Swine influenza A virus vaccines containing nucleic acid constructs with specific gene orders

By arranging IAV-S HA antigens in specific orders within RNA replicon particles, the nucleic acid constructs enhance immune response and broaden vaccine efficacy against diverse IAV-S strains, addressing the limitations of conventional vaccines in protecting against rapidly evolving swine influenza.

JP7767328B2Active Publication Date: 2025-11-11INTERVET INT BV
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Patent Information

Application Number
JP2022577343
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-19
Filing Date
2021-06-18
Publication Date
2025-11-11
Estimated Expiration
2041-06-18

AI Technical Summary

Technical Problem

Conventional swine influenza A virus (IAV-S) vaccines struggle to provide broad protection against diverse and rapidly evolving strains due to genetic variability, with existing replicon particle systems limited in packaging capacity and antigen insertion, necessitating frequent updates and inadequate immunity against emerging subtypes.

Method used

Nucleic acid constructs encoding specific combinations of IAV-S hemagglutinin (HA) antigens from different lineages in a defined order within RNA replicon particles, such as Scot/94 and Eurasian avian-like strains, or Gent/84 and pandemic09 strains, to enhance immune response and broaden vaccine efficacy.

Benefits of technology

The specified gene order in nucleic acid constructs within RNA replicon particles induces improved immunity against multiple IAV-S strains, providing effective protection against diverse circulating strains and rapid adaptation to emerging viral subtypes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to nucleic acid constructs encoding a first swine influenza A (IAV-S) hemagglutinin (HA) antigen of the Scot / 94 lineage and a second swine influenza A (IAV-S) hemagglutinin (HA) antigen of the Eurasian avian-like (EA) lineage, in that order, and to nucleic acid constructs encoding a first IAV-S HA antigen of the Gent / 84 lineage and a second IAV-S HA antigen of the pandemic09 (pdm09) lineage, in that order. In other embodiments, the present invention relates to RNA replicon particles comprising one or both nucleic acid constructs, and immunogenic compositions, e.g., vaccines, comprising the replicon particles that can be used against influenza A virus infection. Methods of producing the vaccines and uses of the vaccines are further provided.
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Description

[Technical Field]

[0001] The present invention relates to nucleic acid constructs encoding a first swine influenza A (IAV-S) hemagglutinin (HA) antigen of the Scot / 94 lineage and a second swine influenza A (IAV-S) hemagglutinin (HA) antigen of the Eurasian avian-like (EA) lineage, in that order, and to nucleic acid constructs encoding a first IAV-S HA antigen of the Gent / 84 lineage and a second IAV-S HA antigen of the pandemic09 (pdm09) lineage, in that order. In other embodiments, the present invention relates to RNA replicon particles comprising one or both nucleic acid constructs, and immunogenic compositions comprising the replicon particles, such as vaccines, that can be used against influenza A virus infection. Methods of producing the vaccines and uses of the vaccines are further provided. [Background technology]

[0002] Influenza A viruses (IAVs) pose a significant burden to human and animal health worldwide. IAVs are classified into different subtypes based on their viral surface glycoproteins, hemagglutinin (HA) and neuraminidase (NA). IAVs infect poultry, pigs, horses, cats, dogs, marine mammals (e.g., whales), bats, and humans. Wild waterfowl and birds (ducks, geese, swans, and gulls) are natural reservoirs, and they can be infected with 16 different HA and 9 different NA subtypes [Webster et al., Microbiol Rev 56:152-179 (1992)].

[0003] Swine influenza A virus (IAV-S) is a serious respiratory pathogen of domestic pigs worldwide, proving particularly economically costly for the livestock industry [Holtkamp et al., The American Association of Swine Veterinarians Annual Meeting (2007)]. It is characterized by the sudden onset of respiratory disease, usually accompanied by anorexia, lethargy, and fever. In addition to the clinical complications associated with IAV-S in production animals, published reports implicate pigs in the transmission of influenza viruses to humans [Myers KP, Olsen CW, Gray GC. Clin Infect Dis 2007;44(8):1084-8; Krueger and Gray, Curr Top Microbiol Immunol 370:201-225 (2013)], which represents a significant public health threat and provides further incentive for IAV control in swine populations.

[0004] In response to this problem, many swine farmers now vaccinate their pigs with commercially available vaccines to prevent IAV-S. However, controlling IAV-S with conventional vaccines is difficult because many diverse IAV-S strains simultaneously circulate and continue to evolve in the field [Gao et al., J Gen Virol 98(8):2001-2010(2017)]. The diversity and variability of IAV-S is driven by the virus's genetic structure. Like other influenza A viruses, IAV-S has genes encoded in eight segments of RNA and a genome replication mechanism that introduces frequent mutations. These genetic characteristics allow IAV-S to rapidly adapt, for example, evade pre-existing neutralizing antibodies induced by exposure to previous strains. As a result, inactivated virus IAV-S vaccines commercially available in the US market, despite containing up to five different IAV-S strains, have proven inadequate due to the emergence of new strains as a result of continuous antigenic drift and / or shift.

[0005] Classification of influenza A viruses begins with subtyping of the two major glycoproteins on the viral surface, HA and NA. The HA protein mediates viral attachment and fusion to host cells. Neuraminidase is an enzyme that functions in the final stage of the influenza virus replication cycle by cleaving newly formed virus particles from host cells, thereby allowing new progeny viruses to spread and infect other cells. Recent studies have demonstrated that NA immunity may only play a supplementary and / or complementary role to the more important HA immunity [Nayak et al., J Virol 84(5):2408-2420(2010); Pavlova et al., Vaccine 27(5):773-785(2009); Sylte et al., Vaccine 25(19):3763-72(2007)]. Indeed, in the absence of hemagglutinin antigen, the efficacy of neuraminidase influenza A virus vaccines appears to be insufficient to protect against influenza A infection or influenza A virus-induced disease.

[0006] While human influenza A typically has one or two predominant strains that circulate worldwide during a given influenza season, many more strains of IAV-S simultaneously co-circulate, and these strains vary between geographic regions. Similarly, IAV-S strains are also antigenically variable, but primarily contain H1 or H3 HA subtypes and N1 or N2 NA subtypes. Within each IAV-S HA and NA subtype, there is additional phylogenetic diversity.

[0007] In the US swine population, there are four predominant phylogenetic clusters of H1 (gamma, delta 1, delta 2, and pandemic), two predominant clusters of H3 (cluster IV and human-like), two predominant clusters of N1 (classical and pandemic), and two predominant clusters of N2 (N2-1998 and N2-2002) [Anderson et al., Influenza and other Respiratory Viruses 7(Suppl. 4);42-51(2013); and Anderson et al., mSphere 1(6)e00275-16:1-14(2016)].

[0008] In Europe, there are three major H1 lineages (Eurasian-avian-like H1, Scotland / 410440 / 1994-like H1, and pandemic 2009-like H1), one major H3 lineage (Gent / 1 / 1984-like H3), two major N1 lineages (Eurasian-avian-like N1 and pandemic 2009-like N1), two major N2 lineages (Gent / 1 / 1984-like N2 and Scotland / 410440 / 1994-like N2), and two minor N2 lineages (Italy / 4675 / 2003-like N2 and human seasonal-like N2) [Watson et al., J. Virol., 89:9920-9931(2015); doi:10.1128 / JVI.00840-15].

[0009] Vaccination to prevent IAV-S is the best option for reducing clinical complications in pigs and the chances of further genetic reassortment and the spread of zoonotic diseases from pigs to humans. Until recently, the only vaccines available for widespread use were inactivated vaccines prepared from influenza viruses grown in embryonated eggs, but their supply has been limited, primarily due to a shortage of specific pathogen-free eggs, and the need for new approaches to influenza vaccines is well recognized.

[0010] In conventional inactivated virus IAV-S vaccines, viral strain selection is based on HA antigenic characteristics. IAV-S vaccines that induce HA-inhibiting (HI) antibody titers protect pigs from experimental infection with antigenically similar strains [Kyriakis et al., Vet Microbiol 144(1-2):67-74(2010)]. However, relatively rapid genetic drift of the HA gene allows new strains to emerge that are not functionally inhibited by vaccine-induced HA antibodies.

[0011] As a result, commercially available vaccines are antigenically incompatible with all contemporary strains circulating in the field and therefore often do not protect against novel and emerging viral subtypes / clusters and offer only limited protection against heterosubtypic challenge [Lee et al., Can J Vet Res 71(3):207-12(2007); Vincent et al., Vaccine 28(15):2782-2787(2010)]. Therefore, such vaccines must be periodically updated to match currently circulating strains.

[0012] Thus, there is a need in the art to develop new IAV-S vaccines that are safe, effective, and can be rapidly modified to antigenically match emerging strains.

[0013] Because most viruses, such as influenza viruses, have relatively simple structures, the use of a single antigen from their antigenic profile may be sufficient to generate a protective immune response. Such subunit vaccines can be produced by extraction from the virus or its culture, or by recombinant expression of a specific antigen. Alternatively, viral antigens can be delivered to and expressed within a target animal by a live recombinant carrier microorganism that acts as a vector. The vector may or may not be live attenuated. Many vector-based strategies have been used in vaccines for many years to protect against specific pathogens.

[0014] A variation on the use of viral vector vaccines is the use of replicon particle-based vaccines (RP; see Lundstrom, 2014, Vaccines, vol. 6, pp. 2392-2415). These are virus-like particles that contain defective viral genomes, typically heterologous genes. These replicon particles typically enter target animal host cells without the ability to form new particles and contain RNA packaged into particles that allow for a single round of viral genome amplification (i.e., they are encapsidated). Because replicon particles lack the necessary structural protein-coding sequence(s), they do not replicate in infected cells. Therefore, they are more similar to wild-type viruses (e.g., in terms of tropism) than other replicon vaccines, such as naked RNA vaccines or vaccines containing RNA released from DNA plasmids.

[0015] The genome of RP typically expresses heterologous genes encoding immunoprotective antigens. The most widely used and most extensively studied are alphavirus RNA replicon particles [Vander Veen et al., 2012, Anim. Health. Res. Rev., vol. 13, pp. 1-9; and Kamrud et al., 2010, J. Gen. Virol., vol. 91, pp. 1723-1727], which are therefore preferred for practical reasons and developed from viral genomes by replacing the structural protein genes with heterologous genes. The resulting RNA, called a replicon, can direct its own replication and express high levels of the heterologous gene when introduced into the cytoplasm of a host cell. Because these replicons lack the alphavirus structural protein genes, they are unable to form virions and spread to neighboring cells. However, replicons can be efficiently packaged into viral replicon particles (RP) by introducing them into cells in which the structural proteins are provided in trans [Pushko et al., 1997, Virology, vol. 239, pp. 389-401].

[0016] Alphavirus RPs are also believed to be somewhat stronger immunostimulants than other RPs based on other viruses, such as bunyaviruses, known in the art. Several alphavirus species, such as Venezuelan equine encephalitis virus (VEEV) [Pushko et al., 1997, Virology, vol. 239, pp. 389-401], Sindbis virus [Bredenbeek et al., 1993, J. of Virol., vol. 67, pp. 6439-6446], and Semliki Forest virus [Liljestrom & Garoff, 1991, Biotechnology (NY), vol. 9, pp. 1356-1361], have been used to develop RP vaccines.

[0017] RP vaccines can induce mucosal and systemic immune responses after immunization of target animals (Davis et al., 2002, IUBMB Life, vol. 53, pp. 209-211). VEE-based RP vaccines are also the basis for several USDA-licensed vaccines, including porcine epidemic diarrhea vaccine, RNA (product code 19U5.P1), swine influenza vaccine, RNA (product code 19A5.D0), avian influenza vaccine, RNA (product code 19O5.D0), and formulated product, RNA particles (product code 9PP0.00).

[0018] Because RP vector systems can be easily manipulated at the molecular level, vaccines can be rapidly produced to respond to emerging viral subtypes.

[0019] Therefore, there is a continuing need for novel vaccines that provide broad protection against circulating IAV-S strains, particularly the four major IAV-S strains circulating in Europe, namely EurAsianAvian H1N1, Gent84 H3N2, Scot / 94 H1N2, and pandemic2009 H1N1, and that can be adapted to rapidly respond to emerging viral subtypes and antigenic drift.

[0020] However, RP vector systems such as the alphavirus replicon platform do not allow for the insertion of any desired number of antigens to achieve the broadest possible protection, for example, the insertion of all NA and HA genes of the four major circulating IAV-S strains into the replicon vector. Alphavirus vector platforms are typically three-component systems composed of RNAs containing nonstructural genes from which the associated packaging signals and structural proteins have been removed and replaced with heterologous gene sequences. Two helper RNAs contain viral structural proteins without packaging signals. These three-component replicon-based systems are limited in the amount of RNA they can package by the volume of the viral capsid [Nanda K. et al., Vol. 390(2), 2009, 368-373]. This inherent limitation of RP vector systems makes it difficult to meet the ongoing demand for vaccines that provide broad protection against most or all circulating IAV-S strains. [Prior art documents] [Non-patent literature]

[0021] [Non-Patent Document 1] Webster et al., Microbiol Rev 56:152-179(1992) [Non-patent document 2] Holtkamp et al.,The American Association of Swine Veterinarians Annual Meeting(2007) [Non-patent document 3] Myers KP, Olsen CW, Gray GC. Clin Infect Dis 2007;44(8):1084-8 [Non-patent document 4] Krueger and Gray,Curr Top Microbiol Immunol 370:201-225(2013) [Non-patent document 5] Gao et al.,J Gen Virol 98(8):2001-2010(2017)

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[0022] In a first aspect of the present invention, it has surprisingly been found that in cases where two or more swine influenza A virus hemagglutinin (IAV-S HA) antigens are inserted, the location of the gene encoding the HA antigen within the viral genome of the RNA replicon particle significantly influences the level of induced immunity. [Means for solving the problem]

[0023] Therefore, the present invention provides nucleic acid constructs that encode a combination of two IAV-S HA antigens from different lineages in a specific order. These nucleic acid constructs can be used in RNA replicon particles. These RNA replicon particles of the present invention can be used in immunogenic compositions to provide vaccines for use in preventing diseases caused by swine influenza A virus (IAV-S) in vaccinated subjects (e.g., humans, companion animals, or livestock, particularly pigs).

[0024] In a first embodiment of the present invention, the nucleic acid construct comprises a combination of IAV-S HA antigens of Scot / 94 and Eurasian avian-like (EA) strains, with the IAV-S HA of Scot / 94 strain placed first (in the 5' to 3' order of the nucleic acid sequence) and the IAV-S HA of EA strain placed second. The term "5' to 3' direction" is also known as "downstream direction" and is well known in the art. Together with the term "in this order," it serves to indicate the relative orientation that the subsequently combined elements must have with each other in order to function with the host cell's gene expression machinery (i.e., so that the RP according to the present invention, comprising the nucleic acid construct, can be replicated and expressed). As will be understood by those skilled in the art, in this case, this orientation is relative to the nucleic acid strand of the genome, which is the "coding strand." The genes may be present in consecutive order in the 5' to 3' direction, i.e., there are no intermediate genes present in the construct for expression into proteins. In this case, the nucleic acid construct typically contains, in 5' to 3' order, a backbone viral nonstructural protein open reading frame, a subgenomic promoter followed by a first HA antigen gene sequence, an intervening sequence, a second subgenomic promoter sequence followed by a second HA antigen gene, and finally the backbone viral 3' untranslated region.

[0025] Thus, the present invention provides a nucleic acid sequence in order from 5' to 3': A / swine / Scotland / 410440 / 1994 H1 hua first nucleic acid sequence encoding a first hemagglutinin (HA) antigen of IAV-S of the N2 (Scot / 94) lineage; and Eurasian avian H1 av A nucleic acid construct is provided, comprising a second nucleic acid sequence encoding a second HA antigen of IAV-S of the N1(EA) lineage.

[0026] In a second embodiment of the invention, the nucleic acid construct comprises a combination of IAV-S HA antigens of Gent / 84 and pdm09-like strains, with the IAV-S HA of Gent / 84 strain placed first (in 5' to 3' order of the nucleic acid sequence) and the IAV-S HA of pdm09 strain placed second. Thus, the invention provides a nucleic acid construct comprising, in 5' to 3' order of the nucleic acid sequence: a first nucleic acid sequence encoding a first HA antigen of IAV-S of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and and a second nucleic acid sequence encoding a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage.

[0027] In a second aspect of the present invention, it has surprisingly been found that swine influenza A virus hemagglutinins (IAV-S HAs) from specific strains of the four major circulating IAV-S lineages can provide improved immunity against IAV-S compared to other strains. In particular, it has been found that specific combinations of IAV-S HAs can provide improved immunity. Therefore, such combinations of IAV-S HAs can be beneficially used in nucleic acid constructs that can be included in RNA replicon particles. These RNA replicon particles can be used as immunogenic compositions to aid in the protection of vaccinated subjects (e.g., humans, companion animals, or livestock, particularly pigs) against IAV-S, for example, to provide vaccines that aid in the protection of IAV-S virus infection.

[0028] Thus, the present invention further provides nucleic acid constructs encoding combinations of two IAV-S HA antigens of the particular strains defined herein.

[0029] In a first embodiment, the present invention provides a nucleic acid construct comprising a first and a second nucleic acid sequence, The first nucleic acid sequence is an A / swine / Scotland / 410440 / 1994-like H1N2 derived from strain A / swine / Italy / 3033-1 / 2015 (H1N2). hu Encoding the first HA antigen of IAV-S of the N2 (Scot / 94) lineage, and The second nucleic acid sequence is a Eurasian avian-like H1 from strain A / swine / Italy / 28762-3 / 2013 (H1N1). av Encodes the second HA antigen of IAV-S of the N1(EA) lineage.

[0030] In a second embodiment, the present invention provides a nucleic acid construct for use in the prevention or treatment of disease caused by swine influenza A virus in a subject, the nucleic acid construct comprising a first and a second nucleic acid sequence: the first nucleic acid sequence encodes a first hemagglutinin (HA) antigen of a swine influenza A virus (IAV-S) of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage from strain A / swine / Italy / 240849 / 2015 (H3N2); and The second nucleic acid sequence encodes a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage from strain A / swine / England / 373 / 2010 (H1N1).

[0031] In another important embodiment, there is provided an RNA replicon particle comprising the nucleic acid construct of the present invention. Thus, the RNA replicon particle may comprise the nucleic acid construct according to the first or second embodiment.

[0032] Any combination of the embodiments of the first and second aspects described herein is encompassed by the present invention. Accordingly, the present invention further provides a nucleic acid construct in which the IAV-S HA antigens are arranged in the specific order defined in the first aspect and the IAV-S antigens are derived from the specific strains defined in the second aspect.

[0033] In another important aspect, the present invention provides an RNA replicon particle comprising a nucleic acid construct described herein.

[0034] In another important aspect, the present invention provides immunogenic compositions comprising the RNA replicon particles described herein.

[0035] In another important aspect, the present invention provides an immunogenic composition comprising a combination of RNA replicon particles, the combination comprising a first RNA replicon particle comprising a nucleic acid construct according to a first embodiment and a second RNA replicon particle comprising a nucleic acid construct according to a second embodiment.

[0036] A further embodiment of the present invention relates to a vaccine comprising the immunogenic composition described herein.

[0037] In another important embodiment, the vaccines of the present invention may be used to prevent or treat disease caused by swine influenza A virus in a subject.

[0038] In another important embodiment, the present invention provides a method of immunizing pigs against swine influenza A virus, the method comprising administering to the pig an immunologically effective amount of a vaccine of the present invention.

[0039] In a third aspect, it has surprisingly been found that a combination of two RNA replicon particles, each comprising a nucleic acid construct encoding a first and second HA antigen of different lineages of IAV-S, can provide improved immunity against IAV-S.

[0040] Thus, the present invention further provides an immunogenic composition comprising first and second RNA replicon particles, wherein the first RNA replicon particle comprises a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second HA antigens of IAV-S, wherein: the first HA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and the second HA antigen is from the A(H1N1)pdm09 (pdm09) lineage; The second RNA replicon particle comprises a nucleic acid construct comprising third and fourth nucleic acid sequences encoding the third and fourth HA antigens of IAV-S, wherein: The third HA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is from N2 (Scot / 94), and The fourth HA antigen is Eurasian avian-like H1 av It is of the N1(EA) lineage.

[0041] The present invention includes any combination of embodiments of the third aspect described herein with embodiments of the first and second aspects. Accordingly, the present invention further provides a replicon particle according to the third aspect, wherein the nucleic acid construct encodes IAV-S HA antigens arranged in a specific order as defined in the first aspect, and / or the IAV-S antigens are derived from a specific strain as defined in the second aspect.

[0042] In a fourth aspect, it has surprisingly been found that nucleic acid constructs comprising specific combinations of IAV-S neuraminidase (NA) antigens of the three different strains described herein can be used to provide immunity against all four major circulating IAV-S strains.

[0043] Thus, the present invention further provides a nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third NA antigens of IAV-S, wherein: The first NA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is of the N2 (Scot / 94) lineage, the second NA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and The third NA antigen is the A(H1N1)pdm09 (pdm09) lineage or Eurasian avian-like H1 av Selected from the N1(EA) lineage.

[0044] In another important embodiment, the present invention provides an RNA replicon particle comprising a nucleic acid construct according to the fourth aspect.

[0045] In another important embodiment, the present invention provides an immunogenic composition comprising an RNA replicon particle according to the fourth aspect.

[0046] A further embodiment of the present invention relates to a vaccine comprising the immunogenic composition according to the fourth aspect.

[0047] In another important embodiment, the vaccine according to the fourth aspect may be used to prevent or treat disease caused by swine influenza A virus in a subject.

[0048] In another important embodiment, the present invention provides a method of immunising pigs against swine influenza A virus, the method comprising administering to the pig an immunologically effective amount of a vaccine according to the fourth aspect.

[0049] In another important aspect, the present invention provides an immunogenic composition comprising a combination of RNA replicon particles, the combination comprising first and second RNA replicon particles according to the third aspect and a third RNA replicon particle comprising a nucleic acid construct according to the fourth embodiment.

[0050] The present invention includes any combination of embodiments of the fourth aspect described herein with embodiments of the first, second and / or third aspects. Accordingly, the present invention further provides a replicon particle according to the third aspect, wherein the nucleic acid construct encodes IAV-S HA antigens arranged in a particular order as defined in the first aspect and / or the IAV-S antigens are derived from a particular strain as defined in the second aspect in combination with a replicon particle according to the fourth aspect. [Brief explanation of the drawings]

[0051] [Figure 1] Hemagglutination inhibition (HI) antibody titers induced by single-gene RNA particles encoding one HA antigen of the EurAsianAvian lineage IAV-S. [Figure 2] HI antibody titers induced by single-gene RNA particles encoding one HA antigen of Scot 1994 strain IAV-S. [Figure 3] HI antibody titers induced by single-gene RNA particles encoding one HA antigen of the Pdm 2009 strain of IAV-S. [Figure 4] HI antibody titers induced by single-gene RNA particles encoding one HA antigen of Gent 1984 strain IAV-S. [Figure 5] HI antibody titers induced by dual-gene RNA particles encoding different combinations of one HA antigen from EurAsianAvian (EUHA1-2, EUHA1-3, and EUHA1-5) and the other from Scot1994 (EUHA1-15 or EUHA1-17) lineage IAV-S strains. [Figure 6] HI antibody titers induced by double-gene RNA particles encoding one HA antigen from pandemic (EUHA1-11) and another from Gent1984 (EUHA3-4) or one HA antigen from Scot1994 (EUH1-15, EUHA1-17) and another from EurAsianAvian (EUHA1-3 and EUHA1-5) lineage IAS strains at two different loci. [Figure 7] Neuraminidase inhibitor (NI) antibody titers induced by single-gene RNA particles encoding one NA antigen of the EurAsianAvian (EA) strain of IAV-S. [Figure 8] (NI) antibody titers induced by single-gene RNA particles encoding one NA antigen of the Pdm09 strain of IAV-S. [Figure 9] (NI) antibody titers induced by single-gene RNA particles encoding one NA antigen of the Scot / 94 strain of IAV-S. [Figure 10] (NI) antibody titers induced by single-gene RNA particles encoding one NA antigen of Gent / 84 strain IAV-S. [Figure 11] NI antibody titers induced by double-gene RNA particles encoding one NA antigen of EurAsianAvian (EUNA1-2) and another NA of Gent1984 (EUNA2-7) at different positions or by triple-gene RNA particles encoding one NA antigen each of IAS strains of the EurAsianAvian (EUNA1-2), Gent1984 (EUNA2-7), and Scot1994 (EUHNA2-6) lineages. [Figure 12] NI antibody titers induced by double-gene RNA particles encoding, at different positions, one NA antigen of EurAsianAvian (EUNA1-2) and another NA of Gent1984 (EUNA2-7) or triple-gene RNA particles encoding one NA antigen each of IAV-S strains of the EurAsianAvian (EUNA1-2), Gent1984 (EUNA2-7), and Scot1994 (EUHNA2-6) or Pdm09 (EUNA1-4) lineages. [Figure 13A] 1 shows the results of evaluating the vaccine efficacy of a multivalent IAV-S vaccine. [Figure 13B] 1 shows the results of evaluating the vaccine efficacy of a multivalent IAV-S vaccine. [Figure 13C] 1 shows the results of evaluating the vaccine efficacy of a multivalent IAV-S vaccine. [Figure 13D] 1 shows the results of evaluating the vaccine efficacy of a multivalent IAV-S vaccine. [Figure 14A] The results of evaluation of vaccine efficacy after ID administration are shown. [Figure 14B] The results of evaluation of vaccine efficacy after ID administration are shown. DETAILED DESCRIPTION OF THE INVENTION

[0052] Definitions of terms: In order to fully understand the present invention, the following definitions are provided.

[0053] A nucleic acid construct is typically an artificially constructed segment of nucleic acid (eg, DNA, RNA, mRNA) for transplantation into a target cell.

[0054] The use of singular terms for convenience of description is not intended to be limiting in any way. Thus, for example, reference to a composition comprising a "polypeptide" includes reference to one or more such polypeptides. Further, reference to an "alphavirus RNA replicon particle" includes reference to a plurality of such alphavirus RNA replicon particles, unless otherwise specified.

[0055] As used herein, the term "approximately" is used interchangeably with the term "about" and means that a value is within 50% of the stated value, i.e., "approximately" 1 x 10 per milliliter. 8 A composition containing 5 x 10 alphavirus RNA replicon particles per milliliter 7 pieces~1.5×10 8 This means that the vector contains alphavirus RNA replicon particles.

[0056] As used herein, the terms "pig" or "swine" or "porcine" are used interchangeably and include all domesticated swine species unless otherwise specified.

[0057] As used herein, a "phylogenetic cluster" is a set of influenza virus antigens, such as hemagglutinin (HA) or neuraminidase (NA), grouped together (on the same branch) in a phylogenetic or evolutionary tree rooted in a similar (cognate) ancestor. A predominant phylogenetic cluster has been described for IAV-S neuraminidase and hemagglutinin found in the United States [Anderson et al., Influenza and other Respiratory Viruses 7(Suppl.4):42-51(2013)].

[0058] As used herein, a "lineage" refers to a set of influenza virus hemagglutinins grouped together (on the same branch) in a phylogenetic or evolutionary tree rooted in a similar (homologous) ancestor. These groupings have been made for European hemagglutinins and neuraminidases and are similar to, but not identical to, the phylogenetic clusters of American viruses. Lineage determination can be obtained by phylogenetic analysis of the HA or NA sequence in question using a previously established reference sequence using readily available software, i.e., Clustal Omega [Sievers F., et al., (2011) Mol. Syst. Biol. 7:539] or a web-accessible annotation tool for H1 HA sequences [Anderson TK, et al., mSphere, 2016;1(6):e00275-16].

[0059] Regarding IAV-S hemagglutinin (HA) found in Europe, there are four predominant lineages, as described in [Watson et al., J. Virol. 89:9920-9931 (2015)], three H1 HA branches, as described in Anderson et al., mSphere 1(6):e00275-16 (2016), and one H3 HA branch [Anderson et al., unpublished]. Until 1979, when an avian H1N1 virus, genetically distinct from the CS lineage and designated "Eurasian avian-like swine H1N1" (EA), was isolated from pigs in Belgium and Germany, European pigs were exclusively infected with viruses of the CS lineage. The EA lineage has continued to circulate among European pigs and, since its emergence, has reassorted with viruses of seasonal human origin, resulting in three distinct virus subtypes in Europe: (i) Eurasian avian-like H1avN1 (EA or branch 1C.2), (ii) A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84 or branch 3.1970.1), and (iii) A / swine / Scotland / 410440 / 1994-like H1huN2 (Scot / 94 or branch 1B.1). Since April 2009, a novel H1N1 IAV virus of swine origin, designated (iv) A(H1N1)pdm09 or branch 1A.3.3.2, has been circulating throughout the human population. In the context of the present invention, these four lineages are therefore referred to as "EA," "Gent / 84," "Scot / 94," and "pdm09."

[0060] As used herein, the term "replicon" refers to a modified RNA viral genome that lacks one or more elements (e.g., coding sequences for structural proteins) that, if present, would allow the parent virus to propagate successfully in cell culture or an animal host. In the appropriate cellular environment, the replicon can amplify itself and produce one or more subgenomic RNA species.

[0061] As used herein, the term "RNA replicon particle," or "RP" for short, refers to an RNA replicon packaged in structural proteins, such as capsid and glycoproteins, and may be derived from an alphavirus, such as the alphavirus RNA replicon particle described by Pushko et al., Virology 239(2):389-401 (1997), but also Sindbis virus (Bredenbeek et al., 1993, J. of Virol., vol. 67, pp. 6439-6446), and Semliki Forest virus (Liljestrom & Garoff, 1991, Biotechnology (NY), vol. 9, pp. 1356-1361). RPs cannot be propagated in cell culture or animal hosts (without helper plasmids or similar components) because the replicon does not encode alphavirus structural components (e.g., capsid and glycoproteins). Preferably, the RNA RP of the present invention is an alphavirus RNA RP.

[0062] The term "non-IAV-S" is used to modify terms such as pathogen and / or antigen (or immunogen) to indicate that the respective pathogen and / or antigen (or immunogen) is not an IAV-S pathogen or antigen (or immunogen), and that the non-IAV-S protein antigen (or immunogen) is not derived from IAV-S.

[0063] The term "derived from" is used herein to indicate that the unmodified and / or truncated amino acid sequence of the given protein antigen is encoded by the pathogen or strain of that pathogen. A coding sequence may be engineered within a nucleic acid construct of the invention for a protein antigen derived from a pathogen, thereby resulting in modification and / or truncation of the amino acid sequence of the expressed protein antigen relative to the corresponding sequence of that protein antigen in the pathogen or strain of pathogen from which it is derived (including naturally attenuated strains).

[0064] As used herein, the terms "treatment" or "treating," "prevention" or "preventing," "protecting" or "providing protection" or "inducing protective immunity," "helping to prevent disease," and "aiding in protection" do not necessarily mean complete protection from the symptoms of infection. For example, "for use in prophylaxis" can mean that the protection provided is sufficient to at least alleviate the underlying symptoms of infection after antigen challenge and / or to alleviate and / or eliminate one or more of the underlying cellular, physiological, or biochemical causes or mechanisms that cause the symptoms. It is understood that "alleviated" as used in this context refers to the state of infection, including not only the physiological state of the infection, but also the molecular state of the infection. Thus, the term "disease prevention" or "treatment" encompasses prophylactic treatment against viral infection or disorders resulting from infection.

[0065] As used herein, a "vaccine" is a composition suitable for application to animals, e.g., pigs (including humans in certain embodiments, but not specifically for humans in other embodiments), typically comprising one or more antigens combined with a pharmaceutically acceptable carrier, such as a liquid containing water, which, upon administration to the animal, induces an immune response strong enough to minimally aid in protection from disease resulting from infection with a wild-type microorganism, i.e., strong enough to aid in the prevention of disease, and / or prevents, ameliorate, or treats disease.

[0066] As used herein, a multivalent vaccine is a vaccine that includes two or more different antigens. In certain embodiments of this type, the multivalent vaccine stimulates the recipient's immune system against two or more different pathogens.

[0067] The terms "adjuvant" and "immunostimulant" are used interchangeably herein and are defined as one or more substances that cause stimulation of the immune system. In this context, an adjuvant is used to enhance the immune response to one or more vaccine antigens / isolates. Thus, an "adjuvant" is an agent that nonspecifically increases the immune response to a particular antigen, thus reducing the amount of antigen required for any given vaccine and / or the frequency of injections required to generate an adequate immune response to the antigen of interest. In this context, an adjuvant is used to enhance the immune response to one or more vaccine antigens / isolates.

[0068] As used herein, a "non-adjuvanted vaccine" is a vaccine or multivalent vaccine that does not contain an adjuvant.

[0069] As used herein, the term "pharmaceutically acceptable" is used adjectively to mean that the modified noun is appropriate for pharmaceutical use. For example, when used to describe an excipient in a pharmaceutical vaccine, it characterizes the excipient as being compatible with the other components of the composition and not adversely harmful to the intended recipient animal, e.g., a pig.

[0070] "Parenteral administration" includes subcutaneous injection, submucosal injection, intravenous injection, intramuscular injection, intradermal injection and infusion.

[0071] The IAV-S hemagglutinin and neuraminidase antigens may relate to the complete, i.e., full-length, proteins designated by the sequences defined herein, or to antigenic fragments thereof, which may be equally suitable for inducing an appropriate immunological response as is generally known in the field of influenza vaccines (see, e.g., PLOS ONE Research Article "An Influenza A / H1N1 / 2009 Hemagglutinin Vaccine Produced in Escherichia coli," Jose M. Aguilar-Yanez et al. July 22, 2010; https: / / doi.org / 10.1371 / journal.pone.0011694; Vaccines (Basel) "Optimal Use of Vaccines for Control of Influenza A Virus in Swine," Matthew R. Sandbulte et al. 2015 March 3(1)22-73).

[0072] Generally, an antigenic fragment of a particular protein (e.g., a protein antigen) is a fragment of that protein that is antigenic, i.e., capable of specifically interacting with an antigen-recognition molecule of the immune system, such as an immunoglobulin (antibody) or a T-cell antigen receptor. For example, an antigenic fragment of IAV-S hemagglutinin (HA) is a fragment of the HA protein that is antigenic, i.e., performs the function of an immunogenic epitope. Preferably, antigenic fragments of the present invention are immunodominant for antibody and / or T-cell receptor recognition. In certain embodiments, an antigenic fragment with respect to a given protein antigen is a fragment of that protein that retains at least 25% of the antigenicity of the full-length protein (i.e., the ability to induce antibodies corresponding to those established by the HI or NI inhibition assays described below). In preferred embodiments, antigenic fragments retain at least 50% of the antigenicity of the full-length protein. In more preferred embodiments, antigenic fragments retain at least 75% of the antigenicity of the full-length protein. Antigenic fragments can be as small as 20 amino acids or, at the other extreme, larger fragments that omit as little as a single amino acid from the full-length protein. In certain embodiments, the antigenic fragment comprises between 25 and 150 amino acid residues, while in other embodiments, the antigenic fragment comprises between 50 and 250 amino acid residues.

[0073] As used herein, one amino acid sequence is 100% "identical" or has 100% "sequence identity" to a second amino acid sequence if the amino acid residues of both sequences are identical. Thus, if 50% of the amino acid residues of the two amino acid sequences are identical, the amino acid sequence is 50% "identical" to the second amino acid sequence. Sequence comparison is performed over contiguous blocks of amino acid residues contained in a given protein, e.g., a protein or portion of a polypeptide being compared. In certain embodiments, selected deletions or insertions that may otherwise alter the correspondence between the two amino acid sequences are taken into account.

[0074] As used herein, the percent identity of nucleotide and amino acid sequences can be determined using the web-based Clustal Omega, a multiple sequence alignment program with default parameters [Sievers and Higgins, Protein Sci. 2018 Jan;27(1):135-1452018]. The percent identity value is a single numerical score determined for each pair of aligned sequences. It measures the number of identical residues ("matches") over the length of the alignment. In addition to Clustal Omega, other programs that can be used to determine the percent identity of nucleotide and amino acid sequences are C, MacVector (MacVector, Inc. Cary, NC 27519), Vector NTI (Informax, Inc. MD), Oxford Molecular Group PLC (1996), and the Clustal W algorithm with default alignment and identity parameters. Alternatively, an Advanced Blast search can be used under default filter conditions, for example using the GCG (Genetics Computer Group, Program Manual for the GCG Package, Version 7, Madison, Wisconsin) pileup program using default parameters.

[0075] A first embodiment of the first aspect of the present invention relates to a first nucleic acid construct that combines, in a specific order, at least first and second nucleic acid sequences encoding hemagglutinin (HA) antigens. The first HA antigen encoded by the first nucleic acid sequence in the 5' to 3' direction of the nucleic acid construct is of the Scot / 94 strain. The second HA antigen encoded by the second nucleic acid sequence in the 5' to 3' direction of the nucleic acid construct is of the EA strain.

[0076] The first HA antigen of the Scot / 94 lineage can be from any strain, for example, strain A / swine / Italy / 3033-1 / 2015(H1N2) or A / swine / France / 35-140041(H1N2). In a preferred embodiment, the first HA antigen of the Scot / 94 lineage is from strain A / swine / Italy / 3033-1 / 2015(H1N2).

[0077] More preferably, the first HA antigen comprises, and even more preferably consists of, an amino acid sequence according to SEQ ID NO: 3, or an amino acid sequence with at least 85%, at least 87%, at least 89%, at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity.More preferably, the first HA antigen consists of an amino acid sequence according to SEQ ID NO: 3, or an amino acid sequence with at least 90%, preferably at least 93%, more preferably at least 95%, 96%, 97%, 98%, or 99% sequence identity.

[0078] The second HA antigen of the EA lineage can be from any strain, such as strain A / swine / Denmark / 101048-2 / 2011 (H1N1), A / swine / Italy / 28762-3 / 2013 (H1N1), or A / swine / France / 44-120070 / 2012 (H1N1). In a preferred embodiment, the second HA antigen of the EA lineage is from strain A / swine / Italy / 28762-3 / 2013 (H1N1).

[0079] More preferably, the second HA antigen comprises, and even more preferably consists of, the amino acid sequence according to SEQ ID NO: 6, or an amino acid sequence with at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity. Even more preferably, the second HA antigen consists of the amino acid sequence of SEQ ID NO: 6, or an amino acid sequence with at least 93%, preferably at least 95%, more preferably at least 96%, 97%, 98%, or 99% sequence identity.

[0080] A second embodiment of the present invention relates to a second nucleic acid construct that combines, in a specific order, at least first and second nucleic acid sequences encoding hemagglutinin (HA) antigens. The first HA antigen encoded by the first nucleic acid sequence in the 5' to 3' direction of the nucleic acid construct is of the Gent / 84 strain. The second HA antigen encoded by the second nucleic acid sequence in the 5' to 3' direction of the nucleic acid construct is of the pdm09 strain.

[0081] The first HA antigen of the Gent / 84 strain can be from any strain, for example, from strain A / swine / Italy / 240849 / 2015 (H3N2). In a preferred embodiment, the first HA antigen of the Gent / 84 strain is from strain A / swine / Italy / 240849 / 2015 (H3N2).

[0082] More preferably, the first HA antigen comprises, and even more preferably consists of, the amino acid sequence according to SEQ ID NO: 9, or an amino acid sequence with at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity. Even more preferably, the first HA antigen consists of the amino acid sequence of SEQ ID NO: 9, or an amino acid sequence with at least 93%, preferably at least 95%, more preferably at least 96%, 97%, 98%, or 99% sequence identity.

[0083] The second HA antigen of the pdm09 lineage can be from any strain, for example, from strain A / swine / England / 373 / 2010(H1N1). In a preferred embodiment, the second HA of the EA lineage is from strain A / swine / England / 373 / 2010(H1N1).

[0084] More preferably, the second HA antigen comprises, and even more preferably consists of, the amino acid sequence according to SEQ ID NO: 12, or an amino acid sequence with at least 95%, 96%, 97%, 98%, or 99% sequence identity.More preferably, the first HA antigen consists of the amino acid sequence of SEQ ID NO: 12, or an amino acid sequence with at least 95%, preferably at least 96%, and even more preferably at least 97%, 98%, or 99% sequence identity.

[0085] In a first embodiment of the second aspect, there is provided a nucleic acid construct comprising a first and a second nucleic acid sequence, The first nucleic acid sequence is an A / swine / Scotland / 410440 / 1994-like H1N2 derived from strain A / swine / Italy / 3033-1 / 2015 (H1N2). hu Encoding the first HA antigen of IAV-S of the N2 (Scot / 94) lineage, and The second nucleic acid sequence is a Eurasian avian-like H1 from strain A / swine / Italy / 28762-3 / 2013 (H1N1). av Encodes the second HA antigen of IAV-S of the N1(EA) lineage.

[0086] Preferably, the amino acid sequence of the first HA antigen of IAV-S of the Scot / 94 lineage from strain A / swine / Italy / 3033-1 / 2015 (H1N2) comprises, and more preferably consists of, the sequence of SEQ ID NO: 3, or an amino acid sequence having at least 85%, preferably at least 90%, sequence identity thereto, and even more preferably at least 91%, 92%, more preferably at least 93%, 94%, 95%, 96%, 97%, 98% or even 99% or more amino acid identity thereto.

[0087] Preferably, the amino acid sequence of the second HA antigen of IAV-S of the EA lineage from strain A / swine / Italy / 28762-3 / 2013 (H1N1) comprises, and more preferably consists of, the sequence of SEQ ID NO: 6, or an amino acid sequence having at least 90%, preferably at least 93%, sequence identity thereto, and even more preferably at least 94%, 95%, more preferably at least 96%, 97%, 98% or even 99% or more amino acid identity thereto.

[0088] In a second embodiment of the second aspect there is provided a nucleic acid construct for use in the prevention or treatment of disease caused by swine influenza A virus in a subject, the nucleic acid construct comprising a first and a second nucleic acid sequence: the first nucleic acid sequence encodes a first hemagglutinin (HA) antigen of a swine influenza A virus (IAV-S) of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage from strain A / swine / Italy / 240849 / 2015 (H3N2); and The second nucleic acid sequence encodes a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage from strain A / swine / England / 373 / 2010 (H1N1).

[0089] Preferably, the amino acid sequence of the first HA antigen of IAV-S of the Gent / 84 lineage from strain A / swine / Italy / 240849 / 2015 (H3N2) comprises, and more preferably consists of, the sequence of SEQ ID NO: 9, or an amino acid sequence having at least 90%, preferably at least 95%, sequence identity thereto, preferably at least 96%, 97%, more preferably at least 98% or even 99% or more.

[0090] Preferably, the amino acid sequence of the second HA antigen of IAV-S of the pdm09 lineage from strain A / swine / England / 373 / 2010 (H1N1) comprises, and more preferably consists of, the sequence of SEQ ID NO: 12, or an amino acid sequence having at least 90%, preferably at least 95%, sequence identity thereto, preferably at least 96%, 97%, more preferably at least 98% or even 99% or more.

[0091] The nucleic acid construct according to the first and / or second embodiment of the first and / or second aspect may be contained in an expression cassette incorporating a nucleic acid sequence encoding the hemagglutinin (HA) antigen as described above as a heterologous gene, along with transcriptional and / or expression control nucleic acid sequences, such as an alphavirus subgenomic promoter sequence, suitable for expression of the HA antigen. Such expression cassettes can be made using well-known techniques by incorporating the heterologous nucleic acid sequence encoding the HA antigen into a vector, such as a DNA vector or an RNA vector. The vector may be a viral replicon backbone, such as an RNA replicon particle (RP), preferably an alphavirus RNA replicon particle.

[0092] Thus, in the first and second aspects of the present invention, there is further provided an RNA RP, preferably an alphavirus RNA RP, comprising a nucleotide construct according to the first embodiment. Additionally, the present invention further provides an RNA, preferably an alphavirus RNA RP, comprising a nucleotide construct according to the second embodiment.

[0093] "Alphavirus RNA replicon particles (RP)" are well known as "non-infectious," "single-cycle," or "proliferation-deficient" virus-like particle vectors. The genome can encode one or more heterologous genes from its 26S subgenomic promoter. RPs can replicate within target cells without producing progeny, thus delivering and expressing heterologous antigen(s) to the target animal's immune system. Alphavirus RNA RPs can be based on the human Venezuelan equine encephalitis vaccine (VEEV) TC-83 strain.

[0094] RP expression systems for heterologous expression of antigens are available in the art and include, for example, commercially available RP vector-based platforms for vaccine production, such as the Alphavaccine Platform System based on the VEE virus and SEQUIVITY™ Technology available from MSD / Merck Animal Health, USA. Thus, in a further preferred embodiment, the RNA replicon particles are Venezuelan equine encephalitis (VEE) alphavirus-based RNA replicon particles.

[0095] For example, the viral HA antigen gene(s) can then be expressed from a (26S-alphavirus) subgenomic promoter, and the transcribed replicon RNA can be packaged into RPs by expression of the structural proteins by a packaging cell line or by cotransfection of the replicon RNA and one or more "helper" RNAs encoding the structural proteins into suitable host cells. The production of VEE TC-83 RNA replicon particles is described, for example, in U.S. Pat. Nos. 9,441,247 and 8,460,913. Briefly, the HA or NA genes were synthesized de novo using sequences from SIV strains (DNA2.0). Two HA or three NA genes were cloned into a replicon vector plasmid using tandem unidirectional expression cassettes, and the sequences were verified to ensure that no mutations were introduced during the cloning process. RNA was generated by in vitro transcription of linearized replicon plasmid DNA using T7 RNA polymerase as previously described [Kamrud et al., Virology. 2007;360(2):376-387]. RPs were generated by co-electroporating HA or NA replicon RNA and structural gene helper RNA into Vero cells, followed by particle recovery [Hooper et al., Vaccine. 2009;28(2):494-511].

[0096] Common molecular biology techniques, including cloning, transfection, recombination, selection and amplification, are described in great detail in standard textbooks such as Sambrook & Russell: "Molecular cloning: a laboratory manual" [2001, Cold Spring Harbor Laboratory Press; ISBN: 0879695773; Ausubel et al., in: Current Protocols in Molecular Biology, J. Wiley and Sons Inc., NY, 2003, ISBN: 047150338X; C. Dieffenbach & G. Dveksler: "PCR primers: a laboratory manual", CSHL Press, ISBN 0879696540; and "PCR protocols", by: J. Bartlett and D. Stirling, Humana Press, ISBN: 0896036421].

[0097] The nucleic acid construct of the present invention can be used in an immunogenic composition comprising the nucleic acid construct. Preferably, the immunogenic composition comprises one or more replicon particles comprising the nucleic acid construct of the present invention. Thus, the replicon particles of the present invention can be used in immunogenic compositions, such as vaccines, comprising the replicon particles. The immunogenic composition or vaccine may consist of the replicon particles or may comprise the replicon particles in combination with additional components, such as a carrier or adjuvant. The immunogenic composition of the present invention can be used in a vaccine for use in preventing disease caused by swine influenza A virus (IAV-S) in a subject.

[0098] Thus, in the first and / or second aspect, the present invention further provides an immunogenic composition comprising or consisting of an RNA RP comprising a nucleic acid construct according to the first embodiment. Alternatively, the present invention further provides an immunogenic composition comprising or consisting of an RNA RP comprising a nucleic acid construct according to the second embodiment.

[0099] In a preferred embodiment of the first and / or second aspects, the present invention provides an immunogenic composition comprising a first RNA RP comprising a nucleotide construct according to the first embodiment and a second RNA RP comprising a nucleotide construct according to the second embodiment. The present invention can be shown that an immunogenic composition comprising a combination of replicon particles according to the first and second embodiments provides broad protection against existing IAV-S lineages, and therefore such an immunogenic composition can be beneficially used as a vaccine to help protect, i.e., prevent or treat, vaccinated subjects, such as pigs (e.g., sows or piglets), against IAV-S infection.

[0100] Thus, in a preferred embodiment, the present invention provides an immunogenic composition, such as a vaccine, comprising first and second RNA replicon particles, (i) a first RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second hemagglutinin (HA) antigens of a swine influenza A virus (IAV-S), wherein: The first HA antigen is of the Gent / 84 strain, and The second HA antigen is from the pdm09 lineage, (ii) a second RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising a nucleic acid construct comprising third and fourth nucleic acid sequences encoding a third and fourth HA antigen of IAV-S, wherein: The third HA antigen is that of Scot / 94, and The fourth HA antigen is that of the EA lineage.

[0101] In a particularly preferred embodiment, the present invention provides an immunogenic composition, such as a vaccine, comprising first and second RNA replicon particles, (i) a first RNA replicon particle, preferably an alphavirus RNA replicon particle, In the 5' to 3' order of the nucleic acid sequence: a first nucleic acid construct comprising a first nucleic acid sequence encoding a first HA antigen of IAV-S of the Scot / 94 strain and a second nucleic acid sequence encoding a second HA antigen of IAV-S of the EA strain; (ii) a second RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising, in 5' to 3' order of nucleic acid sequences: a third nucleic acid sequence encoding a third HA antigen of IAV-S of the Gent / 84 lineage; a fourth nucleic acid sequence encoding a fourth HA antigen of IAV-S of the pdm09 lineage; and a second nucleic acid construct comprising:

[0102] In a particularly preferred embodiment, the present invention provides an immunogenic composition, such as a vaccine, comprising first and second RNA replicon particles, (i) a first RNA replicon particle, preferably an alphavirus RNA replicon particle, In the 5' to 3' order of the nucleic acid sequence: a first nucleic acid construct comprising a first nucleic acid sequence encoding a first HA antigen of IAV-S of the Scot / 94 strain and a second nucleic acid sequence encoding a second HA antigen of IAV-S of the EA strain; (ii) a second RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising, in 5' to 3' order of nucleic acid sequences: a third nucleic acid sequence encoding a third HA antigen of IAV-S of the Gent / 84 lineage; a fourth nucleic acid sequence encoding a fourth HA antigen of IAV-S of the pdm09 lineage; and a second nucleic acid construct comprising:

[0103] Thus, in a third aspect, the present invention provides an immunogenic composition, such as a vaccine, comprising first and second RNA replicon particles, (i) a first RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising, in 5' to 3' order of nucleic acid sequences: and a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second hemagglutinin (HA) antigens of a swine influenza virus A virus (IAV-S), wherein: the first HA antigen encoded by the first nucleic acid sequence is of the Gent / 84 lineage from strain A / swine / Italy / 240849 / 2015 (H3N2), preferably of SEQ ID NO: 9, or an amino acid sequence having at least 90% sequence identity thereto; and the second HA antigen encoded by the first nucleic acid sequence is of the pdm09 lineage from strain A / swine / England / 373 / 2010 (H1N1), and is preferably that of SEQ ID NO: 12, or an amino acid sequence having at least 95% sequence identity thereto; (ii) a second RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising a nucleic acid construct comprising, in 5' to 3' order of nucleic acid sequences, third and fourth nucleic acid sequences encoding third and fourth HA antigens of IAV-S, wherein: the third HA antigen encoded by the third nucleic acid sequence is of the Scot / 94 lineage from strain A / swine / Italy / 3033-1 / 2015 (H1N2), preferably of SEQ ID NO: 3, or an amino acid sequence having at least 85% sequence identity thereto; and The fourth HA antigen encoded by the fourth nucleic acid sequence is that of the EA lineage from strain A / swine / Italy / 28762-3 / 2013 (H1N1), preferably that of SEQ ID NO: 6, or an amino acid sequence having at least 90% sequence identity thereto.

[0104] The nucleic acid construct, immunogenic composition and replicon particle of the third aspect are as described above for the first and second aspects of the invention. Accordingly, the present invention further includes any combination of the embodiments of the third aspect described herein with the embodiments of the first and second aspects. Accordingly, the present invention further provides a replicon particle according to the third aspect, wherein the nucleic acid construct encodes IAV-S HA antigens arranged in the specific order defined in the first aspect, and / or the IAV-S antigens are derived from the specific strain defined in the second aspect.

[0105] The immunogenic composition can be adapted for simultaneous or sequential administration of the first and second RNA replicon particles as described above, i.e., simultaneous or sequential administration of the RNA RPs comprising the nucleic acid constructs according to the first and second embodiments.Preferably, the immunogenic composition is adapted for simultaneous administration of the first and second RNA replicon particles.Therefore, in a preferred embodiment, the immunogenic composition comprises the first and second RNA replicon particles in a unit dosage form.

[0106] In a further preferred embodiment, the immunogenic composition may include one or more additional RNA replicon particles. Such additional RNA replicon particles may include nucleic acid constructs encoding one or more additional antigens. For example, the additional RNA replicon particles may include nucleic acid constructs encoding one or more neuraminidase (NA) antigens of IAV-S. In a specific embodiment, the nucleic acid constructs encode two or three, preferably three, NA antigens of IAV-S, or immunogenic fragments thereof.

[0107] In a particularly preferred embodiment, the additional RNA RP further comprises a nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third NA antigens of IAV-S, wherein: The first NA antigen is of the Scot / 94 lineage; The second NA antigen is of the Gent / 84 lineage, and The third NA antigen is selected from the pdm09 or EA lineages.

[0108] Thus, in a fourth aspect of the present invention there is further provided a nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third NA antigens of IAV-S, wherein: the first NA antigen encoded by the first nucleic acid sequence is of the Scot / 94 lineage; the second NA antigen encoded by the second nucleic acid sequence is of the Gent / 84 lineage; and The third NA antigen encoded by the third nucleic acid sequence is selected from the pdm09 lineage or the EA lineage.

[0109] Preferably, the amino acid sequence of the first NA antigen of IAV-S of the Scot / 94 lineage is derived from the strain A / swine / England / 61470 / 2013 (H1N2). The amino acid sequence of the first NA antigen preferably comprises, and more preferably consists of, the sequence of SEQ ID NO: 15 or an amino acid sequence having at least 90% sequence identity. The amino acid identity is preferably at least 96%, 97%, more preferably at least 98% or even 99% or more.

[0110] Preferably, the amino acid sequence of the second NA antigen of IAV-S of the Gent / 84 lineage is derived from the strain A / swine / Italy / 248147-8 / 2015 (H3N2). The amino acid sequence of the second NA antigen preferably comprises, and more preferably consists of, the sequence of SEQ ID NO: 18 or an amino acid sequence having at least 90% sequence identity. The amino acid identity is preferably at least 96%, 97%, more preferably at least 98% or even 99% or more.

[0111] Preferably, the amino acid sequence of the third NA antigen of IAV-S of the pdm09 lineage is derived from strain A / swine / England / 373 / 2010 (H1N1) or A / swine / Italy / 179057 / 2015 (H1N1), preferably from strain A / swine / Italy / 179057 / 2015 (H1N1). The amino acid sequence of the third NA antigen preferably comprises, and more preferably consists of, the sequence of SEQ ID NO: 21 or an amino acid sequence having at least 90% sequence identity. The amino acid identity is preferably at least 96%, 97%, more preferably at least 98% or even 99% or more.

[0112] Alternatively, the amino acid sequence of the third NA antigen of IAV-S of the EA lineage is derived from strain A / swine / Italy / 28762-3 / 2013 (H1N1). The amino acid sequence of the third NA antigen preferably comprises, and more preferably consists of, the sequence of SEQ ID NO: 24 or an amino acid sequence having at least 90% sequence identity. The amino acid identity is preferably at least 96%, 97%, more preferably at least 98% or even 99% or more.

[0113] Further provided is an RNA replicon particle, preferably an alphavirus RNA replicon particle, comprising a nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third neuraminidase (NA) antigens of a swine influenza A virus (IAV-S), wherein: The first NA antigen is of the Scot / 94 lineage; The second NA antigen is that of the Gent / 84 lineage, and The third NA antigen is selected from the pdm09 or EA lineages.

[0114] Replicon particles comprising a nucleic acid construct according to the fourth aspect may be used alone or in combination with replicon particles according to the first, second and / or third aspects of the invention as described herein, and are advantageously used in combination with replicon particles comprising a hemagglutinin antigen as described in the first, second and / or third aspects of the invention.

[0115] The replicon particle according to this fourth aspect is not particularly limited and is preferably a replicon particle such as an alphavirus replicon particle, most preferably a Venezuelan Equine Encephalitis Virus (VEEV) alphavirus RNA replicon particle as described in the first, second and / or third aspects.

[0116] In a further preferred embodiment, the present invention provides an immunogenic composition, such as a vaccine, comprising first, second and third RNA replicon particles, The first RNA replicon particle comprises a nucleic acid construct comprising, in 5' to 3' order of nucleic acid sequences, first and second nucleic acid sequences encoding first and second HA antigens of IAV-S, wherein: The first HA antigen is of the Scot / 94 strain, and The second HA antigen is of the EA lineage, The second RNA replicon particle comprises a nucleic acid construct comprising, in 5' to 3' order of nucleic acid sequences, third and fourth nucleic acid sequences encoding third and fourth HA antigens of IAV-S, wherein: The third HA antigen is that of the Gent / 84 strain, and The fourth HA antigen is that of the pdm09 lineage, and The third RNA replicon particle comprises a nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third NA antigens of IAV-S, wherein: The first NA antigen is of the Scot / 94 lineage; The second NA antigen is of the Gent / 84 lineage, and The third NA antigen is selected from the pdm09 or EA lineages.

[0117] The immunogenic compositions described above, such as vaccines, can be advantageously used as vaccines to help protect vaccinated subjects, such as pigs (eg, sows or piglets), against IAV-S infection.

[0118] The immunogenic composition can be adapted for simultaneous or sequential administration of the first, second and third RNA replicon particles as described above, i.e., simultaneous or sequential administration of RNA RPs comprising a nucleic acid construct according to the first, second and / or third aspect in combination with a nucleic acid construct according to the fourth aspect. Preferably, the immunogenic composition is adapted for simultaneous administration of the first, second and third RNA replicon particles. Thus, in a preferred embodiment, the immunogenic composition comprises the first, second and third RNA replicon particles in unit dosage form.

[0119] The present invention also provides vaccines against multiple swine pathogens. For example, coding sequences for protein antigens or antigenic fragments thereof, or combinations of coding sequences for such protein antigens useful in swine vaccines, can be incorporated into RNA replicon particles (RPs) as described herein and / or combined in the same RPs as those encoding HA or NA from IAV-S in the vaccine. Examples of pathogens that can be the source of one or more protein antigens or antigenic fragments thereof include porcine reproductive and respiratory syndrome (PRRS), porcine circovirus (PCV), transmissible gastroenteritis virus (TGE), porcine pseudorabies (PPRV), porcine parvovirus (PPV), porcine rotavirus (PRV), porcine epidemic diarrhea virus (PED), several serotypes of Pasteurella multocida, Salmonella spp., Escherichia coli, e.g., serotypes K99, K88, 987P, or F41, Haemophilus parasuis, Lawsonia intracellularis, Mycoplasma spp. (e.g., Mycoplasma hyopneumoniae), Bordetella bronchiseptica, Erysipelas ssp., Campylobacter spp., Actinobacillus pleuropneumoniae, Actinobacillus pleuropneumoniae, Clostridium perfringens, and Clostridium difficile.

[0120] Additionally, the present invention provides vaccines comprising one or more RPs of the present invention in combination with one or more other vectors encoding one or more of these porcine antigens (e.g., baculovirus vectors encoding the ORF-2 protein from porcine circovirus-2 (PCV-2) and / or porcine circovirus-3 (PCV-3), and / or inactivated toxoids derived from one or more of these porcine pathogens). Furthermore, such vaccines can include any RNA replicon particle encoding the HA and / or NA from IAV-S in the vaccines of the present invention, together with one or more killed and / or modified (attenuated) live porcine virus isolates and / or porcine bacteria.

[0121] Thus, one or more RNA RPs encoding one or more HAs and / or NAs derived from IAV-S can be added together with one or more other vectors encoding one or more swine antigens and / or one or more killed and / or modified (attenuated) live virus isolates, such as one or more killed or modified live IAS-V strains, one or more killed and / or modified live PRRS viruses, one or more killed and / or modified live PCVs, one or more killed and / or modified live TGEs, one or more killed and / or modified live PPRVs, one or more killed and / or modified live PPVs, one or more killed and / or modified live PRVs, and one or more killed and / or modified live PEDs. Additionally, one or more alphavirus RNA replicon particles (RP) encoding one or more HA or NA from IAV-S can be added together with one or more other vectors encoding one or more swine antigens and / or one or more killed and / or modified (attenuated) live bacteria that are also capable of infecting pigs, such as one or more killed and / or modified live Pasteurella multocida (of one or more serotypes), Salmonella spp., Escherichia coli (of one or more serotypes), Haemophilus parasuis, Lawsonia intracellularis, Mycoplasma spp. (e.g., Mycoplasma hyopneumoniae), Bordetella bronchiseptica, Erysipelas ssp., Campylobacter spp., Actinobacillus pleuropneumoniae, Clostridium perfringens, perfringens and Clostridium difficile.

[0122] Thus, the present invention also includes all RNA replicon particles of the present invention, naked DNA vectors comprising a nucleic acid construct of the present invention, naked RNA vectors comprising a nucleic acid construct of the present invention, nucleic acid constructs of the present invention comprising synthetic messenger RNA, and RNA replicons, as well as all immunogenic compositions and / or vaccines comprising a nucleic acid construct (e.g., synthetic messenger RNA, RNA replicon), alphavirus RNA replicon particle, naked RNA vector, and / or naked DNA vector of the present invention.

[0123] The immunogenic compositions of the present invention can be used as vaccines, which may be non-adjuvanted or adjuvanted vaccines. Thus, the present invention further includes vaccines comprising the immunogenic compositions of the present invention (multivalent vaccines). In certain embodiments, the vaccine is an adjuvant-free vaccine. In other embodiments, the vaccine comprises an adjuvant. Adjuvants suitable for use in the vaccines of the present invention are not limited to, and may include one or more adjuvants selected from the group consisting of biodegradable oils, oil-in-water emulsions containing 2.5-50% (v / v) mineral oil, and biodegradable oils mixed with oil-in-water emulsions containing 2.5-50% (v / v) mineral oil.

[0124] In certain embodiments, the adjuvant is a biodegradable oil. In certain embodiments of this type, the biodegradable oil is dl-α-tocopheryl acetate (vitamin E acetate). In other embodiments, the adjuvant comprises an oil-in-water emulsion comprising 2.5% to 50% (v / v) mineral oil. In specific embodiments, the adjuvant comprises an oil-in-water emulsion comprising 2.5% (v / v) mineral oil. In related embodiments, the adjuvant comprises an oil-in-water emulsion comprising 5% (v / v) mineral oil. In other embodiments, the adjuvant comprises an oil-in-water emulsion comprising 12.5% ​​(v / v) mineral oil. In yet other embodiments, the adjuvant comprises an oil-in-water emulsion comprising 25% (v / v) mineral oil. In yet other embodiments, the adjuvant comprises an oil-in-water emulsion comprising 50% (v / v) mineral oil. In more specific embodiments, the adjuvant comprises a mixture of a biodegradable oil and a mineral oil adjuvant. In specific embodiments, the biodegradable oil is dl-α-tocopheryl acetate and the mineral oil is liquid paraffin. In a more specific embodiment, the biodegradable oil is dl-α-tocopheryl acetate and the mineral oil is light liquid paraffin.

[0125] In a related formulation, the adjuvant is a mixture of two components. The first component consists of mineral oil droplets with an average (weighted volume) size of approximately 1 μm, stabilized with polysorbate 80 (polyoxyethylene (20) sorbitan monooleate) in water. The first component can contain 25% by weight mineral oil and 1% by weight polysorbate 80, with the remainder being water. The second component can consist of biodegradable dl-α-tocopheryl acetate droplets with an average (weighted volume) size of approximately 400 nm, also stabilized with polysorbate 80. A particular formulation contains 15 weight percent dl-α-tocopheryl acetate and 6 weight percent polysorbate 80, with the remainder being water. In certain embodiments, the adjuvant is X-SOLVE™, which is a combination of two component adjuvants: DILUVAC FORTE™, which is based on dl-α-tocopheryl acetate, and MICROSOL™, which is based on light liquid paraffin (see, e.g., U.S. Pat. No. 8,597,662). In related formulations, the adjuvant contains submicrometer-sized oil droplets and biodegradable oil droplets, the biodegradable oil droplets having an average size different from the average size of the mineral oil droplets (see, e.g., U.S. Pat. No. 9,084,768).

[0126] In certain embodiments, the vaccine is useful for preventing disease caused by IAV-S. In related embodiments, antibodies are induced in a porcine subject when the pig is immunized with the vaccine. In certain embodiments, the porcine subject is a sow. In related embodiments, the vaccine provides maternally derived protective antibodies to the offspring of the vaccinated sow. In other embodiments, the porcine subject is a piglet. In certain such embodiments, the vaccine is administered to the piglet as early as 3 days of age. In certain embodiments, the vaccine is administered as a booster vaccine. In certain embodiments, the vaccine is administered as a single-dose vaccine. In certain such embodiments, the vaccine is administered as a booster vaccine. In yet other embodiments, the vaccine is administered as a multi-dose vaccine. In certain such embodiments, the vaccine is administered as a two-dose vaccine.

[0127] The present invention also provides a method of immunizing a pig (e.g., a sow or piglet) against a swine pathogen, e.g., IAV-S, comprising administering to the pig an immunologically effective amount of a vaccine or multivalent vaccine of the present invention. In certain embodiments, the vaccine is administered by intramuscular injection. In alternative embodiments, the vaccine is administered by subcutaneous injection. In other embodiments, the vaccine is administered by intravenous injection. In yet other embodiments, the vaccine is administered by intradermal injection. In yet other embodiments, the vaccine is administered by oral administration. In yet other embodiments, the vaccine is administered by intranasal administration. A preferred method is intradermal administration. Another preferred method is intramuscular administration.

[0128] Therefore, the vaccine and multivalent vaccine of the present invention can be administered as a primer vaccine and / or a booster vaccine. In certain embodiments, the vaccine of the present invention is administered as a one-shot vaccine (one administration), and no subsequent administration is required. In certain embodiments, when both a primer vaccine and a booster vaccine are administered, the primer vaccine and the booster vaccine can be administered by the same route.

[0129] In certain such embodiments, the primer vaccine and the booster vaccine are both administered by intradermal injection. In another such embodiment, the primer vaccine and the booster vaccine are both administered by intramuscular injection. In alternative embodiments, when both a primer vaccine and a booster vaccine are administered, the primer vaccine can be administered by one route and the booster vaccine can be administered by another route. In certain such embodiments, the primer vaccine can be administered by intradermal injection and the booster vaccine can be administered orally. In a related such embodiment, the primer vaccine can be administered by intramuscular injection and the booster vaccine can be administered orally. In other such embodiments, the primer vaccine can be administered by intramuscular injection and the booster vaccine can be administered by intradermal injection. In yet other such embodiments, the primer vaccine can be administered by intradermal injection and the booster vaccine can be administered by intramuscular injection. One skilled in the art will appreciate that the vaccine composition is preferably formulated appropriately for the type of recipient animal and the route of administration.

[0130] The present invention further provides a method for immunizing a pig against IAV-S, comprising administering to the pig an immunologically effective amount of a vaccine of the present invention. The method preferably comprises intradermal administration of the vaccine. The present invention further provides a method for immunizing a pig (e.g., a sow or piglet) against IAV-S, comprising injecting the pig with an immunologically effective amount of the vaccine of the present invention described above so that the pig produces appropriate IAV-S antibodies. In a specific embodiment, the vaccine is administered in an amount of, for example, about 1 x 10 4 ~Approx. 1×10 10 In a more specific embodiment, the vaccine comprises about 1 x 10 RP. 5 ~Approx. 1×10 9 In an even more specific embodiment, the vaccine may comprise about 1 x 10 RP. 6 ~Approx. 1×10 8 RPs.

[0131] In a specific embodiment, the vaccine of the present invention is administered in a dose of 0.05 mL to 3 mL. In a more specific embodiment, the administered dose is 0.1 mL to 2 mL. In an even more specific embodiment, the administered dose is 0.2 mL to 1.5 mL. In an even more specific embodiment, the administered dose is 0.3 mL to 1.0 mL. In an even more specific embodiment, the administered dose is 0.4 mL to 0.8 mL.

[0132] Thus, in a first aspect, the present invention provides the following embodiments: [1] A nucleic acid construct for use in preventing disease caused by swine influenza A virus (IAV-S) in a subject, comprising, in 5' to 3' order of the nucleic acid sequence: A / swine / Scotland / 410440 / 1994 H1 hu a first nucleic acid sequence encoding a first hemagglutinin (HA) antigen of IAV-S of the N2 (Scot / 94) lineage; and Eurasian avian H1 av A nucleic acid construct comprising a second nucleic acid sequence encoding a second HA antigen of IAV-S of the N1(EA) lineage.

[0133] [2] The nucleic acid construct for use according to [1], wherein the first HA antigen is derived from strain A / swine / Italy / 3033-1 / 2015 (H1N2).

[0134] [3] A nucleic acid construct for use according to [1] or [2], wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 3 or an amino acid sequence having at least 85% sequence identity thereto.

[0135] [4] A nucleic acid construct for use according to any one of [1] to [3], wherein the second HA antigen is derived from strain A / swine / Italy / 28762-3 / 2013 (H1N1).

[0136] [5] A nucleic acid construct for use according to any one of [1] to [4], wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 6 or an amino acid sequence having at least 90% sequence identity thereto.

[0137] [6] A nucleic acid construct for use in preventing disease caused by swine influenza A virus (IAV-S) in a subject, comprising, in 5' to 3' order of the nucleic acid sequence: a first nucleic acid sequence encoding a first HA antigen of IAV-S of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and A nucleic acid construct comprising a second nucleic acid sequence encoding a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage.

[0138] [7] The nucleic acid construct for use according to [6], wherein the first HA antigen is derived from strain A / swine / Italy / 240849 / 2015 (H3N2).

[0139] [8] A nucleic acid construct for use according to [6] or [7], wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 9 or an amino acid sequence having at least 90% sequence identity thereto.

[0140] [9] A nucleic acid construct for use according to any one of [6] to [8], wherein the second HA antigen is derived from the strain A / swine / England / 373 / 2010 (H1N1).

[0141]

[10] A nucleic acid construct for use according to any one of [6] to [9], wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 12 or an amino acid sequence having at least 95% sequence identity thereto.

[0142]

[11] An RNA replicon particle comprising the nucleic acid construct according to any one of [1] to [5].

[0143]

[12] An RNA replicon particle comprising the nucleic acid construct according to any one of [6] to

[10] .

[0144]

[13] The RNA replicon particle according to

[15] or

[16] , which is an alphavirus RNA replicon particle.

[0145]

[14] The RNA replicon particle according to

[13] , which is a Venezuelan equine encephalitis (VEE) alphavirus RNA replicon particle.

[0146]

[15] An immunogenic composition comprising the RNA replicon particle according to any one of

[11] to

[14] .

[0147]

[16] The immunogenic composition according to

[15] , comprising the RNA replicon particles according to

[11] and

[12] .

[0148]

[17] The immunogenic composition according to

[16] , adapted for simultaneous administration of the alphavirus RNA replicon particles according to

[11] and

[12] .

[0149]

[18] A vaccine comprising the immunogenic composition according to any one of

[15] to

[17] .

[0150]

[19] The vaccine according to

[18] , which is an adjuvant-free vaccine.

[0151]

[20] The vaccine according to

[18] , comprising an adjuvant selected from the group consisting of biodegradable oil, an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil, and a biodegradable oil mixed with an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil.

[0152]

[21] The vaccine according to any one of

[18] to

[20] for use in preventing disease caused by swine influenza A virus in a subject.

[0153]

[22] A method for immunizing pigs against swine influenza A virus, the method comprising administering to pigs an immunologically effective amount of the vaccine according to any one of

[18] to

[20] .

[0154]

[23] In the order of 5' to 3' of the nucleic acid sequence, A / swine / Scotland / 410440 / 1994 H1 hu a first nucleic acid sequence encoding a first HA antigen of a swine influenza A virus (IAV-S) of the N2 (Scot / 94) lineage; and Eurasian avian H1 av A nucleic acid construct comprising a second nucleic acid sequence encoding a second HA antigen of IAV-S of the N1(EA) lineage.

[0155]

[24] In the 5' to 3' order of the nucleic acid sequence, a first nucleic acid sequence encoding a first HA antigen of IAV-S of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and A nucleic acid construct comprising a second nucleic acid sequence encoding a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage.

[0156] In a second aspect, the present invention provides the following embodiments: [1] A nucleic acid construct for use in preventing disease caused by swine influenza A virus in a subject, comprising first and second nucleic acid sequences: the first nucleic acid sequence is an A / swine / Scotland / 410440 / 1994-like H1N2 derived from strain A / swine / Italy / 3033-1 / 2015 (H1N2); hu Encoding the first HA antigen of IAV-S of the N2 (Scot / 94) lineage, and The second nucleic acid sequence is a Eurasian avian-like H1 from strain A / swine / Italy / 28762-3 / 2013 (H1N1). av A nucleic acid construct encoding the second HA antigen of IAV-S of the N1(EA) lineage.

[0157] [2] The nucleic acid construct for use according to [1], wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 3 or an amino acid sequence having at least 85% sequence identity thereto.

[0158] [3] A nucleic acid construct for use according to [1] or [2], wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 6 or an amino acid sequence having at least 90% sequence identity thereto.

[0159] [4] A nucleic acid construct for use in preventing disease caused by swine influenza A virus in a subject, comprising first and second nucleic acid sequences: the first nucleic acid sequence encodes a first hemagglutinin (HA) antigen of a swine influenza A virus (IAV-S) of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage from strain A / swine / Italy / 240849 / 2015 (H3N2); and A nucleic acid construct, wherein the second nucleic acid sequence encodes a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage from strain A / swine / England / 373 / 2010 (H1N1).

[0160] [5] The nucleic acid construct for use according to [4], wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 9 or an amino acid sequence having at least 95% sequence identity thereto.

[0161] [6] A nucleic acid construct for use according to [4] or [5], wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 12 or an amino acid sequence having at least 95% sequence identity thereto.

[0162] [7] An RNA replicon particle comprising the nucleotide construct according to any one of [1] to [3].

[0163] [8] An RNA replicon particle comprising a nucleotide construct according to any one of [4] to [6].

[0164] [9] The RNA replicon particle according to [7] or [8], which is an alphavirus RNA replicon particle.

[0165]

[10] The RNA replicon particle according to [9], which is a Venezuelan equine encephalitis virus (VEEV) alphavirus RNA replicon particle.

[0166]

[11] An immunogenic composition comprising the RNA replicon particle according to any one of [7] to

[10] .

[0167]

[12] The immunogenic composition according to

[11] , comprising the RNA replicon particles according to [7] and [8].

[0168]

[13] A vaccine comprising the immunogenic composition described in

[12] .

[0169]

[14] The vaccine according to

[13] , which is an adjuvant-free vaccine.

[0170]

[15] The vaccine according to

[13] , comprising an adjuvant selected from the group consisting of biodegradable oil, an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil, and a biodegradable oil mixed with an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil.

[0171]

[16] The vaccine according to any one of

[13] to

[15] for use in preventing disease caused by swine influenza A virus in a subject.

[0172]

[17] A method for immunizing pigs against swine influenza A virus, the method comprising administering to pigs an immunologically effective amount of the vaccine according to any one of

[14] to

[16] .

[0173]

[18] comprising a first and a second nucleic acid sequence; the first nucleic acid sequence encodes a first hemagglutinin (HA) antigen of a swine influenza A virus (IAV-S) of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage from strain A / swine / Italy / 240849 / 2015 (H3N2); and A nucleic acid construct, wherein the second nucleic acid sequence encodes a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage from strain A / swine / England / 373 / 2010 (H1N1).

[0174]

[19] comprising a first and a second nucleic acid sequence; the first nucleic acid sequence is an A / swine / Scotland / 410440 / 1994-like H1N2 derived from strain A / swine / Italy / 3033-1 / 2015 (H1N2); hu Encoding the first HA antigen of IAV-S of the N2 (Scot / 94) lineage, and The second nucleic acid sequence is a Eurasian avian-like H1 from strain A / swine / Italy / 28762-3 / 2013 (H1N1). av A nucleic acid construct encoding the second HA antigen of IAV-S of the N1(EA) lineage.

[0175] In a third aspect, the present invention provides the following embodiments: [1] An immunogenic composition for use in preventing disease caused by swine influenza A virus in a subject, comprising first and second RNA replicon particles; the first RNA replicon particle comprises a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second hemagglutinin (HA) antigens of swine influenza A virus (IAV-S), wherein: the first HA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and the second HA antigen is from the A(H1N1)pdm09 (pdm09) lineage; the second RNA replicon particle comprises a nucleic acid construct comprising third and fourth nucleic acid sequences encoding the third and fourth HA antigens of IAV-S, The third HA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is from N2 (Scot / 94), and The fourth HA antigen is Eurasian avian-like H1 av An immunogenic composition, which is of the N1(EA) lineage.

[0176] [2] The immunogenic composition for use according to [1], wherein the first HA antigen is derived from strain A / swine / Italy / 240849 / 2015 (H3N2).

[0177] [3] The immunogenic composition for use according to [1] or [2], wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 9 or an amino acid sequence having at least 90% sequence identity thereto.

[0178] [4] The immunogenic composition for use according to any one of the preceding [1] to [3], wherein the second HA antigen is derived from strain A / swine / England / 373 / 2010 (H1N1).

[0179] [5] An immunogenic composition for use according to any one of the preceding [1] to [4], wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 12 or an amino acid sequence having at least 95% sequence identity thereto.

[0180] [6] An immunogenic composition for use according to any one of the preceding [1] to [5], wherein the third HA antigen is derived from strain A / swine / Italy / 3033-1 / 2015 (H1N2).

[0181] [7] An immunogenic composition for use according to any one of the preceding [1] to [6], wherein the third HA antigen encoded by the third nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 3 or an amino acid sequence having at least 85% sequence identity thereto.

[0182] [8] The immunogenic composition for use according to any one of the preceding [1] to [7], wherein the fourth HA antigen is derived from strain A / swine / Italy / 28762-3 / 2013 (H1N1).

[0183] [9] An immunogenic composition for use according to any one of the preceding [1] to [8], wherein the fourth HA antigen encoded by the fourth nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 6 or an amino acid sequence having at least 90% sequence identity thereto.

[0184]

[10] An immunogenic composition for use according to any one of the preceding [1] to [9], which is adapted for simultaneous administration of the first and second RNA replicon particles.

[0185]

[11] further comprising a third RNA replicon particle; a third RNA replicon particle comprising a nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third neuraminidase (NA) antigens of IAV-S, wherein: The first NA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is of the N2 (Scot / 94) lineage, the second NA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and The third NA antigen is the A(H1N1)pdm09 (pdm09) lineage or Eurasian avian-like H1 av The immunogenic composition for use according to any one of the preceding [1] to

[10] , wherein the immunogenic composition is selected from the N1(EA) lineage.

[0186]

[12] The immunogenic composition for use according to any one of the preceding [1] to

[11] , wherein the RNA replicon particles are alphavirus RNA replicon particles.

[0187]

[13] The immunogenic composition for use according to

[12] , which is a Venezuelan equine encephalitis virus (VEEV) alphavirus RNA replicon particle.

[0188]

[14] A vaccine comprising the immunogenic composition according to any one of the preceding [1] to

[13] .

[0189]

[15] The vaccine according to

[14] , which is an adjuvant-free vaccine.

[0190]

[16] The vaccine according to

[14] , comprising an adjuvant selected from the group consisting of biodegradable oil, an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil, and a biodegradable oil mixed with an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil.

[0191]

[17] The vaccine according to any one of

[14] to

[16] for use in preventing disease caused by swine influenza A virus in a subject.

[0192]

[18] A method for immunizing pigs against swine influenza A virus, the method comprising administering to pigs an immunologically effective amount of the vaccine according to any one of

[14] to

[16] .

[0193]

[19] An immunogenic composition comprising first and second RNA replicon particles, The first RNA replicon particle comprises a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second hemagglutinin (HA) antigens of swine influenza A virus (IAV-S), wherein: the first HA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and the second HA antigen is from the A(H1N1)pdm09 (pdm09) lineage; The second RNA replicon particle comprises a nucleic acid construct comprising third and fourth nucleic acid sequences encoding the third and fourth HA antigens of IAV-S, wherein: The third HA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is from N2 (Scot / 94), and The fourth HA antigen is Eurasian avian-like H1 av An immunogenic composition, which is of the N1(EA) lineage.

[0194]

[20] An immunogenic composition comprising first, second, and third RNA replicon particles, The first RNA replicon particle comprises a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second hemagglutinin (HA) antigens of swine influenza A virus (IAV-S), wherein: the first HA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and the second HA antigen is from the A(H1N1)pdm09 (pdm09) lineage; The second RNA replicon particle comprises a nucleic acid construct comprising third and fourth nucleic acid sequences encoding the third and fourth HA antigens of IAV-S, wherein: The third HA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu of the N2 (Scot / 94) lineage, and The fourth HA antigen is Eurasian avian-like H1 av It is of the N1(EA) lineage, The third RNA replicon particle comprises a nucleic acid construct comprising first, second, and third nucleic acid sequences encoding first, second, and third neuraminidase (NA) antigens of IAV-S, wherein: The first NA antigen is A / swine / Scotland / 410440 / 1994-like H1 huIt is of the N2 (Scot / 94)S lineage, the second NA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and The third NA antigen is the A(H1N1)pdm09 (pdm09) lineage or Eurasian avian-like H1 av An immunogenic composition selected from the N1(EA) lineage.

[0195] In a fourth aspect, the present invention provides the following embodiments: [1] A nucleic acid construct for use in preventing disease caused by swine influenza A virus in a subject, the nucleic acid construct comprising first, second and third nucleic acid sequences encoding first, second and third neuraminidase (NA) antigens of swine influenza A virus (IAV-S), wherein: The first NA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is of the N2 (Scot / 94) lineage, the second NA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and The third NA antigen is the A(H1N1)pdm09 (pdm09) lineage or Eurasian avian-like H1 av A nucleic acid construct selected from the N1(EA) lineage.

[0196] [2] The nucleic acid construct for use according to [1], wherein the first NA antigen is derived from strain A / swine / England / 61470 / 2013 (H1N2).

[0197] [3] The nucleic acid construct for use according to [1] or [2], wherein the first NA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 15 or an amino acid sequence having at least 90% sequence identity thereto.

[0198] [4] The nucleic acid construct for use according to any one of [1] to [3], wherein the second NA antigen is derived from strain A / swine / Italy / 248147-8 / 2015 (H3N2).

[0199] [5] A nucleic acid construct for use according to any one of [1] to [4], wherein the second NA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 18 or an amino acid sequence having at least 90% sequence identity thereto.

[0200] [6] A nucleic acid construct for use according to any one of [1] to [5], wherein the third NA antigen is derived from strain A / swine / England / 373 / 2010 (H1N1) or A / swine / Italy / 179057 / 2015 (H1N1).

[0201] [7] The nucleic acid construct for use according to any one of [1] to [6], wherein the third NA antigen is derived from the strain A / swine / Italy / 28762-3 / 2013 (H1N1).

[0202] [8] A nucleic acid construct for use according to any one of [1] to [7], wherein the third NA antigen encoded by the third nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 24 or an amino acid sequence having at least 90% sequence identity thereto.

[0203] [9] An RNA replicon particle comprising the nucleic acid construct according to any one of [1] to [8].

[0204]

[10] The RNA replicon particle according to [9], which is an alphavirus RNA replicon particle.

[0205]

[11] The RNA replicon particle according to [9] or

[10] , which is a Venezuelan equine encephalitis virus (VEEV) alphavirus RNA replicon particle.

[0206]

[12] An immunogenic composition comprising the RNA replicon particle according to any one of [9] to

[11] .

[0207]

[13] An immunogenic composition comprising first, second, and third RNA replicon particles, The first RNA replicon particle comprises a nucleic acid construct comprising first and second nucleic acid sequences encoding first and second hemagglutinin (HA) antigens of swine influenza A virus (IAV-S), wherein: the first HA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and the second HA antigen is from the A(H1N1)pdm09 (pdm09) lineage; The second RNA replicon particle comprises a nucleic acid construct comprising third and fourth nucleic acid sequences encoding the third and fourth HA antigens of IAV-S, wherein: The third HA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is from N2 (Scot / 94), and The fourth HA antigen is Eurasian avian-like H1 av of the N1(EA) lineage, and An immunogenic composition, wherein the third RNA replicon particle is the RNA replicon particle according to any one of [9] to

[11] .

[0208]

[14] A vaccine comprising the immunogenic composition according to

[12] or

[13] .

[0209]

[15] The vaccine according to

[14] , which is an adjuvant-free vaccine.

[0210]

[16] The vaccine according to

[14] , comprising an adjuvant selected from the group consisting of biodegradable oil, an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil, and a biodegradable oil mixed with an oil-in-water emulsion containing 2.5 to 50% (v / v) mineral oil.

[0211]

[17] The vaccine according to any one of

[14] to

[16] for use in preventing disease caused by swine influenza A virus in a subject.

[0212]

[18] A method for immunizing pigs against swine influenza A virus, the method comprising administering to pigs an immunologically effective amount of the vaccine according to any one of

[14] to

[16] .

[0213]

[19] A nucleic acid construct comprising first, second, and third nucleic acid sequences encoding first, second, and third neuraminidase (NA) antigens of swine influenza A virus (IAV-S), wherein: The first NA antigen is A / swine / Scotland / 410440 / 1994-like H1 hu It is of the N2 (Scot / 94) lineage, the second NA antigen is of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and The third NA antigen is the A(H1N1)pdm09 (pdm09) lineage or Eurasian avian-like H1 av A nucleic acid construct selected from the N1(EA) lineage.

[0214] The following examples serve to provide further understanding of the present invention, but are not meant to limit the effective scope of the invention in any way.

[0215] [Example] material and method Preparation of alphavirus RNA RP vaccine Preparation of single HA or NA gene replicon particles (RP). VEE replicon vectors designed to express the hemagglutinin (HA) or neuraminidase (NA) genes were constructed as previously described (see U.S. Pat. No. 9,441,247 B2, the contents of which are incorporated herein by reference) with the following modifications. The TC-83-derived replicon vector "pVEK" (disclosed and described in U.S. Pat. No. 9,441,247 B2) was digested with the restriction enzymes AscI and Pad. DNA plasmids containing the codon-optimized open reading frame sequences of the HA or NA genes (Tables 1a and 1b) with the 5'-flanking sequence (5'-GGCGCGCCGCACC-3') and 3'-flanking sequence (5'-TTAATTAA-3') were similarly digested with the restriction enzymes AscI and Pad. The synthetic gene cassettes were then ligated into the digested pVEK vector, and the resulting clones were renamed "pVHV" for the respective RP codes. The "pVHV" vector name was chosen to refer to the pVEK-derived replicon vector containing a transgene cassette cloned through the Ascl and Pad sites of the multiple cloning site of pVEK.

[0216] TC-83 RNA replicon particles (RP) were produced according to previously described methods [U.S. Patent No. 9,441,247 B2 and U.S. Patent No. 8,460,913 B2, the contents of which are incorporated herein by reference]. Briefly, pVHV replicon vector DNA and helper DNA plasmids were linearized with Not1 restriction enzyme before in vitro transcription using MegaScript T7 RNA polymerase and cap analog (Promega, Madison, WI). Importantly, the helper RNA used for production lacks the VEE subgenomic promoter sequence, as previously described [Kamrud et al., J Gen Virol. 91(Pt 7):1723-1727(2010)]. Purified RNA for the replicon and helper components was combined, mixed with a suspension of Vero cells, electroporated into a 4 mm cuvette, and reconstituted in OptiPro SFM cell culture medium (Thermo Fisher, Waltham, MA). After overnight incubation, purified alphavirus RNA replicon particles were formulated in phosphate-buffered saline containing 5% sucrose (w / v) and 1% porcine serum, passed through a 0.22 micron membrane filter, and aliquoted for storage. Titers of functional RP were determined by immunofluorescence assay on infected Vero cell monolayers. RP batches were identified according to the genes encoded in the packaged replicon (Table 1a and Table 1b).

[0217] Generation of multiple HA or NA gene replicon particles (RP). The VEE replicon vectors used to express the HA or NA genes were constructed as previously described (see U.S. Patent No. 9,441,247 B2, the contents of which are incorporated herein by reference) with the following modifications. The TC-83-derived replicon vector "pVEK" (disclosed and described in U.S. Patent No. 9,441,247 B2) was digested with the restriction enzymes AscI and PacI. For the double-gene HA and NA constructs, the selected open reading frame sequences were codon-optimized and synthesized with flanking AscI and PacI sites. Additionally, the intermediate sequence between the two synthetic HA or NA open reading frames consisted of 47 nucleotides of non-coding heterologous sequence and a second copy of the native TC-83 subgenomic (sg)RNA promoter and 5' untranslated sgRNA region sequence. These double-gene constructs were designated "pVDG" to distinguish them from the parent vector, which contains a single sgRNA promoter sequence. For the triple-gene NA construct, the pVDG-based construct containing the two NA genes was further modified as follows. The third selected NA open reading frame was codon-optimized and synthesized with flanking PacI and SphI sites for directional cloning into the pVDG vector downstream of the two existing NA genes. The new synthetic construct also contained 50 nucleotides of heterologous non-coding sequence and a third copy of the native TC-83 sgRNA promoter and 5' untranslated sgRNA region sequence 5' to the third NA gene sequence. The 3' region from the third NA gene sequence consisted of the TC-83 3' untranslated region up to the corresponding SphI site in the parent pVDG vector. The triple-gene vector was designated "pVTG" to distinguish it from the related vectors pVEK, pVHV, and pVDG.

[0218] The sequences of selected HA (Table 1a: EUHA1-3, EUHA1-2, EUHA1-5, EUHA1-15, EUHA1-17, EUHA1-8, EUHA1-11, and HA3-4) or NA (Table 1b: EUNA1-2, EUN1-4, EUN2-6, and EUN2-7) genes from Examples 1 and 3 were used to synthesize multiple HA or NA genes in the plasmid vectors pVDG or pVTG as described above.

[0219] TC-83 RNA replicon particles (RP) were produced according to previously described methods [U.S. Patent No. 9,441,247 B2 and U.S. Patent No. 8,460,913 B2, the contents of which are incorporated herein by reference]. Briefly, pVDG or pVTG replicon vector DNA and helper DNA plasmids were linearized with NotI restriction enzyme before in vitro transcription using MegaScript T7 RNA polymerase and cap analogs. Importantly, the helper RNA used for production lacks the VEE subgenomic promoter sequence, as previously described [Kamrud et al., J Gen Virol. 91(Pt 7):1723-1727(2010)]. Purified RNA for the replicon and helper components was combined, mixed with a suspension of Vero cells, electroporated into a 4 mm cuvette, and returned to serum-free culture medium. After overnight incubation, alphavirus RNA replicon particles were purified from the cells and medium by passing the suspension through a depth filter, washing with phosphate-buffered saline containing 5% sucrose (w / v), and finally eluting the retained RP with 200 mM NaSO + 5% sucrose (w / v) buffer. Alternatively, the cells and medium were centrifuged in the presence of prepared Cellufine Sulfate® resin, washed with phosphate-buffered saline containing 5% sucrose (w / v), and eluted with 200 mM NaSO + 5% sucrose (w / v) buffer. The eluted RP was passed through a 0.22 micron membrane filter and aliquoted for storage. The titer of functional RP was determined by immunofluorescence assay on infected Vero cell monolayers.

[0220] The following replicon particles were constructed and used in the experiments.

[0221] [Table 1]

[0222] [Table 2]

[0223] Unless otherwise indicated in the examples or figures, the following strains and lineages were used for the HI assays:

[0224] [Table 3]

[0225] [Table 4]

[0226] [Table 5]

[0227] [Table 6]

[0228] General Study Design Approximately 5-week-old healthy pigs (3 pigs per vaccine) that are seronegative or have low antibody levels to SIV will receive an RNA particle vaccine encoding single or multiple HA or NA genes at a dose of 5–10 × 10 per pig. 6The mice were vaccinated intramuscularly with Xsolve 50 adjuvant. Each vaccination was repeated at approximately 8 weeks of age, and blood samples were collected at approximately 9 weeks of age to quantify the levels of antigen-specific antibody levels using either hemagglutination inhibition (HI) or neuraminidase inhibition (NI) assays.

[0229] Hemagglutination Inhibition (HI) Assay: All serum samples were heat-inactivated at 56°C for 30 minutes, then treated with 0.25% periodate, followed by 0.75% glycerol, and adsorbed with 2.6% chicken red blood cells to remove nonspecific agglutinins. For HI antibody titration, serial dilutions of the pretreated serum were incubated for 1 hour with 8 hemagglutinating units of the SIV strains listed in Table 1c or Table 1d as the HA antigen. The mixtures were then incubated with 0.2% chicken red blood cells for 1 hour at room temperature, and the plates were read for inhibition of agglutination. The reciprocal of the highest serum dilution that completely inhibited hemagglutination was assigned as the HI titer and expressed as a logarithmic base 2 value.

[0230] Serum Neuraminidase (NA) Inhibition (NI) Assay: SIV strains expressing NA antigens were electroporated with replicon RNA encoding the respective NA genes (Tables 1e and 1f) from Vero cell lysates. The enzymatic activity of these NAs was quantified by sialic acid cleavage from fetuin in 96-well plates during overnight incubation at 37°C. Peanut agglutinin-horseradish peroxidase conjugate (PNA-HRP) was then added for 2 hours at room temperature to bind to the desialylated fetuin molecules. Signal was obtained using 3,3',5,5'-tetramethylbenzidine (TMB) substrate and read at 450 nm. Test antigens were titrated to determine the dilution that yielded 70% of the maximum signal. Equal amounts of NA antigen were added to serial dilutions of serum in fetuin-coated wells during overnight incubation at 37°C. Optical density (OD) values ​​were normalized to those from positive control wells without serum. Neuraminidase inhibitory titers were defined as the reciprocal of the interpolated serum dilution having an absorbance value equal to 50% inhibition compared to the control and were expressed as log base 2 values.

[0231] The correlation between neuraminidase and hemagglutinin antibody titers and vaccine-induced protection against SIV-A has been described in the following: Hobson D. et al., J Hyg (Lond) 70, 767-777 (1972); Ohmit SE, et al., J. Infect. Dis 204, 1879-1885 (2011); Walz L, et al., J Virol. 2018; 92(17): e01006-18. (2018). Therefore, the serological results of the Hi and Ni inhibition assays described in the following examples indicate prevention of disease caused by SIV-A.

[0232] [Example 1] Hemagglutination Inhibition (HI) Antibody Titers Induced by RPs Encoding Single HA Antigens To determine the protective and cross-protective potential of alphavirus RNA RPs encoding single HA antigens from each of the strains EurAsianAvian (EA), Gent / 84, Scot / 94, and pdm09, the following studies were performed.

[0233] Five-week-old pigs (3 per group) were vaccinated with each RNA particle in XSolve50 adjuvant in a prime-boost regimen spaced approximately 3 weeks apart. Serum was collected 1–2 weeks after the booster vaccination to determine influenza antigen-specific hemagglutination-inhibition antibody titers, a correlate of protection against influenza. The HI assay measures the highest dilution of serum that prevents influenza virus-induced hemagglutination of red blood cells. The reciprocal of this dilution was defined as the HI titer on a Log2 basis. Reported values ​​are the average of three animals. The detection limit of this assay is 4 (dotted line in the figure); therefore, titers less than 4 are reported as 3 in the figure.

[0234] The results of the HI experiments are shown in Figures 1 to 4. The following conclusions can be drawn:

[0235] Figure 1: RP strain EUHA1-3 of the EA lineage showed the highest antigen-specific HI antibody titers against almost all IAS EA antigens tested, followed by EUH1-5 and EUH1-2. Furthermore, cross-reactive titers against some Scot / 94 and pdm09 HA antigens could be observed. None of the strains tested showed cross-reactive titers against Gent / 84 IAS antigens (all HI titers below 4).

[0236] Figure 2: RP of strain EUHA1-15 showed the highest antigen-specific HI antibody titers against almost all Scot / 94 antigens tested, followed by EUH1-17, thus performing best for Scot / 94 antigens from branches 2 and 3. RP of strain EUHA1-8 showed the highest antigen-specific HI antibody titers against Scot / 94 antigens from branch 1 tested. Furthermore, cross-reactive titers against some EA and pdm09 HA IAS antigens could be observed. None of the strains tested showed cross-reactive titers against Gent / 84 IAS antigens (all HI titers below 4).

[0237] Figure 3: RP of strain EUHA1-11 of the Pdm09 lineage showed the highest antigen-specific HI antibody titers against almost all pdm09 antigens. Furthermore, cross-reactive titers against most EA and Scot / 94 HA antigens were observed. None of the strains tested showed cross-reactive titers against Gent / 84 IAS antigens (all HI titers <4).

[0238] Figure 4: RP of Gent / 84 lineage strain EUHA3-4 showed the highest antigen-specific HI antibody titers to all Gent / 84 antigens tested. No significant cross-reactive titers to the HA antigens of EA, Scot / 94, and pdm09 antigens were observed.

[0239] [Example 2] Hemagglutination inhibition (HI) antibody titers induced by RP encoding dual HA antigens: 1) HA antigens of pdm09 and Gent / 84 strains; or 2) HA antigens of EA and Scot / 94 antigens To determine the serological efficacy of an alphavirus RNA RP encoding the dual e HA antigen in combination, a study was conducted using the design described in Example 1.

[0240] The results of the HI assay are shown in Figure 5. The following conclusions can be drawn:

[0241] It could be observed that not all the combinations tested induced a strong serological response. Furthermore, it could be surprisingly observed that the order of the genes in the viral genome of the replicon particle is important for inducing a serological response.

[0242] Combination of HA antigens from strains Pdm09 and Gent / 84: Only the combination of Gent / 84 placed first and pdm09 placed second in the viral genome of the replicon particle induced a strong serological response. Instead, when Pdm09 was placed first and Gent / 84 was placed second in the viral genome of the replicon particle, a much lower serological response to the Gent / 84 HA antigen and a very weak serological response to the Pdm09 HA antigen were observed.

[0243] Combinations of HA antigens of strains EA and Scot / 94: Not all combinations tested induced strong serological responses. The combination of strains EUHA1-17 of Scot / 94 and EUHA1-3 of EA showed the best serological response (highest HI titers against IAS antigens of both strains).

[0244] Furthermore, only the combination of Scot / 94 placed first and EA placed second in the replicon RNA of the replicon particle induced a strong serological response. Alternatively, when EA was placed first and Scot / 94 was placed second in the replicon RNA of the replicon particle, no significant serological response to the EA HA antigen was observed.

[0245] Among the various combinations tested, the EUHA3-4 + EUHA1-11 and EUHA1-17 + EUHA1-3 strain combinations induce the best immunity, measured as HI titers. Therefore, these combinations are advantageously used in formulations that combine two replicon particles, i.e., a first RNA replicon particle encoding the EUHA3-4 + EUHA1-11 strains in this order, and a second RNA replicon particle encoding the EUHA1-17 + EUHA1-3 strains in this order.

[0246] As a result, it could surprisingly be demonstrated that the position of the HA gene within the RNA replicon particle and / or the particular combination of HA antigens determines the level of induced immunity, measured as an HI titer.

[0247] [Example 3] Neuraminidase inhibitor (NI) antibody titers induced by RP encoding a single NA antigen To determine the serological efficacy of alphavirus RNA RPs encoding the single NA antigens of each of the strains EurAsianAvian (EA), Gent / 84, Scot / 94, and pdm09, the following studies were performed.

[0248] Five-week-old pigs (three per group) were vaccinated with each RNA replicon particle in a prime-boost regimen with XSolve50 adjuvant at approximately three-week intervals. Serum was collected 1–2 weeks after the booster vaccination to determine influenza antigen-specific neuraminidase inhibitor (NI) antibody titers. NI titers were measured using a lectin (peanut agglutinin)-based assay as described above, and the reciprocal of the highest serum dilution that inhibited NA activity by at least 50% compared to control wells was defined as the NI titer. The detection limit of this assay was 2 (dotted line in the figure).

[0249] The results of the NI experiments are shown in Figures 7 to 10. The following conclusions can be drawn:

[0250] Figure 7: RP of strain EUNA1-2 of the EA lineage showed the highest antigen-specific NI antibody titers against almost all EA antigens of IAS tested. Furthermore, cross-reactivity against some Scot / 94, pdm09, and Gent / 84 NA antigens could be observed.

[0251] Figure 8: RP of strain EUNA1-4 showed the highest antigen-specific NI antibody titers against most pdm09 antigens tested, but the observed NI titer levels were lower compared to those achieved with RP of the EA strain. Furthermore, cross-reactive titers against EA, Scot / 94, and Gent / 84 NA IAS antigens could be observed. The differences in titers measured between the strains tested were low.

[0252] Figure 9: RP of strain EUNA2-6 of the Scot / 94 lineage showed the highest antigen-specific NI antibody titers against all Scot / 94 antigens tested. Furthermore, high levels of cross-reactivity against EA, pdm09, and Gent / 84 NA antigens could be observed for strain EUNA2-6.

[0253] Figure 10: RP of strain EUNA2-7 of the Gent / 84 lineage showed high antigen-specific NI antibody titers to all Gent / 84 antigens tested and also showed significant cross-protection to NA antigens of EA, Scot / 94 and pdm09 antigens.

[0254] [Example 4] NI antibody titers induced by RP encoding double or triple NA antigens To determine the serological efficacy of alphavirus RNA RPs encoding double or triple NA antigens, RPs encoding NA antigens from the lineages listed below were designed and generated and studied using the designs described in Example 3. 1) EA and Gent / 84 strain NA antigens, or 2) NA antigens of EA, Gent / 84 and Scot / 94 antigens

[0255] The results of the NI experiments are shown in Figure 11. The following conclusions can be drawn:

[0256] It was possible to show that all tested combinations induced a serological response regardless of the gene order. Thus, surprisingly, in contrast to the observations made with the HA antigen (see Example 2 above), it was possible to observe that the order of the NA genes in the viral genome of the replicon particle is not important for the induction of a serological response.

[0257] [Example 5] NI antibody titers induced by RP encoding double and triple NA antigens The results shown in Figures 7-10 reveal that a combination of strains from the EA lineage, Gent / 84 lineage, and Scot / 94 lineage should provide the best protection against IAS, with the best protection and cross-protection against all four lineages. Therefore, the best candidate for testing such cross-protection is the combination of strain EUNA2-6 from the Scot / 94 lineage and strain EUNA2-7 from the Gent / 84 lineage, which may then be further combined with a strain from either the EA lineage, e.g., strain EUNA1-2, or the pdm09 lineage, e.g., strain EUNA1-4. Consequently, these combinations of strains were tested for their serological responses.

[0258] therefore, 1) NA antigens of EA and Gent / 84 strains 2) NA antigens of Scot / 94, Gent / 84, and EA antigens or 3) NA antigens of Scot / 94, Gent / 84, and pdm09 antigens To determine the protection of alphavirus RNA RPs encoding dual and triple NA antigen combinations, studies were conducted using the design described in Example 3.

[0259] The results are shown in Figure 12.

[0260] In contrast to the results observed for HA antigens, the combination of NA antigens from only three lineages is sufficient to induce serological responses against all four IAS lineages.

[0261] · Weak serological responses against all four IAS lineages could already be achieved with combinations of NA antigens from only two lineages, regardless of the gene order of the RNA replicon particles.

[0262] The best serological responses could be achieved with NA antigens of either the pdm09 or EA lineages in combination with the Scot / 94 and Gent / 84 NA antigen combination.

[0263] [Table 7]

[0264] [Example 6] Evaluation of vaccine efficacy of multivalent IAV-S vaccines A study was conducted to determine the immunogenicity and efficacy of a multivalent IAV-S vaccine containing two double HA RPs (EUSIV-T8 RP encoding EUHA1-17 and EUHA1-3 antigens, and EUSIV-K RP encoding EUH3-4 and EUH1-11 antigens; Tables 1a and 2) and one triple NA construct (EUSIV-R encoding EUN2-6, EUN1-2, and EUN2-5 antigens; Tables 1b and 2). The adjuvanted vaccine was administered to five pigs in two intramuscular (IM) vaccinations at 5 and 8 weeks of age (2 mL per dose; 3 × 5 × 10 RP per dose, vaccinated). An equal number of non-vaccinated pigs received adjuvanted phosphate-buffered saline. Vaccine immunogenicity was measured by quantifying HI and NI titers in serum samples collected before experimental infection at 10 weeks of age. Vaccine efficacy was tested against Gent / 84 [A / swine / Belgium / 113 / 2013 (H3N2)] challenge infection by the intratracheal route at 10 weeks of age (study day 32). Vaccine efficacy against IAV-S infection-induced fever, i.e., elevated rectal temperature, and lung lesions 3 days postinfection was measured.

[0265] The results of this experiment are shown in Figures 13A, 13B, 13C, and 13D. The multivalent IAV-S vaccine induced functional HI titers against heterologous IAV-S strains belonging to all four lineages (Figure 13A) and NI titers against homologous NA antigens of all three lineages (Figure 13B). Furthermore, the multivalent IAV-S vaccine protected pigs from elevated rectal temperatures, fever (Figure 13C), and lesions (Figure 13D) induced by experimental infection. These results demonstrate that the tested multivalent IAV-S was both immunogenic and effective.

[0266] [Example 7] Assessment of vaccine efficacy after ID administration A study was conducted to determine the serological efficacy of a multivalent IAV-S vaccine containing two double HA RPs (EUSIV-T8 RP encoding EUHA1-17 and EUHA1-3 antigens, and EUSIV-K RP encoding EUH3-4 and EUH1-11 antigens; Tables 1a and 2) and one triple NA construct (EUSIV-R encoding EUN2-6, EUN1-2, and EUN2-5 antigens; Tables 1b and 2). The adjuvanted vaccine was administered intradermally (ID) to three pigs at 5 and 8 weeks of age using an IDAL® needleless injector (200 μL per dose; 3 × 3 × 10 RP per dose, vaccinated). An equal number of non-vaccinated pigs received adjuvanted phosphate-buffered saline. Vaccine immunogenicity was measured by quantifying HI and NI titers in serum samples collected at 10 weeks of age.

[0267] The results of this experiment are shown in Figures 14A and 14B. The multivalent IAV-S vaccine induced functional HI titers against heterologous IAV-S strains belonging to three of the four lineages tested (Figure 14A) and NI titers against two of the three homologous NA antigens tested (Figure 14B). These results demonstrate that intradermal application of the multivalent IAV-S vaccine is also effective.

Claims

1. 1. A nucleic acid construct for use in preventing disease caused by swine influenza A virus (IAV-S) in a subject, the nucleic acid construct comprising, in 5' to 3' order: A / swine / Scotland / 410440 / 1994 H1 hu a first nucleic acid sequence encoding a first hemagglutinin (HA) antigen of IAV-S of the N2 (Scot / 94) lineage; and European Avian H1 av a second nucleic acid sequence encoding a second HA antigen of IAV-S of the N1(EA) lineage.

2. 2. The nucleic acid construct for use according to claim 1, wherein the first HA antigen is from strain A / swine / Italy / 3033-1 / 2015 (H1N2).

3. A nucleic acid construct for use as described in claim 1 or 2, wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 3 or an amino acid sequence having at least 90% sequence identity thereto.

4. The nucleic acid construct for use according to any one of claims 1 to 3, wherein the second HA antigen is from strain A / swine / Italy / 28762-3 / 2013 (H1N1).

5. The nucleic acid construct for use according to any one of claims 1 to 4, wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 6 or an amino acid sequence having at least 90% sequence identity thereto.

6. 1. A nucleic acid construct for use in preventing disease caused by swine influenza A virus (IAV-S) in a subject, the nucleic acid construct comprising, in 5' to 3' order: a first nucleic acid sequence encoding a first HA antigen of IAV-S of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and a second nucleic acid sequence encoding a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage.

7. 7. The nucleic acid construct for use according to claim 6, wherein the first HA antigen is from strain A / swine / Italy / 240849 / 2015 (H3N2).

8. A nucleic acid construct for use as described in claim 6 or 7, wherein the first HA antigen encoded by the first nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 9 or an amino acid sequence having at least 90% sequence identity thereto.

9. The nucleic acid construct for use according to any one of claims 6 to 8, wherein the second HA antigen is from strain A / swine / England / 373 / 2010 (H1N1).

10. The nucleic acid construct for use according to any one of claims 6 to 9, wherein the second HA antigen encoded by the second nucleic acid sequence comprises the amino acid sequence of SEQ ID NO: 12 or an amino acid sequence having at least 95% sequence identity thereto.

11. An RNA replicon particle comprising the nucleic acid construct according to any one of claims 1 to 5.

12. An RNA replicon particle comprising the nucleic acid construct according to any one of claims 6 to 10.

13. The RNA replicon particle of claim 11 or 12, which is an alphavirus RNA replicon particle.

14. The RNA replicon particle of claim 13, which is a Venezuelan equine encephalitis (VEE) alphavirus RNA replicon particle.

15. An immunogenic composition comprising the RNA replicon particle according to any one of claims 11 to 14.

16. 16. The immunogenic composition of claim 15, comprising the RNA replicon particles of claims 11 and 12.

17. The immunogenic composition of claim 16, wherein the RNA replicon particles of claims 11 and 12 are administered simultaneously.

18. A vaccine comprising the immunogenic composition of any one of claims 15 to 17.

19. 19. The vaccine of claim 18, which is an adjuvant-free vaccine.

20. 19. The vaccine of claim 18, comprising an adjuvant selected from the group consisting of a biodegradable oil, an oil-in-water emulsion comprising 2.5 to 50% (v / v) mineral oil, and a biodegradable oil mixed with an oil-in-water emulsion comprising 2.5 to 50% (v / v) mineral oil.

21. 21. The vaccine of any one of claims 18 to 20 for use in the prevention of disease caused by swine influenza A virus in a subject.

22. A method of immunizing pigs against swine influenza A virus, comprising administering to said pigs an immunologically effective amount of a vaccine according to any one of claims 18 to 20. method.

23. A nucleic acid construct, the nucleic acid sequence of which, in 5' to 3' order, comprises: A / swine / Scotland / 410440 / 1994 H1 hu a first nucleic acid sequence encoding a first HA antigen of a swine influenza A virus (IAV-S) of the N2 (Scot / 94) lineage; and European Avian H1 av a second nucleic acid sequence encoding a second HA antigen of IAV-S of the N1(EA) lineage.

24. A nucleic acid construct, the nucleic acid sequence of which, in 5' to 3' order, comprises: a first nucleic acid sequence encoding a first HA antigen of IAV-S of the A / swine / Gent / 1 / 1984-like H3N2 (Gent / 84) lineage; and A nucleic acid construct comprising a second nucleic acid sequence encoding a second HA antigen of IAV-S of the A(H1N1)pdm09 (pdm09) lineage.

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