined reference level based on the subject's baseline expression level, i.e., before the subject develops or is suspected of developing cancer or viral infection. For example, reduced or low protein expression can be determined using immunohistochemistry using an anti-TAP1 or anti-TAP2 antibody, such as anti-TAP1 antibody, clone mAb 148.3 (MABF125 EMD Millipore). In one example, the normal level of protein expression of TAP1 or TAP2 in a sample compared to the reduced or low expression level is evaluated by the "De Ruiter" evaluation method. For example, in such a method, the sample is a cancer or tumor sample.Alternatively, if the sample is a viral sample, the presence of an immunomodulatory viral gene product, e.g., CMV, HSV, or BVS, reduces the expression and / or activity of TAP function, and the presence of such a gene product can be used as a marker of reduced or low TAP1 or TAP2 expression and / or activity.
[0180] Other molecular pathways that can be altered in cancerous or virus-infected cells to impair HLA class I antigen presentation include, for example, deficiency of tapasin (a chaperone protein involved in TAP-mediated peptide loading of MHC class I molecules) and inhibition of proteasome-mediated degradation of proteins into peptides for MHC class I presentation (see, for example, U.S. Application Publication No. US2009 / 0220534 for further details).
[0181] As used herein, the terms "treat," "treating," and "treatment" are intended to include interventions intended to prevent the onset of or alter the pathology of a condition, disorder, or symptom (i.e., in this case, cancer or viral infection associated with impaired HLA class I antigen presentation). Thus, "treatment" refers to both therapeutic treatment and preventative or prophylactic measures, where the goal is to prevent or delay (attenuate) the targeted condition, disorder, or symptom. "Treatment" therefore encompasses, for example, a reduction, delay, or inhibition of the amount or concentration of malignant or virally infected cells measured in a sample obtained from a subject by at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% compared to the amount or concentration of malignant cells (or virally infected cells) before treatment. Methods for measuring the amount or concentration of malignant cells (or virus-infected cells) include, for example, qRT-PCR and quantification of specific biomarkers in samples obtained from a subject, such as peptides comprising one of the amino acid sequences of SEQ ID NO: 2.
[0182] As used herein, the term "subject" refers to an individual, e.g., a human, having or at risk of having a specified condition, disorder, or symptom. The subject may be a patient, i.e., a subject in need of treatment according to the present invention. The subject may be receiving treatment for the condition, disorder, or symptom. Alternatively, the subject has not received treatment prior to treatment according to the present invention. Preferably, the subject is a human subject, preferably an HLA*0201-positive human subject.
[0183] The compositions described herein can be administered to a subject by any conventional route, including by injection or by gradual infusion over time. Administration can be, for example, by injection or by intramuscular, intravenous, intracavitary, intracerebral, intralesional, rectal, subcutaneous, intradermal, epidural, intrathecal, or transdermal administration.
[0184] The compositions described herein can be in any form suitable for the above-mentioned administration modes. For example, the composition containing cells can be in any form suitable for injection. As a further example, forms suitable for parenteral injection (including subcutaneous, intramuscular, intravenous, or infusion) include sterile solutions, suspensions, or emulsions; forms suitable for topical administration include ointments or creams; and forms suitable for rectal administration include suppositories. Alternatively, the route of administration can be by direct injection into the target area, or by regional delivery, or by local delivery. Identifying the appropriate dosage of the composition of the present invention is well within the routine capabilities of those skilled in the art.
[0185] Advantageously, the compositions of the present invention can be formulated for use as vaccines (e.g., a composition comprising a peptide comprising the amino acid sequence of SEQ ID NO: 1 (or the corresponding nucleic acid sequence or vector) can be formulated as a pharmaceutical composition suitable for use as a peptide vaccine). Alternatively, a composition comprising cells can also be formulated as a pharmaceutical composition suitable for use as a vaccine. Suitable cell, binding agent (e.g., antibody), peptide, and nucleic acid vaccine formulations are well known in the art.
[0186] The pharmaceutical composition is preferably for administration to a subject, preferably a human or animal subject, and is therefore formulated to be suitable therefor. Preferably, administration is parenteral, e.g., intravenous, subcutaneous, intramuscular, intradermal, intradermal, and / or intratumoral, i.e., by injection.
[0187] Preferably, the pharmaceutical composition comprises or consists of an amount of active ingredient (e.g., nucleic acid sequence, peptide, vector, binding agent, or cell) that constitutes a pharmaceutical dosage unit. A pharmaceutical dosage unit is defined herein as the amount of active ingredient (i.e., the total amount of peptide in a peptide-based vaccine) that is applied to a subject at a given time. A pharmaceutical dosage unit may be applied to a subject in a single volume, i.e., a single shot, or may be applied in two, three, four, five, or more separate volumes or shots, preferably applied to different locations of the body, for example, the right and left limbs. It should be understood that the separate volumes of a pharmaceutical dosage may have different compositions, i.e., may contain different types or compositions of active ingredients and / or adjuvants.
[0188] A single injection volume or shot (i.e., a volume applied to one location at a particular time) comprising the total pharmaceutical dosage, or a portion thereof in cases where multiple shots are applied at substantially the same time, can be 100 to 2 mL, or 100 to 1 mL. A single injection volume can be 100 μl, 200 μl, 300 μl, 400 μl, 500 μl, 600 μl, 700 μl, 800 μl, 900 μl, 1 mL, 1.1 mL, 1.2 mL, 1.3 mL, 1.4 mL, 1.5 mL, 1.6 mL, 1.7 mL, 1.8 mL, 1.9 mL, 2 mL, 3 mL, or any value therebetween.
[0189] The pharmaceutical dosage unit or total amount of active ingredient applied to a subject at a given time will depend on the type of vaccine (e.g., peptide, cell, nucleic acid, etc.). By way of example, the pharmaceutical dosage unit or total amount of peptide applied to a subject at a given time, either in a single or multiple injections at a particular time, may range from 0.1 μg to 20 mg, e.g., about 0.1 μg, 0.5 μg, 1 μg, 5 μg, 10 μg, 15 μg, 20 μg, 30 μg, 40 μg, 50 μg, 60 μg, 70 μg, 80 μg, 90 μg, 100 μg, 150 μg, 200 μg, 250 μg, 300 μg, 350 μg, 400 μg, 500 μg, 600 μg, 700 μg, 800 μg, 900 μg, 1000 μg, 1500 μg, 2000 μg, 2500 μg, 3000 μg, 3500 μg, 4000 μg, 5000 μg, 6000 μg, 7000 μg, 8000 μg, 9000 μg, 10000 μg, 15000 μg, 2000 μg, 2500 μg, 30 ... The pharmaceutical dosage units may contain an amount of peptide of 0 μg, 400 μg, 450 μg, 500 μg, 650 μg, 700 μg, 750 μg, 800 μg, 850 μg, 900 μg, 1 mg, 1.5 mg, 2 mg, 2.5 mg, 3 mg, 3.5 mg, 4 mg, 4.5 mg, 5 mg, 5.5 mg, 6 mg, 6.5 mg, 7 mg, 7.5 mg, 8 mg, 8.5 mg, 9 mg, 9.5 mg, 10 mg, 15 mg, or about 20 mg, or any value therebetween. Preferred ranges for pharmaceutical dosage units are 0.1 μg to 20 mg, 1 μg to 10 mg, 10 μg to 5 mg, 0.5 mg to 2 mg, 0.5 mg to 10 mg, or 1 mg to 5 mg, or 2 to 4 mg.
[0190] The compositions described herein are intended to be administered in effective amounts. An "effective amount" is an amount that, alone or in combination with further doses, produces the desired (therapeutic or non-therapeutic) response. The effective amount to be used will depend, for example, on the therapeutic (or non-therapeutic) purpose, the route of administration, and the condition of the patient / subject. For example, the dosage of the compositions of the present invention appropriate for a given patient / subject will be determined by the attending physician (or the person administering the composition) taking into account various factors known to modify the action of the compositions of the present invention, such as the severity and type of hematological malignancy, body weight, sex, diet, time and route of administration, other medications, and other relevant clinical factors. The dosage and schedule may vary depending on the specific condition, disorder, or symptom, and the overall condition of the patient / subject. The effective dosage can be determined by either in vitro or in vivo methods.
[0191] The compositions of the present invention are advantageously presented in unit dosage form.
[0192] Binder Described herein are binding agents that specifically bind to a peptide comprising (or consisting of) the amino acid sequence of SEQ ID NO: 1. The binding agents are useful in preventing or treating cancer or viral infections associated with impaired HLA class I antigen presentation in human subjects.
[0193] The binding agent can specifically bind to an epitope within the amino acid sequence provided by SEQ ID NO: 1. As used herein, the term "epitope" refers to the site on a target molecule (in this case, the referenced peptide) to which the binding agent binds. An epitope is a group of molecules, such as amino acids or sugar side chains, that typically have specific structural features as well as specific charge characteristics. A single peptide (antigen) can have more than one epitope. Epitopes can be formed from both contiguous or adjacent non-contiguous residues (e.g., amino acid residues) of a target molecule. Epitopes formed from contiguous residues (e.g., amino acid residues) are typically also referred to as linear epitopes. Epitopes typically contain at least 5 and up to about 12 residues, most often 6-10 residues (e.g., amino acid residues). Epitopes can also be conformational (i.e., non-linear).
[0194] In one example, the binding agent specifically binds to an epitope generated by the peptide itself. In another example, the binding agent (e.g., an antibody) binds to an epitope generated by the combination of the peptide and the HLA molecule that presents it (i.e., an epitope generated when the peptide is presented on the cell surface by HLA class I, e.g., HLA*0201).
[0195] The binding agent of the present invention may be any suitable binding agent that specifically binds to a peptide comprising (or consisting of) the amino acid sequence of SEQ ID NO:1.
[0196] An example of a suitable binding agent of the present invention is an HLA-A*02 molecule that specifically binds to a peptide comprising (or consisting of) the amino acid sequence of SEQ ID NO: 1. Such an HLA-A*02 molecule may be useful, for example, as part of a multimeric structure (e.g., in the form of a synthetic DC) for use in administration to a subject to stimulate T cells in the subject.
[0197] Thus, in one example, a binding agent that specifically binds to a peptide comprising (or consisting of) the amino acid sequence of SEQ ID NO: 1 comprises an HLA-A*02 molecule. Typically, in this context, an HLA-A*02 molecule specifically binds to a peptide comprising (or consisting of) the amino acid sequence of SEQ ID NO: 1. Such binding agents may be useful as pharmaceutical compositions, as described elsewhere herein.
[0198] In one example, the binding agent is an isolated binding agent. As used herein, "isolated binding agent" refers to a binding agent that is not in its natural environment. The binding agent may therefore be a recombinant binding agent, or the binding agent may be of synthetic origin (or alternatively, of natural origin but isolated from its natural environment). In the context of the present disclosure, the natural environment of a binding agent, for example, an HLA-A2*02 molecule, is the human body. Thus, when a binding agent (e.g., an HLA-A2*02 molecule) is present, for example, in a pharmaceutical composition (including an adjuvant, etc.), it is considered to be in an isolated form because it is not in its natural environment.
[0199] As used herein, the terms "specific binding" and "specifically bind" (or other equivalent terms) are used interchangeably to indicate that other biomolecules do not significantly bind to that region (this is specific binding to a peptide of interest (i.e., a recited peptide comprising the amino acid sequence of SEQ ID NO:1). In some embodiments, the level of binding to biomolecules other than the peptide of interest results in negligible (e.g., not measurable) binding affinity by ELISA or affinity determination.
[0200] "Negligible binding" means binding that is at least about 85%, specifically at least about 90%, more specifically at least about 95%, even more specifically at least about 98%, but especially at least about 99% up to 100% lower than binding to the peptide of interest (i.e., the recited peptide comprising the amino acid sequence of SEQ ID NO: 1).
[0201] The binding affinity of a binder to a peptide of interest (i.e., a reference peptide comprising the amino acid sequence of SEQ ID NO: 1) can be determined using standard binding assays, for example, surface plasmon resonance techniques (BIAcore®, GE-Healthcare Uppsala, Sweden). As used herein, the term "surface plasmon resonance" refers to an optical phenomenon that allows the analysis of biospecific interactions in real time by detecting changes in protein concentration within a biosensor matrix using a BIAcore system (Pharmacia Biosensor AB, Uppsala, Sweden and Piscataway, NJ). For further explanation, see Jonsson, U., et al. (1993) Ann. Biol. Clin. 51:19-26, Jonsson, U., et al. (1991) Biotechniques 11:620-627, Johnson, B., et al. (1995) J. Mol. Recognit. 8:125-131, and Johnson, B., et al. (1991) Anal. Biochem. 198:268-277.
[0202] General definition As used herein, "specifically binds to FLGPWPAAV" refers to selective binding of only the FLGPWPAAV peptide. Under certain conditions, for example, in an immunoassay described herein, a polypeptide that "specifically binds to FLGPWPAAV" will selectively bind to this peptide and will not bind to other peptides (including FLGPWPAAS) in significant amounts. Thus, a polypeptide may bind to FLGPWPAAV with at least 10-fold, 20-fold, 30-fold, 40-fold, 50-fold, or 100-fold greater affinity than it binds to a control antigenic peptide. Selective binding can also be determined indirectly in the context of engineered cells expressing the nucleic acid or vector of the invention (i.e., CAR T cells or T cells expressing a TCR specific for FLGPWPAAV). For example, in an assay such as the assay discussed herein, the engineered cells specifically react to cells presenting FLGPWPAAV in the context of HLA-A*02. Thus, the modified cells may bind to cells presenting FLGPWPAAV in the context of HLA-A*02 with at least 10-fold, 20-fold, 30-fold, 40-fold, 50-fold, or 100-fold greater reactivity compared to their reactivity to control cells that do not present FLGPWPAAV in the context of HLA-A*02. The selective binding may be in the context of FLGPWPAAV presentation by HLA-A*02. In other words, in certain embodiments, a polypeptide that "specifically binds to FLGPWPAAV" may do so only when the peptide is presented (i.e., bound) by HLA-A*02 or in an equivalent structural format as it is presented by HLA-A*02.
[0203] "Non-essential" (or "unimportant") amino acid residues are those that can be altered from a wild-type sequence (e.g., of a sequence identified by a SEQ ID NO: herein) without abolishing, or more preferably, substantially altering, biological activity, while "essential" (or "critical") amino acid residues are subject to such alteration. For example, conserved amino acid residues are predicted to be particularly unamenable to alteration, except that amino acid residues within the hydrophobic core of a domain can generally be replaced by other residues having approximately equivalent hydrophobicity without significantly altering activity.
[0204] A "conservative amino acid substitution" is one in which an amino acid residue is replaced with an amino acid residue having a similar side chain. Families of amino acid residues with similar side chains have been defined in the art. These families include amino acids with basic side chains (e.g., lysine, arginine, histidine), acidic side chains (e.g., aspartic acid, glutamic acid), uncharged polar side chains (e.g., glycine, asparagine, glutamine, serine, threonine, tyrosine, cysteine), nonpolar side chains (e.g., alanine, valine, leucine, isoleucine, proline, phenylalanine, methionine, tryptophan), beta-branched side chains (e.g., threonine, valine, isoleucine), and aromatic side chains (e.g., tyrosine, phenylalanine, tryptophan, histidine). Thus, non-essential (or non-critical) amino acid residues in a protein are preferably replaced with another amino acid residue from the same side chain family. Alternatively, in another embodiment, mutations can be introduced randomly and the resulting mutants can be screened for activity to identify mutants that retain activity.
[0205] Calculations of sequence homology or identity between sequences (the terms are used interchangeably herein) are performed as follows.
[0206] To determine the identity percentage of two amino acid sequences or two nucleic acid sequences, the sequences are aligned for optimal comparison (for example, for optimal alignment, gaps can be introduced into one or both of the first and second amino acid or nucleic acid sequences, and non-homologous sequences can be ignored for comparison purposes).In a preferred embodiment, the length of the reference sequence that is aligned for comparison purposes is at least 30%, preferably at least 40%, more preferably at least 50%, even more preferably at least 60%, even more preferably at least 70%, 75%, 80%, 82%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or 100% of the length of the reference sequence.Then, the amino acid residues or nucleotides at corresponding amino acid positions or nucleotide positions are compared. When a position in the first sequence is occupied by the same amino acid residue or nucleotide as the corresponding position in the second sequence, the molecules are identical at that position (as used herein, amino acid or nucleic acid "identity" is equivalent to amino acid or nucleic acid "homology"). The percent identity between two sequences is a function of the number of identical positions shared by the sequences, taking into account the number of gaps and the length of each gap that need to be introduced for optimal alignment of the two sequences.
[0207] The comparison of sequences and determination of percent identity between two sequences can be achieved using a mathematical algorithm. In a preferred embodiment, the percent identity between two amino acid sequences is determined using the algorithm of Needleman et al. (1970) J. Mol. Biol. 48:444-453) incorporated into the GAP program in the GCG software package (available at www.gcg.com), using either a BlOSUM 62 matrix or a PAM250 matrix, and a gap weight of 16, 14, 12, 10, 8, 6, or 4 and a length weight of 1, 2, 3, 4, 5, or 6. In yet another preferred embodiment, the percent identity between two nucleotide sequences is determined using the GAP program in the GCG software package (available at http: / / www.gcg.com), using a NWSgapdna.CMP matrix, and a gap weight of 40, 50, 60, 70, or 80, and a length weight of 1, 2, 3, 4, 5, or 6. A particularly preferred set of parameters (and one to use if the practitioner is uncertain as to which parameters to apply to determine whether a molecule is within the sequence identity or homology limits of the invention) is the BLOSUM 62 scoring matrix with a gap penalty of 12, a gap extension penalty of 4, and a frameshift gap penalty of 5.
[0208] Alternatively, percent identity between two amino acid or nucleotide sequences can be determined using the algorithm of Meyers et al. (1989) CABIOS 4:11-17) as incorporated into the ALIGN program (version 2.0), using a PAM120 weight residue table, a gap length penalty of 12, and a gap penalty of 4.
[0209] The nucleic acid and protein sequences described herein can be used as "query sequences" to conduct searches against public databases, for example, to identify other family members or related sequences. Such searches can be performed using the NBLAST and XBLAST programs (version 2.0) of Altschul, et al. (1990) J. Mol. Biol. 215:403-410. To obtain nucleotide sequences homologous to the nucleic acid molecules of the present invention, BLAST nucleotide searches can be performed using the NBLAST program, score = 100, word length = 12. To obtain amino acid sequences homologous to the protein molecules of the present invention, BLAST protein searches can be performed using the XBLAST program, score = 50, word length = 3. To obtain gapped alignments for comparison purposes, gapped BLAST can be utilized as described in Altschul et al. (1997, Nucl. Acids Res. 25:3389-3402). When using BLAST and gapped BLAST programs, the default parameters of the respective programs (e.g., XBLAST and NBLAST) can be used.<http: / / www.ncbi.nlm.nih.gov> Please refer to.
[0210] The polypeptides and nucleic acid molecules described herein may have amino acid sequences or nucleic acid sequences that are sufficiently or substantially identical to the sequences identified by SEQ ID NOs. The term "sufficiently identical" or "substantially identical" refers to a first amino acid or nucleotide sequence containing a sufficient or minimum number of identical or equivalent amino acid residues or nucleotides (e.g., having similar side chains) with respect to a second amino acid or nucleotide sequence, such that the first and second amino acid or nucleotide sequences share a common structural domain or a common functional activity. For example, amino acid or nucleotide sequences containing a common structural domain that have at least about 60% or 65% identity, possibly 75% identity, and even more likely 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identity are defined herein as being sufficiently or substantially identical.
[0211] Unless otherwise defined herein, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention pertains.For example, Singleton and Sainsbury, Dictionary of Microbiology and Molecular Biology, 2nd Ed., John Wiley and Sons, NY (1994) and Hale and Marham, The HarperCollins Dictionary of Biology, Harper Perennial, NY (1991) provide those skilled in the art with explanations of many of the general terms used in this invention.Although any methods and materials similar or equivalent to those described herein can be used in the practice of this invention, preferred methods and materials are described herein.Therefore, the terms defined immediately below will be more fully explained by referring to this specification as a whole.In addition, as used herein, the singular terms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. Unless otherwise indicated, nucleic acids are written left to right in 5' to 3' orientation, and amino acid sequences are written left to right in amino to carboxy orientation, respectively. It is understood that the present invention is not limited to the particular techniques, protocols, and reagents, as these may vary depending on the context in which those of skill in the art use them.
[0212] The present invention may be better understood by reference to the following non-limiting examples, which are provided as exemplary of the present invention. The following examples are presented in order to more fully illustrate preferred embodiments of the invention, but should not be construed as limiting the broad scope of the invention in any way. [Example]
[0213] [Example 1] Design of long peptide vaccines based on signal peptides associated with cancer immune evasion material and method cell culture Tumor cells were cultured in DMEM medium (Gibco) supplemented with 100 μg / mL streptomycin, 100 U / mL penicillin, 2 mM L-glutamine (Invitrogen), and 10% FCS (Gibco). Genetic disruption of the TAP1 gene in human tumor cell lines was performed using CRISPR / CAS9 as previously described. 7 T cells were cultured in IMDM medium (Gibco) supplemented with 2 mM L-glutamine, 10% human serum (Sanquin), and 50 U / mL IL-2 (proleukine, Novartis). Every 10–14 days, T cells were treated with synthetic short-chain peptides (synthesized in-house) or 800 ng / mL PHA (phytohemagglutinin) (Murex Biotech) supplemented with 100 U / mL IL-2 and IL-7 (5 ng / mL), as well as irradiated PBMCs (1 × 10 6 cells, 80 Gy) and EBV-JY cells (1 × 10 5 All cell types were maintained in a humidified air incubator at 37°C and 5% CO2.
[0214] In vitro vaccination protocol HLA-A*02:01-positive PBMCs were isolated from buffy coats (Sanquin Bloodbank, Amsterdam) obtained from informed consent donors using a Ficoll gradient. PBMCs were incubated with anti-CD14 magnetic beads for 20 minutes at 4°C, and CD14-positive monocytes were isolated using a magnetic separation column (Miltenyi). CD14+ monocytes were cultured for 6 days in RPMI medium supplemented with 10% FCS, GM-CSF (800 units / ml), and IL-4 (500 units / ml) to generate immature monocyte-derived dendritic cells. On day 6, immature moDCs were incubated with a synthetic long-chain peptide (20 μg / ml, synthesized in-house) for 24 hours and matured on day 7 by stimulation with LPS (20 ng / ml). Differentiation of monocytes into mature moDCs was verified by flow cytometry analysis. Mature moDCs were co-cultured with tetramer-enriched bulk T cells in complete T cell medium. The bulk T cells were stimulated a second time 14 days later. T cell specificity and reactivity were analyzed by flow cytometry.
[0215] Isolation of T cell clones from expanded T cell bulks Expanded CD8 T cells were single-cell sorted onto tetramer-positive cells in 96-well plates using an Aria III machine (BD). After FACS sorting, single T cells were transferred to irradiated PBMCs (1 x 10) supplemented with PHA (800 ng / mL), IL-2 (100 units / mL), and IL-7 (5 ng / mL) every 10–14 days. 6 cells, 80 Gy) and EBV-JY cells (1 × 10 5 T cells were nonspecifically stimulated using a feeder mix containing 100 cells / mL of T cells (100 Gy). Expanded T cell clones were analyzed for tetramer specificity and further expanded in T25 culture flasks using the nonspecific (PHA) T cell expansion protocol.
[0216] T cell receptor sequencing Monoclonal T cells (2 × 10 6(1000 cells) were washed in cold PBS / BSA and pelleted by centrifugation. mRNA from T cell clones was isolated using the Dynabeads mRNA purification kit (Thermofisher). Full-length cDNA from TCRα and TCRβ was generated using SMARTscribe reverse transcriptase, with oligos attached to the constant domains of the TCRs. 28 Amplification of the cDNA transcripts was performed by standard PCR reactions using nested primers and high-fidelity Taq polymerase. The PCR reaction mix was purified with a DNA purification column, and nucleotide sequence analysis was performed using Sanger sequencing (in an in-house sequencing facility). The TCR sequencing results were analyzed using T cell receptor sequence alignment software (V-quest) from IMGT (http: / / www.imgt.org / ). Full-length codon-optimized cDNA transcripts for the murine TCRs for both the TCR-alpha and TCR-beta chains were cloned into the retroviral pMP71 flex expression vector. 28 .
[0217] Retrovirus production and T cell transduction Platinum amphotropic retrovirus production (Plat-A) retrovirus packaging cells (Cell Biolabs) were used for retrovirus production. Plat-A cells were seeded into 6-well plates and incubated overnight until fully attached. Cells were then transfected with 2 μg of pMP71_1A8 TCR vector using Lipofectamine 2000. Retroviral supernatants were harvested 24 and 48 hours post-transfection, spun down to remove cells, and stored at -80°C. CD8 T cells were purified from PBMCs using magnetic bead isolation (Miltenyi) and specifically activated with aCD3 / aCD28 beads (Thermofisher). After 48 hours, 1 × 10 6Activated CD8 T cells were seeded onto 24-well plates coated with Retronectin (Takara) along with 0.5 mL of retroviral supernatant. The supernatant containing CD8 T cells and retrovirus was then spun down at 1300 g for 120 minutes to increase transduction efficiency. 48 hours after transduction, the T cells were placed in a cell culture incubator for an additional 48 hours.
[0218] Flow cytometry analysis Tetramer staining of CD8 T cells was performed by incubation at 4°C for 15 minutes and washed three times with cold PBS / BSA before cell surface staining. T cells were stained with anti-CD3 (clone SK-7, BD), anti-CD4 (clone SK-3, BD), or anti-CD8 (clone SK-1, BD) antibodies for 30 minutes at 4°C and washed three times with cold PBS / BSA. T cell activation was measured by intracellular IFNγ staining (XMF1.2, Biolegend) using an ICS kit (BioLegend) according to the manufacturer's protocol. moDCs were stained with anti-CD1a (clone HI149, BD), anti-CD14 (clone M5E2, BD), anti-CD80 (clone L307.4, BD), anti-CD83 (clone HB15e, BD), anti-CD86 (clone IT2.2, biolegend), and anti-HLA-DR (clone G46-6, BD) antibodies for 30 minutes at 4°C and washed three times with cold PBS / BSA. Samples were acquired using a BD LSRFortessa™ flow cytometry system and analyzed using FlowJo software (Tree Star). Single-cell sorting was performed using a BD Aria III™ FACS.
[0219] statistics Statistical analysis was performed using a paired t-test (two-tailed) with Welch's correction to determine the statistical significance of differences. A minimum of two technical replicates were used in all experiments. All experiments were performed at least twice. Differences were considered statistically significant at p<0.05. (*p<0.05, **p<0.01, ***p<0.001).
[0220] result The signal peptide of LRPAP1 is not cross-presented by dendritic cells when presented as a long peptide We have previously shown that the TEIPP antigen, derived from the signal peptide of the ubiquitously expressed LRPAP1 protein, is presented by HLA-A*0201 in a wide range of TAP-deficient cancer types. 7 We decided to apply the TEIPP concept to vaccination strategies, particularly to the synthetic long peptide (SLP) platform we previously developed for virus-induced cancer. To this end, we investigated the expression of this signal peptide, LRPAP, in dendritic cells. 21-30 The efficiency of cross-presentation of long versions of LRPAP1 was evaluated. Three different SLP variants were synthesized, with non-natural flanking amino acids at the amino terminus and natural flanking amino acids at the carboxy terminus, or natural flanking amino acids at both termini (Fig. 1a). These SLPs were incubated with monocyte-derived dendritic cells (moDCs) and evaluated for correct processing and presentation of the minimal TEIPP epitope using an LRPAP1-specific CD8 T cell clone. Cytokine release was measured, indicating that none of the three SLPs were cross-presented to T cells, whereas the short LRPAP1 variants were cross-presented. 21-30 It was shown that exogenous pulses of peptide stimulated T cells (Fig. 1a). These results suggest that LRPAP, derived from its long peptide stretch, stimulates T cells. 21-30 It was suggested that cross-presentation of epitopes was not efficient and needed to be optimized for vaccine applications.
[0221] A serine-to-valine substitution in the C-terminal anchor allows efficient binding and cross-presentation Cross-presentation of long peptides by dendritic cells involves multiple sequential steps, including endocytic uptake, proteasomal cytosolic cleavage of SLPs into short peptides, transport across the ER membrane by TAP, and loading onto MHC-I molecules. 15 Previous research has focused on LRPAP21-30 This indicates that the epitope has moderate binding affinity to HLA-A*0201. 7 The inventors have 21-30 We investigated whether replacing the C-terminal serine of S results in a more efficiently processed epitope. First, we estimated the binding affinity for HLA-A*0201 of all possible peptide sequences with a variable amino acid at position 9 using an in silico algorithm (Table 2, Figure 1b). The C-terminal serine indeed had a low predicted binding score and ranking (affinity = 364 nM, %rank = 2.50, respectively). However, replacing the serine (S) with isoleucine (I), leucine (L), or valine (V) resulted in a strong enhancement of the predicted binding affinity. Replacement with valine resulted in an affinity of 6 nM and a ranking percentage of 0.05%. In addition, proteasomal cleavage probability analysis using netCHOP yielded probability scores close to the maximum value of 1 for isoleucine (I), leucine (L), and valine (V), whereas the natural serine (S) at the C-terminus had a cleavage probability score of nearly 0 (Fig. 1c). These in silico analyses indicated that these two important parameters could be significantly improved by substituting isoleucine (I), leucine (L), or valine (V) for serine (S) at the C-terminus.
[0222] [Table 2] Table 2: HLA-A*0201 peptide binding scores for LRPAP1 epitopes. Summary of predicted binding affinities of p14 peptide variants when the anchor residue at position 9 is substituted with all other known amino acids using NetMHC 4.0. Peptide variants highlighted in bold are predicted as strong binders in HLA-A*0201. As used herein, "p14" refers to FLGPWPAAS (SEQ ID NO: 2).
[0223] To test whether these substitutions interfere with LRPAP1-specific T cell recognition, we exogenously pulsed titrated concentrations of short peptide variants of the correct epitope in HLA-A*0201-positive T2 cells and measured T cell activation (Fig. 1d). Unexpectedly, the I and L variant peptides induced similar or exacerbated cytokine responses compared with the S peptide, whereas the V peptide induced a more potent IFNγ response (Fig. 1d). Calculation of EC50 values confirmed that the V peptide variant induced the most potent T cell response at limited peptide concentrations (EC50 in μg / mL = V: 0.1, S: 1.9, I: 0.7, L: 3.7) (Fig. 1e). 21-30 We concluded that a serine (S) to valine (V) substitution at the C-terminus of the peptide resulted in better MHC-I binding affinity and 19-fold better T cell activation. We then assessed cross-presentation of the V peptide variants as SLPs. moDCs were incubated with SLPs containing either the S (S-SLP) or V (V-SLP) variants of the TEIPP epitope. After SLP uptake and processing, moDCs were cocultured with LRPAP1-specific T cell clones, and cytokine production was measured (Fig. 1f). Again, the three S-SLP variants failed to activate T cells. The C- and N-terminally extended V-SLP peptides were efficiently processed and presented by moDCs, whereas the variants with extensions at both ends were not (Fig. 1f). These results were reproduced in almost all independent experiments using different moDC donors, revealing that the C-terminal extension was most efficiently processed (7 / 8 donors) (Fig. 1g). Taken together, these data demonstrated that a serine (S) to valine (V) substitution at the C-terminus of the TEIPP antigen derived from LRPAP1 can be used in the SLP vaccination platform.
[0224] Characterization of isolated CD8 T cell repertoires with optimized TEIPP epitopes Because SLP vaccines ultimately generate T cell reactivity against the native (S mutant) peptide sequence presented by TAP-deficient tumors, we investigated the effect of wild-type LRPAP on the CD8 T cell repertoire isolated and expanded with V peptide. 21-30 Cross-reactivity to peptides was assessed. Therefore, CD8 T cell cultures were generated using a previously described approach involving HLA-A*0201 tetramer pull-down and subsequent peptide-stimulated expansion. 7 This protocol resulted in the generation of polyclonal LRPAP1-specific CD8 T cell cultures stimulated with either the V variant or the native S variant (Fig. 2a). Combined tetramer staining revealed that both T cell cultures bound tetramers bearing both the S variant and the V variant, indicating that these T cell repertoires were indistinguishable in terms of specificity (Fig. 2b). Isolated CD8 T cell repertoires stimulated with the V peptide variants appeared to bind tetramers with somewhat lower affinity, as indicated by lower mean fluorescence intensities (Fig. 2b, c). This may reflect that the poor binding capacity of the S peptide recruited only high-affinity TCRs from the total repertoire, whereas the strongly binding V peptide was also able to recruit low-affinity TCRs.
[0225] To test the functionality of these T cell bulks, we measured cytokine responses to both short peptides pulsed into immortalized HLA-A*0201-positive B cells (Fig. 2d). Both T cell bulks responded to both peptides by secreting IFNγ and GM-CSF, indicating that the T cell repertoire selected through high-affinity binding of the V peptide was cross-reactive to the native S peptide. Finally, we tested recognition of the S peptide naturally presented on the surface of the TAP-negative melanoma 518A2 cell line (Fig. 2e). Importantly, polyclonal T cell cultures induced by the V peptide showed preferential recognition of the TAP-negative tumor line compared with their wild-type (TAP-effective) counterparts. These data are consistent with previous findings that the C-terminal amino acids are anchor positions for binding to HLA-A2*01 molecules and are not directly involved in the TCR interface. It was concluded that exchanging the C-terminus of the LRPAP1-derived TEIPP antigen to valine resulted in the isolation of a substantial peptide-specific CD8 T cell repertoire from the total CD8 T cell pool.
[0226] TCR gene transfer confers LRPAP1 specificity Vaccination with synthetic long peptides aims to elicit T cell reactivity from the natural T cell repertoire. TCR gene transfer from TEIPP-specific CD8 T cells constitutes an alternative immunotherapeutic approach to induce T cell immunity in TAP-deficient cancers. We tested this using a rearranged TCR from the previously described CD8 T cell clone 1A8 (Figure 3). DNA sequencing of both the TCR-alpha and TCR-beta chains revealed the rearranged sequences, and TCR-Vβ2 usage was confirmed by flow cytometry (Table 3 and Figure 3a). Retroviral construction of this TCR with a mouse C domain to improve correct pairing of the transduced genes resulted in successful generation of TCR-transduced CD8 T cells, as measured by an antibody against the mouse TCR-Cβ domain (Figure 3b). Tetramer staining confirmed that both TCR chains were expressed and recognized both the S and V variant peptides, demonstrating the conservation of specificity for the T cell clone 1A8 (Figure 3c). Furthermore, TCR gene transfer conferred T cell reactivity, in that a stronger cytokine response was observed against the V variant peptide than against the S variant (Figure 3d). Finally, TCR-transduced T cells selectively recognized TAP-deficient melanoma in a manner comparable to that of the original T cell clone (Figure 3e). 7 Collectively, these proof-of-concept data demonstrate the feasibility of TCR gene transfer as an immunotherapy mode for TEIPP antigens and suggest that vaccination with V-SLPs may help prevent T cell contraction in vivo.
[0227] [Table 3]
[0228] In vitro vaccination with V-SLPs was performed using LRPAP 21-30 Promotes proliferation of specific TEIPP T cells. To validate the concept of vaccination with V-variant SLPs for the induction of LRPAP1-driven TEIPP T cell responses, we used an in vitro vaccination protocol called 20、21 SLP-loaded moDCs (loaded with the peptides shown in Figure 1) were co-cultured with tetramer-enriched autologous T cells for two rounds of stimulation (Figure 4a). Already after the first round of stimulation, a significant expansion of LRPAP1-specific T cells was observed compared to control cultures (16.6% vs. 1.5%, respectively) as measured by tetramer analysis (Figure 4b). This specific expansion was even more pronounced after the second round of stimulation (38.5% vs. 0.2%, respectively) (Figure 4b), demonstrating that professional antigen-presenting cells are capable of cross-presenting V-SLP and activating TEIPP-specific T cells. These results suggest that all LRPAP1-specific CD8 T cells remain in the naive state of healthy donors. 7 This is noteworthy given our previous findings that were indeed observed during in vitro priming in co-cultures, suggesting that T cells recognizing the LRPAP1 epitope were obtained when extended at the N-terminus with naturally occurring adjacent amino acids (see also Figure 5).
[0229] Next, CD8 T cell clones were generated to determine their reactivity against TAP-deficient cancers. Tetramer-positive T cells were sorted as single cells by flow cytometry and expanded in an antigen-independent manner using the mitogen phytohemagglutinin (PHA). T cell clones were analyzed for their specificity by tetramer analysis (Figure 4c). Five new T cell clones showed comparable staining for both V-peptide and S-peptide tetramers, comparable to the previously isolated clone 1A8. 7Importantly, two TAP-deficient melanomas were efficiently recognized by three of these five SLP-induced CD8 T cell clones (2H11, 2B9, and 1A10) in a manner very similar to the previously established clone 1A8 (Fig. 4d). Collectively, these observations indicated that V-SLP constitutes a functional TEIPP vaccine ready for use in inducing LRPAP1-specific T cell immunity.
[0230] Consideration Peptide-epitope LRPAP presented by HLA-A*0201 21-30 (FLGPWPAAS) is encoded by a signal peptide that functions to direct protein translation products into the sec61 translocation channel in the ER membrane. 22 After protease-mediated cleavage, part of the signal peptide enters the ER in a TAP-independent manner. Although not formally demonstrated, LRPAP 21-30 Peptide release is most likely not mediated by the proteasome, which is responsible for the proteolytic cleavage of the majority of HLA class I-presented peptides. 4 In fact, the in silico probabilistic algorithm NetCHop 21-30 Cleavage after the native serine at p9 of the sequence was predicted to be unlikely (Fig. 1c), and we therefore concluded that this signal peptide is processed in a proteasome- and TAP-independent manner.
[0231] The use of synthetic long peptide vaccines, however, depends on uptake by host dendritic cells and processing via the classical pathway involving the proteasome and the peptide transporter TAP. 26We have shown that a natural long peptide of LRPAP1 containing the minimal peptide epitope is not successfully cross-presented by dendritic cells (Fig. 1). A single amino acid substitution from serine to valine at p9 of the epitope rendered the long peptide susceptible to proteasomal cleavage and further improved binding affinity for HLA-A*0201. We hypothesized that this single amino acid exchange might shift the processing pathway of this signal sequence peptide from one mediated by SPase and SPPase to one mediated by the proteasome.
[0232] Side-by-side comparison of T cell responses induced by short S and V peptides using an in vitro vaccination protocol revealed that both repertoires were comparable in terms of cross-reactivity and functionality (Figure 4). Stimulation with short V peptides appeared to recruit a low-affinity CD8 T cell repertoire, as indicated by less intense staining with tetramers (Figure 2b). However, stimulation with dendritic cells loaded with long peptides, which required intracellular cross-presentation, resulted in polyclonal CD8 T cell bulks and clones with high affinity and a strong ability to recognize the native S variant in TAP-deficient melanoma (Figure 4). These findings suggest that vaccination with optimized V-SLPs results in the generation of LRPAP1-specific T cells with high-affinity TCRs. This advantage of SLPs over vaccination with minimal short epitopes is consistent with previous studies in preclinical mouse models and suggests that the SLP platform is well suited to recruiting high-affinity TCR repertoires. 14、17 .
[0233] We have previously shown that LRPAP1-specific T cells are present in the naive repertoire of healthy blood donors, indicating that our in vitro vaccination protocol actually primes CD8 T cells and not simply reactivates memory T cells. 7Although the differentiation status of LRPAP-1-specific T cells in cancer patients, especially those with TAP-deficient tumor cells, requires further analysis, data from mouse tumor models reveal that TEIPP-induced CD8 T cells remain naive in these settings. 6、27 We found that TAP-deficient tumors were unable to prime TEIPP T cells, and host dendritic cells were also unable to take up and cross-prime TEIPP antigens. Consequently, TEIPP immunity may need to be induced by active immunization, such as via the SLP vaccine proposed herein, or by TCR gene transfer into host T cells. Therefore, an optimized long peptide of the signal peptide of LRPAP1 containing a single amino acid exchange constitutes an ideal vaccine candidate for inducing TEIPP immunity in cancer patients.
[0234] The reader's attention is drawn to all articles and documents filed contemporaneously with or earlier than this specification in connection with this application and which are open to public inspection together with this specification, and all such articles and documents are incorporated herein by reference.
[0235] All of the features disclosed in this specification (including any accompanying claims, abstract, and drawings), and / or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and / or steps are mutually exclusive.
[0236] Each feature disclosed in this specification (including any accompanying claims, abstract, and drawings), unless expressly stated otherwise, may be replaced by an alternative feature serving the same, equivalent, or similar purpose. Thus, unless expressly stated otherwise, each feature disclosed is only an example of a generic series of equivalent or similar features.
[0237] The invention is not limited to the details of any of the foregoing embodiments. The invention extends to any novel or any novel combination of features disclosed in this specification (including any accompanying claims, abstract and drawings), or any novel or any novel combination of method or process steps so disclosed. The present disclosure provides, for example: [Section 1] An isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1). [Section 2] a) has 35 or fewer amino acids; b) consists of the amino acid sequence FLGPWPAAV (SEQ ID NO: 1), and / or c) The peptide according to Item 1, which contains the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consists of 10 to 35 amino acids. [Section 3] Item 10. The peptide of any preceding item conjugated to a TLR ligand. [Section 4] An isolated nucleic acid sequence encoding the peptide according to any one of Items 1 to 3. [Section 5] A binding agent that specifically binds to a peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1), which may be an HLA-A2*02 molecule. [Section 6] A vector comprising the nucleic acid sequence according to item 4. [Section 7] A modified cell transformed, transfected, or transduced with the nucleic acid sequence of paragraph 4 or the vector of paragraph 6, which may be a human cell. [Section 8] A method for preparing the peptide according to any one of items 1 to 3, comprising culturing the modified cell according to item 7 in a culture medium, and isolating the peptide from the culture medium or from a lysate of the modified cell after cell lysis. [Section 9] A cell loaded with the peptide according to any one of items 1 to 3, which may be an antigen-presenting cell, preferably the antigen-presenting cell is selected from macrophages, dendritic cells, monocytes, B cells, or synthetic forms of antigen-presenting cells. [Section 10] A pharmaceutical composition comprising an isolated peptide, nucleic acid sequence, vector, binding agent, or cell according to any of the preceding paragraphs, and a pharmaceutically acceptable excipient, adjuvant, diluent, and / or carrier. [Section 11] Item 11. The pharmaceutical composition of Item 10, which is formulated as a vaccine. [Section 12] Item 12. The pharmaceutical composition according to Item 10 or 11, for use as a pharmaceutical. [Section 13] Item 13. The pharmaceutical composition for use according to item 12 in the prevention or treatment of cancer or viral infections associated with impaired HLA class I antigen presentation in a human subject. [Section 14] Item 14. The pharmaceutical composition for use according to Item 13, wherein the cancer is a cancer associated with an impairment of the peptide processing mechanism. [Section 15] 12. The pharmaceutical composition of claim 10 or 11, for use in treating or preventing a cancer or viral infection associated with impaired HLA class I antigen presentation in a human subject, wherein the subject has been identified as having a cancer or viral infection associated with impaired HLA class I antigen presentation by the presence of a peptide in a sample isolated from the subject, and the peptide is FLGPWPAAS (SEQ ID NO: 2).
[0238] [Table 4] See also Tables 2 and 3.
[0239] References [Table 5-1] [Table 5-2] Table 5-3 Table 5-4
Claims
1. 1. An isolated peptide comprising the amino acid sequence FLGPWPAAV (SEQ ID NO: 1), wherein said isolated peptide comprises or consists of the amino acid sequence of any one of SEQ ID NOs: 3-8 and has 35 or fewer amino acids.
2. a) the peptide consists of the amino acid sequence FLGPWPAAV (SEQ ID NO: 1), or b) The peptide of claim 1, wherein the peptide comprises the amino acid sequence FLGPWPAAV (SEQ ID NO: 1) and consists of 10 to 35 amino acids.
3. 3. The peptide of claim 1 or 2 conjugated to a TLR ligand.
4. An isolated nucleic acid molecule encoding the peptide of any one of claims 1 to 3.
5. A vector comprising the nucleic acid molecule of claim 4.
6. A modified cell transformed, transfected or transduced with the nucleic acid molecule of claim 4 or the vector of claim 5.
7. The modified cell of claim 6, which is a human cell.
8. A method for preparing a peptide described in any one of claims 1 to 3, comprising culturing a modified cell described in claim 6 or 7 in a culture medium and isolating the peptide from the culture medium or from a lysate of the modified cell after cell lysis.
9. A cell loaded with the peptide according to any one of claims 1 to 3.
10. The cell of claim 9, which is an antigen-presenting cell.
11. The cell of claim 10, wherein the antigen-presenting cell is selected from a macrophage, a dendritic cell, a monocyte, a B cell, or a synthetic form of an antigen-presenting cell.
12. A pharmaceutical composition comprising an isolated peptide according to any one of claims 1 to 3, a nucleic acid sequence according to claim 4, a vector according to claim 5, or a cell according to any one of claims 6, 7 and 9 to 11, together with a pharmaceutically acceptable excipient, adjuvant, diluent and / or carrier.
13. 13. The pharmaceutical composition of claim 12, formulated as a vaccine.
14. 14. A pharmaceutical composition according to claim 12 or 13 for use as a medicament.
15. 15. The pharmaceutical composition of claim 14 in the prevention or treatment of cancer or viral infections associated with impaired HLA class I antigen presentation in a human subject.
16. The pharmaceutical composition of claim 15, wherein the cancer is a cancer associated with an impairment of the peptide processing mechanism.
17. 14. A pharmaceutical composition according to claim 12 or 13 for use in treating or preventing a cancer or viral infection associated with impaired HLA class I antigen presentation in a human subject, wherein the subject has been identified as having a cancer or viral infection associated with impaired HLA class I antigen presentation by the presence of a peptide in a sample isolated from the subject, and the peptide is FLGPWPAAS (SEQ ID NO: 2).
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