Methods and compositions for treating cancers using antisense
Patent Information
- Application Number
- JP2025040952
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2018-02-13
- Filing Date
- 2025-03-14
- Publication Date
- 2025-12-09
AI Technical Summary
Current treatments for cancer, particularly brain cancer such as glioblastoma multiforme, have limited effectiveness in improving progression-free survival and overall survival, and existing immunotherapy approaches do not adequately address the challenges posed by solid tumors.
The use of antisense oligodeoxynucleotides (AS-ODNs) targeting the insulin-like growth factor receptor 1 (IGF-1R) in combination with an implantable irradiation biodiffusion chamber containing tumor cells, which stimulates an immune response and reduces tumor regrowth.
This approach effectively stimulates an immune response against cancer cells, inhibiting tumor regrowth and improving survival outcomes, with the potential for use as a monotherapy without the need for chemotherapy or radiation therapy.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to compositions and methods for treating cancer with antisense nucleic acids against insulin-like growth factor 1 receptor (IGF-1R). The present disclosure also relates to compositions and methods for treating cancer by treating a subject with at least one implantable irradiation biodiffusion chamber (see U.S. Pat. No. 6,541,036 and International Application No. PCT / US2016 / 026970, which are incorporated by reference in their entireties) comprising tumor cells and antisense nucleic acids against IGF-1R. [Background technology]
[0002] Despite advances in cancer therapy, the prognosis of malignant gliomas, especially glioblastoma multiforme, and many other cancers remains poor. Modifications to standard treatments, such as chemotherapy, external beam radiation therapy, and brachytherapy, have only modestly improved both progression-free survival and overall survival. Immunotherapy trials, while promising in theory, do not address the challenges posed by solid tumors. With regard to the treatment of gliomas, the National Cancer Institute estimates the annual incidence to be approximately 28,000 cases each year, increasing to more than 50,000 cases when patients with recurrent gliomas are included. Summary of the Invention [Problem to be solved by the invention]
[0003] Thus, there exists a need in the art to achieve new and improved treatments for cancer, particularly brain cancer. [Means for solving the problem]
[0004] The present disclosure demonstrates that antisense oligodeoxynucleotides (AS-ODNs) targeting insulin-like growth factor receptor 1 (IGF-1R) effectively stimulate responses in subjects treated for cancer when used in the therapeutic methods described herein. In certain embodiments, the methods are effective in treating cancer in patients as part of an autologous cancer cell vaccine, either alone or optionally with systemic administration. In a preferred method, the methods disclosed herein provide effective cancer therapy as a monotherapy, i.e., in the absence of chemotherapy and in the absence of radiation therapy.
[0005] In an embodiment, the present disclosure provides a biodiffusion chamber for implantation into a subject suffering from a tumor, the biodiffusion chamber comprising irradiated tumor cells and irradiated insulin-like growth factor receptor 1 antisense oligodeoxynucleotide (IGF-1R AS ODN). In an embodiment, the tumor cells are removed from a resection site in the subject.
[0006] In an embodiment, the present disclosure provides a diffusion chamber comprising an irradiated IGF-1R AS ODN and irradiated adhesion-enhanced minced tumor cells, the biodiffusion chamber comprising a cell membrane that is impermeable to the cells and permeable to the IGF-1R AS ODN.
[0007] In embodiments, the tumor cells are removed from the resection site using an endoscopic device. In further embodiments, the tumor cells are removed from the resection site using a tissue morcellator. In other embodiments, the tissue morcellator includes a high speed reciprocating inner cannula within a stationary outer cannula. The outer cannula may include a side aperture, and further the tumor cells are drawn into the side aperture by electronically controlled variable suction. In embodiments, the tissue morcellator does not generate heat at the resection site. In yet further embodiments, the tumor cells are enriched for nestin expression prior to placement in the biodiffusion chamber. In some embodiments, implantation of the chamber inhibits tumor regrowth in the subject. In some embodiments, implantation of the chamber inhibits tumor regrowth for at least 3 months, at least 6 months, at least 12 months, or at least 36 months.
[0008] In another embodiment, the present disclosure provides a method of making a biodiffusion chamber for implantation into a subject suffering from a tumor. The method includes placing tumor cells in the biodiffusion chamber in the presence of an IGF-1R AS ODN and irradiating the biodiffusion chamber, where the tumor cells are removed from the resection site in the subject using a tissue morcellator that does not generate heat at the resection site. Typically, multiple chambers are used. For example, about 10 chambers or about 20 chambers. Advantageously, an optimal antitumor response is achieved when the number of cells in the chamber is about 750,000 to about 1,250,000. For example, when 20 chambers are implanted, about 1,000,000 per chamber.
[0009] In some embodiments, the tissue morcellator is an endoscopic device. In further embodiments, the tissue morcellator includes a high speed reciprocating inner cannula within a stationary outer cannula. In other embodiments, the outer cannula includes a side aperture and tumor cells are drawn into the side aperture by electronically controlled variable suction.
[0010] In embodiments, the present disclosure provides a method of treating a subject suffering from a tumor, the method comprising implanting in the subject one or more biodiffusion chambers containing irradiated tumor cells and irradiated insulin-like growth factor receptor 1 antisense oligodeoxynucleotide (IGF-1R AS ODN), and the tumor cells are removed from the resection site in the subject using a tissue morcellator that does not generate heat at the resection site. [Brief description of the drawings]
[0011] [Figure 1-1] Figures 1a-1g show a representative biodiffusion chamber: Figure 1a. Component parts, Figure 1b. Assembled chamber, Figure 1c. PMMA port plug sealing the chamber. [Figure 1-2] Figures 1a-1g show representative biodiffusion chambers, Fig. 1d photomicrograph of a polyvinylidine fluoride Durapore membrane, Fig. 1e overhead and side views of the actual chamber, Figs. 1f and 1g H&E stained paraffin sections of Durapore membranes after explantation, Fig. 1f explanted phosphate buffered saline control chamber from human study 14379-101, and Fig. 1g explanted vaccine chamber from human study 14379-101. [Figure 2a] Figures 2a-2c show survival metrics of subjects in a Phase I study (IND14379-101, NCT01550523). Figure 2a. Overall survival of patients in the study. [Figure 2b] Figures 2a-2c show survival metrics of subjects in a Phase I study (IND14379-101, NCT01550523). Figure 2b. Protocol survival for the two survival cohorts. Nine patients died of disease progression, while one died of intracerebral hemorrhage and two died of sepsis. Overall protocol survival was 48.2 weeks and 9.2 weeks (log rank = .014) for the longer (N = 4) and shorter (N = 8) survival cohorts, respectively. [Figure 2c]Figures 2a-2c show survival metrics for subjects in a Phase I study (IND14379-101, NCT01550523). Figure 2c. With the exception of one severe lymphopenic outlier and three non-disease related deaths, linear regression showed a high correlation between on-protocol survival and lymphocyte count at enrollment (R2=.8, p=.0028). [Figure 3-1] Figures 3a-3d show the radiographic response with associated physiological measurements. Figure 3a. Examples of patient imaging in the short survival cohort. Patient TJ11: A-D, patient TJ10: E-H. A, E: Pre-op T1 gadolinium-enhanced axial image, G: T1 gadolinium-enhanced coronal image, C: Pre-op axial FLAIR image. B, D, F, H: 3-month post-op images, respectively. Figure 3b. Examples of patient imaging in the longer survival cohort. Patient TJ06: A-D, patient TJ09: E-H. A, E: Pre-op T1 gadolinium-enhanced axial image, C, F: Pre-op axial FLAIR image, respectively. B, D, F, H: 3-month post-op images, respectively. [Figure 3-2] Figures 3a-3d show the radiographic response with associated physiological measurements. Figure 3c. Relationship between tumor relative cerebral blood volume and apparent diffusion coefficient in the longer survival cohort. There is a high correlation between ADC and rCBV (R2=.96, p=.0005). Figure 3d. Relationship between tumor relative cerebral blood volume and apparent diffusion coefficient in the short survival cohort. [Figure 4a] Figures 4a-4c show the examination of explant chambers by survival cohort. Figure 4a. Explant chambers were structurally intact with no viable cells. The outer surface of the membrane of both the Cp and Cv chambers was covered with CD15+ and CD163+ cells, with numbers dramatically increased on the Cv membrane. [Figure 4b]Figures 4a-4c show examination of explant chambers by survival cohort. Figure 4b. Chamber factor analysis between survival cohorts revealed that the longer cohorts had significantly elevated VEGF, PDGF-α, IL-11, CCL5, MCP-3, and MIP-1d, while the shorter cohorts had significantly elevated several soluble cancer markers, including NSE, osteonectin, and YKL40. Mixed discriminant analysis independently identified these cohort differences. [Figure 4c] Figures 4a-4c show the examination of explant chambers by survival cohort. Figure 4c. In both cohorts, two chemokines associated with glioma macrophage recruitment were significantly lower in Cv than other measurable sources. Periostin and CCL2 levels were both significantly lower than serum or SN (tumor cell supernatant) values, suggesting that cellular production of these chemokines was eliminated in the chambers. [Diagram 5]Figures 5a-5e show PBMC and cytokine levels after vaccination. Sequential measurements of immune effector cell shift and cytokine / chemokine shift after vaccination in the post-treatment period, longer survival cohorts (patients TJ03, TJ14, TJ06, TJ09), short survival cohort example patient TJ13 (for all other short survival cohorts see Figure 6). Rows: Figure 5a. Sequential PBMC counts after vaccination. Figure 5b. Sequential assessment of PBMC subpopulation percentages after vaccination. Figure 5c. Sequential levels of CCL21 and CXCL12. Figure 5d. Relationship between absolute CD14+CD16- macrophage counts and MCP-1 (CCL2). Note the correlation with macrophage levels in Figure 5b and the post-operative CCL2 spike. CCl2 levels remained significantly higher in the short survival cohort (see Figure 6). Figure 5e. Scaled comparison of estimated TH-1 cytokine responses after vaccination (TNF-α × 2, CXCL9 × 350, CXCL10 × 80). The following significant correlations were noted: TNF-α spikes were highly correlated with CCL2 spikes in both cohorts (R2 = .99, p = .003). A significant immediate perioperative decline in CD14+16- cells (p = .008) was not seen in the shorter cohort (p = .78). Only in the longer cohort was there a significant correlation between CD4 and CXCL12 (R2 = .62, p < .0001). Also noteworthy was a high correlation between total monocyte counts and CD14+16- monocyte levels (Figures 5B and 5D, R2=.8, p<.0001), and an inverse correlation between circulating T cell counts and monocyte counts (R2=.66, p<.0001) in the longer survival cohort (Figure 5), which was not significantly different in the short survival cohort (see Figure 6). [Figure 6]Figures 6a-6e show PBMC and cytokine levels after vaccination in short cohort patients (patients TJ01, TJ01, TJ07, TJ08, TJ10, TJ11, TJ12). Rows: Figure 6a. Sequential PBMC counts after vaccination. Figure 6b. Sequential assessment of PBMC subpopulation percentages after vaccination (T cells, B cells, monocytes). Figure 6c. Sequential levels of CCL21 and CXCL12. Figure 6d. Relationship between absolute CD14+CD16- macrophage counts and MCP-1 (CCL2). CCl2 levels remained significantly higher in short survival cohorts compared to long survival cohorts. Figure 6e. Scaled comparison of estimated TH-1 cytokine responses after vaccination (TNF-α x 2, CXCL9 x 350, CXCL10 x 80). IFN-g is also shown. [Figure 7-1] Figures 7a-7h show the decline in specific tumor-promoting monocytic cell populations following vaccination. Substantial tumor regression was observed over a 3-month period. Figure 7a. There is a monophasic trend (ordinal scale) for TME IGF-1R+ cells, with no significant differences in matched-paired cases (N=5) from initial diagnosis to vaccination, and a significant decline in IGF-1R+ cells in matched-paired cases (N=4) from vaccination to autopsy (p=.003). Figure 7b. IGF-1R positive cells in two patients with assessable paraffin sections (patients TJ06 and TJ10) from initial diagnosis to vaccination and autopsy. Figure 7c. Biphasic trend for TME CD163 M2 macrophages, increasing significantly from diagnosis to relapse (5 Aperio 400x fields / treatment phase / patient, left plot, matched pair *p<.0001, N=6), followed by a significant decrease from relapse to post-vaccination autopsy (right plot, matched pair *p<.0001, N=4). [Figure 7-2]Figures 7a-7h show a decline in specific tumor-promoting monocytic cell populations following vaccination. Figure 7d. CD163+ cells from the same two patients (patients TJ06 and TJ10) with evaluable paraffin sections from initial diagnosis to vaccination and autopsy show an increase in CD163 at the time of vaccination versus relapse (matched pair, p=.052), followed by a significant decrease in TME CD163 M2 macrophages at autopsy versus vaccination (matched pair, *p=.001). Figure 7e. Significant correlation between peripheral CD163 monocytes and CD163 TAM levels recorded at surgery in the short survival cohort (R2=.80, p=.02). Figure 7f. Non-significant correlation between peripheral CD163 cells and TAM CD163 cells in the longer survival cohort. [Figure 7-3] Figures 7a-7h show the reduction of specific tumor-promoting monocytic cell populations after vaccination. Figure 7g. Fluorescent immunohistochemistry micrographs of paraffin sections. A, C: Patient TJ10 at second surgical resection before vaccination and B, D: at autopsy. E-H: Autopsy specimens obtained from glioblastoma patients undergoing re-resection after standard care. I, J: Untreated incidentally found postmortem glioblastoma. [Figure 7-4] Figures 7a-7h show the decline of specific tumor-promoting monocytic cell populations after vaccination. Figure 7h. Time course of treatment response from initial diagnosis to autopsy in TJ06. The occurrence of CD163 cells is biphasic in the TME, increasing after standard treatment and decreasing after vaccination until autopsy. The decline in CD163 TAMs is associated with an increase in both rCBV and ADC values within the tumor. Serum nitrate levels spike after each vaccination and are associated with a concomitant rCBV / ADC increase. [Figure 8-1]Figures 8a-8d show differentiation of immature monocytes by the studied cytokines or serum. Figure 8a. Upregulation of IGF-1R after monocyte polarization by M2 cytokines. M1 macrophages do not upregulate IGF-1R (***p=.0004). Figure 8b. Differences in monocyte subset distribution after treatment with IGF-1R AS ODN following the macrophage polarization protocol described in Materials and Methods. Flow cytometry reveals that IGF-1R AS ODN selectively targets elimination of M2 macrophages. [Figure 8-2] Figures 8a-8d show differentiation of immature monocytes by the cytokines or sera studied. Figure 8c. Protocol patient sera differentiate immature monocytes to a CD163+ phenotype that co-expresses IGF-1R and PD-L1. IGF-1R AS ODN knocks down this macrophage population in a dose-dependent manner over a 100-fold concentration range. All values are mean fluorescence intensity. Comparison of means from duplicate measurements of each patient serum co-incubation. ***p<.0001, **p=.0001, *p=.0002, ◆◆◆p=.0003, ◆◆p=.0009, ◆p=.009,
[0012]
number
[0013] definition All terms not defined herein have their ordinary, art-recognized meanings.
[0014] As used herein, the terms "a," "an," "the," and the like include singular and plural referents unless the context clearly requires otherwise. As used herein, the term "about" when preceding a numerical value refers to a range of that value plus or minus 10%. For example, "about 100" includes 90 and 110.
[0015] As used herein, the term "autologous" refers to cells or tissues obtained from the same individual. As used herein, the term "autologous cancer cell vaccine" refers, in part, to a therapeutic agent produced by isolating tumor cells from an individual and treating the tumor cells ex vivo. The cells are then readministered to the individual from whom the tumor cells were isolated. In embodiments, an autologous cancer cell vaccine can include tumor cells as well as additional components, such as a buffer and / or an antisense nucleic acid. In embodiments, an "autologous cancer cell vaccine" can refer to a biodiffusion chamber containing tumor cells and one or more additional components. In certain aspects, an "autologous cancer cell vaccine" can be a "fully formulated chamber," also referred to herein as a "fully formulated biodiffusion chamber."
[0016] As used herein, the term "fully formulated chamber" or "fully formulated biodiffusion chamber" refers to a biodiffusion chamber containing autologous tumor cells and other cells contained in the tumor microenvironment (TME), which may or may not be treated prior to being packaged in the chamber with a first amount of IGF-1R AS ODN. The cells are packaged with a second amount of exogenous IGF-1R AS ODN, e.g., at least 2 μg, and the chamber is then irradiated with 5 Gy of gamma radiation.
[0017] As used herein, the term "small molecule" includes nucleic acids, peptides, proteins, and other chemicals (e.g., cytokines, growth hormones, etc. produced by cells), but does not include cells, exosomes, or microvesicles.
[0018] As used herein, the term "targeting IGF-1R expression" refers to administering an antisense nucleic acid having a sequence designed to bind to IGF-1R. As used herein, the term "systemic administration" means achieving delivery of a substance throughout the body of a subject. Typical systemic administration routes include parenteral, transdermal, intraperitoneal, intravenous, subcutaneous, and intramuscular administration.
[0019] Other routes of administration include oral, nasal, topical, ocular, buccal, sublingual, vaginal, intrahepatic, intracardiac, intrapancreatic, inhalation, and implantable pump administration.
[0020] Antisense molecules Antisense molecules are nucleic acids that function by binding to complementary target sequences of mRNA via Watson-Crick base pairing rules. Translation of the target mRNA is inhibited by active and / or passive mechanisms when hybridization occurs between the complementary helices. In the passive mechanism, hybridization of the mRNA with the exogenous nucleotide sequence results in the formation of a double strand that prevents the message from being read by the ribosomal complex. In the active mechanism, hybridization promotes the binding of RnaseH, which destroys the RNA, but leaves the antisense intact to hybridize to the other complementary mRNA target. Either or both mechanisms inhibit the translation of proteins that contribute to or sustain the malignant phenotype. As therapeutic agents, antisense molecules are much more selective and therefore more effective and less toxic than conventional drugs.
[0021] The methods and compositions disclosed herein include the use of antisense molecules to treat cancer. Typically, the antisense molecules are antisense oligodeoxynucleotides (AS-ODNs). In some embodiments, the antisense molecules include modified phosphate backbones. In certain aspects, the phosphate backbone modifications increase the resistance of the antisense to nuclease degradation. In certain embodiments, the modifications are locked antisense. In other embodiments, the modifications are phosphorothioate bonds. In certain aspects, the antisense contains one or more phosphorothioate bonds. In certain embodiments, the phosphorothioate bonds stabilize the antisense molecule by conferring nuclease resistance, thereby increasing its half-life. In some embodiments, the antisense can be partially phosphorothioate bonded. For example, up to about 1%, up to about 3%, up to about 5%, up to about 10%, up to about 20%, up to about 30%, up to about 40%, up to about 50%, up to about 60%, up to about 70%, up to about 80%, up to about 90%, up to about 95%, or up to about 99% of the antisense can be phosphorothioate-linked. In some embodiments, the antisense is fully phosphorothioate-linked. In other embodiments, phosphorothioate linkages can alternate with phosphodiester linkages. In certain embodiments, the antisense has at least one terminal phosphorothioate monophosphate.
[0022] In some embodiments, the antisense molecule comprises one or more CpG motifs. In other embodiments, the antisense molecule does not comprise CpG motifs. In certain aspects, the one or more CpG motifs are methylated. In other aspects, the one or more CpG motifs are unmethylated. In certain embodiments, when the antisense molecule is administered to a subject, the one or more unmethylated CpG motifs induce an innate immune response. In some aspects, the innate immune response is mediated by the binding of the unmethylated CpG-containing antisense molecule to Toll-like receptors (TLRs).
[0023] In certain embodiments, the antisense molecule comprises at least one terminal modification or "cap". The cap can be a 5' and / or 3' cap structure. The term "cap" or "end cap" includes chemical modifications at either end of the oligonucleotide, as well as modifications of the linkages between the last two nucleotides at the 5' end and between the last two nucleotides at the 3' end (relative to the terminal ribonucleotide). The cap structure can increase the resistance of the antisense molecule to exonucleases without compromising the molecular interaction with the target sequence or the cellular machinery. Such modifications can be selected based on their increased potency in vitro or in vivo. The cap can be at the 5' end (5' cap) or the 3' end (3' cap), or can be at both ends. In certain embodiments, the 5' and / or 3' caps are independently selected from phosphorothioate monophosphate, abasic residue (moiety), phosphorothioate linkage, 4'-thionucleotide, carbocyclic nucleotide, phosphorodithioate linkage, inverted nucleotide or inverted abasic moiety (2'-3' or 3'-3'), phosphorodithioate monophosphate, and methylphosphonate moiety. The phosphorothioate linkage or phosphorodithioate linkage, when part of the cap structure, is generally positioned between the two terminal nucleotides at the 5' end and between the two terminal nucleotides at the 3' end.
[0024] In a preferred embodiment, the antisense molecule targets the expression of the insulin-like growth factor 1 receptor (IGF-1R). IGF-1R is a tyrosine kinase cell surface receptor that shares 70% homology with the insulin receptor. Upon activation by its ligands (IGF-I, IGF-II, and insulin), it regulates a wide range of cellular functions, including proliferation, transformation, and cell survival. IGF-1R is not an absolute requirement for normal growth, but is essential for growth in anchorage-independent conditions that can occur in malignant tissues. A review of the role of IGF-1R in tumors is provided in Baserga et al., Vitamins and Hormones, vol. 53, pp. 65-98, 1997, which is incorporated herein by reference in its entirety.
[0025] In certain embodiments, the antisense molecule is an oligonucleotide directed against DNA or RNA of a growth factor or growth factor receptor, such as IGF-1R. In certain embodiments, the antisense is a deoxynucleotide directed to IGF-1R (IGF-1R AS ODN). The full length coding sequence of IGF-1R is provided as SEQ ID NO: 19 (see, for example, PCT / US2016 / 26970, which is incorporated herein by reference in its entirety).
[0026] In certain embodiments, the antisense molecule comprises either RNA or DNA and comprises a nucleotide sequence complementary to the IGF-1R signal sequence. The IGF-1R signal sequence is a 30 amino acid sequence. In other embodiments, the antisense molecule comprises either RNA or DNA and comprises a nucleotide sequence complementary to a portion of the IGF-1R signal sequence. In some embodiments, the antisense molecule comprises either RNA or DNA and comprises a nucleotide sequence complementary to codons 1-309 of IGF-1R. In other embodiments, the antisense molecule comprises either RNA or DNA and comprises a nucleotide sequence complementary to a portion of codons 1-309 of IGF-1R.
[0027] In certain embodiments, the IGF-1R AS ODN is at least about 5 nucleotides, at least about 10 nucleotides, at least about 15 nucleotides, at least about 20 nucleotides, at least about 25 nucleotides, at least about 30 nucleotides, at least about 35 nucleotides, at least about 40 nucleotides, at least about 45 nucleotides, or at least about 50 nucleotides in length. In some embodiments, the IGF-1R AS ODN is about 15 to about 22 nucleotides in length. In certain aspects, the IGF-1R AS ODN is about 18 nucleotides in length.
[0028] In certain embodiments, the IGF-1R AS ODN forms a secondary structure at 18° C., but does not form a secondary structure at about 37° C. In other embodiments, the IGF-1R AS ODN does not form a secondary structure at about 18° C. or at about 37° C. In yet other embodiments, the IGF-1R AS ODN does not form a secondary structure at either temperature. In other embodiments, the IGF-1R AS ODN does not form a secondary structure at 37° C. In certain embodiments, the secondary structure is a hairpin loop structure.
[0029] In some aspects, the IGF-1R AS ODN comprises the nucleotide sequence of SEQ ID NO: 1 or a fragment thereof. In certain embodiments, the IGF-1R AS ODN may have at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 98%, or 100% identity to SEQ ID NO: 1 or a fragment thereof. In some embodiments, the IGF-1R AS ODN comprises one or more phosphorothioate linkages.
[0030] In a particular embodiment, the IGF-1R AS ODN consists of SEQ ID NO: 1. NOBEL is an 18-mer oligodeoxynucleotide with a phosphorothioate backbone and a sequence complementary to codons 2-7 of the IGF-1R gene. Thus, NOBEL is an antisense oligonucleotide directed to IGF-1R (IGF-1R AS ODN). The NOBEL sequence derived at the 5' end as a complementary sequence to the IGF-1R gene is 5'-TCCTCCGGAGCCAGACTT-3' It is.
[0031] NOBEL has a stable shelf life and is resistant to nuclease degradation due to its phosphorothioate backbone. Administration of NOBEL can be provided by any of the standard methods related to the introduction of oligodeoxynucleotides known to those skilled in the art. Advantageously, the AS ODNs disclosed herein, including NOBEL, can be administered with little / no toxicity. Even a level of about 2g / kg (scaled) based on mouse tests (40 μg in tail vein) showed no toxicity issues. NOBEL can be manufactured according to routine procedures known to those skilled in the art.
[0032] Antisense molecules, such as the NOBEL sequence of SEQ ID NO:1, may also contain one or more p-ethoxy backbone modifications, as disclosed in U.S. Pat. No. 9,744,187, which is incorporated herein by reference in its entirety. In some embodiments, the nucleic acid backbone of the antisense molecule contains at least one p-ethoxy backbone linkage. For example, up to about 1%, up to about 3%, up to about 5%, up to about 10%, up to about 20%, up to about 30%, up to about 40%, up to about 50%, up to about 60%, up to about 70%, up to about 80%, up to about 90%, up to about 95%, or up to about 99% of the antisense molecule may be p-ethoxy linked. The remaining portion of the linkages may be phosphodiester or phosphorothioate linkages or combinations thereof. In a preferred embodiment, 50% to 80% of the phosphate backbone linkages in each oligonucleotide are p-ethoxy backbone linkages and 20% to 50% of the phosphate backbone linkages in each oligonucleotide are phosphodiester backbone linkages.
[0033] Various IGF-1R antisense sequences are bioactive with some or all of the multimodality effects of the NOBEL sequence. The 18-mer NOBEL sequence has both IGF-1R receptor downregulation activity and even TLR agonist activity, and further experiments in mice suggest that both activities are necessary for in vivo antitumor immune activity. The AS ODN molecule has antitumor activity, but the complementary sense sequence does not, despite also having a CpG motif.
[0034] In certain embodiments, the antisense sequence is selected from the group consisting of SEQ ID NOs: 1-14 as shown in Table 1. In some embodiments, the antisense has 90% sequence identity to one or more of SEQ ID NOs: 1-14. In some embodiments, the antisense has 80% sequence identity to one or more of SEQ ID NOs: 1-14. In some embodiments, the antisense has 70% sequence identity to one or more of SEQ ID NOs: 1-14.
[0035] [Table 1] In certain embodiments, the IGF-1R AS ODN comprises the nucleotide sequence of any one of SEQ ID NOs: 1-14, or a fragment thereof. In certain embodiments, the IGF-1R AS ODN can have at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 98%, or 100% identity to any one of SEQ ID NOs: 1-14, or a fragment thereof.
[0036] In some embodiments, the antisense molecule downregulates the expression of downstream gene of IGF-1R pathway in cells.In a particular aspect, the downstream gene is hexokinase (HexII).In some embodiments, the antisense molecule downregulates the expression of housekeeping gene in cells.In some aspects, the housekeeping gene is L13.
[0037] In certain aspects, IGF-1R AS ODN is chemically synthesized. In certain embodiments, IGF-1R AS ODN is produced by solid-phase organic synthesis. In some aspects, the synthesis of IGF-1R AS ODN is carried out in a synthesizer equipped with a closed chemical column reactor using flow-through technology. In some embodiments, each synthesis cycle sequence on a solid support consists of multiple steps that are carried out sequentially until a full-length IGF-1R AS ODN is obtained. In certain embodiments, IGF-1R AS ODN is produced by solid-phase organic synthesis. In some embodiments, the synthesis of IGF-1R AS ODN is carried out in a synthesizer equipped with a closed chemical column reactor using flow-through technology. In some embodiments, each synthesis cycle sequence on a solid support consists of multiple steps that are carried out sequentially until a full-length IGF-1R AS ODN is obtained. The ODN is stored in liquid form. In other embodiments, the IGF-1R AS ODN is lyophilized before storage. In some embodiments, the lyophilized IGF-1R AS ODN is dissolved in water before use. In other embodiments, the lyophilized IGF-1R AS ODN is dissolved in an organic solvent before use. In still other embodiments, the lyophilized IGF-1R AS ODN is formulated as a pharmaceutical composition. In some aspects, the pharmaceutical composition is a liquid pharmaceutical composition. In other aspects, the pharmaceutical composition is a solid pharmaceutical composition. Additional antisense nucleic acids are also described in US Patent Publication No. 2017 / 0056430, which is incorporated herein by reference in its entirety.
[0038] Autologous cancer cell vaccine Introduction Immunotherapy is currently used to target hematological malignancies with one common cellular antigen. Unfortunately, solid tumors are much more complex, with an unidentifiable number of tumor-specific targets and epigenetic progression of genetic changes to malignant states. To complicate matters further, there is a significant variation in tumor phenotypes within the WHO-diagnosed cancer group. An autologous cell vaccine would encompass all such variations and all such targets and be an ideal target-specific immunotherapy for solid tumor cancers. However, autologous cancer cell vaccines cannot be derived from primary cell cultures, as successive passaging alters tumor phenotype and reduces the set of tumor-specific antigens. This would require difficult-to-achieve lot release qualification at each passaging. The present disclosure eliminates these concerns by plating freshly excised minced tumor cells and reimplanting them as depot antigens within 24 hours, as shown in FIG. 22. In certain aspects, the superior results achieved herein are obtained by ensuring that an adequate number of cells are present in the chamber, among other specific examples described herein.
[0039] Previous studies have used antigen-presenting cells instead of autologous tumor cells to design autologous cellular vaccines. In this paradigm, the subject's monocytes are collected from pre-treatment plasma leukopheresis and differentiated ex vivo into autologous dendritic cells (DCs). The dendritic cells are then presented to the subject's crude tumor lysate to trigger DC activation / maturation, and at a later time point, the mature dendritic cells, now cross-primed with tumor antigens, are injected into the subject as a DC vaccine. However, ex vivo differentiation lacks several key stimulatory components that occur only in vivo. Additionally, differentiation of DCs from hematopoietic precursors requires extensive in vitro manipulations with expensive equipment and laborious cell processing. The present disclosure circumvents these concerns by providing an endogenous DC maturation process and immunomodulatory and immunostimulatory antisense oligodeoxynucleotides (AS-ODNs) that promote the generation of appropriate immune responses. More specifically, the present disclosure provides a biodiffusion chamber containing dispersed tumor cells derived from the patient and irradiated antisense molecules, which are implanted into the patient for a therapeutic period. Without wishing to be bound by any theory, it is believed that the combination of irradiated tumor cells, antisense, and a biodiffusion chamber act in concert to simulate a local immune response and enhance the response by reducing or eliminating M2 cells to prevent attenuation of the immune system.
[0040] Therefore, the present disclosure shows that irradiated implantable biodiffusion chambers containing freshly excised tumor cells and IGF-1R AS ODN safely function as an effective subject-specific autologous cellular vaccine for cancer immunotherapy. Thus, the use of the claimed implantable biodiffusion chambers to initiate immune responses in subjects that selectively target tumor cells provides a new and significant method for treating cancer, especially GBM.
[0041] Biodiffusion Chamber A typical diffusion chamber includes a chamber barrel having two ends, a first end and a second end. In an embodiment, the biodiffusion chamber is a small ring capped on one side with a porous cell-impermeable membrane, such as a Duropore membrane manufactured by Millipore Corporation. Optionally, one of the ends may be sealed as part of the chamber body, leaving only one end open to be sealed with a porous membrane. The membrane can be made of plastic, Teflon, polyester, or any inert material that is strong, flexible, and can withstand chemical treatments. The chamber can be made of any material, including but not limited to plastic, Teflon, Lucite, titanium, plexiglass, or any inert material that is non-toxic and well tolerated by humans. Additionally, the chamber should be able to withstand sterilization processes. In some aspects, the diffusion chamber is sterilized with ethylene oxide before use. Other suitable chambers are described in U.S. Provisional Patent Application No. 62 / 621,295, filed January 24, 2018, U.S. Patent No. 6,541,036, PCT / US16 / 26970, and U.S. Patent No. 5,714,170, each of which is incorporated by reference in its entirety.
[0042] In certain embodiments, the membrane allows the passage of small molecules but not cells (i.e., cells cannot leave or enter the chamber). In some aspects, the diameter of the pores in the membrane allows diffusion of nucleic acids and other chemicals (e.g., cytokines produced by the cells) from the chamber, but does not allow the passage of cells between the chamber and the implanted subject. Biodiffusion chambers useful in the present disclosure include any chamber that does not allow the passage of cells between the chamber and the implanted subject, provided that the chamber allows exchange and passage of factors between the chamber and the subject. Thus, in certain aspects, the pore size is within 100 μm of the chamber to allow diffusion of nucleic acids and other chemicals (e.g., cytokines produced by the cells) from the chamber, but does not allow the passage of cells between the chamber and the implanted subject. 3 The membrane has a cut-off that prevents passage of volumes of material greater than 100 μm. In some embodiments, the pores of the membrane have a diameter of about 0.25 μm or less. For example, the pores can have a diameter of about 0.1 μm (see FIG. 1). In certain aspects, the pores are in the range of 0.1 μm to 0.25 μm in diameter. See also Lange et al., J. Immunol. 153:205-211 (1994), and Lanza et al., Transplantation 57:1371-1375 (1994), each of which is incorporated herein by reference in its entirety. This pore diameter prevents passage of cells into or out of the chamber. In one particular embodiment, the diffusion chamber is constructed from a 14 mm Lucite ring with a hydrophilic Durapore membrane with a 0.1 μm pore size (Millipore, Bedford, Massachusetts).
[0043] In certain embodiments, the biodiffusion chamber comprises a membrane through which the IGF-1R AS ODN can diffuse out of the chamber, hi some embodiments, about 50% of the IGF-1R AS ODN diffuses out of the chamber in about 12 hours, about 60% of the IGF-1R AS ODN diffuses out of the chamber in about 24 hours, about 80% of the IGF-1R AS ODN diffuses out of the chamber in about 48 hours, and / or about 100% of the IGF-1R AS ODN diffuses out of the chamber in about 50 hours.
[0044] In an exemplary method, to assemble the biodiffusion chamber, a first porous membrane is attached to one side of the first diffusion chamber using glue and pressure to form a tight seal. A second porous membrane is similarly attached to a second diffusion chamber ring. The membrane can be secured in place using a rubber gasket, which can also provide a tighter seal. The diffusion chamber ring is left to dry overnight (at least 8 hours). The first diffusion chamber ring and the second diffusion chamber ring are then attached to each other using glue and left to dry overnight (at least 8 hours). In a preferred embodiment, the bonding process of the first chamber ring and the second chamber ring includes using dichloroethane as a solvent to promote adhesion between the two rings. See, for example, FIG. 22, which shows two porous membranes. In an alternative method, the chamber may have only one side containing a porous membrane.
[0045] The barrel portion of the chamber is provided with one or more openings (e.g., ports) that can be covered by a cap to allow access from outside the subject's body to refill the diffusion chamber after the chamber is implanted. The openings allow multiple sequential samplings of the contents without contamination and without harming the subject, thus significantly reducing the number of implantation procedures performed on the subject. Prior to implantation in the patient, the one or more openings can be sealed with a cap made of bone wax, port plugs, PMMA, or the like. The cap can be a screw-on self-sealing rubber that can be attached to the opening. In some configurations, the diffusion chamber can contain two or more injection openings or ports. Sampling of the chamber contents can be performed by removing the cap outside the subject's body to access the opening as with the insertion of a normal needle and syringe. In some embodiments, the chamber can further include a removal device. Such a device facilitates removal of the chamber from the patient.
[0046] In embodiments, the chamber functions as an antigen depot designed to allow tumor antigens to diffuse out of the chamber in order to promote a therapeutic host immune response. Exogenous IGF-1R AS ODN and ex vivo irradiation promote proinflammatory responses. This formulation is associated with clinical and radiographic improvements, long-term survival with the protocol, and represents a novel autologous cellular vaccine containing exogenous active pharmaceutical ingredient (API) and irradiation that is interpreted to induce or enhance tumor immunity. Furthermore, the addition of low concentrations of IGF-1R AS ODN is crucial to the proinflammatory response (Figure 12).
[0047] In certain embodiments, the disclosure provides a biodiffusion chamber for implantation into a subject suffering from cancer, the biodiffusion chamber comprising (a) tumor cells and (b) an effective amount of an antisense molecule. In other embodiments, a method of treating cancer in a subject is provided, the method comprising (a) obtaining a biodiffusion chamber comprising tumor cells and an effective amount of an antisense nucleic acid, (b) irradiating the biodiffusion chamber and contents, and (c) implanting the irradiated biodiffusion chamber in the subject for a therapeutically effective period of time.
[0048] In certain embodiments, the IGF-1R AS ODN is present in the biodiffusion chamber in an amount ranging from about 0.5 μg to about 10 μg. The AS ODN is present in an amount ranging from about 1 μg to about 5 μg / chamber or from about 2 μg to 4 μg / chamber. In certain embodiments, the IGF-1R AS ODN is present in an amount of about 2 μg / chamber. In certain embodiments, the IGF-1R AS ODN is present in an amount of about 4 μg / chamber. Without being bound by theory, it is believed that these levels promote enhanced Th1 responses in the subject while avoiding an M2 immunostimulatory response in the subject.
[0049] In certain embodiments, the tumor cells are not treated with IGF-1R AS ODN before encapsulation in the chamber. Typically, however, the tumor cells are treated with IGF-1R AS ODN before encapsulation in the chamber. The time for treating the cells before encapsulation can vary. For example, the tumor cells can be treated with IGF-1R AS ODN ex vivo immediately before encapsulation for up to about 4 hours, up to about 6 hours, up to about 8 hours, up to about 12 hours, or up to about 18 hours. Typically, the tumor tissue can be treated ex vivo for about 12 hours to about 18 hours before encapsulation. Conveniently, the cells can be encapsulated after pretreatment continues for up to overnight. Without being bound by theory, it is believed that the treatment before encapsulation plays a desirable role in stimulating production of tumor antigens.
[0050] The amount of IGF-1R AS ODN used for pre-encapsulation treatment can be within the range of about 1 mg to 8 mg / 1 million cells, for example, about 2 mg to about 6 mg / 1 million cells, about 3 mg to about 5 mg / 1 million cells. Typically, the amount of IGF-1R AS ODN used for pre-encapsulation treatment is about 4 mg / 1 million cells.
[0051] In some embodiments, the IGF-1R AS ODN for ex vivo treatment of tumor cells is used at a concentration in the range of at least about 2 mg / ml to at least about 5 mg / ml. In certain aspects, the IGF-1R AS ODN is used at a concentration of at least 4 mg / ml. In specific embodiments, the IGF-1R AS ODN is used at a concentration of 4 mg / ml.
[0052] In certain embodiments, the IGF-1R AS ODN used to treat tumor cells ex vivo and the IGF-1R AS ODN present in the chamber are identical. In other embodiments, the IGF-1R AS ODN used to treat tumor cells ex vivo and the IGF-1R AS ODN present in the chamber are different. In certain embodiments, the IGF-1R AS ODN used to treat tumor cells ex vivo is at least about 5 nucleotides, at least about 10 nucleotides, at least about 15 nucleotides, at least about 20 nucleotides, at least about 25 nucleotides, at least about 30 nucleotides, at least about 35 nucleotides, at least about 40 nucleotides, at least about 45 nucleotides, or at least about 50 nucleotides in length. In some embodiments, the IGF-1R AS ODN used to treat tumor cells ex vivo is about 15 nucleotides to about 22 nucleotides in length. In certain aspects, the IGF-1R AS ODN used to treat tumor cells is about 18 nucleotides in length.
[0053] In certain embodiments, the IGF-1R AS ODN used to treat tumor cells ex vivo forms a secondary structure at 18°C, but does not form a secondary structure at about 37°C. In other embodiments, the IGF-1R AS ODN used to treat tumor cells does not form a secondary structure at about 18°C or about 37°C. In yet other embodiments, the IGF-1R AS ODN used to treat tumor cells ex vivo does not form a secondary structure at either temperature. In other embodiments, the IGF-1R AS ODN used to treat tumor cells does not form a secondary structure at 37°C. In certain embodiments, the secondary structure is a hairpin loop structure.
[0054] In some aspects, the IGF-1R AS ODN used to treat tumor cells comprises the nucleotide sequence of SEQ ID NO: 1 or a fragment thereof. In certain embodiments, the IGF-1R AS ODN used to treat tumor cells may have at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 96%, at least about 98%, or 100% identity to SEQ ID NO: 1 or a fragment thereof. In certain aspects, the IGF-1R AS ODN used to treat tumor cells is SEQ ID NO: 1.
[0055] After treating the tumor cells with AS-ODN for a period of time, the AS-ODN is removed and new AS-ODN is added to the chamber, which is then irradiated before implantation into a subject. In certain aspects, the biodiffusion chamber is treated with gamma irradiation at an amount of about 1 Gy, about 2 Gy, about 4 Gy, about 5 Gy, about 6 Gy, about 10 Gy, or up to about 15 Gy. In certain aspects, the irradiation dose is about 5 Gy or less. In other aspects, the irradiation dose is at least about 5 Gy. In some aspects, the irradiation dose is 5 Gy. In certain embodiments, the biodiffusion chamber can be irradiated at least once, at least twice, at least three times, at least four times, or at least five times. In some embodiments, the chamber is irradiated less than about 24 hours before implantation into a subject. In other embodiments, the chamber is irradiated about 24 hours before implantation into a subject. In still other embodiments, the chamber is irradiated at least about 24 hours before implantation into a subject. In yet other embodiments, the chamber is irradiated no more than about 48 hours prior to implantation in a subject. In yet other embodiments, the chamber is irradiated at least about 48 hours prior to implantation in a subject.
[0056] Although tumor cells are typically killed, such as by irradiation, prior to implantation, it is not necessary to kill the cells, and in fact it may be advantageous to maintain the cells in a viable state to facilitate release of antigens. Thus, in certain embodiments, the cells may not be irradiated prior to implantation. However, for safety purposes, it is desirable to prevent the release of live tumor cells into the subject.
[0057] Tumor cells can be placed in the diffusion chamber in various numbers. In one particular embodiment, about 1×10 4 ~Approx. 5×10 6 Tumor cells are placed in each diffusion chamber. In another embodiment, about 1×10 5 ~Approx. 1.5×10 6 Tumor cells are placed in the diffusion chamber. In yet another embodiment, about 5×10 5 ~1×10 6Tumor cells are placed in the chamber. Having a subject may be used. We have found that the number of tumor cells can affect the subject's anti-tumor response and that an appropriate range should be selected to increase the chances of obtaining the desired outcome. Figure 28 shows data from a patient implanted with 20 chambers, showing the cell yield (millions of cells) corresponding to the immune response. The anti-tumor immune response is optimal within the range of about 750,000 to about 1,250,000 cells per chamber, with a peak at about 1 million cells / chamber. Multiple chambers containing irradiated tumor cells are administered, with the number of cells / chamber preferably being maintained within that range to maintain an optimal immune response. Preferably, the tumor cells are intact and do not autolyze or become damaged as described herein.
[0058] In certain embodiments, it may be preferable to maintain the ratio of cells to AS ODN in the chamber. Thus, in certain aspects, the chamber may contain about 2 μg of AS ODN and 750,000 to 1,250,000 cells, e.g., 1,000,000 cells. Thus, the ratio of cells to AS ODN is about 3.75×10 5 ~Approx. 6.25×10 5 / μg AS ODN, e.g., in the range of about 5.0×10 5 cells / μg, so in a typical patient containing 20 chambers, the total dose of AS ODN is about 40 μg.
[0059] Typically, administration will be in a chamber as described herein, but in certain embodiments, the irradiated cells and the IGF-1R AS ODN may be co-administered to a subject without being physically confined together in a chamber or other container. Thus, in certain methods using this method, the irradiated cells and the IGF-1R AS ODN are dispersed, diffused, or metabolized in the body, which is limited by the subject's physiology. Thus, in certain embodiments, for example, the tumor cells used may be prepared as described herein for a chamber and administered with the IGF-1R AS ODN, but administration may not be confined to a physical container. Such administration is typically intramuscular.
[0060] Tumor tissue preparation for chambers Tumor cells used for autologous vaccination are surgically removed from the subject. In an embodiment, the tumor cells are removed from the patient using a tissue morcellator. The extraction device preferably combines a high-speed reciprocating inner cannula within a stationary outer cannula with electronically controlled variable suction. The outer cannula has a diameter of 1.1 mm, 1.9 mm, 2.5 mm, or 3.0 mm, and a length of 10 cm, 13 cm, or 25 cm. The device also relies on side mouth cutting and an aspiration aperture located 0.6 mm from the blunt desiccator end. A combination of gentle forward pressure of the aperture into the tissue to be removed and suction draws the desired tissue into the side aperture, allowing for controlled and precise tissue excision via the reciprocating cutting action of the inner cannula. An important feature is the absence of a rotating blade, which prevents unintended tissue from being drawn into the aperture. An example of a suitable device is the Myriad® Tissue Aspirator (NICO Corporation®, Indianapolis, IN), which is a minimally invasive surgical system that can be used for removal of soft tissue with direct, microscopic, or endoscopic visualization. Shaved tissue is aspirated, collected in a collection chamber, and collected in a sterile tissue trap. Upon collection of tissue into the sterile tissue trap, blood is removed from the preparation. Preferably, the sterile trap contains a collection dish at the bottom of the trap and a stem that provides access to the trap. The trap structure may also contain an inner ladle-shaped structure that is removable from the trap to facilitate removal of tissue from the trap.
[0061] Preferably, the morcellator does not generate heat at the resection site or along its shaft, and does not require ultrasonic energy for tissue removal. Thus, in certain embodiments, the tumor tissue is minced tumor tissue (i.e., tumor shaved tissue obtained by side-mouth cutting in the absence of heat and, optionally, in the absence of sonication). Advantageously, the aspirator extracts and minced tissue have higher viability than tissue removed by other methods. It is believed that the extraction process maintains higher tumor cell viability, in part, due to limited exposure of tumor cells to high temperatures during removal. For example, the methods herein do not expose tumor cells to temperatures above 25°C during removal. Thus, the cells are not exposed to temperatures above body temperature, i.e., about 37°C.
[0062] The amount of tumor tissue obtained from the subject can vary. Preferably, the amount is at least 1 gram, at least 2 grams, at least 3 grams, or at least 4 grams of equivalent wet tumor tissue obtained from the patient. The tissue is removed from a sterile tissue trap and disaggregated by pipetting with a sterile pipette to break up large tissue pieces. The disaggregated cell suspension is then placed in serum-containing media on a sterile tissue culture plate and incubated in a tissue culture incubator. This plating step serves to enrich for the desired functional cells by adhesion and helps to remove debris from the preparation. Thus, the tumor cells used in the treatments described herein preferably consist essentially of or consist of adherent cells derived from tumor tissue.
[0063] After a predetermined incubation time (e.g., 6, 12, 24, or 48 hours), the cells are removed from the plate. The cells may be removed by scraping, by chemical methods (e.g., EDTA), or by enzymatic treatment (e.g., trypsin). The cells are placed into one or more diffusion chambers. In some embodiments, the cells are divided into 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, 28, 29, 30, or more diffusion chambers. Often, 20 chambers are used. In some embodiments, each diffusion chamber contains an equal number of cells. In some embodiments, the first diffusion chamber contains more cells than the second chamber.
[0064] In some embodiments, the cells are sorted prior to being placed in the chamber. In some embodiments, the cells are enriched by selecting for one or more cell markers prior to being placed in the chamber. Selection may be performed, for example, using beads or by cell sorting techniques known to those of skill in the art. In some embodiments, the cells placed in the chamber are enriched for one or more markers.
[0065] In some embodiments, implantation of the biodiffusion chamber for a therapeutic effective period reduces or eliminates recurrence of cancer in the subject. In certain aspects, implantation of the biodiffusion chamber causes a reduction in tumor volume associated with cancer in the subject. In yet other embodiments, implantation of the biodiffusion chamber for a therapeutic effective period induces elimination of tumor in the subject. In some embodiments, implantation of the chamber inhibits tumor regrowth for at least 3 months, at least 6 months, at least 12 months, at least 36 months, or indefinitely.
[0066] Biodiffusion chambers can be implanted in the subject in the following ways, including but not limited to subcutaneously, intraperitoneally, and intracranially. In certain embodiments, the diffusion chamber is implanted in a recipient site in the body with good lymphatic drainage and / or vascular supply, such as the rectus sheath. In other embodiments, a refillable chamber may be utilized so that the diffusion chamber can be emptied after treatment and reused for treatment. In certain aspects, multiple diffusion chambers, preferably 5-20, can be used in a single subject.
[0067] In certain embodiments, at least about 1, at least about 2, at least about 3, at least about 4, at least about 5, at least about 10, at least about 15, at least about 20, at least about 25, at least about 30, at least about 35, at least about 40, at least about 45, or at least about 50 chambers are implanted in the subject. In some embodiments, 10 to 20 chambers are implanted in the subject. Preferably, about 20 chambers are implanted in the subject. In certain embodiments, the tumor cells are distributed equally to each chamber.
[0068] Typically, the chamber is removed after a certain time. For example, the chamber can be implanted in the subject for about 24 hours, about 48 hours, about 72 hours, or about 96 hours. Implantation for about 48 hours is associated with beneficial therapeutic outcomes. Thus, the preferred implantation time is about 48 hours. In certain embodiments, the vaccination procedure is performed once per patient. In other embodiments, the vaccination procedure is performed multiple times per patient. In embodiments, the vaccination procedure is performed 2, 3, 4, 5, 6, 7, or 8 times in a single patient. In embodiments, the vaccination is repeated every 7 days, 14 days, 28 days, or every month, every 3 months, or every 6 months for a given period of time. In further embodiments, the vaccination procedure is repeated periodically until the patient is cancer-free.
[0069] Without being bound by theory, it is believed that implantation of a biodiffusion chamber causes the elimination or reduction of M2 cells at or near the implantation site such that an immune response to tumor antigens diffused out of the chamber is achieved. In certain embodiments, the elimination or reduction of M2 cells at the implantation site results in enhanced presentation of autologous tumor antigens by antigen-presenting cells (APCs) to CD4 T cells, resulting in the production of interferon gamma (IFNγ) and induction of type 1 tumor immunity. In certain embodiments, the production of IFNγ by tumor antigen-specific CD4 T cells and the anti-M2 effect of IGF-1R AS ODN drive type 1 anti-tumor immunity and the reduction of anti-inflammatory M2 cells from the circulation and tumor microenvironment, indirectly impeding tumor growth. In some embodiments, the production of IFNγ by tumor antigen-specific CD4 T cells and the anti-M2 effect of IGF-1R AS ODN releases the inhibition of effector-mediated damage to tumor cells and the tumor microenvironment (M2 cells) and initiates a longer process of programming memory T cells that recognize tumor antigens. In certain embodiments, the anti-tumor adaptive immune response maintains the continuation of tumor regression.
[0070] Optionally, the cells introduced into the chamber may be enriched for certain cell types. Nestin, a cytoskeleton-associated class VI intermediate filament (IF) protein, has been noted for its importance as a neural stem cell marker. We have found that certain brain tumor samples are enriched for nestin-positive cells (nestin+ cells) compared to benign tissue, and that this correlates with improved therapeutic response. Thus, in certain embodiments, a subject's tumor may be biopsied to assess the degree of nestin expression, and thus, in certain embodiments, the chamber cells are enriched for nestin-positive ("+") cells compared to benign tissue. Without being bound by theory, it is believed that nestin provides a marker associated with a suitable antigen useful for generating an anti-tumor immune response. Thus, the cells implanted into the chamber may be enriched for nestin+ cells compared to the tumor cell population as a whole when extracted from the subject. FIG. 30 illustrates the enhanced immune response obtained when a nestin-enriched tumor sample is used to stimulate the response.
[0071] Systemic administration As an alternative or supplement to implantation of a chamber, the IGF-1R AS ODN may be administered systemically. Thus, in embodiments, the IGF-1R AS ODN is provided in a pharmaceutical composition for systemic administration. In addition to the IGF-1R AS ODN, the pharmaceutical composition may include, for example, saline (0.9% sodium chloride). The composition may include a phospholipid. In some aspects, the phospholipid is uncharged or has a neutral charge at physiological pH. In some aspects, the phospholipid is a neutral phospholipid. In certain aspects, the neutral phospholipid is a phosphatidylcholine. In certain aspects, the neutral phospholipid is dioleoylphosphatidylcholine (DOPC). In some aspects, the phospholipid is essentially cholesterol-free.
[0072] In some embodiments, the phospholipid and oligonucleotide are present in a molar ratio of about 5:1 to about 100:1, or any ratio derivable therefrom. In various embodiments, the phospholipid and oligonucleotide are present in a molar ratio of about 5:1, 10:1, 15:1, 20:1, 25:1, 30:1, 35:1, 40:1, 45:1, 50:1, 55:1, 60:1, 65:1, 70:1, 75:1, 80:1, 85:1, 90:1, 95:1, or 100:1. In some embodiments, the oligonucleotide and phospholipid form an oligonucleotide-lipid complex, such as a liposome complex. In some embodiments, at least 75%, 76%, 77%, 78%, 79%, 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% of the liposomes are less than 5 microns in diameter. In various embodiments, the composition further comprises at least one surfactant, such as polysorbate 20. In some embodiments, at least about 5% of the total liposomal antisense formulation is comprised of surfactant, and at least about 90% of the liposomes are less than 5 microns in diameter. In some embodiments, at least about 15% of the total liposomal antisense formulation is comprised of surfactant, and at least about 90% of the liposomes are less than 3 microns in diameter. In some embodiments, the population of oligonucleotides is incorporated into the population of liposomes.
[0073] In some embodiments, the pharmaceutical composition is a liquid pharmaceutical composition, hi other embodiments, the pharmaceutical composition is a solid pharmaceutical composition. The dosage of systemic administration of the antisense in a human subject can be about 0.025 g / kg, about 0.05 g / kg, about 0.1 g / kg, about 0.15 g / kg, or about 0.2 g / kg. In certain embodiments, the dosage of systemic administration can be between 0.025 g / kg and 0.2 g / kg. In some embodiments, the dosage is about 0.2 g / kg. In other embodiments, the dosage is between 0.004 g / kg and 0.01 g / kg. In other embodiments, the dosage is less than 0.01 g / kg. In further embodiments, the dosage is not between 0.01 g / kg and 0.2 g / kg. In certain aspects, the antisense is provided as a lyophilized powder and is resuspended prior to administration. When resuspended, the concentration of the antisense can be about 50 mg / ml, about 100 mg / ml, about 200 mg / ml, about 500 mg / ml, about 1000 mg / ml, or a range between these amounts.
[0074] In certain embodiments, the AS ODN may be administered systemically prior to surgery, for example, to reduce tumor burden prior to surgery. For example, the AS ODN may be administered up to 24 hours, up to 36 hours, up to 48 hours, or up to 72 hours prior to surgery. In certain aspects, the pharmaceutical composition may be administered about 48 to about 72 hours prior to surgery. Typically, in such situations, administration is by intravenous bolus.
[0075] Combination Therapy Historically, cancer therapy involves treating a subject with a combination of radiation therapy, chemotherapy, or both. Many such approaches have been reported. Advantageously, however, the chamber implantation method disclosed herein may be used to treat a subject with cancer as a monotherapy. As such, the method disclosed herein preferably does not include chemotherapy or radiation therapy. However, despite the superior efficacy achieved by the monotherapy herein, under certain circumstances, it may be beneficial to combine the chamber method with other therapies, such as radiation therapy. In certain embodiments, radiation therapy includes, but is not limited to, internal source radiation therapy, external beam radiation therapy, and total body radioisotope radiation therapy. In certain aspects, radiation therapy is external beam radiation therapy. In some embodiments, external beam radiation therapy includes, but is not limited to, gamma radiation therapy, x-ray therapy, intensity modulated radiation therapy (IGRT), and image-guided radiation therapy (IGRT). In certain embodiments, external beam radiation therapy is gamma radiation therapy. Irradiation may be administered before or after chamber implantation, for example, as a salvage therapy. Typically, such salvage therapy is not administered until the cancer is determined to have recurred.
[0076] Therefore, in certain combination methods, both the chamber method and the systemic method and composition described herein may be used in the same subject, either alone or in combination with radiation therapy or chemotherapy.In the combination methods described herein, chamber implantation is preferably used as the first-line therapy.It is desirable to use chamber implantation first, because the subject's immune system may be inhibited by other therapies, reducing the therapeutic effect of chamber implantation.
[0077] Optionally, systemic administration may be performed prior to implantation of the chamber. Such methods may be used to boost the subject's immune system as a priming method. Priming methods may be particularly advantageous when the subject's immune system is compromised as a result of prior therapy.
[0078] When systemic administration is used in combination, the AS ODN may be administered systemically at least 2 weeks, at least 1 week, at least 3 days, or at least 1 day prior to treatment of the patient with the autologous cancer cell vaccine. In other embodiments, the AS ODN may be administered systemically at least 1 day, at least 3 days, at least 1 week, or at least 2 weeks after treatment of the patient with the autologous cancer cell vaccine or chamber.
[0079] Optionally, the subject may be revaccinated by the chamber after the first vaccination using the method described above. The second and subsequent booster vaccinations may use tumor cells collected from the subject at the time of tissue harvesting and stored. Optionally, the second and subsequent booster vaccinations may use fresh tumor tissues harvested from the subject and processed as described herein. Any tumors remaining in the subject may express the same antigens and therefore act as a depot to provide restimulation. However, recurrent tumors may develop new antigens and therefore provide an additional option to stimulate anti-tumor responses. Subsequent vaccinations may be after the first treatment has ended and the tumor has recurred or if the subject is no longer responsive to the first treatment.
[0080] Subjects treated with IGF-1R AS ODN A suitable subject is an animal with cancer, typically the subject is a human. Although brain cancers such as glioblastoma are particularly amenable to the methods disclosed herein, the methods are applicable to cancer in general. Thus, the present disclosure provides a method for treating cancer, including those selected from the group consisting of glioma, astrocytoma, liver cancer, breast cancer, head and neck squamous cell carcinoma, lung cancer, renal cell carcinoma, hepatocellular carcinoma, gallbladder cancer, classical Hodgkin's lymphoma, esophageal cancer, uterine cancer, rectal cancer, thyroid cancer, melanoma, colorectal cancer, prostate cancer, ovarian cancer, and pancreatic cancer. In a specific embodiment, the cancer is a glioma. In certain aspects, the glioma is a recurrent malignant glioma. In some embodiments, the cancer is an astrocytoma. In certain embodiments, the subject who is a candidate for treatment is suffering from a tumor of WHO grade II, WHO grade III, or WHO grade IV. In some aspects, the tumor is an astrocytoma. In certain embodiments, the tumor is selected from a grade II astrocytoma, AIII (IDH1 R132H mutated grade III astrocytoma), AIII-G (IDH1 wild-type grade III with characteristics of glioblastoma multiforme astrocytoma), or grade IV astrocytoma.
[0081] Grade IV astrocytoma is the highest grade glioma and is synonymous with glioblastoma (GBM). With an annual incidence of 3 or 4 / 100,000, GBM is the most common malignant primary brain tumor in adults. Standard care therapy (typically a combination of radiation therapy and chemotherapy with temozolomide) does not work well, and outcomes for GBM patients remain poor, with a median life expectancy of 15-17 months. Advantageously, the methods herein may be used to treat newly diagnosed brain cancer, as well as to treat recurrent glioblastoma, for example, in patients previously treated with standard care therapy. Thus, in certain embodiments, the subject may be a newly diagnosed GBM subject or a recurrent GBM subject. The subject is preferably one who has not been previously treated with any immunosuppressive therapy. In certain embodiments, eligible subjects are over 18 years of age and have a Karnofsky score of 60 or greater. Optionally, the subject does not have bihemispheric disease and / or does not have an autoimmune disease.
[0082] Optionally, subjects who are candidates for treatment may be identified by performing a tumor biopsy on the subject. In some embodiments, the subject's tumor is assayed for the presence of monocytes. In certain aspects, monocytes include, but are not limited to, CD11b+, CD14+, CD15+, CD23+, CD64+, CD68+, CD163+, CD204+, or CD206+ monocytes. The presence of monocytes in the tumor may be assayed using immunohistochemistry. In certain embodiments, subjects who are candidates for treatment exhibit more than about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, or about 50% CD163+M2 cells of the subject's total peripheral blood mononuclear cells (PBMCs). In certain aspects, the subject exhibits more than about 20% CD163+M2 cells of the subject's total PBMCs.
[0083] In yet other embodiments, subjects who are candidates for treatment are identified by the presence of one or more cytokines in the subject's serum, including but not limited to, CXCL5, CXCL6, and CXCL7, IL6, IL7, IL8, IL10, IL11, IFN-γ, and HSP-70.
[0084] In yet other embodiments, subjects who are candidates for treatment are identified by the presence of one or more growth factors in the subject's serum, including, but not limited to, FGF-2, G-CSF, GM-CSF, and M-CSF.
[0085] In some embodiments, subjects who are candidates for treatment with a biodiffusion chamber are identified by measuring the levels of a particular set of cytokines. In some embodiments, the subjects have elevated levels of these cytokines compared to healthy subjects. As used herein, the term "healthy subject" refers to a subject who is not suffering from cancer or any other disease and who is not in need of treatment with a biodiffusion chamber.
[0086] In certain embodiments, cytokines may be added to the chamber to supplement the anti-tumor immune response. For example, the cytokines added to the chamber may be selected from the group consisting of CCL19, CCL20, CCL21, and CXCL12, and combinations thereof.
[0087] In certain embodiments, circulating CD14+ monocytes have elevated CD163 levels compared to healthy subjects. In some aspects, CD163 levels on circulating CD14+ monocytes are elevated at least about 2-fold, at least about 3-fold, at least about 4-fold, at least about 5-fold, at least about 10-fold, at least about 20-fold, at least about 30-fold, at least about 40-fold, at least about 50-fold, at least about 60-fold, at least about 70-fold, at least about 80-fold, at least about 90-fold, or at least about 100-fold compared to healthy subjects. In certain embodiments, CD163 levels on circulating CD14+ monocytes are elevated about 2-fold compared to healthy subjects.
[0088] In other embodiments, the subject candidate for treatment has serum that polarizes undifferentiated monocytes toward M2 cells. In certain aspects, incubation of the subject's serum with undifferentiated monocytes induces expression of one or more cell surface markers on monocytes, including, but not limited to, CD11b, CD14, CD15, CD23, CD64, CD68, CD163, CD204, and / or CD206. In other aspects, incubation of the subject's serum with undifferentiated monocytes increases expression of one or more cell surface markers on monocytes compared to monocytes not incubated with the subject's serum. In certain aspects, the cell surface markers include, but are not limited to, CD11b, CD14, CD15, CD23, CD64, CD68, CD163, CD204, and / or CD206. In some aspects, the level of one or more surface markers is increased by at least about 1.3-fold, at least about 1.5-fold, at least about 1.8-fold, at least about 2-fold, at least about 3-fold, at least about 4-fold, at least about 5-fold, at least about 10-fold, at least about 20-fold, at least about 30-fold, at least about 40-fold, at least about 50-fold, at least about 60-fold, at least about 70-fold, at least about 80-fold, at least about 90-fold, or at least about 100-fold compared to undifferentiated monocytes not incubated with the subject's serum. In certain embodiments, the level of one or more surface markers is increased by about 2-fold compared to undifferentiated monocytes not incubated with the subject's serum. Monocytes polarized by the subject's serum may be measured using FACS.
[0089] target cell Without being bound by theory, it is believed that AS ODNs reduce M2 cells in a subject and / or inhibit the polarization of cells into M2 cells by downregulating IGF-1R expression. In some embodiments, IGF-1R expression in M2 cells is downregulated by at least about 1%, at least about 2%, at least about 5%, at least about 10%, at least about 20%, at least about 30%, at least about 40%, at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, or at least about 95% compared to cells not treated with antisense. IGF-1R expression in M2 cells can be measured by quantitative RT-PCR.
[0090] In some embodiments, IGF-1R expression in M2 cells remains downregulated in the subject for at least about 1 day, at least about 2 days, at least about 3 days, at least about 4 days, at least about 5 days, at least about 6 days, at least about 7 days, at least about 8 days, at least about 9 days, at least about 10 days, at least about 11 days, at least about 12 days, at least about 13 days, at least about 14 days, at least about 3 weeks, at least about 4 weeks, at least about 5 weeks, or at least about 6 weeks after receiving a single dose of the antisense.
[0091] In some aspects, downregulation of expression of IGF-1R in M2 cells causes selective reduction of M2 cells in the subject compared to cells that do not express IGF-1R. In certain embodiments, M2 cells in the subject are reduced by at least about 2%, at least about 5%, at least about 10%, at least about 20%, at least about 30%, at least about 40%, at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, or at least about 95% compared to a subject not treated with antisense. In other embodiments, the M2 cell population is eliminated. For example, after implantation of the biodiffusion chamber, the M2 cell population can be about 1%, about 2%, about 5%, or about 10% of the population before implantation of the biodiffusion chamber. The M2 cells in the subject can be measured using FACS. In certain aspects, after treatment, M2 cells are eliminated, i.e., undetectable by FACS. In other aspects, reduction of M2 cells can be measured using a proxy assay. For example, serum can be obtained from a subject before and after treatment and its ability to polarize into M2 cells can be assessed. After treatment with the methods disclosed herein, the ability of the serum to polarize into M2 cells is reduced by about 80% to about 100%, about 20% to about 60%, or about 10% to about 50%.
[0092] In some embodiments, expression of IGF-1R in M2 cells is targeted to induce cell death in M2 cells. In certain embodiments, the cell death is necrosis. In other embodiments, the cell death is apoptosis. Apoptosis is defined for the purposes of this disclosure as programmed cell death, including, but not limited to, regression of primary and metastatic tumors. Apoptosis is a widespread phenomenon of programmed cell death that plays a vital role in a vast number of physiological and pathological processes. Necrosis, in contrast, is accidental cell death that is a cellular response to a variety of adverse conditions and toxic agents. In yet other embodiments, expression of IGF-1R in M2 cells is targeted to induce cell cycle arrest in M2 cells.
[0093] kit The creation of a complete chamber requires multiple components and multiple steps. In another aspect of the present disclosure, a kit is provided that contains components for carrying out the methods disclosed herein. In certain aspects, the kit includes a chamber body that may be in one piece or two halves. Items for sealing the chamber may also be included, including one or more membranes, adhesives, and solvents (e.g., alcohol or dichloroethane). Optionally, the membrane may be ultrasonically welded to the chamber to form a seal. The kit includes an antisense ODN. Optionally, the ODN may be distributed into two parts: a first part for treating the cells after surgical removal from the subject and a second part for combining with the cells when introduced into the subject. Other optional kit items include medium for culturing the cells and antibiotics for preventing bacterial growth in the medium.
[0094] Optionally, the chambers of the kit may be pre-connected to one another (e.g., by sutures) using eyelets or other devices attached to the chambers and adapted to receive a connecting material. Advantageously, pre-connecting multiple chambers may allow for easy introduction and removal of a desired number of chambers by a surgeon. EXAMPLES
[0095] Example 1 Vaccination with autologous tumor cells and IGF-1R AS ODN in patients with recurrent glioblastoma Criteria and research objectives Twelve subjects were enrolled for treatment after failing standard therapy. Each patient met the following criteria: age >18 years, Karnofsky performance score of 60 or better, and no comorbidities that would prevent elective surgical re-resection. Subjects were treated by implanting 10 biodiffusion chambers containing irradiated autologous tumor cells and IGF-1R AS ODN into the rectus sheath for 24 hours to stimulate tumor immunity. Patients were monitored for clinical and radiographic safety as well as immune response. Study objectives included evaluation of safety and radiographic response as well as exploratory objectives to examine immune function and immune response.
[0096] [Table 2] Experimental protocol Tumor tissue was surgically removed from the patient using a tissue aspirator (NICO Myriad®) and placed into a sterile tissue trap. The sterile tissue trap was transferred to a designated BSL-2 facility where the tumor tissue was processed and placed into a biodiffusion chamber. The biodiffusion chamber was irradiated prior to implantation.
[0097] The day after surgery to remove the tumor tissue, ten irradiated biodiffusion chambers were implanted into the rectus sheath of the subjects. They were removed 24 hours later. The biodiffusion chambers contained autologous tumor cells removed at the time of surgery. Prior to addition to the biodiffusion chambers, the cells were pretreated overnight (approximately 12-18 hours) with a first amount (4 mg / ml) of 18-mer IGF-1R AS ODN with the sequence 5'-TCCTCCGGAGCCAGACTT-3' (NOBEL). Based on data indicating that AS ODNs have immunomodulatory properties, a second amount (2 μg) of exogenous NOBEL antisense was added to the chamber (Cv), followed by irradiation of the chamber. Ten chambers were implanted in each patient. An eleventh control chamber (Cp) containing PBS was also implanted.
[0098] Radiological evaluation Sequential imaging evaluation was performed using Philips 1.5T and 3T MRI scanners and a GE 1.5T MRI scanner. Routine anatomical MRI features were evaluated by two neuroradiologists in all 12 patients. Physiological MRI techniques of dynamic susceptibility weighted (DSC) MR perfusion and 15-directional diffusion tensor imaging (DTI) were also utilized. MR perfusion and DTI post-processing were performed on a Nordic Ice workstation (version 2.3.14). rCBV was calculated relative to contralateral normal white matter. Mean diffusion coefficients (mean diffusivities) were calculated from the DTI data.
[0099] Immunologic evaluation Plasma leukapheresis was performed 1 week preoperatively to assess baseline immune function. Blood was obtained on days 7, 14, 28, 42, and 56 postoperatively and every 3 months postvaccination. Serum and cellular fractions were separated by centrifugation, and cells were treated with red blood cell lysis buffer. Leukocytes were either quantified by flow cytometry or stored in DMSO at -80°C. Serum samples were also stored at -80°C. Flow cytometry was performed using an EasyCyte 8HT (Millipore) with fluorescently conjugated mAbs specific for human CD4, CD8, CD11b, CD14, CD16, CD20, CD45, CD56, CD80, CD83, and CD86 (all from BD Biosciences) and CD163 (R&D Systems). Post-harvest analysis was performed using FlowJo software (Tree Star Inc, Ashland, OR). Serum cytokine factors were quantified using Luminex bead arrays (Human Cytokine / Chemokine Panels I, II, and III from Millipore) and the HCMBMAG / MILLIPLEX Mag Cancer Multiplex Assay (emdmillipore.com), which included six serum markers for glioma related to stem cell function, including DKK-1, NSE, osteonectin, periostin, YKL-40, and TWEAK. Serum nitrate levels were assayed according to the Greiss method (Green LC et al., 1982, Anal Biochem 126:131-8). T cell stimulation was performed with phorbol 12-myristate, 13-acetate (PMA) and ionomycin as previously described (Verbrugge, I. et al., 2012, Cancer Res. 72:3163-74).
[0100] Cytokine / chemokine levels were analyzed in tumor cell supernatants (SN) and in the explant chamber contents by the Luminex kits described above. Membranes from paired vaccine and control chambers were embedded in paraffin for standard immunohistopathological examination.
[0101] Tumor tissue sections were evaluated by immunohistochemistry for GFAP (glial fibrillary acidic protein), IGF-1R, CD163, CD14, vWF (von Willebrand factor), CD4, and CD8 or by fluorescent immunohistochemistry adapted from the method described by Emoto, K. et al., 2005, J. Histochem Cytochem 53:1311-21. Immunopositive cells were counted quantitatively by Aperio or qualitatively by an experienced neuropathologist (LCK) using an ordinal scale of 0 (no staining) to 6 (strong diffuse staining) with staining intensity graded as low, moderate, and strong and staining pattern described as focal or diffuse. Postmortem autopsies were limited to examination of the brain, and findings were compared to archival paraffin blocks of treated or untreated glioblastomas diagnosed at autopsy. Both canonical in vitro polarization of naive monocytes or mixing experiments involving naive monocytes co-incubated with serum from trial subjects at enrollment were performed as previously described (Harshyne, LA et al., 2015, Neuro Oncol 18:206-15; Solinas, G. et al., 2010, J Immunol 185:642-52).
[0102] statistical analysis Statistical significance levels between quantitative measures of different samples were determined by unpaired two-tailed t-tests or matched-pair t-tests at p<0.05. Survival analysis was performed with Kaplan-Meier analysis and significance established by log-rank comparison. All statistical analyses, including mixture discriminant analysis, were performed using JMP version 11 software (SAS, NC).
[0103] Safety evaluation and clinical progress Only one serious adverse event (SAE) was protocol related (femoral vein thrombosis after leukapheresis). Nine patients succumbed to tumor progression, while three patients died of other causes. Five autopsies were performed.
[0104] The median overall survival from initial diagnosis was 91.4 weeks, which compares favorably with other recurrent glioma immunotherapy trials (Figure 2a). Two protocol survival cohorts with significant differences of 48.2 and 10 weeks were identified as longer and shorter survival cohorts, respectively (Figure 2b). With the exception of one outlier (patient TJ03), we demonstrated a significant correlation between protocol survival and the degree of lymphopenia at enrollment (Figure 2c). Comparison of CBC values at initial diagnosis and protocol enrollment suggested a significant decline (65%) in the mean lymphocyte count after standard therapy (N=8, p=.012, paired t-test).
[0105] Radiography reaction Routine MRI features were evaluated and graded by two neuroradiologists (KST and AEF). In the longer cohort, a decrease in enhancement size and FLAIR envelope of the primary tumor site was observed with slower progression. Examples of anatomical responses in both cohorts are shown in Figures 3a and 3b. Physiological MRI measurements complemented these anatomical observations. Sequential DSC MR perfusion was performed in seven patients, including three longer survivors (patients TJ03, TJ06, and TJ09) who had a paradoxical increase in relative cerebral blood volume (rCBV) while improving clinically, but this effect was transient and more sustained decreases in rCBV were seen. Sequential 15-direction DTI data included two long-term survivors (patients TJ03 and TJ06) who showed increased apparent diffusion coefficient (ADC) values in the affected hemisphere reflecting a decrease in tumor cellularity associated with disease regression. We noted a high correlation between the paradoxical rCBV response and increased ADC (Figures 3c and 3d), not seen in the shorter cohorts. The corresponding serum nitrate levels in the longer cohorts reflected a potentially initiated inflammatory response (data not shown).
[0106] Examination of explant chambers versus perioperative serum by survival cohort The explant chambers were structurally intact with no viable cells. The outer surfaces of the membranes of both the Cp and Cv chambers were covered with CD15+ and CD163+ cells, although the numbers on the Cv membrane were dramatically increased (Figure 4a).
[0107] In the entire study cohort, analysis of the soluble contents of the chambers revealed significant elevations of several growth factors and cytokines / chemokines above corresponding perioperative serum levels, many of which have been extensively reported in the glioma tumor microenvironment (TME). Thirty-two of the 78 cytokines / chemokines tested were significantly elevated above serum, and matched-pair analysis revealed significant elevations of cytokines as noted in Table 2 below.
[0108] [Table 3-1]
[0109] [Table 3-2] These increases were interpreted as either cytokines / chemokines produced by the encapsulated tumor cells or factors produced by the local innate immune response that diffused within the chamber.
[0110] Chamber factor analysis between survival cohorts revealed that VEGF, PDGF-α, IL-11, CCL5, MCP-3, and MIP-1d were significantly elevated in the longer cohort, whereas several soluble cancer markers, including NSE, osteonectin, and YKL40, were significantly elevated in the shorter cohort. Mixed discriminant analysis independently identified these cohort differences (Figure 4b).
[0111] In both cohorts, the levels of both periostin and CCL2 were significantly lower in the chamber (Cv) than in serum or SN, suggesting that cells producing these chemokines are excluded in the chamber (Fig. 4c).
[0112] Serum cytokines / chemokines and PBMCs after vaccination by survival cohort Levels of 24 of the 78 cytokines / chemokines evaluated were significantly higher in serum from the longer cohort compared to the shorter cohort, as shown in Table 3 below.
[0113] [Table 4] A spike in serum CCL2 occurred postoperatively but was absent at the time of reoperation in two patients. CCL2 levels remained significantly higher throughout the postoperative period in the short cohort. This postoperative spike was highly correlated with the TNF-α spike (Figures 5 and 6).
[0114] The actual CD4 and CD8 T cell counts as well as dendritic cell (DC) counts were significantly higher and the perioperative CD14+16- counts were significantly lower in the longer cohorts compared to the short cohorts. Only in the longer cohorts was there a significant correlation between CD4 and DC cells and between CD4 and CXCL12. PBMCs from longer surviving subjects on day 14 demonstrated significantly higher production of Th-1 cytokines, including IFNγ, after stimulation with PMA and ionomycin than in the short cohorts (data not shown). Coordinate changes between circulating levels of T cells, monocytes, and proinflammatory chemokines / cytokines after vaccination were seen in three out of four subjects. The highest correlation between total monocyte counts and CD14+16- monocyte levels was notable (Figures 5b and 5d). An inverse correlation between circulating T cell counts and circulating monocyte counts was also notable in the longer cohorts (Figure 5), with no significant difference in the short cohorts (Figure 6). Predictable correlations between immunosuppressive and proinflammatory cell populations as well as monocyte-chemokine relationships suggested greater immune fitness in the longer cohorts.
[0115] Examination of Paraffin Sections Paraffin sections from surgical intervention to autopsy were available for analysis in four cases, allowing us to examine the TME after vaccination. We compared autopsies with trial autopsies of reoperated and untreated GBM patients (Figure 7). Immunostaining revealed a significant reduction in IGF-1R positive cells after vaccination in matched pairs. This was confirmed by fluorescent immunohistochemistry (Figures 7a and 7g). Abundance of both CD163TAM and IGF-1R+ cells was also revealed by qualitative comparison with either recurrent or untreated glioma autopsies, reducing any concerns of cells being lost as an autopsy artifact (Figure 7g).
[0116] CD163TAM peaked at relapse in matched comparisons with both initial surgery and autopsy (Figures 7c and 7g). Patients TJ06 and TJ10 confirmed this trend in evaluable samples throughout all treatment phases (Figures 7b and 7d). In the case of TJ06, CD163 cells declined after the second vaccination and persisted until autopsy. This decline correlated inversely with rCBV and ADC values as well as serum nitrate levels, both of which increased after each vaccination (see Figure 7f).
[0117] When we explored the association with peripheral monocytes, it was notable that we found a strong correlation between peripheral CD163+ monocytes and CD163TAMs in the short cohort (Fig. 7e) but not in the longer cohort (Fig. 7f).
[0118] We did not observe the emergence of T cell populations in the TME following vaccination in either cohort. Co-incubation of subject serum with undifferentiated monocytes To explore the origin of circulating CD163+ monocytes in patients, we first polarized naive monocytes with the canonical M1 and M2 cytokines IFN-γ and IL-4, respectively. We observed upregulation of IGF-1R only with M2 polarization (Figure 8a). The M2-polarized CD163+ population was selectively knocked down when incubated with IGF-1R AS ODN (Figure 8b).
[0119] We subsequently co-incubated naive monocytes with serum from all study subjects and demonstrated the emergence of CD163+ cells that co-expressed both IGF-1R and PDL-1 (Fig. 8c). Upon treatment with IGF-1R AS ODN, cells expressing IGF-1R, PD-L1, and CD163 were significantly knocked down in a parallel and dose-dependent manner summarized in Fig. 8d (Fig. 8c).
[0120] Consideration A revised autologous cell / chamber-based glioblastoma multiforme (GBM) vaccination trial did not raise any significant safety concerns.
[0121] We identified two significantly different survival cohorts that showed different responses to this vaccine paradigm. See Figures 5 and 6. Subjects in the longer cohort typically exhibited elevated levels of tumor-specific antibody isotypes and cytokines / chemokines commonly associated with Th1 immunity, including IgG1, IgG3, IL12, CXCL10, CXCL12, CCL7, CCL19, and CCL21, after surgery and vaccination. Elevated levels of these cytokines / chemokines were not seen in the shorter cohort. Thus, levels of cytokines / chemokines commonly associated with Th1 immunity (e.g., IgG1, IgG3, IL12, CXCL10, CXCL12, CCL7, CCL19, CCL21) may be assessed after surgery / vaccination to predict survival and inform further treatment strategies. Interestingly, CCL21 and CXCL12 synergize with CpG adjuvant to enhance DC migration and T cell stimulatory capacity in vaccination paradigms. Also, the notable increase in GM-CSF, IL-6, Flt3L, and SCF in the longer cohorts could enhance DC proliferation and contribute to the significant 76% increase in pDCs after vaccination. Also, the significant increase in CD4 cells and the correlation between CD4 cells, pDCs, and the cytokine CXCL12 suggest that successful induction of T cell proliferation is promoted by CXCL12 at the immune synapse.
[0122] Patients in the short survival cohort were typically on longer courses of therapy that resulted in lymphopenia prior to vaccination. Thus, vaccination is most effective when administered to patients with normal lymphocyte levels, i.e., non-lymphopenic patients. Treatment-induced lymphopenia and lower CD4:CD8 ratios may also be attributed to temozolamide. (Standard of care included conformal radiation with temozolamide and maintenance temozolamide started 6 weeks after surgery). Consequences of longer overall survival may include T cell depletion due to chronic exposure to tumor antigens and persistent glioma inhibitory signals. Similarly, monocytes / macrophages had a clear lack of reactivity with very limited variability after vaccination, but there was a discernible correlation between peripheral CD14+16- cells and TAMs. TAMs are associated with CCL2 production, which may manifest as a closed-loop amplification that promotes tumor growth. In support of this, elevated serum CCL2 levels found in a short cohort are associated with mesenchymal gene expression profiles and poor prognosis in glioma patients.
[0123] The explant chambers provided a unique snapshot of the encapsulated TME and insight into early immune responses. Cytokine elevations in the chambers of the longer cohorts collectively suggested that vaccination elicited a Th1 response and that sera from this cohort contained tumor-specific antibody isotypes associated with Th1 immunity. Mixed discriminant analysis established associations with production of IFN-γ, TNF-α, and IL12.
[0124] In contrast, the short cohort chambers had a greater increase in cancer markers indicative of the emergence of glioma stem cell (GSC)-associated resistance after standard therapy. One striking exception was periostin levels, which were dramatically reduced in all chambers compared to matched serum values. The tumor-promoting cell populations in gliomas include TAMs and GSCs, the former supporting the latter in the same perivascular niche (Zhou, W et al., 2015, Nat Cell Biol 17:170-82), and both are targets for therapeutic strategies. M2 macrophages recruited by GSC-secreted periostin play a key role in tumor growth, and their elimination would have therapeutic benefit. The reduction in periostin levels in chambers containing treated tumor cells suggests that GSCs, which secrete this factor themselves, are targets of IGF-1R AS ODN.
[0125] Notably, despite pre-existing immunosuppression (based on prior standard of care treatment), we confirmed radiographic and clinical improvement after vaccination in 4 of 12 patients, supported by a proinflammatory response. These patients also had a significant survival advantage with the protocol. Exploring this survival difference further, we noted a higher level of immune adaptation in the longer cohort.
[0126] Reduction of IGF-1R after vaccination was associated with longer protocol survival in some subjects. Without being bound to any particular theory, it is possible that the IGF-1R+ cell population is knocked down as a result of type 1 immune mechanisms promoted in these individuals by the vaccination paradigm.
[0127] As we have shown in vitro, IGF-1R AS ODNs promote type 1 immunity by inactivating CD163+ cells in the vaccine preparation and eliminating their immunomodulatory factors. Moreover, all IGF-1R AS ODNs diffuse out of the vaccine chamber and have similar effects on the M2 macrophages they reach. This represents a novel platform to target cells expressing various tumor-promoting ligands and factors, including PDL-1, other immunomodulatory factors, angiogenic factors, nutraceuticals, and tumor infiltrates.
[0128] The radiographic differences observed between longer and shorter survival patient cohorts provide further support for the notion that the vaccination paradigm affects the broader glioma TME. Higher rCBV values are typically associated with tumor progression, with MR perfusion having only a transient increase in the longer cohort (a finding not previously described). ADC measurements distinguished between tumor progression (lower values) and what we interpreted as cell loss (higher values). This vaccination paradigm is associated with a decline in both IGF-1R cells and CD163+TAM populations, so the increased ADC values reflect this.
[0129] In summary, we have established the safety profile of an improved combination glioma vaccine formulation and demonstrated changes in immune parameters associated with clinical and radiographic improvements.Promising to knock down specific monocytic cell populations (e.g., CD163+ cells co-expressing IGF-1R) that drive tumor growth, this paradigm offers a therapeutic scheme that does not result in immune compromise.
[0130] Summary of results There were no grade 3 toxicities related to protocol treatment, and median overall survival from initial diagnosis was 91.4 weeks (Figure 2a). Two protocol survival cohorts were identified with median survival of 48.2 weeks ("long") and 10 weeks ("short") (Figure 2b). Longer surviving subjects had imaging findings including transient elevation of cerebral blood volume (rCBV) and persistent elevation of apparent diffusion coefficient (ADC) values interpreted as transient hyperemia and cell loss. Vaccine therapy resulted in persistent loss of tumor-promoting CD163+M2 and IGF-1R+ cell populations from the tumor microenvironment (TME). In vitro experiments were performed to explore the origin of CD163+ T cells, and these experiments confirmed that subjects' serum differentiated immature monocytes into CD163+ cells with upregulation of both IGF-1R and PDL-1. Subsequent incubation with IGF-1R AS ODN resulted in a dose-dependent knockdown of this M2 population, suggesting the immunogenicity of the encapsulated TME (tumor microenvironment) treated with IGF-1R AS-ODN in the vaccine chamber. The vaccine paradigm was well tolerated and had favorable median survival.
[0131] Example 2 Vaccination of Newly Diagnosed Subjects with Glioblastoma We have demonstrated the biological efficacy of a vaccine protocol involving an autologous cellular vaccine delivered as part of a formulated combination containing a biodiffusion chamber implanted in patients with recurrent malignant gliomas who have failed standard treatment.
[0132] Example 2 describes the response to vaccination in newly diagnosed glioma patients, including implantation of 20 chambers for 24 or 48 hours and 10 chambers for 24 or 48 hours. In both cases, 2 μg of NOBEL was added to the chambers before irradiation in both cases. Significant improvements in both progression-free survival and overall survival were observed when compared to standard of care at the first interim analysis (Figure 9). This was most evident due to the performance of the higher dose cohort after vaccination. We first noted significantly higher peak and mean interferon-γ levels after vaccination in newly diagnosed patients compared to patients treated at relapse. In a study enrolling newly diagnosed glioma patients, we noted a marked and significant increase in IFN-γ with each vaccine dose escalation as measured by total serum measurements. The higher interferon-γ levels with longer implantation correlate roughly with the rate at which the antisense diffuses out of the biodiffusion chamber.
[0133] These data are summarized in Figure 10 and illustrate that autologous chamber vaccine induces antitumor responses in newly diagnosed glioblastoma patients. We further noted that increased IFNγ levels may represent a patient response to tumor antigens. If so, it may be a predictor of improved antitumor immunity and outcome. Finally, the more robust responses obtained in newly diagnosed GBM patients versus relapsed patients illustrates the influence of the subject's immune system and supports patient vaccination as a first-line therapy.
[0134] Example 3 Fully formulated chambers have greater adjuvant activity The fully formulated chambers, containing autologous tumor cells and other cells contained in the tumor microenvironment (TME), are treated with 4 mg / ml IGF-1R AS ODN for 6 hours prior to implantation, the treated TME is then encapsulated with exogenous addition of at least 2 μg IGF-1R AS ODN, and the chambers are then irradiated with 5 Gy of gamma irradiation.
[0135] We increased the number of chambers, i.e., the number of IGF-1R AS each patient received. The ODN dose was increased compared to previous studies, i.e. doubling the number of implanted chambers doubles the amount of antisense that can diffuse out of the implanted chambers, i.e. the AS ODN dose was approximately 40 μg divided among 20 chambers.
[0136] Antisense sequences, especially their palindromic CpG motifs, and direct mixture with glioma cells effectively initiate antitumor immunity in situ. Of note, sense sequences with identical palindromic CpG motifs are ineffective in the vaccine paradigm. In addition, antisense sequences must be directly mixed with tumor inoculum to obtain a satisfactory response. The dose of IGF-1R AS ODN that inhibits M2 monocyte polarization is at least an order of magnitude lower than the dose required to downregulate IGF-1R expression.
[0137] In preclinical animal modeling, we evaluated the efficacy of various antigen preparations to restimulate therapeutic IFN-γ-producing CD4+ T cells from C57 BL6 mice that had rejected allogeneic syngeneic GL261 glioma cells implanted in the cerebral cortex following vaccination. CD4+ T cells were isolated from the spleens of these animals using conventional methods and added to bone marrow-derived dendritic cells from antigen-naive mice that had been incubated with various GL261 antigen preparations. Antigens recovered from the soluble fraction of fully formulated vaccine chambers containing autologous tumor cells, exogenous antisense, and irradiation induced significantly greater numbers of IFN-γ-producing CD4+ T cells than incomplete formulations.
[0138] Analysis of chambers containing various GL261 preparations implanted in the flanks of C57BL / 6 mice for 24 hours also provides evidence that the fully formulated chambers are the most immunogenic. Although IGF-1R AS ODN and irradiation each alone elicited cytokine elevations above PBS controls, 16 of 32 cytokines were significantly elevated above all other variables, including irradiation alone, when combined with IGF-1R AS ODN. At least 11 of these cytokines are associated with inflammatory responses, including IL-1β, IL-6, and TNF-α, which are commonly produced by the radiation-induced proinflammatory cytokine network.
[0139] The proinflammatory response to the fully formulated chamber was validated in our second phase 1 human trial in patients with recurrent glioblastoma. We noted two distinct survival cohorts after vaccination and established an association between immune fitness, the proinflammatory response after vaccination, and longer survival (unpublished observations). In particular, we noted a higher CD4:CD8 ratio after vaccination in the longer cohort, which we interpreted as local TLR9DC activation directing CD4+ cells in the direction of a Th1 phenotype, possibly further complemented by irradiation of tumor cells within the chamber.
[0140] Example 4 Fully formulated chambers in naïve mice In naive C57B6 mice, implantation of fully formulated vaccine chambers was significantly more effective at eliciting an early immune response than partially formulated chambers. Mice were vaccinated in the flank with one chamber for 24 hours. Chamber contents varied from no contents (PBS) to partially formulated chambers (GL261 glioma cells alone, GL261 with AS ODN, or GL261 with 5 Gy irradiation) and fully formulated chambers (GL261, AS ODN, and irradiation).
[0141] As shown in FIG. 11, greater production of proinflammatory cytokines was observed in mice implanted with fully formulated vaccine chambers compared to mice implanted with partially formulated vaccine chambers (i.e., vaccine chambers containing tumor cells but not antisense molecules).
[0142] Example 5 Dose-dependent dendritic cell activation in normal samples by IGF-1R AS ODN Using PBMC from two normal donor sources, we have demonstrated that NOBEL antisense as well as a previously used sequence (an 18-mer DWA two codons upstream of the NOBEL sequence; Andrews et al., 2001, Results of a pilot study involving the use of an antisense oligodeoxynucleotide directed against the insulin-like growth factor type I receptor in malignant astrocytomas). We assessed dose-dependent DC activation by IL-16 (described in "J Clin Oncol 19:1989-2189"), a novel IL-16 receptor agonist (GAA) inhibitor of DC proliferation and activation in mice.
[0143] PBMCs were incubated with the antisense sequence together with the sense sequence for NOBEL antisense overnight, and then analyzed by flow cytometry, gating on the CD123+, CD68+ activated DC population. As shown in Figure 12, NOBEL antisense caused dose-dependent DC activation that was significantly different from the non-stimulation control or NOBEL sense sequence and more effective than the DWA sequence. These data illustrate that the NOBEL sequence is particularly effective compared to other IGF-1 AS.
[0144] Example 6 In vitro T cell responses based on the contents of fully formulated chambers using T cells derived from vaccinated mice Considering the small pore size (100 nm) of the diffusion chamber, we hypothesized that exosomes were a likely source of tumor antigens diffusing through the chamber membrane upon implantation. Vaccination of C57B6 mice by flank injection with GL261 glioma cells and IGF-1R AS ODN fully protected them from subsequent intraparenchymal tumor challenge. We assessed vaccinated tumor-treating T cell immune reactivity derived from these mice against the contents of the fully formulated chambers by Elispot assay for IFNγ using the following antigen sources: 1 / centrifugation supernatants of chambers loaded with GL261 cells and IGF-1R AS ODN, irradiated, and implanted in the flank of mice for 24 h; 2 / centrifugation supernatants of chambers similarly prepared by overnight incubation in isotonic PBS medium at 37°C; 3 / exosomes prepared from GL261 cells. These antigen preparations were added to dendritic cells from tumor antigen naïve mice and then added to CD4 T cells isolated from the spleens of GL261-immunized mice or incubated overnight before addition to T cells for antigen processing and presentation. After 24 hours of co-culture of T cells with antigen and dendritic cells, the number of IFNγ-producing CD4 T cells was quantified in an Elispot assay. Chamber contents were compared to various dilutions of GL261 exosomes. Elispot results revealed that robust IFN-γ responses were assayed by antigen presentation only when chamber contents recovered from the 24-hour PBS incubation were used. Neither the implanted chamber nor the control Elispot assay containing dendritic cells without preincubation produced significant differences with exosomes. The data reveal that antigens derived from the TME are not essentially exosomal, but are most abundantly produced in the irradiated chamber containing tumor cells and IGF-1R AS ODN, are consumed upon implantation, and require antigen presentation by DCs. The results are summarized in Figure 13.
[0145] Example 7 Biphasic dose response for M2 monocyte / macrophage polarization To determine the optimal dose of NOBEL IGF-1R AS-ODN to inhibit M2 polarization in vivo, 106GL261 cells were injected into the flank of C57BL / 6 mice. Twenty days later, mice were given a single 0.75 or 0.075 mg dose of NOBEL IGF-1R AS-ODN intraperitoneally. Mice were then followed for tumor development.
[0146] Dose escalation of NOBEL antisense on M2 development in vivo produced a paradoxical biphasic response. Both extreme doses of the dose-seeking escalation resulted in knockdown of M2 monocytes, while intermediate doses actually stimulate M2 monocyte development. US Patent Publication No. 2017 / 0056430 showed that a single dose of 4 mg was highly effective in a similar experiment. In this experiment, a single dose of 0.075 mg was highly effective, while an intermediate dose of 0.75 mg was unexpectedly less effective. (Figure 17). Without being limited, bound, or constrained by any particular theory or mechanism of action, we hypothesize that the biphasic effect may be a consequence of the immune stimulatory attributes of the NOBEL sequence.
[0147] The doses effective in inhibiting monocyte polarization by AS ODNs are considerably less than those required to downregulate IGF-1R translation according to Watson-Crick base pairing rules. Notably, in vitro doses equivalent to 0.075 mg dose / mouse have no effect on cells already expressing IGF-1R. In vitro recruitment experiments with human monocytes reveal substantial differences in the ability of IGF-1R AS-ODN treatment to prevent polarization as opposed to affecting the phenotype or function of polarized M2 monocytes.
[0148] As shown in Figure 14, the lowest dose achieved the same efficacy as the highest dose, suggesting a complex dynamic between NOBEL antisense and M2 development. Based on the monophasic response to DC activation, the ideal chamber dose would be at the point of maximum DC activation.
[0149] Example 8 Dose-response curve for inhibiting monocyte polarization with NOBEL We performed NOBEL antisense titrations to levels within the full range of concentrations feasible for local diffusion delivery from the implanted chamber.
[0150] As shown in Figure 15, allogeneic naive monocytes from three normal PBMC collections were incubated overnight with six different sera from glioblastoma patients in the presence or absence of various concentrations of IGF-1R specific AS-ODN (NOBEL). Each colored dot represents a serum from an individual glioblastoma patient. Expression of markers including CD163 was assessed by flow cytometry. CD163 expression levels are expressed as the mean fluorescence index of cells stained with fluorescently conjugated CD163 antibody.
[0151] Each patient's serum induced differentiation of M0 monocytes into M2CD163 phenotype accompanied by upregulation of both IGF-1R and PDL-1. M0 cells cultured without patient serum (control) maintained very low levels of CD163, whereas overnight incubation in serum strongly induced expression of this M2 marker (untreated). Addition of IGF-1R-specific AS-ODN to the culture medium inhibited M0-M2 polarization as suggested by a dose-dependent increase in CD163 expression. We noted a fading trend starting at 100 pg until reaching a significant inhibitory level at 1 μg. These data confirm that excess antisense diffused out of the chamber can promote the initiation of Th1 responses at an early stage of innate immunity.
[0152] Example 9 Prevention of the emergence of anti-inflammatory M2 monocytes in mice implanted with CL261 glioma cells C57BL / 6 mice implanted with GL261 glioma cells develop tumors in parallel with elevated numbers of circulating CD163 expressing M2 monocytes. We hypothesized that glioma cells produce factors that trigger monocyte recruitment and polarization into M2. These cells then infiltrate tumor tissue where their products promote tumor progression. Systemic treatment with IGF-1R AS-ODNs may inhibit tumor formation by preventing the emergence of M2 cells.
[0153] 10 in the flank of C57BL / 6 mice 6 GL261 cells were implanted and 20 days later a single dose of 4 mg NOBEL IGF-1R AS-ODN was given intraperitoneally or intravenously. After 14 days, peripheral blood was obtained from the animals and circulating monocytes were evaluated by flow cytometry for CD163 expression. Figure 18 shows a histogram of the number of cells expressing CD163 (right peak), where the line marked "vehicle" represents the implanted mice treated with PBS vehicle and the line marked "AS-ODN" represents the implanted mice treated with AS-ODN. The data show that CD163+ cells are significantly reduced. The appearance of cells expressing CD204 or CD206 was similarly inhibited (data not shown). Peripheral blood from non-implanted normal mice did not contain cells with high levels of CD163, CD204, or CD206 (data not shown).
[0154] Example 10 Systemic IGF-1R AS-ODN treatment of mice implanted with glioma cells in the flank prevents tumor development.
[0155] 10 in the flank of C57BL / 6 mice 6GL261 cells were implanted and 20 days later, prior to the appearance of circulating CD163-positive monocytes, a single 4 mg dose of NOBEL IGF-1R AS-ODN was given intraperitoneally or intravenously. Another group of C57BL / 6 mice was injected with PBS as a control. Tumor development in both groups of mice was then followed. As shown in Figure 19, there was a significant difference in tumor incidence between the treated and untreated groups, and NOBEL-treated mice were significantly more likely to remain tumor-free ( * =p<0.05).
[0156] Example 11 Systemic IGF-1R AS-ODN inhibition of flank glioma tumor growth is independent of antitumor immunity.
[0157] Tbet is a T cell-associated transcription factor, and Tbet-deficient mice lack the ability to mount anti-glioma immunity. To test whether IGF-1R AS-ODN inhibition of flank glioma tumor growth was independent of anti-tumor immunity, we transfected 10 glioma cells into the flanks of Tbet-deficient mice on a C57BL / 6 background. 6 GL261 cells were implanted and 20 days later, a single 4 mg dose of NOBEL IGF-1R AS-ODN was given intraperitoneally or intravenously. Mice were then followed for tumor development.
[0158] As shown in Figure 20, despite the inability of Tbet-deficient mice to mount therapeutic anti-glioma immunity, there was a significant difference in tumor incidence between PBS-treated and NOBEL IGF-1R AS-ODN-treated mice ( * =p<0.05).
[0159] Example 12 Targeting nestin+ stem cells in chambers with NOBEL We have shown that nestin+ stem cells can be knocked down in a dose-dependent manner with NOBEL antisense in vitro and further showed that these cells are eliminated from the TME after autologous cell vaccination (Study 14379-101, unpublished observations). As a stem cell that is part of the glioma tumor microenvironment (TME), its selective knockout has clear therapeutic benefits. In a morphology that supports embryonic radial glial cells, this cell, with its design and long processes, can function as a scaffold that allows glioma cells to be positioned throughout the brain. Its removal together with CD163TAMs can reverse the invasiveness of this tumor and even tumor growth itself. As a targetable cell in the chamber, due to its embryonic origin, antigens derived from this cell can be highly immunogenic and tumor-specific. Nestin is expressed primarily in neural progenitor / stem cells and is located in the cytoplasm as type VI intermediate filaments. It has also been identified as a surface protein and biomarker for glioma stem cells. Therefore, by enriching this population by bead selection, it may be possible to increase the proinflammatory titer of the chamber. Jin et al., Cell surface Nestin is a biomarker for glioma stem cells. See, “A novel method for the development of glioma stem cells,” Biochem Biophys Res Commun., April 19, 2013, Vol. 433, No. 4, pp. 496-501.
[0160] Example 13 Effects of irradiation on chamber preparations In preparing the fully formulated chamber, autologous tumor cells (i.e., freshly resected tumor tissue) are plated in serum-free culture and optionally treated with a first amount of IGF-1R AS ODN followed by ex vivo irradiation (FIGS. 1f and 1g). A second amount of IGF-1R AS ODN is added to the chamber prior to irradiation.
[0161] Since autologous vaccination involves irradiation of the combination at a site distant from the tumor prior to implantation, and our data support an immune response with tumor regression, these data support a novel abscopal effect. Typically, the abscopal effect is due to the activation of antitumor immunity following in situ irradiation of the target tumor, which results in tumor regression at a site distant from the irradiation. In this particular formulation, the addition of exogenous antisense with CpG motifs to the chamber and subsequent treatment with gamma irradiation has been shown to upregulate genes involved in memory T cell activation, proliferation, and survival. Such formulations also prevent the activation of genes involved in Treg development and induction of immune tolerance. Besides, downregulation of IGF-1R enhances the radiosensitivity of cells overexpressing this surface receptor. Co-incubation with IGF-1R AS ODN also promotes apoptosis of target tumor cells (in vivo only) and tumor-associated M2 macrophages. Irradiation with 5 Gy results in the death of all encapsulated cells and triggers the release of endogenous danger signals known as danger / damage-associated molecular patterns (or DAMPS), which complement the presentation of tumor antigens released from dead tumor cells.
[0162] Example 14 Explanted chambers as a means to identify pro-inflammatory agents for future chamber preparations Explanted biodiffusion chambers harvested after application as depot antigen devices also serve as repositories documenting early immune responses confirmed in preclinical mouse models and human studies. Characterization of chamber contents with appropriate PBS (dummy) chamber controls provides clues to understand both host immune responses (inward diffusion of cytokines / chemokines over dummy controls) as well as production of cytokines / chemokines / DAMPS by cells within the chamber (undetectable in dummy chambers). The consistent presence of a set of cytokines promises exogenous addition of such cytokines to future formulations. As an example, both CCL21 and CXCL are elevated in vaccine chambers over PBS chambers and synergize with CpG adjuvant to enhance DC migratory and T cell stimulatory capacity in vaccination paradigms. See Figures 16 and 17. Exogenous addition of such cytokines to chamber formulations may enhance early Th-1 responses.
[0163] Example 15 Optimal ratio of cells to IGF-1R AS ODN in the chamber results in higher cytokine levels Patients were vaccinated for 48 hours with 20 chambers each containing irradiated tumor cells and AS NOBEL ODN (2 μg). In both cases, patients received the required Thomas Jefferson University Hospital (TJUH) standard of care (SOC) therapy. Progression-free survival (P-FS) (i.e., patients who survive without cancer development or remission) and overall survival (OS) were subsequently determined at certain time points. Figures 21a-c illustrate responses at certain time points. Figures 24-27 illustrate patient outcomes, comparing patients who received treatment ("vaccination") with those who received standard of care ("SOC") in the past. To determine the optimal ratio of cells to IGF-1R AS ODN in the chambers, we measured proinflammatory cytokine levels in the serum of patients after vaccination and compared these cytokine levels to cell counts in tumor tissue removed from each patient.
[0164] Initially, a significant dose-dependent increase in proinflammatory cytokines was observed in the serum of patients, as shown in Figures 21a-c. Total levels of IFN-γ were highly significantly elevated in the highest dose cohort. Levels of IL12 and TNFα were also elevated in this cohort.
[0165] Each of the three cytokine values for each patient from days 14 to 42 were pooled and plotted against the mean values of IFNγ, IL12, and TNFα. Two polynomial plots with similar fit degrees of 4 and 5 revealed peak proinflammatory cytokine values (Figures 21d-f).
[0166] Figures 24a and 24b show Kaplan-Meier curves illustrating progression-free survival and overall survival for the intent-to-treat group as a whole. In vaccinated patients, over 35% survived 20 months progression-free. In contrast, less than 10% of SoC-treated patients showed 20 months progression-free survival. Overall survival was also significantly improved with about 40% of patients surviving beyond 25 months, while SOC treatment shows about 5% survival at that time point. Figure 24b.
[0167] Figures 25a and 25b show survival data for patients with a median age of 61.5 years, matched for 12 / 18 female / male ratios in both groups. Again, the data illustrates significantly improved survival at various time points.
[0168] During the study, some patients dropped out of the protocol and others died of unrelated causes. Figures 26a and 26b illustrate survival data in the absence of data for dropped out patients or patients who died of other causes. Again, vaccinated patients perform significantly better. Certain patients were unable to complete standard care. Data excluding these patients are shown in Figures 27a and 27b. These data confirm that vaccination is effective when standard care protocols are not followed.
[0169] Figures 28a and 28b illustrate the effect of the number of administered cells on the patient response. IFN-γ levels correspond to the subject's response. Higher IFN-γ levels are associated with better patient immune response and therefore anti-tumor response. In this case, we optimized the response by determining the appropriate titration number of cells. The peak response is near number 20 (i.e., 20 million cells) distributed into 20 chambers. Thus, the peak response is about 1 million cells / chamber, but excellent responses are obtained with about 15-25 million cells distributed and implanted into each of the 20 chambers, i.e., in the range of 750,000 cells to 1,250,000 cells / chamber. These data demonstrate the effectiveness of the optimized vaccination protocol.
[0170] Example 16 Enhancement of anti-tumor responses mediated by vaccination with cell populations enriched for nestin expression The production of antigen by IGF-1R-treated glioma cells in the chambers was tested ex vivo using glioma immune T cells isolated from C57BL / 6 mice that had been immunized using the chamber paradigm and challenged intracranially with congenic GL261 cells to detect the presence of antigen. Mice serving as immune T cell donors were immunized as follows: fully formulated chambers loaded with GL261 cells and antisense were implanted in the flank for 24 hours. Chambers without antisense containing cells alone were also implanted as a control for antisense activity. Mice were bled throughout the experiment and sera were tested for antibody reactivity against GL261 cells (Figures 30c, 30d). Thirty-five days after chamber implantation, mice were stereotactically challenged intracranially with GL261 cells. Survival and clinical signs of disease of individual mouse groups were monitored for at least 40 days after challenge. Survival and clinical disease scores are shown in Figures 30a and 30b, respectively.
[0171] CD4+ T cells were isolated from the spleens of immunized mice using magnetic beads. Naive dendritic cells (DCs) used to present antigen to immunized CD4 T cells were isolated from the bone marrow of autologous non-immunized C57BL / 6 mice. DCs were pulsed by overnight incubation with GL261 antigen recovered from GL261 cells cultured overnight in chambers under various conditions to mirror what happens when similar chambers are implanted in subjects. The chambers contained either GL261 cells alone or GL261 combined with three different doses of antisense in phosphate-buffered saline (PBS). Different doses of antisense were added to antigen preparations from G261 cells cultured without antisense to determine whether the antisense content or the effect of antisense in the chamber is responsible for optimal antigen production. IFNγ production, considered a primary measure of antitumor cell immunity, was used to evaluate the stimulatory effect of various antigen preparations on T cell activation. As shown in Figure 29a, the specific number of responding cells quantified by ELISPOT assay is shown.
[0172] To stimulate antigen production, we followed an in-vivo clinical chamber paradigm. Approximately 1 million ex vivo GL261 tumor cells were injected into the chambers alone or in combination with the indicated antisense concentrations and incubated overnight in the chambers (placed in PBS). The next day, the chamber contents were extracted and used to pulse naïve dendritic cells. Chamber contents that were not treated overnight with antisense were added to dendritic cells with the indicated amount of NOBEL. Dendritic cells were left in a naïve state as controls. After overnight pulsing with antigen, dendritic cells were harvested and incubated overnight with T cells from immunized animals in cell culture plates coated with an Elipspot detection antibody against the cytokine IFNγ. After overnight incubation, the coated plates were processed for development and the number of IFNγ-producing T cells that responded to each antigen was counted.
[0173] As shown in Figure 29b, tumor antigen was detected in material removed from chambers containing GL261 cells + antisense, but not in material from chambers cultured with cells alone, even though antisense was added to the material when pulsing the DCs, indicating that the presence of antisense and glioma cells in the chamber is required for production of the immunostimulatory tumor antigen.
[0174] To test the effect of overnight treatment with antisense, we also incubated cells overnight with 4 mg of antisense before adding cells to the chamber. GL261 cells were plated in petri dishes and treated overnight with 4 mg NOBEL per million cells or left untreated. Cells were then harvested and 1 million cells and 2 μg NOBEL per chamber were placed in the chamber. Chambers were then incubated overnight in PBS and the contents were extracted the next day. Dendritic cells were then pulsed with the chamber contents and IFNγ secretion was measured as described above.
[0175] As shown in Figure 29c, overnight treatment of GL261 cells with antisense enhances the amount of antigen produced by these cells, as detected by an increase in the number of tumor immune T cells producing IFNγ when DCs were pulsed with GL261 cells treated overnight with 4 mg antisense.
[0176] To determine whether the nestin-expressing glioma tumor cell subset is associated with enhanced immunogenicity, mice were immunized with or without IMV-001 (NOBEL) antisense chambers containing GL261 cells grown under conditions that yielded higher versus lower levels of the protein nestin. Long-term protection against subsequent intracranial implantation of GL261 glioma cells (Figures 30a, 30b) as well as production of GL261 antibodies by the mice (Figures 30c, 30d) were assessed.
[0177] Chambers containing GL261 cells with high levels of nestin and antisense induced immune protection significantly better than chambers with similar cells without antisense or than chambers with low nestin GL261 with or without antisense. Also, GL261 cells expressing high levels of nestin placed in chambers were better than those containing low nestin levels at inducing GL261-specific antibody production in mice. However, the inclusion of antisense had minimal effect on antibody production.
[0178] Incorporation by Reference All patents and publications referenced herein are hereby incorporated by reference in their entirety. (Additional Note) The technical ideas that can be understood from the above-described embodiment and modified examples will be described. [Item 1] 1. A method of making a biodiffusion chamber for implantation into a subject having cancer, comprising: (a) encapsulating tumor cells obtained from the subject in the biodiffusion chamber in the presence of an IGF-1R AS ODN, wherein the ratio of tumor cells to IGF-1R AS ODN in the chamber is about 3.75×10 5 :1μg~approx.6.25×10 5 encapsulating the tumor cells in the range of 1 μg, the tumor cells being obtained from the subject using a tissue morcellator; (b) irradiating the biodiffusion chamber. [Item 2] 2. The method of claim 1, wherein the tumor cells are dispersed prior to enclosing the tumor cells in the chamber. [Item 3] 3. The method of claim 1 or 2, wherein the cells are not exposed to temperatures above body temperature upon removal from the subject. [Item 4] 4. The method of any one of items 1 to 3, wherein the cells are not exposed to a temperature above 37° C. upon removal from the subject. [Item 5] 5. The method of any one of items 1 to 4, wherein the tissue morcellator comprises a sterile trap. [Item 6] 6. The method of any one of claims 1 to 5, wherein the tissue morcellator comprises a high speed reciprocating inner cannula within a stationary outer cannula. [Item 7] 7. The method of claim 6, wherein the outer cannula includes a side aperture, and further wherein the tumor cells are drawn into the side aperture by electronically controlled variable suction. [Item 8] 8. The method of any one of items 1 to 7, wherein the tumor cells are enriched for nestin expression prior to being placed in the biodiffusion chamber. [Item 9] 9. The method of any one of items 1 to 8, wherein the tumor cells in the chamber are enriched for adherent cells compared to the tumor cells obtained from the subject. [Item 10] 10. The method of claim 9, wherein the tumor cells consist essentially of adherent cells. [Item 11] 11. The method according to any one of items 1 to 10, wherein the cells are treated with an IGF-1R AS ODN prior to enclosure in the chamber. [Item 12] Item 12. The method of item 11, wherein the IGF-1R AS ODN is present at about 2 mg to about 6 mg / 1 million cells upon said treatment prior to encapsulation. [Item 13] 13. The method of claim 12, wherein the IGF-1R AS ODN is present at about 4 mg / million cells during the treatment prior to encapsulation. [Item 14] 12. The method of claim 11, wherein said treatment with IGF-1R AS ODN prior to encapsulation is for up to about 18 hours. [Item 15] Item 12. The method according to item 11, wherein the treatment with the IGF-1R AS ODN prior to encapsulation lasts for about 12 hours to about 18 hours. [Item 16] The method of claim 1, wherein the IGF-1R AS ODN has the sequence of SEQ ID NO:1. [Item 17] 2. The chamber of claim 1, wherein the IGF-1R AS ODN in the chamber is present at about 2 μg. [Item 18] 2. The method according to item 1, wherein the irradiated tumor cells are present in the range of about 750,000 to about 1,250,000 per chamber. [Item 19] 20. The method of claim 18, wherein the irradiated tumor cells are present at about 1,000,000 / chamber. [Item 20] 2. A method of treating a subject having cancer comprising implanting in said subject two or more biodiffusion chambers according to item 1. [Item 21] 21. The method of claim 20, wherein about 10 to about 30 biodiffusion chambers are implanted in the subject. [Item 22] 22. The method of claim 21, wherein about 10 to about 20 biodiffusion chambers are implanted in the subject. [Item 23] 23. The method of any one of items 20 to 22, wherein the diffusion chamber is implanted in the subject for about 48 hours. [Item 24] 24. The method according to any one of items 20 to 23, wherein the cancer is brain cancer. [Item 25] 25. The method of claim 24, wherein the brain cancer is selected from grade II astrocytoma, grade AIII astrocytoma, grade AIII-G astrocytoma, and grade IV astrocytoma (glioblastoma multiforme). [Item 26] 26. The method of claim 25, wherein the brain cancer is grade IV astrocytoma (glioblastoma multiforme). [Item 27] 27. The method according to any one of items 20 to 26, wherein the method is carried out without chemotherapy, without radiation therapy, or without both. [Item 28] 21. The method of item 20, comprising a second implantation of the chamber following the first implantation. [Item 29] 29. The method of claim 28, wherein the second implantation uses tumor cells obtained from the subject simultaneously with the cells obtained from the first administration. [Item 30] 29. The method of claim 28, wherein the second implantation uses tumor cells obtained from the subject after the first treatment has ended, and the tumor has recurred or failed to respond to the first treatment. [Item 31] 1. A method of vaccinating a subject with brain cancer, comprising: (i) obtaining minced tumor tissue from said subject; (ii) collecting the minced tissue in a sterile trap; (iii) collecting adherent cells from the minced tissue; (iv) encapsulating the collected cells in a biodiffusion chamber together with an insulin-like growth factor receptor 1 antisense oligodeoxynucleotide (IGF-1R AS ODN) having the sequence of SEQ ID NO:1, the chamber containing about 750,000 to about 1,250,000 tumor cells; (v) irradiating the chamber; and (vi) implanting the chamber in the subject; The method of claim 1, wherein an immune response against the brain cancer is obtained. [Item 32] 32. The method of claim 31, comprising treating the adherent cells with IGF-1R AS ODN for up to 18 hours prior to encapsulation. [Item 33] 33. The method of item 31 or 32, wherein the subject is vaccinated with 20 chambers over a period of about 48 hours. [Item 34] The ratio of tumor cells to AS ODN in the chamber was about 3.75×10 5 Cells: 1 μg AS ODN ~ approx. 6.25 x 10 5 The method according to any one of items 31 to 33, wherein the cell concentration is within 1 μg AS ODN. [Item 35] 35. The method according to any one of items 31 to 34, wherein the IGF-1R AS ODN is present at about 1 μg to about 5 μg. [Item 36] 36. The method of any one of items 31 to 35, wherein the IGF-1R AS ODN is present at about 2 μg. [Item 37] 37. The method of any one of items 31 to 36, wherein the tumor cells are not exposed to a temperature above body temperature. [Item 38] about 10 6 37. The method according to any one of items 31 to 36, wherein tumor cells are present in the chamber. [Item 39] 32. The method of claim 31, wherein the brain cancer is selected from grade II astrocytoma, grade AIII astrocytoma, grade AIII-G astrocytoma, and grade IV astrocytoma (glioblastoma multiforme). [Item 40] 40. The method of claim 39, wherein the brain cancer is grade IV astrocytoma (glioblastoma multiforme). [Item 41] 1. A biodiffusion chamber for implantation in a subject having brain cancer, comprising: (a) irradiated tumor cells, the tumor cells comprise adherent cells obtained from tumor tissue of the subject; irradiated tumor cells, wherein the tumor cells are pre-incubated with insulin-like growth factor receptor 1 antisense oligodeoxynucleotide (IGF-1R AS ODN) prior to inclusion in the chamber; (b) an irradiated IGF-1R AS ODN, and an irradiated IGF-1R AS ODN, wherein the IGF-1R AS ODN has the sequence of SEQ ID NO:1; The ratio of tumor cells to IGF-1R AS ODN in the chamber was about 3.75×10 5 Cells: 1 μg AS ODN ~ approx. 6.25 x 10 5 Cells: Biodiffusion chamber, within 1 μg AS ODN. [Item 42] Item 42. The biodiffusion chamber of item 41, wherein the IGF-1R AS ODN is present at about 1 to about 5 μg. [Item 43] 42. The biodiffusion chamber of item 41, wherein the IGF-1R AS ODN is present at about 2 μg. [Item 44] 44. The biodiffusion chamber of any one of items 41 to 43, wherein the tumor cells in the chamber are enriched for nestin-positive cells compared to the tumor tissue obtained from the subject. [Item 45] about 10 6 45. The biodiffusion chamber according to any one of items 41 to 44, wherein tumor cells are present in the chamber. [Item 46] 46. The biodiffusion chamber according to any one of items 41 to 45, wherein the tumor cells are obtained from the subject using a tissue morcellator. [Item 47] 47. The biodiffusion chamber of claim 46, wherein the tissue morcellator comprises a high speed reciprocating inner cannula within a stationary outer cannula. [Item 48] Item 48. The biodiffusion chamber of item 47, wherein the outer cannula includes a side aperture, and further wherein the tumor cells are drawn into the side aperture by electronically controlled variable suction. [Item 49] 47. The biodiffusion chamber of claim 46, wherein the tissue morcellator does not generate heat when obtaining the tumor tissue from the subject. [Item 50] 49. The biodiffusion chamber according to any one of items 41 to 48, wherein the tumor cells are present in the chamber in a range of about 750,000 to about 1,250,000. [Item 51] The ratio of tumor cells to AS ODN in the chamber was about 5.0×10 5 The biodiffusion chamber according to any one of items 41 to 49, wherein the cell concentration is 1 μg.
Claims
1. A method for producing a vaccine for vaccinating a subject with brain cancer, comprising: (i) collecting cells from tumor tissue removed from the subject; (ii) encapsulating the collected cells in a biodiffusion chamber together with an insulin-like growth factor receptor 1 antisense oligodeoxynucleotide (IGF-1R AS ODN) having the sequence of SEQ ID NO: 1; (iii) irradiating the biodiffusion chamber; The method wherein the biodiffusion chamber is implanted in the subject, and an immune response against the brain cancer is obtained.
2. The method of claim 1, comprising treating the collected cells with IGF-1R AS ODN for up to 18 hours prior to encapsulation.
3. The method of claim 1, wherein the subject is vaccinated in 20 biodiffusion chambers over a period of approximately 48 hours.
4. The method of claim 1, wherein the biodiffusion chamber contains about 1 x 10 4 to about 5 x 10 6 tumor cells.
5. The method of claim 4, wherein the biodiffusion chamber contains about 1 x 10 5 to about 1.5 x 10 6 tumor cells.
6. The method of claim 5, wherein the biodiffusion chamber contains approximately 10 6 tumor cells.
7. The method of claim 1, wherein the biodiffusion chamber contains about 1 μg to about 5 μg of IGF-1R AS ODN.
8. The method of claim 7, wherein the biodiffusion chamber contains about 4 μg or about 2 μg of IGF-1R AS ODN.
9. The method of claim 1, wherein the ratio of tumor cells to IGF-1R AS ODN in the biodiffusion chamber ranges from about 3.75×10 5 cells:1 μg AS ODN to about 6.25×10 5 cells:1 μg AS ODN.
10. The method of claim 1, wherein the tumor cells are not exposed to temperatures above body temperature.
11. The method of claim 1, wherein the brain cancer is selected from grade II astrocytoma, grade AIII astrocytoma, grade AIII-G astrocytoma, and grade IV astrocytoma (glioblastoma multiforme).
12. A biodiffusion chamber for implantation in a subject having brain cancer, comprising: (a) irradiated tumor cells, including cells obtained from tumor tissue of the subject; and (b) an irradiated insulin-like growth factor receptor 1 antisense oligodeoxynucleotide (IGF-1R AS ODN), wherein said IGF-1R AS ODN has the sequence of SEQ ID NO:
1.
13. The biodiffusion chamber of claim 12, wherein tumor cells are preincubated with IGF-1R AS ODN prior to encapsulation within the chamber.
14. The biodiffusion chamber of claim 12, wherein the biodiffusion chamber contains about 1 x 10 4 to about 5 x 10 6 tumor cells.
15. The biodiffusion chamber of claim 14, wherein the biodiffusion chamber contains about 1 x 10 5 to about 1.5 x 10 6 tumor cells.
16. The biodiffusion chamber of claim 15, wherein the biodiffusion chamber contains approximately 10 6 tumor cells.
17. The biodiffusion chamber of claim 12, wherein the biodiffusion chamber contains about 1 μg to about 5 μg of IGF-1R AS ODN.
18. The biodiffusion chamber of claim 17, wherein the biodiffusion chamber contains about 4 μg or about 2 μg of IGF-1R AS ODN.
19. The biodiffusion chamber of claim 12, wherein the ratio of tumor cells to AS ODN in the biodiffusion chamber ranges from about 3.75 x 10 5 cells:1 μg AS ODN to about 6.25 x 10 5 cells:1 μg AS ODN.
20. The biodiffusion chamber of claim 12, wherein the brain cancer is selected from grade II astrocytoma, grade AIII astrocytoma, grade AIII-G astrocytoma, and grade IV astrocytoma (glioblastoma multiforme).