Foot-and-mouth disease virus (FMDV) consensus protein, its coding sequence and vaccines produced therefrom
The development of vaccines and diagnostic tools using consensus FMDV capsid protein sequences addresses the limitations of existing vaccines by inducing broad immunity and enabling accurate infection diagnosis, enhancing disease control.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-10-14
- Publication Date
- 2026-03-10
AI Technical Summary
Existing FMDV vaccines provide limited protection across different subtypes and lack effective methods for diagnosing infections, necessitating the development of vaccines and diagnostic tools that can confer broad immunity and differentiate between vaccinated and infected individuals.
Development of nucleic acid molecules encoding consensus amino acid sequences of FMDV capsid proteins VP1-VP4 and vaccines comprising DNA plasmids that express these proteins, along with electroporation techniques to enhance delivery, and diagnostic methods to identify FMDV infection through antibody detection.
The vaccines induce robust immune responses against multiple FMDV subtypes, providing prophylactic protection and enabling accurate diagnosis of infections, thereby supporting effective disease management and maintaining FMD-free status.
Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to synthetic consensus foot-and-mouth disease virus (FMDV) immunogenic proteins and nucleic acid molecules encoding such proteins, vaccines for FMDV, methods for inducing an immune response to FMDV, methods for distinguishing between individuals infected with FMDV and those vaccinated against FMDV, and methods for prophylactically and / or therapeutically immunizing individuals against FMDV. [Background technology]
[0002] Background of the Invention Foot-and-mouth disease (FMD) is a highly contagious disease of domestic and wild cloven-hoofed animals, including cattle, pigs, goats, and deer. It rapidly replicates within the host and spreads to susceptible animals upon contact. The disease is characterized by fever, lameness, and vesicular lesions on the tongue, paws, nose, and nipples. Morbidity is high, but mortality in adult animals is low. The causative agent is foot-and-mouth disease virus (FMDV), the type species of the Aphthovirus genus in the Picornaviridae family. FMDV has a single-stranded, positive-sense RNA genome of approximately 8,500 bases enclosed by an icosahedral capsid containing 60 copies of each of the four structural proteins VP1-VP4. It has multiple subtypes, including A, Asia 1, O, C, SAT1, SAT2, and SAT3, demonstrating high antigenic diversity. Recent outbreaks of FMD in previously disease-free countries, including Taiwan in 1997 and the United Kingdom and the Netherlands in 2001, as well as outbreaks in several South American countries, have highlighted the economically devastating potential of the virus. Furthermore, the potential for terrorists to use FMDV to attack national targets, such as the US$100 billion annual livestock industry, makes it a global concern.
[0003] Historically, FMDV control measures have included culling infected or contact animals and decontamination. Countries that have culled livestock due to FMDV outbreaks can only resume livestock production if they have been FMDV-free for three months since the last outbreak. Because countries that have vaccinated animals and not culled must wait a full year to regain FMD-free status, countries typically use animal vaccination to deal with FMDV outbreaks as a last resort. However, countries hope to maintain FMD-free status by vaccinating animals before an FMDV outbreak occurs.
[0004] Previous FMDV vaccines have contained chemically inactivated whole virus antigens combined with adjuvants, but this has drawbacks and requires expensive, highly confined facilities for vaccine production. Over the past 25–30 years, researchers have attempted to develop vaccines that confer protection after a single vaccination. These efforts have included the use of purified VP1 from virus particles, bioengineered VP1, VP1 peptides, chemically synthesized VP1 peptides, live vectors expressing VP1 epitopes, inoculation with DNA encoding the VP1 epitope, and the use of whole capsid proteins VP1–4 generated from FMDV-infected cultures or delivery of VP1–4 capsids via replication-deficient human adenovirus type 5 (Ad5) vectors. All of these approaches provide inoculated animals with only a small number of epitopes spanning all FMDV viral subtypes. Summary of the Invention [Problem to be solved by the invention]
[0005] Therefore, there is a need in the art for vaccines suitable for conferring protection against multiple FMDV epitopes across different subtypes of FDMV, and for methods of diagnosing mammals infected with FMDV. [Means for solving the problem]
[0006] Summary of the Invention Provided herein is an isolated nucleic acid comprising a sequence encoding the consensus amino acid sequence of VP1-4 of foot-and-mouth disease virus subtypes A, Asia 1, C, O, SAT1, SAT2, SAT3, and SAT4, or a complementary sequence thereof. The nucleic acid may comprise a sequence selected from the group consisting of: (a) a nucleotide sequence encoding the amino acid sequence of SEQ ID NOs: 17-23; (b) a nucleotide sequence encoding the amino acid sequence of SEQ ID NOs: 24-30; (c) an 80% mutant of (a); and a complementary sequence of (a) or (b). Also provided is a vector comprising a heterologous sequence consisting of the above-described sequence.
[0007] Also provided herein is a vaccine capable of generating an immune response in a mammal against multiple foot-and-mouth disease virus (FMDV) subtypes, the vaccine comprising a DNA plasmid comprising a promoter operably linked to a coding sequence encoding a consensus FMDV antigen comprising capsid proteins VP1-VP4 of one or more FMDV subtypes, and a pharmaceutically acceptable excipient, wherein the DNA plasmid is capable of expressing the consensus FMDV antigen in a mammalian cell in an amount effective to induce an immune response in the mammal. The vaccine may generate an immune response against FMDV subtypes A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof. The coding sequence of the vaccine plasmid may be for an FMDV antigen selected from the group consisting of SEQ ID NOs: 1-7 or a combination thereof. The coding sequence of the vaccine plasmid may further comprise an N-terminal leader sequence that is IgG or IgE. The vaccine plasmid may further comprise a polyadenylation sequence following the 3' end of the coding sequence. The vaccine plasmid may further comprise a nucleotide sequence encoding a consensus FMDV 3C protease from subtype A, Asia 1, C, O, SAT1, SAT2, or SAT3. The nucleotide sequence of the FMDV 3C protease may be SEQ ID NO: 15 or may be encoded by the amino acid sequence set forth in SEQ ID NO: 16. The vaccine plasmid may be codon optimized. The coding sequence for the FMDV antigen may comprise VP1-4 and 3C protease, including SEQ ID NOs: 7-14. The pharmaceutically acceptable excipient for the vaccine may be an adjuvant, which may be IL-2 or IL-15. The pharmaceutically acceptable excipient for the vaccine may be a transfection-enhancing agent. The transfection-enhancing agent may be a polyanion, polycation, or lipid at a concentration of less than 6 mg / ml. , for example, poly-L-glutamate. The vaccine may be administered to pigs, ruminants, humans, or primates. The vaccine may elicit a humoral or cellular response, or both a humoral and a cellular response.
[0008] Also provided herein is a vaccine capable of generating an immune response in a mammal against multiple foot-and-mouth disease virus (FMDV) subtypes, wherein the vaccine comprises one or more DNA plasmids comprising a promoter operably linked to a coding sequence encoding a consensus FMDV antigen comprising capsid proteins VP1-VP4 from one or more FMDV subtypes selected from the group consisting of subtypes A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof, and a pharmaceutically acceptable excipient thereof, wherein the DNA plasmid is capable of expressing the consensus FMDV antigen in a mammalian cell in an amount effective to elicit an immune response in the mammal. The coding sequence for the FMDV antigen may be selected from the group consisting of SEQ ID NOs: 1-7, or a combination thereof. The vaccine plasmid may further comprise a nucleotide sequence encoding the consensus 3C protease of FMDV for subtype A, Asia 1, C, O, SAT1, SAT2, or SAT3, and may comprise the nucleotide sequence set forth in SEQ ID NO: 15. The vaccine may be administered to a mammal, such as a pig, a ruminant, a human, or a primate. The vaccine may elicit an immune response in the mammal, such as a humoral response, a cellular response, or both a humoral and a cellular response.
[0009] Also provided herein is a vaccine capable of generating an immune response in a mammal against multiple FMDV subtypes, wherein the vaccine comprises an antigen comprising one or more consensus amino acid sequences encoding capsid proteins VP1-VP4 of foot-and-mouth disease virus (FMDV) subtypes A, Asia 1, C, O, SAT1, SAT2, or SAT3, and a pharmaceutically acceptable excipient therefor. The encoded amino acid sequence of the FMDV antigen may be SEQ ID NOs: 24-30. The pharmaceutically acceptable excipient may be an adjuvant selected from the group consisting of IL-2 and IL-15. The pharmaceutically acceptable excipient of the vaccine may be a transfection-enhancing agent. The transfection-enhancing agent may be a polyanion, polycation, or lipid, e.g., poly-, at a concentration of less than 6 mg / ml. The vaccine may be L-glutamate. The vaccine may be administered to a mammal, such as a pig, a ruminant, a human, or a primate. The vaccine may induce an immune response in the mammal, such as a humoral response, a cellular response, or both a humoral and a cellular response.
[0010] Also provided herein is a method for eliciting an immune response against multiple FMDV virus subtypes in a mammal, comprising delivering the DNA plasmid vaccine of claim 1 or 21 to mammalian tissue and electroporating cells of the tissue with a constant-current energy pulse effective to allow the DNA plasmid to enter the cells. The delivery of the DNA plasmid of claim 1 in the method may include injecting the DNA plasmid vaccine into interdermal, subcutaneous, or muscular tissue. The DNA plasmid of the method may be delivered by presetting the current and energy pulse at a constant current equal to the existing current. The electroporation step of the method may further include measuring impedance in the electroporated cells and adjusting the energy level of the energy pulse based on the measured impedance to maintain a constant current in the electroporated cells, wherein the measuring and adjusting steps are performed within the life of the energy pulse. The electroporation step may further include delivering energy pulses to multiple electrodes using a pulse sequence pattern that delivers the energy pulses in a dispersed pattern.
[0011] Also provided is a method for diagnosing a mammal infected with FMDV, comprising isolating a fluid sample from the mammal, isolating antibodies from the mammalian fluid sample, and comparing the antibodies isolated from step b with a control mammal vaccinated with the vaccine of claim 3, wherein the control mammal has only antibodies to FMDV VP1-4 proteins, and the infected FMDV mammal has antibodies to FMDV VP1-4 proteins and FMDV nonstructural proteins. The nonstructural proteins may be FMDV 2C, 3A, and 3D polymerases.
[0012]
[0010] Provided are isolated nucleic acid molecules comprising a sequence encoding a protein having one or more sequences selected from the group consisting of one or more of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, with or without a leader sequence, their complements, immunogenic fragments thereof comprising at least 20 amino acids, variants having 80% or more homology to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, their complements, immunogenic fragments thereof comprising at least 20 amino acids, and their complements.
[0013] In some embodiments, the nucleic acid sequence is selected from the group consisting of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41, with or without coding sequence for a leader sequence, their complements, fragments thereof encoding at least 20 amino acids, their complements, nucleic acid molecules 80% homologous to SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41, their complements, fragments thereof encoding at least 20 amino acids, and their complements.
[0014] Vaccines comprising such nucleic acid molecules and / or one or more proteins selected from the group consisting of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, with or without leader sequences, immunogenic fragments thereof comprising at least 20 amino acids, variants having 80% or more homology to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, and immunogenic fragments thereof comprising at least 20 amino acids are provided.
[0015] Also provided are compositions comprising one or more proteins selected from the group consisting of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, with or without a leader sequence, immunogenic fragments thereof comprising at least 20 amino acids, variants having 80% or greater homology to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 13, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, and immunogenic fragments thereof comprising at least 20 amino acids.
[0016] Methods for eliciting an immune response against one or more FMDV virus subtypes in a mammal are provided. The methods, including use of the vaccines disclosed herein and in some embodiments, may include administering to a mammalian tissue a nucleic acid molecule encoding a protein having an FMDV immunogenic sequence and electroporating cells of the tissue with a constant current energy pulse effective to allow the DNA plasmid to enter the cells.
[0017] Also provided is a method for diagnosing FMDV infection in a mammal vaccinated by the processes disclosed herein, comprising isolating a fluid sample from the vaccinated mammal and detecting the presence of FMDV proteins not included in the vaccine and / or antibodies to FMDV proteins not included in the vaccine. The presence of such FMDV proteins and / or antibodies to such FMDV proteins indicates that the vaccinated mammal is infected with FMDV. DETAILED DESCRIPTION OF THE INVENTION
[0018] Detailed Description Consensus amino acid sequences were generated for fusion proteins containing multiple FMDV proteins and individual FMDV proteins from various serotypes, and nucleic acid molecules encoding the proteins were also generated.
[0019] In one embodiment of the present invention, there are fusion proteins comprising consensus FMDV proteins VP1, VP2, VP3, VP4 and / or 3C and nucleic acid sequences encoding these proteins that can be generated and used in vaccines to provide protection in mammals against foot and mouth disease across one or more subtypes of FMDV, including A, Asia 1, O, C, SAT1, SAT2, and SAT3.
[0020] In another embodiment of the invention, a fusion protein comprising the consensus FMDV protein VP1 and a nucleic acid sequence encoding this protein from two different subtypes exists and can be generated and used in a vaccine to provide protection in mammals against foot and mouth disease across one or more subtypes of FMDV, including A, Asia 1, O, C, SAT1, SAT2, and SAT3.
[0021] In another embodiment of the present invention, there is a consensus FMDV protein VP1 and a nucleic acid sequence encoding it that can be produced and used in a vaccine to provide protection in mammals against foot and mouth disease across one or more subtypes of FMDV, including A, Asia 1, O, C, SAT1, SAT2, and SAT3.
[0022] Without being bound by scientific theory, vaccines directed to the consensus amino acid sequences VP1, VP2, VP3, and / or VP4 for one or more subtypes of FMDV present a large repertoire of epitopes that are effective in eliciting effective immune responses (either humoral, cellular, or both) against most species within each FMDV subtype. The present invention relates to using these consensus amino acid VP1, VP2, VP3, and / or VP4 sequences of FMDV subtypes to generate appropriate plasmids and proteins for use in vaccines for administration to mammals to provide prophylactic protection against FMDV. The present invention also relates to diagnostic methods for using these consensus sequences of FMDV VP1, VP2, VP3, and / or VP4 antigens to identify and distinguish between properly vaccinated and infected mammals that have not been infected with FMDV via detection of antibodies directed against nonstructural proteins of FMDV, such as the 3D polymerase.
[0023] Without wishing to be bound by scientific theory, VP1 is an excellent immunogenic target for vaccines directed against the consensus amino acid sequence of VP1. VP1 is an excellent immunogen.
[0024] 1.Definition The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting. As used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content clearly dictates otherwise.
[0025] Where numerical ranges are recited herein, each intervening number therebetween is expressly contemplated to the same degree of precision. For example, in the range 6 to 9, the numbers 7 and 8 are contemplated in addition to 6 and 9, and in the range 6.0 to 7.0, the numbers 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 6.6, 6.7, 6.8, 6.9, and 7.0 are expressly contemplated.
[0026] a. adjuvant As used herein, "adjuvant" may refer to any molecule added to the DNA plasmid vaccines described herein to enhance the antigenicity of the foot-and-mouth disease virus (FMDV) antigen encoded by the DNA plasmid and the coding nucleic acid sequence described hereinafter.
[0027] b.Antibodies "Antibody" may refer to antibodies of the classes IgG, IgM, IgA, IgD, or IgE, or fragments, or fragments or derivatives thereof, including Fab, F(ab'), Fd, and single-chain antibodies, diabodies, bispecific antibodies, bifunctional antibodies, and derivatives thereof. The antibody may be an antibody isolated from a mammalian serum sample, a polyclonal antibody, an affinity-purified antibody, or a mixture thereof, which exhibits sufficient binding specificity for the desired epitope or a sequence derived therefrom.
[0028] c. coding sequence As used herein, a "coding sequence" or "encoding nucleic acid" may refer to a nucleic acid (RNA or DNA molecule) comprising a nucleotide sequence that encodes a protein. The coding sequence may further comprise initiation and termination signals operably linked to regulatory elements comprising a promoter and polyadenylation signal capable of directing expression in the cells of an individual or mammal to which the nucleic acid is administered.
[0029] d. complementary sequence As used herein, "complementary sequence" or "complementary" may refer to a nucleic acid that refers to Watson-Crick (e.g., AT / U and CG) or Hoogsteen base pairing between nucleotides or nucleotide analogs of a nucleic acid molecule.
[0030] e. consensus or consensus sequence As used herein, "consensus" or "consensus sequence" may refer to a synthetic nucleic acid sequence or corresponding polypeptide sequence that is constructed based on an alignment analysis of multiple subtypes of a particular influenza antigen and can be used to induce broad immunity against multiple subtypes or serotypes of a particular influenza antigen. A consensus FMDV antigen may include VP1, VP2, VP3, VP4, and C2 protease nucleotide and amino acid sequences. Synthetic antigens, such as fusion proteins, may also be engineered into consensus sequences (or consensus antigens).
[0031] f. Constant current As used herein, "constant current" defines the electrical current received or experienced by a tissue, or cells defining said tissue, for the duration of an electrical pulse delivered to the tissue. The electrical pulse is delivered from an electroporation device described herein. The electroporation devices provided herein include a feedback element, preferably with instantaneous feedback, so that the current remains constant in the tissue for the life of the electrical pulse. The feedback element measures the resistance of the tissue (or cells) throughout the duration of the pulse and can vary the electrical energy output of the electroporation device (e.g., increase the voltage) so that the current in the same tissue remains constant throughout the electrical pulse (on the order of microseconds) and between pulses. In some embodiments, the feedback element includes a controller.
[0032] g. Current feedback or feedback As used herein, "current feedback" or "feedback" may be used interchangeably and may refer to the activity response of a provided electroporation device, including measuring the tissue current between the electrodes and correspondingly varying the energy output delivered by the EP device to maintain the current at a constant level. This constant level is preset by the user prior to the initiation of a pulse sequence or electrical treatment. Feedback may be accomplished by an electroporation component of the electroporation device, e.g., a controller, such that an electrical circuit within the device can continuously monitor the tissue current between the electrodes, compare the monitored current (or tissue current) to a preset current, and continuously make energy output adjustments to maintain the monitored current at the preset level. The feedback loop may be instantaneous, as it is a similar closed-circuit feedback.
[0033] h. Distributed current As used herein, "distributed current" may refer to a pattern of current delivered from the various needle electrode arrays of the electroporation devices described herein that minimizes or preferably eliminates the occurrence of electroporation-related thermal stress in any region of the tissue being electroporated.
[0034] i. Electroporation "Electroporation," "electropermeabilization," or "electrokinetics" ("EP"), as used interchangeably herein, may refer to the use of transmembrane electric field pulses to induce microscopic pathways (pores) in biological membranes, the presence of which allows the passage of biomolecules, such as plasmids, oligonucleotides, siRNA, drugs, ions, and water, from one side of the cell membrane to the other.
[0035] j. Feedback mechanism As used herein, a "feedback mechanism" may refer to a software or hardware (or firmware) implemented process that receives a desired tissue impedance (before, during, and / or after delivery of an energy pulse), compares it to an existing value, preferably current, and adjusts the delivered energy pulse to implement the preset value. The feedback mechanism may also be implemented by a similar closed circuit.
[0036] k. Fragment As used herein, a "fragment" may refer to a portion or nucleic acid encoding a polypeptide capable of eliciting an immune response in a mammal substantially similar to the immune response of the non-fragment for at least one FMDV subtype, e.g., A, Asia 1, C, O, SAT1, SAT2, or SAT3. SEQ ID NOs: 1 to 7 and 15 to 21The fragment may be a DNA fragment selected from at least one of the various coding nucleotide sequences of the present invention, including SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41. The fragment may comprise at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, or at least 95% of the nucleic acid sequence of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41. The fragment may comprise at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, at least 90% or at least 95% of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41, provided that the fragment comprises one or more of amino acids 21, 86, 127, 129, 154, 156, 182, 195, 206, 218, 220, 237, 249, 255, 265, 271 or 275. All such fragments may optionally exclude amino acids. The DNA fragment may be 30 or more nucleotides in length, 45 or more, 60 or more, 75 or more, 90 or more, 120 or more, 150 or more, 180 or more, 210 or more, 240 or more, 270 or more, 300 or more, 360 or more, 420 or more, 480 or more, 540 or more, 600 or more, 660 or more, 720 or more, 780 or more, 840 or more, 900 or more, 960 or more, 1020 or more, 1080 or more, 1140 or more, 1200 or more, 1260 or more, 1320 or more, 1380 or more, 1400 or more, 1500 or more, 1600 or more, 1700 or more, 1800 or more, 1900 or more, 2000 or more, 2100 or more, 2200 or more, 2300 or more, 2400 or more, 2500 or more, 2600 or more, 2700 or more, 2800 or more, 2900 or more, 3000 or more, 3100 or more, 3200 or more, 3300 or more, 3400 or more, 3500 or more, 3600 or more, 3700 or more, 3800 or more, 3900 or more, 4000 or more, 4200 or more, 4800 or more, 5400 or more, 6000 or more, 6600 or more, 7200 or more, 7800 or more, 8400 or more, 9000 or more, It may be 40 or more, 1500 or more, 1560 or more, 1620 or more, 1680 or more, 1740 or more, 1800 or more, 1860 or more, 1820 or more, 1880 or more, 1940 or more, 2000 or more, 2600 or more, 2700 or more, 2800 or more, 2900 or more, 2910 or more, 2920 or more, 2930 or more, 2931 or more, 2932 or more, 2933 or more, 2934 or more, 2935 or more, 2936 or more, 2937 or more, or 2938 or more nucleotides in length.
[0037] The DNA fragment may also include a coding sequence for an immunoglobulin leader, such as an IgE or IgG sequence.
[0038] DNA fragments are less than 10 nucleotides, less than 20, less than 30, less than 40, less than 50, less than 60, less than 75, less than 90, less than 120, less than 150, less than 180, less than 210, less than 240, less than 270, less than 300, less than 360, less than 420, less than 480, less than 540, less than 600, less than 660, less than 720, less than 780, less than 840, less than 900, less than 960, less than 1020, less than 1080, less than 1140, less than 1200, less than 1260, less than 1320, less than 1320, less than 1360, less than 1360, less than 1380, less than 1380, less than 1390, less than 140 ... It may be less than 80, less than 1440, less than 1500, less than 1560, less than 1620, less than 1680, less than 1740, less than 1800, less than 1860, less than 1820, less than 1880, less than 1940, less than 2000, less than 2600, less than 2700, less than 2800, less than 2900, less than 2910, less than 2920, less than 2930, less than 2931, less than 2932, less than 2933, less than 2934, less than 2935, less than 2936, less than 2937, or less than 2938 nucleotides.
[0039] A "fragment" may refer to a polypeptide fragment capable of eliciting an immune response in a mammal substantially similar to that of the non-fragment for at least one FMDV subtype, e.g., A, Asia 1, C, O, SAT1, SAT2, or SAT3. The fragment may be a polypeptide fragment selected from at least one of various encoded polypeptide sequences of the present invention, including SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. The polypeptide fragment may be analyzed and contacted with at least one antigenic epitope provided by a publicly available database, such as the FMDV Sequence Database of Los Alamos National Laboratory. A fragment of a protein may comprise at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, or at least 95% of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. The polypeptide may also comprise an amino acid sequence for an immunoglobulin leader, e.g., IgE or IgG. The polypeptide fragment may be 30 or more amino acids in length, 45 or more, 60 or more, 75 or more, 90 or more, 120 or more, 150 or more, 180 or more, 210 or more, 240 or more, 270 or more, 300 or more, 360 or more, 420 or more, 480 or more, 540 or more, 600 or more, 660 or more, or 710 or more amino acids in length. A polypeptide fragment may be less than 10 amino acids, less than 20, less than 30, less than 40, less than 50, less than 60, less than 75, less than 90, less than 120, less than 150, less than 180, less than 210, less than 240, less than 270, less than 300, less than 360, less than 420, less than 480, less than 540, less than 600, less than 660, less than 700, less than 701, less than 702, less than 703, less than 704, less than 705, less than 706, less than 707, less than 708, less than 709, or less than 710 amino acids in length.
[0040] l.Homology Multiple sequence alignments of homology may be generated using ClustalW (http: / / www.ebi.ac.uk / Tools / clustalw2 / index.html).
[0041] m. identical As used herein, "identical" or "identity," in the context of two or more nucleic acid or polypeptide sequences, may mean that the sequences have a specified percentage of residues that are identical in a specified region. The percentage may be calculated by optimally aligning the two sequences, comparing the two sequences in a specified region, determining the number of positions where identical residues occur in both sequences to obtain the number of matching positions, dividing the number of matching positions by the total number of positions in the specified region, and multiplying the result by 100 to obtain the percentage of sequence identity. If the two sequences are of different lengths or the alignment generates one or more staggered ends and the specified region being compared contains only a single sequence, the residues of the single sequence are included in the denominator rather than the numerator of the calculation. When comparing DNA and RNA, thymine (T) and uracil (U) may be considered equivalent. Identity may be performed manually or by using a computer sequence algorithm such as BLAST or BLAST 2.0.
[0042] Impedance As used herein, "impedance" may be used when discussing feedback mechanisms and can be converted to a current value by Ohm's law and thus compared to a preset current.
[0043] Immune response As used herein, "immune response" may refer to activation of a host's immune system, e.g., a mammalian immune system, in response to introduction of an FMDV consensus antigen via a provided DNA plasmid vaccine. The immune response may be in the form of a cellular response or a humoral response, or both.
[0044] p.Nucleic acid As used herein, "nucleic acid" or "oligonucleotide" or "polynucleotide" may refer to at least two nucleotides covalently linked to each other. A reference to a single strand also defines the sequence of the complementary strand. That is, a nucleic acid also encompasses the complementary strand of a referenced single strand. Many variants of a nucleic acid may be used for the same purpose as a given nucleic acid. That is, a nucleic acid also encompasses substantially identical nucleic acids and their complementary sequences. A single strand provides a probe that can hybridize to a target sequence under stringent hybridization conditions. That is, a nucleic acid also encompasses probes that hybridize under stringent hybridization conditions.
[0045] Nucleic acids may be single-stranded or double-stranded, or may contain portions of both double-stranded and single-stranded sequence. Nucleic acids may be DNA, both genomic and cDNA, RNA, or hybrids, and may contain combinations of deoxyribonucleotides and ribonucleotides, as well as combinations of bases including uracil, adenine, thymine, cytosine, guanine, inosine, xanthine, hypoxanthine, isocytosine, and isoguanine. Nucleic acids may be obtained by chemical synthesis or recombinant methods.
[0046] Nucleic acids generally contain phosphodiester bonds, but may also include nucleic acid analogs, which may have at least one different bond, such as phosphoramidate, phosphorothioate, phosphorodithioate, or O-methylphosphoramidite bond, and a peptide nucleic acid backbone and linkage. Other similar nucleic acids include those with a straight backbone; a non-ionic backbone; and a non-ribose backbone, such as those described in U.S. Patent Nos. 5,235,033 and 5,034,506, which are incorporated by reference. Nucleic acids containing one or more non-naturally occurring or modified nucleotides are also included in the definition of nucleic acid. Modified nucleotide analogs may be located, for example, at the 5' and / or 3' ends of a nucleic acid molecule. Representative examples of nucleotide analogs may be selected from sugar- or backbone-modified ribonucleotides. However, it should be noted that nucleobase-modified ribonucleotides, i.e., ribonucleotides containing non-naturally occurring nucleobases instead of naturally occurring nucleobases, such as uridine or cytidine modified at the 5-position, e.g., 5-(2-amino)propyluridine, 5-bromouridine; adenosine and guanosine modified at the 8-position, e.g., 8-bromoguanosine; deazanucleotides, e.g., 7-deazaadenosine; O- and N-alkylated nucleotides, e.g., N6-methyladenosine, are also suitable. The 2'-OH group may be substituted with a group selected from H, OR, R, halo, SH, SR, NH2, NHR, NR2, or CN (wherein R is C1-C6 alkyl, alkenyl, or alkynyl, and halo is F, Cl, Br, or I). Modified nucleotides can be, for example, as described in Krutzfeldt et al., Nature (Oct. 30, 2005), Soutschek et al., Nature 432:173-178 (2004), and U.S. Patent Publication No. 20050107325, which are incorporated herein by reference. Modified nucleotides and nucleic acids may include nucleotides conjugated to cholesterol, for example, via a hydroxyprolinol bond. Modified nucleotides and nucleic acids may include locked nucleic acids (LNA), as described in U.S. Patent No. 20020115080, incorporated herein by reference. Additional modified nucleotides and nucleic acids are described in U.S. Patent Publication No. 20050182005, incorporated herein by reference. Modifications of the ribose-phosphate backbone may be performed for various reasons, such as to improve the stability and half-life of such molecules in physiological environments, to facilitate diffusion through cell membranes, or as probes for biochips. Mixtures of naturally occurring nucleic acids and analogs may be produced, or mixtures of different nucleic acid analogs and naturally occurring nucleic acids and analogs may be produced.
[0047] q. Functionally linked As used herein, "operably linked" may mean that the expression of a gene is under the control of a spatially linked promoter. The promoter may be located 5' (upstream) or 3' (downstream) of the gene under its control. The distance between the promoter and the gene in which the promoter is induced may be approximately the same as the distance between the promoter and the gene it controls. As known to those skilled in the art, variations in this distance can be accommodated without loss of promoter function.
[0048] r.Promoter As used herein, "promoter" may refer to a synthetic or naturally occurring molecule capable of providing, activating, or promoting expression of a nucleic acid in a cell. A promoter may contain one or more specific transcriptional regulatory sequences to further promote expression and / or alter its spatial and / or temporal expression. A promoter may also contain distal enhancer or repressor elements, which can be located thousands of base pairs from the transcription start site. Promoters may be derived from sources including viruses, bacteria, fungi, plants, insects, and animals. A promoter may constitutively regulate expression of genetic components or may be variable in relation to the cell, tissue, or organ in which expression occurs, or in relation to the developmental stage in which expression occurs, or in response to external stimuli such as physiological stress, pathogens, metal ions, or transducing agents. Representative examples of promoters include the bacteriophage T7 promoter, bacteriophage T3 promoter, SP6 promoter, lac operator-promoter, tac promoter, SV40 late promoter, SV40 early promoter, RSV-LTR promoter, CMV IE promoter, SV40 early promoter or SV40 late promoter, and CMV IE promoter.
[0049] s. Stringent hybridization conditions As used herein, "stringent hybridization conditions" may refer to conditions under which a first nucleic acid sequence (e.g., a probe) hybridizes to a second nucleic acid sequence (e.g., a target), such as in a complex mixture of nucleic acids. Stringent conditions are sequence-dependent and will vary in different environments. Stringent conditions may be selected to be approximately 5-10°C lower than the thermal melting point (Tm) of the specific sequence at a defined ionic strength and pH. Tm may be the temperature (under defined ionic strength, pH, and nucleic acid concentration) at which 50% of the probes complementary to the target hybridize to the target sequence at equilibrium (the target sequence is present in excess at Tm, so 50% of the probes are occupied at equilibrium). Stringent conditions may be conditions in which the salt concentration is less than about 1.0 M sodium ion, e.g., 0.01 to 1.0 M sodium ion (or other salt) at pH 7.0 to 8.3, and the temperature is at least about 30°C for short probes (e.g., about 10 to 50 nucleotides) and at least about 60°C for long probes (e.g., more than about 50 nucleotides). Stringent conditions may also be achieved by the addition of destabilizing agents such as formamide. For selective or specific hybridization, a positive signal may be at least 2 to 10 times background hybridization. Exemplary stringent hybridization conditions include: 50% formamide, 5x SSC, and 1% SDS, incubated at 42°C; or 5x SSC, 1% SDS, incubated at 65°C, washed with 0.2x SSC, and 0.1% SDS at 65°C.
[0050] t. substantially complementary As used herein, "substantially complementary" can mean that a first sequence is at least 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 97%, 98%, or 99% identical to the complement of a second sequence over a region of 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100 or more nucleotides or amino acids, or that the two sequences hybridize under stringent hybridization conditions.
[0051] u. Substantially identical As used herein, "substantially identical" can mean that a first sequence and a second sequence are at least 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 97%, 98%, or 99% identical over a region of 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100 or more nucleotides or amino acids, or with respect to nucleic acids, where the first sequence is substantially complementary to the complement of the second sequence.
[0052] v. Subtype or serotype "Subtype" or "serotype," as used interchangeably herein and in reference to the FMDV virus, refer to genetic variants of FMDV viral antigens such that one subtype is recognized by the immune system differently from a different subtype.
[0053] w. mutant As used herein, a "variant" with respect to a nucleic acid includes (i) a portion or fragment of a referenced nucleotide sequence; (ii) a complementary sequence of a referenced nucleotide sequence or a portion thereof; (iii) a nucleic acid that is substantially identical to a referenced nucleic acid or its complementary sequence; and (iv) may mean a nucleic acid that hybridizes under stringent conditions to a reference nucleic acid, its complement, or a sequence substantially identical thereto.
[0054] "Variant" refers to a peptide or polypeptide that differs in amino acid sequence by amino acid insertion, deletion, or conservative substitution, but retains at least one biological activity. Variant may also refer to a protein having an amino acid sequence substantially identical to a reference portion having an amino acid sequence that retains at least one biological activity. It is recognized in the art that conservative amino acid substitutions, i.e., substitution of an amino acid with a different amino acid having similar properties (e.g., hydrophilicity, degree and distribution of charged regions), typically involve minor changes. These minor changes can be identified, in part, by considering the hydropathic index of amino acids, as understood in the art. Kyte et al., J. Mol. Biol. 157:105-132 (1982). The hydropathic index of an amino acid is based on consideration of its hydrophobicity and charge. It is known in the art that amino acids with similar hydropathic indexes can be substituted and still retain protein function. In one embodiment, amino acids with hydropathic indexes of ±2 are substituted. The hydrophilicity of amino acids can also be used to identify substitutions that result in proteins that retain biological function. By considering the hydrophilicity of amino acids in the context of a peptide, it is possible to calculate the peptide's greatest local average hydrophilicity, a useful index that has been reported to correlate well with antigenicity and immunogenicity. U.S. Pat. No. 4,554,101, incorporated herein by reference in its entirety. As understood in the art, substitution of amino acids with similar hydrophilicity values can result in peptides that retain biological activity, such as immunogenicity. Substitutions may be made with amino acids with hydrophilicity values within ±2 of each other. Both the hydrophobic index and hydrophilicity value of an amino acid are influenced by the specific side chain of that amino acid. Consistent with that observation, it is understood that amino acid substitutions that are compatible with biological function depend on the relative similarity of the amino acids, particularly their side chains, as manifested by hydrophobicity, hydrophilicity, charge, size, and other properties.
[0055] x.vector As used herein, "vector" may refer to a nucleic acid sequence containing a replication origin. A vector may be a plasmid, a bacteriophage, a bacterial artificial chromosome, or a yeast artificial chromosome. A vector may be a DNA or RNA vector. A vector may be either an autonomously replicating extrachromosomal vector or a vector that integrates into a host genome.
[0056] 2. FMDV proteins Provided herein are antigens capable of eliciting an immune response in mammals against one or more foot-and-mouth disease virus (FMDV) subtypes. The antigen may be an FMDV antigen including capsid proteins VP1, VP2, VP3, VP4, a consensus thereof, a variant thereof, a fragment thereof, or a combination thereof. The FMDV antigen may be of FMDV subtype A, Asia 1, C, O, SAT1, SAT2, or SAT3. The FMDV antigen may contain at least one antigenic epitope that may be effective against a specific FMDV immunogen capable of inducing an immune response. The empty virus capsid proteins VP1-4 of the FMDV antigen provide the entire repertoire of immunogenic sites and epitopes present in intact FMDV viruses. A consensus FMDV antigen sequence may be obtained from FMDV antigenic sequences of multiple FMDV viruses of a single FMDV subtype. The consensus FMDV antigen may comprise VP1, VP2, VP3, and VP4 FMDV subtype consensus protein sequences, which may be consensus VP1-4 proteins. The consensus VP1-4 proteins may comprise at least one FMDV protein 3C cleavage site. The protein 3C cleavage site may be present between each of the consensus VP1, VP2, VP3, and VP4 sequences of the consensus VP1-4 protein. Cleavage of the consensus VP1-4 protein at protein 3C may cleave the consensus VP1-4 protein to generate consensus VP1-, consensus VP2-, consensus VP3-, and consensus VP4-proteins. Alternatively, a native proteolytic cleavage site may be present between each of the consensus antigen sequences, e.g., the amino acid sequence SEQ ID NO: 45:RGRKRRS.
[0057] Fusion proteins containing consensus VP1, VP2, VP3, and VP4, and consensus for protease 3C are provided, which are the consensus sequences for subtypes A, Asia 1, C, O, SAT1, SAT2, and SAT3, respectively, as SEQ ID NOs: 2, 4, 6, 8, 10, 12, and 14.
[0058] SEQ ID NO: 16 is the consensus 3C protease sequence.
[0059] Fusion proteins containing consensus VP1, VP2, VP3, and VP4 are provided, which are the consensus sequences of subtypes A, Asia 1, C, O, SAT1, SAT2, and SAT3, SEQ ID NOs: 18, 20, 22, 24, 26, 28, and 30, respectively.
[0060] SEQ ID NOs: 32, 34, 36, and 38 are consensus sequences for VP1 subtypes Asia, O, A, and C, respectively. These sequences include the IgE leader sequence, SEQ ID NO: 44, which in each instance may be replaced with a different leader or deleted and replaced with methionine.
[0061] SEQ ID NOs: 40 and 42 are fusion proteins of two VP1 consensus sequences. SEQ ID NO: 40 is consensus VP1 subtype A and VP1 subtype C. SEQ ID NO: 42 is consensus VP1 subtype Asia and VP1 subtype O. These sequences include the IgE leader sequence SEQ ID NO: 44, which in each instance may be replaced with a different leader or deleted and replaced with methionine.
[0062] In addition, the protein may be a fragment of SEQ ID NO: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. In some embodiments, the protein is 20% of the consensus protein. In some embodiments, the protein is 20% of the consensus protein. In some embodiments, the protein is 30% of the consensus protein. In some embodiments, the protein is 40% of the consensus protein. In some embodiments, the protein is 50% of the consensus protein. In some embodiments, the protein is 60% of the consensus protein. In some embodiments, the protein is 70% of the consensus protein. In some embodiments, the protein is 80% of the consensus protein. In some embodiments, the protein is 90% of the consensus protein. In some embodiments, the protein is 95% of the consensus protein. In some embodiments, the protein is 96% of the consensus protein. In some embodiments, the protein is 97% of the consensus protein. In some embodiments, the protein is 98% of the consensus protein. In some embodiments, the protein is 99% of the consensus protein.
[0063] In addition, the protein may be homologous to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. In some embodiments, the protein is 80% homologous. In some embodiments, the protein is 90% homologous. In some embodiments, the protein is 95% homologous. In some embodiments, the protein is 96% homologous. In some embodiments, the protein is 97% homologous. In some embodiments, the protein is 98% homologous. In some embodiments, the protein is 99% homologous.
[0064] In addition, the protein may be a fragment of a protein homologous to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. In some embodiments, the protein is 20% homologous. In some embodiments, the protein is 20% homologous. In some embodiments, the protein is 30% homologous. In some embodiments, the protein is 40% homologous. In some embodiments, the protein is 50% homologous. In some embodiments, the protein is 60% homologous. In some embodiments, the protein is 70% homologous. In some embodiments, the protein is 80% homologous. In some embodiments, the protein is 90% homologous. In some embodiments, the protein is 95% homologous. In some embodiments, the protein is 96% homologous. In some embodiments, the protein is 97% homologous. In some embodiments, the protein is 98% homologous. In some embodiments, the protein is 99% homologous.
[0065] 3. Code Sequence Provided herein are coding sequences for antigens capable of eliciting an immune response in mammals against one or more foot-and-mouth disease virus (FMDV) subtypes. The antigens may be FMDV antigens including capsid proteins VP1, VP2, VP3, VP4, their consensus, variants, fragments, or combinations thereof. The FMDV antigens may be from FMDV subtypes A, Asia 1, C, O, SAT1, SAT2, or SAT3. The FMDV antigens may contain at least one antigenic epitope that may be effective against a specific FMDV immunogen capable of inducing an immune response. The empty virus capsid proteins VP1-4 of the FMDV antigen provide the entire repertoire of immunogenic sites and epitopes present in intact FMDV viruses. A consensus FMDV antigen sequence may be obtained from FMDV antigen sequences from multiple FMDV viruses of a single FMDV subtype. The consensus FMDV antigen may comprise VP1, VP2, VP3, and VP4 FMDV subtype consensus protein sequences, which may be consensus VP1-4 proteins. The consensus VP1-4 proteins may comprise at least one FMDV protein 3C cleavage site. The protein 3C cleavage site may be present between each of the consensus VP1, VP2, VP3, and VP4 sequences of the consensus VP1-4 protein. Cleavage of the consensus VP1-4 protein at protein 3C may cleave the consensus VP1-4 protein to generate consensus VP1-, consensus VP2-, consensus VP3-, and consensus VP4-proteins. Alternatively, a native proteolytic cleavage site may be present between each of the consensus antigen sequences, e.g., the amino acid sequence SEQ ID NO: 45:RGRKRRS.
[0066] Coding sequences for fusion proteins containing consensus VP1, VP2, VP3, and VP4, as well as a consensus for protease 3C, are provided as SEQ ID NOS: 1, 3, 5, 7, 9, 11, and 13, which encode the consensus sequences for subtypes A, Asia 1, C, O, SAT1, SAT2, and SAT3, respectively.
[0067] SEQ ID NO: 15 encodes the consensus 3C protease sequence.
[0068] Coding sequences for fusion proteins containing consensus VP1, VP2, VP3, and VP4 are provided, which are the consensus sequences for subtypes A, Asia 1, C, O, SAT1, SAT2, or SAT3, SEQ ID NOs: 17, 19, 21, 23, 25, 27, and 29, respectively.
[0069] SEQ ID NOs: 31, 33, 35, and 37 encode the consensus sequences for VP1 subtypes Asia, O, A, and C, respectively. These sequences include the coding sequence of the IgE leader sequence, SEQ ID NO: 44, which in each instance may be replaced by the coding sequence of a different leader, or deleted and replaced by just the start codon.
[0070] SEQ ID NOs: 40 and 42 are fusion proteins of two consensus sequences of VP1. SEQ ID NO: 40 is consensus VP1 subtype A and VP1 subtype C. SEQ ID NO: 42 is consensus VP1 subtype Asia and VP1 subtype O. These sequences include the IgE leader sequence SEQ ID NO: 44, which in each instance may be replaced with the coding sequence for a different leader, or deleted and replaced with just the start codon.
[0071] In addition, the coding sequence may be a fragment of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. In some embodiments, the coding sequence encodes a protein that is 20% of the consensus protein. In some embodiments, the coding sequence encodes a protein that is 30% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 40% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 50% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 60% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 70% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 80% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 90% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 95% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 96% of the consensus sequence. In some embodiments, the coding sequence encodes a protein that is 97% of the consensus sequence.
[0072] In addition, the coding sequence may encode a protein homologous to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. In some embodiments, the coding sequence encodes a protein that is 80% homologous. In some embodiments, the coding sequence encodes a protein that is 90% homologous. In some embodiments, the coding sequence encodes a protein that is 95% homologous. In some embodiments, the coding sequence encodes a protein that is 96% homologous. In some embodiments, the coding sequence encodes a protein that is 97% homologous. In some embodiments, the coding sequence encodes a protein that is 98% homologous. In some embodiments, the coding sequence encodes a protein that is 99% homologous.
[0073] Additionally, the coding sequence encodes a protein that is a fragment of a protein homologous to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42. In some embodiments, the coding sequence encodes a protein that is 20% homologous. In some embodiments, the coding sequence encodes a protein that is 30% homologous. In some embodiments, the coding sequence encodes a protein that is 40% homologous. In some embodiments, the coding sequence encodes a protein that is 50% homologous. In some embodiments, the coding sequence encodes a protein that is 60% homologous. In some embodiments, the coding sequence encodes a protein that is 70% homologous. In some embodiments, the coding sequence encodes a protein that is 80% homologous. In some embodiments, the coding sequence encodes a protein that is 90% homologous. In some embodiments, the coding sequence encodes a protein that is 95% of the homologous protein. In some embodiments, the coding sequence encodes a protein that is 96% of the homologous protein. In some embodiments, the coding sequence encodes a protein that is 97% of the homologous protein. In some embodiments, the coding sequence encodes a protein that is 98% of the homologous protein. In some embodiments, the coding sequence encodes a protein that is 99% of the homologous protein.
[0074] Additionally, the coding sequence may be a fragment of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41. In some embodiments, the fragment is 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41.
[0075] In addition, the coding sequence may be homologous to SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41. In some embodiments, the coding sequence is 80%, 90%, 95%, 96%, 97%, 98%, or 99% homologous to SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41.
[0076] In addition, the coding sequence may be homologous to a fragment of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41. In some embodiments, the fragment is 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 96%, 97%, 98%, or 99% of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41, and the coding sequence is 80%, 90%, 95%, 96%, 97%, 98%, or 99% homologous to a fragment of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39, and 41.
[0077] 4. Plasmids Provided herein is a vector capable of expressing one or more FMDV antigens in mammalian cells in an amount effective to elicit an immune response in the mammal. The vector may contain a heterologous nucleic acid encoding the FMDV antigen. The vector may be a plasmid. The plasmid may be useful for transfecting cells with the nucleic acid encoding the FMDV antigen, and the transfected host cells are cultured and maintained under conditions that allow expression of the FMDV antigen.
[0078] The plasmid may comprise a nucleic acid encoding an FMDV antigen selected from the group consisting of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42, fragments thereof, equivalent sequences thereof, and fragments of homologs. The plasmid may further comprise an initiation codon or leader sequence, which may be upstream of the coding sequence, and a termination codon, which may be downstream of the coding sequence. The initiation and termination codons may be in-frame with the coding sequence.
[0079] The plasmid may contain a promoter operably linked to the coding sequence. The promoter operably linked to the coding sequence may be a simian virus 40 (SV40) promoter, a mouse mammary tumor virus (MMTV) promoter, a human immunodeficiency virus (HIV) promoter, such as the bovine immunodeficiency virus (BIV) long terminal repeat (LTR) promoter, a Moloney virus promoter, an avian leukosis virus (ALV) promoter, a cytomegalovirus (CMV) promoter, such as the CMV immediate-early promoter, an Epstein-Barr virus (EBV) promoter, or a Rous sarcoma virus (RSV) promoter. The promoter may be from a human gene, such as human actin, human myosin, human hemoglobin, human muscle creatine, or human metallothionein. The promoter may be a natural or synthetic tissue-specific promoter, such as a muscle- or skin-specific promoter. Examples of such promoters are described in US Patent Application Publication US20040175727, the contents of which are incorporated herein by reference in their entirety.
[0080] The plasmid may contain a polyadenylation signal, which may be present downstream of the coding sequence. The polyadenylation signal may be an SV40 polyadenylation signal, an LTR polyadenylation signal, a bovine growth hormone (bGH) polyadenylation signal, a human growth hormone (hGH) polyadenylation signal, or a human β-globin polyadenylation signal. The SV40 polyadenylation signal may be a polyadenylation signal from the pCEP4 plasmid (Invitrogen, San Diego, CA).
[0081] The plasmid may contain an enhancer upstream of the coding sequence. The enhancer may be human actin, human myosin, human hemoglobin, human muscle creatine, or a viral enhancer, such as CMV, FMDV, RSV, or EBV. The function of the polynucleotide is described in U.S. Patent Nos. 5,593,972, 5,962,428, and WO94 / 016737, which are incorporated herein by reference in their entirety.
[0082] The plasmid may contain a mammalian origin of replication to maintain the plasmid extrachromosomally and generate multiple copies of the plasmid within the cell. The plasmid may be pVAX1, pCEP4, or pREP4 from Invitrogen (San Diego, CA), which may contain the Epstein-Barr virus origin of replication and the EBNA-1 nuclear antigen coding region, allowing for high-copy-number episomal replication without integration. The plasmid backbone may be pAV0242. The plasmid may be a replication-deficient adenovirus type 5 (Ad5) plasmid.
[0083] The plasmid may contain regulatory sequences, which may be sufficient for gene expression in a cell to which the plasmid is administered. The coding sequence may contain codons, which may allow for more efficient transcription of the coding sequence in the host cell.
[0084] The coding sequence may include an Ig leader sequence. The leader sequence may be 5' to the coding sequence. The consensus protein encoded by this sequence may include an N-terminal Ig leader followed by a consensus protein. The N-terminal Ig leader may be IgE or IgG.
[0085] The plasmid may be pSE420 (Invitrogen, San Diego, CA), which may be used for protein production in Escherichia coli (E. coli). The plasmid may be pYES2 (Invitrogen, San Diego, CA), which may be used for protein production in Saccharomyces cerevisiae strains of yeast. The plasmid may be the MAXBAC™ Complete Baculovirus Expression System (Invitrogen, San Diego, CA), which may be used for protein production in insect cells. The plasmid may be pcDNA I or pcDNA3 (Invitrogen, San Diego, CA), which may be used for protein production in mammalian cells, such as Chinese hamster ovary (CHO) cells.
[0086] The plasmid may contain one or more coding sequences encoding one or more of the VP1, VP2, VP3, VP4 and 3C of one or more subtypes, for example, Asia, A, O, C, SAT1, SAT2, and SAT3.
[0087] In some embodiments, the plasmid comprises coding sequences for multiple different consensus FMDV antigens VP1, VP2, VP3, VP4 and 3C of subtypes Asia, A, O, C, SAT1, SAT2, or SAT3.
[0088] In some embodiments, the plasmid comprises coding sequences for multiple different consensus FMDV antigens VP1, VP2, VP3 and VP4 of subtypes Asia, A, O, C, SAT1, SAT2, or SAT3.
[0089] In some embodiments, the plasmid contains two different consensus FMDV antigen VP1s of subtypes Asia, A, O, and C, e.g., subtype Asia It contains the coding sequence for VP1 from subtype A and VP1 from subtype O, or VP1 from subtype A and VP1 from subtype C.
[0090] In some embodiments, the plasmid encodes the consensus FMDV antigen VP1, e.g., VP1 subtype Asia, VP1 subtype A, VP1 subtype O, or VP1 subtype B. It contains the coding sequence for subtype C.
[0091] The coding sequences can be encoded by different DNA plasmids all controlled by operably linked promoters, e.g., a DNA plasmid having coding sequences containing multiple consensus FMDV antigens controlled by more than one promoter.
[0092] 5. Vaccines Without being bound by scientific theory, a vaccine that can be used to induce a broad immune response (humoral, cellular, or both) against FMDV may include one or more of the coding sequences set forth above, i.e., nucleic acid sequences encoding one or more of the proteins VP1, VP2, VP3, VP4, and VP3C from a subtype selected from the group consisting of FMDV subtypes such as A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof. Coding sequences can include homologous sequences, fragments, and homologous sequences of fragments. Alternatively, or in addition, a composition that induces an anti-FMDV immune response may include one or more proteins selected from the group consisting of FMDV subtypes such as A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof.
[0093] Provided herein is a vaccine capable of generating an immune response in a mammal against one or more FMDV subtypes. The vaccine may comprise the plasmids discussed above. The vaccine may comprise multiple plasmids, each directed to one or more FMDV subtypes, such as A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof. The vaccine may comprise FMDV antigens, each directed to one or more FMDV subtypes, such as A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof. The vaccine may comprise plasmids directed to FMDV subtypes from specific regions of the world, such as Asia, Europe, and sub-Africa. Alternatively, or in addition, the vaccine may comprise proteins from one or more FMDV subtypes, such as A, Asia 1, C, O, SAT1, SAT2, SAT3, or a combination thereof. The vaccine may comprise FMDV antigens that themselves are directed against one or more FMDV subtypes, such as A, Asia 1, C, O, SAT1, SAT2, SAT3, or combinations thereof. The vaccine may comprise plasmids and / or proteins directed against FMDV subtypes from specific regions of the world, such as Asia, Europe, and sub-Africa. The vaccine may be provided to induce a therapeutic or prophylactic immune response.
[0094] The vaccine may include a nucleic acid encoding an FMDV C3 protease, which may be a consensus C3 protease nucleic acid. The consensus protein 3C nucleic acid may be a protein 3C coding sequence. Alternatively, or in addition, the vaccine may include an FMDV 3C protease, such as an FMDV consensus C3 protease, e.g., protein 3C. The vaccine may include a chimeric gene encoding a complete or partial VP1-4 coding sequence and a complete or partial 3C coding sequence. Alternatively, or in addition, the vaccine may include a fusion protein including a complete or partial VP1-4 and a complete or partial C3.
[0095] Provided herein are pharmaceutical compositions according to the invention comprising about 1 nanogram to about 10 mg of DNA. In some embodiments, the pharmaceutical compositions according to the invention comprise: 1) at least 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, or 100 nanograms, or at least 1, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 145, 150, 155, 160, 165, 170, 175, 180, 185, 190, 200, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 285, 290, 300, 310, 320, 330, 340, 350, 360, 370, 380, 390, 400, 410, 415, 420, 425, 430, 435, 440, 450, 500, 550, 600, 650, 700, 5, 170, 175, 180, 185, 190, 195, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 285, 290, 295, 300, 305, 310, 315, 320, 325, 330, 335, 340, 345, 350, 355, 360, 365, 370, 375, 380, 385, 390, 395, 400, 405, 410, 415, 420, 425, 430, 435, 44 0, 445, 450, 455, 460, 465, 470, 475, 480, 485, 490, 495, 500, 605, 610, 615, 620, 625, 630, 635, 640, 645, 650, 655, 660, 665, 670, 675, 680, 685, 690, 695, 700, 705, 710, 715, 720, 725, 730, 735, 740, 745, 750, 755, 760, 765, 770, 775, 780, 785, 790, 795, 800, 805, 810, 8 15, 820, 825, 830, 835, 840, 845, 850, 855, 860, 865, 870, 875, 880, 885, 890, 895, 900, 905, 910, 915, 920, 925, 930, 935, 940, 945, 950, 955, 960, 965, 970, 975, 980, 985, 990, 995 or 1000 micrograms, or at least 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.5 or 10 mg or more, 2) up to 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, or 100 nanograms (inclusive), or up to 1, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 145, 150, 155, 160, 165, 170, 175, 180, 185, 190, 195, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 285, 290, 300, 310, 320, 330, 340, 350, 360, 370, 380, 390, 410, 420, 430, 440, 450, 460, 470, 480, 490, 510, 520, 530, 540, 550, 560, 570, 580, 590, 0, 175, 180, 185, 190, 195, 200, 205, 210, 215, 220, 225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 285, 290, 295, 300, 305, 310, 315, 320, 325, 330, 335, 340, 345, 350, 355, 360, 365, 370, 375, 380, 385, 390, 395, 400, 405, 410, 415, 420, 425, 430, 435, 440, 445, 450, 455, 460, 465, 470, 475, 480, 485, 490, 495, 500, 605, 610, 615, 620, 625, 630, 635, 640, 645, 650, 655, 660, 665, 670, 675, 680, 685, 690, 695, 700, 705, 710, 715, 720, 725, 730, 735, 740, 745, 750, 755, 760, 765, 770, 775, 780, 785, 790, 795, 800, 805, 810, 815, 820, 8 25, 830, 835, 840, 845, 850, 855, 860, 865, 870, 875, 880, 885, 890, 895, 900, 905, 910, 915, 920, 925, 930, 935, 940, 945, 950, 955, 960, 965, 970, 975, 980, 985, 990, 995 or 1000 micrograms (inclusive), or up to a maximum of 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.In some embodiments, the pharmaceutical composition according to the present invention comprises about 5 nanograms to about 10 mg of DNA. In some embodiments, the pharmaceutical composition according to the present invention comprises about 25 nanograms to about 5 mg of DNA. In some embodiments, the pharmaceutical composition comprises about 50 nanograms to about 1 mg of DNA. In some embodiments, the pharmaceutical composition comprises about 0.1 to about 500 micrograms of DNA. In some embodiments, the pharmaceutical composition comprises about 1 to about 350 micrograms of DNA. In some embodiments, the pharmaceutical composition comprises about 5 to about 250 micrograms of DNA. In some embodiments, the pharmaceutical composition comprises about 10 to about 200 micrograms of DNA. In some embodiments, the pharmaceutical composition comprises about 15 to about 150 micrograms of DNA. In some embodiments, the pharmaceutical composition comprises about 20 to about 100 micrograms of DNA. In some embodiments, the pharmaceutical composition comprises about 25 to about 75 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 30 to about 50 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 35 to about 40 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 100 to about 200 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 10 micrograms to about 100 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 20 micrograms to about 80 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 25 micrograms to about 60 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 30 nanograms to about 50 micrograms of DNA. In some embodiments, the pharmaceutical composition contains about 35 nanograms to about 45 micrograms of DNA. In some preferred embodiments, the pharmaceutical composition contains about 0.The pharmaceutical composition contains 1 to about 500 micrograms of DNA. In some preferred embodiments, the pharmaceutical composition contains about 1 to about 350 micrograms of DNA. In some preferred embodiments, the pharmaceutical composition contains about 25 to about 250 micrograms of DNA. In some preferred embodiments, the pharmaceutical composition contains about 100 to about 200 micrograms of DNA.
[0096] The pharmaceutical composition according to the present invention is formulated according to the mode of administration to be used. When the pharmaceutical composition is an injectable pharmaceutical composition, it is sterile, pyrogen-free, and particulate-free. Preferably, an isotonic formulation is used. Common additives for isotonicity include sodium chloride, dextrose, mannitol, sorbitol, and lactose. In some cases, an isotonic solution, such as phosphate-buffered saline, is preferred. Stabilizers include gelatin and albumin. In some embodiments, a vasoconstrictor is added to the formulation.
[0097] Preferably, the pharmaceutical composition is a vaccine, more preferably a DNA vaccine.
[0098] The vaccine may be a DNA vaccine. The DNA vaccine may contain multiple identical or different plasmids containing one or more consensus prostate antigen nucleic acid coding sequences. The DNA vaccine may contain one or more nucleic acid sequences encoding one or more consensus prostate antigens. When the DNA vaccine contains coding sequences for more than one consensus prostate antigen, all such sequences may be present on a single plasmid, or each of such sequences may be present on a different plasmid.
[0099] In some embodiments, the vaccine may comprise a nucleic acid sequence encoding one or more consensus prostate antigens in combination with one or more consensus prostate antigens.
[0100] DNA vaccines are disclosed in U.S. Patent Nos. 5,593,972, 5,739,118, 5,817,637, 5,830,876, 5,962,428, 5,981,505, 5,580,859, 5,703,055, and 5,676,594, which are fully incorporated herein by reference. DNA vaccines can further include elements or reagents that inhibit chromosomal integration. The vaccine can also be prostate antigen RNA. RNA vaccines can be introduced into cells.
[0101] The vaccine may be a recombinant vaccine containing the gene construct or antigen described above.The vaccine may also contain one or more consensus prostate antigens in the form of one or more protein subunits, or one or more attenuated virus particles containing one or more consensus antigens.The attenuated vaccine may be a live attenuated vaccine, a killed vaccine, and a vaccine that uses a recombinant vector to deliver a foreign gene encoding one or more consensus prostate antigens, a subunit vaccine, and a protein vaccine. Examples of live attenuated vaccines, those using recombinant vectors to deliver prostate antigens, subunit vaccines, and glycoprotein vaccines are described in U.S. Pat. Nos. 4,510,245, 4,797,368, 4,722,848, 4,790,987, 4,920,209, 5,017,487, 5,077,044, 5,110,587, 5,112,749, 5,174,993, 5,223,424, 5,225,336, 5,240,703, 5,242,829, and 5,294, each of which is incorporated herein by reference. ,441, No. 5,294,548, No. 5,310,668, No. 5,387,744, No. 5,389,368, No. 5,424,065 No. 5,451,499, No. 5,453,364, No. 5,462,734, No. 5,470,734, No. 5,474,935, No. Nos. 5,482,713, 5,591,439, 5,643,579, 5,650,309, 5,698,202, 5,955,088, 6,034,298, 6,042,836, 6,156,319, and 6,589,529. Vaccines may also include other vaccine components, such as a plasmid in combination with an expression vector encoding an FMDV protein or protein.
[0102] The provided vaccines may be used to induce immune responses, including therapeutic or prophylactic immune responses. Antibodies and / or killer T cells directed against consensus prostate antigens may be generated. Such antibodies and cells may be isolated.
[0103] The vaccine may further comprise a pharmaceutically acceptable excipient. The pharmaceutically acceptable excipient may be a functional molecule such as a vehicle, adjuvant, carrier, or diluent. The pharmaceutically acceptable excipient may be a transfection-enhancing agent, which may include surfactants, such as immunostimulating complexes (ISCOMS), Freund's incomplete adjuvant, LPS analogs including monophosphoryl lipid A, muramyl peptides, quinone analogs, squalene and vesicles such as squalene, hyaluronic acid, lipids, liposomes, calcium ions, viral proteins, polyanions, polycations, or nanoparticles, or other known transfection-enhancing agents.
[0104] The transfection facilitating agent is a polyanion, polycation, or lipid, including poly-L-glutamate (LGS). The transfection facilitating agent is poly-L-glutamate, and more preferably, the poly-L-glutamate is present at a concentration of less than 6 mg / ml. The transfection-facilitating agent may be present in the vaccine at various concentrations. Transfection-facilitating agents may include surfactants, such as immune stimulating complexes (ISCOMS), Freund's incomplete adjuvant, LPS analogs including monophosphoryl lipid A, muramyl peptides, quinone analogs, and vesicles such as squalene and squalene, or may be administered in conjunction with the gene construct using hyaluronic acid. In some embodiments, DNA plasmid vaccines may contain transfection-facilitating agents, such as lipids, liposomes including lecithin liposomes or other liposomes known in the art such as DNA liposome mixtures (see, e.g., WO09324640), calcium ions, viral proteins, polyanions, polycations, or nanoparticles, or other known transfection-facilitating agents. Preferably, the transfection-facilitating agent is a polyanion, polycation, or lipid, including poly-L-glutamate (LGS). The concentration of the transfection agent in the vaccine is less than 4 mg / ml, less than 2 mg / ml, less than 1 mg / ml, less than 0.750 mg / ml, less than 0.500 mg / ml, less than 0.250 mg / ml, less than 0.100 mg / ml, less than 0.050 mg / ml, or less than 0.010 mg / ml.
[0105] The pharmaceutically acceptable excipient may be an adjuvant. The adjuvant may be another gene expressed in an alternative plasmid or delivered as a protein in combination with the previous plasmid in the vaccine. The adjuvant may be selected from the group consisting of α-interferon (IFN-α), β-interferon (IFN-β), γ-interferon, platelet-derived growth factor (PDGF), TNFα, TNFβ, GM-CSF, epidermal growth factor (EGF), cutaneous T-cell chemotactic chemokine (CTACK), thymus-expressed chemokine (TECK), mucosal-associated epithelial chemokine (MEC), IL-12, IL-15, MHC, CD80, IL-15 with a deleted signal sequence, and optionally CD86 containing the signal peptide from IgE. The adjuvant may be IL-12, IL-15, CTACK, TECK, platelet-derived growth factor (PDGF), TNFα, TNFβ, GM-CSF, epidermal growth factor (EGF), IL-1, IL-2, IL-4, IL-5, IL-6, IL-10, IL-12, IL-18, or a combination thereof.
[0106] Other genes that may be useful adjuvants include MCP-1, MIP-1a, MIP-1p, IL-8, RANTES, L-selectin, P-selectin, E-selectin, CD34, GlyCAM-1, MadCAM-1, LFA-1, VLA-1, Mac-1, pl50.95, PECAM, ICAM-1, ICAM-2, ICAM-3, CD2, LFA-3, M-CSF, G-CSF, IL-4, mutant forms of IL-18, CD40, CD40L, and vascular Growth factors, fibroblast growth factor, IL-7, nerve growth factor, vascular epithelial growth factor, Fas, TNF receptor, Flt, Apo-1, p55, WSL-1, DR3, TRAMP, Apo-3, AIR, LARD, NGRF, DR4, DR5 , KILLER, TRAIL-R2, TRICK2, DR6, caspase ICE, Fos, c-jun, Sp-1, Ap-1, Ap-2, p38, p65Rel, MyD88, IRAK, TRAF6, IkB, inactivated NIK, SAP These include those encoding K, SAP-1, JNK, interferon response genes, NFkB, Bax, TRAIL, TRAILrec, TRAILrecDRC5, TRAIL-R3, TRAIL-R4, RANK, RANK LIGAND, Ox40, Ox40 LIGAND, NKG2D, MICA, MICB, NKG2A, NKG2B, NKG2C, NKG2E, NKG2F, TAP1, TAP2, and functional fragments thereof.
[0107] The vaccine may further comprise a genetic vaccine facilitator as described in US patent application Ser. No. 021,579, filed Apr. 1, 1994, which is incorporated by reference in its entirety.
[0108] The vaccine may be formulated according to the mode of administration used. The injectable vaccine pharmaceutical composition may be sterile, pyrogen-free, and particulate-free. An isotonic formulation or solution may be used. Additives for isotonicity may include sodium chloride, dextrose, mannitol, sorbitol, and lactose. The vaccine may also contain a vasoconstrictor. The isotonic solution may include phosphate-buffered saline. The vaccine may further contain stabilizers, including gelatin and albumin. Stabilization, such as LGS or polycations or polyanions, in the vaccine formulation may allow the formulation to remain stable for extended periods at room or ambient temperature.
[0109] 6. Methods of Vaccine Delivery Provided herein are methods of vaccine delivery for providing genetic constructs and proteins of FMDV antigens containing epitopes that are particularly effective against FMDV immunogens capable of inducing an immune response. Vaccine delivery methods or vaccination methods may be provided to induce therapeutic and prophylactic immune responses. The vaccination process may generate an immune response in a mammal against multiple FMDV subtypes. Vaccines may be delivered to an individual to modulate the activity of the mammal's immune system and promote an immune response. Vaccine delivery may be via transfection of FMDV antigens as nucleic acid molecules that are expressed in cells and delivered to the surface of cells recognized by the immune system to induce a cellular response, a humoral response, or both a cellular and humoral response. Vaccine delivery may be used to induce or elicit an immune response in a mammal against multiple FMDV viruses by administering the vaccines discussed above to the mammal.
[0110] Upon delivery of the vaccine and plasmids into mammalian cells, the transfected cells express and secrete the consensus capsid of each of the injected plasmids from the vaccine. These secreted capsid proteins are recognized as foreign by the immune system, and antibodies are generated against them. These antibodies are retained by the immune system, allowing rapid clearance of subsequent FMDV infection.
[0111] The vaccine may be administered to a mammal to elicit an immune response in the mammal, which may be a human, a primate, a non-human primate, a cow, a cattle, a sheep, a goat, an antelope, a bison, a buffalo, a bison, a bovine, a deer, a hedgehog, an elephant, a llama, an alpaca, a mouse, a rat, and a chicken.
[0112] a. Combination treatment The vaccine may be administered to a patient receiving a vaccine containing α-interferon, γ-interferon, platelet-derived growth factor (PDGF), TNFα, TNFβ, GM-CSF, epidermal growth factor (EGF), cutaneous T-cell chemotactic chemokine (CTACK), thymus-expressed chemokine (TECK), mucosal-associated epithelial chemokine (MEC), IL-12, IL-15, MHC, CD80, CD86 containing IL-15 detecting signal sequences and optionally containing a signal peptide from IgE, IL-12, IL-15, CTACK, TECK, platelet-derived growth factor (PDGF), TNFα, TNFβ, GM-CSF, epidermal growth factor (EGF), IL-1, IL-2, IL-4, IL-5, IL-6, IL-10, IL-12, IL-18, MCP-1, MIP-1α, MIP-1p, IL-8, RANTES, L-selectin, P- Selectin, E-selectin, CD34, GlyCAM-1, MadCAM-1, LFA-1, VLA-1, Mac-1, pl50.95, PECAM, ICAM-1, ICAM-2, ICAM-3, CD2, LFA-3, M-CSF, G-CSF, IL-4, mutant forms of IL-18, CD40, CD40L, vascular growth factor, fibroblast growth factor, IL-7, nerve growth factor, vascular epithelial growth factor Factor, Fas, TNF receptor, Flt, Apo-1, p55, WSL-1, DR3, TRAMP, Apo-3, AIR, LARD, NGRF, DR4, DR5, KILLER, TRAIL-R2, TRICK2, DR6, caspase ICE, Fos, c-jun, Sp-1, Ap-1, Ap-2, p38, p65Rel, MyD88, IRAK, TRAF6, IkB, inactivated NIK, SAP The vaccine may be administered in combination with other proteins or genes encoding K, SAP-1, JNK, interferon response genes, NFkB, Bax, TRAIL, TRAILrec, TRAILrecDRC5, TRAIL-R3, TRAIL-R4, RANK, RANK LIGAND, Ox40, Ox40 LIGAND, NKG2D, MICA, MICB, NKG2A, NKG2B, NKG2C, NKG2E, NKG2F, TAP1, TAP2, and functional fragments thereof, or combinations thereof. The vaccine may be administered in combination with CTACK protein, TECK protein, MEC protein, or functional fragments thereof.
[0113] The vaccine may be administered by different routes, including oral, parenteral, sublingual, transdermal, rectal, transmucosal, topical, inhalation, buccal, intrathoracic, intravenous, intraarterial, intraperitoneal, subcutaneous, intramuscular, intranasal, intrathecal, and intraarticular, or a combination thereof. For veterinary use, the composition may be administered in an appropriately acceptable formulation according to standard veterinary practice. A veterinarian can easily determine the most suitable administration regimen and route for a particular animal. The vaccine may be administered by traditional syringe, needleless injection device, "microparticle bombardment gene gun," or other physical methods, such as electroporation (EP), "hydrodynamic method," or ultrasound.
[0114] Vaccine plasmids may be delivered to mammals by several well-known technologies, including DNA injection (also called DNA vaccination) with or without in vivo electroporation, liposome-mediated vectors, nanoparticle-facilitated vectors, recombinant vectors such as recombinant adenoviruses, recombinant adeno-associated viruses, and recombinant vaccines. FMDV antigens may also be delivered via DNA injection in conjunction with in vivo electroporation.
[0115] B. Electroporation Administration of a vaccine via electroporation of a vaccine plasmid may be accomplished using an electroporation device that can be configured to deliver an energy pulse to a desired mammalian tissue, generating a constant current similar to a preset current input by a user. The electroporation device may include an electroporation component and an electrode assembly or a handle assembly. The electroporation component may include or incorporate one or more of the various components of an electroporation device, including a controller, a current waveform generator, an impedance tester, a waveform logger, an input element, a status reporting element, a communication port, a memory element, a power source, and a power switch. Electroporation may be accomplished using a VGXP Cellectra™ system to facilitate transfection of cells with the plasmid.
[0116] The electroporation component may function as one element of the electroporation device, with the other element being a separate element (or components) that communicates with the electroporation component. The electroporation component may function as more than one element of the electroporation device, and may also communicate with other elements of the electroporation device that are separate from the electroporation component. Elements of the electroporation device that exist as part of a single electromechanical or mechanical device may not be limited to the element, as they may function as a single device or as separate elements that communicate with each other. The electroporation component may be capable of delivering an energy pulse that generates a constant current in the desired tissue and may include a feedback mechanism. The electrode assembly may include an electrode array having multiple electrodes in a spatial arrangement, where the electrode assembly receives the energy pulse from the electroporation component and delivers it to the desired tissue via the electrodes. At least one of the multiple electrodes is neutral during delivery of the energy pulse and measures the impedance in the desired tissue and communicates that impedance to the electroporation component. A feedback mechanism may receive the measured impedance and can adjust the energy pulse delivered by the electroporation component to maintain a constant current.
[0117] The plurality of electrodes may deliver energy pulses in a distributed pattern. The plurality of electrodes may deliver energy pulses in a distributed pattern via electrode control under a programmed sequence, the programmed sequence being input into the electroporation component by a user. The programmed sequence may include a plurality of pulses delivered in sequence, where each pulse of the plurality of pulses is delivered by at least two active electrodes, including one neutral electrode that measures impedance, and a subsequent pulse of the plurality of pulses is delivered by a different one of the at least two active electrodes, including one neutral electrode that measures impedance.
[0118] The feedback mechanism may be implemented by either hardware or software. The feedback mechanism may be implemented by an analog closed circuit. Feedback occurs every 50 μs, 20 μs, 10 μs, or 1 μs, but is preferably real-time feedback or instantaneous (i.e., substantially instantaneous as determined by available techniques for determining response time). The neutral electrode may measure the impedance in the desired tissue, which is communicated to the feedback mechanism, which adjusts the energy pulse in response to the impedance to maintain a constant current similar to the preset current. The feedback mechanism may maintain a constant current continuously and instantaneously during delivery of the energy pulse.
[0119] Examples of electroporation devices and methods that can facilitate delivery of the DNA vaccines of the present invention include those described in U.S. Patent No. 7,245,963 to Draghia-Akli et al. and U.S. Patent Publication No. 2005 / 0052630 to Smith et al., the contents of which are incorporated herein by reference in their entireties. Other electroporation devices and methods that can be used to facilitate delivery of DNA vaccines include those provided in co-pending and co-owned U.S. patent application Ser. No. 11 / 874,072, filed October 17, 2007, which claims the benefit under 35 U.S.C. 119(e) to U.S. Provisional Patent Application Ser. No. 60 / 852,149, filed October 17, 2006, and U.S. Provisional Patent Application Ser. No. 60 / 978,982, filed October 10, 2007, all of which are incorporated herein by reference in their entireties.
[0120] U.S. Patent No. 7,245,963 to Draghia-Akli et al. describes a modular electrode system and its use for promoting the introduction of biomolecules into cells of selected tissues in a body or plant. The modular electrode may include multiple needle electrodes; a hypodermic needle; an electrical connector providing a conductive connection from a programmable constant current pulse controller to the multiple needle electrodes; and a power source. An operator can grasp the multiple needle electrodes mounted on a support structure and firmly insert them into selected tissues in a body or plant. The biomolecules are then delivered to the selected tissue via the hypodermic needle. The programmable constant current pulse controller is activated to apply constant current electrical pulses to the multiple needle electrodes. The applied constant current electrical pulses promote the introduction of biomolecules into cells between the multiple electrodes. The entire contents of U.S. Patent No. 7,245,963 are incorporated herein by reference.
[0121] U.S. Patent Publication No. 2005 / 0052630, filed by Smith et al., describes an electroporation device that can be used to effectively promote the introduction of biomolecules into cells of selected tissues in a body or plant. The electroporation device includes an electrokinetic device ("EKD device") whose operation is specified by software or firmware. The EKD device generates a series of programmable constant-current pulse patterns between a row of electrodes under user control and pulse parameter input, allowing for the storage and retrieval of current waveform data. The electroporation device also includes a replaceable electrode disk having an array of needle electrodes, a central injection channel for an injection needle, and a removable guide disk. The entire contents of U.S. Patent Publication No. 2005 / 0052630 are incorporated herein by reference.
[0122] The electrode arrays and methods described in U.S. Patent No. 7,245,963 and U.S. Patent Publication No. 2005 / 0052630 may be configured to penetrate deep into tissues such as muscle, as well as other tissues or organs. Depending on the configuration of the electrode array, an injection needle (delivering the selected biomolecule) may also be inserted completely into the target organ and administered by injection around the target tissue in the area previously designated by the electrode. The electrodes described in U.S. Patent No. 7,245,963 and U.S. Patent Publication No. 2005 / 005263 are preferably 20 mm long and 21 gauge.
[0123] Additionally, as contemplated in some embodiments incorporating electroporation devices and their use, there are electroporation devices described in the following patents: U.S. Patent No. 5,273,525, issued December 28, 1993; U.S. Patent No. 6,110,161, issued August 29, 2000; U.S. Patent No. 6,261,281, issued July 17, 2001; U.S. Patent No. 6,958,060, issued October 25, 2005; and U.S. Patent No. 6,939,862, issued September 6, 2005. Additionally, patents including subject matter provided in U.S. Patent No. 6,697,669, issued February 24, 2004, which relates to delivery of DNA using any of a variety of devices, and U.S. Patent No. 7,328,064, issued February 5, 2008, which focuses on methods of DNA injection, are contemplated herein. The foregoing patents are incorporated by reference in their entirety.
[0124] c. Methods for preparing vaccines Provided herein are methods for preparing vaccines. In some embodiments, the methods are for preparing vaccines comprising DNA plasmids. After a final subcloning step into a mammalian expression plasmid, the DNA plasmids can be used to inoculate cell cultures in large-scale fermentation tanks using methods known in the art. The plasmids are transfected into compatible host cells and cultured under conditions that allow expression of FMDV antigens. FMDV antigens can be recovered from the culture by lysing the cells or isolated from the medium. Isolated VP1-4 consensus proteins can be used as a natural source of antibodies in vaccines. FMDV antigens can also be produced by recombinant techniques using automated synthesizers that can be used to produce isolated, essentially pure FMDV antigens. These techniques can be useful for introducing variants of FMDV antigens of specific FMDV subtypes.
[0125] The DNA plasmids used with the EP devices of the present invention can be formulated or manufactured using a combination of known equipment and techniques, but preferably they are manufactured using the optimized plasmid manufacturing techniques described in co-pending U.S. Provisional Patent Application No. 60 / 939,792, filed March 23, 2007, which is subject to licensing. In some instances, the DNA plasmids used in these studies can be formulated at concentrations of 10 mg / mL or greater. The manufacturing techniques include and incorporate a variety of equipment and protocols generally known to those skilled in the art, including those described in U.S. Provisional Patent Application No. 60 / 939,792, as well as those described in U.S. Patent Application No. 7,238,522, which issued July 3, 2007, which is subject to licensing. The previously referenced applications and patents, U.S. Patent Application No. 60 / 939,792 and U.S. Patent No. 7,238,522, are each incorporated herein in their entirety.
[0126] d. Method for preparing VP1-4 expression constructs A multi-target FMDV DNA vaccine was constructed by first optimizing the VP1, VP2, VP3, and VP4 amino acid sequences of one of the FMDV subtypes Asia, O, A, C, SAT1, SAT2, and SAT3 using at least 10 different sequences from the subtype. Nucleic acids encoding the subtype-optimized VP1-4 proteins were generated. The subtype-optimized VP1-4 nucleic acid sequences were cloned as adjacent coding sequences, with the VPs separated by an intervening FMDV protein 3C protease cleavage site. The optimized VP1-4 coding sequences were inserted into either the pVAX or pAV0242 expression vector under operator control. An IgE leader sequence was placed upstream of the optimized VP1-4 coding sequence, resulting in an N-terminal IgE leader in the encoded protein. Two stop codons were placed at the 3' end of the VP1-4 coding sequence.
[0127] Additionally, a nucleic acid encoding FMDV protein 3C is constructed by optimizing the 3C nucleic acid sequence of one of FMDV subtypes Asia 1, O, A, C, SAT1, SAT2, and SAT3 using at least 10 different sequences from the subtypes, and a nucleic acid encoding the subtype-optimized 3C protein is generated and cloned into the pVAX or pAV0242 plasmid.
[0128] e. Using vaccines as markers Also provided herein is a method for distinguishing between a vaccinated mammal and a mammal infected with FMDV. The method may include isolating a sample from the mammal and a mammalian antigen from the sample. The vaccinated mammal may have antibodies specific only to the empty capsid protein of an FMDV antigen, i.e., viral coat proteins VP1-4 of FMDV subtypes A, Asia 1, O, C, SAT1, SAT2, SAT3, or a combination thereof. A mammal infected with FMDV may have antibodies to the FMDV nonstructural (NS) proteins in addition to antibodies to the FMDV viral coat proteins VP1-4 of a specific FMDV subtype, e.g., A, Asia 1, O, C, SAT1, SAT2, or SAT3. The FMDV NS protein may include the protease 3C protease and FMDV proteins 2C, 3A, 3B, and 3D (polymerase). The method may include identifying antibodies against the NS protein of FMDV, such as the highly antigenic 3D protein. The method may further include determining the presence or absence of the FMDV NS protein by comparing with a serum sample from a vaccinated mammal. Infected mammals have antibodies against the NS protein of FMDV, while vaccinated mammals do not have antibodies against the NS protein because they have sufficient immunity to FMDV infection. The method may include distinguishing between mammals that have antibodies to VP1-4 and mammals that have antibodies to VP1-4 and the 3D polymerase of FMDV.
[0129] Generally, a drug may be used. The drug may be a VP1-4 or NS protein, such as 3D polymerase. A mammalian sample is isolated using an FMDV antibody and competitively reacted with the drug to identify the specificity of the FMDV antibody.
[0130] Samples for the method can be isolated from mammals and may include serum samples from blood, saliva, tears, cerebrospinal fluid, aqueous humor, pleural fluid, pericardial fluid, lymph, chime, chyle, bile, urine, synovial fluid, vomit, peritoneal fluid, stool, semen, amniotic fluid, milk, serum, interstitial fluid, and pancreatic juice.
[0131] Methods for carrying out diagnostic tests include mammalian 35 Immunoprecipitation using [S]-methionine-labeled cell lysates, Western blots, and immunoblots for specific FMDV proteins, such as VP1-4 and 3D polymerase, are performed.
[0132] The detection methods described herein may be implemented with a variety of well-known detection systems to determine the presence of antibodies to FMDV VP1-4 or 3D polymerase in a test sample or control sample. Detection systems may include fluorescent or other means for determining the presence or absence of antibodies to VP1-4 or 3D polymerase in a test sample by comparing a signal generated from a detection label that binds to a specific FMDV protein, e.g., VP1-4 and 3D polymerase, to a predetermined value. The predetermined value may be the ratio of the signal measured in the test sample to the signal measured in the control sample. A test sample that generates a signal that is three standard deviations higher than the mean signal measured in a control sample that does not contain FMDV 3D polymerase antibodies is generally considered positive for FMDV 3D polymerase and therefore can be considered an infected mammal.
[0133] Alternatively, a device such as a densitometer may be used to measure the value of the detectable label. Preliminary values may be determined as described in Sackett et al., Clinical Epidemiology: A Basic Science for Clinical Medicine, pp. 106-107 (Little Brown and Co., 1985) The predetermined value may be determined using a receiver operator curve (ROC) using the above. The predetermined value may be based on relative light units obtained by a fluorescent imaging device or other means, as described above. Briefly, the predetermined value may be determined from a plot of pairs of true positive rate (i.e., sensitivity) and false positive rate (i.e., 100% specificity) corresponding to each possible value of the diagnostic test result. The predetermined value in the plot closest to the upper left corner (i.e., the value containing the largest area) is the most accurate predetermined value, and samples generating a signal higher than the predetermined value determined by this method may be considered positive. Alternatively, the predetermined value may be shifted to the left along the plot to minimize the false positive rate.
[0134] (a) Immunoblotting The detection method is performed using an immunoblot detection system to detect FMDV in test or control samples. Antibodies to VP1-4 or 3D polymerase may be detected. In immunoblots, a solid support may be used to immobilize the agent.
[0135] An immunoblot may use two separate control samples (i.e., a first control and a second control), which may be immobilized on a solid support. An immunoblot may use three separate, separated control samples (i.e., a first control, a second control, and a third control). If more than one control sample is present, the controls may be identical to each other or different from each other. Two of the control samples (e.g., the first control and the second control) may be identical. If two of the control samples are identical, the concentration of one of the control samples (either the first control or the second control, or if three controls are present, the level of the first control or the third control or the second control or the third control) may be higher (or greater) than the other controls. A control sample may be at a higher concentration than the other controls and may be referred to as a "high control." A control immobilized on a section, disc, or sheet at a lower concentration than the high control may be referred to as a "low control." The concentration ratio of the low control to the high control may be about 1:2 to about 1:10, preferably about 1:5 to about 1:6. For example, the first control may be the low control and the second control may be the high control. Alternatively, the first control may be the high control and the second control may be the low control. In another example, a detection system with three controls may include a third control (e.g., which can be used to confirm the addition of the sample) in addition to the low and high controls. The low and high controls may be human plasma (the ratio of the low control to the high control is about 1:2 to about 1:10), and the third control may be SDB Chagas or human plasma. In a flow-through format, the agent immobilized on a solid support may be immersed in a solution containing the test sample. Alternatively, the solid support may be placed in a reaction tray with a diluent, and then the test sample may be added to the reaction tray. The test sample and agent are incubated for a sufficient time using the same time and techniques as described previously herein. Unbound test sample may be removed using the techniques described previously herein. In this format, anti-FDMV antibodies to VP1-4 or NS structural proteins, such as the 3D polymerase, in the test sample may be allowed to bind to the immobilized agent (and at least one control) as the test sample passes through the membrane.At least one detection reagent (e.g., a detection reagent described herein above, including a detectable label) may be added. As a solution containing the detection reagent flows through the section, the at least one detection reagent may bind to each of the drug-antibody complexes formed. To determine the presence or absence of anti-FDMV antibodies to VP1-4 or NS structural proteins, such as the 3D polymerase, in the test sample, detection of the bound detection reagent may be performed using a cutoff as described above, or by comparing the intensity of one or more signals generated by one or more controls, as discussed in detail below.
[0136] When the previously described low and high controls are used in a flow-through format, the presence or absence of anti-FDMV antibodies to VP1-4 or NS structural proteins, such as the 3D polymerase, in a test sample can be determined by identifying the presence of a detectable label signal in each of the test bands (or spots or dots) for the drug. When a signal is identified in the drug test band, the intensity of this detected signal is compared to the intensity of the signals in the low control band (or spot or dot) and the high control band (or spot or dot) using a scale of 0 to 4+. If no band is visible, the reading is 0. The intensities of the low and high control bands are 1+ (low control) and 3+ (high control), respectively. Test bands with an intensity equivalent to that of the low control are scored as 1+. Bands with an intensity between that of the low and high control bands are scored as 2+. Bands with an intensity equivalent to that of the high control are scored as 3+. Band intensities higher than that of the high control are scored as 4+.
[0137] (b) Antagonism assay The detection method may be used in a competitive detection system to detect test samples containing anti-FDMV antibodies to VP1-4 or NS structural proteins, such as the 3D polymerase. The agent may be immobilized on a solid support as described above. The immobilized agent may then be contacted with a detectably labeled competitor antibody known to bind to the agent to compete with anti-FDMV antibodies to VP1-4 or NS structural proteins, such as the 3D polymerase, in the test sample. The immobilized agent is also contacted with the test sample. Because both antibodies compete for the immobilized agent, the signal from the detectably labeled antibody may be lower in test samples containing anti-FDMV antibodies to VP1-4 or NS structural proteins, such as the 3D polymerase.
[0138] f. Diagnostic kits Provided herein is a kit for carrying out a diagnostic method for identifying vaccinated mammals from mammals infected with FMDV. The kit provides materials capable of identifying FMDV-infected mammals and identifying antibodies to FS proteins, including the FMDV 3D polymerase protein, in vaccinated mammals, as opposed to antibodies to only the empty capsid proteins VP1-VP4. The test kit may include one or more reagents, e.g., agents useful for performing one or more immunoassays according to the present invention. The test kit generally includes a package containing one or more containers holding the reagents, either as one or more separate compositions, or optionally as a mixture, as long as the compatibility of the reagents allows. The test kit may also include other materials that may be desirable from a user's perspective, such as buffers, diluents, standards, and / or any other materials useful for performing sample processing, washing, or any other steps of the assay.
[0139] The kit according to the present invention may comprise a solid phase and a drug immobilized on a solid support. The kit may be used to perform a sandwich immunoassay and may comprise a labeled detection antibody. The labeled detection antibody may be a labeled anti-human IgG antibody. The kit may further comprise a detectable label.
[0140] The test kit may include at least one direct label, such as acridinium-9-carboxamide. The test kit according to the present invention may also include at least one indirect label. Where the label used generally requires an indicator reagent that generates a detectable signal, the test kit may also include one or more suitable indicator reagents.
[0141] The test kit may include instructions for performing one or more of the immunoassays of the present invention. The instructions included in the kits of the present invention may be affixed to packaging materials or included as a package insert. The instructions are typically written or printed materials, but are not limited to such. Any medium capable of storing such instructions and communicating them to the end user is contemplated by the present invention. Such media include, but are not limited to, electronic storage media (e.g., magnetic disks, tapes, cartridges, chips), optical media (e.g., CD ROMs), and the like. As used herein, the term "instructions" may include the address of an internet site that provides the instructions. [Example]
[0142] Example 1 Expression of recombinant VP1-4 The subtype-optimized VP1-4 and 3C proteins are expressed by performing in vitro translation assays using the optimized VP1-4 and 3C expression plasmids. Translation of these proteins yields the expected bands on SDS-PAGE gels.
[0143] To confirm the expression of the VP1-4 proteins, nucleic acids encoding the subtype-optimized VP1-4 proteins and the N-terminal IgE leader were cloned into a HIS-tagged bacterial expression vector. The nucleic acid encoding the subtype-optimized 3C protein was also cloned into a HIS-tagged bacterial expression vector. The optimized VP1-4 and 3C proteins were expressed using a bacterial expression system and affinity-purified using Ni column separation. The purified proteins were analyzed using an SDS-PAGE gel. SDS-PAGE revealed the expected bands.
[0144] Example 2 How to administer the vaccine To test the efficacy of the DNA plasmids, Balb / C mice were immunized with the optimized VP1-4 and 3C-encoding pVAX plasmids. Empty pVAX and human IL-15-encoding pVAX vectors were used as controls. Mice were immunized three times daily on days 0, 14, and 28. Three days after the final immunization, immunized mice were sacrificed. Mouse serum was collected and analyzed for anti-VP1, -VP2, -VP3, and -VP4 ELISA. The HIS-tagged recombinant protein from Example 1 was used as a capture antigen. Serum from pVAX control mice failed to recognize any of the subtype-optimized VP1-4. In contrast, mice immunized with the subtype-optimized VP1-4 DNA vaccine produced antibodies against subtype-optimized VP1, -2, -3, and -4, indicating that the optimized VP1-4 fusion vaccine primed mice for immune responses against all four VPs.
[0145] Example 3 Preparation of expression constructs A multitarget FMDV DNA vaccine was constructed. VP1 sequences from subtypes Asia 1, O, A, C, SAT1, SAT2, and SAT3 were first consensus-optimized using at least 10 different sequences from each subtype. Two VP1 sequences were then inserted under a single promoter and separated by two adjacent cleavage sites.
[0146] An IgE leader sequence was inserted before the first ORF and two stop codons were inserted after the second ORF. The first plasmid, encoding Asia and O VP1, is 1362 bp.
[0147] The second plasmid, encoding A and C VP1, is 1356 bp. The third and fourth plasmids target the sub-African subtype, with the first encoding SAT1 and SAT2 VP1 and the second encoding SAT3 VP1.
[0148] Example 4 Expression of recombinant VP1-4 The cloned plasmids were then expressed in an in vitro translation assay. Translation of all single VP1 constructs—A, Asia, C, and O—produced the expected bands. [approximately 24.5 kDa] was obtained with the A+C VP1 and Asia+O VP1 constructs. , a higher molecular weight dimer band was obtained. These constructs carry the FLAG-epitope that was used for immunoprecipitation.
[0149] Example 5 Vaccination Methods To confirm the immune response to FMD, recombinant FMD VP1 proteins of all four VP1 subtypes (A, Asia, C, and O) were produced. Recombinant consensus FMDV VP1 sequence (IgE leader sequence underlined at the N-terminus) The protein was cloned into a HIS-tagged bacterial expression vector and expressed via Ni-column separation, with the expressed protein indicated by the arrow.
[0150] Next, Balb / C mice were immunized to test the efficacy of the DNA plasmid. Mice were immunized with 15 μg of DNA per immunization using CELLECTRA electroporation. There were seven immunization groups. 1. pVax 2. pVax-FMDV VP1 A + pVAX1-IL-15 3.pVax-FMDV VP1 Asia+pVAX1-IL-15 4. pVax-FMDV VP1 C + pVAX1-IL-15 5. pVax-FMDV VP1 O + pVAX1-IL-15 6.pVax-FMDV VP1 A-C+pVAX1-IL-15 7.pVax-FMDV VP1 Asia-O+pVAX1-IL-15
[0151] Mice were immunized three times on days 0, 14, and 28 and sacrificed three days after the final immunization. Serum was collected from the animals and analyzed by anti-VP1 ELISA. The recombinant protein was used as a capture antigen. Serum from pVAX control mice failed to recognize the A, Asia, C, and O VP1 proteins. In contrast, mice immunized with the A, Asia, C, and O DNA vaccines generated antibodies against the A, Asia, C, and O VP1 proteins, respectively. More importantly, mice immunized with either the VP1 AC or AP1 Asia-O vaccines generated antibodies against all four VP1 subtypes, suggesting that the consensus-VP1 fusion vaccine generates an immune response against all four Asia-Europe FMDV subtypes.
[0152] (Item 1) 1. An isolated nucleic acid comprising a sequence encoding a protein having one or more sequences selected from the group consisting of one or more of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, with or without a leader sequence, their complementary sequences, immunogenic fragments thereof comprising at least 20 amino acids, variants having 80% or more homology to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, their complementary sequences, immunogenic fragments thereof comprising at least 20 amino acids, and their complementary sequences. (Item 2) 2. The nucleic acid of item 1, wherein the sequence is selected from the group consisting of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41, with or without a coding sequence for a leader sequence, their complements, fragments thereof encoding at least 20 amino acids, their complements, nucleic acid molecules 80% homologous to SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41, their complements, fragments thereof encoding at least 20 amino acids, and their complements. (Item 3) 2. The nucleic acid of item 1, comprising a sequence encoding a protein selected from the group consisting of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, with or without a leader sequence. (Item 4) 2. The nucleic acid of item 1, comprising a sequence selected from the group consisting of SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, 15, 17, 19, 21, 23, 25, 27, 29, 31, 33, 35, 37, 39 and 41. (Item 5) 5. The nucleic acid according to any one of items 1 to 4, wherein the leader sequence is an IgE leader sequence. (Item 6) 6. The nucleic acid according to any one of items 1 to 5, which is a plasmid. (Item 7) 7. The nucleic acid according to any one of items 1 to 6, which is a plasmid that is an expression vector. (Item 8) 8. A vaccine comprising one or more proteins selected from the group consisting of the nucleic acid according to any one of Items 1 to 7 and / or SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42, with or without a leader sequence, their complementary sequences, immunogenic fragments thereof comprising at least 20 amino acids, variants having 80% or more homology to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, and 42, their complementary sequences, immunogenic fragments thereof comprising at least 20 amino acids, and their complementary sequences. (Item 9) 9. The vaccine of item 8, further comprising an adjuvant. (Item 10) 9. The vaccine of item 8, further comprising an adjuvant selected from the group consisting of IL-12 and / or IL-15, or a nucleic acid sequence encoding IL-12 and / or IL-15. (Item 11) A composition comprising one or more proteins selected from the group consisting of SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, with or without a leader sequence, their complementary sequences, immunogenic fragments thereof comprising at least 20 amino acids, variants having 80% or more homology to SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40 and 42, their complementary sequences, immunogenic fragments thereof comprising at least 20 amino acids, and their complementary sequences. (Item 12) A method for inducing an immune response against one or more FMDV virus subtypes in a mammal, comprising administering the vaccine according to item 8. (Item 13) the vaccine comprises a nucleic acid molecule; a) administering the nucleic acid molecule to a mammalian tissue; b) electroporating the cells of said tissue with a constant current energy pulse effective to cause the DNA plasmid to enter the cells; Item 13. The method of item 12, comprising: (Item 14) 14. The method of item 13, wherein step a) comprises injecting the DNA plasmid vaccine into intercutaneous, subcutaneous, or muscle tissue. (Item 15) 15. The method of item 13 or 14, wherein the current is preset to be delivered to the tissue and the energy pulse is a constant current equal to the preset current. (Item 16) The electroporation step (a) measuring impedance in electroporated cells; (b) adjusting the energy level of an energy pulse in response to the measured impedance to maintain a constant current through the electroporated cells; 16. The method of any of items 13 to 15, wherein the measuring and adjusting steps are performed within the lifetime of the energy pulse. (Item 17) 17. The method of any of items 13 to 16, wherein the electroporation step comprises delivering energy pulses to a plurality of electrodes in a pulse sequence pattern that delivers the energy pulses in a distributed pattern. (Item 18) 18. The method of any of items 12 to 17, wherein the mammal is not infected with FMDV and the immune response is a protective immune response. (Item 19) 18. The method of any of items 12 to 17, wherein the mammal is infected with FMDV and the immune response is a therapeutic immune response. (Item 20) A method for diagnosing FMDV infection in a mammal vaccinated with the vaccine according to item 8, comprising: a) isolating a fluid sample from said mammal; and b) detecting the presence of FMDV proteins not included in the vaccine and / or antibodies against FMDV proteins not included in the vaccine, The method, wherein the presence of FMDV proteins not included in the vaccine and / or antibodies against FMDV proteins not included in the vaccine indicates that the mammal is infected with FMDV.
Claims
[Claim 1] A kit or method as described in the specification.