NANT cancer vaccine
By employing a coordinated treatment regimen of low-dose chemotherapy, immunomodulatory agents, and targeted vaccines, the immunosuppressive tumor microenvironment is overcome, enabling effective induction of immunogenic cell death and restoration of the immune system's equilibrium phase for sustained cancer remission.
Patent Information
- Application Number
- JP2021107797
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-03-20
- Filing Date
- 2021-06-29
- Publication Date
- 2025-09-01
- Estimated Expiration
- 2037-06-30
AI Technical Summary
Conventional cancer treatments, such as maximum tolerated dose chemotherapy and targeted therapies, impair the immune system, leading to an immunosuppressive tumor microenvironment that allows cancer cells to evade immune surveillance and promote metastasis, resulting in poor long-term prognosis.
A spatiotemporally orchestrated combination of low-dose metronomic chemotherapy, immunomodulatory agents, vaccines, and checkpoint inhibitors to modulate the tumor microenvironment, enhance immune responses, and induce immunogenic cell death, targeting patient-specific mutational patterns and tumor-associated antigens.
This approach reverses the immunosuppressive state of the tumor, inducing the elimination phase and maintaining the equilibrium phase, leading to sustained remission with reduced toxicity and improved long-term outcomes.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority to U.S. provisional patent applications having provisional application serial numbers 62 / 357,324, filed June 30, 2016, 62 / 371,665, filed August 5, 2016, 62 / 393,528, filed September 12, 2016, 62 / 404,753, filed October 5, 2016, 62 / 463,037, filed February 24, 2017, 62 / 474,034, filed March 20, 2017, and 62 / 473,207, filed March 17, 2017.
[0002] Technical Field The field of this invention is compositions and methods for treating cancer, particularly human cancer. [Background technology]
[0003] The background discussion includes information that may be useful in understanding the present invention. No admission is made that any of the information provided herein is prior art or relevant to the present claimed invention, or that any publication specifically or implicitly referenced is prior art.
[0004] All publications and patent applications herein are incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference. If the definition or use of a term in an incorporated reference is inconsistent with or contradicts the definition of that term provided herein, the definition of the term provided herein shall apply and the definition of the term in the reference shall not apply.
[0005] Recently, the immune system has been described as playing a dual role in cancer, as it can both prevent cancer development by detecting and eliminating tumor cells and promote cancer progression by selecting for tumor cells that can evade immune destruction. This paradoxical role of the immune system in cancer is also referred to as cancer immunoediting (Cancer immunoediting: integrating immunity's roles in cancer suppression and promotion. Science. 2011;331:1565-70). Immunoediting is thought to involve three phases: (1) the elimination phase, in which tumor cells are detected or eliminated by the immune system; (2) the equilibrium phase, in which cancer cell death is balanced by tumor growth; and (3) the escape phase, in which tumor cell variants evade immune defenses and rapidly proliferate.
[0006] Cancer cells utilize various mechanisms to evade recognition and destruction by immune cells (see, for example, "The immune system and cancer evasion strategies: therapeutic concepts." J Intern Med. 2016;279:541-62). Cancer cells often modulate the tumor microenvironment (TME) through the recruitment of regulatory T cells (Tregs), myeloid-derived suppressor cells (MDSCs), and suppressive macrophages (M2 macrophages). Cancer cells also evade the immune system by downregulating the expression of specific major histocompatibility complex (MHC) molecules, which are generally important for T cell recognition of tumor-associated antigens (TAAs).
[0007] Conventional, molecularly uninformed treatment regimens, such as maximum tolerated dose (MTD)-based chemotherapy, targeted therapy based on cancer marker signatures, and even monoclonal antibody therapy with high doses of radiation, impair the immune system, thereby leading to tolerogenic cell death. Unfortunately, tolerogenic tumor cell death allows cancers to evade immune surveillance, often promoting the selection and escape of multiple resistant allogeneic clones, resulting in metastasis and poor long-term prognosis in multiple tumor types. Thus, contrary to their intentions, conventional treatment regimens and current standard of care may inadvertently exacerbate and perpetuate the escape phase of cancer immunoediting, supporting an immunosuppressive tumor microenvironment and potentially leading to poor long-term prognosis in cancer patients. Prior art Figure 1 exemplarily illustrates the three phases of cancer immunoediting, depicting the pathway from healthy tissue to transformed cells and the factors and signaling molecules typically encountered.
[0008] Indeed, it is now recognized that the long-standing assumption that cancer cells grow linearly from a single, clonally dominant mutant cell is largely flawed, significantly impacting the prognosis for both high-dose chemotherapy and the administration of single-drug targeted therapy. It is now generally accepted that the majority of cancers arise and progress due to numerous mutations in cancer cells, and that cancer is a polyclonal disease. Furthermore, in most cases, each patient's cancer is unique in terms of the nature and number of mutations. Consequently, a paradoxical situation exists with current standard therapies: conventional MTD-based treatment regimens can induce short-term responses, but at the same time, they may drive patients from the equilibrium phase into an escape phase by shifting the tumor microenvironment to an immunosuppressive state. In fact, conventional treatment regimens and current standard therapies may inadvertently exacerbate and perpetuate the escape phase of tumor immunoediting by supporting an immunosuppressive tumor microenvironment, which results in poor long-term outcomes in cancer patients. This insight into the potential causes of limited long-term remission in most solid tumors following standard treatments necessitates a paradigm shift in MTD-based chemotherapy and the delivery of single-agent targeted therapies.
[0009] It is intriguing to note that the formation of transformed ("cancer") cells occurs periodically as part of the physiological process of reproduction, and that clinical evidence of cancer is staved off during this quiescent phase (equilibrium) by an intact innate immune system of natural killer cells (elimination phase) as a normal, everyday physiological phenomenon in humans. In this view, when the normal physiological state is overwhelmed by mutations or the immunosuppression of the tumor microenvironment, an escape phase occurs, resulting in clinical evidence of cancer.
[0010] However, to date, there is no therapeutic regimen that aims to return tumor cells or tissues from escape phase to equilibrium or even elimination phase.Thus, although many therapeutic compositions for cancer are known in the art, their use is usually limited to targeting specific defects in tumor cells or reducing checkpoint inhibition in a more general way.From a different perspective, the cancer treatments known so far generally focus on the parameters of selected tumor cells, and in this case, where tumor heterogeneity exists, recurrence is almost a fait accompli.
[0011] Consequently, there remains a need to provide therapeutic compositions and methods that address cancer immunoediting and attempt to return tumor cells or tumors from the escape phase to the equilibrium or even elimination phase in a patient-specific manner. Summary of the Invention
[0012] The present subject matter is directed to various uses of compositions and methods of cancer treatment in which various pharmaceutical compositions are administered to a patient to return tumor cells or tissues from a phase of escape to a phase of equilibrium or even elimination. Furthermore, at least some of the pharmaceutical compositions are specific to the patient and the patient's tumor, and achieve modulation of the tumor microenvironment in a coordinated manner to reduce immunosuppression in the tumor and increase stress and injury signals, induction and enhancement of innate and adaptive immune responses, and generation of immunological memory.
[0013] In one aspect of the present subject matter, the inventors contemplate a method of treating a tumor, comprising a step of reversing the tumor's escape phase by administering at least one first pharmaceutical composition that reduces immunosuppression in the tumor microenvironment. In another step, an elimination phase is induced by administering at least one second pharmaceutical composition that enhances the adaptive and / or innate immune response, and in a further step, the tumor's equilibrium phase is reversed by administering at least one second pharmaceutical composition that enhances the adaptive and / or innate immune response. H The immune response is maintained by administering at least one third pharmaceutical composition that biases the adaptive immune response toward the first response.
[0014] In a preferred embodiment, the first pharmaceutical composition comprises a drug conjugated to albumin (e.g., albumin of a nanoparticle). Desirably, the albumin may be further conjugated to an antibody or fragment thereof to further improve target specificity. Suitable drugs include bendamustine, bortezomib, cabazitaxel, chlorambucil, cisplatin, cyclophosphamide, dasatinib, docetaxel, doxorubicin, epirubicin, erlotinib, etoposide, everolimus, gefitinib, idarubicin, hydroxyurea, imatinib, lapatinib, melphalan, mitoxantrone, nilotinib, oxaliplatin, paclitaxel, pazopanib, pemetrexed, rapamycin, romidepsin, sorafenib, vemurafenib, and the like. Suitable antibodies or fragments thereof include ReoPro, Kadcyla, Campath, Simulect, Avastin, Benlysta, Adcetris, Cimzia, Erbitux, Prolia, Zevalin, Tysabri, Gazyva, Arzera, Xolair, Vectibix, Perjeta, Cyramza, Lucentis, Rituxan, Bexarotene (bexar), Yondelis, and Herceptin. Alternatively, the antibody or fragment thereof may specifically bind to a component of necrotic cells (e.g., nucleolin, DNA, etc.).
[0015] In further contemplated embodiments, a suitable first pharmaceutical composition may also include a drug that inhibits T-reg cells, myeloid-derived immunosuppressive cells, and / or M2 macrophages. Suitable drugs include cisplatin, gemcitabine, 5-fluorouracil, cyclophosphamide, doxorubicin, temozolomide, docetaxel, paclitaxel, trabectedin, and RP-182 (see, e.g., U.S. Pat. No. 9,492,499). Additionally or alternatively, the first pharmaceutical composition may include a vascular permeability enhancer (e.g., a portion of IL2).
[0016] With regard to suitable second pharmaceutical compositions, it is contemplated that the compositions may comprise recombinant bacterial, viral, or yeast vaccines. Most typically, such vaccines are genetically engineered to express tumor-associated antigens (e.g., MUC1, CEA, HER2, Brachyury, oncogenic Ras mutant proteins, etc.) and at least one parental and tumor-specific novel epitope. Additionally, the second pharmaceutical composition may also comprise natural killer cells (e.g., aNK cells, haNK cells, or taNK cells) and / or immunostimulatory cytokines (e.g., IL-2, IL-15, IL-17, IL-21, IL-15 superagonists).
[0017] A third contemplated pharmaceutical composition may include at least one of a checkpoint inhibitor (e.g., a PD-1 inhibitor or a CTLA4 inhibitor), an immunostimulatory cytokine (e.g., IL-2, IL-7, IL-15, IL-17, IL-21, IL-15, and superagonist versions thereof), a recombinant bacterial vaccine, a recombinant viral vaccine, and a recombinant yeast vaccine.
[0018] Additionally, contemplated methods may further include administering a low dose of radiation to the tumor.
[0019] In another aspect of the present subject matter, the inventors contemplate a method for treating a tumor. Such a method generally includes the steps of determining a chemotherapy treatment regimen using tumor omics information and tumor pathway analysis, and the further step of administering the chemotherapy treatment regimen at a low dose metronomic schedule. In yet another step, a second treatment regimen is administered using at least one pharmaceutical agent that selectively delivers drugs to the tumor microenvironment, and a third treatment regimen is administered using at least one vaccine composition based on the omics information. Additionally, a fourth treatment regimen is administered, including at least one of a checkpoint inhibitor and an immunostimulatory cytokine.
[0020] Preferably, the omics information includes at least one of whole genome sequence information, exome sequence information, transcriptome sequence information, and proteomics information, and / or the pathway analysis is a PARADIGM analysis. In particular, it should be understood that the chemotherapy treatment regimen is independent of the anatomical location of the tumor.
[0021] In further embodiments of such methods, the at least one pharmaceutical agent may comprise a drug bound to albumin, and the albumin is optionally nanoparticulate albumin. Suitable drugs include bendamustine, bortezomib, cabazitaxel, chlorambucil, cisplatin, cyclophosphamide, dasatinib, docetaxel, doxorubicin, epirubicin, erlotinib, etoposide, everolimus, gefitinib, idarubicin, hydroxyurea, imatinib, lapatinib, melphalan, mitoxantrone, nilotinib, oxaliplatin, paclitaxel, pazopanib, pemetrexed, rapamycin, romidepsin, sorafenib, vemurafenib, sunitinib, teniposide, vinblastine, vinorelbine, and vincristine. If desired, the agent may further comprise an antibody or fragment thereof that is bound to albumin; preferred antibodies and fragments thereof include ReoPro, Kadcyla, Cambus, Simulect, Avastin, Benlysta, Adcetris, Cimzia, Erbitux, Prolia, Zevalin, Tysabri, Gazyva, Arzera, Xolair, Vectibix, Perjeta, Cyramza, Lucentis, Rituxan, Bexarotene (Bexar), Yondelis, and Herceptin.
[0022] Alternatively or additionally, the at least one pharmaceutical agent may also include a drug that inhibits at least one of T-reg cells, myeloid-derived suppressor cells, and M2 macrophages, with particularly preferred drugs including cisplatin, gemcitabine, 5-fluorouracil, cyclophosphamide, doxorubicin, temozolomide, docetaxel, paclitaxel, trabectedin, and RP-182.
[0023] Most preferably, suitable vaccine compositions may comprise recombinant bacterial, viral, or yeast vaccines, which may be genetically engineered to express at least one novel patient- and tumor-specific epitope.
[0024] With respect to checkpoint inhibitors, the inhibitor is preferably a PD-1 inhibitor or a CTLA4 inhibitor, and the immunostimulatory cytokine may be IL-2, IL-15, IL-17, IL-21, and / or an IL-15 superagonist. Additionally, contemplated methods may further include at least one of administering natural killer cells and low-dose radiation.
[0025] Various objects, features, aspects and advantages of the present subject matter will become more apparent from the following detailed description of preferred embodiments, along with the accompanying drawings in which like numerals represent like elements. [Brief explanation of the drawings]
[0026] [Figure 1] FIG. 1 is an exemplary schematic diagram of the prior art of the three phases of cancer immunoediting. [Figure 2] FIG. 2 is an exemplary schematic diagram of a treatment according to the present inventive subject matter. [Figure 3] FIG. 3 is a schematic diagram with exemplary compounds used in selected steps of the treatment according to the present inventive subject matter. [Figure 4] FIG. 4 is an exemplary flow chart of a treatment according to the present subject matter. [Figure 5] FIG. 5 is a schematic representation of the mechanism(s) by which each agent is thought to affect the immune system, resulting in immunogenic tumor cell death in the treatment of HNSCC. [Figure 6] FIG. 6 is a flow chart for the administration of various pharmaceutical compositions during the induction phase in the treatment of HNSCC. [Figure 7] FIG. 7 is a flow chart for the administration of various pharmaceutical compositions during the maintenance phase in the treatment of HNSCC. [Figure 8] FIG. 8 is a schematic diagram of a treatment regimen for HNSCC according to the present subject matter. [Figure 9] FIG. 9 is a schematic representation of the mechanism(s) by which each agent is thought to affect the immune system, resulting in immunogenic tumor cell death in the treatment of MCC. [Figure 10] FIG. 10 is a flow chart for the administration of various pharmaceutical compositions during the induction phase in the treatment of MCC. [Figure 11] FIG. 11 is a flow chart for the administration of various pharmaceutical compositions during the maintenance phase in the treatment of MCC. [Figure 12] FIG. 12 is a schematic diagram of a treatment regimen for MCC according to the present subject matter. [Figure 13] FIG. 13 is a schematic representation of the mechanism(s) by which each agent is thought to affect the immune system, resulting in immunogenic tumor cell death in the treatment of melanoma. [Figure 14] FIG. 14 is a flow chart for the administration of various pharmaceutical compositions during the induction phase in the treatment of melanoma. [Figure 15] 1 is a flow chart for the administration of various pharmaceutical compositions during the maintenance phase in the treatment of melanoma. [Figure 16] FIG. 16 is a schematic diagram of a treatment regimen for melanoma according to the present subject matter. [Figure 17] FIG. 17 is a schematic representation of the mechanism(s) by which each agent is thought to affect the immune system, resulting in immunogenic tumor cell death in the treatment of NHL. [Figure 18] FIG. 18 is a flow chart for the administration of various pharmaceutical compositions during the induction phase in the treatment of NHL. [Figure 19] FIG. 19 is a flow chart for the administration of various pharmaceutical compositions during the maintenance phase of treatment for NHL. [Figure 20] FIG. 20 is a schematic diagram of a treatment regimen for NHL according to the present subject matter. [Figure 21] FIG. 21 is a schematic representation of the mechanism(s) by which each agent is thought to affect the immune system, resulting in tumor-stage immunogenic cell death in the treatment of NSCLC. [Figure 22] FIG. 22 is a flow chart for the administration of various pharmaceutical compositions during the induction phase in the treatment of NSCLC. [Figure 23] FIG. 23 is a flow chart for the administration of various pharmaceutical compositions during the maintenance phase in the treatment of NSCLC. [Figure 24] FIG. 24 is a schematic diagram of a treatment regimen for NSCLC according to the present subject matter. [Figure 25] FIG. 25 is a schematic representation of the mechanism(s) by which each agent is thought to affect the immune system, resulting in immunogenic tumor cell death in the treatment of PANC. [Figure 26] FIG. 26 is a flow chart for the administration of various pharmaceutical compositions during the induction phase in the treatment of PANC. [Figure 27] FIG. 27 is a flow chart for the administration of various pharmaceutical compositions during the maintenance phase in the treatment of PANC. [Figure 28] FIG. 28 is a schematic diagram of a treatment regimen for PANC according to the present subject matter. DETAILED DESCRIPTION OF THE INVENTION
[0027] Detailed Description Conventional molecularly uninformed treatment regimens using chemotherapy at maximum tolerated doses (MTDs), targeted therapies using kinase inhibitors, which are drugs that disrupt cell division, and antibody therapy with high doses of radiation typically impair the immune system, thereby leading to tolerogenic cell death, which in turn allows cancers to select for and evade immune surveillance and allows resistant allogenic clones to escape, resulting in metastasis and poor long-term prognosis. Thus, conventional treatment regimens and current standard of care may inadvertently perpetuate the immune-editing escape phase of tumors and support an immunosuppressive TME (tumor microenvironment).
[0028] A paradigm shift in cancer treatment is needed, in which treatment is based on tumor biology that is largely independent of anatomy, mechanisms of cancer development, and is specifically tailored to the genetic alterations of a patient's tumor. The therapeutic methods and compositions presented herein represent such an approach.
[0029] In accordance with the subject matter of the present invention, the inventors have now discovered that cancer treatments can be aimed at maximizing immunogenic cell death (ICD) while maintaining and enhancing a patient's anti-tumor adaptive and innate responses to cancer. To this end, the therapeutic methods and use of specific compounds and compositions presented herein utilize lower, metronomic doses of both cytotoxic chemotherapy and radiation therapy to induce damage-associated molecular pattern (DAMP) signaling and cell death while minimizing immune system suppression. Furthermore, contemplated methods also include the use of various immunomodulatory agents, vaccines, checkpoint inhibitors, cell-based compositions, and fusion proteins to enhance and stimulate a patient's adaptive and innate immune responses. In particular, by overcoming the immunosuppressive TME, the elimination phase of cancer can be reversed via effector cells (e.g., mature dendritic cells, NK cells, cytotoxic T cells, memory T-NK cells) activated, preferably by combination therapy using fusion proteins, adenoviral and yeast vector vaccines, and natural killer cells. It should further be appreciated that such combinations target patient-specific mutational patterns, thus significantly reducing off-target stimulation of the immune response.
[0030] Most preferably, contemplated compounds and compositions are administered in a spatiotemporally orchestrated combination of immunotherapeutic products to immunomodulate the tumor microenvironment, activate the innate and adaptive immune system, and induce immunogenic cell death (ICD). More specifically, the inventors contemplate that such an approach will result in a coordinated effect, particularly:
[0031] (1) disrupting the immune-editing escape phase of cancer, preferably by overcoming the immunosuppressed state of the tumor (such treatment is preferably informed by tissue and / or liquid biopsies and performed using low-dose metronomic chemotherapeutic agents capable of inhibiting T-Regs, MDSCs, and M2 macrophages, and / or by inhibiting cytokines (e.g., TGFβ) that enhance the immunosuppressive immune system);
[0032] (2) inducing the elimination phase of cancer immunoediting, preferably by upregulating and / or inducing damage-associated molecular pattern (DAMP) signals, upregulating tumor-associated MHC-restricted antigens and stress receptors (NKG2D), upregulating tumor-specific receptors such as PD-L1, and / or by low-dose radiation, administration of immunomodulatory drugs (IMiDs) and histone deacetylase (HDAC) agents, and / or activation of dendritic cells, natural killer cells, cytotoxic T cells, memory T cells, and / or natural killer (NK) cells via adenoviral, bacterial, and / or yeast vector vaccines, administration of cytokine fusion proteins, checkpoint inhibitors, and / or infusion of NK cell therapy; and
[0033] (3) T cell proliferation of the patient's immune system using vaccine boosters, maintenance cytokine fusion proteins, and / or conventional exogenous NK fusions. H Restoration of the equilibrium phase of cancer immunoediting can be achieved by maintaining a single state.
[0034] From another perspective, the inventors contemplate that the contemplated spatiotemporal method of treatment will restore the natural (pre-cancer) state of the patient's immune system by overcoming the escape phase, re-establishing the elimination phase, and achieving long-term maintenance through the support of the equilibrium phase.
[0035] To this end, among other options contemplated, preferred therapeutic components include: (a) nanoparticle albumin-conjugated (Nab) chemotherapy combinations to enter the tumor microenvironment (e.g., via transcytosis) and overcome the tumor suppressor milieu; (b) antigen-producing vaccine entities (e.g., recombinant adenovirus, bacteria, and / or yeast) that directly or indirectly deliver tumor-associated antigens and / or patient- and tumor-specific neoantigens to immunocompetent cells, activating immature dendritic cells in a patient- and tumor-specific manner to induce and enhance adaptive immune responses; and (c) innate immune responses. and (d) natural killer cells, which can be endogenous (e.g., by stimulation with IL-15 or an IL-15 superagonist) and / or exogenous (e.g., genetically modified NK cells, e.g., aNK cells, haNK cells, taNK cells), to induce and / or enhance response, and (d) endogenous activated memory T cells and / or NK cells, preferably activated via vaccines, cell therapy, and fusion proteins (e.g., genetically engineered fusion proteins cytokine stimulators and / or checkpoint inhibitors), to sustain long-term remission.
[0036] Thus, from a mechanistic perspective, the inventors propose that a spatiotemporally orchestrated combination of immunotherapeutic compounds and / or compositions (a) penetrates the tumor microenvironment to overcome the tumor's immunosuppressed state, preferably informed by tissue and liquid biopsies, using low-dose metronomic chemotherapeutic agents capable of inducing immunogenic cell death (ICD) together with inhibitors of one or more immunosuppressive cytokines; (b) damage associated molecular (c) upregulating induction of tumor-associated MHC-restricted antigens and stress receptors (NKG2D) via low-dose radiation, IMiD (immunomodulatory drugs), and HDAC (histone deacetylase) agents; (c) activating dendritic cells, natural killer cells, cytotoxic T cells, memory T cells, and / or NK cells via administration of various cytokine fusion proteins, checkpoint inhibitors, and infusion of NK cell therapy; and (d) maintaining equilibrium via booster vaccines (e.g., adenoviral, bacterial, and / or yeast vectors delivering tumor-associated and neoantigens), NK activators, and various immunostimulatory fusion proteins, thereby immunomodulating the tumor microenvironment, inducing immunogenic cell death (ICD), and resulting in long-term, sustainable remission of multiple tumor types with lower toxicity and higher efficacy than current standard therapies. Indeed, it should be recognized that the contemplated methods and uses utilize the tumor as a source of antigenicity and adjuvant activity.
[0037] In particular, when using the therapeutic approaches of the present inventive subject matter, it should be recognized that the majority of drugs in such approaches are not used primarily for their traditional function (e.g., blocking specific receptors or inhibiting specific enzymes), but rather drug combinations are used in a coordinated manner to modulate the immunobiology of a patient's tumor and immune system, thereby returning the tumor from a phase of escape to a phase of elimination and equilibrium. In contrast, currently used combinations have so far failed to take advantage of, or even recognize, cancer immunoediting as a strategic approach in cancer treatment.
[0038] 2 exemplarily illustrates various aspects of the present subject matter. As shown schematically here, tumors with polyclonal cancer cells can be treated with standard therapies, which result in tolerogenic cell death of some tumor cells, and treatment typically results in a fraction of surviving cells representing cells that have established tumors and / or tumor metastases with a TME that is resistant to standard therapies and now immunosuppressive and unresponsive to many therapeutic strategies. Furthermore, it should be noted that tolerogenic cells generally do not result in immune stimulation, as they typically encounter ICD (immunogenic cell death—cell death due to the cancer patient's immune response to one or more antigens of the tumor, generally mediated by the innate and adaptive immune responses).
[0039] In contrast, the contemplated uses and methods are designed to initially reduce or even reverse immunosuppression of the TME through the use of compositions and compounds that specifically or preferentially enter the TME, as described in further detail below. In addition to reducing or inhibiting immunosuppression of the TME, the contemplated methods and uses may further preferably include low-dose metronomic chemotherapy. Such low-dose and metronomic chemotherapy preferably allows the patient's immune system to function to a degree that allows for the expansion of both innate and adaptive immune responses in a therapeutically effective manner.
[0040] Furthermore, it is generally contemplated that such low-dose metronomic chemotherapy will be informed by omics and pathway analysis of the patient's tumor. For example, omics analysis can identify specific mutations associated with tumors and the presence and expression of novel patient- and tumor-specific epitopes. Specific mutations can then be targeted using drugs known to treat such mutations (e.g., kinase inhibitors in K-ras). Furthermore, the tumor- and patient-specific mutations identified thereby can also be used in immunotherapy, as described in further detail below. Preferably, omics analysis is performed using tumor samples and matched normal samples from the same patient, as exemplified in U.S. Patent Publication Nos. 20120059670 and 20120066001. Therefore, it should be understood that omics analysis of a patient's tumor not only identifies druggable targets, but also provides information on novel patient- and tumor-specific epitopes that can be used in immunotherapy.
[0041] For example, patient- and tumor-specific neoantigens can be identified through analyzing and comparing omics data from diseased and healthy tissues of a patient (e.g., through whole genome sequencing and / or exome sequencing, etc.). Among the identified mutations, patient-specific neoantigens are generally preferably further selected by sorting by at least one of mutation type, transcriptional intensity, translational intensity, and a priori known molecular variations. Further details regarding the identification of patient-specific neoantigens and / or cancer-specific patient-specific neoantigens are described in detail in International Patent Application No. PCT / US16 / 56550.
[0042] Furthermore, tumor-associated antigens are considered to be high-affinity binders for at least one MHC class I subtype or at least one MHC class II subtype of the patient's HLA species, which can be determined in silico, for example, using the de Bruijn graph approach described in International Patent Publication No. 2017 / 035392, or by conventional methods known in the art (e.g., antibody-based methods). The binding affinity of the human disease-associated antigen is tested in silico for the determined HLA species. Preferred binding affinities can be measured, for example, using NetMHC, by a minimum KD of less than 500 nM, or less than 250 nM, or less than 150 nM, or less than 50 nM. Most typically, HLA typing involves at least three MHC-I subtypes (e.g., HLA-A, HLA-B, HLA-C, etc.) and at least three MHC-II subtypes (e.g., HLA-DP, HLA-DQ, HLA-DR, etc.), with each subtype preferably being determined to a depth of at least four orders of magnitude. It should be recognized that such an approach will not only identify specific neoantigens true for the patient and tumor, but also those neoantigens most likely to be presented by cells and therefore most likely to elicit a therapeutic immune response.
[0043] Of course, it should be recognized that matching a patient's HLA type to patient- and cancer-specific neoantigens can be performed using systems other than NetMHC; suitable systems include NetMHC II, NetMHCpan, IEDB Analysis Resource (URL immuneepitope.org), RankPep, PREDEP, SVMHC, Epipredict, HLABinding, and others (see, e.g., J Immunol Methods 2011;374:1-4). It should be noted that a panel of neoantigen sequences in which the positions of the altered amino acids are shifted (up) can be used in calculating the highest affinity. Alternatively, or in addition, modifications to the neoantigen can be made by adding N- and / or C-terminal modifications to further increase binding of the expressed neoantigen to the patient's HLA type. Thus, neoantigens can be naturally occurring as identified, or can be further modified to better fit a particular HLA type.
[0044] Furthermore, if desired, binding of the corresponding wild-type sequence (i.e., the neo-antigen sequence without amino acid changes) can be calculated to ensure high differential affinity. For example, particularly preferred high differential affinity in MHC binding between a neo-antigen and its corresponding wild-type sequence is at least 2-fold, at least 5-fold, at least 10-fold, at least 100-fold, at least 500-fold, at least 1000-fold, etc.
[0045] Furthermore, omics information (particularly omics information includes whole genome sequencing or exome sequencing, RNA sequence and transcription data, and (preferably quantitative) proteomics information) can also be used to determine the status of various cellular signaling pathways. Such pathway information, and in particular the pathway information combined with mutation information, can reveal additional drug targets in cells that are unrelated to the anatomical characteristics of tumors (for example, the presence of HER2 signaling in non-breast cancers). Particularly preferred pathway analysis based on omics information includes those described in International Patent Publication Nos. 2011 / 139345, 2013 / 062505, 2014 / 193982, 2014 / 059036, 2014 / 210611, 2015 / 184439, and 2016 / 118527. Viewed from a different perspective, omics data in contemplated treatments and uses is used to inform the development of immunotherapeutic compositions and to inform the selection of chemotherapeutic agents based on pathway information rather than tumor type and location. Thus, suitable omics data include whole genome sequencing data, exome sequencing data, RNA sequence and transcription data, and proteomics data (e.g., quantitative proteomics data from mass spectrometry).
[0046] The use of genomics, transcriptomics, and proteomics data, particularly in combination with pathway analysis of the resulting data, allows for the identification of key altered cell signaling pathways, thereby enabling therapeutic avenues that are agnostic to the tumor's anatomical type but sensitive to functional changes in signal transduction and related cellular events. This not only allows for the identification of drugs suitable for tumor treatment that would not otherwise be contemplated, but also allows for modulation of tumor immune parameters. Alterations in DNA, RNA, and protein signatures and associated signaling pathways can be identified even before treatment begins. Indeed, non-assumptive probabilistic analysis allows for treatment decisions to be made without bias against traditional tissue-by-tissue assignment of treatments or the traditional assumption that hundreds of DNA sequences are drivers of cancer.
[0047] Furthermore, with regard to reducing or inhibiting immunosuppression of the TME, it is contemplated that the TME can be directly targeted with drugs that preferentially accumulate in the TME. For example, direct targeting includes the use of inhibitors or T-regs (regulatory T cells), MDSCs (myeloid-derived immunosuppressive cells), and / or M2 macrophages, the use of albumin drug conjugates, as described further below, and / or the use of drugs that bind to antibodies or fragments thereof that bind to necrotic cells (e.g., nucleolin, histones, DNA, etc.). Indirect targeting typically uses permeability-enhancing drugs (e.g., IL-2 or its PEP fragments) that permeabilize the vascularization of the TME to facilitate drug access to the TME.
[0048] In a further contemplated embodiment of reducing or inhibiting immunosuppression in the TME, the TME is also subjected to stress conditions that induce the expression and presentation of various stress signals, particularly NKG2D, to attract immune-competent cells such as NKG2D. For example, stress responses may be induced using low-dose radiation therapy (e.g., less than 8 Gy), hormone suppression, small molecule inhibitors, and the like. In particular, when one or more of the above approaches are employed, it is believed that at least a portion of tumor cells will be exposed to various immune-competent cells, particularly natural killer cells (which may be the patient's own or foreign NK cells, as further described below). Thus, addressing the TME can result in a first innate immune response. Preferably, such an innate immune response (e.g., via NK cells) triggers an immune cascade, stimulating an adaptive immune response against components of cells killed by the innate immune response. Thus, it should be recognized that these treatments and the use of certain compounds and compositions can be used to reduce or eliminate immune suppression in the TME, which can be used to block or reverse the escape phase of cancer immunoediting.
[0049] Immediately after or simultaneously with the reduction or reversal of immunosuppression in the TME, the inventors contemplate that a tumor elimination phase can be induced, preferably via one or more pharmaceutical compounds or compositions that enhance at least one of the adaptive and innate immune responses. With regard to the preferred induction of an adaptive immune response, it is generally preferred that the response be mediated by one or more vaccine compositions. For example, particularly preferred vaccine compositions are formulated to elicit an immune response against tumor-associated antigens (e.g., MUC-1, Brachyury, CEA, HER2, etc.) and / or tumor novel epitopes (preferably patient- and tumor-specific). In this context, it should be understood that the tumor novel epitopes used to generate the adaptive immune response are selected based on the above-mentioned omics information. Preferably, omics information about a particular patient is then used at least to identify chemotherapeutic agents (preferably chemotherapeutic agents via pathway analysis using omics data) and to identify novel epitopes suitable for generating immunotherapeutic compositions.
[0050] Among other suitable options, it is usually preferred that the immunotherapeutic composition is a cancer vaccine based on at least one of bacterial, yeast, and (adeno)viral vaccines, which are described in more detail below. It should be recognized that cancer vaccines are preferably recombinant entities that express one or more tumor-associated antigens and / or tumor novel epitopes in the intracellular space, or are recombinant viral expression vectors encoding the recombinant entities. It should also be noted that in a further preferred embodiment, the vaccine compositions may be administered sequentially (e.g., first bacterial, then yeast, then viral), or only one or two vaccine compositions are used (e.g., only adenoviral or bacterial vaccines). Of course, it should be understood that the recombinant proteins or nucleic acids encoding the proteins may be the same, overlapping, or different in all vaccine compositions.
[0051] Regarding the enhancement of the innate immune response during the elimination phase, it is generally preferred that the innate immune response be mediated by the patient's own immune system or by exogenous immune-competent cells. For example, if the patient's innate immune response is enhanced, the proliferation and activity of natural killer cells and activated T cells may be boosted using one or more immunostimulatory cytokines, as discussed in more detail below. Alternatively or additionally, the patient may receive allogeneic NK cells, most preferably activated NK cells (such as aNK cells, haNK cells, or taNK cells), and / or recombinant T cells containing chimeric T cell receptors. NK infusion, particularly aNK and haNK infusion, preferably amplifies pre-existing stress signals (typically induced by metronomic low-dose chemotherapy, low-dose radiation, and / or endocrine suppression) present in tumor cells in the TME. Furthermore, haNK cells may be bound via the high-affinity CD16 receptor to one or more antibodies that bind tumor-associated antigens or novel epitopes. The innate immune response may also be specifically directed against tumor cells. The elimination phase may be further enhanced or supported by administration of one or more cytokines, fusion proteins, and / or chemokines, as discussed in more detail below.
[0052] Therefore, it should be recognized that compounds and compositions administered to induce or enhance the elimination phase are particularly effective when the TME and tumor are preconditioned to reduce or neutralize immunosuppression and to have additional stress signals. From a different perspective, all or almost all previously known treatments have generally failed to exhibit therapeutic effects because they are delivered or administered to the TME, which maintains immunosuppression. In contrast, the methods and uses contemplated by the present invention preferably precondition the tumor and TME to make treatments that induce the elimination phase more effective. Desirably, the elimination phase can be further supported by administering one or more drugs that inhibit T-regs, MDSCs, and / or M2 macrophages.
[0053] After induction of the elimination phase for a predetermined time or a predetermined therapeutic response, the contemplated methods and uses then aim to maintain an equilibrium phase. At this point, remaining tumors, tumor metastases, and tumor cells are largely eliminated in a process that also stimulates the immune cascade (i.e., tumor cells attacked by immune-competent cells (e.g., NK cells, cytotoxic T cells) release tumor immunogenic proteins, resulting in epitope spreading and further immune responses), resulting in immunogenic cell death and immune memory (e.g., memory T cells, memory B cells, memory NK cells). To maintain the patient's immune status and further boost memory against antigens present on tumor cells, the patient may receive the above-mentioned checkpoint inhibitors, immunostimulatory cytokines, and / or additional vaccine doses. Such treatments and the use of the above-mentioned compounds and compositions are useful in the treatment of T H 1 response (usually characterized by the production of interferon-γ, tumor necrosis factor-α, and IL-2; in contrast, T H The innate and adaptive immune responses are effective in driving the adaptive immune response and / or equilibrium phase (usually characterized by the production of IL-4, IL-5, IL-6, IL-10, and IL-13). Maintenance using contemplated compounds and compositions maintains the equilibrium phase, supports the innate and adaptive immune responses, and supports the production of memory NK cells, memory T cells, and memory B cells.
[0054] Viewed from a different perspective, providing a treatment regimen that reverses the escape phase of a tumor, simultaneously or more preferably subsequently induces an elimination phase, and maintains the equilibrium phase of a tumor can overcome the immunosuppression and immune evasion of previously developed or established tumors. Thus, although the contemplated methods and uses employ some of the same compounds and compositions as conventional treatments, the coordinated treatment to achieve the reversal of the escape phase to the elimination and maintenance phases has not been recognized or understood.
[0055] Figure 3 illustrates a schematic representation of some of the contemplated compounds, compositions, and uses. For example, the TME can be addressed using Abraxane (paclitaxel bound to nanoparticle albumin), a variety of antibody-drug conjugates having an antibody moiety that specifically binds to components of necrotic cells. For example, albumin-drug conjugates may be used to exploit the gp60-mediated transcytosis mechanism for albumin in the endothelium of tumor microvasculature. Thus, various albumin-containing drug conjugates are contemplated, in which the drug is non-covalently bound to albumin (or refolded albumin in nanoparticles). Contemplated drugs include various cytotoxic drugs, antimetabolites, alkylating agents, microtubulin-affecting drugs, topoisomerase inhibitors, drugs that interfere with DNA repair, and the like. Thus, suitable drugs include bendamustine, bortezomib, cabazitaxel, chlorambucil, cisplatin, cyclophosphamide, dasatinib, docetaxel, doxorubicin, epirubicin, erlotinib, etoposide, everolimus, gefitinib, idarubicin, hydroxyurea, imatinib, lapatinib, melphalan, mitoxantrone, nilotinib, oxaliplatin, paclitaxel, pazopanib, pemetrexed, rapamycin, romidepsin, sorafenib, vemurafenib, sunitinib, teniposide, vinblastine, vinorelbine, and vincristine. Such conjugates are preferably administered at low doses and in a metronomic manner. Further contemplated drugs for conjugation to albumin (or for use without conjugation) include drugs that inhibit suppressor cells of the TME, particularly T-reg cells, myeloid-derived immunosuppressive cells, and / or M2 macrophages, such as cisplatin, gemcitabine, 5-fluorouracil, cyclophosphamide, doxorubicin, temozolomide, docetaxel, paclitaxel, trabectedin, and RP-182 (see, e.g., U.S. Patent No. 9,492,499).
[0056] , Similarly, where entry of the drug conjugate into the TME is via the FcRn receptor on the endothelium of the tumor microvasculature, various conjugates and chimeric proteins containing the Fc portion of immunoglobulins are contemplated. Thus, particularly contemplated conjugates and chimeric proteins include immunostimulatory cytokines (e.g., IL-2, IL15, etc.) and chemokines (e.g., CXCL14 CD40L, etc.). Alternatively, the TME can also be targeted in a more nonspecific manner by disrupting tumor microvasculature, typically using the permeability-enhancing peptide moiety (PEP) of IL-2. Such permeability enhancers are preferably provided together with or prior to the administration of drugs that bind to necrotic tumor cells and / or inhibit suppressor cells.
[0057] As also shown schematically in Figure 3, the immunogenicity of tumor cells in the TME can be enhanced using one or more chemotherapeutic agents, preferably selected through the above-described omics and pathway analysis. Such treatments are preferably administered at low doses and metronomically to induce the overexpression or transcription of stress signals. For example, such treatments are generally effective in affecting at least one of protein expression, cell division, and cell cycle, and preferably induce apoptosis or at least induce or increase the expression of stress-related genes (and in particular NKG2D ligands, DAMP signals). It should be noted that chemotherapeutic agents can stimulate both the innate and adaptive arms of the immune system by inducing cell death of immunogenic species in tumor cells, which leads to the induction of specific damage-associated molecular pattern (DAMP) signals. These signals trigger the phagocytosis of cellular debris, promote dendritic cell maturation, and activate T and NK cells, ultimately promoting an antitumor response.
[0058] Thus, in contemplated embodiments, treatment to increase immunogenicity and / or decrease immunosuppression involves low-dose treatment with one or more chemotherapeutic agents that target the TME. Most typically, low-dose treatment results in an ID of 70% or less, 50% or less, 40% or less, 30% or less, 20% or less, 10% or less, or 5% or less with respect to the chemotherapeutic agent. 50 or IC 50 A low-dose regimen is one that is 5-10%, or 10-20%, or 20-30%, or 30-50%, or 50-70% of the normally recommended dose listed in the prescribing information for the drug. Additionally, and if desired, such low-dose regimens may be administered metronomically, as described, for example, in U.S. Patent Nos. 7,758,891, 7,771,751, 7,780,984, 7,981,445, and 8,034,375.
[0059] Additionally, treatments designed to target the TME to increase immunogenicity and / or decrease immunosuppression may involve radiation therapy, particularly targeted stereotactic radiation therapy at relatively low doses (e.g., 5-10%, or 10-20%, or 20-30%, or 30-50%, or 50-70% of the dose typically recommended for tumor irradiation). It is generally preferred to boost innate immune responses with the infusion of NK cells (e.g., aNK cells, haNK cells, or taNK cells) within 12-36 hours after low-dose chemotherapy and / or low-dose radiation to take advantage of stress signal expression and presentation or secretion.
[0060] Thus, contemplated treatments and uses may also include the infusion of autologous or heterologous NK cells, particularly NK cells genetically modified to reduce inhibition, into patients. For example, the genetically modified NK cells may be NK-92 derivatives modified to have reduced or eliminated expression of at least one killer cell immunoglobulin-like receptor (KIR) that constitutively activates the cells. Of course, it should be noted that one or more KIRs, including KIR2DL1, KIR2DL2, KIR2DL3, KIR2DL4, KIR2DL5A, KIR2DL5B, KIR2DS1, KIR2DS2, KIR2DS3, KIR2DS4, KIR2DS5, KIR3DL1, KIR3DL2, KIR3DL3, and KIR3DS1, may be deleted or their expression may be suppressed (e.g., via miRNA, siRNA, etc.). Such modified cells may be prepared using protocols well known in the art. Alternatively, such cells may also be commercially obtained from NantKwest as aNK cells ("activated natural killer cells"). Such cells may then be further modified to express costimulatory molecules as discussed further below. Additionally, contemplated NK cells suitable for use herein also include those that have lost or silenced NKG2A, an activation signal for Tregs and MDSCs.
[0061] Alternatively, genetically engineered NK cells may also be NK-92 derivatives modified to express a high-affinity Fcγ receptor (CD16-158V). Sequences for high-affinity variants of Fcγ receptors are well known in the art, and all methods of production and expression are considered suitable for use herein. Expression of such receptors would enable specific targeting of tumor cells using antibodies produced by patients in response to the treatments contemplated herein or provided as therapeutic antibodies, where these antibodies are specific for the patient's tumor cells (e.g., novel epitopes), specific tumor types (e.g., her2neu, PSA, PSMA, etc.), or cancer-associated antigens (e.g., CEA-CAM). Preferably, such cells may be commercially obtained from NantKwest as haNK cells ("high-affinity natural killer cells") and then further modified (e.g., to express costimulatory molecules).
[0062] In further embodiments, genetically engineered NK cells may also be genetically engineered to express chimeric T cell receptors. In particularly preferred embodiments, the chimeric T cell receptors have scFv portions or other ectodomains that have binding specificity for the patient's tumor-associated antigens, tumor-specific antigens, and / or novel epitopes, as determined by omics analysis. As noted above, such cells may be commercially obtained from NantKwest as taNK cells ("targeted activated natural killer cells") and may be further modified as desired. It is contemplated that all known cancer-associated antigens and novel epitopes are considered suitable for use when the cells have chimeric T cell receptors engineered to have affinity for cancer-associated antigens or novel epitopes. For example, tumor-associated antigens include CEA, MUC-1, CYPB1, PSA, Her-2, PSA, Brachyury, and the like.
[0063] Furthermore, it should be noted that the methods and uses contemplated herein also include cell-based therapies using cells other than NK cells (or cells other than NK cells in addition to NK cells). For example, suitable cell-based therapies include T cell-based therapies. Among other options, it is contemplated that one or more characteristics associated with T cells (e.g., CD4+ T cells, CD8+ T cells, etc.) can be detected. More specifically, contemplated omics analyses can identify specific novel epitopes (e.g., 8mers to 12mers for MHC I, 12mers to 25mers for MHC II) that can be used to identify novel epitope-reactive T cells bearing T cell receptors specific for the novel epitope / MHC protein complex. Thus, the method can include recovering T cells reactive to the novel epitope. The recovered T cells can be expanded or expanded ex vivo (or reactivated, if exhausted) in preparation for reintroduction into the patient. Alternatively, T cell receptor genes in the recovered T cells can be isolated and transferred into a virus or other adaptive cell therapy system (e.g., CAR-T, CAR-TANK, etc.). In addition to novel epitopes, omics analysis can also provide one or more tumor-associated antigens (TAA). Thus, T cells bearing receptors sensitive to the TAA identified from these analyses can also be recovered. These cells can be expanded or cultured ex vivo and used in similar therapeutic methods as described above. T cells can be identified by producing synthetic versions of peptides, combining them with commercially available MHC or MHC-like proteins, and then using these ex vivo complexes to bind to target T cells. It should be recognized that the recovered T cells may include T cells activated by the patient's immune response to the disease, exhausted T cells, or other T cells responsive to the characteristics discussed.
[0064] It should be noted that the above-mentioned treatments not only target the TME to reduce immunosuppression and increase the immunogenicity of tumor cells in the TME, but also initiate or support an innate immune response. Preferably, the innate immune response can be further enhanced using tumor antigen-specific antibodies that, upon binding to tumor cells, trigger NK cell cytotoxic cell killing. In particular, such antibodies can target not only known tumor-associated antigens (e.g., MUC-1, HER2, Brachyury, CEA, etc.), but also novel patient- and tumor-specific epitopes previously identified using the contemplated omics analysis. For example, the preparation and use of antibodies specific for novel epitopes are exemplarily described in International Patent Publication No. 2016 / 172722. Such antibody-mediated cell killing also enhances epitope spreading (i.e., presentation of novel tumor cell epitopes via cytotoxic cell killing), which in turn induces or enhances an adaptive immune response.
[0065] Furthermore, with respect to antibodies that bind to tumor cell antigens, it should be recognized that the antibodies or fragments thereof may also be prepared as fusion proteins in which the non-antibody portion is an immunostimulatory cytokine, chemokine, costimulatory molecule, or molecule that interferes with checkpoint inhibition.
[0066] From a different perspective, tumor immunogenicity may be conferred or enhanced by tumor-specific binding of stimulatory or anti-immunosuppressive factors. Such treatments preferably induce or enhance the elimination phase via at least one of the innate and adaptive immune responses.
[0067] With further reference to Figure 3, adaptive immune responses can also be induced using one or more vaccine compositions tailored to a specific patient's tumor through targeting tumor-associated antigens and / or novel epitopes on the tumor. When using a novel epitope vaccine, it should be recognized that the novel epitope is preferably identified in the above-described omics analysis. Various tumor vaccine compositions are known in the art, all of which are considered suitable for use herein. However, particularly preferred tumor vaccine compositions include bacterial vaccine compositions in which bacteria are genetically engineered to express one or more tumor-associated antigens and / or novel epitopes. Most preferably, the recombinant bacteria are genetically engineered to express endotoxin at a low level that is insufficient to induce CD-14-mediated sepsis in the patient. An exemplary bacterial strain containing modified lipopolysaccharide is ClearColi® BL21(DE3) electrocompetent cells. The bacterial strain is BL21, with the genotype F‐ompT hsdSB (rB‐mB‐)gal dcm lon λ(DE3[lacI lacUV5‐T7 gene 1 ind1 sam7 nin5]) msbA148 ΔgutQ ΔkdsD ΔlpxL ΔlpxM ΔpagP ΔlpxP ΔeptA. In this context, several specific deletion mutations (ΔgutQ ΔkdsD ΔlpxL ΔlpxM ΔpagP ΔlpxP ΔeptA) are involved in the regulation of lipid IV of LPS. A and one additional compensating mutation (msbA148) encodes the LPS precursor lipid IV A It should be noted that these mutations allow the cells to maintain viability in the presence of LPS. These mutations result in the loss of oligosaccharide chains derived from LPS. Most typically, these bacteria are irradiated prior to administration. Similarly, many yeast expression systems are considered suitable for use herein. However, particularly preferred recombinant yeast systems include those based on S. cerevisiae.
[0068] In a further preferred embodiment of the vaccine composition, recombinant viruses are considered suitable, particularly recombinant adenovirus systems with reduced antigenicity (such as Ad5 type) described in International Patent Applications PCT / US16 / 65412, PCT / US17 / 17588, PCT / US17 / 23117, and International Patent Publication No. 2016 / 164833. Such viruses may be prepared, for example, by a method comprising the steps of identifying a novel cancer-associated epitope in a patient, determining the binding of the novel epitope to the patient's HLA species and determining the expression level of the novel epitope, selecting at least one costimulatory molecule, and genetically modifying the virus to include nucleic acids encoding at least one costimulatory molecule and the novel cancer-associated epitope. Generally, when referring to viruses, the virus is referred to as an adenovirus or a replication-deficient virus. Furthermore, it is preferred that the virus be non-immunogenic. Therefore, particularly preferred viruses include adenoviruses, particularly Ad5 [E1-, E2b-].
[0069] The patient's cancer-associated novel epitopes are preferably identified in silico by position-guided synchronous alignment of omics data of tumor and matched normal samples, and contemplated methods may further comprise predicting the patient's HLA type in silico. While not limiting to the subject matter of the present invention, it is preferred that the expression level of the novel epitopes is at least 20% compared to matched normal samples.
[0070] It is further contemplated that the recombinant entity (e.g., bacteria, yeast, virus) may also include one or more sequences encoding one or more costimulatory molecules, including those selected from the group of B7.1 (CD80), B7.2 (CD86), CD30L, CD40, CD40L, CD48, CD70, CD112, CD155, ICOS-L, 4-1BB, GITR-L, LIGHT, TIM3, TIM4, ICAM-1, and LFA3 (CD58). Additionally, the nucleic acid may further include sequences encoding cytokines (e.g., IL-2, IL-7, IL-12, IL-15, IL-15 superagonist (IL-15N72D), and / or IL-15 superagonist / IL-15RαSushi-Fc fusion complex). Alternatively, or in addition, the nucleic acid may further comprise a sequence encoding at least one component of SMAC (e.g., CD2, CD4, CD8, CD28, Lck, Fyn, LFA-1, CD43, and / or CD45, or their respective binding counterparts). If desired, the nucleic acid may further comprise a sequence encoding an activator of the STING pathway, such as a chimeric protein in which the transmembrane domain of EBV LMP1 is fused to the signaling domain of IPS-1. Such modifications are believed to further enhance the development of adaptive immune responses by providing additional signals for the activation of the adaptive immune response.
[0071] Furthermore, as also depicted in Figure 3, the equilibrium phase may be maintained or supported by the administration of various cytokines, particularly IL-2 and IL-15, or an IL-15 superagonist, all of which may be part of a fusion protein with a binding moiety that binds to a tumor-associated antigen, a component of necrotic cells (e.g., nucleolin, DNA, histone proteins, etc.), or a patient- and tumor-specific antigen. Such compositions preferably activate T cells and NK cells at the target site of the tumor. Similarly, the equilibrium phase may be maintained or supported by the administration of various binding agents that interfere with checkpoint inhibition (e.g., PD-1 or PD-L1 binding agents), all of which, again, may be part of a fusion protein with a binding moiety that binds to a tumor-associated antigen, a component of necrotic cells (e.g., nucleolin, DNA, histone proteins, etc.), or a patient- and tumor-specific antigen. In a further contemplated embodiment for enhancing adaptive and / or innate immune responses, administration of a hybrid protein is contemplated, which has an IL15 / IL-15R-α component and an Fc component to stabilize the protein and increase serum half-life. For example, a particularly preferred hybrid protein is an IL-15-based immunostimulatory protein complex containing two protein subunits of a variant of human IL-15 associated with high affinity for the dimeric human IL-15 receptor α (IL-15Rα) sushi domain / human IgG1Fc fusion protein (J Immunol (2009) 183:3598-3607).
[0072] Finally, as also illustrated in Figure 3, contemplated methods and uses generally include a step for maintaining the equilibrium phase by administration of one or more inhibitors of suppressor cells, such as cisplatin, gemcitabine, 5-fluorouracil, cyclophosphamide, doxorubicin, temozolomide, docetaxel, paclitaxel, trabectedin, and RP-182. Additionally, checkpoint inhibitors can be administered if desired.
[0073] The spatiotemporal orchestration of therapy aimed at immunogenic cell death is shown schematically in Figure 4, where the therapy and use of contemplated compounds and compositions is presented mechanistically as four components: induction of ICD signaling, enhancement of ICD signaling, engraftment, and maintenance of immune effectors.
[0074] As described above, overcoming the immunosuppressive TME lays the foundation for subsequent or concurrent treatments based on innate and adaptive immune responses. To this end, metronomic, low-dose chemotherapy is administered to patients to enter the TME and immunomodulate TME suppressor cells. This can be achieved in many ways, including the use of MDSC inhibitors, T-Regulator inhibitors, and M2 macrophage inhibitors, stimulating M2-to-M1 transformation, modifying vascular permeability, administering VEGF and / or A2A R inhibitors, and even oxygenating tissues in the typically hypoxic TME. Such treatments can be further enhanced, as described above, using various compositions to increase the immunogenicity of the TME. Induction of immunogenic signals can be achieved through chemotherapy, hormonal therapy, and targeted therapy, as well as through epigenetic modulation (e.g., using DNMT inhibitors, HDAC inhibitors, SirT modulators, including histone deacetylases and other IMiDS, such as azacitidine, decitabine, and vorinostat), thereby increasing the immunogenicity of tumor cells. Depending on the type of treatment described above, the primary tumor can serve as a source of vaccine antigens and immune stimulation (e.g., via the release of DAMP signals or the expression of stress signals). Enhancement of ICD signals is then achieved through the preparation of dendritic cells and T cells using the vaccine compositions described above, usually in conjunction with immunostimulatory cytokines and / or costimulatory signals. Treatment may also include upregulation of tumor cell stress, receptors, and / or antigen presentation, usually using relatively low-dose (e.g., less than 8 Gy) radiation. If desired or necessary, endothelial-mesenchymal transition can be modulated, preferably by binding TGFβ and / or IL-10 to appropriate binding molecules. The transplantation preferably includes the administration of NK cells as already described above. Finally, maintenance of immune effectors can be achieved by administration of immunostimulatory cytokines, tumor vaccine boosters, and checkpoint inhibitors.
[0075] As can be easily recognized, the methods and uses contemplated herein are preferably achieved by diagnostic tests for monitoring the effectiveness of treatment, and suitable diagnostic tests include radiological tests, biopsies and associated biochemical tests, omics analysis, and particularly liquid biopsies. Such monitoring allows for the adjustment of one or more components, particularly in view of newly discovered or recently eliminated novel epitopes, newly discovered drug targets and pathway activity, etc. In this context, although it may take months to clarify disease progression through imaging tests and panomics, disease progression can be quickly identified and treatment can be modified based on the patient's unique molecular profile and the signature of related proteomics signaling pathways.
[0076] Circulating tumor RNA (ctRNA), especially ctRNA with patient- and tumor-specific mutations, can be used as a highly sensitive, selective, and quantitative marker for diagnosis and treatment monitoring, and as a discovery tool that allows repeated and non-invasive sampling of patients.In the most typical embodiment, ctRNA is isolated from whole blood samples that are processed under conditions that preserve the cellular integrity and stability of ctRNA and ctDNA.In particular, when ctRNA is isolated from a patient's biological fluid, miRNA (and other regulatory RNAs) can also be detected and / or quantified.Most typically, after separating ctRNA from non-nucleic acid components, circulating nucleic acids can then be quantified, preferably by using real-time quantitative PCR.
[0077] From a different perspective, it should be recognized that various nucleic acids can be selected for detecting and / or monitoring a particular disease, disease stage, or treatment response in a particular patient even before treatment is initiated. Preferably, the contemplated compositions and methods are independent of previously known mutations that cause or are associated with cancer. Furthermore, the contemplated methods can also monitor clonal tumor cell populations and predict the success of treatment with immunomodulatory therapies (e.g., checkpoint inhibitors or cytokines), and in particular, treatments based on novel epitopes (e.g., treatments using DNA plasmid vaccines and / or viral or yeast expression systems expressing novel epitopes or polytopes).
[0078] Example The following description provides exemplary protocols for treating cancer in patients according to the present subject matter. These protocols list specific compounds and compositions, either alone or in combination, but it should be understood that alternative compounds and compositions may provide the same or similar benefits. Furthermore, dosages and schedules may vary depending on the patient's age, stage of cancer, and overall health.
[0079] Pharmaceutical Agents and Compositions: Unless otherwise specified herein, all of the compounds and compositions referred to herein are known and commercially available. Compounds that are not commercially available are characterized as listed below.
[0080] ALT-803: ALT-803 is an IL-15-based immunostimulatory protein complex containing two protein subunits of a human IL-15 variant associated with high affinity for a dimeric human IL-15 receptor alpha (IL-15Rα) sushi domain / human IgG1 Fc fusion protein (J Immunol (2009) 183: 3598-3607). The IL-15 variant is a 114-amino acid polypeptide containing the mature human IL-15 cytokine sequence with an asparagine-to-aspartate substitution at position 72 of helix C (N72D). The human IL-15Rα sushi domain / human IgG1 Fc fusion protein contains the sushi domain of the human IL-15 receptor alpha subunit (IL-15Rα) (amino acids 1-65 of the mature human IL-15Rα protein) linked to the human IgG1 CH2-CH3 region, which contains the Fc domain (232 amino acids). With the exception of the N72D substitution, all of the protein sequence is human.
[0081] aNK: The aNK cell line is a human IL-2-dependent NK cell line established from peripheral blood mononuclear cells (PBMCs) of a 50-year-old man diagnosed with non-Hodgkin's lymphoma (Leukemia 1994;8:652-8). aNK cells are characterized by expression of CD56bright and CD2 in the absence of CD3, CD8, and CD16. The CD56bright / CD16neg / low phenotype is characteristic of a minor subset of NK cells in peripheral blood that have immunoregulatory functions as cytokine producers. Unlike normal NK cells, aNK lack expression of most killer cell immunoglobulin-like receptors (KIRs) (J Hematother Stem Cell Res 2001;10:369-83). Only KIR2DL4, a KIR receptor with activating and inhibitory potential expressed by all NK cells, was detected on the surface of aNK. KIR2DL4 is thought to mediate its inhibitory effects through binding to HLA allele G. The preferred pathway for cytotoxic killing of aNK cells is via the perforin / elastase pathway, and aNK express high levels of perforin and granzyme B (J Hematother Stem Cell Res 2001;10:369-83).
[0082] aNK cells have a very broad cytotoxic spectrum and are active against cell lines derived from hematological malignancies and solid tumors (Biol Blood Marrow Transplant 1996;2:68-75). Safety evaluations in severe combined immunodeficient (SCID) mice showed no effects associated with aNK therapy, such as acute toxicity or long-term carcinogenicity. Administration of aNK cells to mice challenged with human leukemia cells or a mouse model of human melanoma resulted in improved survival and suppression of tumor growth, including complete remission in some mouse tumors.
[0083] haNK: haNK cells are a derivative of NK-92 [CD16.158V, ER IL-2] (high-affinity activated natural killer cell line "haNK™ for infusion"), cultured as a human allogeneic NK cell line engineered to produce endogenous, intracellularly retained IL-2 and to express CD16, a high-affinity (158V) Fcγ receptor (FcγRIIIa / CD16a). Phenotypically, haNK cells are CD56+, CD3-, and CD16+.
[0084] The haNK cell line was developed by transfecting the parent aNK cell line with a bicistronic plasmid vector containing IL-2 and high-affinity mutants of the CD16 receptor (URL: https: / / nantkwest.com / technology / #hank). The plasmid contains an ampicillin resistance cassette, and the promoter used for transgene expression is elongation factor 1 alpha (EF-1a) with an SV40 polyadenylation sequence. The plasmid was produced under transmissible spongiform encephalopathy (TSE)-free production conditions and contains several human-origin sequences for CD16 and IL-2, neither of which possess transforming properties. The haNK™ injectable cell line exhibits enhanced CD16-targeted ADCC capabilities as a result of the insertion of high-affinity mutants of the CD16 receptor. The haNK003 master cell bank was derived from a monoclonal cell line.
[0085] Avelumab: Avelumab is a human monoclonal IgG1 antibody that blocks the interaction between PD-L1 and its receptor, PD-1, while leaving the interaction between PD-L2 and PD-1 intact (see, e.g., Lancet Oncol. 2016;17:1374-1385).
[0086] ETBX-011 (Ad5[E1-,E2b-]-CEA(6D)): ETBX-011 is an adenovirus vector vaccine in which the E1-, E2b-, and E3 gene regions have been removed and replaced with a gene encoding CEA with the CAP1-6D mutation (Cancer Immunol Immunother. 2015;64:977-87; Cancer Immunol Immunother. 2013;62:1293-301).
[0087] ETBX-021: ETBX-021 is an adenovirus vector vaccine targeting HER2, containing an Ad5 [E1-, E2b-] vector and a modified HER12 gene insert (Cancer gene therapy 2011;18:326-335). The HER2 gene insert encodes a truncated form of the human HER2 protein, including the extracellular domain and transmembrane region. The entire intracellular domain, including the kinase domain responsible for oncogenic activity, is removed.
[0088] ETBX-051 (Ad5 [E1-, E2b-]-Brachyury): ETBX-051 is an Ad5-based adenovirus vector vaccine modified by removing the E1-, E2b-, and E3 gene regions and inserting a modified human Brachyury gene. The modified Brachyury gene contains an agonistic epitope designed to enhance cytotoxic T lymphocyte (CTL) anti-tumor immune responses (see, e.g., Oncotarget. 2015;6:31344-59).
[0089] ETBX-061 (Ad5[E1-,E2b-]-MUC1): ETBX-061 is an Ad5-based adenovirus vector vaccine modified by removing the E1-, E2b-, and E3 gene regions and inserting a modified human MUC1 gene. The modified MUC1 gene contains an agonistic epitope designed to enhance CTL anti-tumor immune responses (see, e.g., Oncotarget. 2015;6:31344-59).
[0090] GI-4000 (GI-4014, GI-4015, GI-4016, GI-4020): GI-4000 is a series of four separate products from the GI-4000 series: GI-4014, GI-4015, GI-4016, and GI-4020, each of which is a recombinant, heat-inactivated S. cerevisiae strain engineered to express a combination of two or three of six mutated Ras oncoproteins. The GI-4014, GI-4015, and GI-4016 products each contain two mutations at codon 61 (glutamine to arginine [Q61R] and glutamine to leucine [Q61L]) and one of three different mutations at codon 12 (glycine to valine [G12V], glycine to cysteine [G12C], or glycine to aspartate [G12D]). The GI-4020 product contains two mutations at codon 61 (glutamine to histidine [Q61H] and glutamine to leucine [Q61L]) and one mutation at codon 12 (glycine to arginine [G12R]).
[0091] Thus, GI-4000 is manufactured as four individual products with the sub-designations GI-4014, GI-4015, GI-4016, and GI-4020, depending on the mutant Ras oncoprotein the product is engineered to express. This biological product is formulated in phosphate buffered saline (PBS) for injection and contains 20 YU / mL (1 YU = 10 7The drug is packaged in separate vials at a concentration of 10000 YU (10 ...
[0092] GI-6207: GI-6207 is a heat-killed recombinant Saccharomyces cerevisiae yeast-based vaccine engineered to express full-length human carcinoembryonic antigen (CEA), with the gene coding sequence modified to encode a single amino acid substitution (asparagine to aspartic acid) at amino acid position 610 of the native protein, designed to enhance immunogenicity. A plasmid vector containing the modified human CEA gene is used to transfect a parent yeast strain (S. cerevisiae W303—a haploid strain with known mutations from wild-type yeast) to produce the final recombinant vaccine product (see, e.g., Nat Med. 2001;7:625-9).
[0093] GI-6301: GI-6301 is a heat-killed S. cerevisiae yeast-based vaccine expressing the human Brachyury (hBrachyury) oncoprotein. The Brachyury antigen is a full-length protein with an N-terminal MADEAP (Met-Ala-Asp-Glu-Ala-Pro) motif added to the hBrachyury sequence to facilitate antigen accumulation within the vector and a C-terminal hexahistidine epitope tag for Western blot analysis (see, e.g., Cancer Immunol Res. 2015;3:1248-56). Expression of the hBrachyury protein is controlled by the copper-inducible CUP1 promoter.
[0094] Head and neck squamous cell carcinoma (HNSCC):
[0095] Head and neck cancer collectively includes many malignant tumors involving the pharynx, larynx, nose, sinuses, and mouth. An estimated 60,000 patients are diagnosed with head and neck cancer each year in the United States, and approximately half of all patients diagnosed with HNSCC will die from the disease. Despite the availability of various treatment options, improvements in treatment outcomes and overall survival remain urgently needed.
[0096] In general, the overall goal of the HNSCC vaccine treatment presented herein is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. The principles for drug selection are summarized in Table 1, where i) tumor molecular profiling determines whether to administer ETBX-021, ii) tumor molecular profiling determines whether to administer GI-4000, iii) capecitabine is metabolized to 5-FU, iv) leucovorin enhances the activity of 5-FU, and v) either nivolumab or avelumab can be administered. [Table 1]
[0097] Figure 5 provides an exemplary and schematic representation of the mechanism by which each agent is thought to affect the immune system, resulting in ICD. By combining agents that simultaneously (or sequentially) target distinct but complementary mechanisms that enable tumor growth, treatment regimens aim to maximize anti-cancer activity and extend the duration of response to treatment.
[0098] To this end, the proposed treatment for HNSCC combines low-dose metronomic chemotherapy (LDMC), bevacizumab, cetuximab, cancer vaccines, low-dose radiation therapy, IL-15 superagonists, NK cell therapy, and checkpoint inhibitors. Such treatment regimens are believed to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. More specifically, treatment regimens include: (a) reducing immunosuppression in the TME (using LDMC to reduce the density of Tregs, MDSCs, and M2 macrophages, which contribute to immunosuppression in the TME; using bevacizumab to induce morphological changes in the TME that promote lymphocyte trafficking); (b) inducing and coordinating ICD signals (using LDMC and low-dose radiation therapy to enhance tumor cell antigenicity; using bevacizumab to alter the TME, which allows for more efficient antigen-specific T cell responses and renders tumor cells more susceptible to ICD; and (c) enhancing ADCC and cytotoxic T cell activity. (c) modulating dendritic cells and T cells (using cancer vaccines and IL-15 superagonists to enhance tumor-specific cytotoxic T cell responses); (d) enhancing the innate immune response (using NK cell therapy to enhance the innate immune system, using IL-15 superagonists to enhance the activity of endogenous and introduced NK cells, using low-dose radiation therapy to stimulate NK cell activity); and (e) maintaining the immune response (using checkpoint inhibitors to promote long-term anti-cancer immune responses) are designed to interfere with the escape phase of immunoediting.
[0099] HNSCC vaccine therapy is carried out in two phases: induction and maintenance. The purpose of the induction phase is to stimulate an immune response against tumor cells and reduce immunosuppression in the TME. The purpose of the maintenance phase is to sustain ongoing immune system activity against tumor cells, resulting in a sustainable therapeutic response. Exemplary uses and administration timing of compounds and compositions contemplated for the induction and maintenance phases are shown in Figures 6 and 7, respectively. Thus, the following agents and compositions are preferably used for the induction and maintenance phases:
[0100] 1. ALT-803, recombinant human superagonist IL-15 complex (also known as IL15N72D:IL-15RαSu / IgG1 Fc complex); 2. ETBX-011 (Ad5[E1-,E2b-]-CEA); 3. ETBX-021 (Ad5[E1-,E2b-]-HER2); 4. ETBX-051 (Ad5[E1-,E2b-]-Brachyury); 5. ETBX-061 (Ad5[E1-,E2b-]-MUC1); 6. GI-4000 (Ras yeast vaccine); 7. GI-6207 (CEA yeast vaccine); 8. GI-6301 (Brachyury yeast vaccine); 9. haNK™, NK-92 [CD16.158V, ER IL-2], suspension for intravenous infusion (haNK™ for injection); 10. avelumab (BAVENCIO® injection for IV use); 11. bevacizumab (AVASTIN® liquid for intravenous infusion); 12. capecitabine (XELODA® tablets for oral use); 13. cetuximab (Erbitux® injection for intravenous infusion); 14. cisplatin (cisplatin injection); 15. cyclophosphamide (cyclophosphamide capsules for oral use); 16. 5-FU (fluo Lauracil injection); 17. Fulvestrant (FASLODEX® for injection); 18. Leucovorin (leucovorin calcium for IV or IM use); 19. Nab-paclitaxel (Abraxane® [paclitaxel protein-bound particles for injectable suspension] [albumin-bound] for injectable suspension); 20. Nivolumab (OPDIVO® injection for intravenous use); 21. Omega-3-acid ethyl esters (Lovaza capsules for oral use); and 22. Stereotactic body radiation therapy (SBRT).
[0101] More specifically, an exemplary treatment protocol for HNSCC typically includes the following steps, phases, compounds and compositions:
[0102] Tumors will be assessed at screening, and tumor response will be assessed by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography (PET)-CT of target and non-target lesions according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC) every 8 weeks during the induction phase and every 3 months during the maintenance phase.
[0103] Prospective tumor molecular profiling: Prospective tumor profiling will be performed to provide information on HER2 expression and Ras mutation status and will be used to determine whether to administer ETBX-021 and GI-4000. All subjects will receive ETBX-011, ETBX-051, ETBX-061, GI-6207, and GI-6300, regardless of their tumor molecular profile. Prospective tumor molecular profiling will be performed on FFPE tumor tissue and whole blood (subject-matched normal control material for tumor tissue) collected at screening. Subjects will receive ETBX-021 if their tumors overexpress HER2 (≥750 attomoles / μg tumor tissue, as determined by quantitative mass spectrometry proteomics). Subjects will receive GI-4000 if their tumors are positive for specific Ras mutations, as determined by whole-genome sequencing. As mentioned above, GI4000 is a family of four distinct products (GI-4014, GI-4015, GI-4016, and GI-4020) from the GI-4000 series, each expressing a combination of mutated Ras oncoproteins. The specific Ras mutation determines which GI-4000 product is used for treatment (GI-4014 for G12V, GI-4015 for G12C, GI-4016 for G12D, GI-4020 for G12R or Q61H, and GI-4014, GI-4015, or GI-4016 for Q61L or Q61R).
[0104] Induction Phase: The induction phase involves repeated two-week cycles for a maximum treatment period of one year. The treatment regimen of omega-3 acid ethyl ester, cyclophosphamide, cisplatin, 5FU / leucovorin, nab-paclitaxel, bevacizumab, ALT-803, haNK cells, Ad5-based vaccines (ETBX-011, ETBX-021, ETBX-051, and ETBX-061), yeast-based vaccines (GI-4000, GI-6207, and GI-6301), nivolumab or avelumab, fulvestrant, cetuximab, and radiation therapy is repeated every two weeks. SBRT is administered concomitantly during the first four two-week cycles. Radiation is administered to all potential tumor sites using SBRT. Specifically, an exemplary induction phase of treatment follows the following administration regimen:
[0105] every day: Omega-3 acid ethyl esters (by mouth [PO] twice daily [BID] [3 x 1 g capsules and 2 x 1 g capsules])
[0106] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV)
[0107] Day 1, every 4 weeks (every other treatment cycle): Fulvestrant (500mg IM)
[0108] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50 mg orally (PO) twice daily [BID])
[0109] Days 1, 3, 5, 8, 10 and 12, every 2 weeks: 5-FU (400 mg / m over 24 hours) 2 (continuous IV infusion) Leucovorin (20 mg / m 2 IV bolus administration)
[0110] Days 1 and 8, every 2 weeks: Nab-paclitaxel (100mg IV) Cisplatin (40mg / m 2 IV)
[0111] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): ETBX-011, ETBX-021, ETBX-051, ETBX-061 (5×10 11 viral particles [VP] / vaccine / dose subcutaneous [SC])
[0112] GI-4000, GI-6207, GI-6301 (40 yeast units [YU] / vaccine / dose SC), 2 hours after administration of AD5-based vaccines
[0113] Prospective molecular profiling of tumors will determine whether to administer ETBX-021 and GI-4000, as described above.
[0114] 8th day, every week Cetuximab (250mg IV)
[0115] Day 8, every 2 weeks: Nivolumab (3 mg / kg IV over 1 hour) or avelumab (10 mg / kg IV over 1 hour)
[0116] Days 8, 22, 36, and 50 (every 2 weeks for 4 doses): SBRT (not to exceed 8 Gy, exact dose determined by radiation oncologist)
[0117] Day 9, every 2 weeks: ALT-803 (10 μg / kg SC aNK injection 30 minutes before)
[0118] Days 9 and 11, every 2 weeks: ·haNK(2×10 9 cells / dose, IV)
[0119] Maintenance phase:
[0120] The maintenance phase lasts up to one year after the completion of the last treatment in the induction phase. It involves repeated two-week cycles of omega-3 acid ethyl esters, cyclophosphamide, capecitabine, nab-paclitaxel, bevacizumab, ALT-803, haNK cells, Ad5-based vaccines (ETBX-011, ETBX-021, ETBX-051, and ETBX-061), yeast-based vaccines (GI-4000, GI-6207, and GI-6301), nivolumab or avelumab, fulvestrant, and cetuximab.
[0121] The maintenance phase of treatment will be conducted according to the following dosing regimen:
[0122] every day: Omega-3 acid ethyl esters (by mouth [PO] twice daily (BID) [3 x 1 g capsules and 2 x 1 g capsules])
[0123] Day 1, every 2 weeks Bevacizumab (5mg / kg IV) Nab-paclitaxel (100mg IV) Nivolumab (3 mg / kg IV over 1 hour) or avelumab (10 mg / kg IV over 1 hour) Cetuximab (250mg IV)
[0124] Day 1, every 4 weeks (every other treatment cycle): Fulvestrant (500 mg IM)
[0125] Days 1-5 and 8-12, every 2 weeks: Capecitabine (650 mg / m 2 PO BID) Cyclophosphamide (50mg PO BID)
[0126] Day 2, every 2 weeks: ALT-803 (10 μg / kg SC) (30 minutes before aNK injection) ·haNK(2×10 9 cells / dose, IV)
[0127] Day 5, then every 8 weeks: ·ETBX-011, ETBX-021, ETBX-051, ETBX-061 (5×10 11 VP / vaccine / dose (subcutaneous [SC]) · GI-4000, GI-6207, GI-6301 (40 YU / vaccine / dose SC), 2 hours after administration of AD5-based vaccines.
[0128] Prospective tumor molecular profiling will determine whether to administer ETBX-021 and GI-4000, as described above. Figure 8 shows a schematic of an exemplary treatment protocol.
[0129] Tumor molecular profiling: Genome sequencing of tissue-derived tumor cells compared with non-tumor cells from whole blood is performed to identify tumor-specific genomic variations that may contribute to disease progression and / or respond to treatment. RNA sequencing is performed to provide expression data and correlate with DNA mutations. Quantitative proteomic analysis is performed to determine the absolute abundance of specific proteins, confirm the expression of genes correlated with disease progression and / or response, and determine cutoff values for response. All genomic, transcriptional, and protein molecular analyses are preliminary, except for prospective tumor molecular analysis of HER2 expression by quantitative proteomics and analysis of Ras mutation status by genome sequencing to determine whether to administer ETBX-021 and GI-4000.
[0130] Follow-up Analysis / Sample Collection and Analysis: Tumor molecular profiling will be performed on FFPE tumor tissue and whole blood (subject matched normal comparator material for tumor tissue) by next-generation sequencing and mass spectrometry-based quantitative proteomics. Tumor tissue and whole blood samples will be collected and shipped according to the instruction cards included with the Tissue Specimen Kit and Blood Specimen Kit. Specimen requirements and methodology for sample collection are described in the NantOmics Sample Collection Manual. FFPE tumor tissue samples are required for extraction of tumor DNA, tumor RNA, and tumor protein. Whole blood samples are required for extraction of subject normal DNA. Tumor tissue and whole blood will be processed in a CLIA-certified and CAP-accredited clinical laboratory.
[0131] Preliminary immunological analysis: One of the goals of immunotherapy treatment is to generate an antigen-specific antitumor immune response. Preliminary immunological analysis is used to provide a preliminary assessment of the immune response induced by the treatment. Blood samples for immune analysis will be collected from subjects at scheduled blood collection times: at screening, monthly during the induction phase, and every two months during the maintenance phase. PBMCs isolated by Ficoll-Hypaque density gradient separation will be analyzed for antigen-specific immune responses using an ELISpot assay for IFN-γ or granzyme B secretion after exposure to the following tumor-associated antigen peptides: CEA, brachyury, and MUC1, and, in the case of ETBX-021 and GI-4000, HER2 and mutant Ras, respectively. Fluorescence spectroscopy will be used to evaluate T cell responses using an intracellular cytokine staining assay for IFN-γ or TNF-α expression after exposure to tumor-associated antigen peptides. Flow cytometry analysis of CD107a expression on cells is used to test for degranulated cells such as CD8+ T cells and NK cells. PBMCs are stimulated in vitro with overlapping 15-mer peptide pools encoding the tumor-associated antigens listed above. Control peptide pools include an irrelevant antigen peptide pool as a negative control and a CEFT peptide mixture as a positive control. CEFT is a mixture of peptides from CMV, Epstein-Barr virus, influenza, and tetanus toxin. Analysis of CD4+ and CD8+ T cell stimulation includes the production of IFN-γ, TNF-α, and CD107a expression. Serum is analyzed for antibodies directed against the tumor-associated antigens listed above, neutralizing antibody titers against adenovirus (serotype 5), and potential antibody development against the IL-15N72D:IL-15RαSu / IgG1 Fc complex.
[0132] Assay of Circulating Tumor DNA and RNA: As tumors evolve during treatment, drug-resistant cells emerge. These can be difficult to detect and render tumors resistant to initial treatment. Blood-based testing for ctDNA and ctRNA can track the emergence of drug-resistant tumor cells and identify novel drug targets and treatment options for patients. Whole blood will be collected at screening and every month during the induction phase and every two months during the maintenance phase during scheduled blood draws for ctDNA and ctRNA analysis. Expression levels of specific tumor- and immune-related analytes in ctDNA and ctRNA will be measured by qPCR and analyzed for correlation with subject prognosis.
[0133] Merkel cell carcinoma:
[0134] Skin cancer is the most common malignancy diagnosed in the United States, with over 2 million Americans diagnosed with skin cancer each year. Merkel cell carcinoma (MCC) is an extremely rare and aggressive type of skin cancer thought to arise from Merkel cells, located between the dermis and epidermis layers of the skin. Approximately 1,500 new cases were predicted in the United States in 2007. MCC is more common in Caucasian men over 65 years of age and in subjects with acquired (e.g., HIV infection) or iatrogenic (e.g., treatment for autoimmune diseases) immunosuppression. Exposure to ultraviolet light is an independent risk factor for the disease and may contribute to the increased incidence of MCC.
[0135] MCC limited to the skin has a favorable prognosis and is often curable with surgery alone. The 5-year OS rate for subjects with localized disease is 66% for tumors less than 2 cm and 51% for tumors larger than 2 cm. Metastatic MCC has a poorer prognosis, with a 5-year OS rate of 39% for subjects with regional lymph node involvement and 18% for subjects with metastasis to distant organs. Advanced disease stage, location in the perineum or lower extremities, male gender, older age (>60 years), immunosuppression, comorbidities, high mitotic rate, and angiolymphatic invasion are associated with a poor prognosis. Surgical resection is the cornerstone of treatment for MCC, with the goal of establishing clear surgical margins through wide local excision. Adjuvant radiation therapy to the primary tumor site in patients with stage I / II MCC has been shown to improve OS. However, although some studies suggest that chemotherapy may increase survival in subjects with advanced MCC, neither systemic chemotherapy nor radiation therapy improves OS in subjects with stage III disease.
[0136] Cytotoxic chemotherapy is often used to treat metastatic MCC. Although a small number of chemotherapy-treated patients respond well to treatment, the response is usually transient and rarely results in a significant increase in survival time. Adjuvant treatment with etoposide and carboplatin has not been associated with an OS benefit for patients with progressive locoregional disease. Several studies have demonstrated high objective antitumor responses (>50%) in patients with metastatic MCC using cytotoxic chemotherapy (etoposide-carboplatin and cyclophosphamide-doxorubicin-vincristine-prednisone being the most frequently used). However, these responses are rarely durable and are associated with a median OS of 9 months. Furthermore, a high rate of chemotoxic death is associated with first-line treatment. Currently, there is limited data available to guide treatment decisions regarding chemotherapy and radiation therapy, and decisions are often made based on comorbidities and consideration of adverse events. For subjects with metastatic MCC, the limited treatment options and limited effectiveness of available treatments highlight the need for additional treatment options.
[0137] In general, the overall goal of vaccine therapy for Merkel cell carcinoma is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. The principles for drug selection are summarized in Table 2, where 5-FU is 5-fluorouracil; haNK is high-affinity activated natural killer; ICD is immunogenic cell death; SBRT is stereotactic radiotherapy; and TME is the tumor microenvironment. [Table 2]
[0138] Figure 9 exemplarily and schematically illustrates the mechanism by which each agent affects the immune system, resulting in ICD. By combining agents that simultaneously (or sequentially) target distinct but complementary mechanisms that enable tumor growth, treatment regimens aim to maximize anti-cancer activity and extend the duration of the response to treatment.
[0139] To this end, contemplated treatments for MCC combine LDMC, bevacizumab, cancer vaccines, low-dose radiation therapy, IL-15 superagonists, NK cell therapy, and checkpoint inhibitors. Such treatments are believed to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. More specifically, treatment regimens include: (a) reducing immunosuppression in the TME (using LDMC to reduce the density of Tregs, MDSCs, and M2 macrophages, which contribute to immunosuppression in the TME; using bevacizumab to induce morphological changes in the TME that promote lymphocyte trafficking); (b) inducing and coordinating ICD signals (using LDMC and low-dose radiation therapy to enhance tumor cell antigenicity; using bevacizumab to alter the TME, which allows for more efficient antigen-specific T cell responses and renders tumor cells more susceptible to ICD; and omega-3 acid ethyl esters to enhance ICD without increasing toxicity). (d) modulating dendritic cells and T cells (using cancer vaccines and IL-15 superagonists to enhance tumor-specific cytotoxic T cell responses); (e) enhancing the innate immune response (using NK cell therapy to enhance the innate immune system, using IL-15 superagonists to increase the activity of endogenous and introduced NK cells, using hypofractionated doses of radiation therapy to upregulate NK ligands on tumor cells to enhance the tumor cytotoxicity of NK cells); and (f) maintaining the immune response (using checkpoint inhibitors to promote long-term anti-cancer immune responses) are designed to disrupt the escape phase of immunoediting.
[0140] MCC vaccine therapy is carried out in two phases: induction and maintenance. The purpose of the induction phase is to stimulate an immune response against tumor cells and reduce immunosuppression in the TME. The purpose of the maintenance phase is to sustain ongoing immune system activity against tumor cells, resulting in a sustainable therapeutic response. Exemplary uses and administration timing of compounds and compositions contemplated for the induction and maintenance phases are shown in Figures 10 and 11, respectively. Thus, the following agents and compositions are preferably used for the induction and maintenance phases:
[0141] 1. ALT-803, recombinant human superagonist interleukin-15 (IL-15) complex (also known as IL15N72D:IL-15RαSu / IgG1 Fc complex); 2. avelumab (BAVENCIO® injection for IV use); 3. bevacizumab (AVASTIN® liquid for intravenous infusion); 4. capecitabine (XELODA® tablets for oral use); 5. cisplatin (cisplatin injection); 6. cyclophosphamide (cyclophosphamide capsules for oral use); 7. ETBX-051 (Ad5[E1-,E2b-]-Brachyury); 8. ETBX-061 (Ad5[E1-,E2b-]-MUC1); 9. 5-FU (fluorouracil injection for IV use only); 10. GI-6301 (Brachyury) Yeast vaccine); 11. haNK™, NK-92 [CD16.158V, ER IL-2], suspension for intravenous infusion (haNK™ for infusion); 12. Leucovorin (leucovorin calcium for IV or IM use); 13. Nab-paclitaxel (Abraxane® [paclitaxel protein-bound particles for injectable suspension] [albumin-bound] for injectable suspension); 14. Omega-3-acid ethyl esters (Lovaza capsules for oral use); and 15. SBRT.
[0142] More specifically, an exemplary protocol for MCC generally includes the following steps, stages, compounds, and compositions:
[0143] Tumors will be assessed at screening, and tumor response will be assessed every 8 weeks during the induction phase and every 12 weeks during the maintenance phase by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography-computed tomography (PET-CT) of target and non-target lesions according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC).
[0144] Tumor biopsies and preliminary tumor molecular profiling will be performed at screening, at the end of the initial induction phase (8 weeks after treatment initiation), and during potential long-term induction and maintenance phases (depending on response). Separate blood tubes will be collected every month during the induction phase and every two months during the maintenance phase, between routine blood draws for preliminary immunology and ctDNA / ctRNA analysis.
[0145] Induction Phase: The induction phase involves repeated 2-week cycles. The treatment regimen of omega-3 acid ethyl esters, cyclophosphamide, cisplatin, 5FU / leucovorin, nab-paclitaxel, bevacizumab, ALT-803, haNK cells, Ad5-based vaccines (ETBX-051 and ETBX-061), GI-6301 yeast vaccine, and avelumab is repeated every 2 weeks. SBRT is given concomitantly during the first four 2-week cycles. Radiation is delivered to all potential tumor sites using SBRT. Contemplated techniques include linear accelerator-based therapy (3D radiation therapy and intensity-modulated radiation therapy [IMRT]). Specifically, the induction phase of treatment follows the following administration regimen:
[0146] Day 1, each day: Omega-3 acid ethyl esters (5 x 1g capsules, orally [PO])
[0147] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV)
[0148] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50 mg orally (PO) twice daily [BID])
[0149] Days 1, 3, 5, 8, 10 and 12, every 2 weeks: 5-FU (400 mg / m as a continuous IV infusion over 24 hours) 2 ) Leucovorin (20 mg / m 2 IV bolus administration)
[0150] Days 1 and 8, every 2 weeks Nab-paclitaxel (100mg IV) Cisplatin (40mg / m 2 IV)
[0151] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): ETBX-051, ETBX-061 (5 x 10 11 viral particles [VP] / vaccine / dose subcutaneous [SC]) GI-6301 (40 yeast units [YU] / dose SC), 2 hours after administration of an Ad5-based vaccine
[0152] Day 8, every 2 weeks: Avelumab (10 mg / kg IV over 1 hour)
[0153] Days 8, 22, 36, and 50 (every 2 weeks for 4 doses): SBRT (not to exceed 8 Gy, exact dose determined by radiation oncologist)
[0154] Day 9, every 2 weeks: ALT-803 (10 μg / kg SC 30 minutes before haNK injection)
[0155] Days 9 and 11, every 2 weeks: ·haNK(2×10 9 cells / dose, IV)
[0156] Maintenance Phase: The maintenance phase of treatment will be conducted according to the following dosing regimen:
[0157] Day 1, each day: Omega-3 acid ethyl esters (5 x 1g capsules PO)
[0158] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV) Nab-paclitaxel (100mg IV) Avelumab (10 mg / kg IV over 1 hour)
[0159] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50mg PO BID) Capecitabine (650 mg / m 2 PO BID)
[0160] Day 2, every 2 weeks ALT-803 (10 μg / kg SC) (30 minutes before haNK injection) ·haNK(2×10 9 cells / dose, IV)
[0161] Day 5, then every 8 weeks ETBX-051, ETBX-061 (5 x 10 11 VP / vaccine / dose SC) GI-6301 (40YU / dose SC), 2 hours after administration of Ad5-based vaccine
[0162] FIG. 12 illustrates a schematic of an exemplary treatment protocol.
[0163] Molecular profiling of tumors before, during, and after treatment will be performed on FFPE tumor tissue and whole blood (subject's matched normal comparator material for tumor tissue) by next generation sequencing and mass spectrometry-based quantitative proteomics.
[0164] Follow-up Analysis / Sample Collection and Analysis: Most typically, FFPE tumor tissue specimens are required for extraction of tumor DNA, tumor RNA, and tumor protein, and whole blood samples are required for extraction of subject normal DNA. Tumor tissue and whole blood are processed in a CLIA-certified and CAP-accredited clinical laboratory.
[0165] Preliminary immunological analysis: One of the goals of immunotherapy treatment is to generate an antigen-specific antitumor immune response. Preliminary immunological analysis is used to provide a preliminary assessment of the immune response induced by the treatment. Blood samples for immune analysis are collected from subjects at scheduled blood draws at screening / baseline, monthly during the induction phase, and every two months during the maintenance phase. A 10.0 mL sample is required at each blood draw. PBMCs isolated by Ficoll-Hypaque density gradient separation are analyzed for antigen-specific immune responses using an ELISpot assay for IFN-γ or granzyme B secretion after exposure to brachyury and MUC1 peptides. Flow cytometry is used to evaluate T cell responses using an intracellular cytokine staining assay for IFN-γ or TNF-α expression after exposure to brachyury and MUC1 peptides. Flow cytometry analysis of CD107a expression on cells is used to test for degranulated cells such as CD8+ T cells and NK cells (Kannan 1996). PBMCs are stimulated in vitro with overlapping 15-mer peptide pools encoding brachyury and MUC1. Control peptide pools include an irrelevant antigen peptide pool as a negative control and a CEFT peptide mixture as a positive control. CEFT is a mixture of peptides from cytomegalovirus, EBV, influenza, and tetanus toxin. Analysis of CD4 and CD8 T cells after stimulation includes the production of IFN-γ, TNF-α, and CD107a expression. Serum is analyzed for antibodies against brachyury and MUC1, neutralizing antibody titers against adenovirus (serotype 5), and potential antibodies against the IL-15N72D:IL-15RαSu / IgG1 Fc complex.
[0166] Assay of Circulating Tumor DNA and RNA: As tumors evolve during treatment, drug-resistant cells emerge. These can be difficult to detect and render tumors resistant to initial treatment. Blood-based testing for ctDNA and ctRNA can track the emergence of drug-resistant tumor cells and identify novel drug targets and treatment options for patients. Whole blood is collected at screening / baseline and every month during the induction phase and every two months during the maintenance phase, during scheduled blood draws for ctDNA and ctRNA analysis. A 20.0 mL sample is required at the time of blood draw. Whole blood is drawn into Cell-Free DNA BCT® tubes or Cell-Free RNA BCT® tubes containing DNA or RNA stabilizers, respectively. Expression levels of specific tumor- and immune-related analytes in ctDNA and ctRNA are measured by qPCR and analyzed for correlation with subject prognosis.
[0167] Melanoma:
[0168] Skin cancer is the most common malignancy diagnosed in the United States, with over 2 million Americans diagnosed with skin cancer each year. There are three main types of skin cancer: basal cell carcinoma, squamous cell carcinoma (SCC), and melanoma, collectively referred to as non-melanoma skin cancer. Melanoma is a malignant tumor of melanocytes and comprises only about 1% of skin cancers but accounts for the majority of skin cancer deaths. An estimated 87,110 new cases of melanoma will be diagnosed in the United States in 2017, with an estimated 9,730 deaths.
[0169] The incidence of melanoma is rising rapidly in the United States, with incidence rates doubling between 1982 and 2011. Over 90% of melanoma cases are due to excessive UV exposure, and the rising incidence likely reflects increased cumulative UV exposure. In addition to sun exposure, risk factors for melanoma development include skin pigmentation, with lighter skin being associated with a higher risk. Melanoma is 20 times more common in Caucasians than in African Americans. A positive family history of melanoma and the presence of several rare genetic mutations are also associated with a higher risk of the disease.
[0170] Treatment for early-stage melanoma is highly effective, with 5-year survival rates exceeding 90% in patients with localized disease. Treatment options for early-stage melanoma focus on tumor resection while achieving positive tumor margins. However, for patients with metastatic or recurrent disease, the prognosis is significantly worse, with 5-year survival rates historically below 10% and median OS of less than 1 year.
[0171] Treatment options for unresectable, late-stage, recurrent melanoma include intralesional therapy, immunotherapy, signal transduction inhibitors, chemotherapy, and palliative local therapy. Novel immunotherapies offer new treatment options for patients with advanced-stage melanoma, and treatment with these agents has resulted in durable responses in some patients. Currently approved immunotherapies for the treatment of advanced melanoma include interleukin-2 (IL-2) and the checkpoint inhibitors ipilimumab, nivolumab, and pembrolizumab. A retrospective analysis of eight trials of patients with metastatic melanoma treated with high-dose IL-2 demonstrated an overall response rate of 16%. Of those who responded, 28% remained progression-free at a median follow-up of 62 months. However, the high toxicity associated with IL-2, including capillary leak syndrome, limits its widespread use. In randomized trials, two approaches in particular, checkpoint inhibition and inhibition of the mitogen-activated protein kinase (MAPL) signaling pathway, have demonstrated improved OS compared with dacarbazine monotherapy, which has long been the SoC for advanced melanoma. In clinical trials, treatment with dacarbazine resulted in an ORR of 10–20% but was not associated with improved OS.
[0172] Signal transduction inhibitors targeting the MAPK pathway, particularly BRAF (v-Raf murine sarcoma viral oncogene homolog B1) and mitogen-activated ERK (extracellular signal-regulated kinase)-activating kinase (MEK), have also been investigated as treatments for patients with unresectable or progressive disease. Mutations in the BRAF gene are the most frequent mutation in cutaneous melanoma. Approximately 40% to 60% of malignant melanomas harbor single nucleotide mutations in BRAF, the most common of which is a glutamic acid substitution of valine at position 600 (BRAF V600E). Vemurafenib, a selective BRAF V600E kinase inhibitor, has shown improvements in PFS and OS in patients with progressive disease, although its efficacy is limited to patients with the BRAF V600E mutation detected by an FDA-approved test. Dabrafenib, another selective BRAF inhibitor, has shown improved PFS compared with dacarbazine. The MEK inhibitors trametinib and cobimetinib have also been approved for the treatment of patients with unresectable or metastatic melanoma. Trametinib monotherapy demonstrated improved PFS compared with chemotherapy (either dacarbazine or paclitaxel). Similarly, cobimetinib in combination with vemurafenib demonstrated a significant increase in PFS compared with vemurafenib alone.
[0173] Although treatment options for unresectable, late-stage, and recurrent melanoma are increasing, neither checkpoint blockade nor inhibition of the MAPK pathway appears to be effective in treating the disease when used as monotherapy.
[0174] In general, the overall goal of melanoma vaccine therapy is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. The rationale for the selection of agents included in the contemplated therapy is summarized in Table 3, where a) represents the administration of either avelumab or nivolumab; b) capecitabine represents metabolism to 5-FU; and c) leucovorin represents enhancement of the activity of 5-FU.
[0175] [Table 3]
[0176] Figure 13 exemplarily and schematically illustrates the mechanism by which each agent affects the immune system, resulting in ICD. By combining agents that simultaneously target distinct but complementary mechanisms that enable tumor growth, treatment regimens aim to maximize anti-cancer activity and extend the duration of the therapeutic response.
[0177] To this end, the proposed melanoma treatment combines LDMC, bevacizumab, cancer vaccines, low-dose radiation therapy, IL-15 superagonists, NK cell therapy, and checkpoint inhibitors. The overall goal of the treatment regimen is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. More specifically, the treatment involves (a) alleviating immunosuppression in the TME (using LDMC to reduce the density of Tregs, MDSCs, and M2 macrophages, which contribute to immunosuppression in the TME; using bevacizumab to induce morphological changes in the TME that promote lymphocyte trafficking); (b) inducing and coordinating ICD signaling (using LDMC and low-dose radiation therapy to enhance tumor cell antigenicity; using bevacizumab to alter the TME, which allows for more efficient antigen-specific T cell responses and renders tumor cells more susceptible to ICD; and (c) dendritic cell proliferation and proliferation (using omega-3 acid ethyl esters to enhance ICD without increasing toxicity). These approaches are designed to disrupt the escape phase of immunoediting by modulating tumor cells and T cells (using cancer vaccines and IL-15 superagonists to enhance tumor-specific cytotoxic T cell responses); (d) enhancing the innate immune response (using NK cell therapy to enhance the innate immune system, using IL-15 superagonists to increase the activity of endogenous and introduced NK cells, using hypofractionated doses of radiation therapy to upregulate NK ligands on tumor cells to enhance the tumor cytotoxicity of NK cells); and (e) maintaining the immune response (using checkpoint inhibitors to promote long-term anti-cancer immune responses).
[0178] Vaccine therapy for melanoma is carried out in two phases: induction and maintenance. The purpose of the induction phase is to stimulate an immune response against tumor cells and reduce immunosuppression in the TME. The purpose of the maintenance phase is to sustain the ongoing activity of the immune system against tumor cells, resulting in a sustainable therapeutic response. Exemplary uses and administration timing of compounds and compositions contemplated for the induction and maintenance phases are shown in Figures 14 and 15, respectively. Thus, the following agents and compositions are preferably used for the induction and maintenance phases:
[0179] 1. ALT-803, a recombinant human superagonist interleukin-15 (IL-15) complex (IL15N72D:IL-15RαSu / IgG1) Also known as Fc complex; 2. Avelumab (BAVENCIO® injection for IV use); 3. Bevacizumab (AVASTIN® liquid for intravenous infusion); 4. Capecitabine (XELODA® tablets for oral use); 5. Cisplatin (Cisplatin injection); 6. Cyclophosphamide (Cyclophosphamide capsules for oral use); 7. ETBX-011 (Ad5[E1-,E2b-]-CEA); 8. ETBX-051 (Ad5[E1-,E2b-]-Brachyury); 9. ETBX-061 (Ad5[E1-,E2b-]-MUC1); 10. 5-FU (Fluorouracil injection for IV use only); 11. GI-6207 (CEA yeast vaccine); 12. GI-6301 (Brachyury) Yeast vaccine); 13. haNK™, NK-92 [CD16.158V, ER IL-2], suspension for intravenous infusion (haNK™ for Infusion); 14. Leucovorin (leucovorin calcium for IV or IM use); 15. Nab-paclitaxel (Abraxane® [paclitaxel protein-bound particles for injectable suspension] [albumin-bound] for injectable suspension); 16. Nivolumab (OPDIVO® Injection for intravenous use); 17. Omega-3-acid ethyl esters (Lovaza capsules for oral use); 18. SBRT.
[0180] More specifically, an exemplary treatment protocol for melanoma typically includes the following steps, phases, compounds, and compositions:
[0181] Tumor biopsies and preliminary tumor molecular profiling will be performed at screening, at the end of the initial induction phase (8 weeks after initiation of treatment), and during potential long-term induction and maintenance phases (depending on response). Separate blood tubes will be collected every month during the induction phase and every two months during the maintenance phase, during scheduled blood draws for preliminary immunology and ctDNA / ctRNA analysis.
[0182] Tumors will be assessed at screening, and tumor response will be assessed every 8 weeks during the induction phase and every 12 weeks during the maintenance phase by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography-computed tomography (PET-CT) of target and non-target lesions according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC).
[0183] Induction Phase: The induction phase involves repeated two-week cycles. The treatment regimen of ALT-803, Ad5-based vaccines (ETBX-011, ETBX-051, and ETBX-061), yeast-based vaccines (GI-6207 and GI-6301), haNK cells, avelumab or nivolumab, bevacizumab, cisplatin, cyclophosphamide, 5FU / leucovorin, nab-paclitaxel, and omega-3-acid ethyl ester is repeated every two weeks. SBRT is administered concomitantly during the first four two-week cycles. Radiation is administered to all potential tumor sites using SBRT. Specifically, an exemplary induction phase of melanoma treatment follows the following administration regimen:
[0184] every day: Omega-3 acid ethyl esters (by mouth [PO], twice daily [BID] [3 x 1 g capsules and 2 x 1 g capsules])
[0185] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV)
[0186] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50mg PO BID)
[0187] Days 1, 3, 5, 8, 10 and 12, every 2 weeks: 5-FU (400 mg / m as a continuous IV infusion over 24 hours) 2 ) Leucovorin (20 mg / m 2 IV bolus administration)
[0188] Days 1 and 8, every 2 weeks: Nab-paclitaxel (100mg IV) Cisplatin (40mg / m 2 IV)
[0189] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): ·ETBX-011, ETBX-051, ETBX-061 (5×10 11 viral particles [VP] / vaccine / dose subcutaneous [SC]) GI-6207, GI-6301 (40 yeast units [YU] / vaccine / dose SC), 2 hours after administration of Ad5-based vaccine
[0190] Day 8, every 2 weeks: Avelumab (10 mg / kg IV over 1 hour) or nivolumab (3 mg / kg IV over 1 hour)
[0191] Days 8, 22, 36, and 50 (every 2 weeks for 4 doses): SBRT (not to exceed 8 Gy, exact dose determined by radiation oncologist)
[0192] Day 9, every 2 weeks: ALT-803 (10 μg / kg SC 30 minutes before haNK injection)
[0193] Days 9 and 11, every 2 weeks: ·haNK(2×10 9 cells / dose, IV)
[0194] Maintenance Phase: The duration of the maintenance phase is up to 1 year after the completion of the last treatment in the induction phase. The maintenance phase involves repeated 2-week cycles of ALT-803, Ad5-based vaccines (ETBX-011, ETBX 051, and ETBX 061), yeast-based vaccines (GI-6207 and GI-6301), haNK cells, avelumab or nivolumab, bevacizumab, capecitabine, cyclophosphamide, nab-paclitaxel, and omega-3-acid ethyl esters.
[0195] The maintenance phase of treatment will follow the following dosing regimen:
[0196] every day: Omega-3 acid ethyl esters (PO BID [3 x 1g capsules and 2 x 1g capsules])
[0197] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV) Nab-paclitaxel (100mg IV) Avelumab (10 mg / kg IV over 1 hour) or nivolumab (3 mg / kg IV over 1 hour)
[0198] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50mg PO BID) Capecitabine (650 mg / m 2 PO BID)
[0199] Day 2, every 2 weeks ALT-803 (10 μg / kg SC 30 minutes before haNK injection) ·haNK(2×10 9 cells / dose, IV)
[0200] Day 5, then every 8 weeks ·ETBX-011, ETBX-051, ETBX-061 (5×10 11 VP / vaccine / dose SC) GI-6301 (40YU / dose SC), 2 hours after administration of Ad5-based vaccine
[0201] FIG. 16 illustrates a schematic representation of an exemplary treatment protocol.
[0202] Tumor molecular profiling: The genomes of tumor cells from tissues are sequenced compared to non-tumor cells from whole blood to identify tumor-specific genomic variations that may contribute to disease progression and / or respond to treatment. RNA sequencing is performed to provide expression data and correlate with DNA mutations. Quantitative proteomic analysis is performed to determine the absolute abundance of specific proteins, identify gene expression correlated with disease progression and / or response, and determine cutoff values for response.
[0203] Follow-up Analysis / Sample Collection and Analysis: Tumor molecular profiling will be performed on FFPE tumor tissue and whole blood (subject matched normal comparator material for tumor tissue) by next generation sequencing and mass spectrometry-based quantitative proteomics. Collection of tumor tissue and whole blood at screening and at the end of the first induction phase (8 weeks after initiation of treatment) is planned.
[0204] Tumor tissue and whole blood samples are collected and shipped according to the instruction cards included with the Tissue Specimen Kit and Blood Specimen Kit. FFPE tumor tissue specimens are required for extraction of tumor DNA, tumor RNA, and tumor protein. Whole blood samples are required for extraction of subject's normal DNA. Tumor tissue and whole blood are processed in a CLIA-certified and CAP-accredited clinical laboratory.
[0205] Preliminary immunological analysis: One of the goals of immunotherapy treatment is to generate an antigen-specific antitumor immune response. Preliminary immunological analysis is used to provide a preliminary assessment of the immune response induced by the treatment. Blood samples for immune analysis are collected from subjects at scheduled blood collection times: at screening, monthly during the induction phase, and every two months during the maintenance phase. A 10.0 mL sample is required at each blood collection. PBMCs isolated by Ficoll-Hypaque density gradient separation are analyzed for antigen-specific immune responses using an ELISpot assay for IFN-γ or granzyme B secretion after exposure to CEA, brachyury, and MUC1 peptides. Flow cytometry is used to evaluate T cell responses using an intracellular cytokine staining assay for IFN-γ or TNF-α expression after exposure to CEA, brachyury, and MUC1 peptides. Flow cytometry analysis of CD107a expression on cells is used to test for degranulated cells such as CD8+ T cells and NK cells (Kannan 1996). PBMCs are stimulated in vitro with overlapping 15-mer peptide pools encoding CEA, brachyury, and MUC1. Control peptide pools include an irrelevant antigen peptide pool as a negative control and a CEFT peptide mixture as a positive control. CEFT is a mixture of peptides from cytomegalovirus, EBV, influenza, and tetanus toxin. Analysis of CD4 and CD8 T cells after stimulation includes the production of IFN-γ, TNF-α, and CD107a expression. Serum is analyzed for antibodies against CEA, brachyury, and MUC1, neutralizing antibody titers against adenovirus (serotype 5), and for the development of potential antibodies against the IL-15N72D:IL-15RαSu / IgG1 Fc complex.
[0206] Assay of Circulating Tumor DNA and RNA: As tumors evolve during treatment, drug-resistant cells emerge. These can be difficult to detect and render tumors resistant to initial treatment. Blood-based testing for ctDNA and ctRNA can track the emergence of drug-resistant tumor cells and identify novel drug targets and treatment options for patients. Whole blood will be collected at screening and every month during the induction phase and every two months during the maintenance phase during scheduled blood draws for ctDNA and ctRNA analysis. Expression levels of specific tumor- and immune-related analytes in ctDNA and ctRNA will be measured by qPCR and analyzed for correlation with subject prognosis.
[0207] Non-Hodgkin's lymphoma: NHL is a highly prevalent disease in the United States, with an estimated 72,240 new cases diagnosed in 2017, accounting for approximately 4% of all cancers. It is the ninth leading cause of cancer-related deaths, accounting for an estimated 20,140 deaths in 2017. NHL can be classified as either B-cell or T-cell lymphoma. Approximately 85% of NHL cases in the United States are B-cell lymphoma. B-cell lymphomas include various subtypes, including diffuse large B-cell lymphoma (DLBCL), follicular lymphoma, small lymphocytic lymphoma, mantle cell lymphoma, marginal zone lymphoma, Burkitt lymphoma, and lymphoplasmacytic lymphoma. Among B-cell lymphomas, DLBCL is the most common and is usually an aggressive disease. Follicular lymphoma, small lymphocytic lymphoma, marginal zone lymphoma, and lymphoplasmacytic lymphoma tend to be indolent diseases. Fewer than 15% of NHL cases in the United States are T-cell lymphoma. As with B-cell lymphoma, there are many subtypes of T-cell lymphoma, including precursor T-lymphoblastic lymphoma and peripheral T-cell lymphoma. Patients with NHL usually present with aggressive stage (III / IV) disease, and many are initially asymptomatic.
[0208] Treatment for NHL varies based on the type and severity of the disease and includes chemotherapy, immunotherapy, targeted therapy, radiation therapy, and stem cell transplantation. Standard first-line treatment for CD20-positive NHL involves treatment with the anti-CD20 antibody rituximab, either alone or in combination with chemotherapy, such as cyclophosphamide, doxorubicin, vincristine, and prednisone (R-CHOP); bendamustine (R-bendamustine), and cyclophosphamide, vincristine, and prednisone (R-CVP). Patients who relapse after treatment with rituximab are classified as rituximab-resistant (RR) or rituximab-sensitive (RS). Patients are considered RR if their disease progresses while receiving rituximab or if their disease progresses within 6 months of their last rituximab treatment. Patients are considered to have RS if they respond to prior rituximab-containing regimens and if they relapse more than 6 months after the last dose of rituximab. In patients with RS, approximately 40% of patients respond to retreatment with rituximab. Although clinical trial-based response and survival data have not been reported for RR patients retreated with rituximab alone, reasonable estimates are a low response rate (<5%) to single-agent rituximab retreatment.
[0209] Although most patients initially respond to treatment, many eventually relapse and require further treatment. Additionally, some patients do not respond to initial treatment. More effective treatments remain needed for CD20-positive NHL.
[0210] In general, the overall goal of vaccine therapy for NHL is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. The rationale for drug selection is summarized in Table 4, where (a) capecitabine is metabolized to 5-FU and (b) leucovorin enhances the activity of 5-FU. [Table 4]
[0211] Figure 17 exemplarily and schematically illustrates the mechanism by which each agent affects the immune system, resulting in ICD. By combining agents that simultaneously (or sequentially) target distinct but complementary mechanisms that enable tumor growth, treatment regimens aim to maximize anti-cancer activity and extend the duration of the response to treatment.
[0212] To this end, the proposed NHL treatment combines LDMC, rituximab, bevacizumab, cancer vaccines, low-dose radiation therapy, IL-15 superagonists, NK cell therapy, and checkpoint inhibitors. The overall goal of the treatment regimen is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. Specifically, the treatment involves (a) alleviating immunosuppression in the TME (using LDMC to reduce the density of Tregs, MDSCs, and M2 macrophages, which contribute to immunosuppression in the TME; using bevacizumab to induce morphological changes in the TME that promote lymphocyte trafficking); (b) inducing and coordinating ICD signaling (using LDMC and low-dose radiation therapy to enhance tumor cell antigenicity; using bevacizumab to alter the TME, which allows for more efficient antigen-specific T cell responses and renders tumor cells more susceptible to ICD; and (c) enhancing ICD without increasing toxicity by dendritic cells. (d) modulating the innate immune response (using NK cell therapy to enhance the innate immune system, using IL-15 superagonists to increase the activity of endogenous and introduced NK cells, and using hypofractionated doses of radiation therapy to upregulate NK ligands on tumor cells to enhance the tumor cytotoxicity of NK cells); and (e) maintaining the immune response (using checkpoint inhibitors to promote long-term anti-cancer immune responses).
[0213] Vaccine treatment for NHL is carried out in two phases: induction and maintenance. The purpose of the induction phase is to stimulate an immune response against tumor cells and reduce immunosuppression in the TME. The purpose of the maintenance phase is to sustain the ongoing activity of the immune system against tumor cells, resulting in a sustainable therapeutic response. Exemplary uses and administration timing of compounds and compositions contemplated for the induction and maintenance phases are shown in Figures 18 and 19, respectively. Thus, the following agents and compositions are preferably used for the induction and maintenance phases:
[0214] 1. ALT-803, recombinant human superagonist interleukin-15 (IL-15) complex (also known as IL15N72D:IL-15RαSu / IgG1 Fc complex); 2. avelumab (BAVENCIO® injection for IV use); 3. bevacizumab (AVASTIN® liquid for intravenous infusion); 4. capecitabine (XELODA® tablets for oral use); 5. cyclophosphamide (cyclophosphamide capsules for oral use); 6. ETBX-061 (Ad5[E1-,E2b-]-MUC1); 7. 5-FU (fluorouracil injection for IV use only); 8. haNK™, NK-92 [CD16.158V, ERIL-2], intravenous 8. Leucovorin (leucovorin calcium for IV or IM use); 9. Nab-paclitaxel (Abraxane® [paclitaxel protein-bound particles for injectable suspension] [albumin-bound] for injectable suspension); 10. Nab-paclitaxel (Abraxane® [paclitaxel protein-bound particles for injectable suspension] [albumin-bound] for injectable suspension); 11. Omega-3-acid ethyl esters (Lovaza capsules for oral use); 12. Oxaliplatin (ELOXATIN® injection for intravenous use); 13. Rituximab (Rituxan® injection for IV use); 14. SBRT.
[0215] More specifically, an exemplary protocol for NHL generally includes the following steps, stages, compounds, and compositions:
[0216] Tumor biopsies and preliminary tumor molecular profiling will be performed at screening, at the end of the initial induction phase (8 weeks after initiation of treatment), and during potential long-term induction and maintenance phases (depending on response). Separate blood tubes will be collected every month during the induction phase and every two months during the maintenance phase, during scheduled blood draws for preliminary immunology and ctDNA / ctRNA analysis.
[0217] Tumors will be assessed at screening, and tumor response will be assessed according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC) by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography-computed tomography (PET CT) of target and non-target lesions every 8 weeks during the induction phase and every 12 weeks during the maintenance phase.
[0218] Induction Phase: The induction phase involves repeated 2-week cycles. The treatment regimen of ALT-803, Ad5-based vaccine (ETBX-061), haNK cells, avelumab, bevacizumab, cyclophosphamide, 5FU / leucovorin, nab-paclitaxel, omega-3-acid ethyl ester, oxaliplatin, and rituximab is repeated every 2 weeks. SBRT is given concomitantly during the first four 2-week cycles. Radiation is administered to all potential tumor sites using SBRT.
[0219] The induction phase of treatment will follow the following dosing regimen:
[0220] every day: Omega-3 acid ethyl esters (by mouth [PO] twice daily [BID] [3 x 1 g capsules and 2 x 1 g capsules])
[0221] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV)
[0222] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50mg PO BID)
[0223] Days 1, 3, 5, 8, 10 and 12, every 2 weeks: 5-FU (400 mg / m as a continuous IV infusion over 24 hours) 2 ) Leucovorin (20 mg / m 2 IV bolus administration)
[0224] Days 1 and 8, every 2 weeks: Nab-paclitaxel (100mg IV) Oxaliplatin (40mg / m 2 IV)
[0225] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): ETBX-061(5×10 11 viral particles [VP] / dose subcutaneous [SC])
[0226] Day 8, every 2 weeks: Avelumab (10 mg / kg IV over 1 hour)
[0227] Days 8, 22, 36, and 50 (every 2 weeks for 4 doses): SBRT (not to exceed 8 Gy, exact dose determined by radiation oncologist)
[0228] Day 9, every 2 weeks: Rituximab (375 mg / m 2 IV) ALT-803 (10 μg / kg SC 30 minutes before haNK injection)
[0229] Days 9 and 11, every 2 weeks: ·haNK(2×10 9cells / dose, IV)
[0230] maintenance phase The duration of the maintenance phase is up to one year after the completion of the last treatment in the induction phase. The maintenance phase involves repeated two-week cycles of ALT-803, Ad5-based vaccine (ETBX 061), haNK cells, avelumab, bevacizumab, capecitabine, cyclophosphamide, nab-paclitaxel, omega-3-acid ethyl esters, and rituximab.
[0231] The maintenance phase of treatment will follow the following dosing regimen:
[0232] every day: Omega-3 acid ethyl esters (PO BID [3 x 1g capsules and 2 x 1g capsules])
[0233] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV) nab-paclitaxel (100 mg IV) Avelumab (10 mg / kg IV over 1 hour)
[0234] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50mg PO BID) Capecitabine (650 mg / m 2 PO BID)
[0235] Day 2, every 2 weeks: Rituximab (375 mg / m 2 IV) ALT-803 (10 μg / kg SC 30 minutes before haNK injection) ·haNK(2×10 9 cells / dose, IV)
[0236] Day 5, then every 8 weeks ETBX-061(5×10 11 VP / dose SC)
[0237] FIG. 20 illustrates a schematic representation of an exemplary treatment method.
[0238] Tumor molecular profiling: The genomes of tumor cells from tissues compared with non-tumor cells from whole blood are sequenced to identify tumor-specific genomic variations that may contribute to disease progression and / or respond to treatment. RNA sequencing is performed to provide expression data and correlate with DNA mutations. Quantitative proteomic analysis is performed to determine the absolute amount of specific proteins, confirm the expression of genes correlated with disease progression and / or response, and determine cutoff values for response. All genomic, transcriptional, and protein molecular analyses are preliminary. Tumor molecular profiling is performed on FFPE tumor tissues and whole blood (matched normal control material for tumor tissue) by next-generation sequencing and mass spectrometry-based quantitative proteomics. Collection of tumor tissues and whole blood at screening and at the end of the initial induction phase (8 weeks after treatment initiation) is contemplated in this treatment.
[0239] Follow-up Analysis / Specimen Collection and Analysis: Tumor tissue and whole blood samples are collected and shipped according to the instruction cards included with the Tissue Specimen Kit and Blood Specimen Kit. FFPE tumor tissue specimens are typically required for extraction of tumor DNA, tumor RNA, and tumor protein. Whole blood samples are typically required for extraction of subject's normal DNA. Tumor tissue and whole blood are processed in a CLIA-certified and CAP-accredited clinical laboratory.
[0240] Preliminary immunological analysis: One of the goals of immunotherapy treatment is to generate an antigen-specific antitumor immune response. Preliminary immunological analysis is used to provide a preliminary assessment of the immune response induced by the treatment. Blood samples for immunological analysis are collected from subjects at scheduled times: at screening, monthly during the induction phase, and every two months during the maintenance phase. PBMCs isolated by Ficoll-Hypaque density gradient separation are analyzed for antigen-specific immune responses using an ELISpot assay for IFN-γ or granzyme B secretion after exposure to MUC1. Flow cytometry is used to evaluate T cell responses using an intracellular cytokine staining assay for IFN-γ or TNF-α expression after exposure to the tumor-associated antigen peptide, MUC1. Flow cytometry analysis of CD107a expression on cells is used to test for degranulated cells such as CD8+ T cells and NK cells. PBMCs are stimulated in vitro with a pool of overlapping 15-mer peptides encoding MUC1. Control peptide pools include an irrelevant antigen peptide pool as a negative control and the CEFT peptide mixture as a positive control. CEFT is a mixture of peptides from cytomegalovirus, EBV, influenza, and tetanus toxoid. Analysis of CD4+ and CD8+ T cell stimulation includes production of IFN-γ, TNF-α, and expression of CD107a. Serum is analyzed for neutralizing antibody titers against adenovirus (serotype 5), antibodies against MUC1, and potential antibody development against the IL-15N72D:IL-15RαSu / IgG1 Fc complex.
[0241] Assay of Circulating Tumor DNA and RNA: As tumors evolve during treatment, drug-resistant cells emerge. These can be difficult to detect and render tumors resistant to initial treatment. Blood-based testing for ctDNA and ctRNA can track the emergence of drug-resistant tumor cells and identify novel drug targets and treatment options for patients. Whole blood will be collected at screening and every month during the induction phase and every two months during the maintenance phase during scheduled blood draws for ctDNA and ctRNA analysis. Expression levels of specific tumor- and immune-related analytes in ctDNA and ctRNA will be measured by qPCR and analyzed for correlation with subject prognosis.
[0242] Non-small cell lung cancer: Lung cancer is the leading cause of cancer worldwide, accounting for approximately one in five cancer deaths, totaling approximately 1.59 million deaths each year. The primary risk factor for all types of lung cancer is smoking, with approximately 85-90% of lung cancer cases attributable to this cause. The effectiveness of smoking cessation has led to a decline in lung cancer incidence in the United States over the past 25 years. However, lung cancer continues to impose a significant health burden. In the United States, an estimated 224,000 new cases of lung cancer were diagnosed in 2016, and approximately 158,000 deaths will be attributable to lung cancer.
[0243] Lung cancer is histologically classified into small cell lung cancer and NSCLC. NSCLC is a comprehensive classification and includes all lung cancers other than small cell lung cancer, which is thought to arise from neuroendocrine cells in the lung. NSCLC accounts for approximately 85% of lung cancers, and the most common types of NSCLC include squamous cell carcinoma, adenocarcinoma, and large cell carcinoma.
[0244] For patients with early-stage, localized, resectable disease, surgical procedures offer the best prognosis. Standard-of-care (SoC) surgical procedures have been reported to result in a 5-year disease-free progression rate of approximately 70% in patients with stage 1 NSCLC. However, this is true for only a small minority of patients; 70% of newly diagnosed lung cancer patients have advanced-stage disease, and the majority of these patients have metastatic disease. Surgery is not recommended for most patients with stage 3 or 4 NSCLC.
[0245] In general, the overall goal of the NSCLC vaccine therapy presented herein is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. The principles for selecting the drugs included in this therapy are summarized in Table 5, where (i) tumor molecular profiling determines whether to administer ETBX-021; (ii) tumor molecular profiling determines whether to administer GI-4000; (iii) capecitabine is metabolized to 5-FU; (iv) cisplatin is administered to subjects with squamous cell carcinoma subtype, and oxaliplatin is administered to subjects with adenocarcinoma subtype; (v) leucovorin enhances the activity of 5-FU; and (vi) either nivolumab or avelumab is administered. [Table 5]
[0246] Figure 21 exemplarily and schematically illustrates the mechanism by which each agent affects the immune system, resulting in ICD. By combining agents that simultaneously target distinct but complementary mechanisms that enable tumor growth, treatment regimens aim to maximize anti-cancer activity and extend the duration of the therapeutic response.
[0247] To this end, the proposed NSCLC treatment combines LDMC, bevacizumab, cancer vaccines, low-dose radiation therapy, IL-15 superagonists, NK cell therapy, and checkpoint inhibitors. The overall goal of the treatment regimen is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. Specifically, the treatment involves (a) alleviating immunosuppression in the TME (using LDMC to reduce the density of Tregs, MDSCs, and M2 macrophages, which contribute to immunosuppression in the TME; using bevacizumab to induce morphological changes in the TME that promote lymphocyte trafficking); (b) inducing and coordinating ICD signals (using LDMC and low-dose radiation therapy to enhance tumor cell antigenicity; using bevacizumab to alter the TME, which allows for more efficient antigen-specific T cell responses and makes tumor cells more susceptible to ICD; and using fulvestrant to enhance ADCC and cytotoxic T cell activity. Omega-3 acid ethyl esters reduce toxicity. (c) modulating dendritic cells and T cells (using cancer vaccines and IL-15 superagonists to enhance tumor-specific cytotoxic T cell responses); (d) enhancing the innate immune response (using NK cell therapy to enhance the innate immune system, using IL-15 superagonists to enhance the activity of endogenous and introduced NK cells, using low-dose hypofractionated radiation to upregulate NK ligands on tumor cells to enhance the tumor cytotoxicity of NK cells), and (e) maintaining the immune response (using checkpoint inhibitors to promote long-term anti-cancer immune responses) are designed to disrupt the escape phase of immunoediting.
[0248] Vaccine therapy for NSCLC is carried out in two phases: induction and maintenance. The purpose of the induction phase is to stimulate an immune response against tumor cells and reduce immunosuppression in the TME. The purpose of the maintenance phase is to sustain the ongoing activity of the immune system against tumor cells, resulting in a sustainable therapeutic response. Exemplary uses and administration timing of compounds and compositions contemplated for the induction and maintenance phases are shown in Figures 22 and 23, respectively. Thus, the following agents and compositions are preferably used for the induction and maintenance phases:
[0249] 1. ALT-803, recombinant human superagonist IL-15 complex (also known as IL15N72D:IL-15RαSu / IgG1 Fc complex); 2. ETBX-011 (Ad5[E1-,E2b-]-CEA); 3. ETBX-021 (Ad5[E1-,E2b-]-HER2); 4. ETBX-051 (Ad5[E1-,E2b-]-Brachyury); 5. ETBX-061 (Ad5[E1-,E2b-]-MUC1); 6. GI-4000 (Ras yeast vaccine); 7. GI-6207 (CEA yeast vaccine); 8. GI-6301 (Brachyury yeast vaccine); 9. haNK™, NK-92 [CD16.158V, ER IL-2], suspension for intravenous infusion (haNK™ for injection); 10. avelumab (BAVENCIO® injection for IV use); 11. bevacizumab (AVASTIN® liquid for intravenous infusion); 12. capecitabine (XELODA® tablets for oral use); 13. cisplatin (cisplatin injection); 14. cyclophosphamide (cyclophosphamide capsules for oral use); 15. 5-FU (fluorouracil injection for IV use only); 16. fulvestrant (FASLODE for injection) X®); 17. Leucovorin (leucovorin calcium for IV or IM use); 18. Nab-paclitaxel (Abraxane® [paclitaxel protein-bound particles for injectable suspension] [albumin-bound] for injectable suspension); 19. Nivolumab (OPDIVO® injection for intravenous use); 20. Omega-3-acid ethyl esters (Lovaza capsules for oral use); 21. Oxaliplatin (ELOXATIN® injection for intravenous use); and 22. SBRT.
[0250] More specifically, an exemplary treatment protocol for NSCLC generally includes the following steps, phases, compounds, and compositions:
[0251] Tumors will be assessed at screening, and tumor response will be assessed every 8 weeks during the induction phase and every 12 weeks during the maintenance phase by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography (PET)-CT of target and non-target lesions according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC).
[0252] Prospective tumor molecular profiling: Prospective tumor profiling will be performed to provide information on HER2 expression and Ras mutation status and will be used to determine whether to administer ETBX-021 and GI-4000. All subjects will receive ETBX-011, ETBX-051, ETBX-061, GI-6207, and GI-6300 regardless of tumor molecular profile. Prospective tumor molecular profiling will be performed on FFPE tumor tissue and whole blood (subject-matched normal comparator for tumor tissue) collected at screening.
[0253] Subjects will receive ETBX-021 if their tumors overexpress HER2 (≥750 attomoles / μg of tumor tissue, as determined by quantitative mass spectrometry proteomics). Subjects will receive GI-4000 if their tumors are positive for specific Ras mutations, as determined by whole-genome sequencing. GI4000 is a family of four separate products from the GI-400 series (GI-4014, GI-4015, GI-4016, and GI-4020), each expressing a combination of mutated Ras oncoproteins. The specific Ras mutation determines which GI-4000 product is used for treatment (GI-4014 for G12V, GI-4015 for G12C, GI-4016 for G12D, GI-4020 for G12R or Q61H, and GI-4014, GI-4015, or GI-4016 for Q61L or Q61R).
[0254] Induction Phase: The induction phase involves repeated two-week cycles for a maximum treatment period of one year. Treatment regimens of omega-3 acid ethyl esters, cyclophosphamide, cisplatin or oxaliplatin, 5FU / leucovorin, nab-paclitaxel, bevacizumab, ALT-803, haNK cells, Ad5-based vaccines (ETBX-011, ETBX-021, ETBX-051, and ETBX-061), yeast-based vaccines (GI-4000, GI-6207, and GI-6301), nivolumab or avelumab, fulvestrant, and radiation therapy are repeated every two weeks. SBRT is administered concomitantly during the first four two-week cycles. Radiation is administered to all potential tumor sites using SBRT. An exemplary induction phase of NSCLC treatment follows the following dosing regimen:
[0255] every day: Omega-3 acid ethyl esters (by mouth [PO] twice daily (BID) [3 x 1 g capsules and 2 x 1 g capsules])
[0256] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV)
[0257] Day 1, every 4 weeks (every other treatment cycle): Fulvestrant (500mg IM)
[0258] Days 1-5 and 8-12, every 2 weeks: ·Cyclophosphamide (50 mg orally (PO) twice daily [BID]).
[0259] Days 1, 3, 5, 8, 10 and 12, every 2 weeks: 5-FU (400 mg / m over 24 hours) 2 (continuous IV infusion) Leucovorin (20 mg / m 2 IV bolus administration)
[0260] Days 1 and 8, every 2 weeks: Nab-paclitaxel (100mg IV) Cisplatin (40mg / m 2 IV) or oxaliplatin (40 mg / m 2 IV) Cisplatin is administered to subjects with the squamous cell carcinoma subtype, and oxaliplatin is administered to subjects with the adenocarcinoma subtype.
[0261] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): ·ETBX-011, ETBX-021, ETBX-051, ETBX-061 (5×10 11 viral particles [VP] / vaccine / dose subcutaneous [SC]) GI-4000, GI-6207, GI-6301 (40 yeast units [YU] / vaccine / dose SC), 2 hours after administration of AD5-based vaccines Prospective molecular profiling of tumors will determine whether to administer ETBX-021 and GI-4000, as described above.
[0262] Day 8, every 2 weeks: Nivolumab (3 mg / kg IV over 1 hour) or avelumab (10 mg / kg IV over 1 hour)
[0263] Days 8, 22, 36, and 50 (every 2 weeks for 4 doses): SBRT (not to exceed 8 Gy, exact dose determined by radiation oncologist)
[0264] Day 9, every 2 weeks: ALT-803 (10 μg / kg SC 30 minutes before haNK injection)
[0265] Days 9 and 11, every 2 weeks: ·haNK(2×10 9 cells / dose, IV)
[0266] Maintenance phase: The duration of the maintenance phase is up to 1 year after the completion of the last treatment of the induction phase. The maintenance phase includes repeated 2-week cycles. The treatment regimen of omega-3-acid ethyl ester, cyclophosphamide, capecitabine, nab-paclitaxel, bevacizumab, ALT-803, haNK cells, Ad5-based vaccines (ETBX-011, ETBX-021, ETBX-051, and ETBX-061), yeast-based vaccines (GI-4000, GI-6207, and GI-6301), nivolumab or avelumab, and fulvestrant is repeated every 2 weeks. The exemplary maintenance phase of treatment is carried out according to the following administration regimen:
[0267] every day: Omega-3 acid ethyl esters (PO BID [3 x 1g capsules and 2 x 1g capsules])
[0268] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV) Nab-paclitaxel (100mg IV) Nivolumab (3 mg / kg IV over 1 hour) or avelumab (10 mg / kg IV over 1 hour)
[0269] Day 1, every 4 weeks (every other treatment cycle): Fulvestrant (500mg IM)
[0270] Days 1-5 and 8-12, every 2 weeks: Capecitabine (650 mg / m 2 PO BID) Cyclophosphamide (50mg PO BID)
[0271] Day 2, every 2 weeks ALT-803 (10 μg / kg SC) (30 minutes before haNK injection) ·haNK(2×10 9 cells / dose, IV)
[0272] Day 5, then every 8 weeks ·ETBX-011, ETBX-021, ETBX-051, ETBX-061 (5×10 11 VP / vaccine / dose SC) GI-4000, GI-6207, GI-6301 (40 YU / vaccine / dose SC), 2 hours after administration of Ad5-based vaccine
[0273] Prospective molecular profiling will determine whether to administer ETBX-021 and GI-6207, as described above. Figure 24 depicts an exemplary treatment protocol.
[0274] Tumor molecular profiling: Genome sequencing of tissue-derived tumor cells compared with non-tumor cells from whole blood is performed to identify tumor-specific genomic variations that may contribute to disease progression and / or respond to treatment. RNA sequencing is performed to provide expression data and correlate with DNA mutations. Quantitative proteomic analysis is performed to determine the absolute abundance of specific proteins, confirm the expression of genes correlated with disease progression and / or response, and determine cutoff values for response. All genomic, transcriptional, and protein molecular analyses are preliminary, except for prospective tumor molecular analysis of HER2 expression by quantitative proteomics and analysis of Ras mutation status by genomic sequencing to determine whether to administer ETBX-021 and GI-4000.
[0275] Follow-up Analysis / Sample Collection and Analysis: Tumor molecular profiling will be performed on FFPE tumor tissue and whole blood (subject's matched normal comparator for tumor tissue) by next-generation sequencing and mass spectrometry-based quantitative proteomics. Collection of tumor tissue and whole blood at screening and at the end of the initial induction phase (8 weeks after treatment initiation) is contemplated for this treatment. FFPE tumor tissue specimens are typically required for extraction of tumor DNA, tumor RNA, and tumor protein. Whole blood samples are typically required for extraction of subject's normal DNA. Tumor tissue and whole blood will be processed in a CLIA-certified and CAP-accredited clinical laboratory.
[0276] Blood samples for immune analysis will be collected from subjects at screening and every month during the induction phase, and every two months during the maintenance phase, during scheduled blood collection periods. PBMCs isolated by Ficoll-Hypaque density gradient separation will be analyzed for antigen-specific immune responses using ELISpot assays for IFN-γ or granzyme B secretion after exposure to the following tumor antigen peptides: CEA, brachyury, and MUC1; and, in the case of ETBX-021 and GI-4000 administration, HER2 and mutant Ras, respectively. Flow cytometry will be used to evaluate T cell responses using an intracellular cytokine staining assay for IFN-γ or TNF-α expression after exposure to tumor-associated antigen peptides. Flow cytometry analysis of CD107a expression on cells will be used to test for degranulated cells such as CD8+ T cells and NK cells. PBMCs will be stimulated in vitro with overlapping 15-mer peptide pools encoding the tumor-associated antigens listed above. Control peptide pools include an irrelevant antigen peptide pool as a negative control and a CEFT peptide mixture as a positive control. CEFT is a mixture of peptides from CMV, Epstein-Barr virus, influenza, and tetanus toxoid. Analysis of CD4+ and CD8+ T cell stimulation includes production of IFN-γ, TNF-α, and expression of CD107a. Serum is analyzed for neutralizing antibody titers against adenovirus (serotype 5), antibodies directed against the tumor-associated antigens listed above, and for the development of potential antibodies against the IL-15N72D:IL-15RαSu / IgG1 Fc complex.
[0277] Assay of Circulating Tumor DNA and RNA: As tumors evolve during treatment, drug-resistant cells emerge. These can be difficult to detect and render tumors resistant to initial treatment. Blood-based testing for ctDNA and ctRNA can track the emergence of drug-resistant tumor cells and identify novel drug targets and treatment options for patients. Whole blood will be collected at screening and every month during the induction phase and every two months during the maintenance phase during scheduled blood draws for ctDNA and ctRNA analysis. Expression levels of specific tumor- and immune-related analytes in ctDNA and ctRNA will be measured by qPCR and analyzed for correlation with subject prognosis.
[0278] Pancreatic cancer: Pancreatic cancer is estimated to be the second leading cause of cancer-related death in the United States, with an estimated 43,090 deaths and 53,670 new cases predicted for 2017. It is the 12th most common cancer in the world, with approximately 338,000 new cases diagnosed in 2012 (2% of the total). The prognosis is poor, and as a result, pancreatic cancer is the seventh most common cause of cancer death in the world, with over 330,000 people dying from pancreatic cancer in 2012 (4% of the total).
[0279] The pancreas is composed of two main cell types: exocrine and endocrine. Exocrine cells produce digestive enzymes, while endocrine cells in the islets of Langerhans produce the hormones insulin and glucagon. Endocrine tumors generally have a favorable prognosis but account for only 6% of pancreatic cancer cases. Exocrine tumors, on the other hand, are rarely curable and are by far the most common type of pancreatic cancer, with adenocarcinoma accounting for approximately 94% of exocrine pancreatic cancers. The incidence of pancreatic cancer increased by approximately 1% per year between 2004 and 2013 in white individuals but remained the same in black individuals.
[0280] The prognosis for patients with pancreatic adenocarcinoma is very poor, with a median overall survival of 5 to 8 months, and fewer than 5% of patients surviving beyond 5 years. Surgical resection of pancreatic cancer followed by adjuvant chemotherapy is the primary treatment option required to achieve long-term survival. This can be achieved in approximately 15% to 20% of newly diagnosed patients; however, recurrence is common, even in cases where optimal resection has been performed. For the majority of patients with more advanced disease, treatment generally includes chemotherapy alone or supportive care for metastatic patients and chemotherapy with or without radiation therapy for patients with locally advanced disease. The prognosis for these patients is even more dire, with a 5-year survival rate of 2%.
[0281] The majority of patients with pancreatic cancer have advanced disease. Survival rates for this group are extremely poor, with only 2% of patients with metastatic disease surviving 5 years from the time of diagnosis. A small group of patients (9%) is diagnosed with localized, resectable disease; however, even for this group, the 5-year survival rate is poor, at just over 25%. The standard of care for patients with pancreatic cancer is treatment with FOLFIRINOX, which improves OS and PFS over gemcitabine monotherapy; however, FOLFIRINOX is only available to patients in relatively good health (ECOG 0 or 1), and the prognosis for treated patients remains grim, with a median PFS of 6.4 months and a median OS of 11.1 months (Conroy 2011). Novel treatment options that can produce long-term, durable responses in a significant proportion of patients are clearly needed for patients with pancreatic cancer.
[0282] In general, the overall goal of the PANC vaccine therapy presented herein is to maximize immunological cell death (ICD) while maintaining and enhancing the patient's anti-tumor adaptive and innate responses to cancer. The rationale for the selection of agents included in this therapy is summarized in Table 6. [Table 6]
[0283] Figure 25 illustrates the mechanism by which each agent affects the immune system, resulting in ICD. By combining agents that simultaneously target distinct but complementary mechanisms that enable tumor growth, treatment regimens aim to maximize anti-cancer activity and extend the duration of the therapeutic response.
[0284] To this end, the proposed PANC treatment is designed to achieve the specific and complementary objectives of 1) overcoming the suppressive TME; 2) inducing immunogenic signals through molecular cues; 3) modulating dendritic cells and T cells; 4) engrafting NK cells, and 5) maintaining the immune response and inducing sustainable, long-term remission through administration of LDMC.
[0285] Vaccine treatment for PANC is carried out in two phases: induction and maintenance. The purpose of the induction phase is to stimulate an immune response against tumor cells and reduce immunosuppression in the TME. The purpose of the maintenance phase is to sustain the ongoing activity of the immune system against tumor cells, resulting in a sustainable therapeutic response. Exemplary uses and administration timing of compounds and compositions contemplated for the induction and maintenance phases are shown in Figures 26 and 27, respectively. Thus, the following agents and compositions are preferably used for the induction and maintenance phases:
[0286] 1. Cyclophosphamide tablets for oral use; 2. ELOXATIN® (oxaliplatin for injection, USP); 3. XELODA (capecitabine) tablets for oral use; 4. Fluorouracil injection for intravenous use; 5. Leucovorin calcium for IV or IM use; 6. Abraxane® (nab-paclitaxel); 7. Avastin (bevacizumab); 8. ALT-803, recombinant human superagonist interleukin-15 (IL-15) complex (also known as IL15N72D:IL-15RαSu / IgG1 Fc complex); 9. aNK™, NK-92 [CD16.158V, ER IL-2] (high affinity activated natural killer cell line [aNK™ for infusion]); 10. ETBX-011: Ad5 [E1-, E2b-]-CEA (carcinoembryonic antigen); 11. Avelumab, a human anti-PD-L1 IgG1 monoclonal antibody; 12. GI-4000, a vaccine derived from recombinant Saccharomyces cerevisiae yeast expressing a mutant Ras protein.
[0287] More specifically, an exemplary treatment protocol for PANC typically includes the following steps, phases, compounds, and compositions:
[0288] Tumor biopsies and molecular tumor profiling will be performed at screening, at the end of the initial induction (8 weeks), and during a potential long-term induction phase (depending on response). In addition, separate blood tubes will be collected between scheduled weekly blood draws to analyze blood for changes in circulating RNA. Tumors will be assessed at screening, and tumor response will be assessed every 8 weeks during the induction phase and every 3 months during the maintenance phase by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography (PET) of target and non-target lesions according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC).
[0289] Induction Phase: The induction phase involves repeated 2-week cycles of low-dose radiation and metronomic chemotherapy. The treatment regimen of cyclophosphamide, oxaliplatin, 5-FU / leucovorin, nab-paclitaxel, bevacizumab, ALT-803, aNK, vaccines (Ad5 and GI-4000), and avelumab is repeated every 2 weeks. Concomitant stereotactic body radiation therapy (SBRT) is given during the first four 2-week cycles. Radiation is delivered to all potential tumor sites using SBRT. Contemplated techniques include linear accelerator-based therapy (3D radiation therapy and intensity-modulated radiation therapy [IMRT]), as well as Gamma Knife and CyberKnife.
[0290] Induction treatment continues until the subject experiences PD or unacceptable toxicity (not correctable by dose reduction). Subjects with a CR in the induction phase enter the maintenance phase of treatment. Response assessments using CT / MRI assessed by RECIST version 1.1 and irRC are performed every 8 weeks during the induction phase.
[0291] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50 mg twice daily [BID])
[0292] Days 1 and 8, every 2 weeks: Oxaliplatin (40mg / m 2 IV) Nab-paclitaxel (125mg IV)
[0293] Day 1, every 2 weeks: Bevacizumab (5mg / kg IV)
[0294] Days 1, 3, 5, 8, 10 and 12, every 2 weeks: 5-fluorouracil (400 mg / m over 24 hours as a continuous infusion) 2 ) Leucovorin (20 mg / m 2 IV bolus administration)
[0295] Days 8, 22, 36, and 50 (every 2 weeks for 4 doses): SBRT (8 Gy)
[0296] Day 9, every 2 weeks: ALT-803 (10 μg / kg subcutaneously [SC] 30 minutes before aNK injection)
[0297] Days 9 and 11, every 2 weeks: aNK(2×10 9 cells / dose IV)
[0298] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): Ad5[E1-,E2b-]-CEA (5 × 10 11 VP / dose SC) GI-4000 (40 yeast units [YU]SC; use depending on genome sequencing to represent the required KRAS mutation)
[0299] Day 8, every 2 weeks: Avelumab (10 mg / kg IV over 1 hour)
[0300] Maintenance Phase: The duration of the maintenance phase is 1 year after completion of the last treatment in the induction phase. Treatment continues throughout the maintenance phase until the subject experiences PD or unacceptable toxicity. Response assessment using CT / MRI assessed according to RECIST version 1.1 and irRC will be performed every 3 months during the maintenance phase.
[0301] Days 1-5 and 8-12, every 2 weeks: Cyclophosphamide (50mg BID) Capecitabine (650 mg / m 2 PO BID)
[0302] Day 1, every 2 weeks: Nab-paclitaxel (125mg IV) Bevacizumab (5mg / kg IV) Avelumab (10 mg / kg IV over 1 hour)
[0303] Day 2, every 2 weeks ALT-803 (10 μg / kg SC) (30 minutes before aNK injection) aNK(2×10 9 cells / dose IV)
[0304] Day 5, then every 8 weeks Ad5[E1-,E2b-]-CEA (5 × 10 11 VP / dose SC) GI-4000(40YU SC)
[0305] FIG. 28 depicts an exemplary treatment protocol.
[0306] Follow-up analysis / sample collection and analysis: Preliminary genomics, transcriptomics, circulating RNA, and proteomic molecular profiling will be performed on FFPE tumor tissue and whole blood (subject-matched normal comparator material for tumor tissue) by next-generation sequencing and mass spectrometry-based quantitative proteomics. During the induction phase, blood samples will be collected weekly for molecular profiling. During the maintenance phase, blood samples will be collected monthly for molecular profiling: a 22.5 mL sample is required for each blood draw.
[0307] Sample collection and analysis for cell-free DNA and cell-free RNA: Samples were collected as 10 mL of whole blood in Cell-free RNA BCT® tubes or Cell-free DNA BCT® tubes containing RNA and DNA stabilizers, respectively. ctRNA is stable in whole blood in Cell-free RNA BCT tubes for 7 days, and ctDNA is stable in whole blood in Cell-free DNA BCT tubes for 14 days. These nucleic acid stabilizers allow time for transport of patient samples without degradation of ctRNA or ctDNA. Whole blood in 10 mL tubes was centrifuged at 1600 rcf for 20 minutes to fractionate plasma. The plasma was separated and centrifuged at 16,000 rcf for 10 minutes to remove cellular debris. ctDNA and ctRNA were extracted from 2 mL of plasma using a proprietary, in-house developed protocol using Qiagen reagents. This protocol was designed to remove potential contaminating blood cells and other impurities and maintain nucleic acid stability during extraction. All nucleic acids are stored in barcoded matrix storage tubes: DNA is stored at -4°C, RNA is stored at -80°C, or reverse transcribed to complementary DNA (cDNA) and cDNA is stored at -4°C.
[0308] PD-L1 expression is measured by quantitative real-time PCR of ct-cDNA using primers specific for this gene. Amplification is performed in a 10μL reaction mixture containing 2μL of cDNA, primers, and probe. β-actin is used as an internal control for input levels of ct-cDNA. Sample calibration curves with known concentrations of PD-L1 are performed on each PCR plate, as well as positive and negative controls for each gene. Test samples are identified by scanning the 2D barcodes on the matrix tubes containing the nucleic acids. Delta Ct (dCt) is calculated from the PD-L1 Ct value subtracted from the β-actin Ct value. Relative expression in patient samples is calculated using a delta Ct calibration curve of serial dilutions of the Universal Human Reference RNA set, with gene expression values set at 10 (delta Ct is plotted against the log concentration of PD-L1). PD-L1 levels are analyzed with the primary and secondary endpoints to identify statistically and clinically significant correlations.
[0309] Immunological analysis: Blood samples for immunological analysis are collected from subjects before the first treatment and again on day 1 of each treatment cycle and at the end of treatment. Pre- and post-treatment PBMCs isolated by Ficoll-Hypaque density gradient separation are analyzed for antigen-specific immune responses using an ELISpot assay for IFN-γ or granzyme B secretion after exposure to CEA peptide. Flow cytometry is used to evaluate T cell responses using an intracellular cytokine staining assay for IFN-γ or TNF-α expression after exposure to CEA peptide. Flow cytometry analysis of CD107a expression on cells is used to test for degranulated cells such as CD8+ T cells and NK cells. PBMCs are stimulated in vitro with overlapping 15-mer peptide pools encoding the tumor-associated antigen CEA. Control peptide pools include an irrelevant antigen peptide pool as a negative control and a CEF T peptide mixture as a positive control. CEFT is a mixture of peptides from CMV, Epstein-Barr virus, influenza, and tetanus toxin. Analysis of CD4+ and CD8+ T cell stimulation includes production of IFN-γ, TNF-α, and expression of CD107a. Serum is analyzed for neutralizing antibody titers to adenovirus (serotype 5), antibodies to CEA, and potential antibody development to the IL-15N72D:IL-15RαSu / IgG1 Fc complex.
[0310] Soft tissue sarcomas: Soft tissue sarcomas are relatively uncommon cancers. They account for less than 1% of all new cancer cases each year. This may be because cells in soft tissues do not divide constantly, in contrast to tissues that more commonly give rise to malignant tumors.
[0311] Approximately 9,500 new cases were diagnosed in the United States in 2006. Soft tissue sarcomas are more commonly found in older adults (over 50 years of age) although certain tissues are more common in children and adolescents under 20 years of age (rhabdomyosarcoma, synovial sarcoma).
[0312] In general, the overall goal of vaccine therapy for soft tissue sarcoma is to maximize ICD and enhance and maintain innate and adaptive immune responses against cancer cells. Similar to the therapeutic compounds and compositions described above, the following agents and compositions are preferably used in the induction and maintenance phases:
[0313] 1. Cyclophosphamide tablets for oral use; 2. Trabectedin for intravenous use; 3. Avastin (bevacizumab) solution for IV infusion; 4. Avelumab, a human anti-PD-L1 IgG1 monoclonal antibody; 5. Abraxane® (nab-paclitaxel) for injectable suspension; 6. Doxorubicin (Doxorunicin); 7. ALT-803, a recombinant human superagonist interleukin-15 (IL-15) complex (also known as IL15N72D:IL-15RαSu / IgG1 Fc complex); 8. HaNK™, NK-92 (an activated natural killer cell line for infusion, aNK™); 9. Ad5[E1-,E2b-]-MUC1; 10. Ad5[E1-,E2b-]-Brachyury; and 11. GI 6301-Yeast Brachyury
[0314] More specifically, an exemplary treatment protocol for soft tissue sarcoma typically includes the following steps, phases, compounds, and compositions:
[0315] Tumor biopsies and molecular tumor profiling will be performed at screening, at the end of the initial induction phase (8 weeks), and during a potential long-term induction phase (depending on response). In addition, during scheduled weekly blood draws, separate blood tubes will be collected for analysis of blood for changes in circulating RNA. Tumors will be assessed at screening, and tumor response will be assessed every 8 weeks during the induction phase and every 3 months during the maintenance phase by computed tomography (CT), magnetic resonance imaging (MRI), or positron emission tomography (PET) of target and non-target lesions according to Response Evaluation Criteria in Solid Tumors (RECIST) version 1.1 and immune-related response criteria (irRC).
[0316] Induction Phase: The induction phase involves repeated 2-week cycles of low-dose radiation and metronomic chemotherapy. The treatment regimen of cyclophosphamide, doxorubicin, nab-paclitaxel, bevacizumab, trabectedin, ALT-803, HaNK, avelumab, vaccine, and radiation therapy is repeated every 2 weeks. Concomitant stereotactic body radiation therapy (SBRT) is given during the first four 2-week cycles. Radiation is delivered to all potential tumor sites using SBRT. Contemplated techniques include linear accelerator-based therapy (3D radiation therapy and intensity-modulated radiation therapy [IMRT]).
[0317] Induction treatment will continue until the subject experiences PD or unacceptable toxicity (not modifiable by dose reduction). Subjects with a CR during the induction phase will enter the maintenance phase of treatment. Response assessment using CT / MRI will be performed every 8 weeks during the induction phase and will be evaluated according to RECIST version 1.1 and irRC.
[0318] Days 1-5 (every week) Cyclophosphamide 50 mg twice daily (BID)
[0319] Day 1 (every week): Doxorubicin 20mg / m2 IV
[0320] Day 1 (every 2 weeks): Bevacizumab 5mg / kg IV
[0321] Day 1 (every week) Trabectedin 0.5mg / kg IV nab-paclitaxel 100mg IV
[0322] Days 8, 22, 36, and 50 (every other week for the four doses) SBRT 8Gy
[0323] Day 9 (every 2 weeks): ALT-803 10μg / kg SC
[0324] Days 9 and 11 (every 2 weeks): ·haNK 2×10 9 cells / dose, IV
[0325] Days 5, 19, and 33 (every 2 weeks for 3 doses, then every 8 weeks): Ad5[E1-,E2b-]-MUC1 Ad5[E1-,E2b-]-Brachyury 5×10 11 VP / dose SC GI-6301 Yeast Brachyury 40YU SC
[0326] Day 8 (every 2 weeks) Avelumab 10mg / kg hourly IV
[0327] Maintenance Phase: The duration of the maintenance phase is 1 year after completion of the last treatment in the induction phase. Treatment continues throughout the maintenance phase until the subject experiences PD or unacceptable toxicity. Response assessment using CT / MRI assessed according to RECIST version 1.1 and irRC will be performed every 3 months during the maintenance phase.
[0328] Days 1-5 (every week): Cyclophosphamide 50 mg twice daily (BID)
[0329] Day 1 (every 2 weeks) nab-paclitaxel 100mg IV Avelumab 10mg / kg IV Bevacizumab 5mg / kg IV Trabectedin 0.5mg / kg IV
[0330] Day 2 (every 2 weeks) HaNK 2×10 9 cells / dose IV ALT-803 10μg / kg SC
[0331] Day 5 (then every 8 weeks) Ad5[E1-,E2b-]-MUC1 Ad5[E1-,E2b-]-Brachyury 5×10 11 VP / dose SC GI-6301 Yeast Brachyury 40YU SC
[0332] In some embodiments, numbers expressing properties such as amounts and concentrations of ingredients, reaction conditions, and the like, used to describe and claim particular embodiments of the present invention should be understood to be modified in some instances by the term "about." Thus, in some embodiments, the mathematical parameters set forth in the written description and accompanying claims are approximations that may vary depending on the desired properties sought to be obtained by a particular embodiment. In some embodiments, the mathematical parameters should be construed in light of the number of reported significant digits and by using ordinary rounding techniques. Notwithstanding that the mathematical ranges and parameters setting forth the broad scope of some embodiments of the present invention are approximations, the numerical values set forth in the specific examples are reported as precisely as practicable. The numerical values presented for some embodiments of the present invention may contain certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Unless the context contradicts, all ranges set forth herein should be construed as inclusive of their endpoints, and open-ended ranges should be construed as including commercially practical values. Similarly, all recitations of values should be construed to include intermediate values unless the context contradicts.
[0333] As used throughout this specification and the claims that follow, the meanings of "a," "an," and "the" include the plural forms unless the context clearly contradicts otherwise. Similarly, as used herein, the meaning of "in" includes "in" and "on" unless the context clearly contradicts otherwise. Furthermore, unless the context clearly contradicts otherwise, the term "coupled to" is intended to include both direct coupling (the two elements that are coupled to each other touch each other) and indirect coupling (at least one additional element is interposed between the two elements). Thus, the terms "coupled to" and "coupled with" are used synonymously.
[0334] As used herein, the terms "treat," "treating," or "treatment" of any disease or disorder refer, in one embodiment, to the administration of one or more compounds or compositions for the purpose of ameliorating the disease or disorder (e.g., slowing, arresting, or reducing the development of the disease or at least one of its clinical symptoms). In another embodiment, "treat," "treating," or "treatment" refers to the administration of one or more compounds or compositions for the purpose of reducing or ameliorating at least one physical parameter, including those that may not be discernible by the patient. In yet another embodiment, "treat," "treating," or "treatment" refers to the administration of one or more compounds or compositions for the purpose of modulating the disease or disorder symptomatically (e.g., stabilizing a discernible symptom), physiologically (e.g., disrupting the escape phase of cancer immunoediting, inducing the elimination phase of cancer immunoediting, restoring the equilibrium phase of cancer immunoediting), or symptomatically and physiologically. In yet another embodiment, "treat," "treating," or "treatment" refers to the administration of one or more compounds or compositions for the purpose of preventing or delaying the onset or development or progression of a disease or disorder. The terms "treat," "treating," or "treatment," for example, in the case of cancer, may result in disease stabilization, a partial response, or a complete response. However, the terms "treat," "treating," and "treatment" do not imply a cure or even a partial cure, particularly if the cancer is treatment-resistant. Also as used herein, the term "patient" refers to a human (including adults and children) or other mammal diagnosed with or suspected of having a disease, particularly cancer.
[0335] It will be apparent to those skilled in the art that many more modifications beyond those already described are possible without departing from the inventive concept herein. Accordingly, the subject matter of the present invention should not be limited except as by the appended claims. Moreover, in interpreting both the specification and the claims, all terms should be interpreted in the broadest possible manner consistent with this concept. In particular, the terms "comprise" and "comprising" should be interpreted to refer to elements, components, or steps in a non-exclusive manner, indicating that the described elements, components, or steps may be present or utilized or can be combined with other elements, components, or steps not expressly described. When the specification refers to at least one of anything selected from the group consisting of A, B, C... and N, the text should be interpreted as requiring only one element from the group, not A+N, or B+N, etc.
Claims
1. 1. A combination of pharmaceutical compositions for use as a coordinated therapeutic regimen for treating pancreatic tumors, comprising: a first pharmaceutical composition comprising at least one of doxorubicin and paclitaxel, administered to reverse the tumor's evasive phase; a second pharmaceutical composition comprising at least one of a recombinant viral vaccine and a recombinant yeast vaccine, as well as natural killer (NK) cells and an IL-15 superagonist, administered to induce the elimination phase of the tumor; and a third pharmaceutical composition comprising at least a checkpoint inhibitor, administered to maintain the equilibrium phase of the tumor. A combination pharmaceutical composition.
2. 10. The pharmaceutical composition combination of claim 1, wherein the first pharmaceutical composition comprises a drug bound to albumin, the albumin optionally being a nanoparticulate albumin.
3. 3. The pharmaceutical composition combination of claim 2, further comprising an antibody or fragment thereof that binds to said albumin.
4. The pharmaceutical composition combination of claim 2, wherein the drug is paclitaxel.
5. The antibody or fragment thereof is selected from the group consisting of abciximab, ado-trastuzumab entanyl, 4. The pharmaceutical composition combination of claim 3, wherein the compound is selected from the group consisting of ibuprofen, alemtuzumab, basiliximab, bevacizumab, belimumab, brentuximab vedotin, certolizumab pegol, cetuximab, denosumab, ibritumomab tiusetan, natalizumab, obinutuzumab, ofatumumab, omalizumab, panitumumab, pertuzumab, ramucirumab, ranibizumab injection, rituximab, tositumomab, trabectedin, and trastuzumab.
6. The pharmaceutical composition combination of claim 1, wherein the first pharmaceutical composition comprises a drug that inhibits at least one of T-reg cells, myeloid-derived immunosuppressive cells, and M2 macrophages.
7. 7. The pharmaceutical composition combination of claim 6, wherein the drug is doxorubicin.
8. 10. The combination pharmaceutical composition of claim 1, wherein said first pharmaceutical composition comprises paclitaxel, said second pharmaceutical composition comprises an IL-15 superagonist, and said third pharmaceutical composition comprises a checkpoint inhibitor.
9. The pharmaceutical composition combination of any one of claims 1 to 8, further comprising a recombinant bacterial vaccine.
10. 10. The pharmaceutical composition combination of claim 9, wherein said recombinant bacterial vaccine is genetically engineered to express at least one tumor-associated antigen and a novel epitope specific to the patient and tumor.
11. 11. The pharmaceutical composition combination of claim 10, wherein the tumor-associated antigen is selected from the group consisting of MUC1, CEA, HER2, brachyury, and oncogenic Ras mutant proteins.
12. The pharmaceutical composition combination of claim 1 or 8, wherein said IL-15 superagonist is Alt-803.