WO2021243328A1 - Methods of using hsv-2 single cycle virus delta-gd and hsv-2 recombinant glycoprotein d - Google Patents
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- C12N2710/16011—Herpesviridae
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- C12N2710/00011—Details
- C12N2710/16011—Herpesviridae
- C12N2710/16611—Simplexvirus, e.g. human herpesvirus 1, 2
- C12N2710/16671—Demonstrated in vivo effect
Definitions
- HSV-1 Herpes simplex vims 1
- HSV-2 herpes simplex virus 2
- HSV- 1 infects approximately 67% of the population by 49 years of age and is the primary cause of oral and ocular disease, a leading cause of infectious comeal blindness and fatal infectious encephalitis, and has emerged as the more common cause of genital disease in the developed world (Looker, K. J. et al., PLoS ONE 2015, 10, el 14989-23; Lafferty, W. E. et al, Journal of Infectious Diseases 2000, 181, 1454-1457; Roberts, C. M.
- HSV-2 is estimated to over 400 million people worldwide, is the primary cause of genital disease in the developing world and a major risk factor for HIV acquisition and transmission (Looker, K. J. et al., PLoS ONE 2015, 10, el 14989-23).
- nAbs neutralizing antibodies
- gD-2 protein vaccine formulated with a proprietary aluminum hydroxide (alum) and monophosphoryl lipid A adjuvant, gD-2- AS04 (GlaxoSmithKline).
- HSV-2 replication- defective HSV-2 strain deleted in two genes involved in viral replication (UL5 and UL29), designated dl5-29 (HSV529, Sanofi Pasteur) (Dropulic, L. K., et al, Journal of Infectious Diseases 2019, 220, 990-1000).
- the vaccine was safe, induced nAb and T cell responses and reduced the establishment of latency in the peripheral nerves (Da Costa, X. J. E. A., et ah, J. Virol. 2000, 74, 7963-7971; Da Costa, X. J. E.
- the Phase I study also found that the vaccine was safe and elicited a >4-fold increase in nAb responses in HSV seronegative participants, but no sustained increase in nAb responses in seropositive participants. Moreover, only a subset of participants elicited significant CD4 and even fewer CD8 T cell responses (Dropulic, L. K., et ah, Journal of Infectious Diseases 2019, 220, 990-1000).
- a single-cycle HSV-2 strain deleted in glycoprotein D has been developed to generate a single-cycle candidate HSV-2 vaccine strain designated ⁇ gD-2.
- this vaccine strain ⁇ gD-2, elicited high-titer non-neutralizing Abs that activate Fc gamma receptors (FcyRs) to induce antibody-dependent cell-mediated cytotoxicity (ADCC).
- FcyRs Fc gamma receptors
- ADCC antibody-dependent cell-mediated cytotoxicity
- ⁇ gD-2 boosted the total and the ADCC Ab responses in HSV-1 seropositive mice and prevented subsequent lethal HSV-2 superinfection (Bum Aschner, C., et ah, npj Vaccines 2020, 1-33).
- a method of vaccinating a subject against a herpes simplex virus-2 (HSV-2) infection or a disease caused by an HSV-2 infection comprising administering to the subject an effective amount of an HSV-2 single-cycle virus and an effective amount of a recombinant HSV-2 glycoprotein D to vaccinate the subject for the HSV-2 infection or the disease caused by the HSV-2 infection, wherein the HSV-2 single-cycle vims comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- HSV-2 single-cycle vims comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- a method of immunizing a subject against herpes simplex virus-2 (HSV-2) infection or a disease caused by an HSV-2 infection comprising administering to the subject an effective amount of an HSV-2 single-cycle virus and an effective amount of a recombinant HSV-2 glycoprotein D to immunize the subject for the HSV-2 infection or the disease caused by the HSV-2 infection, wherein the HSV-2 single-cycle vims comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- HSV-2 single-cycle vims comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- a method of treating or preventing an HSV-2 infection in a subject or treating or preventing a disease caused by an HSV-2 infection in a subject comprising administering to the subject an effective amount of an HSV- single-cycle virus 2 and an effective amount of a recombinant HSV-2 glycoprotein D to treat or prevent the HSV-2 infection or the disease caused by the HSV-2 infection in the subject, wherein the HSV-2 single-cycle virus comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- FIGs 1 A- II Immunogenicity of viral and adjuvanted subunit HSV vaccines is modulated by vaccination route.
- Female C57BL/6 mice were vaccinated twice, three weeks apart with 5 x 10 4 , 5 x 10 5 or 5 x 10 6 pfu/mouse of dl5-29 or ⁇ gD-2 or 5 ⁇ g gD-2-Alum/MPL subcutaneously (sc), intramuscularly (im) or intradermally (id).
- mice were retro-orbitally bled and serum was tested for (Figs. 1A-C) total HSV- specific IgG by ELISA, (Figs.
- Asterisks denote significance, * p ⁇ 0.05, ** p ⁇ 0.01, *** p ⁇ 0.001, **** p ⁇ 0.0001 by ANOVA.
- FIG. 2A-2J Differences in immunogenicity based on vaccine dose and route translate to differences in protection.
- Female C57BL/6 mice were vaccinated twice, three weeks apart with 5 x 10 4 , 5 x 10 5 or 5 x 10 6 pfu/mouse of d.15-29 or ⁇ gD-2 or 5 ⁇ g gD-2-Alum/MPL subcutaneously (sc), intramuscularly (im) or intradermally (id).
- mice were challenged on the skin with 10 x LD90 HSV-2 SD90. Disease scores over time are shown for gD-2-Alum/MPL (Fig. 2A), dl5-29 (Figs.
- Figs. 2D-2J Percentage survival is shown in Figs. 2D-2J.
- FIG. 3A-3C HSV DNA detection in the sacral nerve parallels survival data.
- Female C57BL/6 mice vaccinated with 5 ⁇ g rgD-2-Alum/MPL, or 5 x 10 5 pfu/mouse of dl5-29 or ⁇ gD-2 by the sc, im or id routes were challenged in the skin with 10 x LD90 HSV-2 SD90. Following challenge, mice were monitored daily for fourteen days and sacral nerve tissue was harvested at the time of death for mice that succumbed to challenge, or at D14 post challenge for surviving animals.
- HSV DNA in the sacral ganglia was assessed by qPCR and the number of copies of HSV-2 DNA per 10 ng of DNA is shown in (Fig.
- FIGs 4A-4D Kinetics of the T cell response following HSV vaccination.
- Female C57BL/6 mice were vaccinated i.m. twice, three weeks apart, with 5 x 10 5 pfu/mouse of ⁇ gD-2 or 5 ⁇ g gD-2-alum/MPL.
- mice were retro-orbitally bled and assessed for CDlla + CD49d + activated CD4 and CD8 T cells.
- FIGs. 4C-D Gating strategy is shown for the assessment of CD4 and CD8 T cell activation (Figs. 4A-B).
- FIG. 5A-5G Figures 5A-5G.
- ⁇ gD-2 vaccination induces polyfunctional CD4 and CD8 T cells that produce IFN-g, TNF and IL-2 in response to HSV-2 stimulation.
- Female C57BL/6 mice were vaccinated i.m twice, three weeks apart, with 5 x 10 5 pfu/mouse of ⁇ gD-2 and 5 ⁇ g gD-2- alum/MPL.
- Splenocytes from vaccinated mice were collected two weeks following boost vaccination and stimulated with PHA or UV-inactivated HSV-2 SD90 for 18 hours with Brefeldin A treatment before staining and flow cytometric analysis for the production of IFN-g, TNF and IL-2.
- Gating strategy is shown in (Fig.
- FIGs 6A-6D The generation of neutralizing antibody enhances protection by low-dose ⁇ gD-2.
- Female C57BL/6 mice were subcutaneously vaccinated twice, three weeks apart with 5 x 10 4 pfu/mouse of ⁇ gD-2, 5 ⁇ g gD-2-Alum/MPL or a combination of both vaccines delivered on opposite flanks (opposite) or at the same site (same).
- mice were retro-orbitally bled and serum was assessed for total HSV- specific IgG by ELISA (Fig. 6A), neutralizing titer (Fig. 6B), and FcyRIV activation (Fig. 6C).
- A-C *p ⁇ 0.05, **p ⁇ 0.01, ***p ⁇ 0.001, ****p ⁇ 0.0001 by ANOVA. For survival curves, * p ⁇ 0.05, *** p ⁇ 0.001 by Gehan Breslow Wilcoxon test.
- Vaccine immunogenicity is impacted by how the viral antigens are presented by the vaccine (attenuated, replication-defective, single-cycle, inactivated vims, or adjuvanted subunit protein), as well as the dose and route of administration.
- the immunization route is often based on pragmatic rather than immunologic considerations.
- ⁇ gD-2 co-administration of ⁇ gD-2 and recombinant HSV-2 glycoprotein D (rgD-2) does not interfere with the immunogenicity of either vaccine.
- administration of adjuvanted rgD-2 and a relatively low dose of ⁇ gD-2 delivered simultaneously to the same or opposite flank does not interfere with the immunogenicity of either vaccine and is more protective than the adjuvanted rgD-2 alone.
- the combination of low dose ⁇ gD-2 with rgD-2 provides additive protection.
- terapéuticaally effective amount or “effective amount” or “amount effective” refers to a quantity of a specific substance sufficient to achieve a desired effect in a subject.
- “Treat” or “treating,” means to administer a vaccine of the disclosure or a product of the disclosure to a subject or patient having one or more disease symptoms, or being suspected of having a disease, for which the vaccine or product has therapeutic activity or prophylactic activity.
- the vaccine or product can be administered in an amount effective to alleviate one or more disease symptoms in the treated subject, whether by inducing the regression of or inhibiting the progression of such symptom(s) by any clinically measurable degree.
- the terms further includes a postponement of development of the symptoms associated with a disorder and/or a reduction in the severity of the symptoms of such disorder.
- the terms further include ameliorating existing uncontrolled or unwanted symptoms, preventing additional symptoms, and ameliorating or preventing the underlying causes of such symptoms.
- Preventing means administering an amount of a vaccine of the disclosure or a product of the disclosure sufficient to significantly reduce the likelihood of a disease from occurring in a subject who may be predisposed to the disease but who does not have it.
- preventing includes administering an amount of the vaccine or an immune product resulting from administration of the vaccine to a subject known to be at enhanced risk of viral infection.
- adjuvant means any component added to a vaccine that augments, enhances and/or boosts the immune response to an antigen, but when the administered alone does not generate an immune response.
- HSV infection is a herpes simplex virus-2 (HSV-2) infection, a herpes simplex virus- 1 (HSV-1) infection, or a HSV-1 and HSV-2 co-infection.
- HSV infection is a herpes simplex virus-2 (HSV-2) infection.
- the disease caused by HSV-1 infection, HSV-2 infection, or HSV-1 and HSV-2 co-infection includes herpes, oral herpes, herpes whitlow, genital herpes (genital ulcer), eczema herpeticum, herpes gladiatorum, HSV keratitis, HSV retinitis, HSV encephalitis or HSV meningitis.
- the disease caused by the HSV infection is a genital ulcer.
- the methods disclosed herein comprise administering to the subject an effective amount of an HSV-2 single-cycle virus and an effective amount of a recombinant HSV-2 glycoprotein D (rgD-2).
- the HSV-2 single-cycle vims is an HSV-2 having a deletion of the HSV-2 glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- the HSV-2 glycoprotein D-encoding gene is the Us6 gene of HSV-2, and is either fully or partially deleted in the HSV-2 genome. In an aspect, the HSV-2 glycoprotein D-encoding gene is fully deleted in the HSV-2 genome.
- the HSV-1 glycoprotein D is not encoded for by the HSV-2 genome.
- the HSV-2 having the deletion of HSV-2 glycoprotein D is phenotypically complemented with the HSV-1 glycoprotein D by propagating the HSV-2 having the deletion of the HSV-2 glycoprotein D-encoding gene in a cell which has been transfected to express the HSV-1 gD.
- a complete description of the HSV-2 single-cycle virus is found in WO 2015/134368, which is incorporated herein by reference.
- HSV-2 single-cycle virus having a deletion of the HSV-2 glycoprotein D- encoding gene in the genome of the HSV-2, and which is phenotypically complemented with the HSV-1 glycoprotein D by propagating the HSV-2 in a complementing cell expressing the HSV-
- HSV-2 ⁇ gD-2 or “ ⁇ gD-2” or “HSV-
- rgD-2 The recombinant HSV-2 glycoprotein D is referred to herein interchangeably as “rgD-2” or “recombinant HSV-2 gD” or “recombinant gD-2.”
- the recombinant HSV-2 gD is combined with an adjuvant, and the adjuvanted recombinant HSV-2 gD is administered to the subject.
- the type of adjuvant is not limited, and can be any adjuvant capable of augmenting, enhancing, and/or boosting the immune response of the subject to the recombinant HSV-2 gD relative to administration of non- adjuvanted recombinant HSV-2 gD (e.g., soluble recombinant HSV-2 gD).
- Non-limiting examples of an adjuvant include alum, potassium aluminum sulfate, aluminum hydroxide, aluminum hydroxy phosphate sulfate (AAHS), aluminum phosphate, calcium phosphate hydroxide, squalene, plant saponins from Quillaja (e.g., Quil ATM), soybean, or Polygala senega , monophosphoryl lipid A (MPL), Freund's adjuvant (complete or incomplete), an oil in water emulsion containing a non-metabolizable oil, paraffin oil (e.g., EMULSIGENTM, MVP Laboratories, Ralston, Nebr.), mineral oil, plant or vegetable oil, squalane or squalene (e.g.
- Adjuvants can be used with or without other specific immunostimulating agents such as 3-DMP, polymeric or monomeric amino acids such as poly glutamic acid or poly lysine, or other immunopotentiating agents.
- HSV-1 herpes simplex virus-1
- HSV-2 herpes simplex virus-2
- HSV-1 and HSV-2 co-infection methods of vaccinating a subject against a disease caused by HSV-1 infection, HSV-2 infection, or HSV-1 and HSV-2 co-infection.
- a method of vaccinating a subject against an HSV-1 infection, an HSV-2 infection, or an HSV-1 and HSV-2 co-infection or a disease caused by HSV-1 infection, HSV-2 infection, or HSV-1 and HSV-2 co-infection comprises administering to the subject an effective amount of the recombinant HSV-2 singlecycle vims and an effective amount of the recombinant HSV-2 glycoprotein D to vaccinate the subject for the HSV-2 infection, the HSV-1 infection, or the HSV-1 and HSV-2 co-infection.
- the HSV-2 single-cycle virus comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- a method of vaccinating a subject against herpes simplex virus-2 (HSV-2) infection or a disease caused by an HSV-2 infection comprises administering to the subject an effective amount of the HSV-2 single-cycle virus and an effective amount of the recombinant HSV-2 gD to vaccinate the subject for the HSV-2 infection or the disease caused by the HSV-2 infection.
- HSV-2 herpes simplex virus-2
- a method of vaccinating a subject against HSV-1 infection or a disease caused by the HSV-1 infection comprises administering to the subject an effective amount of the HSV-2 single-cycle virus and an effective amount of the recombinant HSV-2 gD to vaccinate the subject for the HSV-1 infection or the disease caused by the HSV-1 infection.
- a method of vaccinating a subject against an HSV-1 and HSV-2 co- infection or a disease caused by HSV-1 and HSV-2 co-infection comprises administering to the subject an effective amount of the HSV-2 single-cycle virus and an effective amount of the recombinant HSV-2 gD effective to vaccinate the subject for the HSV-1 and HSV-2 coinfection or the disease caused by the HSV-1 and HSV-2 co-infection.
- HSV-1 heipes simplex virus-1
- HSV-2 herpes simplex virus-2
- a method of immunizing a subject against a herpes simplex virus-1 (HSV-1) infection, a herpes simplex virus-2 (HSV-2) infection, or an HSV-1 and HSV-2 co-infection or a disease caused by HSV-1 infection, HSV-2 infection, or HSV-1 and HSV-2 co-infection comprises administering to the subject an effective amount of the recombinant HSV-2 single-cycle virus and an effective amount of the recombinant HSV-2 glycoprotein D to immunize the subject for the HSV-2 infection, the HSV-1 infection, or the HSV-1 and HSV-2 co-infection or the disease caused by HSV-1 infection, HSV-2 infection, or HSV-1 and HSV-2 co-infection.
- the HSV-2 single-cycle virus comprises HSV-2 having a deletion of glycoprotein D-encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- a method of immunizing a subject against HSV-2 infection or a disease caused by the HSV-2 infection comprises administering to the subject an effective amount of the recombinant HSV-2 single-cycle virus and an effective amount of the recombinant HSV-2 glycoprotein D to immunize the subject for the HSV-2 infection or the disease caused by the HSV-2 infection.
- Disclosed herein also are methods of preventing or treating an HSV-2 infection, an HSV-1 infection, or an HSV-2 and HSV-1 co-infection in a subject. Also disclosed are methods of preventing or treating a disease caused by an HSV-2 infection, an HSV-1 infection, or an HSV-2 and HSV-1 co-infection in a subject.
- a method of preventing or treating an HSV-2 infection, an HSV-1 infection, or an HSV-2 and HSV-1 co-infection in a subject comprises administering to the subject an effective amount of the HSV-2 single-cycle vims and an effective amount of the recombinant HSV-2 glycoprotein D to treat the subject for the HSV-2 infection, the HSV-1 infection, or the HSV-2 and HSV-1 co-infection.
- a method of preventing or treating a disease caused by an HSV-2 infection, an HSV-1 infection, or an HSV-2 and HSV-1 co-infection in a subject comprises administering to the subject an amount of the HSV-2 single-cycle virus and an amount of the recombinant HSV-2 glycoprotein D effective to treat the subject for the HSV-2 disease caused by the HSV-2 infection, the HSV-1 infection, or the HSV-2 and HSV-1 co- infection.
- the HSV-2 single-cycle vims comprises HSV-2 having a deletion of glycoprotein D- encoding gene in the genome and the HSV-2 is phenotypically complemented with an HSV-1 glycoprotein D on a lipid bilayer of the HSV-2.
- a method of treating or preventing a herpes simplex virus-2 (HSV-2) infection in a subject or treating a disease caused by an HSV-2 infection in a subject comprises administering to the subject an effective amount of the HSV-2 single-cycle virus and an effective amount of a recombinant HSV-2 glycoprotein D to treat the subject for the HSV-2 infection.
- HSV-2 herpes simplex virus-2
- the disclosed methods of vaccinating, immunizing, and/or treating a subject comprise administering an effective amount of a composition, a pharmaceutical formulation, or a vaccine comprising the HSV-2 single-cycle virus and administering an effective amount of a composition, a pharmaceutical formulation or a vaccine comprising the recombinant HSV-2 gD.
- the administering of the HSV-2 single-cycle virus and the recombinant HSV-2 glycoprotein D occurs at substantially the same time.
- substantially the same time refers to administration of the HSV-2 single-cycle virus and the recombinant HSV-2 gD within a short period of time of one another, for example, 1 second to 24 hours, 1 second to 12 hours, 1 second to 8 hours, 1 second to 4 hours, 1 second to 2 hours (120 minutes), 1 second to one hour (60 minutes), or 1 second to 30 minutes.
- the administering of the HSV-2 single-cycle virus occurs 1 second to 60 minutes before the administering of the recombinant glycoprotein D.
- the administering of the HSV-2 single-cycle virus occurs 1 second to 60 minutes after the administering of the recombinant glycoprotein D.
- the administering of the HSV-2 single-cycle vims and the recombinant HSV-2 gD occurs simultaneously, e.g., at the same time.
- simultaneous administration or administering simultaneously refer to instances in which there is no discernible time between the administering of the HSV-2 single-cycle virus and the recombinant HSV-2 gD.
- a composition or pharmaceutical formulation or vaccine comprising the HSV-2 single-cycle virus and a composition or pharmaceutical formulation or vaccine comprising the recombinant HSV-2 gD can be administered to the subject.
- the composition or pharmaceutical composition or vaccine comprising the HSV-2 single-cycle virus and/or the recombinant HSV-2 gD are formulated for administration to the subject.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD are present in different compositions, pharmaceutical formulations or vaccines for separate administration to the subject.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD are not present in the same composition, pharmaceutical formulation or vaccine.
- the disclosure is not necessarily limited thereto, and a composition, pharmaceutical formulation or vaccine including both the HSV-2 single-cycle virus and the recombinant HSV-2 gD may be used as long as the viability of the HSV-2 single-cycle virus is not compromised by any of the materials present therein.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD are formulated for separate administration to the subject and are administered to the subject at substantially the same time.
- the administering of the HSV-2 single-cycle virus occurs 1 second to 60 minutes before the administering of the recombinant gD.
- the administering of the HSV-2 single-cycle virus occurs 1 second to 60 minutes after the administering of the recombinant gD.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD are formulated for separate administration to the subject and are administered to the subject simultaneously.
- a composition, pharmaceutical formulation or vaccine comprising the HSV-2 single-cycle virus and a composition, pharmaceutical formulation or vaccine comprising the recombinant HSV-2 gD can be combined together prior to administration to the subject and administered simultaneously.
- a composition, pharmaceutical formulation or vaccine comprising the HSV-2 single-cycle virus and a composition, pharmaceutical formulation or vaccine comprising the recombinant HSV-2 gD can be administered to the subject by separate means (e.g., different syringes) at the same time.
- a composition, pharmaceutical formulation or vaccine comprising the HSV-2 single-cycle virus or the recombinant HSV-2 gD is formulated so that it is suitable for administration to a human subject.
- the composition or pharmaceutical formulation or vaccine is formulated to be suitable for the intended route of administration to a subject.
- the intended route of administration of the composition, pharmaceutical formulation or vaccine comprising the HSV-2 single-cycle virus can be the same as or different from the intended route of administration of the composition, pharmaceutical formulation or vaccine comprising the recombinant HSV-2 gD.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD are independently formulated for the same route of administration.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD are formulated for the different routes of administration ⁇
- the composition, pharmaceutical formulation or vaccine is formulated so that it is suitable for subcutaneous, intramuscular, intradermal, or intravaginal administration to a subject.
- administration can be auricular, buccal, conjunctival, cutaneous, subcutaneous, endocervical, endosinusial, endotracheal, enteral, epidural, via hemodialysis, interstitial, intrabdominal, intraamnio tic, intra-arterial, intra- articular, intrabiliary, intrabronchial, intrabursal, intracardiac, intracartilaginous, intracaudal, intracavernous, intracavitary, intracerebral, intracisternal, intracorneal, intracoronary, intradermal, intradiscal, intraductal, intraepidermal, intraesophagus, intragastric, intravaginal, intr
- the composition, pharmaceutical formulation or vaccine including the HSV-2 single-cycle virus and the composition, pharmaceutical formulation or vaccine including the recombinant HSV-2 gD are formulated for subcutaneous, intramuscular or intradermal administration by injection.
- the composition, pharmaceutical formulation or vaccine including the HSV-2 single-cycle virus can be administered in a same region or a different region as the composition, pharmaceutical formulation or vaccine including the recombinant HSV-2 gD.
- the HSV-2 single-cycle virus and the recombinant HSV-2 gD can be each be administered to the same or different limbs.
- compositions, pharmaceutical formulations, or vaccines disclosed herein can comprise an adjuvant.
- a composition, pharmaceutical formulation, or vaccine comprising the HSV-2 single cycle virus or the recombinant HSV-2 gD comprises an adjuvant.
- the compositions, pharmaceutical formulations, or vaccines disclosed herein can also include a pharmaceutically acceptable carrier.
- “pharmaceutically acceptable” means a substance approved by a regulatory agency of the Federal or a state government or listed in the U.S. Pharmacopoeia, other generally recognized pharmacopoeia in addition to other formulations that are safe for use in animals, and more particularly in humans and/or non-human mammals.
- pharmaceutically acceptable carrier refers to an excipient, diluent, preservative, solubilizer, emulsifier, adjuvant (also referred to as immunological adjuvant), and/or vehicle with which the present antibody or fragment is administered.
- Examples of pharmaceutically acceptable carriers include, but are not limited to, phosphate buffered saline solution, sterile water (including water for injection USP), emulsions such as oil/water emulsion, and various types of wetting agents.
- Preferred diluents for aerosol or parenteral administration are phosphate buffered saline or normal (0.9%) saline, for example 0.9% sodium chloride solution, USP.
- Compositions comprising such carriers are formulated by well-known conventional methods (see, for example, Remington's Pharmaceutical Sciences, 18th edition, A. Gennaro, ed., Mack Publishing Co., Easton, Pa., 1990; and Remington, The Science and Practice of Pharmacy 20th Ed.
- the carrier comprises one or more of dibasic sodium phosphate, potassium chloride, monobasic potassium phosphate, polysorbate 80 (e.g. 2- [2- [3 ,5 -bis(2- hydroxyethoxy)oxolan-2-yl]-2-(2-hydroxyethoxy)ethoxy]ethyl (E)-octadec-9-enoate), disodium edetate dehydrate, sucrose, monobasic sodium phosphate monohydrate, and dibasic sodium phosphate dihydrate.
- the pharmaceutically acceptable carrier is not limited as long as it is not incompatible with the viability of the HSV-2 single cycle virus or the stability and/or conformation of the recombinant HSV-2 gD.
- a composition, pharmaceutical formulation, or vaccine comprising the recombinant HSV-2 gD can comprise a stabilizer to prevent loss of activity or structural integrity of the protein due to the effects of denaturation, oxidation or aggregation over a period of time during storage and transportation prior to use.
- the composition, pharmaceutical formulation, or vaccine can further comprise a salt, a surfactant, a pH and/or tonicity agent, or a combination thereof.
- a pH value is in an approximately neutral pH range (a pH or 6.8 to 7.4).
- the composition, pharmaceutical formulation, or vaccine is in liquid form.
- the composition or pharmaceutical composition is isotonic.
- the subject is a subject in need of treatment or prevention of an HSV-2 infection, an HSV-1 infection, or an HSV-2 and HSV-1 co-infection.
- the subject can also be a subject in need of treatment or prevention of a disease caused by an HSV-2 infection, an HSV-1 infection, or an HSV-2 and HSV-1 co-infection.
- the subject is a mammalian subject.
- the subject is a human subject.
- the HSV-2 single cycle virus and recombinant HSV-2 gD can be formulated for administration to a human subject.
- the methods disclosed herein induce an immune response in the subject, which elicits antibodies, cellular immune responses, and/or other immune factors (e.g., complement) that minimize and/or prevent viral dissemination and/or viral infection in the subject.
- the immune response comprises the production of antibodies that activate Fc receptors (FcR-activating antibody) to mediate an antibody-dependent cellular cytotoxicity (ADCC) response.
- FcR-activating antibody activate Fc receptors
- ADCC antibody-dependent cellular cytotoxicity
- the administration of an effective amount of the HSV-2 singlecycle virus elicits the production of FcR-activating antibody (also referred to as antibody dependent cellular cytotoxicity (ADCC) antibody).
- the effective amount of HSV-2 single-cycle virus is an amount of plaque forming units (pfu) of the HSV-2 single-cycle virus which achieves the stated aim.
- Vero Green Monkey Kidney cells line, ATCC
- VD60 Limitotic Cell Line
- V5-29 V5-29
- DMEM Invitrogen, Carlsbad, CA
- FBS Hyclone, Logan, UT
- penicillin- streptomycin Invitrogen
- HSV-2 strain 4674 was obtained from the Montefiore Clinical Virology Lab (Petro, C. D., et al, JCI Insight 2016, 1, 1-15; Burn, C., et al, Journal of Infectious Diseases 2017, 1- 5). The viral isolates were propagated and titered on Vero cells (Petro, C. D., et al., JCI Insight 2016, 1, 1- 15).
- ⁇ gD-2 was propagated in complementing VD60 cells, and titered both on the VD60 and Vero cells (Petro, C., et al., eLife 2015; Petro, C. D., et al, JCI Insight 2016, 1, 1-15; Burn, C., et al., Journal of Infectious Diseases 2017, 1- 5; Kao, C. M., et al., Journal of Infectious Diseases 2019, 42, 47-10). D/5-29 was propagated on complementing V5-29 cells (Da Costa, X. J. E. A., et al., J. Virol.
- Recombinant gD-2 protein (5 ⁇ g) was provided by the Einstein Macromolecular Therapeutics Development Facility and adjuvanted with 150 ⁇ g alum (Imject Alum, Pierce Biotechnology, Rockland, IL) and 12.5 ⁇ g MPL (Invivogen, San Diego, CA) (rgD- 2/Alum-MPL) (Burn, C., et al., Journal of Infectious Diseases 2017, 1- 5).
- the recombinant gD- 2 is substantially the same as the recombinant gD-2 used in the AS04 vaccine (GlaxoSmithKline).
- mice Female C57BL/6 mice were vaccinated subcutaneously, intramuscularly or intradermally (two doses administered at three-week intervals) with 5 x 10 4 , 5 x 10 5 or 5 x 10 6 pfu ⁇ gD-2 or d 15-29 (based on viral titer on complementing cell line); 5 ⁇ g of rgD-2/Alum- MPL; or a combination of 5 x fO 4 pfu ⁇ gD-2 and 5 ⁇ g of rgD-2/Alum-MPL.
- a specialist intradermal microneedle designed for use in mice was used (Nanopass, Nes Ziona, ISR).
- mice were challenged on the skin with a 10 x lethal dose for 90% of animals (LD90) of HSV-2 SD90 (Petro, C., et al., eLife 2015). Mice were monitored daily for epithelial and neurological disease and scored as described. For skin disease: 1) erythema at inoculation site; 2) spread to distant site, zosteriform lesions, edema; 3) ulceration, epidermal spread, limb paresis; 4) hind limb paralysis and 5) death. Mice were euthanized at a score of 4 and assigned a score of 5 the following day.
- Total or isotype-specific HSV-binding IgG was measured by ELISA using recombinant monoclonal antibodies or serum collected one week following the second dose of vaccine.
- ELISA plates were coated with lysates of Vero cells infected with HSV-2 (G) at an MOI of 0.1 for 24 hours or uninfected Vero cell lysates as control.
- Serial dilutions of serum in duplicate were incubated with coated plates overnight at 4°C, and bound IgG was quantified using biotin-labeled secondary Abs (BD Pharmingen, CA). Background binding to uninfected Vero cell lysates was subtracted from binding to HSV-infected Vero cell lysates to quantify HSV- specific binding.
- Fc-receptor activation was determined using the murine FcyR IV ADCC Reporter Bioassay (Promega, Madison, WI) (Petro, C. D., et al, J Cl Insight 2016, 1, 1-15; Bum, C., et al., Journal of Infectious Diseases 2017, 1- 5).
- Target Vero cells were infected with HSV-2 (SD90) at an MOI of 0.1 for 12 hours.
- Infected or uninfected control cells were transferred to white, flat-bottomed 96-well plates and incubated with heat-inactivated serum from vaccinated or control immunized mice; or human serum samples (see below) (1:5 dilution in DMEM) for 15 minutes at room temperature.
- Murine FcyR IV were added for 6 hours at 37 °C 5% CO2 and FcyRIV activation was detected by the addition of luciferin substrate. Plates were read in a SpectraMax M5 e (Molecular Devices). Fold induction was calculated relative to luciferase activity in the absence of serum
- Neutralizing titers were determined by plaque reduction assay (Petro, C., et al, eLife 2015; Petro, C. D., et al, J Cl Insight 2016, 1, 1-15; Burn, C., et al., Journal of Infectious Diseases 2017, 1- 5). Serial 2-fold dilutions of heat-inactivated serum in duplicate were incubated with vims (50 pfu/well) for 1 hour at 37°C and then applied to Vero cell monolayers for 1 hour at 37°C. Cells were fixed with methanol and stained with Giemsa after a 48-h incubation. Plaques were counted and the neutralization titer was defined as the highest dilution to result in a 50% reduction in plaque numbers.
- HSV-2 forward primer SEQ ID NO: 1
- HSV-2 reverse primer sequence 5’ - AGCTTGCGGGCCTCGTT -3’
- HSV-2 probe sequence 5’- CGCCCCAGCATGTCGTTCACGT - 3’ SEQ ID NO: 3 (Namvar, L., et al., Journal of Clinical Microbiology 2005, 43, 2058-2064).
- Mouse b actin was used as a loading control (Applied Biosystems, Foster City, CA), and qPCR was run in an Applied Biosystems QuantStudio 7 Flex. Based on a standard curve, this assay consistently detected copy numbers greater than or equal to 4. Samples with fewer than 4 copies detected were considered negative (Petro, C., et al, eLife 2015; Petro, C. D., et al, JCI Insight 2016, 1, 1-15; Burn, C., et al., Journal of Infectious Diseases 2017, 1- 5).
- Peripheral blood was collected by retro-orbital bleed, pipetted into 5ml prewarmed ACK lysing buffer (Lonza Bio Whittaker) and incubated for 7 minutes at 37°C. Following lysis, cells were washed 2x in PBS without calcium and magnesium. For splenocyte isolation, spleens were isolated from vaccinated animals and mechanically digested by pressing through a 70 pm cell strainer. Cells were pelleted by centrifugation and resuspended in 2ml ACK lysing buffer. After 7 minutes at 37°C, RPMI was added and cells were pelleted by centrifugation. Cells were subsequently washed and resuspended in RPMI for further processing.
- splenocytes per 200 pL of RPMI + 10% FBS were plated in a U-bottom 96-well plate.
- Cells were treated with PHA (5 ⁇ g/mL) or lxlO 6 PFU UV- inactivated HSV-2 SD90 and incubated at 37°C for 18 hours.
- Brefeldin A BioLegend, San Diego, CA
- HSV-2 SD90 was diluted in RPMI in a 24-well dish and exposed to a hand-held UV light positioned 4 inches above the plate for 30 minutes. Cells were then processed for extra- and intracellular staining for flow cytometry.
- mice were prime-boost immunized with increasing doses of ⁇ gD-2 or dl5-29 (5 xlO 4 , 5 xlO 5 or 5x10 6 pfu/dose based on titer on complementing cell lines) or with 5 ⁇ g of gD protein adjuvanted with alum and MPL via the sc, im or id route.
- the total HSV-specific (ELISA), neutralizing and ADCC response were quantified in serum obtained one-week post-boost.
- the adjuvanted gD protein vaccine elicited a significantly higher total HSV ELISA antibody response when delivered id compared to im or sc (p ⁇ 0.001).
- the total HSV-specific Ab response to dl-5-29 and ⁇ gD-2 increased with escalation of the dose, but there were few differences comparing route of administration at each dose; the im route induced a significantly higher response compared to sc for dl-5-29 at a dose of 5x10 4 pfu/mouse (p ⁇ 0.05) and the id route induced a higher Ab response compared to im for ⁇ gD-2 at a dose of 5x10 6 pfu/mouse (p ⁇ 0.01, ANOVA) (Figs. 1A-C)
- the adjuvanted gD protein vaccine induced no ADCC response relative to control serum regardless of route of administration.
- the dl5-29 vaccine induced an intermediate ADCC response, which was highest following id administration of 5x10 6 pfu (median 15-fold) compared to the 30-fold FcyRIV activation elicited by 5x10 6 pfu of ⁇ gD-2 administered im or id. (Figs. 1G-I).
- mice were challenged on the skin with a 10 x LD90 dose of the clinical isolate of HSV-2, SD90, which has been previously shown to be consistently lethal in murine models (Dudek, T. E., et ah, Journal of Infectious Diseases 2011, 203, 1434— 1441). Mice were monitored for two weeks for signs of disease and were euthanized if signs of severe skin or neurologic disease were observed as previously described (Figs. 2A-J) (Petro, C., et al, eLife 2015; Petro, C.
- HSV viral DNA was quantified in ganglia at the time of death or on day 14 post-challenge. Despite the increase in Ab response following id vaccination with adjuvanted gD protein, there was no reduction in viral DNA recovered from ganglia following any route of immunization. The results with dl5-29 and ⁇ gD-2 at the 5x10 5 dose paralleled the disease scores and survival data. Only 1/5 mice immunized im or id compared to 4/5 mice immunized sc with dl5-29 had HSV DNA detected in the ganglia. No viral DNA was recovered in mice vaccinated by any route with the same dose of ⁇ gD-2 (Figs. 3A-C).
- mice were prime-boost vaccinated i.m with 5 x 10 5 pfu/mouse of ⁇ gD-2 or 5 ⁇ g gD-2-alum/MPL at three week intervals and T cell responses were assessed in the peripheral blood prior to vaccination (Day -1) and at the indicated times post prime and boost.
- ⁇ gD-2 induced activated CD4 and CD8 T cells following both prime and boost vaccination as measured by quantifying CDlla+CD49+ CD4 and CD8 T cells.
- there was little detectable T cell response to the adjuvanted protein vaccine (Figs. 4C-D).
- mice The splenocytes from these mice were harvested on Day 42 and stimulated with UV-inactivated SD90 or phytohemagglutinin (PHA) as a viability control to assess cytokine responses.
- PHA phytohemagglutinin
- IFN- ⁇ , TNF and IL-2 producing CD4+ T cells were observed when splenocytes isolated from ⁇ gD-2, but not rgD-2/alum-MPL vaccinated mice were stimulated with inactivated virus compared to unstimulated cells (Figs. 5B-D).
- the response was greater than observed with the PHA mitogen.
- mice were vaccinated sc with a dose of ⁇ gD-2 that is not fully protective (5 x 10 4 pfu/mouse), 5 ⁇ g of gD-2-Alum/MPL, or a combination of both vaccines delivered on opposite or the same flank.
- ⁇ gD-2 that is not fully protective
- 5 ⁇ g of gD-2-Alum/MPL 5 ⁇ g of both vaccines delivered on opposite or the same flank.
- Both combinations significantly increased the total HSV-specific antibody response compared to either vaccine alone (Fig. 6A).
- the combinations had no additive or antagonistic effect on the nAb response to rgD-2/ Alum-MPL (Fig. 6B) or the ADCC response to ⁇ gD-2 (Fig.
- ADCC provides a more predictive correlate of immune protection compared to neutralizing responses in mice.
- the increase in protection observed by increasing the dose and route of delivery of dl5-29 was associated with a significant increase in the ADCC, but not the neutralizing response.
- the only dose and route of vaccination with ⁇ gD-2 that did not provide 100% protection against a 10xLD90 challenge with SD90, sc immunization with 10 4 pfu, elicited a mean ADCC response of 2.8-fold (FcyRIV) activation.
- FcyRIV 2.8-fold
- intradermal rabies vaccination has been a standard since the World Health Organization recommendation in 1992 because a lower dose achieves comparable immunogenicity (Dubois, B., et al, Journal of Leukocyte Biology 1999, 66, 224-230). Intradermal vaccination is presumed to activate a stronger dendritic cell- mediated response thus requiring a lower antigenic dose (Peng, S. L., et al., Proc. Natl. Acad. Sci. U.S.A. 2002, 99, 5545— 5550).
- the vaccine composition In addition to dose and delivery route, the vaccine composition also influence immunogenicity as evidenced by the exclusive neutralizing response to the gD subunit vaccine, non-neutralizing, FcyR-mediated response to ⁇ gD-2, and a combination of both neutralizing and non-neutralizing responses elicited by dl5-29.
- the absence of any neutralizing Ab following AgD- 2 immunization likely reflects the absence of the dominant target of nAbs in mice.
- a combination of adjuvanted rgD-2 and a low dose of ⁇ gD-2 delivered simultaneously at the same or opposite flank did not interfere with the immunogenicity of either vaccine and was more protective than rgD-2-Alum/MPL alone. This is consistent with our superinfection murine studies, which showed that pre-existing gD neutralizing Abs did not interfere with the immunogenicity of ⁇ gD-2.
- Vaccination of HSV-1 seropositive mice with AgD- 2 boosted the ADCC (but not the neutralizing) Ab response and resulted in complete protection if the mice were subsequently challenge with a lethal dose of HSV-2 (Burn Aschner, C., et al, npj Vaccines 2020, 1-33).
- nAbs to gD alone are not sufficient to protect mice (or to date, humans), a combination of both types of responses could be beneficial.
- one reason for the incomplete protection mediated by nAbs may be the ability of HSV to evade neutralization by spreading directly from cell-to cell.
- delivering recombinant gD protein at the same time as ⁇ gD-2 is different from having gD present in the viral envelope.
- envelope gD interferes with the generation of IgG2 subclass switched Abs through interactions with herpesvirus entry mediator (HVEM), also known as tumor necrosis factor receptor superfamily member 14 (Bum Aschner and Herold, mspt under review).
- HVEM herpesvirus entry mediator
- ADCC is an important correlate of immune protection. Although we initially hypothesized that the intradermal route of delivery would prove more immunogenic for all three vaccines, this was only observed with the gD protein subunit vaccine. Both im and id routes provided similar antibody responses and protection with ⁇ gD-2 and dl-5-29 . Overall, ⁇ gD-2 induced the highest ADCC responses and the most potent protection against lethal challenge and latency.
- compositions, methods, and articles can alternatively comprise, consist of, or consist essentially of, any appropriate materials, steps, or components herein disclosed.
- the compositions, methods, and articles can additionally, or alternatively, be formulated so as to be devoid, or substantially free, of any materials (or species), steps, or components, that are otherwise not necessary to the achievement of the function or objectives of the compositions, methods, and articles.
- test standards are the most recent standard in effect as of the filing date of this application, or, if priority is claimed, the filing date of the earliest priority application in which the test standard appears.
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| IL298288A IL298288B2 (en) | 2020-05-29 | 2021-06-01 | Methods of using hsv-2 single cycle virus delta-gd and hsv-2 recombinant glycoprotein d |
| KR1020227045772A KR20230044365A (en) | 2020-05-29 | 2021-06-01 | Methods of using HSV-2 single cycle virus delta-gD and HSV-2 recombinant glycoprotein D |
| CA3184459A CA3184459A1 (en) | 2020-05-29 | 2021-06-01 | Methods of using hsv-2 single cycle virus delta-gd and hsv-2 recombinant glycoprotein d |
| AU2021281314A AU2021281314A1 (en) | 2020-05-29 | 2021-06-01 | Methods of using HSV-2 single cycle virus delta-gD and HSV-2 recombinant glycoprotein D |
| JP2022573260A JP7840572B2 (en) | 2020-05-29 | 2021-06-01 | Method for using HSV-2 single-cycle virus delta-gD and HSV-2 recombinant glycoprotein |
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| WO2013173590A1 (en) * | 2012-05-16 | 2013-11-21 | Immune Design Corp. | Vaccines for hsv-2 |
| WO2015134368A2 (en) | 2014-03-03 | 2015-09-11 | Albert Einstein College Of Medicine Of Yeshiva University | Recombinant herpes simplex virus 2 (hsv-2) vaccine vectors |
| CN104694553B (en) * | 2013-12-05 | 2018-04-17 | 长春百克生物科技股份公司 | Genital herpes vaccine |
| WO2020081820A1 (en) * | 2018-10-17 | 2020-04-23 | Albert Einstein College Of Medicine | Method of enhancing antibody-dependent cell-mediated cytotoxicity (adcc) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2013173590A1 (en) * | 2012-05-16 | 2013-11-21 | Immune Design Corp. | Vaccines for hsv-2 |
| CN104694553B (en) * | 2013-12-05 | 2018-04-17 | 长春百克生物科技股份公司 | Genital herpes vaccine |
| WO2015134368A2 (en) | 2014-03-03 | 2015-09-11 | Albert Einstein College Of Medicine Of Yeshiva University | Recombinant herpes simplex virus 2 (hsv-2) vaccine vectors |
| WO2020081820A1 (en) * | 2018-10-17 | 2020-04-23 | Albert Einstein College Of Medicine | Method of enhancing antibody-dependent cell-mediated cytotoxicity (adcc) |
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| JP2023527546A (en) | 2023-06-29 |
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| AU2021281314A1 (en) | 2022-12-22 |
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