CCR2+ hematopoietic stem cells mediate T cell activation in adoptive cell therapy
By administering CCR2-positive hematopoietic stem cells in conjunction with adoptive cell therapy, the activation and survival of T cells are enhanced, addressing the limitations of current ACT approaches and improving treatment efficacy for cancer and infectious diseases.
Patent Information
- Application Number
- JP2022115818
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2016-12-21
- Filing Date
- 2022-07-20
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2037-12-21
AI Technical Summary
Current adoptive cellular therapy (ACT) approaches for cancer and infectious diseases often require enhancement to improve immune response and clinical efficacy, particularly in subjects who have not received immune checkpoint inhibitors.
Administering a preparation containing hematopoietic stem cells (HSCs) enriched for CCR2-positive cells in conjunction with adoptive cell therapy (ACT) to enhance T cell activation and IFNγ secretion within the tumor microenvironment and tumor-draining lymph nodes.
The combination of HSC transfer and ACT significantly increases the activation and survival of T cells, leading to improved treatment outcomes for cancer and infectious diseases, particularly in subjects who have not undergone immune checkpoint blockade.
Smart Images

Figure 0007681908000002 
Figure 0007681908000003 
Figure 0007681908000004
Abstract
Description
[Technical field]
[0001] Related Applications This application claims the benefit under 35 USC § 119(e) of U.S. Provisional Patent Application No. 62 / 437582, filed December 21, 2016, which is incorporated herein by reference in its entirety. Government support This invention was made with Government support under R01 CA194239 awarded by the National Institutes of Health. The Government has certain rights in the invention. [Background technology]
[0002] Background of the disclosure Enhancement of CD4 and CD8 T cell activity against various cells, including cancer cells, is an approach being investigated to treat cancer and infectious diseases. In one strategy, T lymphocytes are stimulated with antigen, expanded ex vivo, and then transfused into a subject. This is a form of adoptive cellular therapy (ACT). Certain ACT strategies have been shown to induce cancer regression in early clinical trials. ACT may be particularly useful for treating cancer and / or infectious diseases that arise after immunodepletion and hematopoietic stem cell transplantation (HSCT).
[0003] Another approach that has been studied to treat cancer is hematopoietic stem cell transplantation (HSCT) using hematopoietic stem cells (HSCs) that are collected from bone marrow or mobilized from bone marrow and collected in peripheral blood, followed by high-dose chemotherapy.HSCT and / or HSC mobilization can enhance the effect of certain cell-based immunotherapies when combined with treatment to induce lymphopenia.Administering HSCs or HSC mobilizing agents alone does not show clinical efficacy in many subjects with different cancers. The inventors have previously made the independent observation that bone marrow-derived hematopoietic stem cells (HSCs), including CCR2+ cells, can enhance immune checkpoint inhibitor therapy in certain cases (PCT / US16 / 44718, incorporated herein by reference in its entirety). Summary of the Invention
[0004] Disclosure Summary According to the present disclosure, ACT and CCR2 positivity (CCR2 + It was discovered that administration of HSCs significantly increased the activation and IFNγ secretion of adoptively transferred T cells within the tumor microenvironment and within tumor-draining lymph nodes compared to ACT alone. The inventors have demonstrated that ACT-treated patients who have not yet undergone immune checkpoint blockade with immune checkpoint inhibitors have a higher T cell count than those who have not yet undergone immune checkpoint blockade with immune checkpoint inhibitors. not present CCR2 to the subject + It has been surprisingly found that administration of HSCs results in increased survival of ACT. Without wishing to be bound by any theory of the disclosure, it is believed that CCR2 + Mechanistic insight is provided through the demonstration that the combination of HSC transfer and ACT results in an increase in IFNγ-positive T cells within the tumor microenvironment.
[0005] In one aspect, the ACT platform uses bone marrow-derived dendritic cells pulsed with tumor-derived total RNA to expand tumor-specific T cells (TTRNA-T cells) ex vivo (Flores et al., 2015). These studies demonstrate that HSC administration with ACT significantly increases TTRNA-T cell activation and IFNγ secretion within the tumor microenvironment and within tumor-draining lymph nodes compared to ACT alone. According to the present invention, a method of treating a disease selected from cancer or infectious disease in a subject is provided. The method includes administering adoptive cell therapy (ACT) to a subject having the disease, and administering to the subject a preparation containing hematopoietic stem cells in an amount effective to treat the disease, where the hematopoietic stem cells (HSCs) are enriched for CCR2-positive (CCR2+) cells (or precursors of CCR2+ cells), and the subject has not received an immune checkpoint inhibitor.
[0006] In an embodiment, the HSCs in the preparation are lineage depleted.In an embodiment, the HSCs in the preparation are at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 98% or even 99% CCR2+ cells (or precursors of CCR2+ cells).In an embodiment, the HSCs in the preparation are less than 50%, 40%, 30%, 20%, 10%, 5%, 2% or even less than 1% CCR2 negative (CCR2-) cells.In an embodiment, between 50% and 100% of the cells in the preparation are CCR2+ cells (or precursors of CCR2+ cells). In embodiments, the cells in the preparation are precursors of CCR2+ cells, as defined as CD34+ HSCs, CD34+CD38+ HSCs, or aldehyde dehydrogenase (ALDH) bright HSCs, which can give rise to CCR2+ lineage negative HSCs. In any of the above embodiments, optionally, the subject has been treated with radiation therapy or chemotherapy. In any of the above embodiments, optionally, the subject is scheduled to receive radiation therapy or chemotherapy.
[0007] In any of the above embodiments, the source of hematopoietic stem cells can be bone marrow, peripheral blood, umbilical cord blood, or induced pluripotent stem cells. In any of the above embodiments, the source of hematopoietic stem cells can be hematopoietic progenitor cells. In any of the above embodiments, the source of stem cells can be autologous. In any of the above embodiments, the source of stem cells can be allogeneic, with the donor cells being HLA-matched to the recipient. In any of the foregoing embodiments, the adoptive cell therapy can be chimeric antibody receptor (CAR) modified T cells. In some embodiments, the therapy can be used to treat any of the diseases or infections described herein. In any of the foregoing aspects, the disease can be cancer, and the cancer can be melanoma, squamous cell carcinoma, basal cell carcinoma, breast cancer, head and neck cancer, thyroid cancer, soft tissue sarcoma, osteosarcoma, testicular cancer, prostate cancer, ovarian cancer, bladder cancer, skin cancer, brain cancer, glioblastoma, medulloblastoma, ependymoma, angiosarcoma, hemangiosarcoma, mast cell tumor, primary liver cancer, small cell lung cancer, non-small cell lung cancer, pancreatic cancer, gastrointestinal cancer, renal cell carcinoma, hematopoietic neoplasms, lymphoma, mesothelioma, glioblastoma, low grade glioma, high grade glioma, pediatric brain cancer, medulloblastoma, or metastatic cancers thereof.
[0008] In an embodiment, the cancer is metastatic or refractory cancer of the brain, lung, breast, or melanoma. In an embodiment, the cancer is metastatic brain cancer from non-small cell lung cancer, metastatic brain cancer from melanoma, or metastatic brain cancer from breast cancer. In an embodiment, the cancer is glioblastoma, low-grade glioma, high-grade glioma, pediatric brain cancer, or medulloblastoma. In any of the foregoing embodiments, the disease may be an infectious disease. In embodiments, the infectious disease is a chronic infectious disease. In embodiments, the infectious disease is any hepatitis, adenovirus, polyomavirus such as BK, human immunodeficiency virus (HIV), herpes simplex virus (HSY), respiratory syncytial virus (RSV), cytomegalovirus (CMV), Epstein-Barr virus (EBY), influenza A, B, and / or C, vesicular stomatitis virus (VSV), Staphylococcus species including methicillin-resistant Staphylococcus aureus (MRSA), Streptococcus species including Streptococcus pneumonia, or a post-transplant infection. In embodiments, the infectious disease is hepatitis A, hepatitis B, or hepatitis C.
[0009] According to another aspect of the invention, an improvement is provided for ACT to treat a subject. The improvement comprises administering a preparation containing hematopoietic stem cells to the subject (i.e., administering HST), wherein the hematopoietic stem cells (HSCs) are enriched for CCR2 positive (CCR2+) cells (or precursors of CCR2+ cells), and the subject has not received an immune checkpoint inhibitor. In an embodiment, the HSCs in the preparation are lineage depleted. In an embodiment, the HSCs in the preparation are at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 98% or even 99% CCR2+ cells (or precursors of CCR2+ cells). In an embodiment, the HSCs in the preparation are less than 50%, 40%, 30%, 20%, 10%, 5%, 2%, or even less than 1% CCR2 negative (CCR2-) cells. In an embodiment, between 50% and 100% of the cells in the preparation are CCR2+ cells (or precursors of CCR2+ cells).In any of the above-mentioned embodiments, the ACT can be treating a subject with cancer or a subject with an infectious disease.The cancer and infectious disease can be as described above.
[0010] According to another aspect of the invention, a kit is provided. The kit is a package containing a first container containing T cells for ACT and a second container containing HSCs, as well as instructions for use, where the hematopoietic stem cells (HSCs) are enriched for CCR2-positive (CCR2+) cells (or precursors of CCR2+ cells), and where the instructions indicate use without an immune checkpoint inhibitor. In an embodiment, the HSCs in the preparation are lineage-depleted. In an embodiment, the HSCs in the preparation are at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 98% or even 99% CCR2+ cells (or precursors of CCR2+ cells). In an embodiment, the HSCs in the preparation are 50%, 40%, 30%, 20%, 10%, 5%, less than 2%, or even less than 1% CCR2-negative (CCR2-) cells. In an embodiment, the cells between 50% and 100% in the preparation are CCR2+ cells (or precursors of CCR2+ cells). In any of the foregoing embodiments, the T cells and HSCs may or may not be syngeneic. In any of the foregoing embodiments, the T cells can be CarT cells. In any of the foregoing embodiments, the T cells and HSCs can have a matching HLA. These and other aspects of the invention are described in further detail below. BRIEF DESCRIPTION OF THE DRAWINGS
Brief Description of the Drawings
[0011] [Figure 1A] Figure 1A shows that CCR2+ HSCs can cross-prime host T cells in the draining lymph node when combined with anti-PD-1 in a malignant glioblastoma model. [Figure 1B] Figure 1B shows that CCR2+ HSCs can cross-prime host T cells in the draining lymph node when combined with anti-PD-1 in a medulloblastoma model. [Diagram 2]Figure 2 shows that administration of HSCs with ACT significantly increases TTRNA-T cell activation and IFNγ secretion in the tumor microenvironment and in tumor-draining regional lymph nodes compared to ACT alone. RNA from mice that received ACT+HSCs was analyzed using the RT2 PCR array for T cell activation and B cell activation, compared to ACT alone.
[0012] [Diagram 3] Figures 3A - 3C show that CCR2+HSC transfer is associated with increased TTRNA-T cell activation in the tumor microenvironment. Figure 3A shows that HSCs were further isolated into CCR2+HSCs or CCR2-HSCs and transferred into tumor-bearing mice that received ACT. Tumor-specific T cells for ACT were generated using GREAT mice. One week after ACT, tumors were harvested and the relative expression of YFP (IFNγ) was quantified between groups. Figure 3B shows that more CCR2+HSCs are found in intracranial tumors 24 hours after transfer compared to CCR2-HSCs. Figure 3C shows that CCR2-HSC-derived cells and CCR2+HSC-derived cells were isolated from intracranial tumors of mice that received ACT with either CCR2-HSCs or CCR2+HSCs. HSC-derived cells were phenotyped using flow cytometry.
[0013] [Figure 4] Figure 4 shows that CCR2+HSCs differentiate into APCs in vitro. CCR2-HSCs and CCR2+HSCs were freshly isolated from mouse bone marrow and cultured in vitro using a previously established dendritic cell generation protocol. The resulting cells were phenotyped for markers of antigen-presenting cells, CD11c, CD80, CD86, Gr1-1, MHCII. Subsequently, the resulting cells derived from either CCR2-HSCs or CCR2+HSCs were tested for their ability to present tumor antigen. Tumor-specific effector T cells were used to target either CCR2-HSC-derived cells pulsed with tumor RNA, or CCR2+HSC-derived cells pulsed with tumor RNA. IFNγ was measured as an indicator of T cell recognition of the alloantigen.
[0014] [Diagram 5] Figures 5A-5C show that CCR2+ HSC-derived cells present tumor antigens to T cells within intracranial tumors. Figure 5A shows that HSC-derived cells were isolated from tumor-bearing mice that underwent ACT. Effector tumor-specific T cells (TTRNA T cells) were used in an in vitro functional assay to target isolated HSC-derived cells. IFNγ secretion was measured as an indicator that cognate tumor antigens were presented to tumor-specific T cells (TTRNA T cells). Figure 5B shows that HSCs isolated from either MHC I- / - or MHC II- / - mice were transferred to late-stage tumor-bearing mice that underwent ACT along with tumor-specific T cells generated from GREAT mice. One week after ACT, tumors were resected and analyzed for relative expression of CD3+YFP+ cells. Figure 5C shows that HSC-derived cells isolated from intracranial tumors with or without irradiation have the ability to activate TTRNA- T cells.
[0015] [Figure 6] Figures 6A-6B show that intratumoral CCR2+ HSC-derived cells cross-prime tumor-specific T cells in the periphery. Figure 6A shows that mice with established KR158B intracranial gliomas received either GFP+ HSCs, GFP+ CCR2- HSCs, or GFP+ CCR2+ HSCs in addition to adoptive cell therapy. One week after ACT, GFP+ cells were isolated from the tumor using sterile FACS. These were then used as a "vaccine" for a second set of tumor-bearing mice that underwent ACT with DsRed+ tumor-specific T cells. Figure 6B shows that vaccine-draining lymph nodes were collected one week after "vaccine" and the relative proliferation of DsRed+ tumor-specific T cells between groups was assessed using flow cytometry. [Figure 7]Figure 7A shows that CCR2+ HPC cells failed to rescue myeloablative hosts from bone marrow failure. C57BL / 6 mice received myeloablative 9 Gy TBI and either freshly isolated bone marrow-derived HSCs, CCR2- HSCs, or CCR2+ HSCs (all groups received 105 cells per mouse). Figure 7B shows that CCR2+ HSCs with adoptive cell therapy provided a significant survival benefit over the use of bulk HSCs alone.
[0016] [Figure 8] Figure 8 shows that tumor-bearing mice received adoptive cell therapy with either CCR2+ HSCs or CCR2- HSCs. One week after ACT, HSC-derived cells were isolated from tumors and phenotyped using flow cytometry. [Figure 9] Figure 9 shows that tumor-bearing mice received injections of DsRed+HSCs, CCR2-HSCs, or CCR2+HSCs directly into the tumor. One week later, tumor-draining cervical lymph nodes were excised and the relative amount of DsRed+ cells was quantified by flow cytometry to determine whether HSC-derived cells had extravasated from the tumor to secondary lymphoid organs. Compared to CCR2-HSCs, the group receiving CCR2+HSCs had significantly higher amounts of DsRed+ cells in the draining lymph nodes (p=0.0480; unpaired t-test).
[0017] [Figure 10] Figure 10A shows that C57BL / 6 mice underwent ACT with tumor-specific T cells generated from GREAT mice expressing YFP on the IFNγ promoter. Higher YFP expression was detected within the tumor in the group that received ACT and co-transfer of HSCs. The mean fluorescence intensity was measured across the whole brain section containing the tumor. Figure 10B shows that tumor-draining lymph nodes were also isolated and analyzed for YFP expression of CD8+ T cells using flow cytometry. [Figure 11]Figure 11 shows that tumor-bearing mice underwent ACT using TTRNA T cells generated from GREAT mice to longitudinally track T cell activation. This was followed by co-transfer of bone marrow-derived lineage-negative HSCs defined by Sca1, cKit, CD133, CD38, BMPR2, or CCR2. One week after cell transfer, tumors were resected and levels of YFP were measured to determine which subpopulations led to increased T cell activation.
[0018] [Figure 12] Figure 12 shows that either MHC I or MHC II was blocked by addition of blocking antibodies in an in vitro co-culture functional assay. Mean IFNγ in the HSC-derived group was 802.4 pg / mL compared to 161.6 in the HSC-derived + anti-MHC I group, unpaired t-test p=0.0390. No significant reduction in IFNγ was detected in the MHC II blocking group. [Figure 13] Figure 13A shows that C57BL / 6 mice received cerebellar Ptc medulloblastoma tumors followed by lymphodepleted host conditioned and adoptive cell therapy with either bulk HSCs or CCR2+ HSCs. Figure 13B shows that C57BL / 6 mice received K2 brainstem glioma transplantation into their brainstem followed by lymphodepleted host conditioned and adoptive cell therapy with either bulk HSCs or CCR2+ HSCs. [Figure 14] Figure 14 shows that KR158B intracranial tumor-bearing mice underwent lymphodepleting host conditioning with 5 Gy TBI prior to adoptive cell therapy. Cohorts received either bulk HSC, CCR2- HSC, or CCR2+ HSC. Mice receiving CCR2+ HSC had increased median survival (undefined) over mice receiving bulk HSC (51 days) (p=0.0005).
[0019] Detailed Description The following detailed description is provided as an illustration of certain aspects of the disclosure. It is to be understood that other aspects are contemplated and may be made without departing from the scope or spirit of the present disclosure. Thus, the following detailed description, including examples, should not be construed in a limiting sense. Scientific and technical terms used herein have the meanings commonly used in the art unless otherwise specified. The definitions provided herein are for ease of understanding of certain terms frequently used herein and are not meant to limit the scope of the present disclosure. The singular forms "a", "an" and "the" include the plural forms unless the content clearly dictates otherwise. The term "or" is generally used in the sense of including "and / or" unless the content clearly dictates otherwise.
[0020] Adoptive cell therapy (ACT or adoptive cell transfer). Adoptive cell therapy is the transfer of cells to a patient for the purpose of transferring immune functions and other characteristics with the cells. The cells are most commonly of immune origin, e.g., T cells, and can be autologous or allogeneic. If allogeneic, they are typically HLA-matched. Generally, in cancer immunotherapy, T cells are extracted from a patient, optionally genetically modified, cultured in vitro, and transferred back to the same patient. The transfer of autologous rather than allogeneic cells minimizes the problem of graft-versus-host disease. The transfer of allogeneic rather than autologous cells maximizes flexibility, for example, in the preparation and storage of T cells. Ideally, so-called universal donor cells can be used. ACT can be used to treat viral infections and / or cancer. The use of allogeneic ACT in subjects in the post-immunosuppression period is believed to be beneficial to the subject, as it may enhance immunity, including anti-tumor immunity, and increase vaccine efficacy in the post-immunosuppression period. ACT of tumor-specific T cells has been shown to be effective in the treatment of solid tumors in mouse and human systems. In the disclosed embodiment, ACT is directed against CCR2 + Used in conjunction with HSC infusion, where CCR2 + The addition of HSCs increases the subject's immune competence compared to ACT alone.
[0021] Chimeric antigen receptor (CAR) modified T cells (CART) In some embodiments, the T cells transferred with ACT are CART. Chimeric antigen receptor (CAR) modified T cells (CART) have great potential in selectively targeting specific cell types and exploiting immune system surveillance capabilities and powerful self-propagating cytotoxic mechanisms against tumor cells with exquisite specificity. This technology provides a way to target neoplastic cells with the specificity of monoclonal antibody variable region fragments and affect cell death with the cytotoxicity of effector T cell function. For example, the antigen receptor can be an scFv or any other monoclonal antibody domain. In some embodiments, the antigen receptor can also be any ligand that binds to target cells, such as the binding domain of a protein that naturally associates with a cell membrane protein. CART therapy has been successfully applied to the treatment of several different tumor types that were refractory to other forms of treatment. The key to CART therapy is the availability of cell surface antigens that can be targeted in a cell-specific manner. There are several cell surface antigens that are selectively expressed.
[0022] In some embodiments, the present invention relates in part to the use of T cells genetically modified to express a desired CAR (e.g., containing an IL-15Rα cytoplasmic domain). T cells expressing a CAR are referred to herein as CAR T cells, CART, or CAR modified T cells. Preferably, the cells can be genetically modified to express an antibody binding domain on their surface, conferring a novel antigen specificity that is MHC independent. In some examples, T cells are genetically modified to express a CAR that combines the antigen recognition domain of a specific antibody with a transmembrane domain and a cytoplasmic domain into a single chimeric protein. In some embodiments, two CAR proteins dimerize in vivo (e.g., form a homodimer or heterodimer).
[0023] Hematopoietic Stem Cells. Hematopoietic stem cells (HSCs), also called blood stem cells, are immature cells found in blood and bone marrow that can self-renew and differentiate into a variety of specialized cells, such as blood and immune cells, including white blood cells, red blood cells, and platelets. HSCs can be mobilized from the bone marrow into the circulating blood. HSCs drive the constant renewal of blood cells, producing billions of new blood cells each day.
[0024] Hematopoietic stem cell transplantation (HSCT). Hematopoietic stem cell (HSC) transplantation (HSCT or HSC transfer) is the transplantation of HSCs, usually derived from peripheral blood, bone marrow, or umbilical cord blood. Two types of HSCT can be used for a subject: autologous stem cell transplantation, in which the subject's own stem cells are used, or allogeneic stem cell transplantation, in which the subject is transplanted with stem cells from a donor who is genetically similar to the recipient and HLA-matched. In some embodiments of the disclosure, autologous stem cells are used for HSCT. In some embodiments of the disclosure, allogeneic stem cells that are HLA-matched to the subject are used for HSCT. In some embodiments, in autologous HSCT, a sample containing stem cells is removed from the subject, stored, and later transplanted back into the subject. In some embodiments, in allogeneic or autologous HSCT, a sample containing CCR2+ stem cells is removed from the subject, stored, and then transplanted into the subject. In some embodiments, in allogeneic or autologous HSCT, a sample containing CCR2+ stem cells is removed from the subject, expanded ex vivo in culture, and later transplanted into the subject. In some embodiments, in allogeneic or autologous HSCT, a sample containing CCR2+ stem cells is removed from the subject, the sample is selected for CCR2+ cells, and then the selected cells are expanded ex vivo in culture. In some embodiments, the expanded / cultured cells are again selected for CCR2+ cells. In some embodiments, the CCR2+ selected cells are stored. In some embodiments, the CCR2+ selected cells are transplanted into the subject. The CCR2+ selected cells are transplanted into the subject undergoing ACT. In some embodiments, the subject also undergoes radiation therapy or chemotherapy.
[0025] Hematopoietic stem cells (HSCs) and subsets thereof. Because HSCs represent a small proportion of the total population of blood cells in a sample, it may be advantageous to increase the number of autologous or allogeneic HSCs before administering CCR2+ stem cells to a subject for treatment of a disease in the subject, such as cancer or an infectious disease. In some embodiments of the disclosure, hematopoietic stem cells are collected and expanded before transplanting them into a subject for treatment. In some embodiments of the disclosure, hematopoietic stem cells are collected, expanded and selected from a sample before transplanting them into a subject for treatment. In some embodiments, a sample containing hematopoietic stem cells is obtained and treated in vitro to increase the number of stem cells in the sample before administering hematopoietic stem cells to a subject. In some embodiments, a sample containing hematopoietic stem cells is obtained and treated in vitro to increase the proportion of stem cells in the sample before administering hematopoietic stem cells to a subject.
[0026] According to the invention, the hematopoietic stem cells or progenitor cells thereof are enriched for CCR2+ cells. In an embodiment, enrichment can occur by selectively stimulating the growth / proliferation of stem cells versus other cells collected from the subject. In another embodiment, the stem cells can be enriched by isolating the stem cells from other cells collected from the subject. Such selection can be a so-called positive selection or negative selection. In some embodiments, a sample containing hematopoietic stem cells is obtained and treated in vitro to increase the number of stem cells in the sample before administering the hematopoietic stem cells to the subject. In some embodiments, a sample containing hematopoietic stem cells is obtained and treated in vitro to increase the number of CCR2+ stem cells or progenitor cells in the sample before administering the hematopoietic stem cells to the subject. In some embodiments, a sample treated to increase the number of CCR2+ stem cells or progenitor cells is depleted of CCR2- cells before administering the hematopoietic stem cells to the subject.
[0027] CCR2 + The HSCs isolated or selected for the marker or their progenitors may additionally or alternatively be CD34 +Alternatively, it should be understood that lin-cells may be isolated by positive selection. + It should also be understood that HSCs isolated or selected for a marker or its progenitors can additionally or alternatively be isolated by negative selection and removal of CCR2- cells. + HSCs or their precursors express CCR2 + The HSCs are isolated and expanded prior to administration to the subject. In some embodiments, the HSCs are isolated and + Cells or their precursors were selected ex vivo and expressed CCR2 + The HSCs are expanded ex vivo prior to administration to a subject. In positive selection, stem cells are isolated based on a marker known to be present on stem cells but not on other cells. In some embodiments, in positive selection, stem cells are isolated based on a marker known to be present on stem cells but not on other cells. + , CD34 + , and / or lin-, thereby enriching HSCs for the positive marker(s). In embodiments, the stem cells are isolated based on the marker CCR2 + It is isolated based on the above. In negative selection, cells that are not stem cells are identified and removed based on markers on other cells, leaving stem cells behind. In negative selection, HSCs are treated ex vivo to express CCR2 + , CD34 + , and / or may deplete non-lin- cells.
[0028] Such selection procedures are well known to those skilled in the art and include, but are not limited to, flow cytometry analysis, microbead-based isolation, magnetic bead separation, adhesion assays, and / or ligand-based selection. In some embodiments, ligand-based selection is based on the presence of CCR2 ligands, such as CCL2, CCL7, or CCL13. In some embodiments, less than 50% of the starting population of CCR2-HSCs remains. In some embodiments, less than 40%, 30%, 20%, 15%, 10%, 5%, 2%, or even less than 1% of the starting population of CCR2-HSCs remains. In some embodiments, the preparation of HSCs for administration contains no more than 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, or 10% CCR2-HSCs. In some embodiments, multiple steps of positive selection with intervening steps of expansion may be used. In embodiments, the preparation for administration comprises at least about 10%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% CCR2 + cells (which are CD34 + ), and / or contain lin-HSCs.
[0029] Sources of hematopoietic stem cells herein include: myeloid lineage-depleted cells (lin-), mobilized from host bone marrow using G-CSF, mobilized from host bone marrow using AMD3100, plerixafor, or the molecule 1,1'-[1,4-phenylenebis(methylene)]bis[1,4,8,11-tetraazacyclotetradecane], cKit + Purified lineage-negative bone marrow-derived cells, Sca + Purified lineage-negative bone marrow-derived cells, cKit + Sca + Purified bone marrow-derived cells, umbilical cord blood or umbilical cord blood-derived stem cells, human leukocyte antigen (HLA)-matched blood, mesenchymal stem cells derived from blood or bone marrow, hematopoietic stem cells differentiated from induced pluripotent stem cells, mobilized peripheral blood, peripheral blood, CCR2 + Hematopoietic stem cell subsets containing marker-purified Lin- cells, lineage-negative purified peripheral blood, or CD34 + Enriched peripheral blood. In some embodiments of the disclosure, the source of HSC is bone marrow. In some embodiments of the disclosure, the source of HSC is autologous or allogeneic, optionally wherein the source is bone marrow, peripheral blood, umbilical cord blood, or induced pluripotent stem cells.
[0030] Hematopoietic stem cell mobilizing agents. In some embodiments of the disclosure, hematopoietic stem cell mobilizing agents can be administered to a subject to assist in the isolation of HSCs from the subject. HSC mobilization refers to the recruitment of HSCs from the bone marrow of a subject to the peripheral blood of the subject. In the present application, HSC mobilizing agents include granulocyte colony stimulating factor (G-CSF), PEGylated G-CSF (pegfilgrastim), lenograstim, glycosylated forms of G-CSF, CXC motif chemokine 2 (CXCL2), CXC chemokine receptor type 4 (CXCR-4), and plerixafor. Radiation therapy or chemotherapy. HSCT is often administered with chemotherapy. The inventors have + It is shown herein that the effect of combined treatment with administration of HSCs is enhanced by radiation therapy (e.g., FIG. 7B). In some embodiments, ACT and CCR2 + The subject receiving the HSCs also receives radiation therapy or chemotherapy.
[0031] Cancer. Therapeutic methods described herein include the treatment of existing or established cancer, i.e., present and detectable in a subject. Additionally, the treatment of precancerous lesions (e.g., adenomatous polyps, or cellular dysplasia) for the prevention of cancer development is envisioned. Cancers treatable according to the present disclosure include the following cancers: melanoma, squamous cell carcinoma, basal cell carcinoma, breast cancer, head and neck cancer, thyroid cancer, soft tissue sarcoma, osteosarcoma, testicular cancer, prostate cancer, ovarian cancer, bladder cancer, skin cancer, brain cancer, glioblastoma, medulloblastoma, ependymoma, angiosarcoma, hemangiosarcoma, mast cell tumor, primary liver cancer, small cell lung cancer, non-small cell lung cancer, pancreatic cancer, gastrointestinal cancer, renal cell carcinoma, hematopoietic neoplasms, lymphoma, mesothelioma, or metastatic cancers thereof. In the disclosed embodiment, the cancer treated in the disclosure includes glioblastoma, low grade glioma, high grade glioma, brain stem glioma, cortical glioblastoma, pediatric brain cancer, and medulloblastoma.In the disclosed embodiment, the cancer is aggressive intracranial glioma.In the disclosed embodiment, the cancer is metastatic or refractory cancer of brain, lung, breast, or melanoma.
[0032] Infectious diseases. The disclosure is also useful in relation to the treatment of infectious diseases. In general, opportunistic pathogenic microorganisms can be classified as viruses, fungi, parasites, and bacteria. Exemplary pathogenic viral organisms that cause human disease include (but are not limited to) filoviruses, herpesviruses, hepatitis viruses, retroviruses, human immunodeficiency virus (HIV), orthomyxoviruses, paramyxoviruses, togaviruses, picornaviruses, papovaviruses, and gastroenteritis viruses. Exemplary pathogenic bacteria causing serious human diseases are gram-positive organisms: Staphylococcus aureus, Staphylococcus epidermidis, Enterococcus faecalis and E. faecium, Streptococcus pneumoniae and gram-negative organisms: Pseudomonas aeruginosa, Burkholdia cepacia, Xanthomonas maltophila, Escherichia coli, Enterobacter spp., Klebsiella pneumoniae and Salmonella spp. Exemplary pathogenic protozoa causing human diseases include (but are not limited to) malaria, e.g., Plasmodium falciparum and M. ovale, trypanosomiasis (sleeping sickness), e.g., Trypanosoma cruzei, leishmaniasis, e.g., Leischmania donovani, amebiasis, e.g., Entamoeba histolytica. Exemplary pathogenic fungi that cause or are associated with human disease include (but are not limited to) Candida albicans, Histoplasma neoformans, Coccidioides immitis, and Penicillium marneffei. In embodiments, the infectious disease organism is one that is involved in a chronic infection.Diseases of particular importance are hepatitis, adenovirus, polyomaviruses such as BK, human immunodeficiency virus (HIV), herpes simplex virus (HSV), respiratory syncytial virus (RSV), cytomegalovirus (CMV), Epstein-Barr virus (EBV), influenza types A, B, and C, vesicular stomatitis virus (VSV), Staphylococcus species including methicillin-resistant Staphylococcus aureus (MRSA), Streptococcus species including Streptococcus pneumoniae, and post-transplant infections.
[0033] Antibody. The term antibody is used in the broadest sense and specifically includes, for example, single monoclonal antibodies, antibody compositions with polyepitopic specificity, single chain antibodies, and antigen-binding fragments of antibodies. Antibodies can include immunoglobulin constant domains from any immunoglobulin, such as IgG1, IgG2, IgG3, or IgG4 subtypes, IgA (including IgA1 and IgA2), IgE, IgD, or IgM. In some embodiments, the therapeutic modality used herein can be isolated.In the context of biologics, isolated means that the biologic has been removed from its natural environment or modified from its natural state.As such, isolated does not necessarily reflect the degree to which the molecule has been removed from its natural environment or modified from its natural state.However, it will be understood that a biologic that has been purified to a certain extent and can be used for its intended therapeutic purpose is "isolated". The antibodies used herein may be used to selectively bind to their targets, such as CCR2, CD34, or any target used in the kit for lineage depletion.
[0034] Subject. "Subject" refers to a mammal, such as a human, a non-human primate, a dog, a cat, a sheep, a horse, a cow, a pig, a mouse, a rat, a rodent, or a goat. In important embodiments, the subject and / or mammal is a human. In some embodiments, the subject has not received an immune checkpoint inhibitor. Treatment. "Treat," "treating," "treatment," and "therapy" encompass actions that occur while a subject is suffering from a condition, which reduce the severity of the condition (or symptoms associated with the condition) or prevent or slow the progression of the condition (or symptoms associated with the condition). This is a therapeutic treatment. Effective amount. The subject is treated with an effective amount of the disclosed solution. The "effective amount" of an agent generally refers to an amount sufficient to elicit a desired biological response, i.e., to treat a condition. As will be understood by those skilled in the art, the effective amount of the agents described herein may vary depending on factors such as the condition being treated, the mode of administration, and the age, body composition, and health of the subject.
[0035] For therapeutic treatment, an effective amount is an amount sufficient to provide a therapeutic benefit in the treatment of a condition or to reduce or eliminate one or more symptoms associated with that condition. This can include an amount that improves overall therapy, reduces or avoids the symptoms or causes of a condition, or enhances the therapeutic effect of another therapeutic agent. Generally, an effective amount is administered to enhance immune response in a subject.In the context of a particular disease or condition, "enhancing immune response" means stopping the onset, inhibiting the progression, reversing the onset, or otherwise reducing or improving one or more symptoms of the disease or condition, for example, one or more symptoms of cancer, or one or more symptoms of infectious disease.Furthermore, an effective amount can be an amount that slows, stops, or reverses the proliferation of cancer cells or infectious pathogens in a subject.
[0036] In some embodiments, CCR2 +An effective amount of HSC is any amount that increases the benefit of treatment with ACT or improves the condition of a subject being treated with ACT compared to the combination of ACT alone, ACT and chemotherapy, or ACT and radiation therapy. Exemplary effective amounts of mobilizing agents: Such agents are provided in amounts sufficient to mobilize stem cells from bone marrow to peripheral blood. Such amounts of particular mobilizing agents include, for example, 1 μg / kg to 20 μg / kg of G-CSF per day, preferably 5 μg / kg or 10 μg / kg of G-CSF per day; 1 to 20 mg of PEGylated G-CSF, preferably 6 mg or 12 mg of PEGylated G-CSF per day; 1 to 20 μg / kg of PEGylated G-CSF per day; 1 to 20 μg / kg of lenograstim per day; 1 to 40 μg / m per day; 2 CXC chemokine receptor type 4 (CXCR-4); 1–40 μg / m per day 2 The drug is plerixafor.
[0037] Administration of the cells is by any available means known to those of skill in the art. In embodiments, administration of the cells is typically by infusion (e.g., intravenous) or injection (e.g., subcutaneous or intratumoral) or implantation. Timing. The CCR2+HSCs are administered close enough to the ACT to have a beneficial effect on the treatment. In an embodiment, the CCR2+HSCs are administered 1-28 days after the completion of radiation therapy, for example, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, or 28 days, and 1-14 days before adoptive cell therapy, for example, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, or 14 days. Repeated infusions of the CCR2+HSCs can be administered in subsequent cycles of ACT or with tumor-specific vaccination, typically at intervals of 1-6 months, for example, 1, 2, 3, 4, 5, or 6 months.
[0038] example Example 1. Bone marrow-derived monocyte populations are highly heterogeneous, and distinct subsets are defined based on the differential expression of various myeloid markers. The chemokine receptor CCR2 is expressed on monocytic progenitors and is required for their entry into the CNS as a chemotactic response to CCL2, typically expressed by KR158B gliomas (Clarkson et al., 2015; Sagar et al., 2012; Flores et al., 2015). In this study, we identified a subset of HSCs expressing CCR2 (CCR2 + We observed that CCR2 HSCs migrated into intracranial tumors within 3 h (data not shown). + To isolate HSCs, bone marrow was collected from non-tumor-bearing mice and lineage-depleted using a magnetic bead isolation kit (Miltenyi Biotec, CA). The resulting lineage-negative HSCs were then further enriched by secondary magnetic bead depletion using a biotinylated anti-CCR2 antibody followed by an anti-biotin bead-conjugated antibody.
[0039] Example 2. Determining whether HSC-derived cells found in tumors extravasate from intracranial tumors to tumor-draining lymph nodes and subsequently present tumor antigens to peripheral T cells. HSCs were isolated from the bone marrow of non-tumor-bearing mice expressing the DsRed reporter on the β-actin promoter. + HSCs were further treated with CCR2 + HSC or CCR2 - HSCs were isolated. + HSC, DsRed + CCR2-HSC, or DsRed + CCR2 + We directly injected either HSCs or DsRed HSCs into established intracranial KR158B tumors in vivo. One week later, tumor-draining cervical lymph nodes were harvested and transfected with DsRed HSCs. + The presence of HSC-derived cells was analyzed. + The group that received HSCs had significantly more CCR2 in their lymph nodes. +We demonstrated that CCR2+ HSCs gave rise to cells that preferentially migrated to lymph nodes (p=0.021 vs. unsorted HSC group). + To determine whether HSC-derived cells have the ability to cross-prime host peripheral T cells, the same lymph nodes were also processed for isolation of systemic T cells using a magnetic bead-based Pan T cell Depletion Kit (Miltenyi Biotec, CA). These T cells were then tested for antitumor function by co-culturing them against tumor cell targets in vitro (Figures 1A-1B). Strikingly, we found that CCR2 + T cells isolated from tumor-draining lymph nodes of mice receiving HSC secrete IFNγ in response to tumor targets but express CCR2 - We found that mice receiving HSCs or unsorted HSCs exhibited inferior T cell activation based on IFNγ secretion.
[0040] Example 3. Effect of HSC administration with ACT. The inventors previously demonstrated that co-transfer of HSCs with adoptive cell therapy mediates intratumoral migration and engraftment of tumor-specific T cells and suppression of early tumor growth in KR158B glioma (Flores et al., 2015). + We evaluated whether the use of HSCs would also enhance the efficacy of adoptive cell therapy (ACT), a platform that uses bone marrow-derived dendritic cells pulsed with tumor-derived total RNA to expand tumor-specific T cells (TTRNA-T cells) ex vivo. 13 This study demonstrates that administration of HSCs with ACT significantly increased TTRNA-T cell activation and IFNγ secretion within the tumor microenvironment and in tumor-draining lymph nodes compared to ACT alone (Figure 2).
[0041] Example 4. CCR2 on TTRNA-T cell activation within the tumor microenvironment + Effect of HSC. CCR2 for TTRNA-T cell activation within the tumor microenvironment + To determine the impact of HSCs, mice bearing established intracranial tumors underwent adoptive transfer of TTRNA-T cells generated from GREAT mice, allowing in situ detection of IFNγ secretion of these TTRNA-T cells. Mice were then transfected with CCR2 + HSC or CCR2 - After one week, tumors were excised and the intratumoral YFP + CD3 + The relative amounts of cells were determined. + Those who received HSCs had CCR2 - Significantly more YFP than mice that received HSCs + CD3 + cells (Figure 3A).
[0042] Example 5.CCR2 + HSC migration and differentiation. CCR2 + To determine whether HSCs migrated into intracranial tumors, we analyzed CCR2 + HSCs were isolated from mice expressing DsRed, whereas CCR2 - HSCs were isolated from mice carrying a GFP reporter on the ubiquitin promoter. Both HSC populations were transferred in equal doses (5 × 10 5 After 24 hours, the tumors were excised and GFP was detected. + CCR2 - DsRed in contrast to HSCs + CCR2 + The relative amount of HSCs was determined (Figure 3B). + CCR2 + HSCs accumulated within intracranial tumors within 24 hours. Interestingly, after 1 week, DsRed expression in the tumors was significantly increased. + CCR2 + HSC-derived cells lost CCR2 expression but upregulated markers associated with antigen-presenting cells, CD11c, CD80, CD86, and MHCII (Figure 3C).+ To determine whether HSCs have the potential to differentiate into antigen-presenting cells, we cloned CCR2 + HSCs and CCR2 - HSCs were isolated from mouse bone marrow and both populations were cultured in vitro using a previously established protocol for dendritic cell generation (Flores et al., 2015). Cells were then phenotyped and tested for antigen-presenting capacity. + Cells generated from HSCs upregulated CD11c, CD80, CD86, and MHC-II, meanwhile enhancing their ability to activate antigen-specific T cells and presenting alloantigens (Figure 4 ).
[0043] Example 6. Tumor antigen presentation by HSC-derived cells. To determine whether HSC-derived cells could present tumor antigens to TTRNA-T cells within the tumor microenvironment in vivo, tumor-bearing mice were subjected to ACT and then transfected with GFP + Three weeks after ACT, the tumors were excised and GFP- + HSC-derived cells were isolated using FACS. They were then co-cultured with TTRNA-T cells in a functional assay. IFNγ secretion detected by ELISA indicated TTRNA-T cell recognition of the cognate antigen (Figure 5A). We then aimed to determine whether HSC-derived cells activated CD8 or CD4 T cells. Tumor-bearing mice underwent ACT with TTRNA-T cells generated from GREAT mice. HSC were then isolated from MHC-I or MHC-II knockout mice and co-administered with ACT. After 3 weeks, intracranial tumors were harvested and YFP + CD3 + The relative expression of MHC-1 in T cells was analyzed (Figure 5B). - / - in mice that received HSCs, implying that HSC-derived cells present tumor antigens to CD8+TTRNA-T cells within the tumor microenvironment.
[0044] When HSCs are administered in these immunotherapy experiments, they are freshly isolated from non-tumor-bearing mice. We therefore asked how HSC-derived cells in tumors acquire tumor antigens. To determine whether irradiation plays a role in the uptake of tumor antigens by HSC-derived cells in tumors, we used ACT and GFP-immunoglobulin (GFP)-immunoglobulin (IgG ... + HSCs were administered to late-stage tumor-bearing mice that had received either 5 Gy TBI or no irradiation. Three weeks after transfer, tumors were excised and GFP + HSC-derived cells were isolated by FACS. GFP-GFP was then isolated. + HSC-derived cells were co-cultured with TTRNA-T cells in vitro to test for detectable differences in their ability to cross-stimulate antigens (Figure 5C). Significantly more IFNγ was detected when TTRNA-T cells were co-cultured with HSC-derived cells isolated from irradiated versus non-irradiated tumors.
[0045] Example 7.CCR2 + Engraftment of TTRNA-T cells in subjects receiving HSC-derived cells. Our group previously reported that tumor RNA-pulsed dendritic cell vaccines are involved in the engraftment and proliferation of adoptively transferred TTRNA-T cells in the periphery (Flores et al., 2015). Taking this and the above data into consideration, we hypothesized that professional antigen-presenting cells such as dendritic cells could be involved in the engraftment and proliferation of CCR2 + Experiments were performed to determine whether HPC-derived cells could enhance the engraftment and activation of TTRNA-T cells in vaccine-draining lymph nodes. Groups of mice bearing established tumors were cultured using ACT and GFP + HSC, GFP + CCR2 + HSC, or GFP + CCR2 - Three weeks after adoptive transfer, GFP was detected in all tumors. + The cells were harvested and isolated using FACS. They were then used as a "vaccine" in another set of tumor-bearing mice that underwent ACT. In these groups of mice, DsRed +ACT with TTRNA-T cells followed by no vaccine, dendritic cell vaccine, tumor-derived GFP + HSC, GFP + CCR2 + HSC-derived cells, or GFP + CCR2 - After 1 week, the vaccine-draining lymph nodes were harvested and stained for DsRed. + CD3 + Cells were analyzed to determine engraftment of TTRNA-T cells (Figure 6B). + Mice that received HSC-derived cells expressed DsRed in the vaccine lymph nodes. + CD3 + TTRNA - T cell engraftment was demonstrated.
[0046] Example 8. CCR2 on the efficacy of ACT + Immune enhancing effects of HSCs. The efficacy of ACT was previously found to be dependent on myeloablative host conditioning (Flores et al., 2015). + Having demonstrated that HSCs can enhance antitumor immunity in both peripheral and intracranial tumors, we instead used CCR2 instead of the HSCs previously used. + We investigated whether the use of HPC cells would provide the efficacy we previously observed. + Before using HSC cells, + We first determined whether HSC cells are true hematopoietic stem cells with the capacity to rescue bone marrow from myeloablative host conditioning. Naïve mice were subjected to myeloablative therapy (MA) using 9 Gy TBI. Groups were MA only, MA + HSC cells, MA + CCR2 + HSC cells, or MA + CCR2 - HSC cells received either CCR2 + HPC cells were unable to rescue myeloablated hosts from bone marrow failure (Figure 7A). +To determine whether the immune-enhancing effect of HSCs impacts the efficacy of ACT, nonmyeloablative (NMA) 5 Gy TBI host conditioning was used. Groups of intracranial KR158B tumor-bearing mice received nonmyeloablative 5 Gy TBI followed by ACT and induction of HSCs, CCR2 + HSC, or CCR2 - HSCs were co-transferred (Figure 7B). + The use of HSCs provided a significant survival benefit over the use of bulk HSCs alone (p=0.0005). + We demonstrate that a population of lin − bone marrow-derived cells mediates increased T cell activation in combination with an adoptive T cell strategy.
[0047] Example 9. CCR+ hematopoietic stem cells mediate T cell activation in adoptive cell therapy CCR2 + Co-transfer of HSCs with adoptive cell therapy significantly increased survival benefit in multiple brain tumor models. We demonstrated that intravenously administered CCR2 + HSCs preferentially migrate into the CNS tumor microenvironment and express CD11c at the tumor site. + We found that they differentiate into antigen-presenting cells (APCs) and reprogram gene expression in the immunosuppressive tumor microenvironment. + APCs derived from HSCs uniquely cross-present tumor-derived antigens to CD8+ and CD4+ tumor-reactive lymphocytes, resulting in long-term intratumoral T cell activation and enhanced tumor rejection.
[0048] We are CCR2 + We have demonstrated that HSC-derived cells can differentiate into antigen-presenting cells within tumors. We hypothesized whether these antigen-presenting cells present in intracranial tumors have the capacity to present tumor antigens to T cells in the draining lymph nodes. First, to determine whether HSC-derived cells found in tumors extravasate from intracranial tumors to the draining lymph nodes, we used DsRed + HSC, DsRed + CCR2 - HSC, or DsRed+ CCR2 + HSCs were directly injected into established intracranial KR158B tumors in vivo. One week later, the draining cervical lymph nodes were harvested and transfected with DsRed + Cells were analyzed for the presence of CCR2 + The group that received HSCs had significantly more DsRed in the lymph nodes. + cells (p=0.021 vs. unsorted HSC group, CCR2 - p=0.0480 vs. HSC (Figure 8). These draining lymph node-derived T cells were tested for antitumor function by co-culturing them against target tumor cells in vitro (Figures 1A / 1B). CCR2 + Mice that received intracranial injections of HSCs showed increased IFN-γ secretion by peripheral T cells in response to tumor antigens, likely due to the fact that these T cells differentiated into antigen-presenting cells in the tumor and extravasated into the draining lymph nodes, expressing CCR2 + This suggests that HSC-derived cells stimulated the tumor antigen.
[0049] In addition to checkpoint blockade, adoptive cell therapy has clearly been impactful for solid tumors (Rosenberg SA. Raising the bar: the curative potential of human cancer immunotherapy. Science translational medicine. 2012;4(127):127ps8; Rosenberg SA. Cell transfer immunotherapy for metastatic solid cancer--what clinicians need to know. Nat Rev Clin Oncol. 2011;8(10):577-85.). Studies in mouse and human systems have demonstrated that the efficacy of adoptive cell therapy is enhanced after lymphodepleting host conditioning followed by HSC transfer (Wrzesinski C, Paulos CM, Gattinoni L, Palmer DC, Kaiser A, Yu Z, Rosenberg SA, and Restifo NP. Hematopoietic stem cells promote the expansion and function of adoptively transferred antitumor CD8 T cells. J Clin Invest. 2007;117(2):492-501). We previously demonstrated that co-transfer of lin-HSCs with adoptive cell therapy mediates the recruitment and engraftment of tumor-specific T cells and suppression of tumor growth in KR158B gliomas (Flores C, Pham C, Snyder D, Yang S, Sanchez-Perez L, Sayour E, Cui X, Kemeny H, Friedman H, Bigner DD, et al. Novel role of hematopoietic stem cells in immunologic rejection of malignant gliomas. Oncoimmunology. 2015;4(3):e994374). +We evaluated whether HSCs are an active component of the bulk HSC population involved in the enhancement of adoptive cell therapy (ACT), which uses bone marrow-derived dendritic cells (DCs) pulsed with total tumor RNA to expand tumor-specific T cells ex vivo (Flores, C. et al. Novel role of hematopoietic stem cells in immunologic rejection of malignant gliomas. Oncoimmunology 4, e994374, doi:10.4161 / 2162402X.2014.994374 (2015)). We found that HSC administration with ACT significantly increased tumor-specific T cell activation and IFN-γ secretion within the tumor microenvironment and in the draining lymph nodes compared to ACT alone (p=0.011) (Figure 10A, 10B, and Figure 2).
[0050] To determine the impact of CCR2+HSCs on T cell activation within the tumor microenvironment, mice bearing established tumors underwent adoptive transfer of tumor-specific T cells generated from GREAT mice, allowing in situ detection of IFN-γ secretion of these T cells. Mice received intravenous CCR2+HSCs or CCR2-HSCs. Tumors were resected and the relative expression of YFP+CD3+ cells within the tumors was determined. Those receiving CCR2+HSCs expressed significantly more YFP+CD3+ cells compared to CCR2-HSCs (19.2% vs. 6.3%, p=0.0002) (Figure 3a). Other precursor subsets derived from lin-HSCs (Sca-1+, c-Kit+, CD133+, CD38+, BMPR2+) were assessed for their ability to activate tumor-reactive lymphocytes, and CCR2+HSCs were significantly superior in enhancing antitumor immunity (Figure 11).
[0051] To determine whether these HSC subsets migrate into intracranial tumors, DsRed+CCR2+HSCs and GFP+CCR2-HSCs were injected intravenously in equal amounts (5x105 cells) into lymphodepleted tumor-bearing mice. After 24 hours, the relative amount of DsRed+CCR2+HSCs was measured in the tumors versus GFP+CCR2-HSCs. Significantly more DsRed+CCR2+HSCs accumulated in the intracranial tumors at 24 hours (p=0.0010). As previously demonstrated, after 1 week, DsRed+CCR2+HSC-derived cells lost CCR2 expression but upregulated markers associated with APC, CD11c, CD80, CD86, and MHC-II (Figure 3C and Figure 8). CCR2+HSCs and CCR2-HSCs were isolated and cultured in vitro under dendritic cell-generating conditions (12) to examine their differentiation into antigen-presenting cells. Antigen-presenting cells derived from CCR2+ HSCs had a distinct dendritic cell phenotype, whereas cells generated from CCR2- HSCs upregulated the expression of the monocyte suppressor cell marker Ly6G (Gr1-1) (Figure 4). Moreover, cells derived from CCR2+ HSCs were significantly better at presenting tumor antigens in vitro than those generated from CCR2- HSCs (Figure 4).
[0052] To determine whether HSC-derived cells capture and present tumor antigens within the tumor microenvironment, mice received HSCs from syngeneic GFP transgenic mice. Three weeks after adoptive cell therapy, GFP+ HSC-derived cells were isolated from the tumor using FACS. These were then co-cultured with anti-tumor TTRNA-T cells, demonstrating specific presentation of tumor-derived antigens (Figure 5A). To determine whether HSC-derived cells have the ability to present antigens to CD4 or CD8 tumor-specific T cells, HSC-derived cells were again isolated by FACS and MHC-I or MHC-II was blocked using blocking antibodies before being cultured against effector tumor-specific T cells (Figure 12). After blocking MHC-1, we observed a significant decrease in IFNγ secretion. To confirm that HSC-derived cells have an increased ability to present antigens to T cells, HSCs were then isolated from MHC-I or MHC-II knockout mice and co-administered with ACT. Three weeks later, tumors were harvested and analyzed for expression of YFP+CD3+ cells (Figure 5B). A significant decrease in T cell activation was detected in mice receiving MHC-1- / -HSCs versus wild-type HSCs (p=0.0002), demonstrating that cross-presentation of tumor antigens in the class I pathway by HSC-derived cells is important for in vivo T cell activation within the CNS tumor microenvironment.
[0053] To further demonstrate the unique cross-antigen stimulatory capacity of antigen-presenting cells derived from CCR2+ HSCs, we isolated antigen-presenting cells directly from the tumors of mice undergoing adoptive cell therapy and used them as cellular vaccines in recipient mice receiving DsRed+ tumor-specific T cells. Tumor-bearing mice received adoptive cell therapy and either GFP+ HSCs, GFP+ CCR2+ HSCs, or GFP+ CCR2- HSCs (Figure 6A). Three weeks after adoptive cell therapy, GFP+ cells were harvested from all tumors and isolated using FACS. These were then used as a "vaccine" in another set of tumor-bearing mice that received adoptive cell therapy. This cohort received either no vaccine, DC vaccine (TTRNA DCs), or antigen-presenting cells isolated from the tumor microenvironment derived from GFP+ HSCs, GFP+ CCR2+ HSC-derived cells, or GFP+ CCR2- HSC-derived cells. Vaccine site-draining lymph nodes were harvested and analyzed for proliferation of DsRed+CD3+ T cells, demonstrating that CCR2+ HSCs drive proliferation of tumor-reactive T cells in vivo (Figure 6B). Collectively, these experiments demonstrate that CCR2+ HSCs uniquely give rise to APCs that capture tumor antigens in vivo and cross-present tumor antigens to CD8+ T cells in vitro and in vivo.
[0054] To determine whether lin-CCR2+HSCs are true hematopoietic stem cells providing rescue from bone marrow failure, CCR2+HSCs or CCR2-HSCs were administered intravenously to myeloablated hosts (9Gy TBI). Lin-CCR2+HSCs were not efficient at rescuing the host from lethal irradiation, suggesting a progenitor population (Figure 7A). To determine whether CCR2+HSCs were responsible for the improved efficacy of stem cell transfer in adoptive cell therapy targeting brain tumors, purified CCR2+HSCs were transferred along with adoptive cell therapy in mice that had undergone non-myeloablative conditioning (5Gy TBI) versus CCR2-HSCs. CCR2+HSCs were significantly superior in enhancing the efficacy of adoptive cell therapy for gliomas (p=0.0005) (Figure 14) and medulloblastomas, and provided a comparable survival benefit for brainstem gliomas (Figure 13). These findings are the first to identify a bone marrow-derived progenitor cell population with the capacity to alter the tumor microenvironment and enhance responses to immune checkpoint blockade and adoptive cell therapy. These findings transform our understanding of the role of stem cell transplantation in the treatment of solid malignancies and hold relevance for addressing resistance to cancer immunotherapy.
[0055] material and method: mouse Six- to eight-week-old female C57BL / 6 mice (Jackson Laboratories, stock number 000664), transgenic DsRed mice (Jackson Laboratories, stock number 006051), and transgenic GREAT mice (Jackson Laboratories, stock number 017580) were used in the experiments. The researchers adhered to the "Guide for the Care and Use of Laboratory Animals" proposed by the Committee on the Care of Laboratory Animal Resources in the Life Sciences of the National Research Council. The University of Florida Animal Care Services facility is fully accredited by the American Association for Accreditation of Laboratory Animal Care, and all studies were approved by the Institutional Animal Care and Use Committee at the University of Florida. RNA isolationIsolation of total tumor RNA from tumor cell lines was performed using the RNeasy mini kit (Qiagen, Cat. No. 74104) according to the manufacturer's protocol.
[0056] tumor-specific T cells Tumor-reactive TTRNA-T cells were generated as previously described (Flores et al., 2015). Briefly, bone marrow-derived dendritic cells were harvested from C57BL / 6 mice and cultured in GM-CSF (18 ng / mL, R&D, Cat. No. 415-ML / CF) and IL-4 (18 ng / mL, R&D, Cat. No. 404-ML / CF) for 9 days. Dendritic cells were then electroporated with 25 μg of total RNA isolated from tumor tissue. Naive mice were cultured with 2.5 × 10 5 The mice were stimulated with 10 whole tumor RNA-pulsed dendritic cells. After 1 week, splenocytes were then harvested and co-cultured ex vivo with whole tumor RNA-pulsed dendritic cells and IL-2 (50 U / mL, R&D, Cat. No. 402-ML / CF) for 5 days. 7 T cells were administered intravenously.
[0057] Tumor modelsTumor-bearing experiments were performed in syngeneic, gender-matched C57BL / 6 mice. The KR158B(9) glioma line (provided by Dr. Karlyne M. Reilly, National Cancer Institute) was histologically validated as a high-grade glioma with appropriate haplotype background and gene expression analysis by RNASeq demonstrating expression of astrocytoma-associated genes. 104 KR158B cells were implanted into the caudate nucleus by injection 2 mm lateral to the midline and 3 mm deep (Reilly KM, Loisel DA, Bronson RT, McLaughlin ME, and Jacks T. Nf1; Trp53 mutant mice develop glioblastoma with evidence of strain-specific effects. Nat Genet. 2000;26(1):109-13.; Flores et al., 2015). Ptc tumor cells were derived directly from Ptc+ / - transgenic mice developing spontaneous tumors. Tumors were serially passaged in vivo in wild-type C57BL / 6 mice and verified by gene expression analysis for consistency with Ptc+ / - mouse medulloblastomas (Pham CD, Flores C, Yang C, Pinheiro EM, Yearley JH, Sayour EJ, Pei Y, Moore C, McLendon RE, Huang J, et al. Differential Immune Microenvironments and Response to Immune Checkpoint Blockade among Molecular Subtypes of Murine Medulloblastoma. Clin Cancer Res. 2016;22(3):582-95). For experiments with Ptc medulloblastomas, 1.25 × 10 5Ptc cells were implanted 1 mm lateral to the cerebellar midline and 3 mm deep (Pham et al., 2016; Goodrich LV, Milenkovic L, Higgins KM, and Scott MP. Altered neural cell fates and medulloblastoma in mouse patched mutants. Science. 1997;277(5329):1109-13). For experiments with brainstem glioma cells (provided by Dr. Oren Becher), 10 5 Cells were stereotactically implanted into the mouse brainstem at the midline, 1 mm subtentorially and 3.5 mm deep.
[0058] Adoptive Cell Therapy Treatment of tumor-bearing mice was initiated 5 days after tumor injection with 5 Gy lymphodepletion or 9 Gy myeloablation using X-ray irradiation (X-RAD 320, Precision X-ray). 6 days after intracranial tumor injection, mice received a single intravenous injection with 107 autologous ex vivo expanded TTRNA T cells bearing either 5x104 lineage-depleted (lin-) hematopoietic stem and progenitor cells (HSCs) (MiltenyiBiotec, Cat. No. 130-090-858), CCR2+lin-HSCs, or CCR2-lin-HSCs. CCR2-positive selection was performed using a biotinylated anti-mouse CCR2 antibody followed by anti-biotin microbead separation. Starting 7 days after tumor injection, mice were injected with 2.5x10 5 The tumor RNA-pulsed dendritic cell vaccine was injected intradermally behind the ear weekly for a total of three vaccine doses. Mouse Lymph Nodes Lymph nodes were dissected bilaterally from the neck region of treated mice. Lymph nodes were mechanically dissociated and chemically digested with 2% collagenase (Fisher Scientific, Cat. No. 10103578001) for 30 min.
[0059] Brain tumor digestionTumor resection extended to all borders of the tumor mass near the injection site. Tumors were mechanically dissociated with sterile razor blades and chemically dissociated with papain (Worthington, Cat. No. NC9809987) for 30 min, then filtered through a 70 μm cell strainer prior to antibody incubation. Flow cytometry and antibodies Flow cytometry was performed on a FACS Canto-II and FACS sorting on a FACSAria II. Cells were prepared ex vivo as described above and suspended in 2% FBS (Seradigm, Cat. No. 97068-091) in PBS (Gibco, Cat. No. 10010-049). The following antibodies were applied according to the manufacturer's recommendations with isotype controls: Anti-CD3 (BD, Cat. No. 553066), anti-CD11c (Affymetrix, Cat. No. 17-0114-82), anti-CD80 (Affymetrix, Cat. No. 17-0801-82), anti-CD86 (Affymetrix, Cat. No. 17-0862-82), anti-Ly-6G / 6C (BD Biosciences, Cat. No. 553129), and anti-MHC II IA-E (Affymetrix, Cat. No. 17-5321-82). Anti-mouse MHC class II (IA / IE) blocking antibody (Affymetrix, Cat. No. 16-5321-85) and anti-mouse MHC class I (H-2K) blocking antibody (Affymetrix, Cat. No. 16-5957-85).
[0060] T cell functional assays For in vitro experiments utilizing IFN-γ release as a measure of T cell activity, effector cells and targets were co-cultured in triplicate at a 10:1 ratio in 96-well U-bottom plates. After 1 day of co-culture, IFN-γ Platinum ELISA (Affymetrix, catalog no. BMS606) was performed on harvested and frozen cell media from the supernatants of the 96-well co-culture plates. Anti-PD-1 blocking antibodies Treatment with an anti-PD-1 blocking antibody (Merck, mDX-400) began on the day of T cell administration and continued every 5 days for a total of 4 doses at 10 mg / kg (8). PCR array PCR analysis was performed on tumors excised from treated mice. Tumors were dissociated and RNA was isolated as described above and analyzed using the RT2 Profiler Array Cancer Inflammation and Immunity Crosstalk (Qiagen, Cat. No. PAMM-181ZD-12) or T cell and B cell Activation (Qiagen, Cat. No. PAMM-053ZD-2) according to the manufacturer's protocol.
[0061] statistical analysisStatistics were reviewed by biostatistician Paul Kubilis, MS, from the UF Department of Neurosurgery. All experiments were analyzed in Prism 7, and tests were applied as described in the figure legends. Median survival of tumor-bearing animals is 25-42 days for mice in the experiments described in this protocol. Because we are interested in significant differences (4.5-fold or greater) in survival and / or tumor size between our experimental groups, as few as seven animals per group are sufficient to detect statistically significant results with a given treatment regimen. Of most interest are pairwise comparisons of survival with the control arm. To account for the large number of tests or comparisons, a significance level of 0.0125 will be used (i.e., 0.05 / 4 Bonferroni correction). With 10 animals in each arm, each pairwise comparison will have 80% power to detect a 4.5-fold increase in median survival in the experimental arm compared to the expected median of 25 days in the control arm. Due to the variance of treatment effects demonstrated in our experimental mice, the use of 10 animals (vs. 7) in certain experiments is required to perform adequate statistical analysis. All survival outcome experiments outlined in this proposal use groups of 7–10 animals for this statistical validation. Kaplan-Meier survival curves were compared using the log-rank test. An unpaired Mann-Whitney rank sum test was applied to two-group comparisons for in vivo experiments. An unpaired Student's t test was applied to two-group comparisons for in vitro experiments. Data had normal distributions and variances were similar between statistically compared groups. Significance is determined as p<0.05. In animal studies where tissues were analyzed for biological endpoints, n=5 mice per group were used to determine sample size and no statistical methods were used. The authors established in advance that no animals or samples should be excluded from the analysis. For randomization of animal experiments, mice were housed with 5 mice per cage. After tumor implantation, mice were immediately randomized into cages.
[0062] References [Table 1]
[0063] Other Aspects All features disclosed herein may be combined in any combination. Each feature disclosed herein may be replaced by alternative features serving the same, equivalent, or similar purpose. Thus, unless expressly stated otherwise, each feature disclosed is only one example of a generic series of equivalent or similar features. From the above description, those skilled in the art can easily ascertain the essential features of the present disclosure, and can make various changes and modifications to the disclosure to adapt it to various uses and conditions without departing from the spirit and scope thereof. Accordingly, other embodiments are within the scope of the claims.
[0064] Equivalent While several inventive aspects have been described and illustrated herein, those of ordinary skill in the art will readily conceive of various other means and / or structures for performing the functions and / or obtaining the results and / or one or more of the advantages described herein. Each such variation and / or modification is deemed to be within the scope of the inventive aspects described herein. More generally, those of ordinary skill in the art will readily appreciate that all parameters, dimensions, materials, and configurations described herein are meant to be exemplary, and that the actual parameters, dimensions, materials, and / or configurations will depend on the particular application(s) for which the teachings of the invention are being used. Those of ordinary skill in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific inventive aspects described herein. Thus, the foregoing embodiments are presented by way of example only, and it will be understood that within the scope of the appended claims and their equivalents, the inventive aspects may be practiced otherwise than as specifically described and claimed. Inventive aspects of the present disclosure relate to each individual feature, system, article, material, kit, and / or method described herein. Furthermore, any combination of two or more of such features, systems, articles, materials, kits, and / or methods, if such features, systems, articles, materials, kits, and / or methods are not mutually inconsistent, is also included within the inventive scope of the present disclosure.
[0065] All definitions and those used herein should be understood to govern any dictionary definitions, definitions in documents incorporated by reference, and / or ordinary meanings of the defined terms. All references, patents, and patent applications disclosed herein are incorporated by reference with respect to the subject matter for which each is cited, and may in some cases include the entire document. The indefinite articles "a" and "an," as used in the specification and claims, unless clearly indicated otherwise, should be understood to mean "at least one."
[0066] The phrase "and / or" as used in the present specification and claims should be understood to mean "either or both" of the elements so conjoined, i.e., elements that are conjunctively present in some cases and disjunctively present in other cases. Multiple elements listed with "and / or" should be construed in the same manner, i.e., "one or more" of the elements so conjoined. Other elements may optionally be present other than the elements specifically identified by the "and / or" clause, whether or not related to the specifically identified elements. Thus, as a non-limiting example, a reference to "A and / or B" when used with open-ended language such as "comprising" may refer in one embodiment to only A (optionally including elements other than B), in another embodiment to only B (optionally including elements other than A), in yet another embodiment to both A and B (optionally including other elements), etc.
[0067] As used herein and in the claims, "or" should be understood to have the same meaning as "and / or" as defined above. For example, when separating items in a list, "or" or "and / or" shall be interpreted as inclusive, i.e., including at least one, but also including a plurality of the elements of the number or list, and optionally including additional items not included in the list. Only terms expressly indicated to the contrary, such as "only one of" or "exactly one of," or, when used in the claims, "consisting of," will refer to the inclusion of exactly one number or list of elements. In general, the term "or" as used herein will only be interpreted to indicate exclusive alternatives (i.e., "one or the other, but not both") when preceded by a term of exclusivity, such as "either," "one of," "only one of," or "exactly one of." "Consisting essentially of," when used in the claims, shall have its ordinary meaning as used in the field of patent law.
[0068] As used in the specification and claims, the phrase "at least one" in reference to a list of one or more elements should be understood to mean at least one element selected from any one or more elements in the list of elements, but not necessarily including at least one and every element specifically listed in the list of elements, and not excluding any combination of elements in the list of elements. This definition also allows for elements other than the elements specifically identified in the list of elements to which the phrase "at least one" refers, whether related or unrelated to those elements specifically identified, may optionally be present. Thus, as a non-limiting example, "at least one of A and B" (or, equivalently, "at least one of A or B," or, equivalently, "at least one of A and / or B") can refer, in one embodiment, to at least one (optionally including more than one) A (wherein B is absent (and optionally including elements other than B)), in another embodiment, to at least one (optionally including more than one) B (wherein A is absent (and optionally including elements other than A)), in yet another embodiment, to at least one (optionally including more than one) A and at least one (optionally including more than one) B (and optionally including other elements), etc.
[0069] It is also to be understood that, unless expressly stated to the contrary, in any method of the claims that includes more than one step or act, the order of the method steps or acts is not necessarily limited to the order in which the method steps or acts are recited. In the claims and the above specification, all transitional phrases such as "comprising," "including," "carrying," "having," "containing," "involving," "holding," "composed of," and the like, are to be understood to be open-ended, i.e., to mean inclusive but not limited to. Only the transitional phrases "consisting of" and "consisting essentially of" are intended to be closed or semi-closed transitional phrases, respectively, as described in the United States Patent Office Patent Examining Procedures, Section 2111.03. Embodiments described in this document using open-ended transitional phrases (e.g., "comprising") are also contemplated in alternative embodiments as "consisting of" and "consisting essentially of" the features described by the open-ended transitional phrase. For example, if the disclosure describes "a composition comprising A and B," the disclosure also contemplates the alternative embodiments "a composition consisting of A and B" and "a composition consisting essentially of A and B."
Claims
1. 1. A preparation for increasing immune competence by increasing CD8+ T cell activation and IFNγ secretion in a subject, wherein the preparation contains hematopoietic stem cells (HSCs) in an amount effective to increase tumor-specific T cell (TTRNA-T cell) activation and IFNγ secretion, wherein the HSCs are enriched for CCR2 positive (CCR2+) cells (or precursors of CCR2+ cells), wherein the subject is administered adoptive cellular therapy (ACT), and wherein the subject is not receiving an immune checkpoint inhibitor.
2. (i) HSCs are lineage depleted (ii) the HSCs are less than 50%, 40%, 30%, 20%, 10%, 5%, 2%, or even less than 1% CCR2-negative (CCR2-) cells; and / or (iii) between 50% and 100% of the cells in the preparation are CCR2+ cells (or precursors of CCR2+ cells); 2. The preparation of claim 1.
3. 3. The preparation of claim 1 or 2, wherein the HSCs are at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 98% or even 99% CCR2+ cells (or precursors of CCR2+ cells).
4. The preparation according to any one of claims 1 to 3, wherein the subject has been treated with radiotherapy or chemotherapy and / or the subject is scheduled to undergo radiotherapy or chemotherapy.
5. (i) the source of the HSCs is bone marrow, peripheral blood, umbilical cord blood, or induced pluripotent stem cells; and / or (ii) the source of HSCs is hematopoietic progenitor cells; A preparation according to any one of claims 1 to 4.
6. The preparation of any one of claims 1 to 5, wherein the source of HSCs is autologous or the source of HSCs is allogeneic and the donor cells are HLA-matched to the recipient.
7. The preparation of any one of claims 1 to 6, wherein the adoptive cell therapy comprises chimeric antibody receptor (CAR) modified T cells.
8. 1. A preparation containing hematopoietic stem cells (HSCs) for treating a subject with adoptive cell therapy to increase immune competence by increasing CD8+ T cell activation and IFNγ secretion, wherein the preparation contains an amount of HSCs effective to increase tumor-specific T cell (TTRNA-T cell) activation and IFNγ secretion, wherein the HSCs are enriched for CCR2 positive (CCR2+) cells (or precursors of CCR2+ cells), and wherein the subject is in need of increased immune competence and is not receiving an immune checkpoint inhibitor.
9. (i) HSCs are lineage depleted; (ii) the HSCs are at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 98% or even 99% CCR2+ cells (or precursors of CCR2+ cells); (iii) the HSCs are less than 50%, 40%, 30%, 20%, 10%, 5%, 2%, or even less than 1% CCR2-negative (CCR2-) cells; and / or (iv) between 50% and 100% of the cells in the preparation are CCR2+ cells (or precursors of CCR2+ cells); 9. The preparation according to claim 8.
10. 1. A kit for use in treating a subject in need of increased immune competence by increasing CD8+ T cell activation and IFNγ secretion, comprising a package containing a first container containing T cells for adoptive cell therapy and a second container containing hematopoietic stem cells (HSCs) and instructions for use, wherein the second container contains HSCs in an amount effective to increase tumor-specific T cell (TTRNA-T cell) activation and IFNγ secretion, wherein the HSCs are enriched for CCR2 positive (CCR2+) cells (or precursors of CCR2+ cells), and wherein the instructions do not indicate use with an immune checkpoint inhibitor.
11. (i) HSCs in the preparation are lineage depleted (ii) the HSCs in the preparation are at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 98% or even 99% CCR2+ cells (or precursors of CCR2+ cells); (iii) the HSCs in the preparation are less than 50%, 40%, 30%, 20%, 10%, 5%, 2%, or even less than 1% CCR2-negative (CCR2-) cells; and / or (iv) between 50% and 100% of the cells in the preparation are CCR2+ cells (or precursors of CCR2+ cells); The kit of claim 10.
12. the T cells and HSCs are syngeneic, and optionally (i) the T cell is a CarT cell, or (ii) the T cells and HSCs are HLA-matched; The kit according to claim 10 or 11.