Improved LAMP constructs containing allergens

Improved LAMP constructs targeting allergens to the lysosomal/endosomal compartment induce a Th1 immune response, addressing the limitations of current treatments by enhancing antibody responses and providing a safer treatment for nut allergies.

JP7742900B2Active Publication Date: 2025-09-22IMMUNOMIC THERAPEUTICS INC
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
JP2024001288
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-05-20
Filing Date
2024-01-09
Publication Date
2025-09-22
Estimated Expiration
2039-05-14

AI Technical Summary

Technical Problem

Current treatments for nut allergies, such as immunotherapy and conventional DNA vaccines, are ineffective due to frequent anaphylactic reactions and low immunogenicity, respectively, and there is a need for improved LAMP constructs that can effectively target allergens to the lysosomal/endosomal compartment to induce a Th1 immune response.

Method used

Novel LAMP constructs comprising specific fragments and/or variants of the LAMP domain that efficiently target allergens to the lysosomal/endosomal compartment, enhancing immune responses by preferentially stimulating helper T cells and inducing a Th1 immune response through interaction with MHC class II molecules.

Benefits of technology

The improved LAMP constructs induce a robust Th1 immune response, characterized by increased production of inflammatory cytokines, and can be used in prime-boost protocols to enhance antibody responses against allergens, providing a safer and more effective treatment for allergic reactions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007742900000014
    Figure 0007742900000014
  • Figure 0007742900000015
    Figure 0007742900000015
  • Figure 0007742900000016
    Figure 0007742900000016
Patent Text Reader

Abstract

To provide improved LAMP constructs comprising allergens.SOLUTION: The present invention provides improved LAMP constructs comprising specific fragments of the LAMP lumenal domain to deliver allergens to immune cells for enhanced processing. These LAMP constructs can be used for treatment of disease, particularly allergic reactions and / or allergies. The improved LAMP constructs allow presentation of properly configured three-dimensional epitopes for production of an immune response when administered to a subject. The improved LAMP constructs can be multivalent molecules, and / or can be provided as part of a multivalent vaccine containing two or more LAMP constructs.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] FIELD OF THE INVENTION The present invention relates to improved LAMP constructs containing allergens and their use in treating subjects suffering from allergic reactions and / or allergies. More specifically, the present invention relates to nucleic acids for use as DNA vaccines and methods for using them to treat subjects suffering from or susceptible to allergic reactions. Prime-boost protocols utilizing the improved LAMP constructs described herein are also described. [Background technology]

[0002] Discussion of related technologies In the following description, certain articles and methods are described for background and introductory purposes. Nothing contained herein should be construed as an "admission" of prior art. Applicant expressly reserves the right, where appropriate, to demonstrate that the articles and methods referenced herein do not constitute prior art under applicable statutory provisions.

[0003] Allergic reactions occur when the immune system reacts to foreign substances called allergens to render them harmless. For example, food allergies are a significant public health issue due to the high risk of anaphylaxis, a potentially fatal systemic shock (Sampson et al., (1992) N. Engl. J. Med. 327:380-384; Bock et al., (2001) J. Allergy Clin. Immunol. 107:191-193). Young children are at higher risk of developing food allergies than the general public (Lack et al., (2003) N. Engl. J. Med. 348:977-985; Zimmerman et al., (1989) J. Allergy Clin. Immunol. 83:764-770; Green et al., (2007) Pediatrics 120:1304-1310). During the first three years of life, 6-8% of children experience an allergic reaction caused by food (Bock (1987) Allergy 45:587-596; Burks and Sampson (1993) Curr. Prob. Pediatr. 23:230-252; Jansen et al. (1994) J. Allergy Clin. Immunol. 93;2:446-456; Sampson (1999) J. Allergy Clin. Immunol. 103;5:717-728). Nut allergies, such as peanut and tree nut allergies, affect up to 1-2% of the population, and this incidence of food allergies is increasing in the general population and appears to disproportionately affect those of Asian descent.

[0004] Anaphylaxis, triggered by exposure to allergens such as tree nuts or peanuts, results in a severe immune response characterized by excessive histamine production and accounts for half of all anaphylactic emergency department visits in the United States annually. Extreme reactions to tree nuts, for example, result in more than 30,000 cases of anaphylaxis and 100-200 deaths annually in the United States. Traces of tree nuts are commonly found in thousands of unlabeled, individually branded packaged food products. More than 1.5 million Americans suffer from nut allergy symptoms, which often persist for life. Many experience adverse reactions after even the smallest exposures.

[0005] There are no treatments to alleviate nut allergy symptoms. Over the past decade, the prevalence of nut allergies has doubled, affecting 2% of adult Americans (Sampson (1999) J. Allergy Clin. Immunol. 103;5:717-728; Sicherer et al. (2003) J. Allergy Clin. Immunol. 112:1203-1207). While many other allergic symptoms, such as hay fever and ragweed pollen, are not fatal, for nut-allergic individuals, ingesting as little as 1 / 1000th of a nut can induce anaphylactic shock and death (Taylor et al. (2002) J. Allergy Clin. Immunol. 109(1):24-30; Wensing et al. (2002) J. Allergy Clin. Immunol. 110(6):915-920). In the event that accidental ingestion triggers anaphylaxis, injections of epinephrine are used to open the airways (Stark and Sullivan (1986) J. Allergy Clin. Immunol. 78:76-83; Sampson (2003) Pediatrics 111(6):1601-1608).

[0006] Food allergy occurs when an individual fails to acquire oral immune tolerance and instead becomes sensitized to subsequent allergen exposure (Till et al. (2004) J. Allergy Clin. Immunol. 113(6):1025-1034). In allergic patients, allergens preferentially activate type 2 helper CD4+ T lymphocytes (Th2), which produce the pro-allergic cytokines interleukins IL-4, IL-5, and IL-13, which help orchestrate the inflammation underlying most allergic symptoms (Woodfolk (2007) J. Allergy Clin. Immunol. 118(2):260-294). IL-4 directs antibody-producing B cells to secrete allergen-specific immunoglobulin (Ig) E (Del Prete et al., (1988) J. Immunol. 140:4193-4198; Swain et al., (1990) J. Immunol. 145:3796-3806). Unlike neutralizing IgG, IgE binds to its high-affinity receptor Fc-εR1 expressed by mast cells and eosinophils (Blank et al., (1989) Nature 337:187-190; Benhamou et al., (1990) J. Immunol. 144:3071-3077), sensitizing these cells. Upon subsequent exposure, IgE binds to the allergen in question, cross-links it, and signals mast cells to degranulate and release volatile chemicals that trigger an allergic response.

[0007] In addition to food allergies, other environmental agents can also produce such allergic reactions in individuals, including but not limited to pollen, dog dander, cat saliva, or house dust mites.

[0008] Immunotherapy, the administration of increasing doses of allergen to induce tolerance, is a standard treatment for allergic diseases but has not been approved for the treatment of nut allergy due to frequent anaphylactic reactions (Nelson et al., (1997) J. Allergy Clin. Immunol 99;6:744-751; Oppenheimer et al., (1992) J. Allergy Clin. Immunol 90:256-262). Additionally, the usefulness of immunotherapy is limited by the length of treatment, which requires weekly or biweekly injections for up to 36 months, resulting in varying degrees of success and compliance (Bousquet et al., (1998) J. Allergy Clin. Immunol 102:558-562; Rank and Li (2007) Mayo Clin. Proc. 82(9):1119-1123; Ciprandi et al., (2007) Allergy Asthma Proc. 28:40-43).

[0009] DNA vaccines have been proposed as a treatment for allergic diseases (Raz et al., 1996; Hartl et al., 2004; Hsu et al., 1996; Crameri 2007; Weiss et al., 2006). The underlying rationale is that allergen proteins encoded by DNA vaccines preferentially activate allergen-specific Th1 cell responses, involving interferon production by APCs, natural killer (NK) cells, and T cells, rather than characteristic Th2-type responses, such as secretion of IL-4, IL-5, and IL-13, formation of IgE by B lymphocytes, and maturation and recruitment of eosinophils in late-stage reactions. However, the mechanisms underlying the differential induction of Th1 and Th2 T cell phenotypes likely involve a number of factors, including the unique properties of the bacterial DNA in the vaccine preparation, such as unmethylated and CpG DNA residues, the cytokine milieu induced by innate immunity, and the cellular transport properties of the allergen (Chen et al., 2001; Kaech et al., 2002).

[0010] DNA vaccines are promising new candidates for the development of both prophylactic and therapeutic vaccines. They have been proven safe, and the lack of an immune response to the vector backbone may be a crucial advantage if repeated vaccination cycles are required to achieve clinical benefit. However, one recognized drawback of conventional DNA vaccines is their low immunogenicity in humans. A key limiting step in the immunogenicity of epitope-based DNA vaccines may be epitope access to the MHC II presentation pathway to T cells, which is likely a stochastic process in the case of vaccines without targeting technologies.

[0011] U.S. Patent No. 5,633,234 describes a chimeric protein containing an antigenic domain of a modified influenza hemagglutinin (HA) and a cytoplasmic endosomal / lysosomal targeting signal that effectively targets the antigen to that compartment. The antigenic domain was processed, and peptides derived therefrom were presented on the cell surface in association with major histocompatibility (MHC) class II molecules. The cytoplasmic tail of LAMP-1 was used to form the endosomal / lysosomal targeting domain of the chimeric protein.

[0012] U.S. Patent No. 8,318,173 expands on these initial observations by describing chimeric proteins (and the corresponding DNA encoding these proteins) containing the HIV-1 Gag protein inserted between the entire luminal and transmembrane domains of LAMP-1. This construct is introduced into dendritic cells, which then reportedly target the MHC II pathway.

[0013] This approach has proven useful in increasing cellular and humoral responses to several viral antigens, including human papillomavirus E7, dengue virus membrane protein, HIV-1 gp160 membrane protein, HIV-1 p55 Gag, West Nile membrane protein, hepatitis C virus NS3 protein, and cytomegalovirus pp65 (see, e.g., Bonini et al., J. Immunol. 166:5250-5257, 2001). The enhanced immune response may be due to colocalization of LAMPs and MHC II, as well as more efficient processing and delivery of antigenic peptides. Additionally, LAMP targeting has been reported to result in the presentation of an increased number of immunogenic epitopes, inducing a qualitatively broader immune response compared to non-targeted antigens. For example, Fernandes et al., 2000, Eur. J. Immunol. 30(8):2333-43, demonstrated an increase in the number of peptides presented by LAMP-delivered OVA antigen encoded in a vaccinia vector. Of the 12 peptides generated from exogenously supplied OVA, 9 were presented by the OVA / LAMP chimera compared with only 2 by the LAMP-free construct.

[0014] It has been determined that the cytoplasmic domain of LAMPs (together with the signal sequence and transmembrane domain) is necessary, but not always sufficient, for endosomal / lysosomal transport of all antigens. Instead, the entire luminal domain of LAMPs has also been shown to be required for transport of proteins into the lysosomal vesicle pathway.

[0015] However, even when the complete luminal domain and transmembrane / cytoplasmic tail of a LAMP are present ("complete LAMP construct"), it has increasingly been found that the effectiveness of a particular antigen in generating an immune response is highly dependent on the specific sequences used in these constructs. Indeed, different antigenic fragments of the same protein have been found not to elicit the same immune response when inserted into a complete LAMP construct. Sometimes, antigenic fragments generate an immune response, while in other cases, they do not. These observations complicate the ability to predict in advance which specific antigenic sequences from a protein of interest will generate an immune response in a complete LAMP construct.

[0016] Furthermore, in generating complete LAMP constructs, it has been repeatedly observed that the entire luminal domain is required for proper expression and processing of antigens. For example, in Godinho et al., PLoS ONE 9(6):9(6):e99887.doi:10.1371 / journal.pone.0099887, the authors reported that the complete and intact luminal domain was the minimum region required to target the antigen to lysosomes, and that fragments of the luminal domain were not functional. See page 6 of this paper.

[0017] Specifically, Godinho et al. showed that completely removing the first luminal domain and some of the second luminal domain (i.e., T1-Lum / gag construct) reduced both protein expression and antibody responses. Similarly, removing 25% of the first luminal domain but leaving the second luminal domain intact (i.e., T2-lum / gag) relatively increased both protein expression and antibody responses, but still below those obtained with the complete LAMP construct. The authors also confirmed that the ability to generate an immune response depends on the specific antigen and epitope used in these complete LAMP constructs. For example, in the second column on page 9, the authors state, "Accordingly, previous studies have demonstrated that DNA vaccines producing Gag secreted as VLPs or in a soluble form induce different levels of T and B cell activation, which differ from the responses induced by cytoplasmic Gag." Furthermore, the insertion of antigenic sequences between the entire luminal domain of a LAMP and the entire transmembrane / cytoplasmic domain of a LAMP, as described in the literature, may result in large polynucleotide sequences that cannot be produced on a commercial scale due to excessive costs or may be impractical from a scientific point of view. Therefore, there is a need to design new and improved LAMP constructs that can be used, for example, as vaccines to effectively treat allergic reactions and / or allergies, and once improved, these new LAMP constructs can be used to generate antibodies against the allergens described herein. [Prior art documents] [Patent documents]

[0018] [Patent Document 1] U.S. Patent No. 5,633,234 [Patent Document 2] U.S. Patent No. 8,318,173 [Non-patent literature]

[0019] [Non-Patent Document 1] Sampson et al. (1992) N. Engl. J. Med. 327:380-384 [Non-patent document 2] Bock et al. (2001) J. Allergy Clin. Immunol. 107:191-193 [Non-patent document 3] Lack et al. (2003) N. Engl. J. Med 348:977-985

Non-licensed Document 4

Non-licensed Document 5

Non-licensed Document 6

Non-licensed Document 7

Non-licensed literature 9

Non-licensed literature 10

Non-licensed Document 11

Non-licensed Document 12

Non-licensed Document 13

Non-licensed Document 14

Non-licensed Document 15

Non-licensed Document 16

Non-licensed Document 17

Non-licensed Document 18

Non-licensed Document 19

Non-licensed Document 20

Non-licensed Document 21

Non-licensed Document 22

Non-licensed Document 23

Non-licensed Document 24

Non-licensed Document 25

Non-licensed Document 26

Non-licensed Document 27

Non-licensed Document 28

[0020] Summary of the Invention This Summary is provided to introduce selected concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter. Other features, details, utilities, and advantages of the claimed subject matter will become apparent from the following Detailed Description, including aspects illustrated in the accompanying drawings and defined in the appended claims.

[0021] The object of the present invention is to provide novel constructs ("improved LAMP constructs") comprising specific fragments and / or variants of the LAMP domain detailed herein that effectively present allergens to the immune system to generate an enhanced immune response. These improved LAMP constructs effectively target allergens to the lysosomal / endosomal compartment where they are processed and presented to major histocompatibility complex (MHC) class II molecules, such that helper T cells are preferentially stimulated and / or antibodies are generated.

[0022] The improved LAMP constructs and methods described herein can induce an immune response in a subject. The immune response can be directed against an epitope of allergen X (SEQ ID NO: Y) in the improved LAMP construct (e.g., a vaccine). The vaccine primes the subject's immune system to detect and destroy anything in the subject containing allergen X (SEQ ID NO: Y) in the vaccine. The improved LAMP constructs and methods described herein can induce a Th1 immune response in a subject. A Th1 immune response can include the secretion of inflammatory cytokines (e.g., IFNγ, TNFα) by a subset of immune cells (e.g., allergen-specific T cells).

[0023] In some cases, allergen X (SEQ ID NO: Y) used in the improved LAMP constructs and methods described herein can be recognized by a subject's immune system to induce a Th1 immune response and release type I cytokines. A Th1 response can be initiated by the interaction between an epitope and a T cell, more specifically, a major histocompatibility complex (MHC) expressed by a T cell. For example, high-affinity binding of an epitope to an MHC receptor can stimulate a Th1 response. The MHC receptor can be at least one of multiple types of MHC receptors. The MHC receptor engaged by a T cell can vary among individuals in a population.

[0024] In some cases, the immune response is a Type 1 immune response. In some cases, the immune response is characterized by a ratio of Type I cytokine production to Type II cytokine production that is greater than 1. In some cases, the immune response is characterized by a ratio of Type I cytokine production to Type II cytokine production that is less than 1. In some cases, the immune response is characterized by a ratio of IFNγ production to IL-10 production that is greater than 1. In some cases, the immune response is characterized by a ratio of IFNγ production to IL-10 production that is less than 1.

[0025] Prime-boost protocols are also contemplated. For example, the present invention further provides a method for generating an immune response to allergen X (SEQ ID NO: Y) in a subject, comprising priming the subject with an improved LAMP construct comprising allergen X (SEQ ID NO: Y) as described herein, followed by at least one boosting of the subject with the allergen or a related allergen (e.g., a second allergen derived from the same or a very similar protein sequence). A mixture of allergens may be used in either or both of the priming and boosting steps. The use of an improved LAMP construct for the priming step and the subsequent allergen X (SEQ ID NO: Y) boost step has been shown to result in significantly higher titers, demonstrating the power of LAMP in enhancing antibody responses.

[0026] The present invention further provides a nucleic acid molecule encoding any of the improved LAMP constructs comprising allergen X (SEQ ID NO: Y) described herein. The improved LAMP construct may comprise a nucleic acid in which the nucleic acid molecule is operably linked to an expression control sequence. In a preferred embodiment, the improved LAMP construct is a vaccine vector suitable for vaccinating patients. In another embodiment, the present invention provides a delivery vehicle comprising the improved LAMP construct to facilitate the introduction of an allergen-encoding nucleic acid molecule into cells. The delivery vehicle may be lipid-based (e.g., a liposome formulation), viral-based (e.g., comprising a viral protein encapsulating the nucleic acid molecule), or cell-based.

[0027] In a preferred embodiment, the present invention provides an injectable composition for eliciting an immune response (e.g., antibody production) to an allergen in a mammal, the injectable composition comprising an improved LAMP construct comprising an allergen X (SEQ ID NO: Y) of interest. In a preferred embodiment, the vaccine generates a Th1 response preferentially over a Th2 response. The improved LAMP construct comprises at least one epitope of allergen X (SEQ ID NO: Y) as described herein.

[0028] The present invention also provides cells comprising any of the improved LAMP constructs described herein. In one embodiment, the cells are antigen-presenting cells. The antigen-presenting cells can be professional antigen-presenting cells (e.g., dendritic cells, macrophages, B cells, etc.) or engineered antigen-presenting cells (e.g., non-professional antigen-presenting cells engineered to express molecules required for antigen presentation, such as MHC class II molecules). The molecules required for antigen presentation can be derived from other cells, such as naturally occurring cells, or can themselves be engineered (e.g., mutated or modified to express desired properties, such as higher or lower affinity for allergenic epitopes). In one embodiment, the antigen-presenting cells do not express any costimulatory signals.

[0029] The present invention further provides a kit comprising a plurality of cells containing any of the improved LAMP constructs described herein, wherein at least two of the cells express different MHC class II molecules, and each cell contains the same LAMP construct. In one embodiment, a kit is provided comprising an improved LAMP construct and cells for receiving a vector.

[0030] The present invention also provides a transgenic animal comprising at least one of the cells described herein and / or at least one of the improved LAMP constructs.The present invention also provides a transgenic animal comprising at least one of the cells described herein.

[0031] The present invention further provides a method for generating an immune response to allergen X (SEQ ID NO: Y) in an animal (e.g., a human or non-human vertebrate), comprising administering to the animal the cells described above, wherein the cells express or can be induced to express the improved LAMP construct in the animal. In one embodiment, the cells comprise MHC class II molecules that are compatible with MHC proteins of the animal, such that the animal does not generate an immune response to MHC class II molecules. In a preferred embodiment, the animal is a human.

[0032] In a further aspect, the present invention provides a method for inducing an immune response to allergen X (SEQ ID NO: Y), comprising administering any of the improved LAMP constructs described herein to an animal, such as a human or non-human vertebrate. Preferably, the improved LAMP construct is infectious to animal cells. For example, the improved LAMP construct can be a viral vector, such as a vaccinia-improved LAMP construct.

[0033] For example, the present invention further provides a method for generating an immune response to allergen X (SEQ ID NO: Y) in an animal, comprising priming the animal with an improved LAMP construct comprising allergen X (SEQ ID NO: Y) as described herein, followed by boosting the animal at least once. The use of an improved LAMP construct for the prime and subsequent boost steps of allergen X (SEQ ID NO: Y) has been shown to result in significantly higher titers, demonstrating the power of LAMP in enhancing antibody responses.

[0034] In a further embodiment, cells are obtained from a patient, an improved LAMP construct described herein is introduced into the cells, and the cells or progeny of the cells are reintroduced into the patient. In one embodiment, the cells are stem cells that can differentiate into antigen-presenting cells. Treatment of human patients and veterinary uses are specifically contemplated.

[0035] Specifically, by combining the presentation of an allergen of interest with LAMP, the allergen is then efficiently transported to the cytoplasmic endosomal / lysosomal compartment where it can be processed and peptides derived therefrom are presented on the cell surface in the context of major histocompatibility (MHC) class II molecules. In certain embodiments, for example, the following are provided: (Item 1) Improved LAMP constructs, comprising: a. Cysteine-conserved fragment of the LAMP protein; and b. At least one allergen X (SEQ ID NO: Y) as set forth in Table 1 / Figure 14 Improved LAMP constructs, including: (Item 2) a. allergen X (SEQ ID NO: Y) is located N-terminal to the cysteine ​​conserved fragment; b. Allergen X (SEQ ID NO: Y) is located at the C-terminus of a single cysteine ​​conserved fragment; or c. The improved LAMP construct of item 1, wherein allergen X (SEQ ID NO: Y) is located between two cysteine-conserved fragments. (Item 3) 14. The improved LAMP construct of either item 1 or item 2, comprising at least one allergen X (SEQ ID NO: Y) of Table 1 / Figure 14, preferably constructed as shown in ILC-1, ILC-2, ILC-3, ILC-4, ILC-5 or ILC-6. (Item 4) 4. The improved LAMP construct according to item 3, wherein each allergen X (sequence number Y) is separated by a linker. (Item 5) 5. The improved LAMP construct according to item 4, wherein the linker is selected from the amino acid sequence GPGPG or PMGLP. (Item 6) The improved LAMP construct of any of the preceding items, comprising more than one cysteine-conserved fragment. (Item 7) 7. The improved LAMP construct according to any one of items 1 to 6, wherein the cysteine-conserved fragment comprises a homologous domain of a LAMP protein. (Item 8) 8. The improved LAMP construct according to any one of items 1 to 7, further comprising a transmembrane domain of a LAMP protein. (Item 9) 9. The improved LAMP construct according to any one of items 1 to 8, further comprising a signal sequence. (Item 10) 10. The improved LAMP construct according to item 9, wherein the signal sequence is derived from a LAMP protein. (Item 11) 11. The improved LAMP construct according to any one of items 1 to 10, wherein the LAMP protein is selected from LAMP-1, LAMP2, LAMP-3, LIMP2, Macrosailin, Endolyn, LAMP5 or LIMBIC. (Item 12) 12. The improved LAMP construct according to item 11, wherein the LAMP protein is selected from any one of SEQ ID NOs: 1 to 250, and / or the allergen X is selected from any one of SEQ ID NOs: Y. (Item 13) 13. The improved LAMP construct of item 12, wherein the LAMP protein is at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, 96%, 97%, 98% or 99% identical to SEQ ID NOs: 1-113, and / or the allergen X is at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, 96%, 97%, 98% or 99% identical to SEQ ID NO: Y. (Item 14) A polynucleotide encoding the improved LAMP construct according to any one of items 1 to 13. (Item 15) A host cell comprising the polynucleotide of item 14. (Item 16) A composition comprising the improved LAMP construct according to any one of items 1 to 13, the polynucleotide according to item 14, or the host cell according to item 15. (Item 17) 17. A method for treating an allergic reaction in a subject in need thereof, comprising administering to the subject the improved LAMP construct of any one of items 1 to 13, the polynucleotide of item 14, the host cell of item 15, or the composition of item 16 in an amount sufficient to alleviate or treat the disease or disorder. (Item 18) Item 18. The method according to item 17, comprising a priming step and at least one boosting step. (Item 19) Item 19. The method according to Item 18, wherein the improved LAMP construct according to any one of Items 1 to 13, the polynucleotide according to Item 14, the host cell according to Item 15, or the composition according to Item 16 is used in the priming step. (Item 20) 20. The method according to any one of items 18 or 19, wherein the boosting step comprises administering allergen X, an improved LAMP construct, a polypeptide encoded by an improved LAMP construct, or cells containing an improved LAMP construct. (Item 21) 21. The method according to any one of items 17 to 20, wherein the allergen X used for priming is the same as that used for boosting. (Item 22) 22. The method according to any one of items 17 to 21, wherein the allergen X used for priming is derived from the same protein as the second allergen X used for boosting. (Item 23) 23. The method according to any one of items 17 to 22, wherein more than one allergen X is used for priming and / or boosting.

[0036] These and other aspects, objects and features are described in more detail below. [Brief explanation of the drawings]

[0037] The objects and features of the present invention may be better understood with reference to the following detailed description and accompanying drawings.

[0038] [Figure 1] FIG. 1 shows a general diagram of the different types of improved LAMP constructs (identified as ILC-1, ILC-2, ILC-3, ILC-4, ILC-5, and ILC-6) that can be used as described herein.

[0039] [Figure 2A-1] Figure 2B shows the domains of the LAMP proteins as defined herein, and Figure 2A is a diagram defining the specific amino acid boundaries of these domains for human LAMP-1 (SEQ ID NO: 1), human LAMP-2 (SEQ ID NO: 2), human LAMP-3 (SEQ ID NO: 3), human LIMP-2 (SEQ ID NO: 4), human Endolyn (SEQ ID NO: 5), human Macrosailin (SEQ ID NO: 80), human LAMP-5 (SEQ ID NO: 93), and human LIMBIC (SEQ ID NO: 67). As described herein, the LAMP luminal domain, homology domain, transmembrane domain, cytoplasmic tail, and signal sequence can be used to generate improved LAMP constructs ILC-1, ILC-2, ILC-3, ILC-4, ILC-5, and ILC-6. [Figure 2A-2] Figure 2B shows the domains of the LAMP proteins as defined herein, and Figure 2A is a diagram defining the specific amino acid boundaries of these domains for human LAMP-1 (SEQ ID NO: 1), human LAMP-2 (SEQ ID NO: 2), human LAMP-3 (SEQ ID NO: 3), human LIMP-2 (SEQ ID NO: 4), human Endolyn (SEQ ID NO: 5), human Macrosailin (SEQ ID NO: 80), human LAMP-5 (SEQ ID NO: 93), and human LIMBIC (SEQ ID NO: 67). As described herein, the LAMP luminal domain, homology domain, transmembrane domain, cytoplasmic tail, and signal sequence can be used to generate improved LAMP constructs ILC-1, ILC-2, ILC-3, ILC-4, ILC-5, and ILC-6. [Figure 2B]Figure 2B shows the domains of the LAMP proteins as defined herein, and Figure 2A is a diagram defining the specific amino acid boundaries of these domains for human LAMP-1 (SEQ ID NO: 1), human LAMP-2 (SEQ ID NO: 2), human LAMP-3 (SEQ ID NO: 3), human LIMP-2 (SEQ ID NO: 4), human Endolyn (SEQ ID NO: 5), human Macrosailin (SEQ ID NO: 80), human LAMP-5 (SEQ ID NO: 93), and human LIMBIC (SEQ ID NO: 67). As described herein, the LAMP luminal domain, homology domain, transmembrane domain, cytoplasmic tail, and signal sequence can be used to generate improved LAMP constructs ILC-1, ILC-2, ILC-3, ILC-4, ILC-5, and ILC-6.

[0040] [Figure 3-1] Figure 3 provides an alignment of LAMP-1 proteins found in other species compared to human LAMP-1 (SEQ ID NO: 1). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-1 in Figures 2 and 3 with the alignment shown in Figure 3. [Figure 3-2] Figure 3 provides an alignment of LAMP-1 proteins found in other species compared to human LAMP-1 (SEQ ID NO: 1). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-1 in Figures 2 and 3 with the alignment shown in Figure 3. [Figure 3-3] Figure 3 provides an alignment of LAMP-1 proteins found in other species compared to human LAMP-1 (SEQ ID NO: 1). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-1 in Figures 2 and 3 with the alignment shown in Figure 3. [Figure 3-4] Figure 3 provides an alignment of LAMP-1 proteins found in other species compared to human LAMP-1 (SEQ ID NO: 1). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-1 in Figures 2 and 3 with the alignment shown in Figure 3. [Figure 3-5] Figure 3 provides an alignment of LAMP-1 proteins found in other species compared to human LAMP-1 (SEQ ID NO: 1). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-1 in Figures 2 and 3 with the alignment shown in Figure 3.

[0041] [Figure 4-1] Figure 4 provides an alignment of LAMP-2 proteins found in other species compared to human LAMP-2 (SEQ ID NO: 2). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-2 in Figures 2 and 4 with the alignment shown in Figure 4. [Figure 4-2] Figure 4 provides an alignment of LAMP-2 proteins found in other species compared to human LAMP-2 (SEQ ID NO: 2). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-2 in Figures 2 and 4 with the alignment shown in Figure 4. [Figure 4-3]Figure 4 provides an alignment of LAMP-2 proteins found in other species compared to human LAMP-2 (SEQ ID NO: 2). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-2 in Figures 2 and 4 with the alignment shown in Figure 4. [Figure 4-4] Figure 4 provides an alignment of LAMP-2 proteins found in other species compared to human LAMP-2 (SEQ ID NO: 2). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-2 in Figures 2 and 4 with the alignment shown in Figure 4. [Figure 4-5] Figure 4 provides an alignment of LAMP-2 proteins found in other species compared to human LAMP-2 (SEQ ID NO: 2). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-2 in Figures 2 and 4 with the alignment shown in Figure 4. [Figure 4-6] Figure 4 provides an alignment of LAMP-2 proteins found in other species compared to human LAMP-2 (SEQ ID NO: 2). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-2 in Figures 2 and 4 with the alignment shown in Figure 4.

[0042] [Figure 5-1]Figure 5 provides an alignment of LAMP-3 proteins found in other species compared to human LAMP-3 (SEQ ID NO: 3). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-3 in Figures 2 and 5 with the alignment shown in Figure 5. [Figure 5-2] Figure 5 provides an alignment of LAMP-3 proteins found in other species compared to human LAMP-3 (SEQ ID NO: 3). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-3 in Figures 2 and 5 with the alignment shown in Figure 5. [Figure 5-3] Figure 5 provides an alignment of LAMP-3 proteins found in other species compared to human LAMP-3 (SEQ ID NO: 3). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-3 in Figures 2 and 5 with the alignment shown in Figure 5.

[0043] [Figure 6-1] Figure 6 provides an alignment of LIMP-2 proteins found in other species compared to human LIMP-2 (SEQ ID NO: 4). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMP-2 in Figures 2 and 6 with the alignment shown in Figure 6. [Figure 6-2]Figure 6 provides an alignment of LIMP-2 proteins found in other species compared to human LIMP-2 (SEQ ID NO: 4). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMP-2 in Figures 2 and 6 with the alignment shown in Figure 6. [Figure 6-3] Figure 6 provides an alignment of LIMP-2 proteins found in other species compared to human LIMP-2 (SEQ ID NO: 4). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMP-2 in Figures 2 and 6 with the alignment shown in Figure 6. [Figure 6-4] Figure 6 provides an alignment of LIMP-2 proteins found in other species compared to human LIMP-2 (SEQ ID NO: 4). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMP-2 in Figures 2 and 6 with the alignment shown in Figure 6.

[0044] [Figure 7-1] Figure 7 provides an alignment of LIMBIC proteins found in other species compared to human LIMBIC (SEQ ID NO: 67). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMBIC in Figures 2 and 7 with the alignment shown in Figure 7. [Figure 7-2]Figure 7 provides an alignment of LIMBIC proteins found in other species compared to human LIMBIC (SEQ ID NO: 67). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMBIC in Figures 2 and 7 with the alignment shown in Figure 7. [Figure 7-3] Figure 7 provides an alignment of LIMBIC proteins found in other species compared to human LIMBIC (SEQ ID NO: 67). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMBIC in Figures 2 and 7 with the alignment shown in Figure 7. [Figure 7-4] Figure 7 provides an alignment of LIMBIC proteins found in other species compared to human LIMBIC (SEQ ID NO: 67). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LIMBIC in Figures 2 and 7 with the alignment shown in Figure 7.

[0045] [Figure 8-1] Figure 8 provides an alignment of Endolyn proteins found in other species compared to human Endolyn (SEQ ID NO: 5). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human Endolyn in Figures 2 and 8 with the alignment shown in Figure 8. [Figure 8-2]Figure 8 provides an alignment of Endolyn proteins found in other species compared to human Endolyn (SEQ ID NO: 5). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human Endolyn in Figures 2 and 8 with the alignment shown in Figure 8.

[0046] [Figure 9-1] Figure 9 provides an alignment of Macrosailin proteins found in other species compared to human Macrosailin (SEQ ID NO: 80). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and can be readily identified by comparing the domains identified for human Macrosailin in Figures 2 and 9 with the alignment shown in Figure 9. [Figure 9-2] Figure 9 provides an alignment of Macrosailin proteins found in other species compared to human Macrosailin (SEQ ID NO: 80). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and can be readily identified by comparing the domains identified for human Macrosailin in Figures 2 and 9 with the alignment shown in Figure 9. [Figure 9-3] Figure 9 provides an alignment of Macrosailin proteins found in other species compared to human Macrosailin (SEQ ID NO: 80). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and can be readily identified by comparing the domains identified for human Macrosailin in Figures 2 and 9 with the alignment shown in Figure 9.

[0047] [Figure 10-1]Figure 10 provides an alignment of LAMP-5 proteins found in other species compared to human LAMP-5 (SEQ ID NO: 93). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-5 in Figures 2 and 10 with the alignment shown in Figure 10. [Figure 10-2] Figure 10 provides an alignment of LAMP-5 proteins found in other species compared to human LAMP-5 (SEQ ID NO: 93). The equivalent domains of these other species can be used to generate the improved LAMP constructs described herein and are readily identifiable by comparing the domains identified for human LAMP-5 in Figures 2 and 10 with the alignment shown in Figure 10.

[0048] [Figure 11] Figure 11 shows the results obtained when mice were immunized with HVEM-LAMP, HVEM, or LAMP on days 0, 7, and 14. On day 28, mice were bled and serum samples were isolated. HVEM-specific IgG was examined by ELISA. Data represent the geometric mean ± geometric SD of antibody titers, n=6, **p-value<0.01.

[0049] [Figure 12] Figure 12 shows the results obtained when mice were immunized with HVEM-LAMP, HVEM, or LAMP on days 0, 7, and 14. On day 35, mice were boosted with 5 μg of HVEM protein in the presence of alum adjuvant. On day 49, mice were bled and serum samples were isolated. HVEM-specific IgG was examined by ELISA. Data represent the geometric mean ± geometric SD of antibody titers, n=6, ***p-value<0.001, ****p-value<0.0001.

[0050] [Figure 13-1] FIG. 13 shows that LAMP alters the binding affinity of epitopes in CRD3 / 4 of HVEM. [Figure 13-2] FIG. 13 shows that LAMP alters the binding affinity of epitopes in CRD3 / 4 of HVEM.

[0051] [Figure 14-1] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-2] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-3] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-4] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-5] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-6] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-7] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-8] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-9] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-10] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-11] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-12] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-13] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-14] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-15] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-16] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14. [Figure 14-17] FIG. 14 is a schematic diagram of the various constructs described herein, as provided as Table 1 / FIG. 14.

[0052] [Figure 15A] Figures 15A and 15B are Western blots of the allergens Amb a 1, Bet v 1, and Fel d 4 expressed from different LAMP constructs, and Figure 15C is a Western blot of the allergens Cry J 1 / Cry J 2. Protein expression of each allergen was demonstrated using anti-LAMP antibodies (Figures 15A and 15C). GAPDH detection was used to demonstrate equal loading between lanes (Figure 15B). [Figure 15B] Figures 15A and 15B are Western blots of the allergens Amb a 1, Bet v 1, and Fel d 4 expressed from different LAMP constructs, and Figure 15C is a Western blot of the allergens Cry J 1 / Cry J 2. Protein expression of each allergen was demonstrated using anti-LAMP antibodies (Figures 15A and 15C). GAPDH detection was used to demonstrate equal loading between lanes (Figure 15B). [Figure 15C]Figures 15A and 15B are Western blots of the allergens Amb a 1, Bet v 1, and Fel d 4 expressed from different LAMP constructs, and Figure 15C is a Western blot of the allergens Cry J 1 / Cry J 2. Protein expression of each allergen was demonstrated using anti-LAMP antibodies (Figures 15A and 15C). GAPDH detection was used to demonstrate equal loading between lanes (Figure 15B).

[0053] [Figure 16] FIG. 16 shows the results of Amb a 1-specific IgG ELISA.

[0054] [Figure 17] Figure 17 shows the results of Bet v 1 specific IgG ELISA.

[0055] [Figure 18] Figure 18 shows the results of Fel d 4-specific IgG ELISA.

[0056] [Figure 19] FIG. 19 shows the results of the Cry J 1-specific IgG ELISA. DETAILED DESCRIPTION OF THE INVENTION

[0057] Detailed Description The present invention provides an improved LAMP construct that can be used to generate vaccines. The improved LAMP construct can be used to modulate or enhance immune responses. In a preferred embodiment, the present invention provides a method for treating patients with allergies and / or allergic reactions by providing an improved LAMP construct that includes one or more of the allergens X (SEQ ID NO: Y) described herein.

[0058] definition The following definitions are provided for specific terms used in the following description.

[0059] As used in this specification and claims, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. For example, the term "a cell" includes a plurality of cells, including mixtures thereof. The term "nucleic acid molecule" includes a plurality of nucleic acid molecules.

[0060] As used herein, the term "comprising" is intended to mean that the improved LAMP constructs and methods include the recited elements but do not exclude other elements. "Consisting essentially of," when used to define improved LAMP constructs and methods, is intended to mean excluding any other elements of essential importance to the combination. Thus, improved LAMP constructs consisting essentially of the elements defined herein do not exclude trace contaminants from isolation and purification methods, as well as pharmaceutically acceptable carriers, such as phosphate-buffered saline, preservatives, etc. "Consisting of" is intended to mean excluding more than trace amounts of other components and substantial method steps for administering the improved LAMP constructs of the present invention. Embodiments defined by each of these transition terms are within the scope of the present invention.

[0061] The term "about" or "approximately" means within an acceptable range of a particular value as determined by one of ordinary skill in the art, which will depend in part on the method of measuring or determining the value, e.g., the limitations of the measurement system. For example, "about" can mean within a range of up to 20%, preferably up to 10%, more preferably up to 5%, and even more preferably up to 1% of a given value. Alternatively, particularly with respect to biological systems or processes, the term can mean within an order of magnitude, preferably within 5-fold, and more preferably within 2-fold of a value. Unless otherwise specified, the term "about" means within an acceptable range of error of a particular value, e.g., ±1-20%, preferably ±1-10%, and more preferably ±1-5%.

[0062] When a range of values ​​is provided, it is understood that each intermediate value between the upper and lower limits of that range, and any other stated or intermediate value within that stated range, is included in the invention. 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. When the stated range includes one or both of the limits, ranges excluding either both of those included limits are also included in the invention.

[0063] As used herein, "lysosomal / endosomal compartment" refers to a membrane-bound acidic vacuole containing LAMP molecules in its membrane, hydrolases that function in antigen processing, and MHC class II molecules for antigen recognition and presentation. This compartment serves as a degradation site for foreign substances internalized from the cell surface by any of a variety of mechanisms, including endocytosis, phagocytosis, and pinocytosis, as well as intracellular materials delivered to the compartment by specialized autolysis (de Duve, Eur. J. Biochem. 137:391, 1983). As used herein and in the claims, the term "endosome" encompasses lysosomes.

[0064] As used herein, "lysosome-associated organelle" refers to any organelle containing a lysosome, including, but not limited to, MIIC, CIIV, melanosome, secretory granule, lytic granule, platelet-dense granule, basophil granule, Virbeck granule, phagolysosome, secretory lysosome, etc. Preferably, such organelles lack the mannose 6-phosphate receptor and contain LAMPs, but may or may not contain MHC class II molecules. For reviews, see, e.g., Blot and Griffiths, Nature Reviews, Molecular Cell Biology, 2002; Dell'Angelica et al., The FASEB Journal 14:1265-1278, 2000.

[0065] As used herein, the terms "polynucleotide" and "nucleic acid molecule" are used interchangeably to refer to polymeric forms of nucleotides of any length. Polynucleotides can contain deoxyribonucleotides, ribonucleotides, and / or their analogs. Nucleotides can have any three-dimensional structure and can perform any function, known or unknown. The term "polynucleotide" includes, for example, single-stranded, double-stranded, and triple-helical molecules, genes or gene fragments, exons, introns, mRNA, tRNA, rRNA, ribozymes, antisense molecules, cDNA, recombinant polynucleotides, branched polynucleotides, aptamers, plasmids, vectors, isolated DNA of any sequence, isolated RNA of any sequence, nucleic acid probes, and primers. Nucleic acid molecules can also include modified nucleic acid molecules (e.g., containing modified bases, sugars, and / or internucleotide linkers).

[0066] As used herein, the term "peptide" refers to a compound of two or more subunit amino acids, amino acid analogs, or peptidomimetics. The subunits may be linked by peptide bonds or other bonds (e.g., esters, ethers, etc.).

[0067] As used herein, the term "amino acid" refers to natural and / or unnatural or synthetic amino acids, including glycine and both D or L optical isomers, as well as amino acid analogs and peptidomimetics. Peptides of three or more amino acids are commonly referred to as oligopeptides when the peptide chain is short. When the peptide chain is long (e.g., more than about 10 amino acids), the peptide is commonly referred to as a polypeptide or protein. The term "protein" encompasses the term "polypeptide," although a "polypeptide" can be less than a full-length protein.

[0068] As used herein, "LAMP polypeptide" refers to the mammalian lysosome-associated membrane proteins human LAMP-1, human LAMP-2, human LAMP-3, human LIMP-2, human Endolyn, human LIMBIC, human LAMP-5, or human Macrosailin described herein, as well as orthologs (e.g., the LAMP proteins shown in Figures 3-10) and allelic variants. As used herein, "expression" refers to the process by which a polynucleotide is transcribed into mRNA and / or translated into a peptide, polypeptide, or protein. If the polynucleotide is derived from genomic DNA, expression may include splicing of the mRNA transcribed from the genomic DNA.

[0069] As used herein, "under transcriptional control" or "operably linked" refers to the expression (e.g., transcription or translation) of a polynucleotide sequence being controlled by the proper juxtaposition of expression control elements and a coding sequence. In one aspect, a DNA sequence is "operably linked" to an expression control sequence if the expression control sequence controls and regulates the transcription of that DNA sequence.

[0070] As used herein, a "coding sequence" is a sequence that is transcribed and translated into a polypeptide when placed under the control of appropriate expression control sequences. The boundaries of the coding sequence are determined by a start codon at the 5' (amino) terminus and a translation stop codon at the 3' (carboxyl) terminus. Coding sequences can include, but are not limited to, prokaryotic sequences, cDNA from eukaryotic mRNA, genomic DNA sequences from eukaryotic (e.g., mammalian) DNA, and even synthetic DNA sequences. Polyadenylation signals and transcription termination sequences are typically located 3' to the coding sequence.

[0071] As used herein, two coding sequences "correspond" to each other if the sequences or their complementary sequences encode the same amino acid sequence.

[0072] As used herein, "signal sequence" refers to an endoplasmic reticulum translocation sequence. This sequence encodes a signal peptide that communicates with the cell and directs a polypeptide linked to an endoplasmic reticulum vesicular compartment (e.g., via chemical bond) to enter an exocytosis / endocytosis organelle and be delivered to a cellular vesicular compartment, the cell surface, or to secrete the polypeptide. This signal sequence may be excised by the cell upon maturation of the protein. Signal sequences can be found associated with a variety of proteins native to prokaryotes and eukaryotes.

[0073] As used herein, "transport" means that the polypeptide encoded by the improved LAMP construct moves or progresses through a cellular organelle or compartment on the way from the rough endoplasmic reticulum to the endosomal / lysosomal compartment or related organelle where antigen processing and binding to MHC II occurs.

[0074] To facilitate cloning into any of the vectors described herein, short stretches of polynucleotides encoding amino acids may be included at the ends of the polynucleotide encoding allergen X. For example, the use of cloning sequences flanking the amino acid sequence of SEQ ID NO: Y, such as polynucleotides encoding "Leu-Glu" and "Glu-Phe" (e.g., "CTCGAG" and "GAATTC"), may be included in the construct design.

[0075] As used herein, the terms "improved LAMP construct," "improved LAMP construct comprising allergen X (SEQ ID NO: Y)," and "improved LAMP construct comprising an allergen of interest" are used interchangeably. Different arrangements of the improved LAMP construct are shown in FIG. 1 as ILC1 to ILC6. The use of "improved LAMP construct" also encompasses both the polynucleotide sequence of the improved LAMP construct (comprising a polynucleotide encoding allergen X (SEQ ID NO: Y)) and the protein encoded by the polynucleotide sequence of the improved LAMP construct.

[0076] As used herein, an "improved LAMP construct delivery vehicle" is defined as any molecule or group of molecules or macromolecule that can transport an improved LAMP construct into a host cell (e.g., a gene or gene fragment, an antisense molecule, a ribozyme, an aptamer, etc.) and that occurs in association with the improved LAMP construct described herein.

[0077] As used herein, "improved LAMP construct delivery" or "improved LAMP construct transfer" refers to the introduction of an improved LAMP construct into a host cell, regardless of the method used for introduction. The introduced improved LAMP construct can be stably or transiently maintained in the host cell. Typically, stable maintenance requires that the introduced improved LAMP construct contains a replication origin compatible with the host cell or is integrated into a replicon of the host cell, such as an extrachromosomal replicon (e.g., a plasmid) or a nuclear or mitochondrial chromosome.

[0078] As used herein, "improved viral LAMP construct" refers to a virus or viral particle containing an improved LAMP construct that is delivered to a host cell either in vivo, ex vivo, or in vitro. Examples of improved viral LAMP constructs include, but are not limited to, adenoviral vectors, adeno-associated viral vectors, retroviral vectors, etc. In embodiments where gene transfer is mediated by an adenoviral vector, the improved LAMP construct comprises an adenoviral genome or a portion thereof and a selected non-adenoviral gene associated with an adenoviral capsid protein.

[0079] As used herein, "adenovirus-mediated gene transfer" or "adenovirus transduction" refers to the process in which an improved LAMP construct is transferred into a host cell by adenovirus entering the cell. Preferably, the improved LAMP construct can replicate and / or integrate and be transcribed within the cell.

[0080] As used herein, an "adenovirus particle" refers to an individual adenovirus virion composed of an outer capsid and an improved LAMP construct, the capsid being further composed of adenovirus envelope proteins. The adenovirus envelope proteins may be modified to contain a fusion polypeptide comprising a polypeptide ligand covalently attached to a viral protein, for example, to target the adenovirus particle to a specific cell and / or tissue type.

[0081] As used herein, the term "administration" or "immunization" or "injection" of an improved LAMP construct refers to transducing, transfecting, microinjecting, electroporating, or firing the improved LAMP construct into cells. In some embodiments, the improved LAMP construct is introduced into target cells by contacting the target cells with delivery cells (e.g., by cell fusion, or by lysing the delivery cells when they are in close proximity to the target cells).

[0082] As used herein, the phrase "prime-boost" refers to priming a T cell response using an improved LAMP construct described herein containing allergen X (SEQ ID NO: Y), followed by boosting the response using a second improved LAMP construct containing allergen X (SEQ ID NO: Y), a DNA vaccine containing allergen X (SEQ ID NO: Y), or a recombinant allergen (or vice versa). These heterologous prime-boost immunizations induce a higher and broader immune response than can be achieved by priming and boosting with the same vector. Priming with an improved LAMP construct containing allergen X (SEQ ID NO: Y) primes memory cells, and the boost step expands the memory response. Preferably, two different agents are used that do not generate responses against each other and therefore do not interfere with each other's activity. A mixture of allergens is specifically contemplated for the prime and / or boost steps. Boosting can be performed one or more times.

[0083] As used herein, "hybridization" refers to a reaction in which one or more polynucleotides react to form a stabilized complex through hydrogen bonding between the bases of the nucleotide residues. Hydrogen bonding can occur through Watson-Crick base pairing, Hoogsteen binding, or any other sequence-specific method. The complex can include two strands forming a duplex structure, three or more strands forming a multistranded complex, a single self-hybridizing strand, or any combination thereof. A hybridization reaction can constitute a step in a more extensive process, such as the initiation of a PCR reaction or the enzymatic cleavage of a polynucleotide by a ribozyme.

[0084] As used herein, a polynucleotide or polynucleotide region (or polypeptide or polypeptide region) having a particular percentage (e.g., at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 99%) of "sequence identity" with another sequence means that the percentage of bases (or amino acids) are the same in a comparison of the two sequences when maximally aligned using software programs routine in the art.

[0085] Two sequences are "substantially homologous" or "substantially similar" if at least about 50%, at least about 60%, at least about 70%, at least about 75%, preferably at least about 80%, and most preferably at least about 90 or 95% of the nucleotides match over a specified length of the DNA sequence. Similarly, two polypeptide sequences are "substantially homologous" or "substantially similar" if at least about 50%, at least about 60%, at least about 66%, at least about 70%, at least about 75%, preferably at least about 80%, and most preferably at least about 90 or 95% of the amino acid residues of the polypeptide match over a specified length of the polypeptide sequence. Substantially homologous sequences can be identified by comparing sequences using standard software available in sequence data banks. Substantially homologous nucleic acid sequences can also be identified, for example, in Southern hybridization experiments under stringent conditions defined for that particular system. Defining appropriate hybridization conditions is within the skill of the art. For example, stringent conditions can be hybridization in 5xSSC and 50% formamide at 42°C and washing in 0.1xSSC and 0.1% sodium dodecyl sulfate at 60°C. Further examples of stringent hybridization conditions include an incubation temperature of about 25°C to about 37°C, a hybridization buffer concentration of about 6xSSC to about 10xSSC, a formamide concentration of about 0% to about 25%, and a wash solution of about 6xSSC. Examples of moderate hybridization conditions include an incubation temperature of about 40°C to about 50°C, a buffer concentration of about 9xSSC to about 2xSSC, a formamide concentration of about 30% to about 50%, and a wash solution of about 5xSSC to about 2xSSC. Examples of high stringency conditions include an incubation temperature of about 55°C to about 68°C, a buffer concentration of about 1xSSC to about 0.1xSSC, a formamide concentration of about 55% to about 75%, and a wash solution of about 1xSSC, 0.1xSSC, or deionized water.Generally, hybridization incubation times range from 5 minutes to 24 hours, with one, two, or more washing steps, and wash incubation times of about 1, 2, or 15 minutes. SSC is 0.15 M NaCl and 15 mM citrate buffer. It is understood that equivalents of SSC using other buffer systems can be used. Similarity can be verified by sequencing, but is preferably also or alternatively verified by function (e.g., ability to transport to endosomal compartments) using assays appropriate for the particular domain in question.

[0086] The terms "percent sequence similarity," "percent sequence identity," and the like generally refer to the degree of identity or correspondence between different nucleotide sequences of nucleic acid molecules or amino acid sequences of polypeptides that may or may not share a common evolutionary origin (see Reeck et al., supra). Sequence identity can be measured using any of a number of publicly available sequence comparison algorithms, e.g., BLAST, FASTA, DNA Strider, GCG (Genetics Computer Group, Program Manual for the GCG Package, Version 7, Madison, Wisconsin).

[0087] To determine the percent identity between two amino acid sequences or two nucleic acid molecules, the sequences are aligned for optimal comparison purposes.The percent identity between two sequences is a function of the number of identical positions shared by the sequences (i.e., percent identity = number of identical positions / total number of positions (e.g., overlapping positions) x 100).In one embodiment, the two sequences are the same or approximately the same length.Whether or not gaps are allowed, the percent identity between two sequences can be determined using techniques similar to those described below.In calculating percent sequence identity, perfect matches are typically counted.

[0088] The determination of percent identity between two sequences can be accomplished using a mathematical algorithm. A non-limiting example of a mathematical algorithm utilized for the comparison of two sequences is the Karlin and Altschul, Proc. Natl. Acad. Sci. USA 1990, 87:2264, revised version by Karlin and Altschul, Proc. Natl. Acad. Sci. USA 1993, 90:5873-5877. Such an algorithm is incorporated into the NBLAST and XBLAST programs of Altschul et al., J. Mol. Biol. 1990;215:403. BLAST nucleotide searches can be performed with the NBLAST program, score = 100, word length = 12, to obtain nucleotide sequences homologous to the sequences of the present invention. BLAST protein searches can be performed with the XBLAST program, score = 50, word length = 3, to obtain amino acid sequences homologous to the protein sequences of the present invention. To obtain gapped alignments for comparison purposes, Gapped BLAST can be utilized as described in Altschul et al., Nucleic Acids Res. 1997, 25:3389. Alternatively, PSI-Blast can be used to perform an iterated search that detects distant relationships between molecules. See Altschul et al. (1997), supra. When utilizing BLAST, Gapped BLAST, and PSI-Blast programs, the default parameters of each program (e.g., XBLAST and NBLAST) can be used. See WorldWideWeb at ncbi.nlm.nih.gov / BLAST / .

[0089] Another non-limiting example of a mathematical algorithm utilized for comparing sequences is the algorithm of Myers and Miller, CABIOS 1988;4:1 1-17. Such an algorithm is incorporated into the ALIGN program (version 2.0), which is part of the GCG sequence alignment software package. When utilizing the ALIGN program to compare amino acid sequences, a PAM120 weight residue table, a gap length penalty of 12, and a gap penalty of 4 can be used.

[0090] In a preferred embodiment, the percent identity between the two amino acid sequences is determined using the Blossum The percent identity between two nucleotide sequences is determined using the algorithm of Needleman and Wunsch (J. Mol. Biol. 1970, 48:444-453) as incorporated into the GAP program of the GCG software package (Accelrys, Burlington, MA, available on the WorldWide Web at accelrys.com), using either a 62 matrix or a PAM250 matrix, gap weights of 16, 14, 12, 10, 8, 6, or 4, and length weights of 1, 2, 3, 4, 5, or 6. In yet another preferred embodiment, the percent identity between two nucleotide sequences is determined using the GAP program of the GCG software package, using the NWSgapdna.CMP matrix, gap weights of 40, 50, 60, 70, or 80, and length weights of 1, 2, 3, 4, 5, or 6. A particularly preferred set of parameters (and one that can be used if the practitioner is unsure as to which parameters to apply to determine whether a molecule meets the sequence identity or homology constraints of the present invention) is to use a Blossum 62 scoring matrix with a gap open penalty of 12, a gap extension penalty of 4, and a frameshift gap penalty of 5.

[0091] Another non-limiting example of how percent identity can be determined is by using the software programs described in Current Protocols in Molecular Biology (F.M.A.usubel et al., eds., 1987), Supplement 30, section 7.7.18, Table 7.7.1. Preferably, default parameters are used for the alignment. A preferred alignment program is BLAST using default parameters. Particularly preferred programs are BLASTN and BLASTP using the following default parameters: genetic code = standard; filter = none; strand = both; cutoff = 60; expect = 10; matrix = BLOSUM62; explanation = 50 sequences; sort = high score; database = non-redundant, GenBank + EMBL + DDBJ + PDB + GenBank CDS translation + Swiss protein + SP update + PIR. Details of these programs can be found at the following internet address: http: / / www.ncbi.nlm.nih.gov / cgi-bin / BLAST.

[0092] Statistical analysis of the characteristics described herein can be performed by standard tests, such as t-tests, ANOVA, or chi-square tests. Typically, statistical significance is measured to the level of p=0.05 (5%), more preferably p=0.01, p=0.001, p=0.0001, p=0.000001.

[0093] "Conservatively modified variants" of domain sequences can also be provided. With respect to a particular nucleic acid sequence, conservatively modified variants refer to nucleic acids that encode identical or essentially identical amino acid sequences, or, if the nucleic acid does not encode an amino acid sequence, essentially identical sequences. Specifically, degenerate codon substitutions can be achieved by generating sequences in which the third position of one or more selected (or all) codons is substituted with mixed-base and / or deoxyinosine residues (Batzer et al., 1991, Nucleic Acid Res. 19:5081; Ohtsuka et al., 1985, J. Biol. Chem. 260:2605-2608; Rossolini et al., 1994, Mol. Cell. Probes 8:91-98).

[0094] The terms "biologically active fragment," "biologically active form," "biologically active equivalent," and "functional derivative" of a wild-type protein have a biological activity that is at least substantially equal to (e.g., not significantly different from) the biological activity of the wild-type protein, as measured using an assay appropriate for detecting the activity.

[0095] As used herein, "in vivo" nucleic acid delivery, nucleic acid transfer, nucleic acid therapy, etc. refers to the direct introduction of an improved LAMP construct into the body of an organism, e.g., a human or non-human mammal, whereby the improved LAMP construct is introduced into the cells of such an organism in vivo.

[0096] As used herein, the term "in situ" refers to a type of in vivo nucleic acid delivery in which the improved LAMP construct is placed in proximity to target cells (e.g., the nucleic acid is not administered systemically). For example, in situ delivery methods include, but are not limited to, directly injecting the improved LAMP construct into a site (e.g., tissue such as a tumor or myocardium), contacting the improved LAMP construct with cells or tissue through an open surgical field, or delivering the improved LAMP construct to a site using a medical access device such as a catheter.

[0097] As used herein, the terms "isolated" or "purified" mean that a polynucleotide, peptide, polypeptide, protein, antibody, or fragment thereof is separated from (or substantially free of) cellular and other components with which it is normally associated in nature. For example, with respect to the improved LAMP construct, an isolated polynucleotide is one that is separated from the 5' and 3' sequences with which it is normally associated in the chromosome. As will be apparent to those skilled in the art, a non-naturally occurring polynucleotide, peptide, polypeptide, protein, antibody, or fragment thereof does not require "isolation" to be distinguished from its naturally occurring counterpart. Substantially free or substantially purified means that at least 50%, preferably at least 70%, more preferably at least 80%, and even more preferably at least 90% of a population is free from components with which it is naturally associated.

[0098] As used herein, "target cell" or "recipient cell" refers to an individual cell or cells that are desired to be or have been recipients of the improved LAMP constructs described herein. The term is also intended to include the progeny of a single cell, which may not necessarily be completely identical (in terms of morphology or genome or total DNA complement) to the original parent cell due to natural, accidental, or deliberate mutations. Target cells may be in contact with other cells (e.g., as in tissues) or may be found circulating within an organism.

[0099] As used herein, a "subject" is a vertebrate, preferably a mammal, more preferably a human. Mammals include, but are not limited to, rodents, apes, humans, farm animals, sport animals, and pets. In other preferred embodiments, a "subject" is a rodent (e.g., rat, mouse, rabbit, llama, camel, cow, guinea pig, hamster, dog, cat, horse, non-human primate, ape (e.g., monkey or ape), monkey (e.g., marmoset, baboon, rhesus macaque), or ape (e.g., gorilla, chimpanzee, orangutan, gibbon). In other embodiments, mammals (e.g., murines, primates, porcines, canines, or lagomorphs) conventionally used as models for demonstrating therapeutic efficacy in non-human mammals, particularly humans, may be used.

[0100] As used herein, the term "pharmaceutically acceptable carrier" includes standard pharmaceutical carriers, such as phosphate-buffered saline, water, and emulsions, such as oil / water or water / oil emulsions, as well as any of various types of wetting agents. Compositions containing improved LAMP constructs may also contain stabilizers and preservatives. For examples of carriers, stabilizers, and adjuvants, see Martin Remington's Pharm. Sci., 15th Ed. (Mack Publ. Co., Easton (1975)).

[0101] A cell has been "transformed," "transduced," or "transfected" with an improved LAMP construct when such nucleic acid has been introduced into the cell. The transforming DNA may or may not be integrated (covalently linked) into chromosomal DNA constituting the cell's genome. For example, in prokaryotes, yeast, and mammalian cells, the improved LAMP construct may be maintained on an episomal element such as a plasmid. In eukaryotic cells, a stably transformed cell is one in which the improved LAMP construct has been integrated into a chromosome so that it is inherited by daughter cells through chromosome replication. This stability is demonstrated by the ability of the eukaryotic cell to establish cell lines or clones consisting of a population of daughter cells containing the improved LAMP construct. A "clone" is a population of cells derived from a single cell or a common ancestor by mitosis. A "cell line" is a clone of a primary cell that can grow stably in vitro for many generations (e.g., at least about 10).

[0102] As used herein, an "effective amount" is an amount sufficient to affect a beneficial or desired result, such as an amount effective for transferring and / or expressing an improved LAMP construct and / or achieving a desired therapeutic endpoint. An effective amount can be administered in one or more administrations, applications, or dosages. In one embodiment, an effective amount of an improved LAMP construct is an amount sufficient to transform / transduce / transfect at least one cell in a population of cells comprising at least two cells.

[0103] As used herein, a "therapeutically effective amount" is used herein to mean an amount sufficient to prevent, correct, and / or normalize an abnormal physiological response. In one embodiment, a "therapeutically effective amount" is an amount sufficient to reduce a clinically significant characteristic of a disease state, such as tumor mass size, antibody production, cytokine production, fever, or white blood cell count, by at least about 30%, more preferably at least 50%, and most preferably at least 90%.

[0104] An "antibody" is any immunoglobulin, including antibodies and fragments thereof, that bind to a specific antigen. The term encompasses polyclonal, monoclonal, and chimeric antibodies (e.g., bispecific antibodies). An "antibody combining site" is the structural portion of an antibody molecule composed of heavy and light chain variable and hypervariable regions that specifically bind to an antigen. Exemplary antibody molecules are intact immunoglobulin molecules, substantially intact immunoglobulin molecules, and portions of immunoglobulin molecules containing the paratope (including Fab, Fab', F(ab')2, and F(v) portions), which are preferred for use in the therapeutic methods described herein. Thus, the term antibody encompasses not only whole antibody molecules, but also antibody fragments and variants of antibodies and antibody fragments, including derivatives such as fusion proteins. Examples of molecules described by the term "antibody" in this application include, but are not limited to, single-chain Fvs (scFvs), Fab fragments, Fab' fragments, F(ab'), disulfide-linked Fvs (sdFvs), and fragments comprising or consisting of an Fv and either a VL or VH domain. As used herein, the term "single-chain Fv" or "scFv" refers to a polypeptide comprising the VL domain of an antibody linked to the VH domain of an antibody. See Carter (2006) Nature Rev. Immunol. 6:243.

[0105] In addition, antibodies of the present invention include, but are not limited to, monoclonal, multispecific, bispecific, human, humanized, murine, or chimeric antibodies, single-chain antibodies, camelid antibodies, Fab fragments, F(ab') fragments, anti-idiotypic (anti-Id) antibodies (including, for example, anti-Id antibodies to antibodies of the present invention), domain antibodies, and epitope-binding fragments of any of the above. The immunoglobulin molecules of the present invention can be of any type (e.g., IgG, IgE, IgM, IgD, IgA, and IgY), class (e.g., IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2) or subclass of immunoglobulin molecule.

[0106] Most preferably, the antibody is a human antibody. As used herein, "human" antibodies include antibodies having the amino acid sequence of a human immunoglobulin, including antibodies isolated from human immunoglobulin libraries and from xenomouse or other organisms genetically engineered to produce human antibodies. The improved LAMP constructs described herein can be used in conjunction with known techniques for generating human antibodies and human monoclonal antibodies, as described in the exemplary protocols. See, e.g., WO 98 / 24893; WO 92 / 01047; WO 96 / 34096; WO 96 / 33735; EP 0598877; U.S. Pat. No. 5,413,923; U.S. Pat. No. 5,625,126; U.S. Pat. No. 5,633,425; U.S. Pat. No. 5,569,825; U.S. Pat. No. 5,661,016; U.S. Pat. No. 5,545,806; U.S. Pat. No. 5,814,318; U.S. Pat. No. 5,885,793; U.S. Pat. No. 5,916,771; and U.S. Pat. No. 5,939,598; and Lonberg and Huszar, Int. Rev. Immunol. 13:65-93 (1995).

[0107] Human antibodies or "humanized" chimeric monoclonal antibodies can be produced using the improved LAMP constructs in combination with techniques described herein or known in the art. For example, standard methods for producing chimeric antibodies are known in the art. For reviews, see the following references: Morrison, Science 229:1202 (1985); Oi et al., BioTechniques 4:214 (1986); Cabilly et al., U.S. Pat. No. 4,816,567; Taniguchi et al., EP 171496; Morrison et al., EP 173494; Neuberger et al., WO 8601533; Robinson et al., WO 8702671; Boulianne et al., Nature 312:643 (1984); Neuberger et al., Nature 314:268 (1985).

[0108] The antibodies of the present invention can be monovalent, bivalent, trivalent, or multivalent. For example, monovalent scFvs can be multimerized chemically or by association with another protein or substance. ScFvs fused to a hexahistidine tag or Flag tag can be multimerized using Ni-NTA agarose (Qiagen) or anti-Flag antibody (Stratagene, Inc.). In addition, the improved LAMP constructs can be used to generate monospecific, bispecific, trispecific, or greater multispecific antibodies against the encoded allergens contained in the improved LAMP constructs. See, e.g., WO 93 / 17715; WO 92 / 08802; WO 91 / 00360; WO 92 / 05793; Tutt et al., J. Immunol. 147:60-69 (1991); U.S. Patent No. 4,474,893; U.S. Patent No. 4,714,681; U.S. Patent No. 4,925,648; U.S. Patent No. 5,573,920; U.S. Patent No. 5,601,819; Kostelny et al., J. Immunol. 148:1547-1553 (1992).

[0109] An "epitope" is usually a structure composed of a short peptide sequence or oligosaccharide that is specifically recognized or specifically bound by components of the immune system. T cell epitopes have been shown to be generally linear oligopeptides. Two epitopes correspond to each other if they can be specifically bound by the same antibody. Two epitopes correspond to each other if both can bind to the same B cell receptor or the same T cell receptor, and binding of one antibody to that epitope substantially prevents binding by the other epitope (e.g., less than about 30%, preferably less than about 20%, more preferably less than about 10%, 5%, 1%, or about 0.1% of the other epitope is bound). In the present invention, multiple epitopes may constitute allergen X (SEQ ID NO: Y).

[0110] As used herein, the term "allergen" or "allergen of interest" covers any polypeptide sequence encoded by a polynucleotide sequence cloned into an improved LAMP construct used to elicit an innate or adaptive immune response as shown in Table 1 / Figure 14. "Allergen" encompasses both a single allergen and multiple allergen sequences (derived from the same or different proteins) cloned into an improved LAMP construct.

[0111] As used herein, the term "antigen-presenting cell" includes any cell that presents on its surface an allergen in association with a major histocompatibility complex molecule or a portion thereof or one or more non-classical MHC molecules or portions thereof. Examples of suitable APCs are described in detail below and include, but are not limited to, whole cells such as macrophages, dendritic cells, B cells, hybrid APCs, and foster antigen-presenting cells.

[0112] As used herein, "engineered antigen-presenting cells" refers to antigen-presenting cells that have non-natural molecular moieties on their surface.For example, such cells may not naturally have costimulatory substances on their surface, or may have artificial costimulatory substances in addition to natural costimulatory substances on their surface, or may express non-natural class II molecules on their surface.In a preferred embodiment, engineered antigen-presenting cells have allergens expressed from improved LAMP constructs on their surface.

[0113] As used herein, "immune effector cells" refers to cells that are capable of binding to allergens and mediate an immune response. These cells include, but are not limited to, T cells, B cells, monocytes, macrophages, NK cells, and cytotoxic T lymphocytes (CTLs), such as CTL lines, CTL clones, and CTLs from tumors, inflammatory or other infiltrates.

[0114] "Vector" includes plasmids and viruses, as well as any DNA or RNA molecule, whether self-replicating or not, that can be used to transform or transfect cells.

[0115] An "isolated" or "purified" population of cells is substantially free from the cells and materials with which it is naturally associated. Substantially free or substantially purified APC means that at least 50% of the population are APCs, and preferably at least 70%, more preferably at least 80%, and even more preferably at least 90% are free from the non-APC cells with which they are naturally associated.

[0116] As used herein, " genetic modification " refers to any addition, deletion or destruction of the normal nucleotide of cells.Any method that can achieve the genetic modification of APC is within the spirit and scope of the present invention.Technically recognized methods include virus-mediated gene transfer, liposome-mediated transfer, transformation, transfection and transduction, for example, virus-mediated gene transfer, for example, the improved LAMP construct based on DNA viruses such as adenovirus, adeno-associated virus and herpes virus, and the use of retrovirus-based vectors.

[0117] Unless otherwise indicated, the practice of the present invention employs conventional molecular biology, microbiology, and recombinant DNA techniques within the skill of the art. Such techniques are fully explained in the literature. See, e.g., Maniatis, Fritsch & Sambrook, In Molecular Cloning: A Laboratory Manual (1982); DNA Cloning: A Practical Approach, Volumes I and II(DNGlover,ed.,1985);Oligonucleotide Synthesis(MJGait,ed.,1984);Nucleic Acid Hybridization(BDHames&S.J.Higgins,eds.,1985);Transcription and Translation(BDHames&S.I.Higgins,eds.,1984);Animal Cell See Culture (RIFreshney, ed., 1986); Immobilized Cells and Enzymes (IRL Press, 1986); B. Perbal, A Practical Guide to Molecular Cloning (1984).

[0118] 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. All publications mentioned herein are incorporated by reference for the purpose of describing and disclosing devices, formulations, and methodologies that can be used in connection with the inventions described herein.

[0119] LAMP constructs LAMP-1, as deduced from a cDNA clone (Chen et al., J. Biol. Chem. 263:8754, 1988), consists of a polypeptide core of approximately 382 amino acids with a large (346-residue) luminal amino-terminal domain, followed by a 24-residue hydrophobic transmembrane region and a short (12-residue) carboxyl-terminal cytoplasmic tail (see Figures 2A and 2B). The luminal domain is heavily glycosylated and substituted with approximately 20 asparagine-linked complex-type oligosaccharides, and consists of two approximately 160-residue "homology domains" separated by a proline / serine-rich hinge region. Each of these "homologous domains" contains four evenly spaced cysteine ​​residues that disulfide bond to form four 36-38 residue loops symmetrically arranged within the two halves of the luminal domain (see also Arterburn et al., J. Biol. Chem. 265:7419, 1990; Chen et al., J. Biol. Chem. 25:263(18):8754-8, 1988). Figure 2A shows a schematic representation of the conserved domains among LAMP-1, LAMP-2, LAMP-3, Endolyn, LIMBIC, LAMP5, and Macrosailin.

[0120] Previously reported LAMP constructs contain the following elements in this particular arrangement: (a) the entire luminal domain of the LAMP-1 protein, an antigen, followed by the entire transmembrane / cytoplasmic tail of the LAMP-1 protein, or (b) the antigen and the entire transmembrane / cytoplasmic tail of the LAMP-1 protein. In example (a), the antigen sequence is inserted between the entire luminal domain of the LAMP-1 protein and the entire transmembrane domain / cytoplasmic tail of the LAMP-1 protein. Both constructs have been shown to successfully target the antigen sequence to lysosomes / endosomes and are referred to as "complete LAMP constructs" as shown in Figure 1, in comparison with the improved LAMP constructs ILC1-ILC6 described herein. The improved LAMP constructs described herein do not include the complete LAMP constructs described in the prior art.

[0121] It has been widely reported in the literature that fragments smaller than the entire luminal domain of LAMP-1 are ineffective in generating robust immune responses (see, e.g., Godinho et al.). In contrast, the present inventors unexpectedly discovered that certain fragments, in specific configurations, actually effectively presented allergens to the immune system, often generating more robust immune responses, including the generation of distinct repertoires of antibodies. For example, the present inventors identified that the minimal LAMP luminal domain fragment effective for generating a robust immune response was not the entire luminal domain (as widely reported in the literature), but rather a single homologous domain of the luminal domain of the LAMP protein.

[0122] For example, a construct may contain a single homologous domain of the luminal domain of a LAMP protein, rather than the entire luminal domain. As used herein, a "homologous domain" comprises at least four evenly spaced cysteine ​​residues, as shown in Figures 3-10. The presence of these cysteines, designated 1, 2, 3, and 4 in each homologous domain (five cysteines are identified in LIMP-2 and Macrosailin, six in LIMBIC, and eight in Endolyn), as shown in Figures 3-10, is defined herein as a "cysteine-conserved fragment." Additional amino acids may be included at either the N-terminus and / or C-terminus of the cysteine-conserved fragment to generate up to the entire homologous domain of a LAMP protein. These additional amino acids may be derived from the homologous domain from which the cysteine-conserved fragment is derived or from other LAMP protein homologous domains. Thus, as used herein, a LAMP homologous domain comprises and / or consists of one cysteine-conserved fragment. At least two LAMP homology domains constitute the luminal domain of LAMP-1, LAMP-2, LAMP-3 or Endolyn.

[0123] Specifically, in a preferred embodiment, the improved LAMP construct comprises at least one allergen listed in Table 1 / Figure 14 and / or a combination listed in paragraphs [0136-0137] and Table 2 fused to the N-terminus of the luminal domain of a LAMP protein, at least one homologous domain of a LAMP protein, or at least one cysteine-conserved fragment of a LAMP protein. See, for example, ILC-2 and ILC-6 in Figure 1. In preferred embodiments, these constructs also comprise a transmembrane domain of a LAMP protein and / or a cytoplasmic tail of a LAMP protein. In other preferred embodiments, when allergen X (SEQ ID NO: Y) comprises a transmembrane domain, the transmembrane domain of a LAMP protein and / or the cytoplasmic tail of a LAMP protein are not required. In a preferred embodiment, two homologous domains are included in the improved LAMP construct (e.g., ILC-1 in Figure 1). In a further preferred embodiment, the two homologous domains are derived from LAMP-1, LAMP-2, LAMP-3, or Endolyn proteins. Alternatively, the two homologous domains may be derived from different LAMP proteins. In these constructs containing two homologous domains, the LAMP hinge domain may also be included. The improved LAMP constructs described in this paragraph are unexpected in light of the prior art, since antigens are always located between the entire LAMP-1 luminal domain and the entire LAMP-1 transmembrane / cytoplasmic tail, and fragments of the luminal domain have been reported to be ineffective in generating robust immune responses.

[0124] In another preferred embodiment, the improved LAMP construct comprises at least one allergen listed in Table 1 / Figure 14 and / or a combination listed in paragraphs [0136-0137] and Table 2 fused to the C-terminus of a single homologous domain of a LAMP protein or a single cysteine-conserved fragment of a LAMP protein (e.g., ILC-5 in Figure 1). In a preferred embodiment, these constructs also include a transmembrane domain of a LAMP protein and / or a cytoplasmic tail of a LAMP protein (e.g., ILC-3 in Figure 1). In another preferred embodiment, when allergen X (SEQ ID NO: Y) contains a transmembrane domain, the transmembrane domain of a LAMP protein and / or the cytoplasmic tail of a LAMP protein are not required. Alternatively, two homologous domains from two different LAMP proteins may be used. The improved LAMP constructs described in this paragraph are unexpected in view of the prior art, since the allergen is always located between the entire luminal LAMP-1 domain and the entire LAMP-1 transmembrane / cytoplasmic tail, and fragments of the luminal domain have not been reported to be effective in generating a robust immune response.

[0125] Thus, the improved LAMP constructs comprise at least one allergen listed in Table 1 / Figure 14 and / or a combination listed in paragraphs [0136-0137] and Table 2 fused to the C-terminus of a single homologous domain of a LAMP protein or a single cysteine-conserved fragment of a LAMP protein. See, for example, ILC-3 and ILC-5 in Figure 1. In preferred embodiments, these constructs also include a transmembrane domain and / or a cytoplasmic tail of a LAMP protein. In other preferred embodiments, when allergen X (SEQ ID NO: Y) contains a transmembrane domain, the transmembrane domain and / or the cytoplasmic tail of a LAMP protein are not required. The improved LAMP constructs described in this paragraph are, as discussed above, unexpected in light of the prior art.

[0126] In another preferred embodiment, the improved LAMP construct comprises at least one allergen of interest fused between a first homologous domain of a LAMP protein and a second homologous domain of a LAMP protein (or between at least two cysteine-conserved fragments). See, for example, ILC-4 in Figure 1. In a preferred embodiment, the two homologous domains are derived from LAMP-1, LAMP-2, LAMP-3, or Endolyn proteins. In these constructs, the allergen can be located in the LAMP hinge region. Alternatively, two homologous domains from two different LAMP proteins can be used. This configuration, in which at least one allergen listed in Table 1 / Figure 14 and / or the combinations listed in paragraphs [0136-0137] and Table 2 is fused between two LAMP homologous domains (including cysteine-conserved fragments), is unexpected in light of the prior art, as discussed above.

[0127] Each of the improved LAMP constructs defined above can be generated using the domains defined in the figures. For example, it is specifically contemplated that the domains included in the improved LAMP construct shown in Figure 1 can be derived from sequences derived from orthologous sequences. See, e.g., Figures 3-10. It is specifically contemplated that the equivalent domains defined in Figures 2A and 2B can be used to generate the improved LAMP construct shown in Figure 1 for an orthologous sequence. Furthermore, the orthologous sequences shown in Figures 3-10 are representative of sequences that can be used to generate domains. It is well within the skill of the art to identify other orthologous sequences and / or isotypes and compare them to the alignments shown in Figures 3-10. Thus, for a human LAMP protein having the alignment shown in Figures 3-10, the improved LAMP construct shown in Figure 1 can be generated by identifying the equivalent boundaries defined in Figures 2A and 2B.

[0128] As will be appreciated by those skilled in the art, the boundaries of each domain are approximate and may be adjusted by at least 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 amino acids based on cloning considerations and restriction enzyme placement. Thus, when a particular domain (e.g., a LAMP homology domain) is included in an improved LAMP construct, the amino acids at the start and end of the domain may be adjusted by at least 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 amino acids, as defined in Figure 2A.

[0129] Each of the above improved LAMP constructs may further comprise a signal sequence and / or additional amino acids between each domain for cloning purposes, as is well known in the art. In addition, the LAMP homology domain, LAMP luminal domain, LAMP transmembrane domain, and / or LAMP cytoplasmic tail domain may be derived from the same LAMP protein (e.g., human LAMP-1) or different LAMP proteins (e.g., the luminal domain from human LAMP-1 and the transmembrane domain from human LAMP-2, and / or a mixture of orthologous domains from the same gene family (e.g., LAMP-1) or different gene families (LAMP-1 and LAMP-2).

[0130] Polypeptide variants of the described LAMP constructs are contemplated. For example, polypeptides and polynucleotides encoding these variants that are at least about 60%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, 96%, 97%, 98%, or 99% identical to any of the improved LAMP constructs described herein are contemplated. Improved LAMP construct variants retain the ability to function by targeting allergenic sequences to lysosomes. For example, the modified luminal sequence must retain the ability to transport both membrane and non-membrane antigenic materials to endosomal compartments with at least about 50%, at least about 60%, at least 70%, at least about 80%, at least about 90%, or at least about 100% efficiency compared to the original domain sequence, i.e., efficiency that results in sufficient antigen presentation by cells containing the chimeric sequence to initiate an immune response. In one embodiment, sequences containing appropriate transport signals can be identified by constructing improved LAMP constructs containing the well-characterized antigenic domain of ovalbumin, the transmembrane domain, and the cytoplasmic domain of a protein containing a putative lysosomal / endosomal targeting signal. Targeting efficiency can be measured by determining the ability of antigen-presenting cells expressing the improved LAMP construct to stimulate HA epitope-specific MHC class II-restricted T cells (see, e.g., Example 5 of U.S. Pat. No. 5,633,234).

[0131] Polynucleotides encoding any of the improved LAMP constructs described herein, as well as polynucleotides that are at least about 60%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, 96%, 97%, 98%, or 99% identical to any of the improved LAMP construct polynucleotides described herein, are preferred embodiments of the present invention. Improved LAMP construct variants retain the ability to function by targeting allergenic sequences to lysosomes. For example, the modified luminal sequence must retain the ability to transport both membrane and non-membrane antigenic material to endosomal compartments with at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, or at least about 100% efficiency compared to the original domain sequence, i.e., efficiency that results in sufficient antigen presentation by cells containing the chimeric sequence to initiate an immune response. In one embodiment, sequences containing appropriate transport signals can be identified by constructing improved LAMP constructs containing the well-characterized antigenic domain of ovalbumin, the transmembrane domain, and the cytoplasmic domain of a protein containing a putative lysosomal / endosomal targeting signal. Targeting efficiency can be measured by determining the ability of antigen-presenting cells expressing the improved LAMP construct to stimulate HA epitope-specific MHC class II-restricted T cells (see, e.g., Example 5 of U.S. Pat. No. 5,633,234).

[0132] Allergens The following allergens (e.g., allergen X) shown in Table 1 / Figure 14 can be cloned into each of the LAMP constructs described herein using techniques well known to those of skill in the art. It is also specifically contemplated that any one of the allergens X (SEQ ID NO: Y) listed in Table 1 / Figure 14 can be combined with any other antigen listed in Table 1 / Figure 14 and inserted into the improved LAMP constructs described herein, specifically those disclosed in Table 2.

[0133] As used herein, the term "allergen X" refers to a specific gene / protein listed in Table 1 / Figure 14 below, a fragment thereof with the signal sequence removed (e.g., listed in column 3 of Table 1) (e.g., a fragment of SEQ ID NO: Y (e.g., listed in column 4 of Table 1)), or a mixture of the listed proteins known to induce allergies, i.e., IgE-mediated reactions, upon repeated exposure to an individual. Generally, an allergen is any compound, substance, or material capable of eliciting an allergic reaction. Allergens are usually understood as a subcategory of antigens, which are compounds, substances, or materials capable of eliciting an immune response. For purposes of the present invention, allergen X may be selected from, inter alia, natural or native allergens, modified natural allergens, synthetic allergens, recombinant allergens, allergoids, and mixtures or combinations thereof. Of particular interest are allergens X capable of eliciting IgE-mediated immediate hypersensitivity.

[0134] As used herein, the amino acid sequence of allergen X comprises any one of SEQ ID NO: Y (with or without a signal sequence). Representative examples of polynucleotides that may encode allergen X (SEQ ID NO: Y) are shown in Table 1 / Figure 14 as SEQ ID NO: Z, or any polynucleotide (e.g., codon-optimized sequence) that encodes allergen X listed in column 2 of Table 1 or a fragment listed in column 4. These polynucleotides (with or without the signal sequence of SEQ ID NO: Y) are inserted into any one of constructs ILC1-6 as shown in Figure 1. Insertion may be facilitated by the use of cloning sequences flanking the amino acid sequence of SEQ ID NO: Y, such as polynucleotides encoding "Leu-Glu" and "Glu-Phe" (e.g., "CTCGAG" and "GAATTC"). As used herein, "allergen X" also encompasses variants (including fragments) of allergen X. For example, preferred embodiments include allergen X polypeptide variants having at least about 60%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, 96%, 97%, 98% or 99% identity to SEQ ID NO: Y (as set out in column 2 or column 4 of Table 1). These variants retain either (a) the ability to raise antibodies that cross-react with the allergen X from which it is derived and / or (b) allergen X biological activity. Polynucleotides encoding these variant allergen X polypeptides are specifically contemplated.

[0135] The present invention further provides a nucleic acid molecule encoding any of the allergen Xs in Table 1 / Figure 14. The present invention also provides a vector comprising a nucleic acid encoding, for example, allergen X (SEQ ID NO: Y), such as SEQ ID NO: Z, or any polynucleotide (e.g., a codon-optimized sequence) encoding allergen X listed in column 2 of Table 1 or a fragment listed in column 4, wherein the nucleic acid molecule is operably linked to an expression control sequence in any one of ILC1-6. In a preferred embodiment, the vector is a vaccine vector suitable for vaccinating a patient against allergen X. In another embodiment, the present invention provides a delivery vehicle comprising a nucleic acid molecule for facilitating the introduction of a nucleic acid molecule into a cell. The delivery vehicle can be lipid-based (e.g., a liposomal formulation), viral-based (e.g., comprising a viral protein that encapsulates the nucleic acid molecule), or cell-based. In a preferred embodiment, the vector is a vaccine vector. As will be appreciated by those skilled in the art, columns 1 and 4 of Table 1 define preferred amino acids to be cloned into the improved LAMP constructs described herein. However, both the N-terminal and C-terminal boundaries of the fragments listed in columns 1 and 4 of Table 1 are approximate and may be adjusted by at least 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 amino acids based on cloning considerations and restriction enzyme placement. Thus, when an improved LAMP construct includes allergen X, the starting and ending amino acids of allergen X may be adjusted by at least 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 amino acids as defined in columns 1 and 4 of Table 1. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4] [Table 1-5]

[0136] Additionally, more than one allergen X may be combined (in any order) and administered as a vaccine, such as any one of the improved LAMP constructs described herein. It is specifically contemplated that combinations of allergens X may be cloned into a single improved LAMP construct or delivered in a composition comprising multiple improved LAMP constructs of allergen X. Specifically, an allergen X listed in Table 1 / FIG. 14 may be cloned into an improved LAMP construct described herein individually or in combination with one other allergen X listed in Table 2. This list describes what an improved LAMP construct contains, and not necessarily the placement of allergen X within a particular construct, so the order of the allergen X combinations listed in Table 2 for a particular improved LAMP construct may vary.

[0137] In a preferred embodiment, the improved LAMP construct described herein comprises or consists of: (a) any one of the polynucleotides of SEQ ID NO: Z shown in Table 1 / Figure 14; (b) a polynucleotide encoding a polypeptide encoded by any one of the polynucleotides of SEQ ID NO: Z shown in Table 1 / Figure 14; (c) a polynucleotide encoding a polypeptide comprising the amino acid sequence set forth in either column 2 or column 4 of SEQ ID NO: Y shown in Table 1 / Figure 14; or (g) a polynucleotide having at least about 60%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, 96%, 97%, 98%, or 99% identity to any one of the polynucleotides of (a) to (c). Polypeptides encoded by these polynucleotides are further preferred embodiments. [Table 2-1] [Table 2-2] [Table 2-3] [Table 2-4] [Table 2-5] [Table 2-6] [Table 2-7] [Table 2-8]

[0138] Assembly of sequences encoding improved LAMP constructs Procedures for constructing improved LAMP constructs containing the allergen of interest are well known in the art (see, for example, Williams et al., J. Cell Biol. 111:955, 1990). DNA sequences encoding the segment of interest can be obtained from readily available recombinant DNA materials, such as those available from the American Type Culture Collection, 12301 Parklawn Drive, Rockville, Md. 20852, USA, or from DNA libraries containing the desired DNA.

[0139] For example, a DNA segment corresponding to a desired domain sequence can be assembled with appropriate control and signal sequences using routine procedures of recombinant DNA methodology (see, e.g., U.S. Patent No. 4,593,002 and Langford et al., Molec. Cell. Biol. 6:3191, 1986).

[0140] DNA sequences encoding proteins or polypeptides can be chemically synthesized or isolated by one of several approaches. The synthesized DNA sequence can be designed using the appropriate codons for the desired amino acid sequence. Generally, preferred codons are selected for the host in which the sequence will be used for expression. Complete sequences can be assembled from overlapping oligonucleotides prepared by standard methods and assembled into a complete coding sequence. See, for example, Edge, Nature 292:756, 1981; Nambair et al., Science 223:1299, 1984; Jay et al., J. Biol. Chem. 259:6311, 1984.

[0141] In one embodiment, one or more nucleic acids encoding the domain sequences of the improved LAMP construct are individually isolated using the polymerase chain reaction (MAInnis et al., In PCR Protocols: A Guide to Methods and Applications, Academic Press, 1990). The domains are preferably isolated from publicly available clones known to contain them, but they can also be isolated from genomic DNA or cDNA libraries. Preferably, the isolated fragments are flanked by compatible restriction endonuclease sites that allow for the construction of improved LAMP constructs encoding allergen sequences. This technique is well known to those skilled in the art. The domain sequences can be directly fused to each other (e.g., without intervening sequences), inserted into each other (e.g., when the domain sequences are discontinuous), or separated by intervening sequences (e.g., linker sequences, etc.).

[0142] Oligonucleotide primers, probes, and basic strategies for preparing DNA libraries and their screening by nucleic acid hybridization are well known to those skilled in the art. See, e.g., Sambrook et al., 1989, supra; Perbal, 1984, supra. Construction of suitable genomic DNA or cDNA libraries is within the skill of the art. See, e.g., Perbal, 1984, supra. Alternatively, suitable DNA libraries or publicly available clones are available from suppliers of biological research materials, such as Clontech and Stratagene, and from public depositories, such as the American Type Culture Collection.

[0143] Selection can be achieved by expressing sequences from a DNA expression library and immunologically detecting the expressed peptides. Clones expressing peptides that bind to MHC II molecules and the desired antibody / T cell receptor are selected. These selection procedures are well known to those skilled in the art (see, e.g., Sambrook et al., 1989, supra).

[0144] Once a clone containing the coding sequence for the desired polypeptide sequence has been prepared or isolated, the sequence may be cloned into any suitable vector, preferably containing an origin of replication for maintaining the sequence in a host cell.

[0145] Nucleic acid delivery vehicle In one embodiment, the vaccine composition comprising the improved LAMP construct is introduced into a cell. The cell can be a host cell for replicating nucleic acid or for expressing the improved LAMP construct. Preferably, the host cell for expressing the improved LAMP construct is an antigen-presenting cell (described further below).

[0146] In a preferred embodiment, the improved LAMP construct further comprises a polynucleotide sequence for insertion into a target cell and an expression control sequence operably linked thereto to control expression (e.g., transcription and / or translation) of the polynucleotide sequence in the cell. Examples include plasmids, phages, autonomously replicating sequences (ARS), centromeres, and other sequences that can replicate or be replicated in vitro or in host cells (e.g., bacteria, yeast, insect cells, etc.) and / or target cells (e.g., mammalian cells, preferably antigen-presenting cells, etc.) and / or deliver the sequence encoding the improved LAMP construct to a desired location within the target cell.

[0147] Recombinant expression vectors can be derived from microorganisms that readily infect animals, including humans, horses, cows, pigs, llamas, giraffes, dogs, cats, or chickens. Preferred vectors include those already used as live vaccines, such as vaccinia. These recombinants can be directly inoculated into a host, conferring immunity not only to the microbial vector but also to the expression of the foreign allergen. Preferred vectors contemplated herein as live recombinant vaccines include RNA viruses, adenoviruses, herpes viruses, polioviruses, vaccinia, and other poxviruses, as taught, for example, in Flexner, Adv. Pharmacol. 21:51, 1990.

[0148] Expression control sequences include, but are not limited to, promoter sequences that bind to RNA polymerase, enhancer sequences or negative regulatory elements that bind to transcriptional activators and repressors, respectively, and / or translation initiation sequences for ribosome binding. For example, bacterial expression vectors may contain a promoter such as the lac promoter, and a Shine-Dalgarno sequence and the start codon AUG for transcription initiation (Sambrook et al., 1989, supra). Similarly, eukaryotic expression vectors preferably contain a heterologous, homologous, or chimeric promoter for RNA polymerase II, a downstream polyadenylation signal, the start codon AUG, and a stop codon for ribosome detachment.

[0149] Expression control sequences can be obtained from naturally occurring genes or can be designed. Designed expression control sequences include, but are not limited to, mutant and / or chimeric expression control sequences, or synthetic or cloned consensus sequences. Vectors containing both a promoter and a cloning site into which a polynucleotide can be operably linked are well known in the art. Such vectors can transcribe RNA in vitro or in vivo and are commercially available from suppliers such as Stratagene (La Jolla, Calif.) and Promega Biotech (Madison, Wis.).

[0150] To optimize expression and / or transcription, it may be necessary to remove, add, or alter the 5' and / or 3' untranslated portions of the vector to eliminate additional or alternative translation initiation codons or other sequences that may interfere with or reduce expression at either the transcriptional or translational level. Alternatively, a consensus ribosome binding site may be inserted directly 5' of the initiation codon to enhance expression. A wide variety of expression control sequences (sequences that control the expression of a DNA sequence operably linked to them) can be used in these vectors to express the DNA sequences of the present invention. Such useful expression control sequences include, for example, early or late promoters of SV40, CMV, vaccinia, polyoma, adenovirus, herpes virus, and other sequences known to control the expression of genes in mammalian cells, as well as various combinations thereof.

[0151] In one embodiment, the improved LAMP construct includes an origin of replication for replicating the vector. Preferably, the origin functions in at least one type of host cell that can be used to generate a sufficient number of copies of the sequence for delivery to target cells. Suitable origins therefore include, but are not limited to, those that function in bacterial cells (e.g., Escherichia, Salmonella, Proteus, Clostridium, Klebsiella, Bacillus, Streptomyces, and Pseudomonas), yeast (e.g., Saccharomyces or Pichia), insect cells, and mammalian cells. In a preferred embodiment, an origin of replication is provided that functions in target cells (e.g., mammalian cells, such as human cells) into which the nucleic acid delivery vehicle will be introduced. In another embodiment, at least two origins of replication are provided, one that functions in the host cell and one that functions in the target cell.

[0152] Alternatively or additionally, the improved LAMP construct may comprise a sequence that facilitates at least partial integration of the nucleic acid delivery vector into the target cell chromosome. For example, the improved LAMP construct may comprise a region that is homologous to the target cell chromosomal DNA. In one embodiment, the delivery vector comprises two or more recombination sites adjacent to the nucleic acid sequence encoding the improved LAMP construct.

[0153] To confirm that the vector has been successfully introduced into and / or can be expressed by the target cells, the vector may further comprise a detectable and / or selectable marker. These markers may encode an activity such as, but not limited to, the production of RNA, a peptide, or a protein, or may provide binding sites for RNA, peptides, proteins, inorganic and organic compounds or compositions, etc.

[0154] Examples of detectable / selectable marker genes include, but are not limited to, DNA segments encoding products that provide resistance to toxic compounds (e.g., antibiotics); DNA segments encoding products that are not present in recipient cells (e.g., tRNA genes, auxotrophic markers); DNA segments encoding products that suppress the activity of a gene product; DNA segments encoding products that are easily identifiable (e.g., phenotypic markers such as β-galactosidase, fluorescent proteins (GFP, CFP, YFG, BFP, RFP, EGFP, EYFP, EBFP, dsRed, mutant, modified, or enhanced versions thereof, etc.), and cell surface proteins); DNA segments that bind products that are deleterious to cell survival and / or function; DNA segments that inhibit the activity of other nucleic acid segments (e.g., antisense oligonucleotides); DNA segments that bind products that modify substrates (e.g., restriction endonucleases); DNA segments that can be used to isolate or identify desired molecules (e.g., segments encoding specific protein binding sites); primer sequences; DNA segments that, if absent, directly or indirectly confer resistance or sensitivity to a particular compound; and / or DNA segments encoding products that are toxic in recipient cells.

[0155] The marker gene can be used as a marker of successful gene transfer conformation, and / or to isolate cells expressing the transferred gene, and / or to recover the transferred gene from cells. For example, in one embodiment, the marker gene is used to isolate and purify antigen-presenting cells expressing the improved LAMP construct.

[0156] Substantially similar genes can be provided, for example, genes having an identity of more than about 50%, more than about 70%, more than 80%, more than about 90%, preferably more than about 95% with known genes. Substantially similar domain sequences can be initially identified by selecting sequences that specifically hybridize to the domain sequence of interest under stringent hybridization conditions. Performing an assay to determine the suitability of homologous, mutated, or modified domain sequences is simply a matter of screening for sequences that exhibit appropriate activity. Such screening is routine in the art.

[0157] The improved LAMP constructs can be provided as naked nucleic acids or in a delivery vehicle associated with one or more molecules to facilitate entry of the nucleic acid into cells. Suitable delivery vehicles include, but are not limited to, liposome formulations, polypeptides, polysaccharides, lipopolysaccharides, viral formulations (including, for example, viruses, viral particles, artificial viral envelopes, etc.), cellular delivery vehicles, etc.

[0158] Lipid-based formulations A delivery vehicle designed to facilitate intracellular delivery of an improved LAMP construct must interact with both non-polar and polar environments (e.g., in the plasma membrane, tissue fluid, intracellular compartments, etc.). Thus, preferably, the delivery vehicle is designed to include both polar and non-polar domains or translocation sequences for translocating the improved LAMP construct into cells.

[0159] Compounds with polar and non-polar domains are called amphiphiles. Cationic amphiphiles have polar groups that can become positively charged at or near physiological pH in order to interact with negatively charged polynucleotides such as DNA.

[0160] The improved LAMP constructs described herein can be provided in a formulation containing a lipid monolayer or bilayer to facilitate the transfer of vectors across cell membranes. Liposomes or any form of lipid membrane, such as planar lipid membranes or intact cell membranes, such as erythrocyte membranes, can be used. The liposome formulations can be administered by any means, including intravenous or oral administration.

[0161] Liposomes and liposome formulations can be prepared according to standard methods and are well known in the art. See, for example, Remington's; Akimaru, 1995, Cytokines Mol. Ther. 1:197-210; Alving, 1995, Immunol. Rev. 145:5-31; Szoka, 1980, Ann. Rev. Biophys. Bioeng. 9:467; U.S. Patent No. 4,235,871; U.S. Patent No. 4,501,728; and U.S. Patent No. 4,837,028. In one embodiment, the liposome comprises a targeting molecule for targeting the liposome, i.e., the improved LAMP construct complex, to a specific cell type. In a particularly preferred embodiment, the targeting molecule comprises a binding partner (e.g., a ligand or receptor) for a biomolecule (e.g., a receptor or ligand) on the surface of a cell found in blood vessels or target tissue.

[0162] The charge of liposomes is an important determinant of their clearance from the blood; negatively charged liposomes are taken up more rapidly by the reticuloendothelial system (Juliano, 1975, Biochem. Biophys. Res. Commun. 63:651), and therefore have a shorter half-life in the bloodstream. The incorporation of phosphatidylethanolamine derivatives enhances circulation time by preventing liposome aggregation. For example, the incorporation of N-(ω-carboxy)acylamidophosphatidylethanolamine into large unilamellar vesicles of L-α-distearoylphosphatidylcholine dramatically increases the in vivo liposome circulation life (see, for example, Ahl, 1997, Biochim. Biophys. Acta 1329:370-382). Liposomes with long circulation half-lives are typically desirable for therapeutic and diagnostic applications. For a general discussion of pharmacokinetics, see, e.g., Remington's, Chapters 37-39, Lee et al., In Pharmacokinetic Analysis: A Practical Approach (Technomic Publishing AG, Basel, Switzerland 1996).

[0163] Typically, liposomes are prepared with approximately 5-15 mol% negatively charged phospholipids, such as phosphatidylglycerol, phosphatidylserine, or phosphatidylinositol. The added negatively charged phospholipid, such as phosphatidylglycerol, also serves to prevent spontaneous liposome aggregation, thereby minimizing the risk of small liposome aggregate formation. Membrane stiffening agents, such as sphingomyelin or saturated neutral phospholipids at a concentration of at least about 50 mol% and 5-15 mol% monosialylganglioside, can also impart desirable liposome properties, such as rigidity (see, e.g., U.S. Pat. No. 4,837,028).

[0164] In addition, the liposomal suspension may contain lipid-protective agents that protect lipids from stored free radicals and lipid peroxidation damage. Lipophilic free-radical quenchers, such as α-tocopherol, and water-soluble iron-specific chelators, such as ferrioxianine, are preferred.

[0165] The improved LAMP constructs of the present invention may contain multilamellar vesicles of heterogeneous sizes. For example, vesicle-forming lipids can be dissolved in a suitable organic solvent or solvent system and dried under vacuum or inert gas to form a thin lipid film. If desired, the film can be redissolved in a suitable solvent, such as tertiary butanol, and then lyophilized to form a more uniform lipid mixture in powder form that is more easily hydrated. This film is then covered with an aqueous solution of the peptide or polypeptide complex and allowed to hydrate, typically for 15 to 60 minutes with stirring. The size distribution of the resulting multilamellar vesicles can be shifted toward smaller sizes by hydrating the lipids under more vigorous stirring conditions or by adding a solubilizing surfactant, such as deoxycholic acid. The hydration medium preferably contains the desired concentration of nucleic acid in the internal volume of the liposomes in the final liposome suspension.

[0166] After liposome preparation, the liposomes can be sized to achieve a desired size range and a relatively narrow distribution of liposome sizes. One preferred size range is approximately 0.2 to 0.4 microns, which allows for sterilization of the liposome suspension by filtration through conventional filters, typically 0.22 micron filters. When liposomes are sized down to approximately 0.2 to 0.4 microns, sterilization by filtration can be performed at high throughput. Several techniques are available for sizing liposomes to the desired size (see, e.g., U.S. Patent No. 4,737,323).

[0167] Suitable lipids include, but are not limited to, DOTMA (Felgner et al., 1987, Proc. Natl. Acad. Sci. USA 84:7413-7417), DOGS or Transfectain™ (Behr et al., 1989, Proc. Natl. Acad. Sci. USA 86:6982-6986), DNERIE or DORIE (Felgner et al., Methods 5:67-75), DC-CHOL (Gao and Huang, 1991, BBRC 179:280-285), DOTAP™ (McLachlan et al., 1995, Gene Therapy 2:674-622), Lipofectamine™, and glycerolipid compounds (see, e.g., EP 901463 and WO 98 / 37916).

[0168] Other molecules suitable for complexation with the improved LAMP constructs include cationic molecules such as polyamidoamines (Haensler and Szoka, 1993, Bioconjugate Chem. 4:372-379), dendritic polylysines (WO 95 / 24221), polyethyleneimines or polypropylene h-nines (WO 96 / 02655), polylysines (U.S. Pat. No. 5,595,897; French Patent No. 2719316), chitosan (U.S. Pat. No. 5,744,166), DNA-gelatin coacervates (see, e.g., U.S. Pat. Nos. 6,207,195; 6,025,337; and 5,972,707), or DEAE-dextran (Lopata et al., 1984, Nucleic Acid Res. 12:5707-5717).

[0169] Viral-Based Gene Delivery Vehicles In one embodiment, the improved LAMP construct delivery vehicle comprises a virus or a viral particle. In this embodiment, the improved LAMP construct preferably comprises a viral vector. Viral vectors, such as retroviruses, adenoviruses, adeno-associated viruses, and herpes viruses, often consist of two components: a modified viral genome and a surrounding coat structure (see, for example, Smith et al., 1995, Ann. Rev. Microbiol. 49:807-838). Viral vectors may be introduced in naked form or coated with proteins other than viral proteins. Most current vectors have coat structures similar to those of wild-type viruses. This structure packages and protects viral nucleic acids and provides a means for binding to and entering target cells.

[0170] Preferably, viral vectors containing the improved LAMP constructs described herein are modified from the wild-type viral genome to disable viral growth in target cells while allowing viral growth in host cells (e.g., packaging cells or helper cells) used to prepare infectious particles. The vector nucleic acid generally contains cis-acting viral sequences for replication and packaging in the helper strain, as well as expression control sequences for regulating the expression of the polynucleotide delivered to the target cell. Other viral functions are expressed in trans in specific packaging or helper cell lines, as is known in the art.

[0171] A preferred improved LAMP construct is a viral vector derived from a virus selected from the group consisting of herpesvirus, cytomegalovirus, foamy virus, lentivirus, Semliki Forest virus, AAV (adeno-associated virus), poxvirus, adenovirus, and retrovirus. Such viral vectors are well known in the art.

[0172] In a preferred embodiment, the viral vector used is an adenovirus vector. The adenovirus genome consists of a linear, double-stranded DNA molecule of approximately 36 kb, carrying more than 30 genes necessary for completing the viral replication cycle. The early genes are divided into four regions (E1-E4) essential for viral replication, excluding the E3 region, which is thought to modulate the antiviral host immune response. The E1 region (E1A and E1B) encodes proteins involved in the transcriptional regulation of the viral genome. Expression of the E2 region genes (E2A and E2B) results in the synthesis of polypeptides necessary for viral replication. Proteins encoded by the E3 region prevent cell lysis by cytotoxic T cells and tumor necrosis factor (Wold and Gooding, 1991, Virology 184:1-8). Proteins encoded by the E4 region are involved in DNA replication, late gene expression, splicing, and host cell shutoff (Halbert et al., 1985, J. Virol. 56:250-257). Late genes generally encode structural proteins that contribute to viral capsid formation. In addition, adenovirus genomes contain cis-acting 5' and 3' ITRs (inverted terminal repeats) and packaging sequences essential for DNA replication. ITRs contain DNA replication origins, but the encapsidation region is required for the packaging of adenovirus DNA into infectious particles.

[0173] As described by Heise and Kim (2000, J. Clin. Invest. 105:847-851), adenoviral vectors can be engineered to be conditionally replicative (CRAd vectors) in order to selectively replicate in specific cells (e.g., proliferating cells). In another embodiment, the adenoviral vector is replication-deficient for E1 function (e.g., by total or partial deletion or mutagenesis of E1). The adenoviral backbone of the vector can contain additional modifications (deletions, insertions, or mutations of one or more viral genes). An example of an E2 modification is exemplified by a temperature-sensitive mutation located in the DBP (DNA-binding protein)-encoding gene (Ensinger et al., 1972, J. Virol. 10:328-339). Adenoviral sequences can also be deleted of all or part of the E4 region (see, e.g., European Patent No. 974 668; Christ et al., 2000, Human Gene Ther. 11:415-427; Lusky et al., 1999, J. Virol. 73:8308-8319). Further deletions within the non-essential E3 region can allow for an increase in the size of the delivered polynucleotide (Yeh et al., 1997, FASEB Journal 11:615-623). However, it can be advantageous to retain all or part of the E3 sequence encoding a polypeptide (e.g., gp19k) that enables the virus to escape the immune system (Gooding et al., 1990, Critical Review of Immunology 10:53-71) or inflammatory response (European Patent Application Publication No. 00440267.3).

[0174] Second-generation vectors that retain the ITRs and packaging sequences and contain substantial genetic modifications that abolish residual synthesis of viral antigens can also be used to improve long-term expression of expressed genes in transduced cells (see, e.g., WO 94 / 28152; Lusky et al., 1998, J. Virol 72:2022-2032).

[0175] The improved LAMP construct introduced into cells can be inserted anywhere in the viral genome, except for cis-acting sequences. Preferably, it is inserted into a deleted region (E1, E3, and / or E4), preferably into the deleted E1 region.

[0176] The adenovirus may be derived from any human or animal source, particularly canine (e.g., CAV-1 or CAV-2, Genbank refs. CAVIGENOM and CAV77082, respectively), avian (Genbank ref. AAVED5DNA), bovine (e.g., BAV3; Reddy et al., 1998, J. Virol. 72:1394-1402), murine (Genbank ref. ADRMUSMAVI), ovine, feline, porcine, or simian sources, or may be a hybrid virus. Any serotype may be used. However, human adenoviruses of the C subgroup are preferred, particularly adenovirus 2 (Ad2) and 5 (Ad5). Such viruses are available, for example, from the ATCC.

[0177] Adenovirus particles or empty adenovirus capsids can also be used to import improved LAMP constructs via a virus-mediated co-internalization process, as described in U.S. Patent No. 5,928,944. This process can be achieved in the presence of cationic agents, such as polycarbenes or lipid vesicles containing one or more lipid layers.

[0178] Adenoviral particles can be prepared and propagated according to any conventional technique in the art (e.g., WO 96 / 17070) using a complementing cell line or helper virus that provides in trans the defective viral genes necessary for viral replication. Cell lines 293 (Graham et al., 1977, J. Gen. Virol. 36:59-72) and PERC6 (Fallaux et al., 1998, Human Gene Therapy 9:1909-1917) are commonly used to complement E1 deletions. Other cell lines have been engineered to complement defective vectors (Yeh et al., 1996, J. Virol. 70:559-565; Kroughak and Graham, 1995, Human Gene Ther. 6:1575-1586; Wang et al., 1995, Gene Ther. 2:775-783; Lusky et al., 1998, J. Virol. 72:2022-203; EP 919627 and WO 97 / 04119). Adenoviral particles can be recovered not only from the culture supernatant but also from the cells after lysis, and, if necessary, can be further purified according to standard techniques (e.g., chromatography, ultracentrifugation, as described in WO 96 / 27677, WO 98 / 00524, WO 98 / 26048, and WO 00 / 50573).

[0179] Cell type-specific targeting can be achieved with vectors derived from adenoviruses, which have a broad host range, by modifying viral surface proteins.For example, the specificity of adenovirus infection is determined by attachment to cell receptors present on the surface of permissive cells.In this regard, the fiber and penton present on the surface of adenovirus capsids play an important role in cell attachment (Defer et al., 1990, J.Virol.64:3661-3673).Therefore, genetic modification of viral genes encoding fiber and / or penton can achieve cell targeting of adenoviruses, producing modified fiber and / or penton capable of specific interaction with unique cell surface receptors.Examples of such modifications are described in Wickarn et al., 1997, J.Virol.71:8221-8229; Arriberg et al., 1997, Virol.Chem 268:6866-6869; Roux et al., 1989, Proc.Natl.Acad.Sci.USA 86:9079-9083;Miller and Vile,1995,FASEB J. 9:190-199; WO 93 / 09221 and WO 95 / 28494.

[0180] In a particularly preferred embodiment, adeno-associated virus sequences are used as vectors. Vectors derived from the human parvovirus AAV-2 (adeno-associated virus type 2) are one of the most promising gene delivery vehicles currently under development. Several features of this system for packaging single-stranded DNA suggest it as a possible alternative to naked DNA for delivery. A key attractive feature is that, in contrast to other viral vectors such as vaccinia or adenovirus, AAV vectors do not express any viral genes. The only viral DNA sequence contained in the vaccine construct is a 145-bp inverted terminal repeat (ITR). Thus, as with naked DNA immunization, the only gene expressed is that of an allergen or allergen chimera. Additionally, AAV vectors transduce both dividing and non-dividing cells, such as human peripheral blood monocyte-derived dendritic cells, and transgene expression is known to be persistent, allowing for oral and intranasal delivery for the generation of mucosal immunity. Also, the amount of DNA required appears to be significantly less than several orders of magnitude, at 50ug or about 10 15 As opposed to a naked DNA dose of 10 copies 10 ~10 11 A DNA dose of 1 particle or 1 copy is the maximal response.

[0181] In one embodiment, AAV vectors are packaged by cotransfecting a suitable cell line (e.g., human 293 cells) with DNA comprising the AAV ITR chimeric protein-encoding construct and the AAV helper plasmid ACG2, which contains the AAV coding region (AAV rep and cap genes) without the ITRs. The cells are then infected with adenovirus Ad5. The vectors can be purified from cell lysates using methods known in the art (e.g., cesium chloride density gradient ultracentrifugation) and verified to be free of detectable replication-competent AAV or adenovirus (e.g., by cytopathic effect bioassay). AAV titers can be determined by quantitative PCR using viral DNA samples prepared after digestion with proteinase K. Preferably, the vector titer generated by such methods is approximately 5 x 10 per ml. 12 ~1×10 13 DNase-resistant particles.

[0182] In other embodiments, retroviral vectors are used. Retroviruses are a class of integrative viruses that replicate using a virally encoded reverse transcriptase enzyme to copy the viral RNA genome into double-stranded DNA that integrates into the chromosomal DNA of infected cells (e.g., target cells). Such vectors include those derived from murine leukemia viruses, particularly the Moloney (Gilboa et al., 1988, Adv. Exp. Med. Biol. 241:29) or Friend's FB29 strain (WO 95 / 01447). Generally, retroviral vectors lack all or part of the viral gag, pol, and env genes, while retaining the 5' and 3' LTRs and encapsidation sequences. These elements can be modified to increase the expression level or stability of the retroviral vector. Such modifications include replacing the retroviral encapsidation sequence with one of the retrotransposons, such as VL30 (see, e.g., U.S. Pat. No. 5,747,323). Preferably, the improved LAMP construct is inserted downstream of the encapsidation sequence, preferably in the opposite orientation relative to the retroviral genome. Cell-specific targeting can be achieved by conjugating antibodies or antibody fragments to retroviral envelope proteins, as known in the art.

[0183] Retroviral particles are prepared in the presence of a helper virus or in an appropriate complementing (packaging) cell line containing and integrating the retroviral vector's defective retroviral genes (e.g., gag / pol and env) into its genome. Such cell lines have been described in the prior art (Miller and Rosman, 1989, BioTechniques 7:980; Danos and Mulligan, 1988, Proc. Natl. Acad. Sci. USA 85:6460; Markowitz et al., 1988, Virol. 167:400). The product of the env gene is involved in binding of the virus particle to viral receptors present on the surface of target cells, thus determining the host range of the retroviral particle. In the context of the present invention, it is advantageous to use packaging cell lines such as PA317 cells (ATCC CRL 9078) or 293EI6 (WO 97 / 35996) that contain amphotropic envelope proteins, allowing infection of human and other species of target cells. Retroviral particles are preferably recovered from the culture supernatant and, if necessary, can be further purified according to standard techniques (eg, chromatography, ultracentrifugation).

[0184] Other suitable viruses include poxviruses. The genomes of several members of the Poxviridae family have been mapped and sequenced. Poxvirus vectors can be derived from any member of the Poxviridae family, particularly canarypox, fowlpox, and vaccinia viruses. Suitable vaccinia viruses include, but are not limited to, the Copenhagen strain (Goebel et al., 1990, Virol. 179:247-266; Johnson et al., 1993, Virol. 196:381-401), the Wyeth strain, and the modified Ankara (MVA) strain (Antoine et al., 1998, Virol. 244:365-396). General conditions for constructing vaccinia virus vectors are known in the art (see, e.g., EP 83 286 and EP 206 920; Mayr et al., 1975, Infection 3:6-14; Sutter and Moss, 1992, Proc. Natl. Acad. Sci. USA 89:10847-10851). Preferably, the polynucleotide of interest is inserted into a non-essential locus, such as a non-coding intergenic region, or any gene whose inactivation or deletion does not significantly impair viral growth and replication.

[0185] Poxvirus particles are prepared as described in the art (Piccini et al., 1987, Methods of Enzymology 153:545-563; U.S. Pat. Nos. 4,769,330; 4,772,848; 4,603,112; 5,100,587; and 5,179,993). Generally, a donor plasmid is constructed, amplified by growth in E. coli, and isolated by conventional procedures. It is then introduced into a suitable cell culture (e.g., chicken embryo fibroblasts) along with the poxvirus genome to produce poxvirus particles by homologous recombination. After a lysis step (e.g., chemical lysis, freeze / thaw, osmotic shock, sonication, etc.), they can be recovered from the culture supernatant or cultured cells. Successive rounds of plaque purification can be used to remove contaminating wild-type virus. The viral particles can then be purified using techniques known in the art (eg, chromatographic methods or ultracentrifugation on cesium chloride or sucrose gradients).

[0186] The use of vaccinia as a live virus vaccine in the global campaign to eradicate smallpox made it an obvious choice for development as a live recombinant vaccine vector. Live recombinant vaccinia viruses expressing nearly 100 different foreign proteins have been reported, many of which have become effective experimental vaccines (reviewed by Moss and Flexner, 1987). Vaccinia is particularly versatile as an expression vector due to its large genome size, its ability to accommodate foreign DNA of at least 25,000 base pairs, and its ability to infect most eukaryotic cell types, including insect cells (ibid.). Unlike other DNA viruses, poxviruses replicate only in the cytoplasm of infected cells, reducing the possibility of genetic exchange between recombinant viral DNA and the host chromosome. Recombinant vaccinia vectors have been shown to properly process and express proteins from a variety of sources, including humans, other mammals, parasites, RNA and DNA viruses, bacteria, and bacteriophages.

[0187] Expression of the DNA encoding the foreign protein is controlled by host virus regulatory elements, including an upstream promoter sequence and, if necessary, an RNA processing signal. Insertion of foreign DNA into non-essential regions of the vaccinia virus genome has been achieved by homologous recombination (Panicali et al., Proc. Nat'l. Acad. Sci. USA, 79:4927, 1982; Mackett et al., Proc. Nat'l. Acad. Sci. USA, 79:7415, 1982).

[0188] Improved LAMP constructs can express allergens through transcriptional regulatory elements at or near the insertion site, or through more precise genetic manipulation. Plasmid vectors have been constructed that greatly facilitate the insertion and expression of foreign genes (Mackett et al., J. Virol., 49:857, 1982). These vectors contain an expression site consisting of a vaccinia transcription promoter and one or more unique restriction endonuclease sites for the insertion of foreign coding sequences flanked by DNA from non-essential regions of the vaccinia genome. The choice of promoter determines both the timing (e.g., early or late) and level of expression, while the flanking DNA sequences determine the site of homologous recombination.

[0189] Only about one in 1,000 virus particles produced by this procedure is recombinant. Recombinant virus plaques can be identified by DNA hybridization, but efficient selection procedures have been developed. By using segments of the non-essential vaccinia virus thymidine kinase (TK) gene as flanking sequences, the foreign gene is recombined into the TK locus, inactivating the TK gene upon insertion. Selection of TK viruses is achieved by performing a virus plaque assay in TK cells in the presence of 5-bromodeoxyuridine. Phosphorylation of the nucleoside analog and its consequent lethal incorporation into viral DNA occurs only in cells infected with the TK parent virus. Depending on the efficiency of transfection and recombination, up to 80 plaques represent the desired recombinant, while the remainder represent naturally occurring TK mutants.

[0190] Plasmid vectors containing the E. coli β-galactosidase gene and an expression site for a second gene provide another method for distinguishing recombinants from the parent virus (Chakrabarti et al., Mol. Cell. Biol., 5:3403, 1985). Plaques formed by such recombinants can be clearly identified by the blue color produced by the addition of an appropriate indicator. The combination of TK selection and β-galactosidase expression allows for easy and rapid isolation of recombinant viruses. Recombinants are then amplified by growth in an appropriate cell line, and expression of the inserted gene is checked by appropriate enzymatic, immunological, or physical procedures.

[0191] The upper limit of the amount of genetic information that can be added to the vaccinia virus genome is still unknown. However, the addition of approximately 25,000 base pairs of foreign DNA had no apparent adverse effect on virus yield (Smith et al., Gene, 25:21, 1983). If necessary, large segments of the vaccinia virus genome can be deleted to provide additional capacity (Moss et al., J. Virol. 40:387, 1981).

[0192] The viral capsid molecule may comprise a targeting moiety that facilitates targeting and / or entry into cells.Suitable targeting molecules include, but are not limited to, chemical conjugates, lipids, glycolipids, hormones, sugars, polymers (e.g., PEG, polylysine, PEI, etc.), peptides, polypeptides (see, for example, International Publication No. 94 / 40958), vitamins, antigens, lectins, antibodies and their fragments.Preferably, such targeting molecules recognize and bind to cell-specific markers, tissue-specific markers, cell receptors, viral antigens, antigenic epitopes or tumor-associated markers.

[0193] Compositions containing improved viral particle-based LAMP constructs are available in 10-10 14 iu (infectious units), preferably 10 to 10 11The LAMP construct may be formulated in the form of a 1u dose. The potency may be determined by conventional techniques. The dose of the LAMP construct is preferably 0.01 to 10 mg / kg, more specifically 0.1 to 2 mg / kg.

[0194] self-replicating RNA Self-replicating RNA virus vectors can also be constructed using the improved LAMP construct described herein.For example, alphavirus, flavivirus, measles virus and rhabdovirus can be used to generate self-replicating RNA virus vaccines.Preferred strains of self-replicating RNA virus include but are not limited to rabies virus (RABV), vesicular stomatitis virus (VSV), West Nile virus, Kunjin virus, Semliki Forest virus (SFV), Sindbis virus (SIN) and / or Venezuelan equine encephalitis virus (VEE).

[0195] Self-replicating RNA viruses mimic live attenuated vaccines without the risk of reversion to pathogenicity because they express native antigens upon delivery to tissues. They also stimulate the innate immune system, enhancing responses. See, for example, Ljungberg, K., "Self-replicating alphavirus RNA vaccines," Expert Rev Vaccines (2): 177-94 (2015); Lundstrom, K., "Oncolytic Alphaviruses in Cancer Immunotherapy," Vaccines 5:9 (2017); Lundstrom, K., "Replicon RNA Viral Vectors as Vaccines," Vaccines 4:39 (2016) (incorporated herein by reference in their entirety). The use of self-replicating vaccines containing the improved LAMP constructs described herein can also be used in prime-boost protocols.

[0196] In addition, self-replicating RNA viruses can also be encapsulated in liposomes as described herein to improve delivery and targeting. Immunization with self-replicating RNA viruses containing the improved LAMP constructs described herein can provide higher transient expression levels of allergens, leading to the generation of neutralizing antibody responses and protection against lethal challenge under safe conditions.

[0197] Cell-Based Delivery Vehicles The improved LAMP constructs of the present invention can be delivered to target cells by other cells ("delivery cells") containing the construct. Methods for introducing constructs into cells are known in the art and include microinjection of DNA into the nucleus of the cell (Capechi et al., 1980, Cell 22:479-488); transfection of CaP04 (Chen and Okayama, 1987, Mol. Cell Biol. 7:2745-2752), electroporation (Chu et al., 1987, Nucleic Acids Res. 15:1311-1326); lipofection / liposome fusion (Feigner et al., 1987, Proc. Natl. Acad. Sci. USA 84:7413-7417), and particle bombardment (Yang et al., 1990, Proc. Natl. Acad. Sci. USA 87:9568-9572). Suitable cells include autologous and non-autologous cells, and may include heterologous cells. Delivery cells can be induced to deliver their contents to target cells by inducing their death (e.g., by providing the cells with an inducible suicide gene).

[0198] Accessory molecules Compositions comprising the improved LAMP constructs of the present invention may include one or more accessory molecules to facilitate the introduction of the improved LAMP construct into cells and / or to enhance a particular therapeutic effect and / or to enhance antibody production.

[0199] Additionally, compositions containing the improved LAMP constructs of the present invention may contain one or more stabilizing substances, such as lipids, nuclease inhibitors, hydrogels, hyaluronidase (WO 98 / 53853), collagenase, polymers, chelating agents (EP 890362), to inhibit degradation in the animal / human body and / or improve transfection / infection of the vector into target cells. Such substances may be used alone or in combination (e.g., cationic and neutral lipids).

[0200] It has also been shown that adenovirus proteins can destabilize endosomes and enhance DNA uptake into cells. Mixing adenovirus with a solution containing lipid-complexed DNA vectors, or using a protein cross-linking agent to bind DNA to polylysine covalently attached to adenovirus, can significantly improve the uptake and expression of improved LAMP constructs (see, for example, Curiel et al., 1992, Am. I. Respir. Cell. Mol. Biol. 6: 247-252).

[0201] host cell The improved LAMP constructs of the present invention can be expressed in a variety of host cells, including, but not limited to, prokaryotic cells (e.g., Escherichia coli, Staphylococcus sp., Bacillus sp.); yeast cells (e.g., Saccharomyces sp.); insect cells; nematode cells; plant cells; amphibian cells (e.g., Xenopus laevis); avian cells and mammalian cells (e.g., human cells, murine cells, mammalian cell lines, primary cultured mammalian cells, e.g., from dissected tissue).

[0202] The molecule can be expressed in a host cell isolated from an organism, a host cell that is part of an organism, or a host cell that is introduced into an organism. In one embodiment, the improved LAMP construct is expressed in a host cell in vitro, for example, in culture. In another embodiment, the improved LAMP construct is expressed in a transgenic organism (e.g., a transgenic mouse, rat, rabbit, pig, primate, etc.) that contains somatic and / or germline cells that contain nucleic acids encoding the improved LAMP construct. Methods for constructing transgenic animals are well known and routine in the art.

[0203] The improved LAMP construct can also be introduced into cells in vitro, and the cells (e.g., stem cells, hematopoietic cells, lymphocytes, etc.) can be introduced into a host organism. The cells can be heterologous or autologous to the host organism. For example, cells are obtained from a host organism, and the improved LAMP construct is introduced into the cells in vitro, and then reintroduced into the host organism.

[0204] antigen presenting cells In a preferred embodiment of the present invention, the improved LAMP constructs described herein are introduced into natural or engineered antigen-presenting cells.

[0205] As used herein, the term "antigen-presenting cell" (APC) refers to any cell that presents an antigen (e.g., an allergen) on its surface in association with a major histocompatibility complex molecule, preferably a class II molecule, or a portion thereof. Examples of suitable APCs are described in detail below and include, but are not limited to, whole cells, such as macrophages, dendritic cells, B cells, hybrid APCs, and foster antigen-presenting cells. Methods for producing hybrid APCs have been described and are known in the art.

[0206] Dendritic cells (DCs) are potent antigen-presenting cells. DCs have been shown to provide all the signals necessary for T cell activation and proliferation. These signals can be classified into two types. The first type, which confers specificity to the immune response, is mediated by the interaction of the T cell receptor / CD3 ("TCR / CD3") complex with allergenic peptides presented by major histocompatibility complex ("MHC") class I or II proteins on the surface of APCs. This interaction is necessary but not sufficient for T cell activation to occur. In fact, in the absence of the second type of signal, the first type of signal can lead to T cell anergy. The second type of signal, termed a costimulatory signal, is neither antigen-specific nor MHC-restricted and, in the presence of the first type of signal, can lead to the induction of a full T cell proliferative response and T cell effector function.

[0207] Several molecules have been shown to enhance costimulatory activity, including, but not limited to, heat-stable antigen (HSA), chondroitin sulfate-modified MHC invariant chain (Ii-CS), intracellular adhesion molecule I (ICAM-1), and the B7 costimulatory molecule on the surface of APCs and its counter-receptors CD28 or CTLA-4 on T cells.

[0208] Other important costimulatory molecules are CD40, CD54, CD80, and CD86. As used herein, the term "costimulatory molecule" encompasses any single molecule or combination of molecules that, when acting together with a peptide / MHC complex bound by the TCR on the surface of a T cell, provides a costimulatory effect that achieves activation of the T cell that binds the peptide. Thus, the term encompasses B7 or other costimulatory molecules, fragments thereof, on an APC (alone, complexed with another molecule, or as part of a fusion protein) that, together with the peptide / MHC complex, bind to a cognate ligand and result in T cell activation upon specific binding of the peptide by the TCR on the T cell surface. Costimulatory molecules are commercially available from a variety of suppliers, including, for example, Beckman Coulter.

[0209] In one embodiment of the present invention, the methods described in Romani et al., J. Immunol. Methods 196:135-151, 1996 and Bender et al., J. Immunol. Methods 196:121-135, 1996, are used to generate immature and mature dendritic cells from peripheral blood mononuclear cells (PBMCs) from mammals, such as murines, apes, or humans. Briefly, isolated PBMCs are pretreated to deplete T and B cells using immunomagnetic techniques. The lymphocyte-depleted PBMCs are then cultured in RPMI medium 9 supplemented with human plasma (preferably autologous plasma) and GM-CSF / IL-4 for, for example, about 7 days to generate dendritic cells. Dendritic cells are nonadherent compared to monocyte precursor cells. Therefore, on approximately day 7, nonadherent cells are harvested for further processing.

[0210] PBMC-derived dendritic cells in the presence of GM-CSF and IL-4 are immature in that they lose their nonadherent properties and can revert to a macrophage cell fate when cytokine stimulation is removed from the culture. Dendritic cells in their immature state are highly efficient at processing native protein antigens in the MHC class II-restricted pathway (Romani et al., J. Exp. Med. 169:1169, 1989). Further maturation of cultured dendritic cells is achieved by culturing them for three days in macrophage-conditioned medium (CM) containing the necessary maturation factors. Mature dendritic cells are less able to capture new proteins for presentation, but are much better at stimulating resting T cells (both CD4 and CD8) to grow and differentiate.

[0211] Mature dendritic cells can be identified by their morphological changes, such as the formation of more motile cytoplasmic processes; nonadherence; the presence of at least one of the markers CD83, CD68, HLA-DR, or CD86; or the loss of Fc receptors such as CD115 (reviewed in Steinman, Annu. Rev. Immunol. 9:271, 1991). Mature dendritic cells can be collected and analyzed using typical cytofluorometry and cell sorting techniques and devices, such as FACScan and FACStar. Primary antibodies used for flow cytometry are specific for cell surface antigens of mature dendritic cells and are commercially available. Secondary antibodies can be biotinylated Ig followed by FITC- or PE-conjugated streptavidin.

[0212] Alternatively, others have reported methods for upregulating (activating) dendritic cells and converting monocytes to an activated dendritic cell phenotype. This method involves adding a calcium ionophore to the culture medium to convert monocytes into activated dendritic cells. For example, the addition of calcium ionophore A23187 at the beginning of a 24-48 h culture period results in uniform activation and dendritic cell phenotype conversion of the pooled "monocyte + DC" fraction. Characteristically, the activated population becomes uniformly CD14 (Leu M3) negative and upregulates HLA-DR, HLA-DQ, ICAM-1, 137.1, and 137.2. Furthermore, this activated bulk population functions in small numbers upon further purification. Specific combinations of cytokines have been successfully used to amplify (or partially replace) the activation / conversion achieved with the calcium ionophore; these cytokines include, but are not limited to, G-CSF, GM-CSF, IL-2, and IL-4. Each cytokine, when given alone, is insufficient for optimal upregulation.

[0213] The second approach to isolating APCs is to collect the relatively large number of pre-committed APCs already circulating in the blood. Previous techniques for isolating committed APCs from human peripheral blood involved a combination of physical procedures, such as metrizamide gradients and adherent / non-adherent steps (Freudenthal et al., PNAS 87:7698-7702, 1990); Percoll gradient separation (Mehta-Damani et al., J. Immunol. 153:996-1003, 1994); and fluorescence-activated cell sorting (Thomas et al., J. Immunol. 151:6840-52, 1993).

[0214] There are many other methods routine in the art for isolating professional antigen-presenting cells (or their precursors), and such methods and other methods that may be developed are not limiting and are encompassed within the scope of the present invention.

[0215] In one embodiment, the APCs and thus the cells presenting one or more of the allergens described herein are autologous. In another embodiment, the APCs presenting the allergens described herein are allogeneic, i.e., derived from a different subject.

[0216] As discussed herein, the improved LAMP constructs can be introduced into APCs using the above methods, including but not limited to, transfection, electroporation, fusion, microinjection, viral-based delivery, or cell-based delivery, or other methods known in the art. Arthur et al., Cancer Gene Therapy 4(1):17-25, 1997, reports a comparison of gene transfer methods in human dendritic cells.

[0217] The amino acid and nucleotide sequences, including the gene designations, consensus sequences, of known, partial, and putative human leukocyte antigens (HLA) and human MHC variants have been published (see, e.g., Zemmour and Parham, Immunogenetics 33:310-320, 1991), and cell lines expressing HLA variants are known and publicly available, many available from the American Type Culture Collection ("ATCC"). Thus, using PCR, a nucleotide sequence encoding MHC class II can be readily operably linked into an expression vector of the invention, which is then used to transform appropriate cells for expression.

[0218] Professional APCs such as macrophages, B cells, monocytes, dendritic cells, and Langerhans cells can be used. These are collected from the blood or tissue of 1) autologous donors, 2) heterologous donors with HLA specificities different from those of the host being treated, or 3) xenogeneic donors of different species using standard procedures (Coligan et al., *Current Protocols in Immunology*, sections 3 and 14, 1994). Cells can be isolated from normal hosts or from patients with infectious diseases, cancer, autoimmune diseases, or allergies.

[0219] Professional APCs can be obtained from peripheral blood using leukocyte depletion and "FICOLL / HYPAQUE" density gradient centrifugation (stepwise centrifugation through Ficoll and discontinuous Percoll density gradients), a procedure that avoids exposure of APCs to allergens that can be internalized by the APCs, resulting in activation of T cells that are not specific for the allergen X (SEQ ID NO: Y) of interest.

[0220] Cells that are not naturally antigen-presenting can be engineered to become antigen-presenting by introducing sequences encoding appropriate molecules. For example, nucleic acid sequences encoding MHC class II molecules, accessory molecules, costimulatory molecules, and antigen processing auxiliary molecules can be introduced after direct synthesis, cloning, purification, etc. of DNA from cells containing such genes. One suitable means for obtaining genes encoding molecules used in the improved LAMP constructs and methods described herein is by polymerase chain reaction (PCR) amplification of selected nucleic acid templates with selected oligonucleotide primer pairs. For example, epithelial cells, endothelial cells, tumor cells, fibroblasts, activated T cells, eosinophils, keratinocytes, astrocytes, microglial cells, thymic cortical epithelial cells, Schwann cells, retinal pigment epithelial cells, myoblasts, vascular smooth muscle cells, chondrocytes, intestinal cells, thyroid cells, and renal tubular cells can be used. These may be primary cells recently explanted from a host and not passaged extensively in cell culture to form established cell lines or relatively homogeneous established cell lines that can be propagated for many generations or indefinitely.

[0221] Cells that are not professional APCs can be isolated from any tissue of an autologous, heterologous, or xenogeneic donor in which they reside using various known isolation methods (Darling, Animal Cells: Culture and Media. J. Wiley, New York, 1994; Freshney, Culture of Animal Cells. Alan R. Liss, Inc., New York, 1987). Non-autologous cells, such as heterologous or xenogeneic cells, can be engineered ex vivo to express HLA class I and class II molecules that match known human HLA specificities. These cells can then be introduced into a human subject that matches the HLA specificity of the engineered cells. The cells are further engineered ex vivo to express one or more LAMP constructs of the present invention.

[0222] The engineered cells are maintained in cell culture using standard cell culture methods (Darling, Animal Cells: Culture and Media, J. Wiley, New York, 1994; Freshney, Culture of Animal Cells, Alan R. Liss, Inc., New York, 1987). Cell lines for use in the present invention can be obtained from a variety of sources (e.g., ATCC Catalogue of Cell Lines & Hybidomas, American Type Culture Collection, 8th edition, 1995) or produced using standard methods (Freshney, Culture of Immortalized Cells, Wiley-Liss, New York, 1996). Non-transformed cell lines are preferred for use in human subjects.

[0223] In one embodiment, CD34+ precursors that differentiate into dendritic cells under the influence of GM-CSF are obtained from the subject's body, and a nucleic acid encoding the LAMP construct of the present invention is introduced into the cells, which are then injected into the subject. The use of the improved LAMP construct described herein enhances the association of peptides derived from specific antigens with MHC class II molecules on transduced antigen-presenting cells, significantly resulting in stronger systemic T cell-dependent immune responses and / or antibody production. The antigen-presenting cells transfected in this strategy are preferably autologous cells, but any MHC class II cells that effectively present antigens in the host can be used as described above.

[0224] peptide vaccine Peptide vaccines encoded by the improved LAMP constructs are also within the scope of the present invention. Preferably, the allergen is processed within the compartment / organelle (or a subsequent compartment / organelle to which it is delivered) to generate epitopes bound to MHC class II molecules that can modulate the immune response.

[0225] The peptide vaccine encoded by the improved LAMP construct can also be bound to a membrane structure to facilitate administration to the body of an organism. For example, the peptide vaccine encoded by the improved LAMP construct can be incorporated into a liposome, as described in U.S. Patent No. 4,448,765.

[0226] If a protein or polypeptide is to be used as an immunogen, it can be produced by expressing any one or more of the improved LAMP constructs described herein in a recombinant cell, or it can be prepared by chemical synthesis. For example, the Merrifield technique (Journal of the American Chemical Society, vol. 85, pp. 2149-2154, 1968) can be used.

[0227] Allergy Treatment The present invention provides formulations useful for treating hay fever correlated with allergen X. It has previously been determined that delivering a DNA plasmid encoding an allergen protein coding sequence to an animal can increase IFN-γ production and decrease IL-4 production, which is useful in treating animals allergic to a specific allergen. The present invention provides improved LAMP constructs for treating patients with allergies correlated with allergen X. The improved LAMP constructs have specific intracellular trafficking patterns that cross MHC class II vesicles, resulting in enhanced presentation of allergen X to the immune system, specifically resulting in enhanced antibody responses. The nucleic acids and compositions provided by the present invention are useful for allergy immunotherapy.

[0228] The present invention provides a formulation that, when administered to cells, results in an increased specific antibody response. Increased antibody responses to allergen X are useful for treating IgE-mediated allergic diseases. IgE has specific properties related to its cell restriction and intracellular signaling resulting from binding to cognate allergens. IgE is produced against allergens when B cells receive IL-4 secreted by Th2 cells. This serves to instruct B cells to produce IgE class antibodies. Upon secretion by B cells, IgE binds to its high-affinity receptor Fc-εRI expressed by mast cells and eosinophils, thereby sensitizing these cells and animals to subsequent allergen exposure. Consequently, allergic symptoms can be triggered by ingestion, inhalation, or transmucosal contact with allergens. Due to the binding properties of antibodies, one method of alleviating allergic symptoms has been proposed to be chelating free allergens available for binding by IgE through competition with other antibody classes. In particular, allergy formulations that increase IgG have been proposed as a route to alleviating allergic diseases. The invention described herein induces enhanced IgG production, thus causing a decrease in the IgE to IgG ratio in a clinically important manner.

[0229] In a particularly preferred embodiment, the present invention provides a method for treating or preventing allergy to allergen X by using the improved LAMP construct described herein. In one preferred method, the improved LAMP construct comprising a polynucleotide encoding allergen X described herein targets the allergen X allergen to the endosomal / lysosomal compartment or lysosome-related organelle for association with MHC class II molecules in the compartment / organelle or in another compartment / organelle to which the antigen is delivered. Such chimeric DNA molecules may encode the above-mentioned additional domain sequences (e.g., sequences encoding transmembrane domains, signal sequences, cytoplasmic domains for targeting endosomal / lysosomal compartments or lysosome-related organelles, dileucine domains, Tyr motif domains, proline-rich domains, Ser-Val-Val domains, etc.).

[0230] host cell In bacterial systems, many expression vectors can be advantageously selected depending on the intended use. For example, if large quantities of protein are to be produced (e.g., to express the encoded polypeptide of an improved LAMP construct), a vector directing the expression of high-level fusion protein products that are easily purified may be desirable. Such vectors include, but are not limited to, the E. coli expression vector pUR278 (Ruther et al., EMBO 1.2:1791 (1983)), in which coding sequences can be individually ligated in frame with the lac Z coding region of the vector to produce a fusion protein; pIN vectors (Inouye & Inouye, Nucleic Acids Res. 13:3101-3109 (1985); Van Heeke & Schuster, J. Biol. Chem. 24:5503-5509 (1989)); and the like. pGEX vectors can also be used to express foreign polypeptides as fusion proteins with glutathione 5-transferase (GST). In general, such fusion proteins are soluble and can easily be purified from lysed cells by adsorption and binding to matrix glutathione-agarose beads followed by elution in the presence of free glutathione. The pGEX vectors are designed to include thrombin or factor Xa protease cleavage sites so that the cloned target gene product can be released from the GST moiety.

[0231] In an insect system, Autographa californica nuclear polyhedrosis virus (AcNPV) can be used as a vector to express the encoded polypeptides of the improved LAMP construct. The virus is grown in Spodoptera frugiperda cells. The coding sequence can be cloned individually into non-essential regions of the virus (e.g., the polyhedrin gene) and placed under control of an AcNPV promoter (e.g., the polyhedrin promoter).

[0232] In mammalian host cells, many virus-based expression systems can be used to express the polypeptide encoded by the improved LAMP construct.When using adenovirus as an expression vector, the coding sequence of interest can be ligated to the adenovirus transcription / translation control complex, such as the late promoter and tripartite leader sequence.Then, this chimeric gene can be inserted into the adenovirus genome by in vitro or in vivo recombination.

[0233] Insertion into a non-essential region of the viral genome (e.g., region E1 or E3) will result in a viable recombinant virus capable of expressing the encoded polypeptide of the improved LAMP construct in an infected host (see, e.g., Logan & Shenk, Proc. Natl. Acad. Sci. USA 8 1:355-359 (1984)).

[0234] Specific initiation signals may also be required for efficient translation of inserted coding sequences. These signals include the ATG initiation codon and adjacent sequences. Furthermore, the initiation codon must be in phase with the reading frame of the desired coding sequence to ensure translation of the entire insert. These exogenous translational control signals and initiation codons can be of a variety of origins, both natural and synthetic. The efficiency of expression can be enhanced by the inclusion of appropriate transcription enhancer elements, transcription terminators, etc. (See, e.g., Bittner et al., Methods in Enzymol. 153:51-544 (1987)).

[0235] In addition, a host cell line can be selected that modulates the expression of the inserted sequence or modifies and processes the gene product in the specific manner desired. Such modifications (e.g., glycosylation) and processing (e.g., cleavage) of protein products can be important for the function of the protein. Different host cells have characteristic and specific mechanisms for post-translational processing and modification of proteins and gene products. To ensure the correct modification and processing of the expressed foreign protein, an appropriate cell line or host system can be selected. For this purpose, eukaryotic host cells that possess the cellular machinery for proper processing of the primary transcript, glycosylation, and phosphorylation of the gene product can be used. Such mammalian host cells include, but are not limited to, CHO, VERY, BHK, Hela, COS, NSO, MDCK, 293, 3T3, and W138.

[0236] For long-term, high-yield production of recombinant proteins, stable expression is preferred. For example, cell lines can be engineered that stably express the encoded polypeptides of improved LAMP constructs. Rather than using expression vectors containing viral origins of replication, host cells can be transformed with a polynucleotide and a selectable marker controlled by appropriate expression control elements (e.g., promoter, enhancer, sequence, transcription terminator, polyadenylation site, etc.). After introduction of the exogenous polynucleotide, engineered cells can be grown in enriched medium for 1-2 days and then switched to selective medium. The selectable marker in the recombinant plasmid confers resistance to selection, allowing cells to stably integrate the plasmid into their chromosomes and grow to form foci, which can then be cloned and expanded into cell lines. This method can be advantageously used to engineer cell lines that express the encoded polypeptides of improved LAMP constructs.

[0237] including, but not limited to, herpes simplex virus thymidine kinase (Wigler et al., Cell 11:223 (1977)), hypoxanthine guanine phosphoribosyltransferase (Szybalska & Szybalski, Proc. Natl. Acad. Sci. USA 48:202 (1992)), and adenine phosphoribosyltransferase (Lowy et al., Cell 22:8 17 (1980)) genes can be used in tk-, hgprt-, or aprt- cells, respectively. Additionally, antimetabolite resistance can be used as the basis for selection of the following genes: dhfr, which confers resistance to methotrexate (Wigler et al., Natl. Acad. Sci. USA 77:357 (1980); O'Hare et al., Proc. Natl. Acad. Sci. USA 78:1527 (1981)); gpt, which confers resistance to mycophenolic acid (Mulligan & Berg, Proc. Natl. Acad. Sci. USA 78:2072 (1981)); neo, which confers resistance to the aminoglycoside G-418 (Goldspiel et al., Clinical Pharmacy, 12:488-505 (1993); Wu and Wu, Biotherapy 3:87-95 (1991); Tolstoshev, Ann. Rev. Pharmacol. Toxicol. 32:573-596 (1993); Mulligan, Science 260:926-932 (1993); and Morgan and Anderson, Ann. Rev. Biochem. 62:191-217 (1993); TIB TECH 11(5):155-2 15 (May; 1993)); and hygro, which confers resistance to hygromycin (Santerre et al., Gene 30:147 (1984)).Methods generally known in the field of recombinant DNA technology can be routinely applied to select the desired recombinant clones, and such methods are described, for example, in Ausubel et al., (eds.), Current Protocols in Molecular Biology, John Wiley & Sons, NY (1993); Kriegler, Gene Transfer and Expression, A Laboratory Manual, Stockton Press, NY (1990); and Chapters 12 and 13, Dracopoli et al., (eds), Current Protocols in Human Genetics, John Wiley & Sons, NY (1994); Colberre-Garapin et al., J. Mol. Biol. 150:1 (1981).

[0238] The expression level of the polypeptide encoded by the improved LAMP construct can be increased by vector amplification (for a review, see Bebbington and Hentschel, The Use of Vectors Based on Gene Amplification for the Expression of Cloned Genes in Mammalian Cells in DNA Cloning, Vol. 3 (Academic Press, New York, 1987)). If the marker in the vector system expressing the polypeptide encoded by the improved LAMP construct is amplifiable, increasing the level of inhibitor present in the host cell culture will increase the copy number of the marker gene. Since the amplified region is associated with the coding sequence, production of the polypeptide encoded by the improved LAMP construct will also increase (Crouse et al., Mol. Cell. Biol. 3:257 (1983)).

[0239] Other elements that may be included in the vector sequence include, but are not limited to, heterologous signal peptides (secretion signals), membrane-anchoring sequences, introns, alternative splice sites, translation start and stop signals, inteins, biotinylation sites and other sites that facilitate post-translational modification, purification tags, sequences encoding fusions to other proteins or peptides, distinct coding regions separated by internal ribosome reentry sites, sequences encoding "marker" proteins that confer, for example, selectability (e.g., antibiotic resistance) or sortability (e.g., fluorescence), modified nucleotides, and other known polynucleotide cis-acting features.

[0240] Once the encoded polypeptide of the improved LAMP construct is produced by recombinant expression, it can be purified by any method known in the art for protein purification, such as chromatography (e.g., ion exchange, affinity (particularly through affinity for Protein A and immunoaffinity for specific allergens) and sizing column chromatography), centrifugation, differential solubility, or other standard techniques for protein purification. Additionally, the encoded polypeptide of the improved LAMP construct can be fused to heterologous polypeptide sequences described herein or known in the art to facilitate purification.

[0241] Administration The vaccine material of the present invention may comprise the improved immunostimulatory LAMP constructs described herein, or may be a recombinant microorganism or an antigen-presenting cell expressing the improved immunostimulatory LAMP construct. The preparation of the improved LAMP constructs comprising the vaccine material of the present invention and the administration of such improved LAMP constructs for immunization of individuals are accomplished according to immunization principles well known to those skilled in the art.

[0242] Large quantities of these materials can be obtained by culturing recombinant or transformed cells containing a replicon expressing the improved LAMP construct described herein. Cultivation methods are well known to those skilled in the art and are taught in one or more of the documents cited above. Improved LAMP construct vaccines are generally produced by culturing recombinant or transformed cells and formulated into a pharmacologically acceptable solution or suspension (usually a physiologically compatible aqueous solution), or coated tablets, tablets, capsules, suppositories, or ampoules as described in the art, for example, U.S. Pat. No. 4,446,128 (which is incorporated herein by reference). Administration can be by any suitable route, including oral, rectal, intranasal, or injection, and the injection can be, for example, transdermal, subcutaneous, intramuscular, or intravenous.

[0243] The improved LAMP construct is administered to a mammal in an amount sufficient to induce an immune response in the mammal. A preferred minimum dose is the amount necessary to induce antibody formation to a concentration at least four times that present prior to administration. A typical initial dose for administration is 10-5000 micrograms or 10 micrograms of recombinant vector when administered intravenously, intramuscularly, or subcutaneously. 5 ~10 11 plaque-forming units, although this amount can be adjusted by the administering clinician, as is commonly done with the administration of vaccines and other agents that induce an immune response. Typically, a single dose will be sufficient to induce immunity, although multiple doses may be given to confirm or boost the response.

[0244] The improved LAMP construct vaccine can be initially tested in non-human mammals (e.g., mice or primates). For example, assays of the immune response of vaccinated mice can be used to demonstrate stronger antibody, T cell proliferation, and cytotoxic T cell responses to the improved LAMP construct than to the wild-type allergen. To determine whether a vaccine formulation highly effective in mice also induces an adequate monkey immune response, the improved LAMP construct can be evaluated in rhesus macaques. In one embodiment, each monkey receives a total of 5 mg of DNA delivered intramuscularly per immunization, and is divided into two centers and immunized on day 0 and at weeks 4, 8, and 20, with further doses administered as needed. Antibody responses, ADCC, CD4+ and CD8+ T cell cytokine production, and CD4+ and CD8+ T cell antigen-specific cytokine staining can be measured to monitor the immune response to the vaccine.

[0245] Further description of suitable methods of formulation and administration of the present invention can be found in U.S. Pat. No. 4,454,116 (constructs), U.S. Pat. No. 4,681,762 (recombinant bacteria), and U.S. Pat. Nos. 4,592,002 and 4,920,209 (recombinant viruses).

[0246] kit The present invention further includes kits that facilitate the practice of the methods described herein. In one embodiment, the kit includes an improved LAMP construct described herein and cells for receiving the improved LAMP construct. The kit may further include one or more nucleic acids for engineering the cells into professional APCs. However, in one embodiment, the cells are professional APCs. The cells may or may not express costimulatory molecules. In a preferred embodiment, if the cells do not express costimulatory molecules, the allergen encoded by the improved LAMP construct is an autoantigen. In another embodiment, a panel of cells expressing different MHC molecules (e.g., known to be expressed in humans) is provided. In a further embodiment, the kit includes reagents that facilitate entry of the improved LAMP construct into cells (e.g., lipid-based formulations, viral packaging materials, cells, etc.). In yet a further embodiment, one or more T cell lines specific for the allergen encoded by the improved LAMP construct are provided to verify the ability of the improved LAMP construct to induce, modulate, or enhance an immune response. [Example]

[0247] The invention will now be further described with reference to the following examples, which will be appreciated as being merely illustrative and that modifications of detail can be made whilst still falling within the scope of the invention.

[0248] Example 1 - Construction of LAMP constructs Standard molecular biology techniques well known to those skilled in the art can be used to construct the improved LAMP constructs shown in Figure 1. For example, plasmids containing polynucleotides can be designed to generate the different structures ILC-1 through ILC-6 shown in Figure 1. The LAMP domains shown in Figure 1 can be derived from the amino acid sequences shown in Figures 3-10. Preferably, the LAMP domains are derived from the human LAMP protein shown in Figures 3-10. The boundaries of each domain can be derived from Figures 2A and 2B. It is also envisioned that by comparing the human sequence to identify equivalent domains, corresponding domains can be cloned from orthologous sequences. As listed in Table 1 / Figure 14, allergen X (SEQ ID NO: Y) can be cloned individually or in combination into the described LAMP constructs.

[0249] Example 2 - Evaluation of immune responses in mice to LAMP constructs The ability of the improved LAMP construct described in Example 1 to modulate immune responses can be tested. For example, female BALB / c mice can be intradermally immunized with 50 μg of the improved LAMP construct in 100 μl of PBS using Nanopath on days 0, 7, and 14. The experiment is then terminated two weeks after the final administration.

[0250] Splenocytes (3x105 / well) are stimulated with allergenic protein (10ug / ml) in T cell medium (RPMI containing 10% heat-inactivated FBS, 1% penicillin / streptomycin, and 1x2-ME), and the supernatant is collected 48 hours later. The supernatant is diluted (400ul of supernatant + 200ul of T cell medium) and cytokines are assessed by ELISA. IL-10 or IL-4 production can be measured by ELISPOT assay.

[0251] Alternatively, serum samples can be diluted 1:100 (day 21), 1:2000 (day 35), or 1:5000 (day 56) with 1% BSA in PBS. The day 56 sample is further diluted in a 7.1:3 serial dilution to measure endpoint antibody titers. To detect IgE, serum is treated with agarose-protein G (Thermo Fisher Scientific, Rockford, IL) for 50 minutes, and then a 1:20 diluted sample is loaded onto an ELISA plate. Samples are detected with goat anti-mouse IgG1-HRP, goat anti-mouse IgG2a-HRP (Southern Biotech, Birmingham, AL), or rat anti-mouse-IgE-biotin (R35-118, BD Pharmingen, San Jose, CA), followed by Pierce streptavidin-HRP (Thermo Fisher Scientific, Rockford, IL). The reaction is developed with SureBlue TMB substrate and stopped with TMB stop solution. Plates are read (OD450) using an Epoch ELISA reader (BioTek, Winooski, VT). Endpoint titers are determined by subtracting more than two times the background mean (PBS) reading. The mean and standard error of endpoint titers or OD450 values ​​per group are analyzed using Excel statistical functions. IgE data are analyzed using a Student's T-test. Tests are two-sided, and a p-value of 0.05 or less was considered significant. After three doses of vaccination, antigen-specific IgG1 and IgG2a antibodies are expected to be observed in recipient mice. Due to the expected skew of the immune response from Th2 to Th1, IgG2a levels are likely to be significantly higher than expected.

[0252] Example 3 - Prime / Boost Protocol Herpesvirus entry mediator (HVEM), also known as tumor necrosis factor receptor superfamily member 14 (TNFRSF14) or CD270, is a human cell surface receptor of the TNF receptor superfamily. Recently, HVEM has been found to be highly expressed in hematopoietic cells and various parenchymal cells, such as breast, melanoma, colorectal, and ovarian cancer cells, as well as intestinal epithelium. HVEM is a bidirectional protein that inhibits or stimulates T cells via binding to BTLA or LIGHT (TNFSF14).

[0253] The present inventors have generated a DNA vaccine encoding HVEM-LAMP to generate antibodies that can block the inhibitory function of HVEM in tumor therapeutic applications. The inventors hypothesized that LAMP enhances the affinity of HVEM-specific antibodies and / or expands the repertoire of B-cell epitopes of the HVEM protein, thereby promoting antibody responses. In this study, the inventors compared the immunogenicity of HVEM-encoding plasmids (SEQ ID NO: 158 and SEQ ID NO: 159) with and without LAMP. Plasmids encoding HVEM-LAMP, HVEM, and recombinant HVEM protein were designed as described herein.

[0254] Goat anti-mouse IgG-HRP was purchased from Southern Biotechnologies (Birmingham, AL). SureBlue TMB microwell peroxidase substrate and TMB stop solution were purchased from KPL (Gaithersburg, MD). ELISPOT plates were ordered from EMD Millipore (Billerica, MA, Cat. No. MAIPS4510). The IFN-γ antibody pair used in ELISPOT was purchased from BioLegend (San Diego, CA), with clones AN18 and R46A2 used for coating and detection, respectively. Streptavidin-HRP and AEC substrate were purchased from BD Biosciences (San Jose, CA).

[0255] Six- to eight-week-old female Balb / c mice were purchased from Harlan Laboratories (Frederick, MA) and housed in the animal facility at Immunomic Therapeutics, Inc. (Rockville, MA). On days 0, 7, and 14, mice (n = 6) were treated with 10 μg / dose of HVEM-LAMP, HVEM, or LAMP vector control by intramuscular electroporation. On day 35, mice were boosted with 5 μg of HVEM protein by intraperitoneal injection in the presence of alum. On days 28 and 49, mice were bled, and serum was isolated for antibody detection. On day 56, mice were sacrificed, and splenocytes were tested for IFN-γ production by ELISPOT.

[0256] The ELISA procedure was according to Su et al., J of Immunol Res;(10):1-15(2016). Plates were coated with 5 μg / ml HVEM protein. Data were analyzed using Microsoft Excel and Prism 6 software.

[0257] The primary objective of this study was to compare the antibody profiles between HVEM-LAMP and HVEM. On day 28, HVEM-LAMP-vaccinated mice produced significantly higher levels of HVEM-specific IgG antibodies than those in the HVEM group (Figure 11). After the protein boost, HVEM-immunized mice showed an approximately 1,000-fold increase in HVEM-specific antibodies, with the average titer changing from 100 to 108,000. This result indicates that immunological memory was induced by the HVEM DNA plasmid. While HVEM DNA alone induced only a minimal antibody response, the protein boost rapidly recalled immunological memory. On the other hand, the HVEM-LAMP group again exhibited significantly higher titers than the HVEM and LAMP groups, with the average titer being five times higher than that of the HVEM group, demonstrating the power of LAMP in enhancing antibody responses (Figure 12).

[0258] In addition, serum samples (day 49) from mice immunized with HVEM+LAMP or HVEM alone / boosted with HVEM protein were pooled and tested for peptide mapping. Twelve peptides were found to bind to the pooled serum (mouse IgG response), with seven of the 12 peptides exhibiting strong binding affinity. As shown in Figure 13, HVEM+LAMP alters the binding affinity of peptides 17, 24, 25, and 28 compared to HVEM alone. These changes may have physiological effects in protecting against tumor growth.

[0259] This example demonstrates the ability to use a prime-boost protocol with the improved LAMP constructs described herein in conjunction with the allergens listed.

[0260] Example 4 - Testing of Amb a 1-hLAMP Ragweed, a major allergy risk factor, is one of the most important pollen allergens in North America and parts of Europe. Epidemiological studies have shown that 23%–32.8% of the US population is sensitized to ragweed, whereas the prevalence of sensitization in European countries varies from 3.5% (e.g., Italy) to 54% (e.g., Hungary). Amb a 1, the most abundant allergen in ragweed pollen, is composed of a mixture of five isoforms with amino acid sequence identities ranging from 63% to 87%. The clinical relevance of Amb a 1 has been described in numerous publications. DNA vaccination has great potential as an effective preventive and therapeutic solution for ragweed pollen allergy. We previously integrated the advantages of DNA vaccine technology with the MHC II pathway targeting properties of LAMP-1 to design a novel DNA vaccine against ragweed allergy.

[0261] Here, we optimized our LAMP platform by replacing the hinge region of LAMP (ILC-4). This study aims to compare the in vivo immunogenicity of different versions of Amb a 1-LAMP vaccine using the sequence of SEQ ID NO: 137 as the allergen. The control vector, Amb a 1-hLAMP (complete LAMP), Amb a 1-hLAMP preluminal (ILC-1), Amb a 1-hLAMP hinge (ILC-4), and Amb a 1 protein were produced by NTC (Lincoln, NE). Goat anti-mouse IgG2a-HRP and goat anti-mouse IgG1-HRP were purchased from Southern Biotechnologies (Birmingham, AL). SureBlue TMB microwell peroxidase substrate and TMB stop solution were purchased from KPL (Gaithersburg, MD). Mouse monoclonal anti-hLAMP was purchased from Origene Technologies (Rockville, MD). Rabbit monoclonal anti-GAPDH antibody was purchased from Abcam (Cambridge, MA). Goat anti-mouse and goat anti-rabbit secondary antibodies were obtained from Sino Biological (Wayne, PA).

[0262] Vaccine, Adjuvant, and Immunization. 40 μg of control vector, complete LAMP, ILC-1, and ILC-4 were used in a total volume of 20 μl per mouse per dose for intradermal / electroporation injection. Mice were immunized with the vaccine by intradermal delivery on days 0, 7, and 14. Mice were bled on days 28 and 40 for serum collection. Serum was collected and stored at -30°C.

[0263] Western blot. Plasmids were transfected into 293T cells using Lipofectamine 2000 reagent (Invitrogen). Transfected cells were washed with PBS and suspended in 200 μl of RIPA lysis buffer containing Stop proteinase inhibitor (Thermo Scientific, Waltham, MA). Lysates were centrifuged (700 g, 4°C for 15 min), and protein concentrations in the clarified supernatants were subsequently measured using the Pierce BCA Protein Assay Kit (ThermoFisher Scientific, Waltham, MA). Five μg of protein was electrophoresed on a precast (4–20%) SDS-PAGE gel (BioRad, Hercules, California) and transferred to a nitrocellulose membrane (BioRad). Membranes were blocked with Detection™ Blocking Buffer (KPL) and probed with anti-human LAMP (Figure 15A) or anti-GAPDH and goat anti-mouse HRP or goat anti-rabbit antibodies (Figure 15B), followed by development with TMB (KPL).

[0264] Measurement of serum Amb a 1-specific IgG1 and IgG2a by ELISA. Mouse antibody responses to Amb a 1 were assessed by indirect ELISA, as shown in Figure 16. ELISA plates (MaxiSorp) were coated overnight with 5 μg / ml Amb a 1 in PBS buffer and then blocked with 2% BSA in PBS. Plasma samples were diluted 1:300 or 1:1000 in blocking buffer. Samples were detected with goat anti-mouse IgG1-HRP or IgG2a-HRP. The reaction was developed with SureBlue TMB substrate and stopped with TMB stop solution from KPL (Gaithersburg, MD). Plates were read (OD450) using an Epoch ELISA reader (BioTek, Winooski, VT).

[0265] Statistics. Two-way ANOVA tests were performed using GraphPad Prism 6.0 software to assess statistical significance. Data represent the mean ± SEM of antibody titers (n = 9). Two-way ANOVA was used for statistical analysis. *p < 0.05; **p < 0.01, ***p < 0.001****p < 0.0001.

[0266] Results: In this study, we tested different constructs of the Amb a 1-LAMP vaccine. After three doses of the DNA vaccine (1-week intervals), we found that ILC-1 and ILC-4 induced unexpectedly higher Amb a 1-specific IgG2a responses than the full LAMP Amb a 1 vaccine at day 40.

[0267] Example 5 - Testing of Bet v 1-hLAMP Bet v 1, the major birch pollen allergen, is considered the prototype of the PR-10 protein family that causes respiratory allergies. The majority (>90%) of birch-allergic patients react to Bet v 1, and as a result, it is used as a marker of birch pollen allergy. DNA vaccination has great potential as an effective preventive and therapeutic solution for birch pollen allergy in early spring.

[0268] Here, we used the control vector Bet v as described in Example 4. Proteins expressed from Bet v 1-hLAMP (complete LAMP), Bet v 1-hLAMP pre-luminal (ILC-1), Bet v 1-hLAMP hinge (ILC-4), and Bet v 1 proteins were tested. In this example, the sequence of SEQ ID NO: 141 is the allergen. Figures 15A and 15B demonstrate expression. As shown in Figure 17, after three doses of DNA vaccine (one week apart), the inventors found that ILC-4 unexpectedly induced significantly stronger Bet v 1-specific IgG2a responses than the complete LAMP Bet v 1 and ILC-1 vaccines on days 28 and 41, suggesting that this new version of the Bet v 1-LAMP construct is highly immunogenic.

[0269] Example 6 - Testing of Fel d 4-hLAMP Cats are popular household pets and commonly cause allergies. Cat allergy is unique among mammalian allergies in that the major allergen, Fel d 1, is a uteroglobin-like protein rather than a lipocalin. However, in cat-sensitive individuals, Fel d 4, a lipocalin allergen produced by cats, binds to IgE with relatively high frequency. Therefore, the biochemical spectrum of cat allergens is uncertain, particularly regarding the role that feline lipocalin proteins may play in sensitizing allergic individuals to cats. Recently, Fel d 1- and Fel d 4-specific IgE were evaluated in patients with pet allergies. Among those with cat allergies, 94% had elevated Fel d 1 levels (>0.35 kU / L) and 49% had elevated Fel d 4 levels.

[0270] Here, we used the control vector Fel d as described in Example 4. Proteins expressed from 4-hLAMP (complete LAMP), Fel d 4-hLAMP preluminal (ILC-1), Fel d 4-hLAMP hinge (ILC-4), and Fel d 4 protein were tested. Figures 15A and 15B demonstrate expression. In this example, the sequence of SEQ ID NO: 182 is the allergen. As shown in Figure 18, after three doses of DNA vaccine (one week apart), we found that ILC-1 induced slightly higher Fel d 4-specific IgG2a responses than the other groups on days 28 and 41. However, there was no statistical difference between ILC-1 and ILC-4.

[0271] Example 7 - Testing of Cry J 1 The Japanese red cedar tree is a cultural symbol in Japan, but its pollen is a national scourge: an estimated 25% of the Japanese population—more than 25 million people—are allergic to Japanese red cedar pollen.

[0272] We tested Cry J 1- and Cry J 2-specific antibody responses by ELISA (Figure 15C). In this example, the sequence of SEQ ID NO: 224 is the allergen. Female BALB / c mice were immunized intradermally via the ear with 40 μg of control vector, CryJ1 + CryJ2 + complete LAMP, or Cry J1 + J2 + ILC-4 DNA in 20 μl of PBS on days 0, 7, and 14. The study was terminated 26 days after the final administration. Serum samples were collected on days 28 and 40. Cry J 1- and Cry J 2-specific IgG1 and IgG2a were measured by indirect ELISA. Data represent the mean ± SEM of antibody titers. N=6 / group. Two-way ANOVA was used for statistical analysis. *p<0.05, **p<0.01.

[0273] Full and ILC-4 single Cry J 1+J2+LAMP constructs were compared. J1- and Cry J2-specific IgG1 and IgG2a responses are summarized in Figure 19. For Cry J1, the ILC-4 constructs showed a trend toward higher titers, but these were not statistically significant. However, for Cry J2-specific responses, titers were statically higher than for the complete LAMP construct.

[0274] In conclusion, data from this study suggest that the two constructs expressed in vivo and LAMP significantly improved the humoral immune response.

[0275] Variations, modifications, and other implementations of what is described herein will occur to those skilled in the art without departing from the spirit and scope of the invention and the claims. All patents, patent applications, international applications, and references identified are expressly incorporated herein by reference in their entirety.

Claims

1. A lysosome-associated membrane protein (LAMP) construct comprising two homologous domains of the luminal domain of the LAMP protein and an allergen, The allergen comprises Cry J1 and / or Cry J2, and the allergen is located between the two homologous domains and inserted within the hinge region of the luminal domain of the LAMP protein; The LAMP construct further comprises a transmembrane domain of a LAMP protein, a cytoplasmic tail of a LAMP protein, and a signal sequence; the transmembrane domain is located after the second of the two homologous domains; the cytoplasmic tail is disposed after the transmembrane domain; The LAMP protein is human LAMP-1, and wherein the two homologous domains include human LAMP-1 homologous domain 1 and human LAMP-1 homologous domain 2, and the human LAMP-1 homologous domain 1 is (a) the amino acid sequence of residues 29 to 194 of the amino acid sequence of SEQ ID NO: 1; or (b) a variant of (a), comprising an amino acid sequence that is at least 95% identical to the amino acid sequence of (a). and / or the human LAMP-1 homology domain 2 comprises the amino acid sequence of residues 228 to 381 or residues 228 to 382 of the amino acid sequence of SEQ ID NO: 1; and A LAMP construct, wherein the LAMP construct targets the allergen to lysosomes and induces a higher immune response compared to a LAMP construct comprising the allergen inserted between the entire luminal domain and the entire transmembrane domain of the LAMP protein.

2. The LAMP construct according to claim 1 , wherein the signal sequence is derived from a LAMP protein.

3. 3. The LAMP construct according to claim 1 or 2, wherein the allergen is separated from one or both of the homologous domains by a linker.

4. 4. The LAMP construct of claim 3, wherein the linker is selected from the amino acid sequences GPGPG or PMGLP.

5. The LAMP construct according to any one of claims 1 to 4, wherein the LAMP protein comprises the amino acid sequence of SEQ ID NO:

1.

6. The LAMP construct according to any one of claims 1 to 4, wherein said LAMP protein comprises an amino acid sequence that is at least 90% identical to the amino acid sequence of SEQ ID NO:

1.

7. A LAMP construct described in any one of claims 1 to 4, wherein the LAMP protein comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of SEQ ID NO:

1.

8. 8. The LAMP construct of any one of claims 1 to 7, wherein the transmembrane domain comprises residues 383 to 405 of the amino acid sequence of SEQ ID NO: 1 and / or the cytoplasmic tail comprises residues 406 to 417 of the amino acid sequence of SEQ ID NO:

1.

9. The LAMP construct according to any one of claims 1 to 8, wherein the allergen comprises the amino acid sequence of residues 22 to 374 of the amino acid sequence of SEQ ID NO: 222, the amino acid sequence of residues 23 to 514 of the amino acid sequence of SEQ ID NO: 223, and / or the amino acid sequence of SEQ ID NO:

224.

10. The LAMP construct according to any one of claims 1 to 8, wherein the allergen comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 22 to 374 of the amino acid sequence of SEQ ID NO:

222.

11. 11. The LAMP construct of any one of claims 1 to 8 or 10, wherein the allergen comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 23 to 514 of the amino acid sequence of SEQ ID NO:

223.

12. 12. The LAMP construct of any one of claims 1 to 8, 10 or 11, wherein the allergen comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of SEQ ID NO:

224.

13. The allergen is (a) an amino acid sequence comprising residues 22 to 374 of the amino acid sequence of SEQ ID NO: 222, or an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 22 to 374 of the amino acid sequence of SEQ ID NO: 222; and an amino acid sequence comprising residues 23 to 514 of the amino acid sequence of SEQ ID NO: 223, or an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 23 to 514 of the amino acid sequence of SEQ ID NO: 223; or (b) an amino acid sequence comprising the amino acid sequence of SEQ ID NO: 224, or an amino acid sequence that is at least 95% identical to the amino acid sequence of SEQ ID NO: 224 The LAMP construct according to any one of claims 1 to 8, comprising:

14. A polynucleotide encoding a lysosome-associated membrane protein (LAMP) construct, said LAMP construct comprising two homologous domains of the luminal domain of a LAMP protein and an allergen; The allergen comprises Cry J1 and / or Cry J2, and the allergen is located between the two homologous domains and inserted within the hinge region of the luminal domain of the LAMP protein; The LAMP construct further comprises a transmembrane domain of a LAMP protein, a cytoplasmic tail of a LAMP protein, and a signal sequence; the transmembrane domain is located after the second of the two homologous domains; the cytoplasmic tail is disposed after the transmembrane domain; The LAMP protein is human LAMP-1, and wherein the two homologous domains include human LAMP-1 homologous domain 1 and human LAMP-1 homologous domain 2, and the human LAMP-1 homologous domain 1 is (a) the amino acid sequence of residues 29 to 194 of the amino acid sequence of SEQ ID NO: 1; or (b) a variant of (a), comprising an amino acid sequence that is at least 95% identical to the amino acid sequence of (a). and / or the human LAMP-1 homology domain 2 comprises the amino acid sequence of residues 228 to 381 or residues 228 to 382 of the amino acid sequence of SEQ ID NO: 1; and A polynucleotide wherein the LAMP construct targets the allergen to lysosomes and induces a higher immune response compared to a LAMP construct comprising the allergen inserted between the entire luminal domain and the entire transmembrane domain of the LAMP protein.

15. The polynucleotide of claim 14, wherein the signal sequence is derived from a LAMP protein.

16. 16. The polynucleotide of claim 14 or 15, wherein the allergen is separated from one or both of the homology domains by a linker.

17. 17. The polynucleotide of claim 16, wherein the linker is selected from the amino acid sequence GPGPG or PMGLP.

18. The polynucleotide according to any one of claims 14 to 17, wherein the LAMP protein comprises the amino acid sequence of SEQ ID NO:

1.

19. The polynucleotide of any one of claims 14 to 17, wherein the LAMP protein comprises an amino acid sequence that is at least 90% identical to the amino acid sequence of SEQ ID NO:

1.

20. A polynucleotide described in any one of claims 14 to 17, wherein the LAMP protein comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of SEQ ID NO:

1.

21. 21. The polynucleotide of any one of claims 14 to 20, wherein the transmembrane domain comprises residues 383 to 405 of the amino acid sequence of SEQ ID NO:1 and / or the cytoplasmic tail comprises residues 406 to 417 of the amino acid sequence of SEQ ID NO:

1.

22. The polynucleotide of any one of claims 14 to 21, wherein the allergen comprises the amino acid sequence of residues 22 to 374 of the amino acid sequence of SEQ ID NO: 222, the amino acid sequence of residues 23 to 514 of the amino acid sequence of SEQ ID NO: 223, and / or the amino acid sequence of SEQ ID NO:

224.

23. 22. The polynucleotide of any one of claims 14 to 21, wherein the allergen comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 22 to 374 of the amino acid sequence of SEQ ID NO:

222.

24. 24. The polynucleotide of any one of claims 14 to 21, or 23, wherein the allergen comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 23 to 514 of the amino acid sequence of SEQ ID NO:

223.

25. 25. The polynucleotide of any one of claims 14 to 21, 23, or 24, wherein the allergen comprises an amino acid sequence that is at least 95% identical to the amino acid sequence of SEQ ID NO:

224.

26. The allergen is (a) an amino acid sequence comprising residues 22 to 374 of the amino acid sequence of SEQ ID NO: 222, or an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 22 to 374 of the amino acid sequence of SEQ ID NO: 222; and an amino acid sequence comprising residues 23 to 514 of the amino acid sequence of SEQ ID NO: 223, or an amino acid sequence that is at least 95% identical to the amino acid sequence of residues 23 to 514 of the amino acid sequence of SEQ ID NO: 223; or (b) the amino acid sequence of SEQ ID NO: 224 or an amino acid sequence that is at least 95% identical to the amino acid sequence of SEQ ID NO:

224. The polynucleotide according to any one of claims 14 to 21, comprising:

27. The polynucleotide according to any one of claims 14 to 26, wherein the polynucleotide is DNA.

28. The polynucleotide of any one of claims 14 to 26, wherein the polynucleotide is RNA.

29. The polynucleotide of any one of claims 14 to 26, wherein the polynucleotide is a viral vector.

30. The polynucleotide of any one of claims 14 to 26, wherein the polynucleotide is a self-replicating RNA viral vector.

31. A host cell comprising the polynucleotide of any one of claims 14 to 30.

32. An antigen-presenting cell comprising the polynucleotide according to any one of claims 14 to 30.

33. The antigen-presenting cell of claim 32, wherein the cell is a dendritic cell.

34. A composition comprising a LAMP construct according to any one of claims 1 to 13, a polynucleotide according to any one of claims 14 to 30, a host cell according to claim 31, or an antigen-presenting cell according to claim 32 or 33.

35. 35. The composition of claim 34 for vaccinating a subject against or treating an allergic reaction.

36. 36. The composition of claim 35, wherein the vaccination or treatment comprises a priming step and at least one boosting step.

37. 37. The composition of claim 36, wherein the composition is used in the priming step.

38. 38. The composition of claim 36 or 37, wherein the composition is used in the boosting step.

Citation Information

Patent Citations

  • chimeric vaccine

    JP2004537285A

  • Nucleic acids for the treatment of allergies

    JP2019537447A

  • Improved LAMP construct

    JP2020517271A

  • Improved LAMP constructs containing cancer antigens

    JP2020518613A

  • Lysosomal targeting of immunogens

    US5633234A