Use of brain-specific antigens to home, block, and deliver cell-based therapies to the brain
Engineered cells with brain-selective transmembrane proteins and synNotch receptors enable targeted delivery of therapies to the brain, overcoming off-site effects and enhancing therapeutic efficacy.
Patent Information
- Application Number
- JP2022545967
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-02-24
- Filing Date
- 2020-11-06
- Publication Date
- 2025-12-01
- Estimated Expiration
- 2040-11-06
AI Technical Summary
Existing cell-based therapies face challenges in delivering therapeutic agents specifically to target tissues, such as the brain, due to off-site effects that can cause harm to non-target tissues, limiting their clinical use.
Cells engineered with a recombinant nucleic acid encoding a transmembrane protein that binds to brain-selective antigens like MOG, CDH10, or PTPRZ1, and a binding-triggered transcriptional switch, such as synNotch receptor, to localize therapeutic effects to the brain and avoid off-site effects.
The engineered cells effectively concentrate therapeutic effects in the brain, reducing off-site toxicity and enhancing the therapeutic efficacy by ensuring targeted delivery.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 62 / 980,885, filed February 24, 2020, which is incorporated herein by reference.
[0002] STATEMENT REGARDING FEDERALLY FUNDED RESEARCH This invention was made with government support under Grant No. R01 CA196277 awarded by the National Institutes of Health. The government has certain rights in this invention. [Background technology]
[0003] Although some cell therapies have shown remarkable therapeutic responses and benefits for patients with certain diseases, the development of effective cell-based therapies for other diseases remains a challenge, largely due to the difficulty of delivering therapeutic agents only to specific tissues. For example, some treatments for brain disorders can be harmful to non-brain tissues. Thus, administering a therapy that targets diseased cells in one tissue can often cause side effects in another tissue. This issue is often particularly problematic for cell-based therapies, because many of these therapies are highly potent. Therefore, the clinical use of such therapies is often limited by off-site effects rather than on-site effects.
[0004] It may be desirable to deliver therapeutic payloads (e.g., cytokines, antibodies, or chimeric antigen receptors) to specific tissues to avoid off-site effects. The present disclosure addresses this problem, particularly with respect to the brain. Summary of the Invention
[0005] Provided herein are cells comprising a recombinant nucleic acid encoding a transmembrane protein having an extracellular binding domain that specifically binds to a brain-selective extracellular antigen, such as MOG, CDH10, PTPRZ1, or NRCAM, but not a nucleic acid encoding an antigen-specific therapeutic that binds to a killing antigen expressed by glioblastoma. MOG, CDH10, PTPRZ1, or NRCAM are brain-selective; thus, binding to any of these antigens limits or concentrates the effects of the cells to the brain. For example, in some embodiments, the transmembrane protein may localize therapeutic cells to the brain, thereby limiting their migration from the brain to other tissues. In other embodiments, the transmembrane protein may be a receptor comprising a binding-triggered transcriptional switch, such as, but not limited to, the synNotch receptor. In these embodiments, the cells further comprise a nucleic acid comprising (i) a coding sequence encoding a therapeutic protein and (ii) a regulatory sequence, operably linked to the coding sequence and responsive to activation of the binding-triggered transcriptional switch. In these embodiments, the binding-triggered transcriptional switch is preferentially activated in the brain, such that the therapeutic protein is expressed or delivered to brain tissue and not other tissues. [Brief explanation of the drawings]
[0006] [Figure 1A-D] 1A-1D show examples of brain-specific therapeutic circuits employing antigen recognition and therapeutic targeting using brain-specific antigens with or without diffusible components and target antigens expressed by diseased cells.
[0007] [Figure 2A] 2A-2B demonstrate the selective activation of synNotch receptors targeting various antigens in the presence of target GBM cells in a synNotch→CAR T cell GBM circuit as described herein. [Figure 2B]2A-2B demonstrate the selective activation of synNotch receptors targeting various antigens in the presence of target GBM cells in a synNotch→CAR T cell GBM circuit as described herein.
[0008] [Figure 3A-B] Figures 3A-3D demonstrate selective synNotch activation and cell killing in the presence of target GBM cells by a synNotch→CAR T circuit as described herein. [Figure 3C-D] Figures 3A-3D demonstrate selective synNotch activation and cell killing in the presence of target GBM cells by a synNotch→CAR T circuit as described herein.
[0009] [Figure 4] FIG. 4 shows cells containing IF / THEN circuits with and without OR gate function in the associated binding-triggered transcriptional switch, antigen-specific therapeutic agent, or both.
[0010] [Figure 5] Figure 5 shows the design of a combinatorial antigen "prime and kill" circuit to overcome the dual challenges of antigen heterogeneity and off-tumor toxicity, for example, where antigen A is MOG, CDH10, PTPRZ1, or NRCAM and antigen B is a disease-specific antigen. This diagram shows an example of a "kill" circuit using a chimeric antigen receptor. However, these circuits can be easily adapted to produce other molecules, such as antibodies, enzymes, or cytokines.
[0011] (a) Limitations of Standard CAR T Cells in Heterogeneous Tumors One of the major challenges in identifying an ideal CAR antigen for glioblastoma is targeting CAR T cells to a highly specific and uniformly expressed antigen. If CAR T cells are targeted against a tumor-specific antigen (e.g., EGFRvIII) but the expression of this antigen is heterogeneous (not expressed in all tumor cells), non-antigen-expressing tumor cells may escape treatment. On the other hand, if CAR T cells are targeted against a tumor antigen that is uniformly expressed in the tumor but has incomplete specificity (also expressed in some normal cells), this will result in on-target off-tumor toxicity. The dual challenges of heterogeneity and specificity inherently limit the therapeutic window of CAR T cells.
[0012] (b) T cell circuits can be designed to combine recognition of two imperfect but complementary antigens: one specific antigen and one uniform antigen. Our approach is to engineer T cells to use a sequential prime-and-kill mechanism: T cells are first primed with antigen A (either a highly specific antigen or a tissue-specific antigen) to induce the expression of a CAR targeting antigen B, which is uniform but not necessarily absolutely tumor-specific. By applying a specificity prefilter across a less restrictive killing mechanism, these combinatorial antigen recognition circuits may enable engineered T cells to overcome tumor antigen heterogeneity while also eliminating on-target off-tumor toxicity.
[0013] [Figure 6] FIG. 6 shows that CD8+ T cells with an α-EGFRvIII synNotch→α-EphA2 / IL13α2 CAR prime-and-kill circuit can effectively kill a U87 GBM population with heterogeneous EGFRvIII expression in vitro.
[0014] (a) Primary human CD8+ T cells were engineered with the α-EGFRvIII synNotch receptor and the corresponding response element ("EphA2 / IL13α2 4-1BBζ mutein CAR"; Figure 11a) that controls expression of the α-EphA2 / IL13α2 4-1BBζ CAR. The IL13 mutein is a mutant form of IL13 (E13K, K105R) that preferentially binds to IL13Rα2 (Krebs et al., 2014). Primary T cells must first recognize EGFRvIII via their synNotch receptor to initiate CAR expression. Prime-and-kill CAR T cells should be activated to kill EphA2+ or IL13Rα2+ target cells only when exposed to EGFRvIII-positive cells.
[0015] (b) We use an engineered U87 GBM cell line to mimic the heterogeneity observed in GBM. U87 cells naturally express two target antigens, EphA2 and IL13Rα2, but not EGFRvIII (U87-EGFRvIII-negative cells, also referred to here as "target" cells). We engineered U87 cells to also express the EGFRvIII priming antigen (U87-EGFRvIII-positive cells, also referred to here as "priming" cells). By mixing these U87 cells at different ratios, we can systematically generate different levels of heterogeneity. We labeled tumor cells with different fluorescent proteins to enable tracking of cell survival for each individual cell type.
[0016] (c) "Prime-and-kill" T cell circuits can overcome tumor heterogeneity. The prime-and-kill circuit utilizes the synNotch receptor to recognize a priming antigen (gold), which induces the expression of a CAR that recognizes a different killing antigen (blue). We hypothesize that local priming of T cells within the tumor can enable the killing of adjacent tumor cells (blue) that lack the priming antigen. Thus, specific but heterogeneously expressed antigens can serve as good priming antigens, while uniform but not absolute tumor-specific antigens can serve as good killing antigens. In this model, other normal tissues that express killing antigens are spared unless the priming antigen is expressed.
[0017] (d) Time course analysis of killing at different heterogeneous tumor cell ratios. Primary CD8+ human T cells bearing the α-EGFRvIII synNotch→α-EphA2 / IL13α2 CAR were cultured with the indicated U87 cell mixture at a 5:1 E:T ratio and imaged over 3 days using the IncuCyte system. EGFRvIII-positive primed cells are colored yellow, while EGFRvIII-negative target cells are colored blue (T cells were unlabeled). The dotted black line indicates 100% proliferation of target cells as a reference only. Data from these experiments (cell survival measured by fluorescence) are quantitatively analyzed in the time course plots below (n=3, error bars are SEM).
[0018] (e) Cytotoxicity assay using primary CD8+ prime-and-kill CAR T cells. Primary CD8+ prime-and-kill CAR T cells as described in Figure 6a were co-cultured with U87 cells as described in Figure 6b. Forward and side scatter flow cytometry plots (72 hours) are shown. Live U87 cells fall within the red gate. Prime-and-kill CAR T cells kill the U87 population only if primed cells are found within the population, as indicated by a decrease in cells in the U87 gate (representative of three experiments). Quantification of prime-and-kill CAR T cell killing as a function of prime / target cell ratio (n=3, error bars are SEM).
[0019] [Figure 7a-b] Figure 7 shows that T cells with an α-EGFRvIII synNotch→α-EphA2 / IL13α2 prime-and-kill circuit mediate effective and localized antitumor responses against U87 GBM, which heterogeneously express EGFRvIII in the brain.
[0020] (a) U87 GBM xenografts were orthotopically implanted into the brains of immunodeficient NCG mice. Tumors contained one of three priming / target cell ratios: i) 100% U87 (EGFRvIII-negative) target tumor cells, ii) 50% / 50% U87-EGFRvIII-positive (priming) tumor cells and EGFRvIII-negative (target) tumor cells, and iii) 100% U87-EGFRvIII-positive (priming) cells. Tumor cells were engineered to express luciferase to enable tumor size tracking. Six days after tumor implantation, mice were intravenously infused with 3 million CD4+ and CD8+ T cells, respectively. T cells expressed either i) no construct (untransduced control) or ii) the α-EGFRvIII synNotch→α-EphA2 / IL13α2 CAR circuit.
[0021] (b) Tumor size was determined by longitudinal bioluminescence imaging. Individual traces for each animal are shown as thin lines, and the average is shown as a thick line. Negative control treatment with untransduced T cells is shown in black, and prime-and-kill CAR T cell treatment is shown in pink. Prime-and-kill CAR T cells have no effect on tumors lacking EGFRvIII priming (left panel, n=5), but show a significant improvement in tumor size reduction (****p<0.0001, t-test).
[0022] [Figure 7c-f](c) NCG mice were simultaneously implanted with two tumors: i) a heterogeneous tumor containing EGFRvIII-positive U87 and EGFRvIII-negative U87 cells in the brain at a 1:1 ratio, and ii) subcutaneous EGFRvIII-negative U87 tumor cells in the flank. Thus, both tumors express killing antigens (EphA2 and IL13Rα2) but differ in their expression of the EGFRvIII priming antigen. Mice were treated once (6 days after tumor implantation) with an intravenous infusion of untransduced T cells (n = 6) or prime-and-kill CAR T cells (n = 6).
[0023] (d) Tumor size was measured by luciferase luminescence. Prime-and-kill CAR T cells are shown in pink, and untransduced control T cells are shown in gray. A significant suppression of brain tumor size was observed in mice treated with prime-and-kill CAR T cells (**** p<0.00001; t-test), while flank tumors grew at the same rate as mice treated with untransduced T cells.
[0024] (e) Time-lapse bioluminescence imaging of mice bearing heterogeneous U87 (1:1 mixture of EGFRvIII-positive and EGFRvIII-negative) tumor cells treated with prime-and-kill CAR T cells. Each column represents one mouse; each row represents an imaging time point.
[0025] (f) Tumor-bearing mice were euthanized two days after prime-and-kill CAR T cell injection. Flow cytometry was performed on T cells isolated from intracranial heterogeneous tumors, spleen, and control flank tumors. Engineered T cells primed with EGFRvIII antigen were positive for GFP (CAR fused to GFP). Upregulation of GFP expression in T cells (CD3+) was observed only in brain xenografts, but not in T cells isolated from flank tumors or spleens.
[0026] [Figure 8a-c]Figure 8 shows that T cells harboring an α-EGFRvIII synNotch→α-EphA2 / IL13α2 CAR prime-and-kill circuit durably clear patient-derived GBM6 xenograft tumors in mice despite heterogeneous EGFRvIII expression.
[0027] (a) Endogenous expression of EGFRvIII in patient-derived xenograft GBM6 cells is heterogeneous.
[0028] (b) GBM6 patient-derived xenograft cells were orthotopically implanted into the brains of immunodeficient NCG mice. Tumor cells were engineered to express mCherry and luciferase to enable tumor size tracking. EGFRvIII expression on GBM6 cells is heterogeneous. Ten days after tumor implantation, mice were intravenously infused with 3 million CD4+ and CD8+ T cells, respectively. T cells expressed either i) no construct (untransduced control) (n = 5), ii) the α-EGFRvIII synNotch→α-EphA2 / IL13α2 CAR circuit (n = 7), or iii) a constitutively expressed α-EGFRvIII CAR (n = 6).
[0029] (c) Tumor size (top row) and survival (bottom row) over time. Tumor size was determined by longitudinal bioluminescence imaging. Individual traces for each animal are shown as thin lines, and the average is shown as a thick line. Negative control treatment with untransduced T cells is shown in black, prime-and-kill CAR circuit treatment is shown in pink, and conventional α-EGFRvIII CAR treatment (average of cleared results only) is shown as a purple dotted line. Treatment with conventional α-EGFRvIII CAR T cells resulted in early tumor regression, followed by recurrence in all mice (n = 6), with two mice dying from tumor-induced death by day 117. In contrast, all mice treated with prime-and-kill CAR T cells showed complete tumor clearance (p < 0.0001 t-test untransduced vs. prime-and-kill CAR T cells). These mice survived for more than 125 days, except for two mice that were euthanized due to an unrelated infection. An independent repeat of this experiment is shown in Figure 13e.
[0030] [Figure 8d-h] (d) Longitudinal bioluminescence imaging of GBM6-bearing mice treated with prime-and-kill CAR T cells and conventional α-EGFRvIII CAR T cells. Each column represents one mouse; each row represents an imaging time point.
[0031] (e) Representative fluorescence microscopy of GBM6 xenografts shows heterogeneous expression of EGFRvIII (red) 10 days after tumor inoculation (mCherry tumor).
[0032] (f) Fluorescence microscopy reveals clearance of implanted GBM6 xenografts (lack of mCherry tumor cells) after systemic administration of synNotch-CAR T cells. Retention of prime-and-kill CAR T cells in the brain parenchyma and meninges (stained for CD45, red).
[0033] (g) Representative images of tumor recurrence (mCherry-positive tumor cells) and loss of EGFRvIII expression (red) for conventional α-EGFRvIII CAR T-cell treated xenografts.
[0034] (h) Representative confocal fluorescence microscopy of a prime-and-kill CAR T cell-treated GBM6 xenograft reveals primed GFP+ T cells (yellow) in the tumor bed (colocalized with red-stained hCD45 indicated by white arrows). Prime-and-kill CAR T cells express GFP upon priming. Right panel. Prime-and-kill CAR T cells in the spleen (red) do not express GFP.
[0035] [Figure 9a-f] Figure 9 shows that local brain-specific prime-and-kill CAR T cells mediate effective anti-GBM responses.
[0036] (a) Primary human CD8+ T cells were engineered with the anti-brain antigen synNotch receptor and the corresponding response element that controls expression of α-EphA2 / IL13α2 4-1BBζ CAR expression ("EphA2 / IL13 mutein CAR", FIG. 11a). Primary T cells must first recognize brain antigens via their synNotch receptors to initiate CAR expression. The prime-and-kill circuitry should only be activated to kill EphA2+ or IL13Rα2+ target cells upon exposure to the brain.
[0037] (b) Boxplots showing tissue-specific expression of CDH10 and MOG across a subset of tissue samples in GTEx v7. Units shown are log-scaled, normalized RNAseq counts (transcripts / million) obtained from the GTEx portal v7.
[0038] (c) Primary CD8+ α-CDH10 or α-MOG synNotch→GFP PGK BFP T cells were cocultured with either parental K562 or K562 transduced to express mouse CDH10 or MOG, or human CDH10 or MOG. T cell priming after 48 h of exposure was measured by induction of the GFP reporter. FACS histograms show induction of the GFP reporter only in the presence of mouse CDH10+ or MOG+, or human CDH10+ or MOG+ K562, but not in the presence of parental K562 cells (representative of three experiments).
[0039] (d) GBM6 patient-derived xenograft cells were orthotopically implanted into the brains of immunodeficient NCG mice. Tumor cells were engineered to express mCherry and luciferase to allow for tumor size tracking. Ten days after tumor implantation, mice were intravenously infused with 3 million CD4+ and CD8+ T cells, respectively. T cells expressed either i) no construct (untransduced control), ii) the α-MOG synNotch→α-EphA2 / IL13α2 CAR circuit (n=6), or iii) the α-CDH10 synNotch→α-EphA2 / IL13α2 CAR circuit (n=7).
[0040] (e) Tumor size (top) and survival (bottom) over time. Tumor size was determined by longitudinal bioluminescence imaging. Negative control treatment with untransduced T cells is shown in gray, and prime-and-kill CAR circuit treatment is shown in pink. Compared to the untransduced treatment group, mice treated with α-MOG-prime-and-kill CAR T cells (4 of 6 mice) showed a strong antitumor response (p<0.001 by t-test and Holm-Sidak correction for multiple comparisons) and survived for 60 days (p=0.05 Log-rank (Mantel-Cox) test).
[0041] (f) Tumor size (top) and survival (bottom) over time. Tumor size was determined by longitudinal bioluminescence imaging. Negative control treatment with untransduced T cells is shown in gray, and prime-and-kill CAR circuit treatment is shown in purple. Compared to the untransduced treatment group, mice treated with α-CDH10-prime-and-kill CAR T cells (5 of 7 mice) showed a durable anti-tumor response (p<0.001 by t-test and Holm-Sidak correction for multiple comparisons) (p<0.0001 Log-rank (Mantel-Cox) test).
[0042] [Figure 9g-h] (g) GBM6 PDX tumor cells were implanted into the brain and flank of NCG mice. Both tumors express killing antigens (EphA2 and IL13Rα2), but expression of the priming antigen MOG / CDH10 is restricted to the brain. Mice were treated once (10 days after tumor implantation) with an intravenous infusion of untransduced CAR T cells (n=5), or α-MOG prime-and-kill CAR T cells (n=6), or (iii) α-CDH10 prime-and-kill CAR T cells (n=5).
[0043] (h) Tumor size was measured by luciferase luminescence. α-MOG-prime-and-kill CAR T cells are shown in pink, α-CDH10-prime-and-kill CAR T cells are shown in purple, and untransduced control T cells are shown in gray. A significant suppression of brain tumor size was observed in mice treated with prime-and-kill CAR T cells (**** p<0.0001; t-test), while flank tumors grew at the same rate as mice treated with untransduced T cells.
[0044] [Figure 10] Figure 10 shows that multi-antigen T cell circuits can be used to flexibly engineer tumor recognition.
[0045] (a) and (b). The prime-and-kill circuit developed here represents a three-input AND-OR gate: when T cells encounter the priming antigen EGFRvIII (a) or MOG (b) and either the killing antigen (EphA2 or IL13Rα2), killing activity is induced.
[0046] (c) The prime-and-kill circuit is hypothesized to enable killing of target cells in a "killing radius" around the priming cells (here, EGFRvIII-positive cells). Once the T cells leave the tumor and no longer receive a continuous priming signal, CAR expression decays over several hours, preventing a sustained killing response in other tissues (Roybal et al., 2016a; Roybal et al., 2016b).
[0047] (d) The prime-and-kill CAR circuit surgically crafts an antigen space to optimize the capture of all tumor cells while avoiding cross-reactivity. Here, the antigen space is represented three-dimensionally, with the three axes representing EGFRvIII or MOG as the priming antigen and EphA2 and IL13Rα2 as the killing antigens. The prime-and-kill CAR circuit selects tumors within the pale pink volume: engineered T cells must encounter expression of EGFRvIII or MOG expressed within the brain tumor environment and either EphA2 or IL13Rα2 on GBM cells.
[0048] [Figure 11] Figure 11 shows the design and testing of α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR T cells against U87 GBM.
[0049] (a) Domain structures of α-EphA2 / IL13α2 CAR, α-EphA2 CAR, and α-IL13Rα2 CAR. IL13 mutein is a mutant form of IL13 (E13K, K105R) that preferentially binds to IL13Rα2 (Krebs et al., 2014).
[0050] (b) Killing of U87 wild-type cells (EphA2+IL13Rα2+) by the new α-EphA2 / IL13α2 CAR is compared to T cells expressing either the α-EphA2 CAR or the α-IL13Rα2 CAR. Killing was measured using fluorescently labeled U87 cells in an IncuCyte killing assay measuring total fluorescence (live cells) over time (n=3, error bars are SEM). The tandem CAR kills more rapidly and effectively than either of the individual target CARs at 24, 48, and 72 hours (p≦0.164; Tukey's multiple comparison test).
[0051] (c) The α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR is effective at killing a 50 / 50% EGFRvIII-positive / EGFRvIII-negative co-culture of U87 cells. The α-EphA2 / IL13α2 CAR kills as effectively as T cells with a similar circuit driving the α-EphA2 CAR after 48 hours (n=3, error bars are SEM, p=not significant; t-test).
[0052] (d) Primary CD8+ synNotch CAR T cells as described in Figure 7a were co-cultured with U87 cells as described in Figure 7b. T cell priming after 24 and 48 hours of exposure was measured by tracking the induction of α-EphA2 / IL13α2 CAR fused to a GFP reporter. FACS histograms show no induction in the absence of priming cells and significant induction with as few as 10% of primed cells (EGFRvIII positive) (representative of at least three independent experiments).
[0053] (e) Relative cell survival is compared between U87-EGFRvIII 50% and U87-EGFRvIII 90% populations co-cultured with α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR after 48 hours of exposure. Survival was measured using fluorescently labeled U87 cells in an IncuCyte assay measuring total fluorescence (viable cells) over time (n=3, error bars are SEM). The U87-EGFRvIII 90% population had higher relative cell survival compared to the U87-EGFRvIII 50% population (p=0.149; t-test).
[0054] (f) Representative contour plots showing the expression of the α-EGFRvIII synNotch Gal4VP64 receptor and the corresponding response element regulating the α-EphA2 / IL13Rα2 CAR 4-1BBζ CAR GFP pGK BFP in primary CD4+ and CD8+ T cells. T cells positive for the synNotch receptor were stained via the myc tag present on the synNotch receptor, and response elements were selected based on BFP expression. T cells within the quadrant outlined in red were sorted and selected for in vitro and in vivo experiments.
[0055] [Figure 12] Figure 12 shows representative immunofluorescence images of 50 / 50% EGFRvIII-positive / EGFRvIII-negative U87 xenografts 6 days after tumor cell inoculation. U87-EGFRvIII-positive and U87-EGFRvIII-negative cells are tagged with GFP and mCherry, respectively, and nuclei are stained with DRAQ7. Scale bar, 100 μm. See Methods for cell line generation.
[0056] [Figure 13] Figure 13 shows the results of testing α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR T cells against GBM6.
[0057] (a) Killing assay of this circuit in which primary CD8+ α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR T cells were co-cultured with GBM6 cells at an ET ratio of 1:1. Relative cell survival over 72 hours was quantified, demonstrating the cytotoxic ability of synNotch CAR T cells to overcome GBM6 cell populations (n=3, error bars are SEM).
[0058] (b) Primary CD8+ α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR T cells were co-cultured with GBM6 cells at a 1:1 ET ratio or without GBM6 cells. T cell priming after 48 hours of exposure was measured by tracking the induction of α-EphA2 / IL13Rα2 CAR fused to a GFP reporter. FACS histograms show no induction in the absence of GBM6 cells and significant induction with GBM6 cells (representative of at least three independent experiments).
[0059] (c) GBM6 cells were sorted for varying levels of EGFRvIII expression and assessed by flow cytometry post-sorting. Gray represents unstained control.
[0060] (d) Killing assay using primary CD8+ α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR T cells, α-EGFRvIII CAR T cells, or α-EphA2 / IL13Rα2 CAR T cells co-cultured with either no, high, or unsorted EGFRvIII. Relative cell survival over 72 hours was quantified, demonstrating the inability of α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR T cells and α-EGFRvIII CAR T cells to kill GBM6 cell populations that do not express any EGFRvIII antigen (n=3, error bars are SEM).
[0061] (e) Independent repeat of the mouse experiment shown in Figure 8c (GBM6 PDX tumor treatment with a different T cell circuit).
[0062] [Figure 14] Figure 14 shows the results of testing α-CDH10 synNotch→α-EphA2 / IL13Rα2 CAR T cells and α-MOG synNotch→α-EphA2 / IL13Rα2 CAR T cells against GBM6.
[0063] (a) Primary CD8+ α-CDH10 synNotch→α-EphA2 / IL13Rα2 CAR T cells were co-cultured with U87 cells and K562 cells expressing mouse CDH10 or not. Relative cell survival over 72 hours was quantified to demonstrate the cytotoxic ability of α-CDH10 synNotch→α-EphA2 / IL13Rα2 CAR T cells to kill U87 cells only when the priming cells expressed mouse CDH10 (n=3, error bars are SD). Cell population ratio: 1:1:1, 10K cells each.
[0064] (b) Primary CD8+ α-MOG synNotch→α-EphA2 / IL13Rα2 CAR T cells were co-cultured with GBM6 and L929 cells expressing or not expressing murine MOG. Relative cell survival over 72 hours was quantified, demonstrating the cytotoxic ability of α-MOG synNotch→α-EphA2 / IL13α2 CAR T cells to kill GBM6 cells only when the priming cells expressed murine MOG (n=3, error bars are SD). Cell population ratio: 1:1:1, 10K cells each.
[0065] (c) Representative fluorescence microscopy images reveal clearance of implanted GBM6 xenografts (lack of mCherry tumor cells) after systemic administration of α-MOG synNotch-CAR T cells. Retention of prime-and-kill CAR T cells in the meninges (stained for CD45).
[0066] definition As used herein, the terms "treatment," "treating," "treating," and the like refer to obtaining a desired pharmacological and / or physiological effect and / or response associated with treatment. The effect may be prophylactic, in that a disease or its symptoms are completely or partially prevented, and / or therapeutic, in that a disease and / or adverse effects resulting from the disease are partially or completely cured. As used herein, "treatment" encompasses any treatment of disease in mammals, particularly humans, and includes (a) preventing the disease from occurring in a subject who may be susceptible to the disease but has not yet been diagnosed as having it; (b) inhibiting the disease, i.e., halting its development; and (c) relieving the disease, i.e., causing regression of the disease.
[0067] A "therapeutically effective amount" or "effective amount" refers to the amount of an agent (including biological agents, e.g., cells), or the amount of two agents combined, that, when administered to a mammal or other subject for treating a disease, is sufficient to effect such treatment of the disease. A "therapeutically effective amount" will vary depending on the agent(s), the disease and its severity, and the age, weight, etc., of the subject being treated.
[0068] The terms "individual," "subject," "host," and "patient," used interchangeably herein, refer to mammals, including, but not limited to, murines (e.g., rats, mice), non-human primates, humans, dogs, cats, ungulates (e.g., horses, cattle, sheep, pigs, goats), lagomorphs, etc. In some cases, the individual is a human. In some cases, the individual is a non-human primate. In some cases, the individual is a rodent, e.g., a rat or mouse. In some cases, the individual is a lagomorph, e.g., a rabbit.
[0069] As used herein, the term "refractory" refers to a disease or condition that does not respond to treatment. With respect to cancer, as used herein, "refractory cancer" refers to a cancer that does not respond to treatment. A refractory cancer may be resistant at the start of treatment or may become resistant during treatment. A refractory cancer is also called a resistant cancer.
[0070] As used herein, the terms "histology" and "histological" generally refer to the microscopic analysis of the cellular anatomy and / or morphology of cells obtained from multicellular organisms, including but not limited to plants and animals.
[0071] As used herein, the terms "cytology" and "cytological" generally refer to a subclass of histology that includes the microscopic analysis of individual cells, dissociated cells, free cells, clusters of cells, etc. Cells in a cytological sample can be cells in or obtained from one or more body fluids, or cells obtained from tissues that have been dissociated into a liquid cytological sample.
[0072] The terms "chimeric antigen receptor" and "CAR," used interchangeably herein, generally, but not exclusively, refer to an artificial multi-module molecule capable of inducing or suppressing immune cell activation, typically including an extracellular domain (e.g., a ligand / antigen-binding domain), a transmembrane domain, and one or more intracellular signaling domains. The term CAR is not specifically limited to CAR molecules but also includes CAR variants. CAR variants include split CARs, in which the extracellular portion (e.g., a ligand-binding portion) and the intracellular portion (e.g., an intracellular signaling portion) of the CAR are present on two separate molecules. CAR variants also include conditionally activatable CARs, such as ON-switch CARs, including split CARs in which the conditional heterodimerization of the two portions of the split CAR is pharmacologically controlled (e.g., as described in PCT Publication No. WO 2014 / 127261 A1 and U.S. Patent Application Publication No. 2015 / 0368342 A1, the disclosures of which are incorporated herein by reference in their entireties). CAR variants also include bispecific CARs that contain a secondary CAR binding domain that can amplify or suppress the activity of the primary CAR. CAR variants also include, for example, inhibitory chimeric antigen receptors (iCARs), which can be used as components of bispecific CAR systems in which binding of the secondary CAR binding domain results in suppression of primary CAR activation.CAR molecules and their derivatives (i.e., CAR variants) have been described, for example, in PCT Application No. US 2014 / 016527; Fedorov et al. Sci Transl Med (2013); 5(215):215ra172; Glienke et al. Front Pharmacol (2015) 6:21; Kakarla & Gottschalk 52 Cancer J (2014) 20(2):151-5; Riddell et al. Cancer J (2014) 20(2):141-4; Pegram et al. Cancer J (2014) 20(2):127-33; Cheadle et al. Immunol Rev (2014) 257(1):91-106; Barrett et al. Annu Rev Med (2014) 65:333-47; Sadelain et al. Cancer J (2014) 20(2):127-33; Discov (2013) 3(4):388-98; Cartellieri et al., J Biomed Biotechnol (2010) 956304, the disclosures of which are incorporated herein by reference in their entireties. Useful CARs also include the anti-CD19-4-1BB-CD3 ζ CAR expressed by lentiviral-loaded CTL 019 (Tisagenlecleucel-T) CAR-T cells commercially available from Novartis (Basel, Switzerland).
[0073] The terms "T cell receptor" and "TCR" are used interchangeably and generally refer to molecules found on the surface of T cells or T lymphocytes that are responsible for recognizing fragments of antigens as peptides bound to major histocompatibility complex (MHC) molecules. The TCR complex is a disulfide-linked, membrane-anchored heterodimeric protein consisting of highly variable alpha (α) and beta (β) chains, usually expressed as part of a complex with CD3 chain molecules. Most naturally occurring TCRs exist in heterodimeric αβ or γδ forms. The complete endogenous TCR complex in heterodimeric αβ form contains eight chains: an alpha chain (referred to herein as TCRα or TCR alpha), a beta chain (referred to herein as TCRβ or TCR beta), a delta chain, a gamma chain, two epsilon chains, and two zeta chains. In some instances, TCRs are generally referred to by reference to only the TCR alpha and TCR beta chains, however, as assembled TCR complexes may associate with endogenous delta, gamma, epsilon and / or zeta chains, those skilled in the art will readily understand that reference to a TCR present at the cell membrane can include reference to a fully or partially assembled TCR complex, as appropriate.
[0074] Recombinant or engineered individual TCR chains and TCR complexes have been developed. Reference to the use of TCRs in a therapeutic context may refer to individual recombinant TCR chains. Thus, engineered TCRs may include individual modified TCR alpha or beta chains, as well as single-chain TCRs comprising modified and / or unmodified TCR alpha and beta chains joined into a single polypeptide by a linking polypeptide.
[0075] As used herein, the term "binding-triggered transcriptional switch" or "BTTS" refers to any polypeptide or complex thereof that can convert a specific binding event outside a cell (e.g., binding of the extracellular domain of a BTTS) into activation of a recombinant promoter in the nucleus of the cell. Many BTTSs act by releasing a transcription factor that activates the promoter. In these embodiments, the BTTS is composed of one or more polypeptides that, upon binding to an antigen, undergo proteolytic cleavage to release a gene expression regulator that activates the recombinant promoter. For example, a BTTS can include (i) an extracellular domain comprising an antigen-binding region of an antigen-specific antibody; (ii) a proteolytically cleavable sequence comprising one or more proteolytic cleavage sites; and (iii) an intracellular domain, wherein binding of the antigen-binding region to an antigen induces cleavage of the sequence at the one or more proteolytic cleavage sites, thereby releasing the intracellular domain, which activates transcription of an expression cassette. BTTSs can be based on, for example, synNotch, A2, MESA, or force receptors, although others are known or can be constructed.
[0076] As used herein, a "chimeric bispecific binding member" refers to a chimeric polypeptide that has dual specificities for two different binding partners (e.g., two different antigens). Non-limiting examples of chimeric bispecific binding members include bispecific antibodies, bispecific conjugated monoclonal antibodies (mab)2, bispecific antibody fragments (e.g., F(ab)2, bispecific scFv, bispecific diabodies, single-chain bispecific diabodies, etc.), bispecific T cell engagers (BiTEs), bispecific conjugated single domain antibodies, Micabodies and mutants thereof, etc. Non-limiting examples of chimeric bispecific binding members also include the chimeric bispecific agents described in Kontermann. MAbs. (2012) 4(2): 182-197; Stamova et al. Antibodies 2012, 1(2), 172-198; Farhadfar et al. Leuk Res. (2016) 49: 13-21; Benjamin et al. Ther Adv Hematol. (2016) 7(3): 142-56; Kiefer et al. Immunol Rev. (2016) 270(1): 178-92; Fan et al. J Hematol Oncol. (2015) 8: 130; May et al. Am J Health Syst Pharm. (2016) 73(1): e6-e13; the disclosures of which are incorporated herein by reference in their entireties.
[0077] A "biological sample" encompasses a variety of sample types obtained from an individual or a population of individuals and can be used in a variety of ways, including, for example, isolation of cells or biomolecules, diagnostic assays, and the like. The definition encompasses blood and other liquid samples of biological origin, solid tissue samples, such as biopsy specimens or tissue cultures, or cells derived therefrom and their progeny. The definition also includes samples that have been manipulated in some way after their procurement, such as by mixing or pooling individual samples, treatment with reagents, solubilization, or enrichment for particular components, such as cells, polynucleotides, or polypeptides. The term "biological sample" encompasses clinical samples, and also includes cells in culture, cell supernatants, cell lysates, serum, plasma, biological fluids, and tissue samples. The term "biological sample" includes urine, saliva, cerebrospinal fluid, interstitial fluid, ocular fluid, synovial fluid, blood fractions, such as plasma and serum, and the like. The term "biological sample" also encompasses solid tissue samples, tissue culture samples (e.g., biopsy samples), and cell samples. Thus, a biological sample can be a cellular or acellular sample.
[0078] The terms "antibody" and "immunoglobulin" include antibodies or immunoglobulins of any isotype, fragments of antibodies that retain specific binding to antigen, including but not limited to Fab, Fv, scFv, and Fd fragments, chimeric antibodies, humanized antibodies, single-chain antibodies, nanobodies, single-domain antibodies, and fusion proteins comprising an antigen-binding portion of an antibody and a non-antibody protein.
[0079] An "antibody fragment" comprises a portion of an intact antibody, such as the antigen-binding or variable region of the intact antibody. Examples of antibody fragments include Fab, Fab', F(ab')2, and Fv fragments; diabodies; linear antibodies (Zapata et al., Protein Eng. 8(10):1057-1062 (1995)); single-chain antibody molecules; and multispecific antibodies formed from antibody fragments. Papain digestion of an antibody produces two identical antigen-binding fragments, called "Fab" fragments, each with a single antigen-binding site, and a residual "Fc" fragment, a designation reflecting its ability to crystallize readily. Pepsin treatment yields an F(ab')2 fragment that has two antigen-binding sites and is still capable of cross-linking antigen.
[0080] "Single-chain Fv" or "sFv" antibody fragments comprise the VH and VL domains of antibody, wherein these domains are present in a single polypeptide chain. In some embodiments, the Fv polypeptide further comprises a polypeptide linker between the VH and VL domains which enables the sFv to form the desired structure for antigen binding. For a review of sFvs, see Plückthun in The Pharmacology of Monoclonal Antibodies, vol. 113, Rosenburg and Moore eds., Springer-Verlag, New York, pp. 269-315 (1994).
[0081] As used herein, the term "nanobody" (Nb) refers to the smallest antigen-binding fragment or single variable domain (V) derived from a naturally occurring heavy chain antibody. HH) and are known to those skilled in the art. They are derived from heavy chain-only antibodies found in camelids (Hamers-Casterman et al. (1993) Nature 363:446; Desmyter et al. (2015) Curr. Opin. Struct. Biol. 32:1). In the family of "camelids," immunoglobulins that lack light polypeptide chains are found. "Camelids" includes Old World camelids (Bactrian camels (Camelus bactrianus) and dromedaries (Camelus dromedarius)) and New World camelids (e.g., alpacas (Llama paccos), llamas (Llama glama), guanacos (Llama guanicoe), and vicuñas (Llama vicugna)). Single variable domain heavy chain antibodies are referred to herein as nanobodies or V HH are called antibodies.
[0082] As used herein, the term "affinity" refers to the equilibrium constant for the reversible binding of two agents, expressed as the dissociation constant (Kd). The affinity can be at least 1-fold, at least 2-fold, at least 3-fold, at least 4-fold, at least 5-fold, at least 6-fold, at least 7-fold, at least 8-fold, at least 9-fold, at least 10-fold, at least 20-fold, at least 30-fold, at least 40-fold, at least 50-fold, at least 60-fold, at least 70-fold, at least 80-fold, at least 90-fold, at least 100-fold, or at least 1000-fold or more than the affinity of the antibody for an unrelated amino acid sequence. The affinity of an antibody for a target protein can be, for example, from about 100 nanomolar (nM) to about 0.1 nM, from about 100 nM to about 1 picomolar (pM), or from about 100 nM to about 1 femtomolar (fM) or more. As used herein, the term "binding activity" refers to the resistance of a complex of two or more agents to dissociation after dilution. The terms "immunoreactive" and "preferentially bind" are used interchangeably herein with respect to antibodies and / or antigen-binding fragments.
[0083] The term "binding" refers to a direct association between two molecules, for example, by ionic and / or hydrogen-bonding interactions, including covalent, electrostatic, hydrophobic, and salt and water bridges. Nonspecific binding occurs at approximately 10 -7 Binding with an affinity less than M, e.g., 10 -6 M, 10 -5 M, 10 -4 It refers to binding with an affinity such as M.
[0084] One or more "orthogonal" or "orthogonalized" members of a binding pair are modified from their original or wild-type form such that the orthogonal pair specifically bind to each other but do not specifically or substantially bind to the unmodified or wild-type member of the pair. Any binding partner / specific binding pair can be orthogonalized, including, but not limited to, the binding partners / specific binding pairs described herein.
[0085] The terms "domain" and "motif," used interchangeably herein, refer to both structured domains having one or more specific functions and unstructured segments of a polypeptide that are unstructured but retain one or more specific functions. For example, a structured domain can include, but is not limited to, a contiguous or non-contiguous sequence of amino acids or portions thereof in a folded polypeptide that comprises a three-dimensional structure that contributes to a specific function of the polypeptide. In another example, a domain can include an unstructured segment of a polypeptide that comprises a sequence of two or more amino acids or portions thereof that maintain a specific function of the unfolded or disordered polypeptide. This definition also encompasses domains that may be disordered or unstructured but become structured or ordered upon association with a target or binding partner. Non-limiting examples of essentially unstructured domains and domains of essentially unstructured proteins are described, for example, in Dyson & Wright, Nature Reviews Molecular Cell Biology 6:197-208.
[0086] As used herein, the terms "synthetic," "chimeric," and "engineered" generally refer to an artificially derived polypeptide or polypeptides that encode a non-naturally occurring nucleic acid. Synthetic polypeptides and / or nucleic acids may be constructed de novo from basic subunits comprising, for example, a single amino acid, a single nucleotide, etc., or may be derived from existing polypeptides or polynucleotides, whether naturally or artificially derived, for example, by recombinant methods. Chimeric and engineered nucleic acid-encoding polypeptide(s) are generally constructed by combining, joining, or fusing two or more different polypeptide or polypeptides encoding nucleic acids or one or more polypeptide domains encoding nucleic acids. Chimeric and engineered nucleic acid-encoding polypeptide(s) include cases where the two or more joined polypeptide or nucleic acid "portions" are derived from different proteins (or nucleic acids encoding different proteins) as well as cases where the joined portions comprise different regions of the same protein (or nucleic acid encoding a protein), but the portions are joined in a manner that does not occur in nature.
[0087] The term "recombinant," as used herein, refers to a nucleic acid molecule, e.g., a polynucleotide of genomic, cDNA, viral, semisynthetic, and / or synthetic origin, that is unaccompanied by its origin or manipulation from all or part of the polynucleotide sequence with which it is associated in nature. The term recombinant, when used with respect to a protein or polypeptide, means a polypeptide that is produced by expression from a recombinant polynucleotide. The term recombinant, when used with respect to a host cell or virus, means a host cell or virus into which a recombinant polynucleotide has been introduced. Recombinant is also used herein with respect to material (e.g., a cell, nucleic acid, protein, or vector) to indicate that the material has been modified by the introduction of heterologous material (e.g., a cell, nucleic acid, protein, or vector).
[0088] The term "operably linked" refers to a juxtaposition in which the components so described are in a relationship permitting them to function in their intended manner. For example, a promoter is operably linked to a coding sequence if the promoter affects its transcription or expression. Operably linked nucleic acid sequences can be, but are not necessarily, contiguous. For example, in some instances, a coding sequence operably linked to a promoter may be contiguous with the promoter. In some instances, a coding sequence operably linked to a promoter may be separated by one or more intervening sequences comprising coding and non-coding sequences. Also, in some instances, three or more sequences may be operably linked, including, but not limited to, when two or more coding sequences are operably linked to a single promoter.
[0089] The terms "polynucleotide" and "nucleic acid," used interchangeably herein, refer to a polymeric form of nucleotides of any length, either ribonucleotides or deoxyribonucleotides. Thus, the terms include, but are not limited to, single-, double-, or multi-stranded DNA or RNA, genomic DNA, cDNA, DNA-RNA hybrids, or polymers containing purine and pyrimidine bases or other natural, chemically or biochemically modified, non-natural, or derivatized nucleotide bases.
[0090] The terms "polypeptide," "peptide," and "protein," used interchangeably herein, refer to polymeric forms of amino acids of any length, which may include genetically and non-genetically encoded amino acids, chemically or biochemically modified or derivatized amino acids, and polypeptides with modified peptide backbones. The terms include, but are not limited to, fusion proteins with heterologous amino acid sequences, fusions with heterologous and homologous leader sequences, fusion proteins with or without an N-terminal methionine residue; immunotagged proteins; and the like.
[0091] A "vector" or "expression vector" is a replicon, such as a plasmid, phage, virus, or cosmid, to which another DNA segment, or "insert," may be attached so as to bring about the replication of the attached segment in a cell.
[0092] As used herein, the term "heterologous" refers to a nucleotide or polypeptide sequence that is not found in the native (e.g., naturally occurring) nucleic acid or protein, respectively. A heterologous nucleic acid or polypeptide can be derived from a different species than the organism or cell in which the nucleic acid or polypeptide is present or expressed. Thus, a heterologous nucleic acid or polypeptide generally has a different evolutionary origin compared to the cell or organism in which it is present.
[0093] As used herein, the term "brain-selective extracellular antigen" refers to an extracellular antigen that is selectively expressed in brain cells (i.e., an antigen expressed on the outer surface of a cell), and the term "selectively expressed" means that the antigen or its encoding mRNA is more highly expressed in brain cells (as measured by RNA-seq, RT-PCR, or arrays) than in other non-CNS tissues tested, which can be selected from those shown in Figure 9b. MOG, CDH10, PTPRZ1, and NRCAM are examples of brain-selective extracellular antigens. Brain-specific extracellular antigens are extracellular antigens that are expressed at least 5-fold higher, at least 10-fold higher, at least 20-fold higher, or at least 50-fold higher in the brain than in the next highest-expressing non-CNS tissue, which can be selected from those shown in Figure 9b. As shown in Figure 9b, MOG is a brain-specific antigen, but other antigens can also be identified. Expression of brain-selective and brain-specific antigens can be restricted to neurons (including motor neurons, sensory neurons, and interneurons) or glial cells (including oligodendrocytes, microglia, and / or astrocytes).
[0094] Before the present invention is further described, it is to be understood that this invention is not limited to particular embodiments described, as such may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting, since the scope of the present invention will be limited only by the appended claims.
[0095] Where a range of values is provided, it is understood that each intervening value, to the tenth of the unit of the lower limit, between the upper and lower limit of that range, and any other stated or intervening value in that stated range, is encompassed within the invention, unless the context clearly dictates otherwise. The upper and lower limits of these smaller ranges may independently be included in the smaller ranges and are also encompassed within the invention, subject to any specifically excluded limit in the stated range. Where the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included in the invention.
[0096] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although any methods and materials similar or equivalent to those described herein can also be used in the practice or testing of the present invention, the preferred methods and materials are described herein. All publications mentioned herein are incorporated by reference to disclose and describe the relevant methods and / or materials to which the publications are cited.
[0097] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, a reference to "a cell" includes a plurality of such cells, a reference to "the cell" includes a reference to one or more cells and equivalents thereof known to those skilled in the art, and so forth. It should be further noted that the claims may be drafted to exclude any optional element. Accordingly, this statement is intended to serve as a predicate for use of exclusive terminology, such as "solely," "only," and the like, in connection with the recitation of claim elements or the use of a "negative" limitation.
[0098] It will be understood that certain features of the invention, which are, for clarity, described in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention, which are, for brevity, described in the context of a single embodiment, may also be provided separately or in any suitable subcombination. All combinations of the embodiments relevant to the present invention are specifically embraced by the present invention and are disclosed herein as if each and every combination were individually and expressly disclosed. Furthermore, all subcombinations of the various embodiments and elements thereof are further specifically embraced by the present invention and are disclosed herein as if each and every such subcombination were individually and expressly disclosed herein.
[0099] The publications discussed herein are provided solely for their disclosure prior to the filing date of the present application. Nothing herein should be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention. Further, the publication dates provided may be different from the actual publication dates, which may need to be independently confirmed. DETAILED DESCRIPTION OF THE INVENTION
[0100] As summarized above, the present disclosure discloses cells comprising a recombinant nucleic acid encoding a transmembrane protein having an extracellular binding domain that specifically binds to a brain-selective extracellular antigen, such as MOG, CDH10, PTPRZ1, or NRCAM, but not including a nucleic acid encoding an antigen-specific therapeutic agent that binds to a killing antigen expressed by glioblastoma. For example, the cells do not include a nucleic acid encoding an antigen-specific therapeutic agent that binds to ephrin type-A receptor 2 (EphA2), ephrin type-A receptor 3 (EphA3), interleukin-13 receptor subunit alpha-1 (IL13RA1), interleukin-13 receptor subunit alpha-2 (IL13RA2), epidermal growth factor receptor (EGFR), or erb-b2 receptor tyrosine kinase 2 (ERBB2). In some embodiments, the extracellular binding domain is a variable domain of an antibody (e.g., a nanobody or single-chain Fv) that specifically binds to a brain-selective extracellular antigen, such as MOG, CDH10, PTPRZ1, or NRCAM.
[0101] Transmembrane proteins can have a variety of structures. In some cases, transmembrane proteins consist of an extracellular binding domain, a transmembrane domain, and no intracellular signaling domain. In these embodiments, the transmembrane protein may function to tether cells to brain cells, thereby preventing the cells from migrating to other tissues.
[0102] In other embodiments, the transmembrane protein can signal to the interior of the cell that the extracellular binding domain has bound to its cognate antigen (i.e., MOG, CDH10, PTPRZ1, or NRCAM). In these embodiments, the transmembrane protein can comprise an extracellular binding domain, a transmembrane domain, and an intracellular signaling domain. For example, in these embodiments, the transmembrane protein can be a chimeric antigen receptor (or T cell receptor) or a binding-triggered transcriptional switch. In some embodiments, the transmembrane protein can be an inhibitory immune cell receptor (iICR), such as an inhibitory chimeric antigen receptor (iCAR), where binding of the iICR to a brain-selective extracellular antigen, MOG, CDH10, PTPRZ1, or NRCAM, suppresses activation of the immune cell in which the iICR is expressed. Such iICR proteins are described, for example, in WO 2017087723, Fedorov et al. (Sci. Transl. Med. 2013 5:215ral7), and other references cited above, which are incorporated by reference for their description and examples. In some embodiments, such inhibitory immunoreceptors may contain an intracellular immunoreceptor tyrosine-dependent inhibition motif (ITIM), an immunoreceptor tyrosine-dependent switch motif (ITSM), an NpxY motif, or a YXXΦ motif. Exemplary intracellular domains of such molecules can be found, for example, in PD1, CTLA4, BTLA, CD160, KRLG-1, 2B4, Lag-3, Tim-3, and other immune checkpoints. See, for example, Odorizzi and Wherry (2012) J. Immunol. 188:2957; and Baitsch et al. (2012) PLoSOne 7:e30852.
[0103] In some embodiments, the transmembrane protein can be part of a molecular circuitry that confines expression of a target protein, such as a therapeutic protein, to the brain. As described below, the therapeutic protein can optionally be antigen-specific. In these embodiments, the transmembrane protein can be a binding-triggered transcriptional switch, as described in more detail below. In these embodiments, the cell further comprises a nucleic acid comprising (i) a coding sequence encoding a therapeutic protein and (ii) a regulatory sequence, the regulatory sequence operably linked to the coding sequence and responsive to activation of the binding-triggered transcriptional switch. In some embodiments, the binding-triggered transcriptional switch can be a SynNotch polypeptide, e.g., a polypeptide comprising: (i) an extracellular domain comprising the antigen-binding region of a brain-selective extracellular antigen (e.g., MOG-, CDH10-, PTPRZ1-, or NRCAM-)-specific antibody; (ii) a proteolytically cleavable Notch receptor polypeptide comprising one or more proteolytic cleavage sites; and (iii) an intracellular domain. In these embodiments, binding of the extracellular domain of (i) to a brain-selective extracellular antigen, e.g., MOG, CDH10, PTPRZ1, or NRCAM, on the surface of a brain cell induces cleavage of the synNotch polypeptide at one or more proteolytic cleavage sites to release the intracellular domain, which in these embodiments induces expression of a therapeutic protein via regulatory sequences operably linked to its coding sequence.
[0104] In these embodiments, once expressed, the therapeutic protein may be secreted by the cell or may be present on the surface of the cell. In embodiments in which the therapeutic protein is secreted, the therapeutic protein may be, for example, an antibody (e.g., an antibody that binds to PD1, PD-L1, PD-L2, CTLA4, TIM3, or LAG3, or, for example, another immune checkpoint), an enzyme (e.g., superoxide dismutase to remove reactive oxygen species, or a protease that can expose a probody), or a bioactive peptide such as a cytokine (e.g., IL-1ra, IL-4, IL-6, IL-10, IL-11, IL-13, or TGF-β, among others).
[0105] In embodiments in which a therapeutic protein is localized on the surface of a cell, the therapeutic protein can be, for example, a signaling protein comprising an extracellular binding domain (e.g., an antibody variable domain), a transmembrane domain, and an intracellular signaling domain, which transmits a signal generated by binding of the binding domain to an antigen outside the cell to the inside of the cell. For example, the therapeutic protein can be a protein expressed on the surface of an immune cell that, upon binding to an antigen, activates the immune cell or inhibits immune cell activation. For example, the therapeutic protein can be an immune cell receptor (e.g., a chimeric antigen receptor (CAR) or a T cell receptor (TCR)). In these embodiments, when the transmembrane protein binds to a brain-selective extracellular antigen, such as MOG, CDH10, PTPRZ1, or NRCAM, via its extracellular binding domain, the intracellular domain is released from the transmembrane protein, thereby inducing expression of the immune cell receptor. In these embodiments, the immune cell receptor does not have an extracellular binding domain that binds to a cancer-specific antigen expressed by glioblastoma. Instead, the immune cell receptor can have an extracellular binding domain that binds to a disease-specific antigen on diseased cells that are not glioblastoma cells. Binding of immune cells to such antigens should activate the immune cells, thereby killing the diseased cells.
[0106] In some embodiments, a therapeutic protein delivered by activation of a binding-triggered transcriptional switch can prevent the therapy from being delivered to the brain. For example, in some embodiments, the therapeutic agent can be an inhibitory immune cell receptor (iICR) (also referred to as an "inhibitory immune receptor"), such as an inhibitory chimeric antigen receptor (iCAR). In these embodiments, binding of the transmembrane protein to a brain-selective extracellular antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM) releases an intracellular domain from the transmembrane protein, thereby inducing expression of the iICR. In these embodiments, the iICR can have an extracellular binding domain that binds, for example, to an antigen present on non-diseased cells. Binding of immune cells to such antigens could provide a method for inhibiting immune cell activation, thereby preventing activation of cell therapies in non-diseased regions of the brain. Such iICR proteins are described, for example, in WO 2017087723, Fedorov et al. (Sci.Transl.Med.2013 5:215ra17) and other references cited above.
[0107] In embodiments where the transmembrane protein is a binding-triggered transcriptional switch that activates expression of a CAR, when the binding-triggered transcriptional switch binds to a brain-selective extracellular antigen (MOG, CDH10, PTPRZ1, or NRCAM), the CAR itself can be activated by binding to one or more non-glioblastoma cancer-associated killing antigens in the brain (i.e., disease-specific antigens that may also be expressed in other normal cells outside the brain). For example, in these embodiments, the CAR can be activated by binding, via its extracellular binding region, to a cancer-specific antigen associated with one or more pediatric brain tumors (e.g., medulloblastoma, diffuse midline glioma (formerly DIPG), ependymoma, craniopharyngioma, embryonal tumor (formerly PNET), pineoblastoma, brain stem glioma, choroid plexus carcinoma or germ cell tumor), or one or more adult brain tumors, such as pituitary adenoma, acoustic neuroma (also known as vestibular schwannoma), meningioma, oligodendroglioma, hemangioblastoma, CNS lymphoma, non-GBM (or low-grade) astrocytoma, or tumors with unknown cellularity (i.e., glioma unspecified). Cancer-specific antigens associated with many such tumors are known or may become known.
[0108] In embodiments in which the transmembrane protein is a binding-triggered transcriptional switch that activates expression of a secreted protein, when the binding-triggered transcriptional switch binds to a brain-selective extracellular antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM), the secreted protein may be specific for the treatment of any of a variety of diseases and conditions, including, but not limited to, Alzheimer's disease, stroke, brain and spinal cord injury, brain cancer, HIV infection in the brain, ataxia-inducing disorder, amyotrophic lateral sclerosis (ALS), Huntington's disease, pediatric inborn errors of genetic disease affecting the brain, Parkinson's disease, multiple sclerosis, and brain cancer (including non-glioblastoma multiforme and other brain cancers listed above). Many treatments for such diseases and conditions are or may become known.
[0109] In some embodiments, the circuit can include at least two BTTSs (e.g., two, three, or four BTTSs) and an antigen-specific therapeutic agent, where the BTTSs can be connected in series (one BTTS activates another BTTS) or in parallel, with one of the BTTSs binding to a brain-selective antigen and at least one of the other BTTSs binding to another antigen, e.g., another brain-specific antigen. Using multiple BTTSs can result in more specific treatment and fewer side effects.
[0110] The circuitry can integrate the expression of a brain-selective extracellular antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM) (which may be referred to herein as a "priming antigen") on a brain cell (which may be diseased or normal) with at least a second antigen expressed on a second, diseased cell in the brain to produce a desired outcome with respect to the second cell. In some examples, the circuitry can integrate the expression of a brain-selective extracellular antigen present on a normal brain cell with at least a second antigen expressed on a second, diseased cell to produce a desired outcome with respect to the second cell. The integration of two antigens expressed by different cells of a heterogeneous cell population to produce a desired targeting event may be referred to herein as "transtargeting."
[0111] In some embodiments, a brain-selective extracellular antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM) can be expressed on a first brain cell (which can be normal), and a therapeutic protein produced by the cell can have a therapeutic effect on a second cell. In other embodiments, a brain-selective extracellular antigen can be expressed on a diseased brain cell, and a therapeutic protein produced by the cell can have a therapeutic effect on the same cell.
[0112] For comparison, in this context, sister targeting refers to targeting a single cell that expresses both a priming antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM) and a target antigen (e.g., a disease-specific marker) and integrating the two antigens to produce a desired result for the single cell. Thus, in sister targeting, the target cell expresses both the priming antigen and the target antigen, such that the two antigens are expressed in cis with respect to the cell. In transtargeting, the target cell expresses only the target antigen and not the priming antigen, such that the two antigens are expressed in trans with respect to the two cells. Thus, transtargeting can be used to target cells that do not express the priming antigen. In some examples, the disclosed circuits may use both transtargeting and sister targeting, i.e., sister targeting and transtargeting may be combined in a single circuit. In some examples, the disclosed circuits may use only transtargeting, e.g., excluding sister targeting.
[0113] In some embodiments, the therapeutic cell may express a binding-triggered transcriptional switch that responds to a priming antigen selected from a brain-selective extracellular antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM). The binding-triggered transcriptional switch may be expressed at the plasma membrane of the cell. Binding of the binding-triggered transcriptional switch to the priming antigen may induce expression of a protein in the binding-triggered transcriptional switch-expressing cell. In some embodiments, the induced protein may be a heterologous antigen-specific protein, such as a second binding-triggered transcriptional switch or a heterologous antigen-specific therapeutic agent, examples of which are described above and below. In the context of sis-targeting, binding of the binding-triggered transcriptional switch to the priming antigen induces expression of an antigen-specific protein specific for a target antigen that is further expressed by the priming cell (i.e., this cell is both the priming cell and the target cell). In the context of trans-targeting, binding of the binding-triggered transcriptional switch to a priming antigen expressed on a cell induces expression of an antigen-specific protein specific for a target antigen expressed on a different cell that does not express the priming antigen.
[0114] Thus, transtargeting allows targeting of cells with therapeutic proteins, such as antigen-specific therapeutics, only in the presence of brain cells that express brain-selective extracellular antigens. Correspondingly, transtargeting allows targeting of brain cells with antigen-specific proteins, such as antigen-specific therapeutics, in heterogeneous cell populations, such as heterogeneous cancers, where the target cells do not express brain-selective extracellular antigens. Thus, such target priming antigen (-) cells can be spatially associated with priming antigen-positive ("priming antigen (+)") cells, i.e., cells that express the priming antigen.
[0115] method As summarized above, some embodiments of the present disclosure provide methods of treating diseased cells in the brain. In some embodiments, the diseased cells can be targeted in trans. Such methods can include administering to a subject in need thereof therapeutic cells comprising a recombinant nucleic acid encoding a transmembrane protein having an extracellular binding domain that specifically binds to a brain-selective extracellular antigen (e.g., MOG, CDH10, PTPRZ1, or NRCAM), the cells not comprising a nucleic acid encoding an antigen-specific therapeutic agent that binds to a killing antigen expressed by glioblastoma. As noted above, transmembrane proteins can have many different structures, and in some embodiments, the transmembrane protein can be a binding-triggered transcriptional switch that drives expression of a therapeutic protein.
[0116] Treatment method As summarized above, the methods of the present disclosure can be used to treat diseases or disorders of the brain, such as, but not limited to, medulloblastoma, diffuse midline glioma (formerly known as DIPG), ependymoma, craniopharyngioma, embryonal tumor (formerly known as PNET), pineoblastoma, brain stem glioma, choroid plexus carcinoma or germ cell tumor, or one or more adult brain tumors, such as pituitary adenoma, acoustic neuroma (also known as vestibular schwannoma), meningioma, oligodendroglioma, vascular The present invention finds use in treating a subject for a disease or disorder of the brain, including blastoma, CNS lymphoma, non-GBM (or low-grade) astrocytoma, tumors with unknown cell types (i.e., gliomas of unspecified origin), Alzheimer's disease, stroke, brain and spinal cord injury, brain cancer, HIV infection in the brain, ataxia-inducing disorder, amyotrophic lateral sclerosis (ALS), Huntington's disease, childhood inborn errors of genes affecting the brain, Parkinson's disease, and multiple sclerosis. Such treatment may include achieving a desired effect with respect to at least one diseased cell type (or a subpopulation thereof) in the brain.
[0117] In some embodiments, the disease may be a cancer of non-brain or non-CNS tissue origin that has metastasized to the brain. Brain metastases can arise from any type of cancer. The most common types of cancer that spread to the brain are breast cancer, lung cancer, kidney cancer, melanoma, colon cancer, and thyroid cancer.
[0118] The subject methods can include introducing into a subject in need thereof a population of cells as described above. The introduced cells can be immune cells, including, for example, myeloid or lymphoid cells. In other cases, the introduced cells are not immune cells.
[0119] In some examples, the method can include contacting a cell with one or more nucleic acids, where such contacting is sufficient to introduce the nucleic acid(s) into the cell. Any convenient method of introducing a nucleic acid into a cell can find use herein, including, but not limited to, viral transfection, electroporation, lipofection, bombardment, chemical transformation, the use of a transducing carrier (e.g., a transducible carrier protein), and the like. The nucleic acid can be introduced into cells maintained or cultured in vitro or ex vivo. The nucleic acid can also be introduced into cells of a living subject in vivo, without the need to isolate, culture, or maintain the cells outside the subject, for example, by use of one or more vectors (e.g., viral vectors) that deliver the nucleic acid to the cell.
[0120] The introduced nucleic acid can be maintained in the cell or can exist transiently. Thus, in some examples, the introduced nucleic acid can be maintained in the cell, for example, integrated into the genome. Any convenient method of nucleic acid integration can be used in the subject method, including, but not limited to, virus-based integration, transposon-based integration, homologous recombination-based integration, etc. In some examples, the introduced nucleic acid can exist transiently, for example, extrachromosomally in the cell. The transiently existing nucleic acid can, for example, remain as part of any convenient transiently transfected vector.
[0121] The introduced nucleic acid encoding a circuit can be introduced so that it is operably linked to a regulatory sequence, such as a promoter, that drives expression of one or more components of the circuit. The source of such regulatory sequences can vary, including, for example, when the regulatory sequence is introduced along with the nucleic acid, e.g., as part of an expression construct, or when the regulatory sequence is present in the cell before introduction of the nucleic acid or when it is introduced after the nucleic acid. As described in more detail herein, useful regulatory sequences can include, for example, endogenous promoters and heterologous promoters. For example, in some instances, the nucleic acid can be introduced as part of an expression construct containing a heterologous promoter operably linked to the nucleic acid sequence. In some instances, the nucleic acid can be introduced as part of an expression construct that includes a copy of a promoter that is endogenous to the cell into which the nucleic acid is introduced. In some instances, the nucleic acid can be introduced without regulatory sequences, and upon integration into the genome of the cell, the nucleic acid can be operably linked to endogenous regulatory sequences already present in the cell. Depending on the confirmation and / or regulatory sequences utilized, expression of each component of the circuit from the nucleic acid can be configured to be constitutive, inducible, tissue-specific, cell-type-specific, or combinations thereof.
[0122] Any convenient method of delivering the circuit-encoding components can find use in the subject methods. In some examples, the subject circuits can be delivered by administering to a subject cells that express the circuit. In some examples, the subject circuits can be delivered by administering to a subject a nucleic acid that includes one or more nucleotide sequences that encode the circuit. Administering a nucleic acid that encodes the circuit to a subject can include administering to a subject cells that contain the nucleic acid, which may or may not be expressed. In some examples, administering a nucleic acid that encodes the circuit to a subject can include administering to a subject a vector designed to deliver the nucleic acid to a cell.
[0123] Thus, in the subject therapeutic methods, nucleic acids encoding the circuits or components thereof can be administered in vitro, ex vivo, or in vivo. In some instances, cells can be collected from a subject, transfected with a nucleic acid, and the transfected cells can be administered to the subject with or without further manipulation, including, but not limited to, in vitro propagation. In some instances, nucleic acids can be administered directly to the subject, for example, with or without a delivery vector.
[0124] The priming cell and the target cell of the circuit generally differ in expression of at least the priming antigen and the target antigen. In some instances, the priming cell and the target cell may differ in expression of at least one surface-expressed epitope, such as a surface-expressed protein, an antigen presented in the context of MHC, etc., including when the surface-expressed epitope is a molecule other than the priming antigen and / or the target antigen. In some instances, two different target cells may differ in expression of at least one surface-expressed epitope, such as a surface-expressed protein, an antigen presented in the context of MHC, etc.
[0125] Differential expression between two cells or two cell types can vary. For example, in some instances, a cell expresses a surface epitope that is not expressed by other cells. In some instances, a cell expresses a surface epitope to a higher degree than a surface epitope expressed by other cells. When cells differ in their level of expression, e.g., compared to the absence or presence of a surface epitope, the difference in level may vary but generally be substantially different, e.g., sufficiently different to allow practical targeting of one cell versus the other. The difference in expression between cells can range from less than one order of magnitude to ten or more orders of magnitude, including, but not limited to, one order of magnitude, two orders of magnitude, three orders of magnitude, four orders of magnitude, five orders of magnitude, six orders of magnitude, seven orders of magnitude, eight orders of magnitude, nine orders of magnitude, ten orders of magnitude, etc. In some instances, two cell types that differ in their expression levels of a particular epitope may be said to be "high" and "low" for that epitope, respectively, and high and low expression can be distinguished using conventional methods known to those skilled in the art.
[0126] In some examples, the methods of the present disclosure can be used to target, treat, or clear a subject's minimal residual disease (MRD) remaining after a previous treatment. Targeting, treating, and / or clearing MRD can be accomplished using the methods regardless of whether the MRD is refractory to a previous treatment or has been determined to be refractory. In some examples, the methods of the present disclosure can be used to target, treat, and / or clear MRD in a subject after determining that the MRD is refractory to a previous treatment or to one or more available treatment options other than those using the circuits described herein.
[0127] In some instances, the methods can be used prophylactically for monitoring. For example, if a subject does not have detectable disease but is at risk of developing disease, a treatment comprising one or more of the circuits described herein can be administered to a subject in need thereof. In some instances, a prophylactic approach can be used if a subject is at particularly high risk of developing disease. In some instances, a prophylactic approach can be used if a subject has previously been treated for disease and is at risk of recurrence. Essentially, any combination of priming and targeting antigens can be used for prophylactic treatment, including those described herein.
[0128] The treatment methods described herein can, in some instances, be performed on subjects who have previously undergone one or more conventional treatments. For example, in the case of oncology, the methods described herein can, in some instances, be performed after conventional cancer treatments, including, but not limited to, conventional chemotherapy, conventional radiation therapy, conventional immunotherapy, surgery, etc. In some instances, the methods described herein can be used when a subject has not responded to or is refractory to conventional treatments.
[0129] With respect to the disease as a whole, the desired effect of the described treatments may result in a reduction in the number of diseased cells, a reduction in the size of diseased cells, a decrease in one or more symptoms, and the like.
[0130] Immune cell activation as a result of some embodiments of the methods described herein can be measured in a variety of ways, including, but not limited to, measuring the expression level of one or more markers of immune cell activation. Useful markers of immune cell activation include, but are not limited to, CD25, CD38, CD40L (CD154), CD69, CD71, CD95, HLA-DR, CD137, and the like. For example, in some instances, upon antigen binding by an immune cell receptor, immune cells may become activated and express elevated levels of a marker of immune cell activation (e.g., CD69) (e.g., at a level higher than corresponding cells that have not bound antigen). The elevated expression levels of activated immune cells of the present disclosure may vary and may include increases such as a one-fold or greater increase in marker expression compared to a non-activated control, including, but not limited to, a one-fold increase, a two-fold increase, a three-fold increase, a four-fold increase, and the like.
[0131] In some examples, immune cells engineered to encode the disclosed circuits may have increased cytotoxic activity upon binding to a target antigen, e.g., compared to non-activated control cells. In some examples, activated immune cells encoding the subject circuits may exhibit 10% or greater cell killing of antigen-expressing target cells compared to non-activated control cells. In some examples, the level of increased cell killing of activated immune cells may vary and may be in a range including, but not limited to, 10% or greater, 20% or greater, 30% or greater, 40% or greater, 50% or greater, 60% or greater, 70% or greater, 80% or greater, 90% or greater, etc., compared to an appropriate control.
[0132] In some examples, treatment may include modulation, including induction, of cytokine expression and / or secretion by immune cells comprising a nucleic acid sequence encoding a circuit described herein. Non-limiting examples of cytokines whose expression / secretion may be modulated include, but are not limited to, interleukins and related substances (e.g., IL-1-like, IL-1α, IL-1β, IL-1RA, IL-18, IL-2, IL-4, IL-7, IL-9, IL-13, IL-15, IL-3, IL-5, GM-CSF, IL-6-like, IL-6, IL-11, G-CSF, IL-12, LIF, OSM, IL-10-like, IL-10, IL-20, IL-14, IL-16, IL-17, etc.), interferons (e.g., IFN-α, IFN-β, IFN-γ, etc.), TNF family members (e.g., CD154, LT-β, TNF-α, TNF-β, 4-1 BBL, APRIL, CD70, CD153, CD178, GITRL, LIGHT, OX40L, TALL-1, TRAIL, TWEAK, TRANCE, etc.), TGF-β family (e.g., TGF-β1, TGF-β2, TGF-β3, etc.), etc.
[0133] In some examples, activation of immune cells via the circuits of the present disclosure can induce increased cytokine expression and / or secretion over that of comparable cells in the absence or otherwise inactive of the circuit. The amount of increase can vary and can range from 10% or greater, including, but not limited to, increases of 10% or greater, 25% or greater, 50% or greater, 75% or greater, 100% or greater, 150% or greater, 200% or greater, 250% or greater, 300% or greater, 350% or greater, 400% or greater, etc.
[0134] Conventional and combined treatments As will be readily appreciated, the therapeutic methods described herein may, in some instances, be combined with one or more conventional therapies. For example, the methods described herein may, in some instances, be combined with conventional therapies, including, but not limited to, drug treatments, conventional chemotherapy, conventional radiation therapy, conventional immunotherapy, surgery, etc.
[0135] In some instances, the methods described herein can be used before or after conventional therapy. For example, the methods described herein can be used as adjuvant therapy, e.g., after a subject has seen improvement from conventional therapy, or can be used when a subject has not responded to conventional therapy. In some instances, the methods described herein can be used before additional therapy, e.g., before preparing a subject for additional therapy, e.g., conventional therapy, as described herein.
[0136] Antigen-specific therapeutic agents As summarized above, in some embodiments, the methods can involve a binding-triggered transcriptional switch (BTTS) responsive to a priming antigen that can induce expression of an antigen-specific therapeutic agent responsive to one or more target antigens. Useful antigen-specific therapeutic agents vary and can include surface-expressed and secreted antigen-specific therapeutic agents. For example, in some instances, an antigen-specific therapeutic agent used in the methods of the disclosure can be expressed on the surface of an immune cell, i.e., an immune cell genetically modified to encode a priming / targeting circuit described herein, in response to activation of the BTTS. In some instances, an antigen-specific therapeutic agent used in the methods of the disclosure can be secreted from an immune cell, i.e., an immune cell genetically modified to encode a priming / targeting circuit described herein, in response to activation of the BTTS.
[0137] Generally, unless otherwise noted, an antigen-specific therapeutic agent of a circuit described herein is not expressed in the absence of activation of the BTTS that induces its expression. Also, unless otherwise noted, an antigen-specific therapeutic agent of a circuit described herein is not active in the absence of the antigen to which it binds, i.e., without binding to the antigen for which it is specific. Binding of its respective antigen, or antigen in the case of a multispecific or bispecific agent, results in activation of the antigen-specific therapeutic agent. When expressed by or otherwise associated with immune cells and bound to the antigen(s), the antigen-specific therapeutic agent can activate the immune cells. The activated immune cells can mediate one or more beneficial effects described herein, including, but not limited to, killing cancer cells, cytokine release, etc., with respect to diseased cells in the subject's brain.
[0138] With respect to the antigen-specific binding domains described herein, the term "antigen" is used broadly to refer to essentially any specific binding partner to which an antigen-specific therapeutic binds. Thus, any convenient specific binding pair, i.e., a pair of a specific binding member and a specific binding partner, including, but not limited to, for example, an antigen-antibody pair, a ligand-receptor pair, a scaffold protein pair, etc., can find use in the antigen-specific therapeutics of the present methods. In some examples, a specific binding member can be an antibody, and its binding partner can be an antigen to which the antibody specifically binds. In some examples, a specific binding member can be a receptor, and its binding partner can be a ligand to which the receptor specifically binds. In some examples, a specific binding member can be a ligand, and its binding partner can be a receptor to which the ligand specifically binds.
[0139] In some cases, useful ligand-receptor specific binding pairs include those in which the specific binding member is a mutein of the ligand having at least one mutation compared to the wild-type ligand, including, but not limited to, one or more mutations, two or more mutations, three or more mutations, four or more mutations, five or more mutations, etc. In some instances, a useful mutein will have at least 90% sequence identity with the relevant wild-type amino acid sequence, including, but not limited to, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, etc., sequence identity with the relevant wild-type amino acid sequence. In some instances, a mutein used in the subject polypeptide may have a higher affinity for the receptor compared to the affinity between the receptor and the wild-type ligand.
[0140] Antigen-specific therapeutics useful in the methods of the present disclosure are varied and can include, but are not limited to, for example, chimeric antigen receptors (CARs), T cell receptors (TCRs), chimeric bispecific binding members, and the like.
[0141] Useful CARs include essentially any CAR useful in cancer treatment, including single-chain and multi-chain CARs that target one or more target antigens. CARs used in this method will generally contain, at a minimum, an antigen binding domain, a transmembrane domain, and an intracellular signaling domain. CARs used may further contain one or more costimulatory domains.
[0142] Non-limiting examples of CARs that can be used include those used in commercially available CAR T cell (CART) therapies that are directed to one or more suitable target antigens or that have been modified to target one or more suitable target antigens. Generally, CARs as used herein do not target glioblastoma antigens, including, but not limited to, EphA2, EphA3, IL13R (e.g., IL13RA1 or IL13RA2), EGFR, and ERBB2.
[0143] For example, useful CARs that can be modified to target a suitable target antigen, or useful domains thereof that can be used in CARs that target a suitable target antigen, include, in some examples, those described in U.S. Patent Nos. 9,914,909; 9,821,012; 9,815,901; 9,777,061; 9,662,405; 9,657,105; 9,629,877; 9,624, 276; 9,598,489; 9,587,020; 9,574,014; 9,573,988; 9,499,629; 9,446,105; 9,394,368; 9,328,156; 9,233,125; 9,175,308 and 8,822,647, the disclosures of which are incorporated herein by reference in their entireties. In some examples, useful CARs may include or exclude heterodimeric (also called dimerizable or switchable) CARs, and / or may include or exclude one or more of their domains. Useful heterodimeric CARs and / or useful domains thereof can include, in some examples, those described in U.S. Patent Nos. 9,587,020 and 9,821,012, as well as U.S. Patent Application Publication Nos. 20170081411A1, 20160311901A1, 20160311907A1, 20150266973A1, and PCT Publication Nos. WO 2014127261A1, WO 2015142661A1, WO 2015090229A1, and WO 2015017214A1, the disclosures of which are incorporated herein by reference in their entireties.
[0144] As summarized above, in some instances, the antigen binding domain of a CAR (such as, but not limited to, those described in any one of the documents referenced above) can be replaced or modified with an alternative or additional antigen binding domain directed to a different antigen (such as, but not limited to, one or more of the antigens described herein) for use in the methods described herein. In such cases, the intracellular portion of the antigen domain-substituted CAR (i.e., the intracellular signaling domain or one or more costimulatory domains) may or may not be modified.
[0145] Useful CARs and / or useful domains thereof, in some examples, can include those that have been or are currently being studied in one or more clinical trials, including, but not limited to, CARs directed to the following antigens (listed with exemplary corresponding clinical trial numbers, further information relating thereto can be found by visiting www.clinicaltrials(dot)gov): AFP, e.g., in NCT03349255; BCMA; CD10, e.g., in NCT03291444; CD117, e.g., in NCT03291444; CD123, e.g., in NCT03114670; CD133, e.g., in NCT02541370; CD138, e.g., in NCT01886976; CD171, e.g., in NCT02311621; CD19, e.g., in NCT02813252; CD20, e.g., in NCT03277729; CD22, e.g., in NCT03244306; CD30, e.g., in NCT02917083; CD33, e.g., in NCT03126864; CD34, e.g., in NCT03291444; CD38, e.g., in NCT03291444; CD5, e.g., in NCT03081910; CD56, e.g., in NCT03291444; CD7, e.g., in NCT02742727; CD70, e.g., in NCT02830724; CD80, e.g., in NCT03356808; CD86, e.g., in NCT03356808; CEA, e.g., in NCT02850536; CLD, e.g., in NCT03159819 18; CLL-1, e.g., in NCT03312205; cMet, e.g., in NCT01837602; EGFR, e.g., in NCT03182816; EGFRvIII, e.g., in NCT02664363; EpCAM, e.g., in NCT03013712; EphA2, e.g., in NCT02575261; GD-2, e.g., in NCT01822652; Glypican 3, e.g., in NCT02905188; GPC3, e.g., in NCT02723942; HER-2, e.g., in NCT02547961;Kappa immunoglobulin, e.g., in NCT00881920; LeY, e.g., in NCT02958384; LMP1, e.g., in NCT02980315; mesothelin, e.g., in NCT02930993; MG7, e.g., in NCT02862704; MUC1, e.g., in NCT02587689; NKG2D ligand, e.g., in NCT02203825; PD-L1, e.g., in NCT03330834; PSCA, e.g., in NCT02744287; PSMA, e.g., in NCT03356795; ROR1, e.g., in NCT02706392; ROR1R, e.g., in NCT02194374; TACI, e.g., in NCT03287804; and VEGFR2, e.g., in NCT01218867.
[0146] Useful TCRs include essentially any TCR useful in the treatment of cancer, including single-chain and multi-chain TCRs directed against a target antigen. The TCRs used in the present methods generally contain, at a minimum, an antigen-binding domain and a modified or unmodified TCR chain or portion thereof, such as, but not limited to, a modified or unmodified alpha chain, a modified or unmodified beta chain, etc. The TCRs used may further contain one or more costimulatory domains. In some examples, the TCRs used herein contain an alpha chain and a beta chain and recognize an antigen when presented by the major histocompatibility complex.
[0147] Essentially, any TCR can be induced by BTTS using the methods of the present disclosure, including TCRs specific for any of a variety of epitopes, including, for example, epitopes expressed on the surface of cancer cells, peptide-MHC complexes on the surface of cancer cells, etc. In some cases, the TCR is an engineered TCR.
[0148] Non-limiting examples of engineered TCRs useful in the methods described herein, including those that have immune cell activation function and can be modified to include an antigen-binding domain specific for a suitable target antigen, include, for example, antigen-specific TCRs, monoclonal TCRs (MTCRs), single-chain MTCRs, high-affinity CDR2-mutated TCRs, CD1-binding MTCRs, high-affinity NY-ESO TCRs, VYG TCRs, and the like. HLA-A24 telomerase TCRs are included, e.g., PCT Publication Nos. WO 2003 / 020763, WO 2004 / 033685, WO 2004 / 044004, WO 2005 / 114215, WO 2006 / 000830, WO 2008 / 038002, WO 2008 / 039818, WO 2004 / 074322, WO 2005 / 113595, WO 2006 / 125962; Strommes et al. Immunol Rev. 2014;257(1):145-64; Schmitt et al. Blood. 2013;122(3):348-56; Chapuls et al. Sci Transl Med.2013;5(174):174ra27;Thaxton et al.Hum Vaccin Immunother.2014;10(11):3313-21(PMID:25483644);Gschweng et al.Immunol Rev.2014;257(1):237-49(PMID:24329801);Hinrichs et al.Immunol Rev.2014;257(1):56-71(PMID:24329789);Zoete et al.Front Immunol.2013;4:268(PMID:24062738);Marr et al.Clin Exp Immunol.2012;167(2):216-25(PMID:22235997);Zhang et al.Adv Drug Deliv Rev.2012;64(8):756-62(PMID:22178904);Chhabra et al.Scientific World Journal.2011;11:121-9(PMID:21218269);Boulter et al.Clin Exp Immunol.2005;142(3):454-60(PMID:16297157);Sami et al.Protein Eng Des Sel.2007;20(8):397-403;Boulter et al.Protein Eng.2003;16(9):707-11;Ashfield et al. al.IDrugs.2006;9(8):554-9;Li et al.Nat Biotechnol.2005;23(3):349-54;Dunn et al.Protein Sci.2006;15(4):710-21;Liddy et al.Mol Biotechnol.2010;45(2);Liddy et al.Nat Med.2012;18(6):980-7;Oates,et al. Oncoimmunology. 2013;2(2):e22891; McCormack, et al. Cancer Immunol Immunother. 2013 Apr;62(4):773-85; Bossi et al. Cancer Immunol Immunother. 2014;63(5):437-48 and Oates, et al. Mol Immunol. 2015 Oct;67(2 Pt A):67-74; the disclosures of which are incorporated herein by reference in their entireties.
[0149] Useful TCRs include those with wild-type affinity for their respective antigens as well as those with enhanced affinity for their respective antigens. TCRs with enhanced affinity for their respective antigens are sometimes referred to as "affinity-enhanced" or "enhanced affinity" TCRs. The affinity of a TCR can be enhanced by any convenient means, including, but not limited to, binding site engineering (i.e., rational design), screening (e.g., TCR display), etc. Non-limiting examples of enhanced affinity TCRs and methods of preparing enhanced affinity TCRs include, but are not limited to, those described in, for example, PCT Publication Nos. 20150118208, 2013256159, 20160083449, 20140349855, 20100113300, 20140371085, 20060127377, 20080292549, 20160280756, 20140065111, 20130058908, 20110038842, 20110014169, 2003276403, etc., the disclosures of which are incorporated herein by reference in their entireties. Additional engineered TCRs modified to target appropriate target antigens that can be expressed in response to shedding of the intracellular domain of a BTTS of the present disclosure include, for example, those described in PCT Application No. US 2017 / 048040, the disclosure of which is incorporated herein by reference in its entirety.
[0150] Useful TCRs that can be engineered to target appropriate target antigens include, in some examples, those described in U.S. Patent Nos. 9,889,161; 9,889,160; 9,868,765; 9,862,755; 9,717,758; 9,676,867; 9,409,969; 9,115,372; 8,951,510; 8,906,383; 8,889,141; 8,722,048; 8,697,854; 8,603 Further examples include those described in US Pat. Nos. 8,810; 8,383,401; 8,361,794; 8,283,446; 8,143,376; 8,003,770; 7,998,926; 7,666,604; 7,456,263; 7,446,191; 7,446,179; 7,329,731; 7,265,209; and 6,770,749; the disclosures of which are incorporated herein by reference in their entireties.
[0151] As noted above, in some instances, the antigen binding domain of a TCR, such as but not limited to those described or referenced above, may be replaced or modified, such as with an alternative or additional antigen binding domain directed to a different antigen, including but not limited to one or more of the antigens described herein, for use in the methods described herein. In such cases, other portions of the antigen domain-substituted TCR (i.e., the transmembrane domain, any intracellular signaling domains, etc.) may or may not be altered.
[0152] As summarized above, in some instances, useful antigen-specific therapeutics include those expressed and secreted from producing cells upon induction by activated BTTS, including when the secreting cells are immune cells. For example, upon binding of BTTS expressed by immune cells, the BTTS can induce the expression and secretion of an encoded antigen-specific therapeutic specific to the target antigen. A secreted antigen-specific therapeutic can target target antigen-expressing cancer cells in trans, thereby mediating target cell killing. As described herein, in some instances, a secreted antigen-specific therapeutic can expand the targeting or killing area of a subject circuit compared to a similar circuit encoding a non-secreted (e.g., membrane-expressed) antigen-specific therapeutic.
[0153] Useful secreted antigen-specific therapeutic agents vary and, in some instances, may include, but are not limited to, chimeric bispecific binding members. In some instances, useful chimeric bispecific binding members may include, but are not limited to, those that target proteins expressed on the surface of immune cells, including, for example, components of the T cell receptor (TCR), such as one or more T cell co-receptors. Chimeric bispecific binding members that bind to components of the TCR may be referred to herein as TCR-targeted bispecific binding agents. Chimeric bispecific binding members useful in the present methods are generally specific for a target antigen, and in some instances may be specific for both the target antigen and a protein expressed on the surface of immune cells (e.g., a component of the TCR, such as the CD3 co-receptor).
[0154] In some examples, useful chimeric bispecific binding members can include bispecific T cell engagers (BiTEs). BiTEs are generally generated by fusing a specific binding member (e.g., scFv) that binds to an immune cell antigen to a specific binding member (e.g., scFv) that binds to a cancer antigen (e.g., a tumor-associated antigen, a tumor-specific antigen, etc.). For example, an exemplary BiTE includes an anti-CD3 scFv fused to an anti-tumor-associated antigen (e.g., EpCAM, CD19, etc.) scFv via a short peptide linker (e.g., a five-amino acid linker, e.g., GGGGS).
[0155] As summarized above, in some instances, the antigen binding domains of a chimeric bispecific binding member, such as but not limited to those described or referenced above, may be replaced or modified, such as with an alternative or additional antigen binding domain directed to a different antigen, including but not limited to one or more of the antigens described herein, for use in the methods described herein. In such instances, other portions of the antigen domain-substituted chimeric bispecific binding member (i.e., the linker domain, any immune cell targeting domain, etc.) may or may not be modified.
[0156] In some instances, the payload induced by binding of a BTTS to its respective priming antigen in the methods described herein may comprise a secreted bioorthogonal adapter molecule, which in some instances may target and bind to a target antigen and also bind, or be configured to bind, a heterologous polypeptide expressed by an immune cell.
[0157] For example, in some instances, the subject circuits used in the methods described herein can encode, in immune cells, a BTTS that responds to a priming antigen; a bioorthogonal adapter molecule specific to the target antigen; and a therapeutic agent, or portion thereof, that binds to the bioorthogonal adapter molecule. In such circuits, expression and secretion of the bioorthogonal adapter molecule is induced upon binding of the BTTS to the priming antigen. Then, in the presence of both (1) cancer cells expressing the target antigen and (2) a therapeutic agent that binds to the bioorthogonal adapter molecule, the therapeutic agent binds to the bioorthogonal adapter molecule, which then binds to the target antigen, thereby activating the therapeutic agent. The activated therapeutic agent can then mediate a therapeutic effect (e.g., a cytotoxic effect) against diseased cells expressing the target antigen, including when the target antigen is expressed in trans relative to the priming antigen. As described herein, in some instances, the secreted bioorthogonal adapter molecule can expand the targeting or killing area of the subject circuit compared to a similar circuit encoding a non-secreted (e.g., membrane-expressed) antigen-specific therapeutic agent.
[0158] Bioorthogonal adapter molecules can be used in a variety of contexts within the methods described herein. For example, in some instances, bioorthogonal adapter molecules can be used that comprise a diffusible antigen-binding portion of an antigen-specific therapeutic, such as a diffusible antigen-binding portion of a CAR, a diffusible antigen-binding portion of a TCR, etc. In some instances, such a diffusible antigen-binding portion of an antigen-specific therapeutic can be referred to as a "diffusible head," including, for example, a "diffusible CAR head," a "diffusible TCR head," etc.
[0159] In some instances, a therapeutic agent may be directly attached to a bioorthogonal adapter molecule. Strategies for directly attaching a therapeutic agent to a bioorthogonal adapter molecule can vary. For example, in some instances, a therapeutic agent may include a binding domain (e.g., an orthogonal antibody or fragment thereof) that binds to a binding moiety (e.g., an orthogonal epitope to which an antibody can be directed) covalently attached to the bioorthogonal adapter. As a non-limiting example, a therapeutic agent may include a binding domain to a non-naturally occurring epitope, such as an anti-fluorescein antibody or fragment thereof, and the bioorthogonal adapter molecule may include an epitope, such as fluorescein, covalently attached thereto. In some instances, the composition and therapeutic interaction of the bioorthogonal adapter molecule may be reversed compared to the foregoing, including, for example, when the therapeutic agent includes a covalently attached epitope and the bioorthogonal adapter molecule includes a binding domain to the epitope. Useful epitopes vary and include, but are not limited to, small molecule-based epitopes, peptide-based epitopes (e.g., peptide neoepitopes), oligonucleotide-based epitopes, and the like. Epitope binding domains are correspondingly varied and include, but are not limited to, small molecule binding domains, peptide binding domains, oligonucleotide binding domains, and the like.
[0160] Non-limiting examples of useful bioorthogonal adapter molecules and binding domains thereto include, but are not limited to, peptide neoepitopes used in switchable CAR (sCAR) T cells and antibody binding domains thereto, including, for example, those described in Rodgers et al. Proc Natl Acad Sci USA. (2016) 113(4):E459-68 and Cao et al., Angew Chem Int Ed Engl. 2016 Jun 20;55(26):7520-4 and PCT Publication No. WO 2016168773, the disclosures of which are incorporated herein by reference in their entireties.
[0161] In some instances, the therapeutic agent can be indirectly conjugated to the bioorthogonal adaptor molecule, such as when the conjugation is mediated by a diffusible dimerizing agent. Non-limiting examples of suitable dimerizing agents and associated dimerization domains include protein dimerizers.
[0162] A protein dimer generally comprises a pair of polypeptides that dimerize, for example, in the presence of or upon exposure to a dimerizing agent. The dimerizing polypeptide pair of a protein dimer may be homodimerized or heterodimerized (i.e., the dimerizing polypeptide pair may comprise two identical polypeptides that form homodimers or two different polypeptides that form heterodimers). Non-limiting examples of protein dimerizer pairs (with the associated dimerizer in parentheses) include, but are not limited to, FK506-binding protein (FKBP) and FKBP (rapamycin); FKBP and calcineurin catalytic subunit A (CnA) (rapamycin); FKBP and cyclophilin (rapamycin); FKBP and FKBP-rapamycin-related protein (FRB) (rapamycin); gyrase B (GyrB) and GyrB (coumermycin); dihydrofolate reductase (DHFR) and DHFR (methotrexate); DmrB and DmrB (AP 20187); PYL and ABI (abscisic acid); Cry2 and CIB1 (blue light); GAI and GID1 (gibberellin); and the like. Further description, including amino acid sequences, of such protein dimers is provided in U.S. Patent Application Publication No. 2015-0368342 A1, the disclosure of which is incorporated herein by reference in its entirety.
[0163] Useful protein dimers further include nuclear hormone receptor-derived protein dimers that dimerize in the presence of a dimerizer as described in PCT Publication No. WO 2017 / 120546 and U.S. Patent Application Publication No. 2017 / 0306303 A1, the disclosures of which are incorporated herein by reference in their entireties. Such nuclear hormone receptor-derived dimers generally include a first member of a dimerization pair that is a coregulator of the nuclear hormone receptor, and a second member of the dimerization pair includes the LBD of the nuclear hormone receptor.
[0164] When a bioorthogonal adapter molecule is used in the subject circuit, expression of a therapeutic agent that binds to the bioorthogonal adapter molecule and mediates target antigen recognition may or may not be controlled by the circuit. In other words, expression of the therapeutic agent may or may not be coupled to activation of the BTTS of the circuit (e.g., binding of the BTTS to a priming antigen or another antigen). In some examples, the circuit can be configured such that binding of the BTTS to its antigen induces expression of a therapeutic agent that binds to the bioorthogonal adapter molecule. In some examples, the BTTS that induces expression of the therapeutic agent is the same BTTS that induces expression of the bioorthogonal adapter molecule. In some examples, the therapeutic agent is induced by a different (i.e., distinct) BTTS than the BTTS that induces expression of the bioorthogonal adapter molecule.
[0165] In some instances, expression of a therapeutic agent that binds a bioorthogonal adapter molecule may not be induced by the BTTS. For example, in some instances, such a therapeutic agent is not induced by the BTTS but is instead expressed under the control of a separate regulatory element or sequence, including, but not limited to, where expression of the therapeutic agent is constitutive, inducible, conditional, tissue-specific, cell-type-specific, etc. In some instances, for example, independent expression of the therapeutic agent by the introduced immune cells (e.g., constitutive expression, inducible expression, etc.) allows the diffusible bioorthogonal adapter molecule to mediate activation of the therapeutic agent in immune cells distal to the priming site.
[0166] In some instances, expression of a bioorthogonal adapter molecule bound by a therapeutic agent may not be induced by a BTTS, including when the corresponding therapeutic agent is induced by a BTTS. For example, in some instances, such a bioorthogonal adapter molecule is not induced by a BTTS, but rather is expressed under the control of a separate regulatory element or sequence, including, but not limited to, when expression of the bioorthogonal adapter molecule is constitutive, inducible, conditional, tissue-specific, cell-type-specific, etc. In some instances, the bioorthogonal adapter molecule may be provided exogenously.
[0167] In some instances, an antigen-specific therapeutic agent can have an extracellular domain comprising a first member of a specific binding pair that binds to a second member of the specific binding pair, where the extracellular domain does not comprise any additional first or second members of a second specific binding pair. For example, in some instances, an antigen-specific therapeutic agent can have an extracellular domain comprising a first antigen-binding domain that binds to an antigen, where the extracellular domain does not comprise any additional antigen-binding domains and does not bind to any other antigens. A subject antigen-specific therapeutic agent can, in some instances, comprise only a single extracellular domain. Thus, the antigen-specific therapeutic agent used can be specific for a single antigen, or can be specific only for a single antigen. Such an antigen-specific therapeutic agent can be referred to as a "single-antigen antigen-specific therapeutic agent."
[0168] In some examples, an antigen-specific therapeutic agent can have an extracellular domain that comprises a first or second member of two or more specific binding pairs. For example, in some examples, an antigen-specific therapeutic agent can have an extracellular domain that comprises different first and second antigen-binding domains, such that the extracellular domains are specific for two different antigens. In some examples, an antigen-specific therapeutic agent can have two or more extracellular domains, each comprising a first or second member of two different specific binding pairs. For example, in some examples, an antigen-specific therapeutic agent can have a first extracellular domain that comprises a first antigen-binding domain and a second extracellular domain that comprises a second antigen-binding domain, wherein the two different antigen-binding domains are each specific for a different antigen. Thus, an antigen-specific therapeutic agent can be specific for two different antigens.
[0169] Antigen-specific therapeutics specific for two or more different antigens, including either two extracellular domains or one extracellular domain specific for two different antigens, can be configured such that binding of either antigen to the antigen-specific therapeutic is sufficient to activate the antigen-specific therapeutic. Such antigen-specific therapeutics can be activated by either of the two or more antigens and can find use in the described circuits as components of logic gates including OR functions. In some examples, antigen-specific therapeutics specific for two different antigens can be referred to as "two-headed antigen-specific therapeutics." Antigen-specific therapeutics specific for multiple antigens are not limited to only two antigens but may be specific for more than two antigens, including, for example, three or more, four or more, five or more, etc., and / or may be activated by more than two antigens.
[0170] An example of an antigen-specific therapeutic agent specific for two or more different antigens is a tandem CAR (also referred to as a "tan CAR" or "tanCAR"). A "tandem CAR" is a bispecific CAR containing two or more non-identical antigen recognition domains. Non-limiting examples of tandem CARs include those described in U.S. Patent Nos. 9,447,194; 10,155,038; 10,189,903; and 10,239,948; U.S. Patent Application Publication No. 20130280220; and PCT Application Publication No. WO 2013 / 123061, the disclosures of which are incorporated herein by reference in their entireties. Tandem CARs can be configured to bind a variety of different antigens, including, but not limited to, two or more of the antigens described herein and / or two or more of the antigens described in U.S. Patent Nos. 9,447,194; 10,155,038; 10,189,903; and 10,239,948; U.S. Patent Application Publication No. 20130280220; and PCT Application Publication No. WO 2013 / 123061.
[0171] Binding-triggered transcriptional switch (BTTS) The disclosed methods can include the use of a circuit that employs a BTTS to induce expression of an encoded antigen-specific therapeutic. As used herein, a "binding-triggered transcriptional switch" or BTTS generally refers to a synthetic, modular polypeptide or system of interacting polypeptides having an extracellular domain comprising a first member of a specific binding pair, a binding transducer, and an intracellular domain. When a second member of the specific binding pair binds to the BTTS, the binding signal is transmitted to the intracellular domain such that the intracellular domain is activated and performs some function within the cell that would not occur in the absence of the binding signal. Binding-triggered transcriptional switches are described, for example, in PCT Publication No. WO 2016 / 138034 and U.S. Pat. Nos. 9,670,281 and 9,834,608, the disclosures of which are incorporated herein by reference in their entireties.
[0172] The specific binding member of the extracellular domain generally determines the specificity of the BTTS. In some instances, a BTTS can be referred to according to its specificity, which is determined based on its specific binding member. For example, a specific binding member having a binding partner "X" can be referred to as an X-BTTS or an anti-X BTTS.
[0173] Any convenient specific binding pair, i.e., a pair of a specific binding member and a specific binding partner, including, but not limited to, an antigen-antibody pair, a ligand-receptor pair, a scaffold protein pair, etc., can find use in the BTTS of the present methods. In some examples, the specific binding member can be an antibody and its binding partner can be an antigen to which the antibody specifically binds. In some examples, the specific binding member can be a receptor and its binding partner can be a ligand to which the receptor specifically binds. In some examples, the specific binding member can be a scaffold protein and its binding partner can be a protein to which the scaffold protein specifically binds. Useful specific binding pairs include those specific for a priming antigen and / or one or more target / killing antigens, including those described herein.
[0174] In some instances, the specific binding member is an antibody. An antibody can be any antigen-binding antibody-based polypeptide, a variety of which are known in the art. In some instances, the specific binding member is or includes a monoclonal antibody, a single chain Fv (scFv), a Fab, etc. Other antibody-based recognition domains are suitable for use (cAb VHH (camelized antibody variable domain) and humanized versions, IgNAR VH (shark antibody variable domain) and humanized versions, sdAb VH (single domain antibody variable domain) and "camelized" antibody variable domains). In some instances, T cell receptor (TCR)-based recognition domains, such as single chain TCRs (scTv, single chain two-domain TCRs including VαVβ), are also suitable for use.
[0175] When the specific binding member of the BTTS is an antibody-based binding member, the BTTS can be activated in the presence of a binding partner for the antibody-based binding member, including, for example, an antigen specifically bound by the antibody-based binding member. In some examples, the antibody-based binding member can be defined based on the antigen bound by the antibody-based binding member, as is commonly done in the related art, including, for example, when the antibody-based binding member is described as an "anti-" antigen antibody, e.g., an anti-priming antigen antibody (e.g., an anti-IL13RA2 antibody, an anti-IL13RA1 antibody, an anti-Neuroligin antibody, an anti-NRXN1 antibody, an anti-PTPRZ1 antibody, an anti-NRCAM antibody, an anti-CDH10 antibody, an anti-PCDHGC5 antibody, an anti-CD70 antibody, an anti-CSPG5 antibody, an anti-BCAN antibody, an anti-GRM3 antibody, an anti-CRB1 antibody, an anti-GAP43 antibody, an anti-ATP1B2 antibody, an anti-PTPRZ1-MET fusion antibody, etc.). Accordingly, antibody-based binding members suitable for inclusion in the BTTS or antigen-specific therapeutic of the present methods can have a variety of antigen-binding specificities.
[0176] The arrangement of the BTTS components and switch components relative to one another used in the described methods will vary depending on many factors, including, but not limited to, the desired binding trigger, the activity of the intracellular domain, the overall function of the BTTS, and the broader arrangement of the molecular circuit that includes the BTTS. The first binding member can include, but is not limited to, an agent that binds to an antigen described herein. The intracellular domain can include, but is not limited to, an intracellular domain that activates or represses transcription at a regulatory sequence, e.g., inducing or repressing expression of a downstream component of a particular circuit.
[0177] The binding transducer of a BTTS also varies depending on the desired method of transduction of the binding signal. Generally, the binding transducer can include a polypeptide and / or domain of a polypeptide that transduces an extracellular signal into an intracellular signal, e.g., carried by receptors of various signaling pathways. Transduction of the binding signal can be achieved by various mechanisms, including, but not limited to, binding-induced proteolytic cleavage, binding-induced phosphorylation, binding-induced conformational changes, and the like. In some examples, the binding transducer can include a ligand-inducible proteolytic cleavage site that, upon binding, transduces the binding signal by cleavage of the BTTS, e.g., liberating the intracellular domain. For example, in some examples, the BTTS can include a cleavable binding transducer derived from Notch, e.g., a chimeric Notch receptor polypeptide as described herein.
[0178] In other instances, the binding signal can be transmitted in the absence of inducible proteolytic cleavage. Any one or more signaling components of a signaling pathway can find use in a BTTS, regardless of whether proteolytic cleavage is required for signal propagation. For example, in some instances, phosphorylation-based binding transducers, including, but not limited to, one or more signaling components of the Jak-Stat pathway, can find use in a non-proteolytic BTTS.
[0179] Briefly, but not by way of limitation, BTTSs, including chimeric Notch receptor polypeptides, have been described primarily as single polypeptide chains. However, BTTSs, including chimeric Notch receptor polypeptides, may be partitioned or split into two or more separate polypeptide chains, and joining of the two or more polypeptide chains to form a functional BTTS, e.g., a chimeric Notch receptor polypeptide, may be constitutively or conditionally controlled. For example, constitutive joining of the two portions of a split BTTS can be achieved by inserting a constitutive heterodimerization domain between the first and second portions of the split polypeptides such that the split portions are functionally joined upon heterodimerization.
[0180] Useful BTTSs that can be used in the subject methods include, but are not limited to, modular extracellular sensor architecture (MESA) polypeptides. MESA polypeptides include a) a ligand-binding domain; b) a transmembrane domain; c) a protease cleavage site; and d) a functional domain. The functional domain can be a transcriptional regulator (e.g., a transcriptional activator, a transcriptional repressor). In some cases, the MESA receptor includes two polypeptide chains. In some cases, the MESA receptor includes a single polypeptide chain. Non-limiting examples of MESA polypeptides are described, for example, in U.S. Patent Application Publication No. 2014 / 0234851, the disclosure of which is incorporated herein by reference in its entirety.
[0181] Useful BTTS that can be used in the subject method include, but are not limited to, polypeptides used in TANGO assays. The subject TANGO assays use TANGO polypeptides, which are heterodimers in which one polypeptide contains a tobacco vein disease virus (Tev) protease and the second polypeptide contains a Tev proteolytic cleavage site (PCS) fused to a transcription factor. When the two polypeptides are in close proximity to each other, and this proximity is mediated by a natural protein-protein interaction, Tev cleaves the PCS, releasing the transcription factor. Non-limiting examples of TANGO polypeptides are described, for example, in Barnea et al. (Proc Natl Acad Sci USA. 2008 Jan. 8;105(1):64-9), the disclosure of which is incorporated herein by reference in its entirety.
[0182] Useful BTTSs that can be used in the subject methods include, but are not limited to, von Willebrand factor (vWF) cleavage domain-based BTTSs, such as, but not limited to, unmodified or modified vWF A2 domains. The subject vWF cleavage domain-based BTTSs generally include: an extracellular domain containing a first member of a binding pair; a von Willebrand factor (vWF) cleavage domain containing a proteolytic cleavage site; a cleavable transmembrane domain; and an intracellular domain. Non-limiting examples of vWF cleavage domains and vWF cleavage domain-based BTTSs are described in Langridge & Struhl (Cell (2017) 171(6):1383-1396), the disclosure of which is incorporated herein by reference in its entirety.
[0183] Useful BTTS that can be used in the subject methods include, but are not limited to, chimeric Notch receptor polypeptides, such as, but not limited to, synNotch polypeptides, non-limiting examples of which are described in PCT Publication No. WO 2016 / 138034, U.S. Pat. No. 9,670,281, U.S. Pat. No. 9,834,608, Roybal et al. Cell (2016) 167(2):419-432, Roybal et al. Cell (2016) 164(4):770-9, and Morsut et al. Cell (2016) 164(4):780-91; the disclosures of which are incorporated herein by reference in their entireties.
[0184] A SynNotch polypeptide is generally a proteolytically cleavable chimeric polypeptide generally comprising: a) an extracellular domain comprising a specific binding member; b) a proteolytically cleavable Notch receptor polypeptide comprising one or more proteolytic cleavage sites; and c) an intracellular domain. Binding of the specific binding member by its binding partner generally induces cleavage of synNotch at the one or more proteolytic cleavage sites, thereby releasing the intracellular domain. In some examples, the method can include cases where release of the intracellular domain triggers (i.e., induces) production of an encoded payload, the encoding nucleic acid sequence of which is contained intracellularly. Depending on the particular situation, the produced payload is then generally expressed on the cell surface or secreted. A SynNotch polypeptide generally includes at least one sequence that is heterologous to a Notch receptor polypeptide (i.e., not derived from a Notch receptor), including, for example, cases where the extracellular domain is heterologous to the Notch receptor, the intracellular domain is heterologous, or both the extracellular and intracellular domains are heterologous.
[0185] Useful synNotch BTTSs will vary in the domains used and the structure of such domains. SynNotch polypeptides will generally comprise a Notch receptor polypeptide containing one or more ligand-inducible proteolytic cleavage sites. The length of a Notch receptor polypeptide can vary and can range from about 50 amino acids or less to about 1000 amino acids or more in length.
[0186] In some cases, the Notch receptor polypeptide present in the synNotch polypeptide is between 50 amino acids (aa) and 1000 aa, e.g., between 50 aa and 75 aa, between 75 aa and 100 aa, between 100 aa and 150 aa, between 150 aa and 200 aa, between 200 aa and 250 aa, between 250 aa and 300 aa, between 300 aa and 350 aa, between 350 aa and 400 aa. In some cases, the Notch receptor polypeptide present in the synNotch polypeptide has a length of 300 aa to 400 aa, 300 aa to 350 aa, 300 aa to 325 aa, 350 aa to 400 aa, 750 aa to 850 aa, 50 aa to 75 aa, 400 aa to 450 aa, 450 aa to 500 aa, 500 aa to 550 aa, 550 aa to 600 aa, 600 aa to 650 aa, 650 aa to 700 aa, 700 aa to 750 aa, 750 aa to 800 aa, 800 aa to 850 aa, 850 aa to 900 aa, 900 aa to 950 aa, or 950 aa to 1000 aa. In some cases, the Notch receptor polypeptide has a length of 310 aa to 320 aa, e.g., 310 aa, 311 aa, 312 aa, 313 aa, 314 aa, 315 aa, 316 aa, 317 aa, 318 aa, 319 aa, or 320 aa. In some cases, the Notch receptor polypeptide has a length of 315 aa. In some cases, the Notch receptor polypeptide has a length of 360 aa to 370 aa, e.g., 360 aa, 361 aa, 362 aa, 363 aa, 364 aa, 365 aa, 366 aa, 367 aa, 368 aa, 369 aa, or 370 aa. In some cases, the Notch receptor polypeptide has a length of 367 aa.
[0187] In some cases, the Notch receptor polypeptide comprises an amino acid sequence having at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, at least 98%, at least 99%, or 100% amino acid sequence identity to the amino acid sequence of a Notch receptor. In some examples, the Notch regulatory region of a Notch receptor polypeptide is a mammalian Notch regulatory region, including, but not limited to, a mouse Notch (e.g., mouse Notch1, mouse Notch2, mouse Notch3, or mouse Notch4) regulatory region, a rat Notch regulatory region (e.g., rat Notch1, rat Notch2, or rat Notch3), a human Notch regulatory region (e.g., human Notch1, human Notch2, human Notch3, or human Notch4), or a Notch regulatory region derived from a mammalian Notch regulatory region and having at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, at least 98%, at least 99%, or 100% amino acid sequence identity to the amino acid sequence of the mammalian Notch regulatory region of a mammalian Notch receptor amino acid sequence.
[0188] The subject Notch regulatory region may include or exclude various components thereof (e.g., domains, cleavage sites, etc.). Examples of such components of a Notch regulatory region, which may be present in whole or in part, or may be absent, include, as appropriate, one or more EGF-like repeat domains, one or more Lin12 / Notch repeat domains, one or more heterodimerization domains (e.g., HD-N or HD-C), a transmembrane domain, one or more proteolytic cleavage sites (e.g., a furin-like protease site (e.g., an S1 site), an ADAM family protease site (e.g., an S2 site), and / or a γ-secretase protease site (e.g., an S3 site)). A Notch receptor polypeptide may, in some instances, exclude all or a portion of one or more Notch extracellular domains, including, for example, a Notch ligand-binding domain, such as a Delta-binding domain. A Notch receptor polypeptide, in some instances, may comprise one or more non-functional versions of one or more Notch extracellular domains, including, for example, a Notch ligand binding domain such as a Delta binding domain. A Notch receptor polypeptide, in some instances, may exclude all or a portion of one or more Notch intracellular domains, including, for example, a Notch Rbp-associated molecule domain (i.e., RAM domain), a Notch ankyrin repeat domain, a Notch transactivation domain, a Notch PEST domain, etc. A Notch receptor polypeptide, in some instances, may comprise one or more non-functional versions of one or more Notch intracellular domains, including, for example, a non-functional Notch Rbp-associated molecule domain (i.e., RAM domain), a non-functional Notch ankyrin repeat domain, a non-functional Notch transactivation domain, a non-functional Notch PEST domain, etc.
[0189] Non-limiting examples of specific synNotch BTTSs, their domains, and suitable domain arrangements are described in PCT Publication Nos. WO 2016 / 138034, WO 2017 / 193059, WO 2018 / 039247, U.S. Pat. No. 9,670,281, and U.S. Pat. No. 9,834,608, the disclosures of which are incorporated herein by reference in their entireties.
[0190] Useful BTTS domains, such as the extracellular domain, the binding-transducer domain, and the intracellular domain, may be joined directly, i.e., without intervening amino acid residues, or may include a peptide linker joining the two domains. The peptide linker may be synthetic or naturally occurring, including, for example, a fragment of a naturally occurring polypeptide.
[0191] Peptide linkers can vary in length from about 3 amino acids (aa) or less to about 200 aa or more, including, but not limited to, for example, 3 aa to 10 aa, 5 aa to 15 aa, 10 aa to 25 aa, 25 aa to 50 aa, 50 aa to 75 aa, 75 aa to 100 aa, 100 aa to 125 aa, 125 aa to 150 aa, 150 aa to 175 aa, or 175 aa to 200 aa. Peptide linkers can have a length of 3 aa to 30 aa, for example, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, or 30 aa. The peptide linker may have a length of 5aa to 50aa, 5aa to 40aa, 5aa to 35aa, 5aa to 30aa, 5aa to 25aa, 5aa to 20aa, 5aa to 15aa, or 5aa to 10aa.
[0192] In some examples, a BTTS can have an extracellular domain comprising a first member of a specific binding pair that binds to a second member of the specific binding pair, where the extracellular domain does not comprise any additional first or second members of a second specific binding pair. For example, in some examples, a BTTS can have an extracellular domain comprising a first antigen-binding domain that binds to an antigen, where the extracellular domain does not comprise any additional antigen-binding domains and does not bind to any other antigens. The subject BTTS can, in some examples, comprise only a single extracellular domain. Thus, the BTTS used can be specific for a single antigen or can be specific only for a single antigen. Such a BTTS may be referred to as a "single-antigen BTTS." In some examples, a "dual-antigen BTTS" can be used.
[0193] In some examples, a BTTS may have an extracellular domain comprising a first or second member of two or more specific binding pairs. For example, in some examples, a BTTS may have an extracellular domain comprising different first and second antigen-binding domains, such that the extracellular domains are specific for two different antigens. In some examples, a BTTS may have two or more extracellular domains, each comprising a first or second member of two different specific binding pairs. For example, in some examples, a BTTS may have a first extracellular domain comprising a first antigen-binding domain and a second extracellular domain comprising a second antigen-binding domain, with the two different antigen-binding domains each being specific for a different antigen. Thus, a BTTS may be specific for two different antigens.
[0194] A BTTS specific for two or more different antigens, including either two extracellular domains or one extracellular domain specific for two different antigens, can be configured such that binding of either antigen to the BTTS is sufficient to activate the BTTS, e.g., trigger proteolytic cleavage of the BTTS's cleavage domain, e.g., release of the BTTS's intracellular domain. Such a BTTS can be triggered by either two or more antigens and can find use in the described circuits as components of logic gates that include OR functionality. In some examples, a BTTS specific for two different antigens can be referred to as a "two-headed BTTS" or tandem BTTS (or tanBTTS). For example, in some examples, a synNotch BTTS configured to bind two or more different antigens can be referred to as a tandem SynNotch or tanSynNotch. A BTTS specific for multiple antigens is not limited to only two antigens but can be specific for more than two antigens, including, for example, three or more, four or more, five or more, etc., and / or can be triggered by more than two antigens.
[0195] Preparation method The present disclosure further includes methods for preparing the nucleic acids, circuits, and cells used in the methods described herein. In preparing the subject nucleic acids and circuits and their components, any convenient method of nucleic acid manipulation, modification, and amplification (e.g., collectively referred to as "cloning") can be used. In preparing the subject cells containing nucleic acids encoding the described circuits, any convenient method, such as transfection, transduction, or culture, can be used.
[0196] Nucleotide sequences encoding all or part of the components of the disclosed circuits can be present in expression and / or cloning vectors. Where the subject circuit or its components are divided among two or more separate polypeptides, the nucleotide sequences encoding the two or more polypeptides can be cloned into the same vector or into separate vectors. Expression vectors can include selectable markers, origins of replication, and other features that provide for replication and / or maintenance of the vector. Suitable expression vectors include, for example, plasmids, viral vectors, and the like.
[0197] Numerous suitable vectors and promoters are known to those of skill in the art, and many are commercially available for making the subject recombinant constructs. The following vectors are provided by way of example: Bacterial: pBs, phagescript, PsiX174, pBluescript SK, pBs KS, pNH8a, pNH16a, pNH18a, pNH46a (Stratagene, La Jolla, Calif., USA); pTrc99A, pKK223-3, pKK233-3, pDR540, and pRIT5 (Pharmacia, Uppsala, Sweden). Eukaryotic: pWLneo, pSV2cat, pOG44, PXR1, pSG (Stratagene), pSVK3, pBPV, pMSG, and pSVL (Pharmacia).
[0198] Expression vectors generally have convenient restriction sites located near the promoter sequence to provide for the insertion of nucleic acid sequences encoding heterologous proteins. A selectable marker operable in the expression host may be present. Suitable expression vectors include, but are not limited to, viral vectors (e.g., vaccinia virus; poliovirus; adenovirus-based viral vectors (see, e.g., Li et al., Invest Opthalmol Vis Sci 35:2543 2549, 1994; Borras et al., Gene Ther 6:515 524, 1999; Li and Davidson, PNAS 92:7700 7704, 1995; Sakamoto et al., H Gene Ther 5:1088 1097, 1999; WO 94 / 12649; WO 93 / 03769; WO 93 / 19191; WO 94 / 28938; WO 95 / 11984; and WO 95 / 00655); adeno-associated virus-based viral vectors (see, e.g., Ali et al., al.,Hum Gene Ther 9:81 86,1998, Flannery et al.,PNAS 94:6916 6921,1997;Bennett et al.,Invest Opthalmol Vis Sci 38:2857 2863,1997;Jomary et al.,Gene Ther 4:683 690,1997,Rolling et al. al.,Hum Gene Ther 10:641 648,1999;Ali et al.,Hum Mol Genet 5:591 594,1996;Srivastava, WO 93 / 09239, Samulski et al.,J.Vir.(1989)63:3822-3828;Mendelson et al. al., Virol. (1988) 166:154-165; and Flotte et al., PNAS (1993) 90:10613-10617); viral vectors based on SV40; herpes simplex virus; human immunodeficiency virus (see, e.g., Miyoshi et al., PNAS 94:10319 23, 1997; Takahashi et al., J Virol 73:7812-7816, 1999); retroviral vectors (e.g., viral vectors derived from murine leukemia virus, spleen necrosis virus, and retroviruses such as Rous sarcoma virus, Harvey sarcoma virus, avian leukosis virus, human immunodeficiency virus, myeloproliferative sarcoma virus, and mammary tumor virus).
[0199] As described above, in some embodiments, a nucleic acid comprising a nucleotide sequence encoding a circuit or a component thereof of the present disclosure may be DNA or RNA, such as in vitro synthesized DNA, recombinant DNA, in vitro synthesized RNA, or recombinant RNA. Methods for synthesizing DNA / RNA in vitro are known in the art, and any known method can be used to synthesize DNA / RNA comprising a desired sequence. Methods for introducing DNA / RNA into host cells are known in the art. Introduction of DNA / RNA into host cells can be performed in vitro, ex vivo, or in vivo. For example, host cells (e.g., NK cells, cytotoxic T lymphocytes, etc.) can be transduced, transfected, or electroporated in vitro or ex vivo with DNA / RNA comprising a nucleotide sequence encoding all or part of a circuit of the present disclosure.
[0200] The disclosed methods can further include culturing cells genetically modified to encode a circuit of the present disclosure, including, but not limited to, culturing the cells prior to administration, culturing in vitro or ex vivo (e.g., in the presence or absence of one or more antigens), etc. Any convenient method of cell culture can be used, although such methods will vary based on various factors, including, but not limited to, the type of cells being cultured, the intended use of the cells (e.g., whether the cells are cultured for research or therapeutic purposes), etc. In some examples, the disclosed methods can further include general cell culture processes, including, but not limited to, seeding the cell culture, feeding the cell culture, passaging the cell culture, splitting the cell culture, analyzing the cell culture, treating the cell culture with a drug, harvesting the cell culture, etc.
[0201] The disclosed methods may, in some instances, further comprise receiving and / or collecting cells for use in the subject method. In some instances, cells are harvested from a subject. Harvesting cells from a subject may comprise obtaining a tissue sample from the subject and enriching, isolating, and / or expanding cells from the tissue sample. Cell isolation and / or enrichment can be performed using any convenient method, including, for example, isolation / enrichment by culture (e.g., adherent culture, suspension culture, etc.), cell sorting (e.g., FACS, microfluidics, etc.), etc. Cells can be collected from any convenient cell / tissue sample, including, but not limited to, blood (e.g., peripheral blood, umbilical cord blood, etc.), bone marrow, biopsy, skin sample, buccal swab, etc. In some instances, cells are received from a source, including, for example, a blood bank, a tissue bank, etc. The received cells may have been previously isolated or may have been received as part of a tissue sample; therefore, isolation / enrichment can be performed after receipt of the cells and prior to use. In certain instances, the received cells may be non-primary cells, including, for example, cells of a cultured cell line. Cells suitable for use in the methods described herein are further detailed herein.
[0202] nucleic acid As summarized above, the present disclosure provides nucleic acids encoding circuits for treating a subject with a brain disease or brain disorder.
[0203] Such nucleic acids can be configured such that a sequence encoding a target antigen-specific therapeutic agent is operably linked to a regulatory sequence that responds to activation of the BTTS. Nucleic acids encoding essentially any circuit using transtargeting that utilizes recognition of a priming antigen expressed on a first brain cell that also expresses the target antigen are provided, including, but not limited to, the circuits specifically described herein. Included are isolated nucleic acids encoding the subject circuits, as well as various constructs containing such nucleic acids, such as vectors, for example, expression cassettes, recombinant expression vectors, viral vectors, and the like.
[0204] Recombinant expression vectors of the present disclosure include those that contain one or more of the described nucleic acids. Nucleic acids comprising nucleotide sequences encoding all or part of the components of the disclosed circuits are, in some embodiments, DNA, including, for example, recombinant expression vectors. Nucleic acids comprising nucleotide sequences encoding all or part of the components of the disclosed circuits are, in some embodiments, RNA, such as in vitro synthesized RNA.
[0205] As summarized above, in some examples, the subject circuitry can utilize a coding nucleic acid (e.g., a nucleic acid encoding a BTTS or antigen-specific therapeutic) operably linked to a regulatory sequence, such as a transcriptional control element (e.g., a promoter; an enhancer; etc.). In some cases, the transcriptional control element is inducible. In some cases, the transcriptional control element is constitutive. In some cases, the promoter is functional in eukaryotic cells. In some cases, the promoter is a cell-type specific promoter. In some cases, the promoter is a tissue-specific promoter.
[0206] Depending on the host / vector system utilized, any of a number of suitable transcriptional and translational control elements, including constitutive and inducible promoters, transcriptional enhancer elements, transcriptional terminators, etc., can be used in the expression vector (see, e.g., Bitter et al. (1987) Methods in Enzymology, 153:516-544).
[0207] The promoter can be a constitutively active promoter (i.e., a promoter that is constitutively active / "ON" state), an inducible promoter (i.e., a promoter whose state, active / "ON" or inactive / "OFF", is controlled by an external stimulus, e.g., a particular temperature, the presence of a compound or protein), a spatially restricted promoter (i.e., a transcriptional control element, enhancer, etc.) (e.g., a tissue-specific promoter, a cell-type-specific promoter, etc.), and a temporally restricted promoter (i.e., the promoter is in the "ON" or "OFF" state during particular stages of embryonic development or during particular stages of a biological process, e.g., the mouse hair follicle cycle).
[0208] Suitable promoters and enhancer elements are known in the art. For expression in bacterial cells, suitable promoters include, but are not limited to, lacI, lacZ, T3, T7, gpt, lambda P, and trc. For expression in eukaryotic cells, suitable promoters include, but are not limited to, the light and / or heavy chain immunoglobulin gene promoter and enhancer elements; the cytomegalovirus immediate early promoter; the herpes simplex virus thymidine kinase promoter; the early and late SV40 promoters; promoters found in long terminal repeats from retroviruses; the mouse metallothionein-I promoter; and various tissue-specific promoters known in the art.
[0209] In some examples, the transcriptional control element of the nucleic acids described herein can include a cis-acting regulatory sequence. Any suitable cis-acting regulatory sequence can find use in the nucleic acids described herein. For example, in some examples, the cis-acting regulatory sequence can be or can include an upstream activating sequence or an upstream activation sequence (UAS). In some examples, the UAS of the nucleic acids described herein can be a Gal4-responsive UAS.
[0210] Suitable reversible promoters, including reversibly inducible promoters, are known in the art. Such reversible promoters can be isolated and derived from many organisms, e.g., eukaryotes and prokaryotes. The modification of a reversible promoter from a first organism for use in a second organism, e.g., a first prokaryote and a second eukaryote, a first eukaryote and a second prokaryote, etc., is well known in the art. Examples of such reversible promoters and systems based on such reversible promoters but also comprising additional regulatory proteins include, but are not limited to, alcohol-regulated promoters (e.g., alcohol dehydrogenase I (alcA) gene promoter, promoters responsive to alcohol transactivator protein (AlcR), etc.), tetracycline-regulated promoters (e.g., promoter systems including TetActivators, TetON, TetOFF, etc.), steroid-regulated promoters (e.g., rat glucocorticoid receptor promoter system, human estrogen receptor promoter system, retinoid promoter system, thyroid promoter system, ecdysone promoter system, mifepristone promoter system, etc.), metal-regulated promoters (e.g., metallothionein promoter system, etc.), pathogenesis-associated regulated promoters (e.g., salicylic acid-regulated promoters, ethylene-regulated promoters, benzothiadiazole-regulated promoters, etc.), temperature-regulated promoters (e.g., heat shock-inducible promoters (e.g., HSP-70, HSP-90, soybean heat shock promoter, etc.), light-regulated promoters, synthetic inducible promoters, etc.
[0211] Inducible promoters suitable for use include any inducible promoter described herein or known to those of skill in the art. Examples of inducible promoters include, but are not limited to, chemically / biochemically regulated promoters and physically regulated promoters, such as alcohol-regulated promoters, tetracycline-regulated promoters (e.g., anhydrotetracycline (aTc)-responsive promoters and other tetracycline-responsive promoter systems, including tetracycline repressor protein (tetR), tetracycline operator sequence (tetO), and tetracycline transactivator fusion protein (tTA))), steroid-regulated promoters (e.g., rat glucocorticoid receptor activator (TCR) fusion protein (tTA)), and the like. , human estrogen receptor, moss ecdysone receptor-based promoters, and promoters from the steroid / retinoid / thyroid receptor superfamily), metal-regulated promoters (e.g., promoters derived from metallothionein (a protein that binds and captures metal ions) genes from yeast, mouse, and human), pathogenicity-regulated promoters (e.g., induced by salicylic acid, ethylene, or benzothiadiazole (BTH)), temperature / heat-inducible promoters (e.g., heat shock promoters), and light-regulated promoters (e.g., light-responsive promoters from plant cells).
[0212] In some cases, the promoter is an immune cell promoter, such as a CD8 cell-specific promoter, a CD4 cell-specific promoter, a neutrophil-specific promoter, or an NK cell-specific promoter. For example, the CD4 gene promoter can be used; see, e.g., Salmon et al. (1993) Proc. Natl. Acad. Sci. USA 90:7739; and Marodon et al. (2003) Blood 101:3416. As another example, the CD8 gene promoter can be used. NK cell-specific expression can be achieved by using the Ncr1 (p46) promoter; see, e.g., Eckelhart et al. (2011) Blood 117:1565.
[0213] In some examples, the immune cell-specific promoter of the nucleic acids of the disclosure can be a promoter such as a B29 gene promoter, a CD14 gene promoter, a CD43 gene promoter, a CD45 gene promoter, a CD68 gene promoter, an IFN-β gene promoter, a WASP gene promoter, a T cell receptor β chain gene promoter, a V9γ (TRGV9) gene promoter, a V2δ (TRDV2) gene promoter, or the like.
[0214] In some cases, a nucleic acid comprising a nucleotide sequence encoding a circuit of the present disclosure, or one or more components thereof, is or is included in a recombinant expression vector. In some embodiments, the recombinant expression vector is a viral construct, such as a recombinant adeno-associated virus (AAV) construct, a recombinant adenovirus construct, a recombinant lentivirus construct, a recombinant retrovirus construct, etc. In some cases, a nucleic acid comprising a nucleotide sequence encoding a circuit of the present disclosure, or one or more components thereof, is a recombinant lentivirus vector. In some cases, a nucleic acid comprising a nucleotide sequence encoding a circuit of the present disclosure, or one or more components thereof, is a recombinant AAV vector.
[0215] Suitable expression vectors include, but are not limited to, viral vectors (e.g., vaccinia virus; poliovirus; adenovirus-based viral vectors (see, e.g., Li et al., Invest Opthalmol Vis Sci 35:2543 2549, 1994; Borras et al., Gene Ther 6:515 524, 1999; Li and Davidson, PNAS 92:7700 7704, 1995; Sakamoto et al., Hum Gene Ther 5:1088 1097, 1999; WO 94 / 12649; WO 93 / 03769; WO 93 / 19191; WO 94 / 28938; WO 95 / 11984; and WO 95 / 00655); adeno-associated virus-based viral vectors (e.g., Ali et al.,Hum Gene Ther 9:81 86,1998, Flannery et al.,PNAS 94:6916 6921,1997;Bennett et al.,Invest Opthalmol Vis Sci 38:2857 2863,1997;Jomary et al.,Gene Ther 4:683 690,1997,Rolling et al. al.,Hum Gene Ther 10:641 648,1999;Ali et al.,Hum Mol Genet 5:591 594,1996;Srivastava, WO 93 / 09239, Samulski et al.,J.Vir.(1989)63:3822-3828;Mendelson et al. al., Virol. (1988) 166:154-165; and Flotte et al., PNAS (1993) 90:10613-10617); viral vectors based on SV40; herpes simplex virus; human immunodeficiency virus (see, e.g., Miyoshi et al., PNAS 94:10319 23, 1997; Takahashi et al., J Virol 73:7812-7816, 1999); retroviral vectors (e.g., viral vectors derived from murine leukemia virus, spleen necrosis virus, and retroviruses such as Rous sarcoma virus, Harvey sarcoma virus, avian leukosis virus, lentivirus, human immunodeficiency virus, myeloproliferative sarcoma virus, and mammary tumor virus). In some cases, the vector is a lentiviral vector. Transposon-mediated vectors, such as the piggyback vector and the sleeping beauty vector, are also suitable.
[0216] In some examples, a nucleic acid of the present disclosure can have a single sequence encoding two or more polypeptides, where expression of the two or more polypeptides is enabled by the presence of sequence elements between the individual coding regions that facilitate the separate expression of each polypeptide. Such sequence elements can be referred to herein as bicistronic-enhancing sequences, and the presence of a bicistronic-enhancing sequence between two coding regions enables the expression of separate polypeptides from each coding region present in a single nucleic acid sequence. In some examples, a nucleic acid can include two coding regions encoding two polypeptides present in a single nucleic acid and a bicistronic-enhancing sequence between the coding regions. Any suitable method for the separate expression of multiple individual polypeptides from a single nucleic acid sequence can be used, as can any suitable method of bicistronic expression.
[0217] In some instances, a bicistronic-promoting sequence may enable expression of two polypeptides from a single nucleic acid sequence transiently joined by a cleavable linking polypeptide. In such cases, the bicistronic-promoting sequence may contain one or more encoded peptide cleavage sites. Suitable peptide cleavage sites include those of self-cleaving peptides as well as those cleaved by separate enzymes. In some instances, the peptide cleavage site of the bicistronic-promoting sequence may include a furin cleavage site (i.e., the bicistronic-promoting sequence may encode a furin cleavage site).
[0218] In some instances, the bicistronic enhancing sequence may encode a self-cleaving peptide sequence. Useful self-cleaving peptide sequences include, but are not limited to, peptide 2A sequences, including T2A sequences.
[0219] In some instances, a bicistronic-promoting sequence can include one or more spacer-encoding sequences. The spacer-encoding sequences generally encode amino acid spacers, also referred to in some instances as peptide tags. Useful spacer-encoding sequences include, for example, but are not limited to, V5 peptide-encoding sequences, including sequences encoding the V5 peptide tag.
[0220] Multiplex or bicistronic expression of multiple coding sequences from a single nucleic acid sequence can be achieved using methods including, but not limited to, furin cleavage, T2A, and V5 peptide tag sequences. For example, in some instances, an internal ribosome entry site (IRES)-based system may be used. Any suitable method of bicistronic expression can be used, including, but not limited to, those described in Yang et al. (2008) Gene Therapy. 15(21):1411-1423; Martin et al. (2006) BMC Biotechnology. 6:4; the disclosures of which are incorporated herein by reference in their entireties.
[0221] cell As summarized above, the present disclosure also provides immune cells. Immune cells of the present disclosure include those that contain one or more of the described nucleic acids, expression vectors, etc., encoding the described circuits. Immune cells of the present disclosure include, for example, mammalian immune cells, including those that have been genetically modified to produce components of the disclosed circuits or into which such nucleic acids have been separately introduced. In some examples, the subject immune cells have been transduced with one or more nucleic acids and / or expression vectors to express one or more components of the disclosed circuits.
[0222] Suitable mammalian immune cells include primary cells and immortalized cell lines. Suitable mammalian cell lines include human cell lines, non-human primate cell lines, rodent (e.g., mouse, rat) cell lines, etc. In some examples, the cell is not an immortalized cell line but is a cell (e.g., a primary cell) obtained from an individual. For example, in some cases, the cell is an immune cell, immune progenitor cell, or immune stem cell obtained from an individual. In one example, the cell is a lymphoid cell, e.g., a lymphocyte or a precursor cell thereof, obtained from an individual. In another example, the cell is a cytotoxic cell or a precursor cell thereof obtained from an individual. In another example, the cell is a stem cell or a precursor cell thereof obtained from an individual.
[0223] As used herein, the term "immune cells" generally includes white blood cells (leukocytes) derived from hematopoietic stem cells (HSCs) produced in the bone marrow. "Immune cells" include, for example, lymphoid cells, i.e., lymphocytes (T cells, B cells, natural killer (NK) cells), and bone marrow-derived cells (neutrophils, eosinophils, basophils, monocytes, macrophages, dendritic cells). "T cells" include all types of immune cells that express CD3, including helper T cells (CD4+ cells), cytotoxic T cells (CD8+ cells), regulatory T cells (Tregs), and gamma delta T cells. "Cytotoxic cells" include CD8+ T cells, natural killer (NK) cells, and neutrophils, which are capable of mediating cytotoxic responses. "B cells" include mature and immature cells of the B cell lineage, such as cells that express CD19, e.g., pre-B cells, immature B cells, mature B cells, memory B cells, and plasmablasts. Immune cells also include B cell precursors, such as pro-B cells, and B cell lineage derivatives, such as plasma cells.
[0224] Immune cells encoding the circuits of the present disclosure can be generated by any convenient method. Nucleic acids encoding one or more components of the circuits can be stably or transiently introduced into the immune cells, including cases where the nucleic acids are only present transiently, maintained extrachromosomally, or integrated into the host genome. Introduction of the nucleic acids and / or genetic modification of the immune cells can occur in vivo, in vitro, or ex vivo.
[0225] In some cases, introduction of the subject nucleic acid and / or genetic modification is performed ex vivo. For example, T lymphocytes, stem cells, or NK cells are obtained from an individual, and the cells obtained from the individual are modified to express components of the circuit of the present disclosure. The modified cells can thus be redirected to one or more selected antigens, as defined by one or more antigen-binding domains present on the introduced components of the circuit. In some cases, the modified cells are modulated ex vivo. In other cases, cells are introduced into (e.g., the individual from which the cells were obtained) and / or are already present in the individual, and the cells are modulated in vivo, for example, by administering a nucleic acid or vector to the individual in vivo.
[0226] circuit As summarized above, the present disclosure also provides circuits, also referred to in some instances as molecular circuits, encoded by nucleic acid sequences. Such circuits may, in some instances, be present and / or configured in expression vectors and / or expression cassettes. The nucleic acids of interest in the circuits of the present invention may, in some instances, be contained within vectors, including, for example, viral and non-viral vectors. Such circuits may, in some instances, be present within cells, such as immune cells, or may be introduced into cells by various means, including, for example, the use of viral vectors. Cells may, in some instances, be genetically modified to encode the circuits of interest, and such modifications may be effectively permanent (e.g., integrated) or transient, as desired.
[0227] The encoded components of the disclosed circuits generally include at least one encoded BTTS and at least one encoded therapeutic protein. Expression of a component of the disclosed circuits can depend on the state (i.e., active / inactive state) of another component of the circuit. For example, expression of a therapeutic agent can depend on activation of a BTTS, which is activated by binding to an antigen for which the BTTS is specific. In some instances, the dependency of one component of the circuit on another can be mediated by a regulatory sequence. For example, a sequence encoding a second component of the circuit can be operably linked to a regulatory sequence that responds to activation of a first component of the circuit, thus linking expression of the second component to activation of the first component.
[0228] The use of BTTS in the circuits of the present disclosure facilitates coupling of expression and / or activity to molecular binding events. Binding-triggered transcriptional switches and systems including their components are described in PCT Publication No. WO 2016 / 138034, U.S. Patent Application Publication No. 2016-0264665A1, U.S. Patent No. 9,670,281, and U.S. Patent No. 9,834,608, the disclosures of which are incorporated herein by reference in their entireties.
[0229] The circuits of the present disclosure can be configured in a variety of ways. In some examples, the independent activity and / or induced expression of two or more polypeptides or domains of a single polypeptide can generate a logic gate circuit. Such logic gate circuits can include, but are not limited to, "AND gates," "OR gates," "NOT gates," and combinations thereof, including higher order gates, including higher order AND gates, higher order OR gates, higher order NOT gates, and higher order combinatorial gates (i.e., gates using some combination of AND, OR, and / or NOT gates). In some examples, useful circuits can further include IF / THEN gates.
[0230] An "AND" gate includes cases where two or more inputs are required for the propagation of a signal. For example, in some instances, an AND gate allows signaling through a first input of a first polypeptide or first polypeptide domain and a second input that is dependent on the output of the first input. An AND gate requires two inputs, e.g., two antigens, for signaling through the circuit.
[0231] An "OR" gate includes cases where either of two or more inputs can allow propagation of a signal. For example, in some instances, an OR gate allows signal transduction through binding of either of two different antigens. In an OR gate, any one input, e.g., either of two antigens, can induce a signaling output of the circuit. In one embodiment, an OR gate can be achieved by the use of two separate molecules or constructs. In another embodiment, an OR gate can be achieved by using a single construct that recognizes two antigens, e.g., a BTTS or antigen-specific therapeutic (e.g., a CAR or TCR) with two distinct antigen-binding domains, each binding to a different antigen, such that each binding event can independently propagate a signal (e.g., induce expression of downstream components of the circuit, activate immune cells, etc.).
[0232] A "NOT" gate includes cases where an input can prevent the propagation of a signal. For example, in some instances, a NOT gate inhibits signal transduction through a circuit of the present disclosure. In one embodiment, a NOT gate can prevent expression of a component of the circuit or activation of a particular component of the circuit, such as a CAR or TCR.
[0233] An "IF / THEN" gate includes a circuit where the output of the gate depends on a first input. For example, in some instances, if the first input is present, THEN signaling can proceed through a second input, and if the first input is absent, signaling cannot proceed. A non-limiting example of a circuit including an IF / THEN gate is a circuit having at least two receptors, where the first receptor induces expression of a second receptor in response to an input and has some output in response to the second input. Thus, if the first input of the first receptor of IF is present, the second receptor of THEN is expressed, and signaling can proceed by the second receptor through the second input to generate an output. An IF / THEN gate may or may not include an OR component (e.g., a receptor with OR function).
[0234] Non-limiting examples of IF / THEN gates, including examples with OR functionality, are shown in Figure 4. The circuit shown in the first (top) cell of Figure 4 includes a BTTS that responds to antigen "A" and an antigen-specific therapeutic that binds to antigen "C." Note that while the antigen-specific therapeutic is shown as a CAR, the disclosure is not so limited and can be easily substituted with other antigen-specific therapeutics. In the first (top) circuit, the presence of antigen A in the IF induces cell killing in the THEN based on the presence of antigen C.
[0235] In various embodiments, OR function can be used, including when one or more components of the subject circuitry include OR function. As shown in the second, third, and fourth cells shown in Figure 4, OR function can be provided by a BTTS, an antigen-specific therapeutic agent, or both, that has specificity for and is induced or activated by two or more antigens.
[0236] For example, the second cell (from the top) shown in Figure 4 uses a circuit that includes a BTTS that responds to antigen "A" and an antigen-specific therapeutic that binds to and is activated by antigen "C" or antigen "D." In such a circuit, the presence of antigen A in IF induces cell killing in THEN based on the presence of antigen C or (OR) antigen D. Note that killing of cells expressing antigen C and antigen D, as well as killing of cells expressing antigen C alone or antigen D alone, can also be induced.
[0237] The third cell (from the top) shown in Figure 4 uses a circuit containing a BTTS that responds to antigen "A antigen" or "B" and an antigen-specific therapeutic that binds to and is activated by antigen "C." In such a circuit, the presence of either antigen A or (OR) antigen B in the IF induces cell killing in the THEN, based on the presence of antigen C. Note that the immune cells encoding the circuit of interest can be primed for killing by cells expressing only antigen A, only antigen B, or both antigens A and B.
[0238] The fourth (bottom) cell shown in Figure 4 employs a circuit containing a BTTS that responds to antigen "A" or "B" and an antigen-specific therapeutic that binds to and is activated by antigen "C" or antigen "D." In such a circuit, the presence of antigen A or (OR) antigen B in the IF induces cell killing in the THEN, based on the presence of antigen C or antigen D. Note that immune cells encoding the subject circuit can be primed for killing by cells expressing antigen A alone, antigen B alone, or both antigens A and B. Furthermore, note that killing of cells expressing antigen C and antigen D, as well as killing of cells expressing antigen C alone or antigen D alone, can also be induced.
[0239] In some instances, the use of OR functionality can have certain advantages. For example, without being bound by theory, the above circuit with OR gate functionality (i.e., the second, third, and fourth cells in FIG. 4 ) and its variations provide escape resistance and improved efficacy against heterogeneous cancers because, in order to escape from a cancer (or tumor), it is necessary to include or generate / produce cells that do not express either of the two priming and / or killing antigens.
[0240] In some examples, multiple antigen-binding domains present on a BTTS or antigen-specific therapeutic can provide OR gate capabilities to the molecular circuits described herein. For example, in some examples, a BTTS with two different antigen-binding domains can be responsive to a first antigen (e.g., a first priming antigen) or a second antigen (e.g., a second priming antigen) (of an OR). For example, in some examples, an antigen-specific therapeutic (e.g., a CAR, TCR, etc.) with two different antigen-binding domains can be responsive to a first antigen (e.g., a first target antigen) or a second antigen (e.g., a second target antigen) (of an OR).
[0241] In some instances, such OR gates can be combined with other gates, including AND gates. For example, a nucleic acid encoding an antigen-specific therapeutic agent of an OR gate with two different antigen-binding domains can be operably linked to a promoter responsive to a BTTS that responds to a priming antigen. Thus, upon binding to the priming antigen, the BTTS drives the expression of antigen-specific therapeutic agents that respond to the two different antigens, resulting in an AND-OR gate.
[0242] In some examples, OR gates can find use in the circuits of the present disclosure to generate OR gates for two or more target antigens (or two or more killing antigens). For example, in some examples, the circuit can be configured such that cells genetically engineered to have the circuit include nucleic acid sequences encoding antigen-specific therapeutics that bind to a first target antigen / killing antigen or a second target antigen / killing antigen expressed by a targeted cancer cell (or expressed by two different targeted cancer cells), thereby producing cells that are activated, e.g., activated for cell killing, by either the first target antigen / killing antigen or the second target antigen / killing antigen. In some examples, the circuits of the present disclosure can include nucleic acid sequences encoding a first antigen-specific therapeutic and a second antigen-specific therapeutic, each of which binds to a different target antigen / killing antigen.
[0243] In some instances, OR gates can be used to enable simultaneous targeting of cells in both trans and cis. For example, in some instances, the second killing antigen targeted by the OR gate can be expressed by the priming cell. In some instances, OR gates for targeting can be used to target two antigens that are not mutually exclusively expressed in brain cells.
[0244] kit The present disclosure provides kits for performing the methods described herein and / or for constructing one or more circuits, components thereof, nucleic acids encoding the circuits or components thereof, etc. In some cases, the subject kits include a vector, e.g., an expression vector or a delivery vector, that includes a nucleotide sequence encoding a circuit of the present disclosure or one or more portions thereof. The delivery vector may be provided within a delivery device or may be provided separately, e.g., in a kit that includes the delivery vector and delivery device as separate components of the kit.
[0245] In some cases, the subject kits include cells, e.g., host cells or host cell lines, that have been or will be genetically modified with a nucleic acid comprising a nucleotide sequence encoding a circuit of the present disclosure or a portion thereof. In some cases, the subject kits include cells, e.g., host cells, that have been or will be genetically modified with a recombinant expression vector comprising a nucleotide sequence encoding a circuit of the present disclosure. The kit components may be in the same container or in separate containers.
[0246] Any of the above kits can further include one or more additional reagents, such as a dilution buffer; a reconstitution solution; a wash buffer; a control reagent; a control expression vector; a nucleic acid encoding a negative control (e.g., a circuit lacking one or more critical elements); a nucleic acid encoding a positive control polypeptide; etc.
[0247] In addition to the above-mentioned components, the subject kits can further include instructions for using the components of the kit to practice the subject methods. The instructions for practicing the subject methods are generally recorded on a suitable recording medium. For example, the instructions may be printed on a substrate such as paper or plastic. As such, the instructions may be present as a package insert, on a label on the kit's container or a component thereof (i.e., associated with the packaging or subpackaging). In other embodiments, the instructions are present as an electronic storage data file present on a suitable computer-readable storage medium, such as a CD-ROM, diskette, flash drive, etc. In still other embodiments, the actual instructions are not present in the kit, but means for obtaining the instructions from a remote source, e.g., via the Internet, are provided. An example of this embodiment is a kit that includes a web address where the instructions can be viewed and / or from which the instructions can be downloaded. As with the instructions, this means for obtaining the instructions is recorded on a suitable substrate.
[0248] Embodiment In any of the above or below embodiments, alternative brain-selective extracellular antigens can be used in place of MOG, CDH10, PTPRZ1 or NRCAM, including brevican core protein (BCAN) or chondroitin sulfate proteoglycan 5 (CSPG5).
[0249] Embodiment 1. A cell comprising a recombinant nucleic acid encoding a transmembrane protein having an extracellular binding domain that specifically binds to a brain-selective extracellular antigen, wherein the cell does not comprise a nucleic acid encoding an antigen-specific therapeutic agent that binds to a killing antigen expressed by glioblastoma.
[0250] Embodiment 2. The cell of embodiment 1, wherein the brain-selective extracellular antigen is MOG, CDH10, PTPRZ1, or NRCAM.
[0251] Embodiment 3. The cell of embodiment 1 or 2, wherein the extracellular binding domain is a variable domain of an antibody that specifically binds to the brain-selective extracellular antigen.
[0252] Embodiment 4. The cell of any of embodiments 1 to 3, wherein the transmembrane protein is a binding-triggered transcriptional switch, and the cell further comprises a nucleic acid comprising (i) a coding sequence encoding a therapeutic protein and (ii) a regulatory sequence, wherein the regulatory sequence is operably linked to the coding sequence and is responsive to activation of the binding-triggered transcriptional switch.
[0253] Embodiment 5. The system of any of embodiments 1 to 4, wherein the binding-triggered transcriptional switch is one or more polypeptides that, upon binding to the brain-selective extracellular antigen, undergo proteolytic cleavage to release a gene expression regulator that activates transcription of a therapeutic protein.
[0254] Embodiment 6. The cell of embodiment 5, wherein the binding-triggered transcriptional switch is a SynNotch receptor, an A2 receptor, MESA, or another receptor that undergoes binding-induced proteolytic cleavage.
[0255] Embodiment 7. The binding-triggered transcriptional switch
[0256] (i) an extracellular domain that binds to the brain-selective extracellular antigen;
[0257] (ii) a proteolytically cleavable sequence containing one or more proteolytic cleavage sites; and
[0258] (iii) an intracellular domain; Including,
[0259] 7. The cell of embodiment 6, wherein binding of the extracellular domain of (i) to the brain-selective extracellular antigen induces cleavage of the proteolytically cleavable sequence at the one or more proteolytic cleavage sites to release the intracellular domain, and the released intracellular domain induces expression of the therapeutic protein of (i) via the regulatory sequence of (ii).
[0260] Embodiment 8. The cell of any of embodiments 4 to 7, wherein the therapeutic protein of (i) is a protein that, upon expression, is secreted by the cell or on the surface of the cell.
[0261] Embodiment 9. The cell of any of embodiments 4 to 8, wherein the therapeutic protein is a protein that, when expressed on the surface of an immune cell, activates the immune cell or suppresses activation of the immune cell.
[0262] Embodiment 10. The cell of any one of embodiments 4 to 9, wherein the therapeutic protein is an antigen-specific therapeutic.
[0263] Embodiment 11. The cell of embodiment 10, wherein the antigen-specific therapy is a chimeric antigen receptor (CAR) or a T cell receptor (TCR), and binding of the transmembrane protein to the brain-selective extracellular antigen induces expression of the CAR or TCR.
[0264] Embodiment 12. The cell of embodiment 10, wherein the antigen-specific therapeutic agent is an inhibitory chimeric antigen receptor (iCAR), and binding of the transmembrane protein to the extracellular antigen induces expression of the iCAR.
[0265] Embodiment 13. The cell of embodiment 10, wherein the antigen-specific therapeutic agent is another binding-triggered transcriptional switch.
[0266] Embodiment 14. A cell according to any one of embodiments 4 to 7, wherein the therapeutic protein of (i) is, upon expression, an intracellular protein.
[0267] Embodiment 15. The cell of any one of embodiments 1 to 8 or 10, wherein the antigen-specific therapy is an antibody.
[0268] Embodiment 16 The cell of any one of embodiments 1 to 10, wherein the therapeutic protein is an inhibitory immunoreceptor.
[0269] Embodiment 17. The cell of any one of embodiments 1 to 10, wherein the therapeutic protein is a secreted peptide or enzyme.
[0270] Embodiment 18. The cell of any one of embodiments 1 to 10, wherein the transmembrane protein is an inhibitory chimeric antigen receptor (iCAR), and binding of the brain-selective extracellular antigen inhibits activation of an immune cell expressing the iCAR.
[0271] Embodiment 19. A cell according to any one of embodiments 1 to 18, which is an immune cell.
[0272] Embodiment 20. The cell of any one of embodiments 1 to 19, which is a myeloid cell or a lymphoid cell.
[0273] Embodiment 21. The cell of embodiment 20, wherein the lymphocyte cell is a T lymphocyte, a B lymphocyte, or a natural killer cell.
[0274] Embodiment 22. A cell according to any one of embodiments 1 to 18, which is not an immune cell.
[0275] Embodiment 23. A method of treating a subject for a disease, comprising:
[0276] 23. A method comprising administering to said subject a cell of any of embodiments 1 to 22.
[0277] Embodiment 24. The method of embodiment 23, wherein the disease is a disease of the brain and / or central nervous tissue.
[0278] Embodiment 25. The method of embodiment 24, wherein the subject has medulloblastoma, diffuse midline glioma, ependymoma, craniopharyngioma, embryonal tumor, pineoblastoma, brain stem glioma, choroid plexus carcinoma, germ cell tumor, pituitary adenoma, acoustic neuroma, meningioma, oligodendroglioma, hemangioblastoma, CNS lymphoma, or non-GBM astrocytoma.
[0279] Embodiment 26. The method of embodiment 23, wherein the subject has Alzheimer's disease, stroke, brain and spinal cord injury, brain cancer, HIV infection in the brain, ataxia-inducing disorder, amyotrophic lateral sclerosis (ALS), Huntington's disease, a childhood inborn error of genes affecting the brain, Parkinson's disease, or multiple sclerosis.
[0280] Embodiment 27. The method of embodiment 23, wherein the disease is a cancer originating from a non-brain or non-CNS tissue that has metastasized to the brain.
[0281] Embodiment 28 The embodiment of any of embodiments 1 to 27, wherein the brain-selective extracellular antigen is MOG.
[0282] Embodiment 29. Any of embodiments 1 to 28, wherein the brain-selective extracellular antigen is CDH10.
[0283] Embodiment 30. Any of embodiments 1 to 29, wherein the brain-selective extracellular antigen is PTPRZ1.
[0284] Embodiment 31 The embodiment of any of embodiments 1 to 30, wherein the brain-selective extracellular antigen is NRCAM.
[0285] Embodiment 32 The embodiment of any of embodiments 1 to 31, wherein the brain-selective extracellular antigen is the antigen brevican core protein (BCAN).
[0286] Embodiment 33. Any of embodiments 1 to 32, wherein the brain-selective extracellular antigen is chondroitin sulfate proteoglycan 5 (CSPG5). [Example]
[0287] The following examples are set forth to provide those of ordinary skill in the art with a complete disclosure and description of how to make and use the present invention, and are not intended to limit the scope of what the inventors regard as their invention, nor are they intended to represent that the following experiments are all or the only experiments performed. Efforts have been made to ensure accuracy with respect to numbers used (e.g., amounts, temperatures, etc.), but some experimental error and deviation should be accounted for. Unless otherwise indicated, parts are parts by weight, molecular weight is weight average molecular weight, temperature is in degrees Celsius, and pressure is at or near atmospheric. Standard abbreviations can be used, such as bp, base pairs; kb, kilobases; pl, picoliters; s or sec, seconds; min, minutes; h or hr, hours; aa, amino acids; kb, kilobases; bp, base pairs; nt, nucleotides; im, intramuscular; ip, intraperitoneal; sc, subcutaneous; etc.
[0288] Example 1: Therapy using brain-specific circuits As described above, the cells express a transmembrane protein that, in some embodiments, can be a binding-triggered transcriptional switch (BTTS) that activates expression of a therapeutic protein. In some of these embodiments, the therapeutic protein can be an antigen-specific immune cell receptor (e.g., a CAR). These latter embodiments are described in more detail below. However, the transmembrane protein need not be a BTTS, and the therapeutic protein need not be an immune cell receptor. Thus, the following description is not intended to limit the present disclosure in any way.
[0289] In this example, a brain-selective antigen (MOG, CDH10, PTPRZ1, or NRCAM) was used to target a disease-specific antigen (which may be a "killing antigen," depending on how the circuit is used) to the brain. In this example, a brain-specific priming antigen selected from MOG, CDH10, PTPRZ1, or NRCAM is used to prime the expression of a second therapeutic molecule that targets diseased cells based on a second antigen (or combination of antigens) expressed on the diseased cells. This approach is effective even if the second antigen(s) is not completely disease-specific and is expressed in non-brain tissue. Without being bound by theory, this approach is believed to utilize two or more incomplete antigens (in this case, a brain-specific antigen and a disease-specific antigen) to develop combinatorial T cells that are both highly selective and insensitive to antigen expression heterogeneity.
[0290] In this example, a circuit was designed to prime therapeutic cells against a brain-specific antigen, thereby inducing the expression of a therapeutic protein (e.g., a CAR, BiTE, etc.), which is then delivered to nearby cells expressing the target antigen (see Figure 1A). In this example, the circuit primes using a brain-specific antigen and kills cells in a "killing zone" around the primed antigen cells by targeting the antigen on diseased cells (see Figure 1B). The size of the killing zone can be adjusted based on various factors, including, but not limited to, the stability of the killing receptor (e.g., a CAR) or the use of an extracellularly diffusible agent as the killing payload (e.g., a bispecific adapter) (see Figures 1C and 1D).
[0291] As shown in Figures 1A-1D, priming of therapeutic cells, such as cells engineered with the circuitry shown in Figure 1A, creates a region around the therapeutic cells such that cells expressing the target antigen are targeted even if such cells do not express the priming antigen. An example of this scenario is diagrammed in Figure 1B, which shows a therapeutic cell, depicted as a T cell, primed with a tissue-specific, i.e., brain-specific, antigen. The primed therapeutic cell targets and has a biological effect on (e.g., kills) cells in its vicinity, including cells expressing the target antigen and the brain-specific antigen, as well as cells expressing the target antigen but not the brain-specific antigen. In this way, the therapeutic cell has an effect on cells surrounding the primed cell (i.e., only in the brain), resulting in effective treatment or clearance of all diseased cells.
[0292] In this example, the size of the region can be expanded or adjusted as desired, for example, depending on the use of a diffusible payload or the stability of the therapeutic agent used (e.g., CAR stability). For example, Figure 1C shows a circuit comprising a synNotch binding-triggered transcriptional switch configured to bind a priming antigen (circle) that induces expression of a diffusible CAR head. The diffusible CAR head is specific for a disease-specific target antigen (triangle) and is bound by a portion of the CAR, referred to in Figure 1C as the "split CAR," that contains the intracellular signaling components necessary for T cell activation upon antigen binding. Thus, by diffusing from the primed cell, the diffusible CAR head serves to mediate antigen recognition and target cell processing in more distal T cells that express the split CAR but not necessarily the diffusible CAR head.
[0293] As shown in the left panel of Figure ID, by using a circuit containing synNotch to drive expression of a conventional CAR (i.e., a single continuous chain having an antigen recognition domain and an intracellular signaling component), the killing radius of unprimed cancer cells expressing the killing antigen is kept relatively short. In contrast, as shown in the right panel of Figure ID, by using a circuit containing a diffusible orthogonal bispecific adaptor, such as a diffusible CAR head, the killing radius of unprimed cancer cells expressing the killing antigen is increased. Thus, the desired killing radius can be controlled as desired. In some instances, for example, when the killing antigen is expressed in non-cancerous tissue (i.e., bystander tissue), a short killing radius may be desirable. In other instances, for example, when a relatively small number of cells expressing the priming antigen are present diffusely throughout the cancerous region of interest, a wide killing radius may be desirable.
[0294] The following example describes a circuit for the treatment of glioblastoma. As will be appreciated, the general concepts can be applied to other diseases and conditions.
[0295] Example 2: Testing the antigen target of SynNotch receptor for glioblastoma In this example, circuits using synNotch receptors for various target antigens were tested in T cells for GBM targeting. Specifically, human primary CD8+ T cells were engineered by selecting the antigen targets of the synNotch receptor for glioblastoma, namely EGFRvIII, NRCAM, EphA2, EphA3, IL13Ra2, Her2, EGFR, and PTRZ1, along with the corresponding response elements controlling the expression of a reporter (eGFP). These CD8+ synNotch AND-gated T cells were configured to first sense the respective surface GBM antigens via the synNotch receptor and then, if detected, express the eGFP reporter. Primary CD8+ synNotch AND-gated T cells were cultured alone ("T cells alone") or cocultured with GBM cells ("T cells + GBM6"). The GBM cells used were GBM6 cells, a human patient-derived xenograft (PDX) adult glioblastoma cell line. FIG. 2A provides a histogram of reporter (eGFP) expression levels showing activation of the synNotch receptor in response to various antigens.
[0296] Figure 2B provides quantification related to Figure 2A. Specifically, it quantifies CD8+ synNotch AND-gated primary T cell activation minus basal leakage of GFP expression independent of synNotch receptor binding to its target antigen. These data show varying levels of activation of the constructs tested in specific GBM6 cell lines, demonstrating, for example, that different antigens can be targeted depending on the desired level of activation sensitivity and / or the presence and / or level of a particular antigen in the target cell population.
[0297] We further evaluated the circuit using IL13Ra2 and EphA2 antigen targeting. Specifically, human primary CD8+ T cells were engineered with anti-IL13Ra2 synNotch receptors or anti-EphA2 synNotch receptors and the corresponding response elements that control the expression of the anti-IL13Ra2 / EphA2-4-1 BBz CAR GFP receptor. These CD8+ synNotch AND-gated T cells first sense surface EphA2 or IL13Ra2, respectively, via the synNotch receptor. The cells then express the anti-IL13Ra2 / EphA2 CAR and become primed for activation in response to CAR antigen binding. Figure 3A provides forward (FSC) and side scatter (SSC) flow cytometry plots of CD8+ synNotch AND-gated primary T cells after 24 hours of coculture with a primary GBM cell line (SF11411). The target SF11411 is shown within the circular gate. SynNotch AND gated T cells targeting either antigen resulted in killing of target SF11411 GBM cells, as shown by the reduction of cells in the SF11411 gate in the IL13Ra2 synNotch and EphA2 synNotch panels compared to untransduced controls.
[0298] Expression of the CAR, as measured via a GFP reporter, was assessed in the presence ("T cells + SF11411") and absence ("T cells only") of target SF11411 GBM cells. Figure 3B provides a histogram of a-IL13Ra2 / EphA2 CAR GFP receptor expression levels in these situations, demonstrating that the CAR is expressed and / or expression is increased when engineered T cells are co-cultured with SF11411 compared to when engineered T cells are cultured alone.
[0299] Figure 3C provides quantification related to Figure 3A, specifically showing quantification of cytotoxicity of replicating CD8+ synNotch AND gated primary T cells induced by IL13Ra2 synNotch and EphA2 synNotch circuits. Figure 3D provides quantification related to Figure 3B, specifically showing quantification of CD8+ synNotch AND gated primary T cell activation minus basal leakage of GFP expression independent of synNotch receptor binding to its target antigen. As can be seen in the data, expression of the encoded CAR is induced in the presence of GBM target cells (SF11411).
[0300] Collectively, these data demonstrate that various antigens can be used in targeted circuits to drive the expression of antigen-specific therapeutics, such as CARs, in the presence of targeted GBM cells. Furthermore, targeted therapeutics are essentially not expressed in the absence of targeted GBM cells, due to the absence of an antigen to induce expression of the therapeutic. Correspondingly, these data demonstrate the targeted, effective killing of GBM cells by the circuits described herein.
[0301] Example 3: Multi-antigen CAR T cells precisely and sustainably treat heterogeneous glioblastoma The following example demonstrates that multi-antigen CAR T cells precisely and persistently treat heterogeneous glioblastoma. This example can be extrapolated to other therapeutic proteins and the treatment of other diseases, as the concept is generally similar. Treatment of solid cancers with chimeric antigen receptor T cells is challenging due to the lack of tumor-specific and uniformly expressed antigens. In glioblastoma, the epidermal growth factor receptor variant III neoantigen is tumor-specific but heterogeneously expressed, allowing tumor escape. In contrast, more uniformly expressed glioblastoma antigens are not ideal due to their expression in other normal organs, resulting in potential cross-reactive toxicity. Here, we demonstrate that multi-antigen recognition circuits have the flexibility and precision to overcome these dual challenges. Using a synNotch receptor as a specificity prefilter (recognizing neoantigens or tissue-specific antigens) can restrict the cytotoxic activity of CAR T cells to a localized site, allowing for controlled killing via antigens that are not absolutely tumor-specific. Incorporating multiple incomplete but complementary antigens can improve both the specificity and durability of T cells against glioblastoma and provide a general recognition strategy applicable to other solid tumors.
[0302] This approach involves a "prime-and-kill" dual-antigen-recognition T cell circuit, which uses a synNotch receptor that recognizes a priming antigen—either a tumor-specific but heterogeneous antigen (EGFRvIII) or a brain-specific antigen such as myelin oligodendrocyte glycoprotein (MOG)—to locally induce the expression of a CAR that recognizes a tumor-associated antigen that is relatively uniform throughout the tumor but not necessarily tumor-restricted (e.g., a killing antigen: EphA2 or IL13Rα2). T cells with these types of circuits are locally activated by the priming antigen and can mediate specific cytotoxicity against neighboring cells that express the killing antigen. Such cytotoxicity is thought to act in a local "blast radius" around the priming cell, avoiding indiscriminate killing in distant normal tissues that express the killing antigen but lack the priming antigen. This type of circuit spatially integrates the recognition of two imperfect but complementary antigen targets across multiple neighboring cells. The priming antigen provides specificity, while the killing antigen ensures uniformity of the therapeutic attack.
[0303] T cells expressing this type of prime-and-kill circuit have been shown to exhibit significantly improved efficacy and durability in treating heterogeneous GBM PDX tumors in mice, without cross-reactivity with tissues expressing only the killing antigen. This type of T cell circuit can integrate information across multiple neighboring cells within a tumor, providing a powerful tool for overcoming fundamental challenges in recognizing and eliminating solid tumors. These circuits allow for the combination of individually incomplete antigens to yield more accurately and effectively recognized multi-antigen tumor signatures. This study clearly demonstrates how cell-based therapies are unique among therapeutic platforms in that they can be programmed to recognize and treat disease based on subtle, multiparameter features.
[0304] Results of Example 3 Designing a dual antigen prime-and-kill circuit that can overcome antigen heterogeneity while maintaining high specificity
[0305] Conventional single-antigen-targeted CAR T cells allow tumor cells that do not express the target antigen to escape and, therefore, in some cases, may be ineffective against antigens with heterogeneous expression (Figure 5a). Dual-antigen prime-and-kill CAR T cell circuits (Morsut et al., 2016; Roybal et al., 2016b) can overcome heterogeneous tumor antigen expression (Figure 5b). These circuits use the constitutively expressed synNotch receptor to recognize tumor-specific antigen A (called the priming antigen). Recognition of antigen A leads to activation of the synNotch receptor and subsequent proteolytic cleavage, releasing an intracellular transcriptional activation domain that can drive the expression of a CAR that recognizes antigen B (called the killing antigen). In this type of circuit, T cells do not express a CAR against the killing antigen unless they are first primed by synNotch receptor activation.
[0306] One flexible feature of this circuit is the selection of priming and killing antigens. Ideally, the priming antigen should be highly tumor-specific but, in principle, need not be uniformly expressed by tumors. Conversely, the killing antigen does not need to be absolutely tumor-specific (because the priming antigen provides specificity) but must be uniformly expressed throughout tumor cells. Thus, in this type of circuit, T cells are locally primed by a highly specific but heterogeneous antigen and then activated to mediate killing of tumor cells expressing the killing antigen within a local radius around the priming signal. In essence, two defective antigens with different defects can be recognized in a complementary combination by such a dual-antigen circuit. Below, we describe two methods for designing such circuits: one primed by a tumor-specific neoantigen and the other primed by a tissue-specific antigen (Figure 5b).
[0307] Designing circuits to recognize heterogeneous GBM: Priming with EGFRvIII and killing with EphA2 or IL13 R.ALPHA.2 The T cell circuit shown in Figure 6a was designed to recognize and kill EGFRvIII-positive GBM. The GBM-specific neoantigen EGFRvIII was targeted as the priming antigen. While potential cross-reactivity is not an issue, the EGFRvIII neoepitope is heterogeneously expressed in GBM (10–95% of cells in tumors express EGFRvIII; O'Rourke et al., 2017). In a recent clinical trial evaluating EGFRvIII-targeting CAR T cells, tumors recurred despite the reduction of EGFRvIII-positive GBM cells, likely due to the survival and regrowth of EGFRvIII-negative cells (O'Rourke et al., 2017). In summary, although EGFRvIII is an excellent target in terms of specificity, its heterogeneous expression throughout the tumor makes it less than ideal as a killing antigen.
[0308] To target killing, we focused on ephrin type A receptor 2 (EphA2) and IL13 receptor α2 (IL13Rα2). Both antigens are expressed by most GBM cells and are absent in normal brain tissues, but are also expressed at low levels in some non-tumor tissues (i.e., they are GBM-associated antigens rather than GBM-specific antigens) (Bielamowicz et al., 2018; Hegde et al., 2013b; Wykosky et al., 2005). Due to the lack of complete tumor specificity, these GBM-associated antigens are not ideal targets for conventional single-target CAR T cell therapy approaches. However, they can serve as effective killing antigens if tumor selectivity is provided by the priming antigen.
[0309] Therefore, we engineered a prime-and-kill circuit to recognize EGFRvIII with the synNotch receptor and subsequently induce the expression of a CAR that recognizes both EphA2 and IL13Rα2 (α-EGFRvIII synNotchα-EphA2 / IL13α2 CAR). We used a tandem CAR with an extracellular domain containing an EphA2 single-chain antibody fused to an IL13 mutein (a variant of the IL13 ligand with higher affinity for IL13α2 than for IL13Rα1) (see Figure 11a for circuit design details) (Kahlon et al., 2004). We reasoned that targeting multiple killing antigens (EphA2 or (OR) IL13Rα2) rather than a single antigen would further reduce the risk of tumor escape via loss of the killing antigen.
[0310] For target cells, we used the U87 GBM tumor cell line, which is positive for both EphA2 and IL13Rα2 but negative for EGFRvIII (Chow et al., 2013; Krenciute et al., 2016). We constructed an EGFRvIII-positive version of the U87 cell line (U87-EGFRvIII) by stably transfecting it with EGFRvIII (Johnson et al., 2015; Ohno et al., 2013). U87-EGFRvIII-positive and U87-EGFRvIII-negative cells were mixed at various ratios to recapitulate the different levels of heterogeneity observed in GBM patients (primed cells: 10–100%) (Figure 6b). In vitro cytotoxicity assays were performed with primary human CD8+ T cells engineered with the α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR circuit. In this model, T cells were primed by EGFRvIII-positive cells in the tumor and induced to express a CAR capable of killing neighboring tumor cells, including those lacking EGFRvIII expression (Figure 6c).
[0311] We found that CD8+ T cells engineered with the α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR prime-and-kill circuit were able to eradicate heterogeneous U87 GBM cell populations in vitro, even with as few as 10% EGFRvIII-positive primed cells (Fig. 6d, e). In contrast, no killing was observed in the absence of primed cells. In these assays, the kinetics of induction of CAR expression and killing of two distinct tumor cell populations (EGFRvIII-positive and EGFRvIII-negative) were followed over 72 hours (see Fig. 11d for CAR induction). Effective clearance (p = 0.0149; t-test) was observed with as few as 10% primed cells, although killing was somewhat slower compared to 50% primed cells (Fig. 2d and S1e). Taken together, these in vitro killing studies suggest that prime-and-kill circuits represent a promising strategy that may significantly reduce the likelihood of tumor escape due to heterogeneity.
[0312] T cells harboring an α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR circuit effectively suppress the growth of heterogeneous EGFRvIII-positive GBM tumors in the brain without affecting co-implanted flank tumors lacking the priming antigen Based on these in vitro data, we evaluated the antitumor activity of these prime-and-kill CAR T cells in a GBM xenograft mouse model. First, to systematically investigate the varying degrees of EGFRvIII heterogeneity, we mixed U87-EGFRvIII-negative cells with U87-EGFRvIII-positive cells at various ratios (0:100; 50:50; and 100:0), and injected the mixed population into the brains of immunodeficient NCG mice (Figure 7a). We transfected U87-EGFRvIII-negative cells with wild-type EGFR to generate an EGFRvIII-negative partner cell line that proliferated at the same rate as EGFRvIII-positive cells (see Figure 12) (Bonavia et al., 2012). Histological examination at day 6 confirmed that the mixed ratio of EGFRvIII-negative and EGFRvIII-positive cells was maintained in vivo (Figure 12). These tumor-bearing mice were then treated with either non-transduced (negative control) or prime-and-kill primary human T cells transduced with the prime-and-kill circuit. Neither prime-and-kill nor control T cells demonstrated clearance in 0% EGFRvIII-positive tumors, whereas prime-and-kill CAR T cells demonstrated equally effective tumor clearance in both 50% and 100% EGFRvIII-positive tumors (controls showed no clearance) (Figure 7b). Thus, in this context, prime-and-kill CAR T cells can recognize and effectively overcome tumors with heterogeneous EGFRvIII expression.
[0313] To assess whether the function of prime-and-kill CAR T cells is localized to the GBM site (thus avoiding cross-reactivity with other distant normal tissues expressing the killing antigen), it may be important to determine whether T cells primed by EGFRvIII within the GBM tumor site can mediate any anti-EphA2 or IL13Rα2 activity systemically. To this end, as a specificity control, we performed a parallel experiment using mice inoculated with two tumors: a 50% EGFRvIII-positive U87 tumor in the brain and a U87-EGFRvIII-negative tumor in the flank (Figure 7c). Here, the flank tumor represents potentially cross-reactive normal tissue that expresses the killing antigen but not the priming antigen.
[0314] Six days after tumor inoculation, mice received intravenous administration of prime-and-kill CAR T cells or control untransduced T cells (n = 6 / group). All mice treated with control T cells showed tumor growth at both sites and rapidly reached the euthanasia endpoint with a median survival of 25.5 days. In contrast, mice treated with prime-and-kill CAR T cells showed significant suppression of intracranial tumor growth compared to control mice (p < 0.001; t-test). Importantly, however, mice treated with prime-and-kill CAR T cells did not show statistically significant suppression of flank tumors compared to the control group (p = 0.4; t-test, Figures 7d and 7e). The selective lack of killing in non-primed flank tumors indicates that the cytotoxic activity of prime-and-kill CAR T cells is spatially restricted to intracranial tumors expressing both priming and killing antigens.
[0315] Prime-and-kill CAR T cells show locally induced expression of CAR To further confirm that EGFRvIII-induced expression of the α-EphA2 / IL13Rα2 CAR was restricted to intracranial GBM tumors (EGFRvIII-positive), we engineered a CAR-GFP construct so that T cells expressed GFP upon synNotch receptor priming. From dual-tumor mice (bearing EGFRvIII-positive intracranial tumors and EGFRvIII-negative flank tumors), we isolated human T cells from the intracranial and flank tumors and spleen 2 days after intravenous administration of prime-and-kill CAR T cells. T cells recovered from the intracranial tumor, but not from the spleen or flank tumors, expressed GFP (Figure 7f). These findings indicate that expression of the killing CAR is localized to the local environment surrounding the priming antigen. These data support the development of CAR T therapy based on the synNotch priming system as a safe strategy to mitigate the systemic on-target, off-tumor toxicity associated with targeting tumor-associated antigens with incomplete specificity.
[0316] Prime-and-kill CAR T cells result in complete remission of GBM6 PDX tumors heterogeneously expressing EGFRvIII We evaluated the efficacy of prime-and-kill CAR T cells in a tumor model exhibiting naturally occurring heterogeneity in EGFRvIII expression (Figure 8a). GBM6 patient-derived xenograft (PDX) tumors were identified as a model that exhibited endogenous EGFRvIII heterogeneity (Figure 8a) and, most importantly, demonstrated a reproducible ability to evade treatment with EGFRvIII single-antigen CARs. When implanted intracranially, GBM6 tumors grew rapidly, killing the mice within 40 days (Figure 8c). Treating mice with EGFRvIII CARs dramatically reduced tumor size but recurred slowly and reproducibly (Figure 8c, purple dotted line, and Figure 13e). These recurrent tumors exhibited loss of EGFRvIII expression (Figure 8g). Further in vitro testing demonstrated that GBM6 cultures contained individual cells within the population with undetectable levels of the EGFRvIII antigen, and these cells were resistant to killing by conventional EGFRvIII CAR T cells (Figures 13c, d). In summary, GBM6 mimics the heterogeneity-based escape observed in EGFRvIII CAR clinical trials and therefore represents an ideal model to evaluate alternative T cell circuits that can overcome these issues.
[0317] CD8+ T cells engineered with the α-EGFRvIII synNotch→α-EphA2 / IL13Rα2 CAR circuit were able to eradicate heterogeneous GBM6 populations in vitro (Figure 13a). When NCG mice bearing GBM6 tumors in the brain received an intravenous injection of control, untransduced T cells, all mice (n = 5) died of tumor progression by day 42 after tumor inoculation (Figures 8b and c). Treatment with α-EGFRvIII CAR T cells consistently (n = 6) resulted in the recurrence of EGFRvIII-negative tumors after initial regression (3 of 6 mice died of tumor progression by day 125), demonstrating the clinical relevance of the GBM6 model (Figures 8c and g) (O'Rourke et al., 2017). Furthermore, we did not detect intravenously injected EGFRvIII CAR T cells in recurrent tumors, indicating a lack of T cell persistence (Figure 8g). In marked contrast, all mice (n = 6) treated with prime-and-kill CAR T cells showed long-term complete remission of GBM6 tumors (Fig. 8b, c). This more durable and complete tumor clearance was highly reproducible (Fig. 13e). Postmortem immunofluorescence analysis showed the absence of tumor cells in the brain parenchyma and meninges, but the persistence of CAR T cells (Fig. 8f). To visualize brain-restricted priming and induction of CAR expression, we utilized an EphA2 / Il13Rα2 CAR-GFP fusion construct. Notably, 6 days after T cell injection, we detected GFP-positive prime-and-kill CAR T cells (which also stained for human CD45) in the tumor bed but not in the spleen (Fig. 8h).
[0318] In summary, prime-and-kill CAR T cells are superior to conventional α-EGFRvIII CAR T cells in their ability to induce durable and more complete remissions in the heterogeneous GBM6 model. Thus, these prime-and-kill CAR T cells maintain EGFRvIII-directed tumor specificity (as shown in the previous section) and can overcome EGFRvIII heterogeneity (as shown in this section).
[0319] Prime-and-kill GBM circuits using brain-specific antigens These results clearly demonstrate that prime-and-kill CAR T cells can be efficiently primed by antigens that are not uniformly expressed on all tumor cells. Furthermore, prime-and-kill CAR T cells have been demonstrated to achieve transpriming / killing—priming off one cell to induce the killing of distinct but neighboring cells. Therefore, we hypothesized that it might be possible to engineer T cells that are locally primed by recognizing tissue-specific antigens expressed only on non-malignant cells (Figure 9a). For example, in the case of GBM, it might be possible to engineer a T cell circuit that is primed by recognizing a brain-specific antigen and then induces local killing based on the GBM antigens EphA2 and IL-13Rα2. Therefore, anti-brain synNotch→EphA2 / IL-13Rα2 CAR prime-and-kill CAR T cells may offer a potential solution for treating EGFRvIII-negative GBM patients.
[0320] We bioinformatically identified two brain-restricted surface proteins: cadherin 10 (CDH10), a brain-specific cadherin, and myelin oligodendrocyte glycoprotein (MOG), a surface protein on the myelin sheath of neurons (and an autoantigen implicated in multiple sclerosis). The predicted tissue expression of these antigens is shown in Figure 9b. We identified antibodies that bind to these antigens and used them to construct cognate synNotch receptors. We screened several of these synNotch receptors to identify versions that could be activated by cells expressing the mouse isoforms of CDH10 or MOG (Figure 9c). Thus, these receptors could be used to mediate priming from endogenous mouse brain tissue. We then constructed a circuit in which the brain-specific synNotch receptor induces the expression of an α-EphA2 / IL-13Rα2 tandem CAR (Figure 9d). We found that CD8+ T cells engineered with α-CDH10 or α-MOG synNotch→α-EphA2 / IL-13Rα2 CAR circuits were able to eradicate U87 GBM or GBM6 cell populations in vitro only in the presence of transprimed cells (MOG+ or CDH10+ cells) (Fig. 14a, b).
[0321] To test the efficacy of these brain antigen priming circuits in vivo, we implanted GBM6 PDX tumors into the brains of NCG mice and treated them with T cells capable of priming based on recognition of MOG or CDH10. In both cases, the majority of mice treated with prime-and-kill circuit T cells demonstrated effective GBM6 tumor clearance (Figure 9e, f). These findings suggest that brain prime-and-kill T cells are indeed effectively primed by recognition of tissue-specific antigens in the mouse brain, thereby locally inducing the expression of killing CAR receptors. Mice treated with either circuit showed significantly improved survival compared with mice treated with control T cells (Figure 9e, f).
[0322] To assess whether the effects of MOG- or CDH10-primed CAR T cells were brain tumor-restricted, these experiments were repeated by simultaneously implanting GBM6 tumors in the brain and flank and intravenously injecting brain prime-and-kill CAR T cells (Figure 9g). Consistent with the last experiment, both MOG-primed and CDH10-primed CAR T cells demonstrated effective anti-brain tumor responses (Figure 9h). In the flank, MOG-primed-and-kill CAR T cells had no effect on tumor growth compared with control, untransduced T cells, suggesting that MOG-primed-and-kill CAR T cells function specifically in the brain. On the other hand, CDH10-primed CAR T cells demonstrated a significant reduction in flank tumor size, suggesting that the anti-CDH10 scFV may be cross-reactive with epitopes on other antigens present outside the brain, or that CDH10 expression is not sufficiently brain-restricted, as suggested by RNA-seq data showing CDH10 mRNA expression in non-CNS organs (Figure 9b).
[0323] Overall, these data demonstrate the versatility of prime-and-kill CAR T cells, including integrated priming from normal tissue-specific antigens.
[0324] Method of Example 3 Design of SynNotch receptor and response element constructs SynNotch receptors were constructed by fusing EGFRvIII 139 scFv (Johnson et al., 2015), MOG M26 scFv (von Budingen et al., 2002), and CDH10 (gift from the Sidhu lab) to the mouse Notch 1 (NM_008714) minimal regulatory region (Ile1427-Arg1752) and Gal4 DBD VP64. All synNotch receptors contain an N-terminal CD8a signal peptide for membrane targeting and a myc or flag tag for easy determination of surface expression using a-myc A647 (cell-signaling #2233) or a-flag A647 (RND systems #IC8529R). For synNotch receptor peptide sequences, see Morsut et al. (Morsut et al., 2016). Receptors were cloned into modified pHR'SIN:CSW vectors containing the PGK or SFFV promoter for all primary T cell experiments. The pHR'SIN:CSW vector was also modified to prepare response element plasmids. Five copies of the Gal4 DNA-binding domain target sequence were cloned into a minimal CMV promoter. The response element plasmids also contain a PGK promoter that constitutively drives mCherry or BFP expression for easy identification of transduced T cells. Inducible CARs were constructed by fusing EphA2 scFv (Goldgur et al., 2014), IL-13 mutein [E13K, K105R] (Krebs et al., 2014), or IL-13 mutein [E13K, K105R]-G4Sx4-EphA2 scFv (Goldgur et al., 2014) to the hinge region of the human CD8 α chain, the transmembrane and cytoplasmic regions of human 4-1BB, and the CD3z signaling endodomain. The inducible CAR constructs were cloned into the Gal4 response element via the BamHI site 3' of the multiple cloning site. For some inducible CAR vectors, the CAR was tagged at the c-terminus with GFP / BFP or contained a myc / flag tag to verify surface expression.All constructs were cloned by in-fusion cloning (Clontech #ST0345).
[0325] Isolation and culture of primary human T cells Primary CD4+ and CD8+ T cells were isolated from anonymous donor blood after apheresis by negative selection (STEMCELL Technologies #15062 and #15063). Blood was obtained from the Blood Centers of the Pacific as approved by the University Institutional Review Board. T cells were cryopreserved in RPMI-1640 (UCSF Cell Culture Core) containing 20% human AB serum (Valley Biomedical, #HP1022) and 10% DMSO. After thawing, T cells were cultured in human T cell medium consisting of X-VIVO 15 (Lonza #04-418Q), 5% human AB serum, and 10 mM neutralized N-acetyl-L-cysteine (Sigma-Aldrich #A9165), supplemented with 30 units / mL IL-2 (NCI BRB Preclinical Repository) for all experiments except the IncuCyte experiment. IncuCyte experiments were cultured in RPMI-1640 (UCSF Cell Culture Core) containing 5% human AB serum (Valley Biomedical, #HP1022) supplemented with 30 units / mL of IL-2 (NCI BRB Preclinical Repository).
[0326] Lentiviral transduction of human T cells Pantropic VSV-G pseudotyped lentivirus was prepared by transfecting Lenti-X 293 T cells (Clontech #11131D) with the pHR'SIN:CSW transgene expression vector and the viral packaging plasmids pCMVdR8.91 and pMD2.G using Fugene HD (Promega #E2312). Primary T cells were thawed the same day and, after 24 hours in culture, stimulated with human T-Activator CD3 / CD28 Dynabeads (Life Technologies #11131D) at a cell:bead ratio of 1:3. At 48 hours, viral supernatants were collected and, for some assays, concentrated using Lenti-X concentrators (Clontech #631231). Primary T cells were exposed to virus for 24 hours. Four days after T cell stimulation, Dynabeads were removed, and T cells were rested and expanded until day 9, when they could be used in assays. T cells were sorted for assay using a Beckton Dickinson (BD) FACs ARIA Fusion. AND-gated T cells showing basal CAR expression were gated out during sorting.
[0327] Cancer cell lines The cancer cell lines used were K562 myeloid leukemia cells (ATCC #CCL-243), L929 mouse fibroblast cells (ATCC #CCL-1), U87 MG GBM cells (ATCC #HTB-14), and GBM6 PDX cells (a kind gift from Dr. Frank Furnari, Ludwig Institute and UCSD). U87-EGFRvIII-negative luciferase (Ohno et al., 2013) and U87 MG were lentivirally transduced to stably express GFP or mCherry, respectively, under the control of the spleen focus-forming virus (SFFV) promoter. Seventy-two hours after transduction, cells were sorted on an Aria Fusion cell sorter (BD Biosciences) based on GFP expression to be 100% GFP or mCherry positive and then expanded. All cell lines were sorted for transgene expression. U87-luciferase and U87-luciferase-mCherry cells were stably transduced with unmutated EGFR using a retroviral construct (gift from Matthew Myerson; Addgene plasmid #11011) to generate EGFRvIII-negative cell lines that proliferate at a rate similar to that of the EGFRvIII-positive U87 cell line (see Figure S2). Overexpression of wild-type EGFR is associated with human GBMs with EGFR amplification (Bonavia et al., 2012). Both GBMs were lentivirally transduced to stably express both mCherry and firefly luciferase. These cells were cultured in DMEM-F12 medium supplemented with EGF (20 μg / mL), FGF (20 μg / mL), and heparin (5 μg / mL). K562 was lentivirally transduced to stably express surface CDH10 (CDH10 extracellular domain fused to the PDGF transmembrane domain), and K562 and L929 were lentivirally transduced to stably express full-length MOG.
[0328] In vitro stimulation of SynNotch T cells For all in vitro synNotch T cell stimulations cocultured with U87, 1 x 104 U87 cells were cultured overnight in a flat-bottom 96-well tissue culture plate. The following morning, 1 x 104 to 5 x 104 T cells were added to the flat-bottom 96-well tissue culture plate, and the cocultures were analyzed for target tumor cell activation and specific lysis at 24 to 96 hours. For all in vitro synNotch T cell stimulations cocultured with GBM6 and T cells, 1 x 104 GBM6 cells were cultured overnight in a flat-bottom 96-well tissue culture plate. The following morning, 1 x 104 T cells were added to the flat-bottom 96-well tissue culture plate, and the cocultures were analyzed for target tumor cell activation and specific lysis at 24 to 96 hours. For all in vitro synNotch T cell stimulations cocultured with the three different cell populations, target cells (GBM6) were cultured at 1 x 10 cells, and priming cells (either K562 or L929) were cultured at 1 x 10 cells overnight in flat-bottom 96-well tissue culture plates. The following morning, 1 x 10 T cells were added to the flat-bottom 96-well tissue culture plates, and the cocultures were analyzed for target tumor cell activation and specific lysis at 24 to 96 hours. All flow cytometry was performed using a BD LSR II or Attune NxT flow cytometer, and analysis was performed using FlowJo software (TreeStar).
[0329] Assessment of cytotoxicity of SynNotch AND-gated T cells CD8+ synNotch AND-gated T cells were stimulated with target cells expressing the indicated antigens for 24–96 h as described above. The level of specific lysis of target cancer cells was determined by comparing the percentage of viable target cells in cultures treated with untransduced T cell controls compared to non-transduced T cell controls. Cell death was monitored by target cell displacement from the side-scatter and forward-scatter regions normally occupied by target cells. Alternatively, cell viability was analyzed using the IncuCyte Zoom system (Essen Bioscience). Tumor cells were seeded overnight in triplicate in 96-well plates at a density of 1.0 × 104 cells / well. The following day, T cells were added to each well in a final volume of 200 μl / well. Target cells and T cells were co-cultured as described above. Two fields per well were taken every 15 min. To determine target cell viability, mean fluorescence intensity (MFI) was calculated using IncuCyte Zoom software (Essen BioScience). Data were summarized as mean ± SEM.
[0330] Statistical analysis and curve fitting Statistical significance was determined by specific tests and is presented as mean ± standard error of the mean (SEM) or mean ± standard deviation (SD), as indicated in the figure legends. Survival curves were constructed using the Kaplan-Meier estimator, and differences in survival distributions were assessed using the Log-Rank test. All p-values are indicated in the figures or their legends. All statistical analyses were performed using Prism software version 7.0 (GraphPad).
[0331] Mouse model All mouse experiments were performed in accordance with protocols approved by the Institutional Animal Care and Use Committee (IACUC). For the heterogeneous model using U87 mice, 1.5 × 10 4 1.5 x 10 U87-luc-mCherry cells and 1.5 x 10 4A mixture of U87-luc-EGFRvIII-negative GFP cells was implanted intracranially into 6-8 week-old female NCG mice (Charles River) at 6-10 mice per group. For a homogeneous U87-luc-GFP-EGFRvIII-positive model, 3 x 10 cells were injected into the brains of NCG mice. For an orthotopic heterogeneous model using GBM6, 1.0 x 10 GBM6-luc-mcherry cells were implanted intracranially into 6-8 week-old female NCG mice at 6-10 mice per group. Stereotactic surgery for tumor cell inoculation was performed at injection site coordinates 2 mm right and 1 mm anterior to bregma and 3 mm into the brain. Mice were treated with analgesics before and for 3 days after surgery and monitored for adverse symptoms according to IACUC guidelines. For the subcutaneous model, NCG mice were injected subcutaneously on day 0 with either 1.0 x 10 U87-Luc-mcherry or 1.2 x 10 GBM6-luc-mcherry cells in 100 μl of HBSS. Tumor progression was assessed by luminescence in a Xenogen IVIS Spectrum after intraperitoneal D-luciferin injection according to the manufacturer's instructions (GoldBio). Prior to treatment, mice were randomized to ensure comparable initial tumor burdens in control and treatment groups. Mice were treated intravenously via the tail vein with 6.0 x 10 engineered T cells or the corresponding number of non-transduced T cells in 100 μl of PBS. Survival was assessed over time until predetermined IACUC-approved endpoints (hunching, neurological deficits, e.g., circling, ataxia, paralysis, lameness, head tilt, balance problems, and seizures) were reached (n = 6–10 mice per group).
[0332] Immunofluorescence Mice were euthanized and transcardially perfused with cold PBS. Brains were then removed and fixed overnight in 4% PFA-PBS, then transferred to 30% sucrose and submerged (1–2 days). Brains were then embedded in OCT compound (Tissue-Tek; 4583; Sakura Finetek). Serial 10-μm coronal sections were then cut using a freezing microtome and stored at -20°C. The sections were then thawed and stained overnight at 4°C. The primary antibodies used were CD45(D9M8I)XP® rabbit mAb (Cell Signaling Technologies, 1:100), anti-EGFRvIII, clone DH8.3 (Millipore Sigma, 1:100), human EphA2 Alexa Fluor 700-conjugated antibody (R&D Systems, 1:100), and anti-IL13 receptor alpha 2 antibody (Abcam, 1:100). Primary labeling was detected using a secondary antibody produced in donkey and conjugated to AlexFluor 647 for 2 hours at 4°C. Sections were stained with the nuclear dye DRAQ7 (Abcam) or DAPI5 (Thermofisher). Images were acquired using either a Zeiss Axio Imager 2 microscope (20x magnification) equipped with TissueFAXS scanning software (TissueGnostics) or a Zeiss LSM 780 microscope (20x magnification) equipped with Zeiss Zen imaging software. Exposure times and thresholds were kept consistent between samples within an imaging session. [Table 1] JPEG0007777872000002.jpg251169JPEG0007777872000003.jpg234169
[0333] Here, we show that these problems can be overcome for GBM by using a more sophisticated T cell recognition circuit that integrates recognition of multiple antigens (Figure 10). To demonstrate this, we constructed a series of prime-and-kill circuits. We targeted EGFRvIII, a GBM-specific but heterogeneously expressed neoantigen, as the priming antigen (Figure 10a), and then extended this strategy to target brain-specific antigens expressed on non-tumor cells in the brain (Figure 10b).
[0334] In the circuit described herein, the synNotch receptor induces gene expression of a tandem CAR targeting two GBM-associated antigens, EphA2 and IL13Rα2. As conventional therapeutic targets, these two antigens may be incomplete because they are expressed in several other normal, non-brain tissues. However, in these prime-and-kill circuits, this cross-reactivity is mitigated because expression of the cognate CAR is induced only in the vicinity of cells expressing EGFRvIII or MOG. Prime-and-kill circuits combine these incomplete antigens and integrate them to optimize how they each contribute to overall recognition. EGFRvIII and MOG represent excellent priming antigens because they are highly specific in GBM tumors or the brain, respectively. EphA2 and IL13Rα2 are less specific, but are more uniformly expressed throughout the tumor, so targeting these antigens may promote killing of a broader population of GBM cells. Therefore, these antigens are more suitable for antigen-targeted killing, as long as their killing is controlled by local priming signals. Furthermore, even if these killing antigens are not completely uniform individually, the use of tandem CARs in killing provides a higher likelihood of tumor clearance (the tandem CARs function as OR gates) (Hegde et al., 2016). Thus, these circuits can integrate signals from three antigens, even if presented on different cells within the tumor, to induce a killing response that is highly localized but broad enough to be effective. The circuit is hypothesized to essentially create a killing "blast radius" around the primed cells (Figure 10c). Other recent studies have also explored how EGFRvIII recognition can be utilized to locally enhance alternative, less specific therapeutic responses, such as the secretion of EGFR bispecific engagers (Choi, 2019).
[0335] In vivo data demonstrate that EGFRvIII- or MOG-induced expression of α-EphA2 / IL-13Rα2 CARs and their cytotoxic activity are restricted to intracranial tumors expressing both the priming and killing antigens, thereby sparing tissues expressing the killing antigen at distant sites. Previous in vivo mouse studies (Roybal et al., 2016a) found that T cells expressing a similar prime-and-kill circuitry exhibited highly selective killing of transplanted tumor cells that uniformly expressed the priming and killing circuitry (i.e., the "AND gate"), but not of tumor cells transplanted in the contralateral site that expressed only the killing antigen. The lack of killing in the contralateral control tumor indicates that priming T cells in one organ does not result in primed T cells capable of long-range killing within the body (when the priming stimulus is removed, CAR expression decays within hours, preventing the initiation of a sustained immune response; Roybal 2016). These observations are consistent with the current model in which synNotch-mediated T cell priming can induce short-range, but not long-range, killing of target cells.
[0336] Considering EGFRvIII as a priming antigen, approximately 20% of GBM patients are positive for EGFRvIII (Heimberger et al., 2005; Moscatello et al., 1995; Thorne et al., 2016; Wikstrand et al., 1997). Furthermore, patients can exhibit heterogeneity in EGFRvIII expression, ranging from 10 to 95% (O'Rourke et al., 2017). Because induced killing also results in a parallel reduction of both non-primed and primed tumor cells, it remains unclear what percentage of EGFRvIII-positive cells is required in vivo to achieve sufficient priming to eliminate tumors. That is, in some cases, it is possible that primed cells are eliminated prematurely. Nevertheless, based on our data using the GBM6 model (Figure 8), the EGFRvIII priming strategy appears promising, as all mice showed long-term tumor clearance. This is advantageous compared to other similar treatments (Johnson et al., 2015): Removal of the priming signal is less of a concern in brain antigen priming circuits (e.g., against MOG) because prime-and-kill CAR T cells will not kill normal brain cells expressing MOG because they lack the necessary killing antigens (EphA2 or IL-13Rα2).
[0337] References for Example 3 Bielamowicz et al.(2018).Trivalent CAR T cells overcome interpatient antigenic variability in glioblastoma.Neuro Oncol 20,506-518.
[0338] Bonavia et al. (2012).EGFRvIII promotes glioma angiogenesis and growth through the NF-kappaB,interleukin-8 pathway.Oncogene 31,4054-4066.
[0339] Brown et al.(2016).Regression of Glioblastoma after Chimeric Antigen Receptor T-Cell Therapy.N Engl J Med 375,2561-2569.
[0340] Cameron et al.(2013).Identification of a Titin-derived HLA-A1-presented peptide as a cross-reactive target for engineered MAGE A3-directed T cells.Sci Transl Med 5,197ra103.
[0341] Choi et al.(2019).CAR-T cells secreting BiTEs circumvent antigen escape without detectable toxicity.Nat.Biotechnol.37:1049-1058
[0342] Drumm et al.(2019).Extensive brainstem infiltration,not mass effect,is a common feature of end-stage cerebral glioblastomas.Neuro Oncol.
[0343] Goldgur et al.(2014).Generation and characterization of a single-chain anti-EphA2 antibody.Growth Factors 32,214-222.
[0344] Hegde et al.(2013a)Combinational targeting offsets antigen escape and enhances effector functions of adoptively transferred t cells in glioblastoma Mol Ther.2013 21:2087-101.
[0345] Hegde et al.(2013b).Combinational targeting offsets antigen escape and enhances effector functions of adoptively transferred T cells in glioblastoma.Mol Ther 21,2087-2101.
[0346] Heimberger et al.(2005).Prognostic effect of epidermal growth factor receptor and EGFRvIII in glioblastoma multiforme patients.ClinCancer Res 11,1462-1466.
[0347] Johnson et al.(2009).Gene therapy with human and mouse T-cell receptors mediates cancer regression and targets normal tissues expressing cognate antigen.Blood 114,535-546.
[0348] Johnson et al.(2015).Rational development and characterization of humanized anti-EGFR variant III chimeric antigen receptor T cells for glioblastoma.Sci Transl Med 7,275ra222.
[0349] June et al.(2018).Chimeric Antigen Receptor Therapy.N Engl J Med 379,64-73.
[0350] Kahlon et al.(2004).Specific recognition and killing of glioblastoma multiforme by interleukin 13-zetakine redirected cytolytic T cells.Cancer Res 64,9160-9166.
[0351] Krebs et al.(2014).T cells redirected to interleukin-13Ralpha2 with interleukin-13 mutein--chimeric antigen receptors have anti-glioma activity but also recognize interleukin-13Ralpha1.Cytotherapy 16,1121-1131.
[0352] Morgan et al.(2013).Cancer regression and neurological toxicity following anti-MAGE-A3 TCR gene therapy.J Immunother 36,133-151.
[0353] Morgan et al.(2010).Case Report of a Serious Adverse Event Following the Administration of T Cells Transduced With a Chimeric Antigen Receptor Recognizing ERBB2.Mol Ther 18,843-851.
[0354] Morsut et al.(2016).Engineering Customized Cell Sensing and Response Behaviors Using Synthetic Notch Receptors.Cell 164,780-791.
[0355] Moscatello et al.(1995).Frequent expression of a mutant epidermal growth factor receptor in multiple human tumors.Cancer Res 55,5536-5539.
[0356] O’Rourke et al.(2017).A single dose of peripherally infused EGFRvIII-directed CAR T cells mediates antigen loss and induces adaptive resistance in patients with recurrent glioblastoma.Sci Transl Med 9.
[0357] Ohno et al.(2013).Expression of miR-17-92 enhances anti-tumor activity of T-cells transduced with the anti-EGFRvIII chimeric antigen receptor in mice bearing human GBM xenografts.Journal for immunotherapy of cancer 1,21.
[0358] Parkhurst et al.(2011).T cells targeting carcinoembryonic antigen can mediate regression of metastatic colorectal cancer but induce severe transient colitis.Mol Ther 19,620-626.
[0359] Roybal et al.(2016a).Precision Tumor Recognition by T Cells With Combinatorial Antigen-Sensing Circuits.Cell 164,770-779.
[0360] Roybal et al.(2016b).Engineering T Cells with Customized Therapeutic Response Programs Using Synthetic Notch Receptors.Cell 167,419-432 e416.
[0361] Sampson et al.(2010).Immunologic Escape After Prolonged Progression-Free Survival With Epidermal Growth Factor Receptor Variant III Peptide Vaccination in Patients With Newly Diagnosed Glioblastoma.Journal of Clinical Oncology 28,4722-4729.
[0362] Shahideh et al.(2012).Systematic review of primary intracranial glioblastoma multiforme with symptomatic spinal metastases,with two illustrative patients.J Clin Neurosci 19,1080-1086.
[0363] Thorne et al(2016).Epidermal growth factor receptor targeting and challenges in glioblastoma.Neuro Oncol 18,914-918.
[0364] Watanabe et al.(2018).Expanding the Therapeutic Window for CAR T Cell Therapy in Solid Tumors:The Knowns and Unknowns of CAR T Cell Biology.Front Immunol 9,2486.
[0365] Wikstrand et al. (1997).Cell surface localization and density of the tumor-associated variant of the epidermal growth factor receptor,EGFRvIII.Cancer Res 57,4130-4140.
[0366] Wykosky et al.(2005).EphA2 as a novel molecular marker and target in glioblastoma multiforme.Mol Cancer Res 3,541-551.
[0367] While the present invention has been described with reference to specific embodiments thereof, it should be understood by those skilled in the art that various changes may be made and equivalents may be substituted without departing from the true spirit and scope of the invention. In addition, many modifications may be made to adapt a particular situation, material, composition of matter, method, method step or steps, to the objective, spirit and scope of the present invention. All such modifications are intended to be within the scope of the appended claims. Various embodiments of the present invention are described below. 1. A cell comprising a recombinant nucleic acid encoding a transmembrane protein having an extracellular binding domain that specifically binds to a brain-selective extracellular antigen, wherein the cell does not comprise a nucleic acid encoding an antigen-specific therapeutic agent that binds to a killing antigen expressed by glioblastoma. 2. The cell according to 1 above, wherein the brain-selective extracellular antigen is MOG, CDH10, PTPRZ1 or NRCAM. 3. The cell according to 1 or 2 above, wherein the extracellular binding domain is a variable domain of an antibody that specifically binds to the brain-selective extracellular antigen. 4. The cell of any of claims 1 to 3, wherein the transmembrane protein is a binding-triggered transcriptional switch, and the cell further comprises a nucleic acid comprising (i) a coding sequence encoding a therapeutic protein and (ii) a regulatory sequence, the regulatory sequence operably linked to the coding sequence and responsive to activation of the binding-triggered transcriptional switch. 5. A system described in any one of 1 to 4 above, wherein the binding-triggered transcriptional switch is one or more polypeptides that, upon binding to the brain-selective extracellular antigen, undergo proteolytic cleavage to release a gene expression regulator that activates transcription of a therapeutic protein. 6. The cell according to claim 5, wherein the binding-triggered transcriptional switch is a SynNotch receptor, an A2 receptor, MESA, or another receptor that undergoes binding-induced proteolytic cleavage. (i) an extracellular domain that binds to the brain-selective extracellular antigen; (ii) a proteolytically cleavable sequence containing one or more proteolytic cleavage sites; and (iii) an intracellular domain; Including, 7. The cell described in claim 6, wherein binding of the extracellular domain of (i) to the brain-selective extracellular antigen induces cleavage of the proteolytically cleavable sequence at the one or more proteolytic cleavage sites to release the intracellular domain, and the released intracellular domain induces expression of the therapeutic protein of (i) via the regulatory sequence of (ii). 8. A cell according to any one of 4 to 7 above, wherein the therapeutic protein (i) is a protein that, upon expression, is secreted by the cell or onto the surface of the cell. 9. The cell according to any one of 4 to 8 above, wherein the therapeutic protein is a protein that, when expressed on the surface of an immune cell, activates the immune cell or suppresses activation of the immune cell. 10. The cell according to any one of 4 to 9 above, wherein the therapeutic protein is an antigen-specific therapeutic agent. 11. The cell described in claim 10, wherein the antigen-specific therapeutic agent is a chimeric antigen receptor (CAR) or a T cell receptor (TCR), and binding of the transmembrane protein to the brain-selective extracellular antigen induces expression of the CAR or TCR. 12. The cell of claim 10, wherein the antigen-specific therapeutic agent is an inhibitory chimeric antigen receptor (iCAR), and binding of the transmembrane protein to the extracellular antigen induces expression of the iCAR. 13. The cell according to claim 10, wherein the antigen-specific therapeutic agent is another binding-triggered transcriptional switch. 14. A cell according to any one of claims 4 to 7, wherein the therapeutic protein (i) is an intracellular protein when expressed. 15. The cell according to any one of 1 to 8 or 10 above, wherein the antigen-specific therapeutic agent is an antibody. 16. The cell according to any one of 1 to 10 above, wherein the therapeutic protein is an inhibitory immunoreceptor. 17. The cell according to any one of 1 to 10 above, wherein the therapeutic protein is a secreted peptide or enzyme. 18. The cell described in 1 to 10 above, wherein the transmembrane protein is an inhibitory chimeric antigen receptor (iCAR), and binding of the brain-selective extracellular antigen inhibits activation of immune cells expressing the iCAR. 19. A cell according to any one of 1 to 18 above, which is an immune cell. 20. A cell according to any one of 1 to 19 above, which is a bone marrow cell or a lymphoid cell. 21. The cell according to claim 20, wherein the lymphocyte cell is a T lymphocyte, a B lymphocyte or a natural killer cell. 22. A cell according to any one of 1 to 18 above, which is not an immune cell. 23. A method of treating a subject for a disease, comprising: A method comprising the step of administering to the subject a cell described in any one of 1 to 22 above. 24. The method according to claim 23, wherein the disease is a disease of the brain and / or central nervous tissue. 25. The method of claim 24, wherein the subject has medulloblastoma, diffuse midline glioma, ependymoma, craniopharyngioma, embryonal tumor, pineoblastoma, brain stem glioma, choroid plexus carcinoma, germ cell tumor, pituitary adenoma, acoustic neuroma, meningioma, oligodendroglioma, hemangioblastoma, CNS lymphoma, or non-GBM astrocytoma. 26. The method of claim 23, wherein the subject has Alzheimer's disease, stroke, brain and spinal cord injury, brain cancer, HIV infection in the brain, ataxia-inducing disorder, amyotrophic lateral sclerosis (ALS), Huntington's disease, a childhood inborn error of genes affecting the brain, Parkinson's disease, or multiple sclerosis. 27. The method according to claim 23, wherein the disease is a cancer originating from a non-brain or non-CNS tissue that has metastasized to the brain.
Claims
1. 1. A composition comprising immune cells for the treatment of diffuse midline glioma, wherein the immune cells are: (a) a recombinant nucleic acid encoding a binding-triggered transcriptional switch comprising a variable domain of an antibody that specifically binds to BCAN; and (b) a nucleic acid comprising: (i) a coding sequence encoding a tandem chimeric antigen receptor (CAR) that recognizes EphA2 and IL-13Rα2; and (ii) a regulatory sequence operably linked to the coding sequence and responsive to activation of the binding-triggered transcriptional switch. wherein the binding-triggered transcriptional switch is one or more polypeptides that, upon binding to the BCAN, undergo proteolytic cleavage to release a gene expression regulator that activates transcription of the tandem CAR.
2. The composition of claim 1 , wherein the immune cell is a T lymphocyte.
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