Pharmaceutical compositions and uses thereof
A hepatitis B vaccine combining hepatitis B antigens with a synergistic saponin-CpG oligodeoxynucleotide adjuvant system enhances both humoral and cellular immune responses, effectively reducing hepatitis B virus levels in mice.
Patent Information
- Application Number
- JP2022535199
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-13
- Filing Date
- 2020-12-11
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2040-12-11
AI Technical Summary
Current hepatitis B treatments, including nucleoside analogs and interferon, fail to completely eliminate intracellular hepatitis B virus and induce sufficient cellular immune responses, while existing hepatitis B vaccines primarily induce humoral immunity, necessitating a composition that can break through immune tolerance and enhance both humoral and cellular immune responses.
A pharmaceutical composition comprising hepatitis B surface and core antigens combined with a synergistic adjuvant system of saponin and CpG oligodeoxynucleotides, specifically with sequences containing multiple 5'-TTCGTT-3' or 5'-TCGTCGTCG-3' motifs, to stimulate a robust immune response.
The composition induces high titers of anti-HBsAg and anti-HBcAg antibodies, breaks through immune tolerance, and significantly reduces hepatitis B virus in genetically modified mice, achieving a stable and long-term immune effect.
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Abstract
Description
[Technical Field]
[0001] The present invention belongs to the field of biopharmaceuticals. Specifically, the present invention relates to a pharmaceutical composition comprising a hepatitis B surface antigen, a hepatitis B core antigen, and an immunostimulatory composition. The immunostimulatory composition comprises a saponin and a CpG oligodeoxynucleotide, or the immunostimulatory composition consists of a saponin-containing adjuvant and a CpG oligodeoxynucleotide, wherein the CpG oligodeoxynucleotide sequence has two or more copies of a 5'-TTCGTT-3' motif or a 5'-TCGTCGTCG-3' motif. The present invention further relates to the use of the pharmaceutical composition for treating hepatitis B virus infection and / or hepatitis B virus-mediated diseases. [Background technology]
[0002] Hepatitis B virus (HBV) infection is a serious public health problem worldwide. HBV infection is an important cause of chronic hepatitis B, liver cirrhosis, and hepatocellular carcinoma (Fattovich GJ Hepatol. 2008;48:335-352). Drugs commonly used in the clinical treatment of chronic HBV infection mainly include nucleoside analogs and interferon. Nucleoside analogs cannot completely eliminate cccDNA in hepatocytes, and long-term use can lead to the development of drug-resistant mutants and rebound after discontinuation of treatment (Kwon H, Lok AS. Nat Rev Gastroenterol Hepatol. 2011;8:275-284). Interferon is not suitable for asymptomatic HBV carriers, and in chronic HBV patients, the HBeAg seroconversion rate after six months of use is only 33%, and its use is limited due to its significant side effects (Tang SX, Yu GL. Lancet 1990;335(8684):302).
[0003] Currently widely used hepatitis B protein vaccines achieve their preventive purpose by inducing humoral immunity and generating protective neutralizing antibodies. Numerous studies have shown that neutralizing antibodies can only eliminate extracellular virus particles, whereas elimination of intracellular infectious virus relies primarily on specific cellular immune responses, Th1 cytokines such as IFN-γ produced by helper T cells and CD4+ T cells, and especially virus-specific cytotoxic T lymphocytes (CTLs) (Chin R, Lacamini S. Rev Med Viorl. 2003:13(4):255-72). The strength of the cellular immune response directly determines the prognosis of hepatitis B. Therefore, an ideal therapeutic hepatitis B vaccine would simultaneously induce specific humoral and cellular immunity, thereby overcoming immune tolerance to hepatitis B. For example, Chinese Patent CN104043120B provides a therapeutic hepatitis B vaccine containing hepatitis B surface antigen (HBsAg), hepatitis B core antigen (HBcAg) and oligodeoxynucleotide (CpG), which can break through the immune tolerance of hepatitis B and is used to treat viral hepatitis B, especially chronic hepatitis B.
[0004] Through extensive research into conventional technologies, the inventors have discovered that adjuvants play an important role in the therapeutic efficacy of therapeutic hepatitis B vaccines. Oligodeoxynucleotides (CpG), commonly used as adjuvants, are immunostimulatory compositions containing cytosine guanine dinucleotides. These oligodeoxynucleotides, which have a chemical identity similar to that of natural CpG pattern recognition receptors, can bind to Toll-like receptors (TLRs) on the cell membrane and effectively induce immune responses in mammals via the TLR9 signaling pathway. Saponin adjuvants are glycosides with triterpene or spirosterane aglycones and are classified as plant-derived adjuvants. Quillaja saponin (QS) is a saponin extracted from Quillaja japonica. QS-21, the most commonly reported adjuvant in the QS series, may induce hemolysis and may have systemic and local toxic side effects. A study by Alving et al. (ALVING CR, MATYAS G, BECK Z, et al. Revue Roumaine de Chimie, 2016, 61(8):631-635) found that ALF liposomes, combined with MPLA and QS-21 as adjuvants, effectively increased serum antibody titers against the HIV gp140 protein. Ng et al. (NG H, FERNANDO GJP, DEPELSENAIRE ACI, et al. Scientific Reports, 2016, 6(1):228-230) used a nanopatch as a subcutaneous delivery technique to form a QS-21 adjuvant complex. Results showed that compared with conventional intramuscular injection, the nanopatch significantly reduced the antigen and QS-21 dose and induced higher IgG titers. (Han Ziyi, Zeng Zhongliang, Modern Agricultural Science and Technology, 2019(14):220-221)
[0005] A prior art document (WO2001051083A3) reported an immunostimulatory composition containing saponin and CpG oligodeoxynucleotide, in which the CpG adjuvants were CpG1826 and CpG7909. However, due to the structural diversity of CpG oligodeoxynucleotides, the effects of CpG adjuvants with different sequences vary greatly.
[0006] Therefore, there is currently a need for adjuvants and hepatitis B treatments with stronger immune effects. Summary of the Invention [Problem to be solved by the invention]
[0007] The present inventors have conducted extensive research into the shortcomings of the prior art and have unexpectedly discovered an immunostimulatory composition with stronger immune effects, as well as a pharmaceutical composition containing said immunostimulatory composition. The pharmaceutical composition of the present invention contains a dual adjuvant, and the saponin and CpG oligodeoxynucleotide therein exhibit an efficient synergistic effect, thereby mediating a stronger immune response. The present invention further provides a use of said pharmaceutical composition for treating hepatitis B virus infection and / or hepatitis B virus-mediated diseases. [Means for solving the problem]
[0008] The object of the present invention is achieved by the following technical solutions: The present invention, in one aspect, comprises: i) a hepatitis B surface antigen, an active fragment of said antigen, a variant of said antigen, or a mixture of at least two thereof; ii) Hepatitis B core antigen, an active fragment of said antigen, a variant of said antigen, or a mixture of at least two thereof; iii) A pharmaceutical composition comprising a saponin and a CpG oligodeoxynucleotide, or an immunostimulatory composition consisting of an adjuvant containing a saponin and a CpG oligodeoxynucleotide, wherein the CpG oligodeoxynucleotide sequence has two or more copies of the 5'-TTCGTT-3' motif or the 5'-TCGTCGTCG-3' motif.
[0009] In the pharmaceutical composition of the present invention, the sequence of the CpG oligodeoxynucleotide is CpG T1: TCG TTC GTT CGT TCG TTC GTT (SEQ ID NO: 6), CpG T2: TCG TTC GTT CGT TCG TTC GTT CGT T (SEQ ID NO: 7), CpG T3: TCG TCG TCG TCG TCG TCG TCG (SEQ ID NO: 8), Preferably, the sequence of said CpG oligodeoxynucleotide is CpG T1: TCG TTC GTT CGT TCG TTC GTT (SEQ ID NO: 6).
[0010] In the pharmaceutical composition of the present invention, the saponin may be one or more selected from Quillaja saponin, ginsenoside, platycodin, astragaloside, notoginsenoside, glycyrrhizin, julibroside, ophiopogonin, saikoside, and chikusetsusaponin. Preferably, the saponin is Quillaja saponin, ginsenoside, platycodin or astragaloside A, more preferably, the Quillaja saponin is QS-7, QS-17, QS-18 or QS-21, even more preferably, the Quillaja saponin is QS-21, the ginsenoside may be ginsenoside Rg1, ginsenoside Rg3, ginsenoside Rb1 or ginsenoside Re, the platycodin may be platycodin D, platycodin D2 or a mixture of both, and the astragaloside may be astragaloside A (astragaloside IV), It may be a monomer such as astragaloside I, astragaloside II, or a mixture of two or more of these saponin monomers; the notoginsenoside may be notoginsenoside R1; the ophiopogonin may be ophiopogonin D, etc.; the saikoside may be saikoside a, saikoside d, or a mixture of both; the julibrosid may be the total saponin of Anthurium radix, etc.; the glycyrrhizin may be the total saponin of licorice, and the chikusetsusaponin may be the total saponin of chikusetsujin.
[0011] In the pharmaceutical composition of the present invention, the adjuvant comprising saponin is an immunostimulating complex adjuvant (Iscom adjuvant).
[0012] In the pharmaceutical composition according to the present invention, the CpG oligodeoxynucleotide may contain phosphorothioate bonds, and preferably, the CpG oligodeoxynucleotide is a perthio oligodeoxynucleotide, more preferably a perthio oligodeoxynucleotide.
[0013] In the pharmaceutical composition according to the present invention, the weight ratio of the CpG oligodeoxynucleotide to the saponin is 1-40:0.1-2, and preferably 2-40:0.1-2.
[0014] Preferably, the weight ratio of the CpG oligodeoxynucleotide to saponin is 1:0.1, 1:1, 1:2, 2:0.1, 2:1, 40:0.1, 40:1 or 20:1, preferably 1:1, 2:1, 40:0.1, 40:1 or 20:1, more preferably 2:1.
[0015] In the pharmaceutical composition of the present invention, the hepatitis B surface antigen comprises or consists of the sequence shown in SEQ ID NO:1.
[0016] In the pharmaceutical composition according to the present invention, the hepatitis B core antigen comprises or consists of the sequence shown in SEQ ID NO: 2, and preferably, the active fragment of the hepatitis B core antigen comprises or consists of consecutive amino acids from position 1 to position X in SEQ ID NO: 2, where X may be an integer between 149 and 183, and more preferably, X is an integer between 152 and 183.
[0017] In the pharmaceutical composition according to the present invention, the weight ratio of the components i), ii) and iii) of the pharmaceutical composition is 4:2:1.1-42, preferably 4:2:2.1-42.
[0018] More preferably, the weight ratio of components i), ii) and iii) of said pharmaceutical composition is 4:2:1.1, 4:2:2, 4:2:3, 4:2:2.1, 4:2:40.1, 4:2:41 or 4:2:42, preferably 4:2:2, 4:2:3, 4:2:40.1, 4:2:41 or 4:2:42, more preferably 4:2:3.
[0019] In the pharmaceutical composition according to the present invention, the pharmaceutical composition further comprises iv) a pharmaceutically acceptable carrier.
[0020] In another aspect, the present invention provides a vaccine for preventing hepatitis B or a vaccine for treating hepatitis B, comprising the pharmaceutical composition, and preferably, the vaccine is a vaccine for treating hepatitis B.
[0021] In a further aspect, the present invention provides a use of the pharmaceutical composition in the manufacture of a medicament for preventing and / or treating hepatitis B virus infection and / or hepatitis B virus-mediated diseases, preferably, the hepatitis B virus infection and / or hepatitis B virus-mediated diseases are selected from hepatitis B, liver cirrhosis, and liver cancer.
[0022] In a further aspect, the present invention provides the use of the pharmaceutical composition in the manufacture of a medicament for generating a humoral and / or cellular immune response against hepatitis B virus in a subject.
[0023] In a further aspect, the present invention provides the use of the pharmaceutical composition in the manufacture of a medicament for subtype conversion to Hepatitis B core antibody in a subject.
[0024] In a further aspect, the present invention provides the use of the pharmaceutical composition in the manufacture of a medicament for breaking through immune tolerance to hepatitis B virus in a subject.
[0025] In a further aspect, the present invention provides a method for preventing and / or treating hepatitis B virus infection and / or hepatitis B virus-mediated disease, comprising administering a prophylactically and / or therapeutically effective amount of a pharmaceutical composition to a subject in need thereof, preferably wherein the hepatitis B virus infection and / or hepatitis B virus-mediated disease is selected from hepatitis B, cirrhosis, and liver cancer.
[0026] In another aspect, the present invention provides a method for generating a humoral and / or cellular immune response against hepatitis B virus in a subject in need thereof, comprising administering to the subject an effective amount of a pharmaceutical composition.
[0027] In another aspect, the present invention provides a method for converting the subtype of Hepatitis B core antibodies in a subject in need thereof, comprising administering to the subject an effective amount of a pharmaceutical composition.
[0028] In another aspect, the present invention provides a method of breaking through immune tolerance to hepatitis B virus in a subject in need thereof, comprising administering to the subject an effective amount of a pharmaceutical composition. [Effects of the Invention]
[0029] The pharmaceutical composition of the present invention contains a dual adjuvant, which has unexpected technical effects and can mediate a stronger immune response. Although the immunostimulatory effects of CpG T1, CpG T2, and CpG T3 used alone are weaker than those of CpG1018, CpG7909, and CpG1826, when combined with QS21, the adjuvants exhibit an unexpected synergistic effect, significantly enhancing the immune effect. A hepatitis B therapeutic vaccine containing this immunostimulatory composition can break through immune tolerance in genetically modified mice and produce high titers of anti-HBsAg antibodies, anti-HBcAg antibodies, and neutralizing antibodies. All of the detection results show that the vaccine can significantly eliminate hepatitis B virus in genetically modified mice after multiple immunizations. After the immunization process, HBsAb levels reach near saturation, maintaining a stable and long-term immune effect, with an average HBsAg reduction rate of approximately 92%. At the same time, hepatitis B vaccines containing the above-mentioned immunostimulants can induce the production of relatively strong HBsAg and HBcAg-specific IFN-γ levels, and the immune effect is significantly superior to that of adjuvants alone and to the combination of other CPG adjuvants and QS21. [Brief explanation of the drawings]
[0030] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. [Figure 1] 1 shows the effect of different CPG oligodeoxynucleotides on the secretion level of HBsAg antigen-specific IFN-γ. [Figure 2]1 shows the effect of different CPG oligodeoxynucleotides on the secretion level of HBcAg antigen-specific IFN-γ. [Figure 3] 1 shows the effect of different immunostimulatory compositions according to the present invention on the secretion level of HBsAg antigen-specific IFN-γ. [Figure 4] 1 shows the effect of different immunostimulatory compositions according to the present invention on the secretion level of HBcAg antigen-specific IFN-γ. [Figure 5] 1 shows the effect of different doses of an immunostimulatory composition according to the present invention on the secretion level of HBsAg antigen-specific IFN-γ. [Figure 6] 1 shows the effect of different doses of an immunostimulatory composition according to the present invention on the secretion level of HBcAg antigen-specific IFN-γ. [Figure 7] 1 shows the effect of a hepatitis B vaccine containing an immunostimulatory composition of the present invention on serum HBsAg levels. [Figure 8] 1 shows the effect of a hepatitis B vaccine containing an immunostimulatory composition of the present invention on serum HBsAb levels. [Figure 9] 1 shows the effect of a hepatitis B vaccine containing an immunostimulatory composition according to the present invention on the secretion level of HBsAg antigen-specific IFN-γ. [Figure 10] 1 shows the effect of a hepatitis B vaccine containing an immunostimulatory composition according to the present invention on the secretion level of HBcAg antigen-specific IFN-γ. [Figure 11] 1 shows the effect of a hepatitis B vaccine containing an immunostimulatory composition of the present invention on HBsAg antigen-specific IgG antibody and its subtype levels in mouse serum. In the figure, Panel A shows the serum HBsAb IgG levels in each group of mice. Panel B shows the serum HBsAb IgG1 levels in each group of mice. Panel C shows the serum HBsAb IgG2a levels in each group of mice. Panel D shows the ratio of serum HBsAb IgG2a to IgG1 in each group of mice. [Figure 12]1 shows the effect of a hepatitis B vaccine containing an immunostimulatory composition of the present invention on the levels of HBcAg antigen-specific IgG antibodies and their subtypes in mouse serum. In the figure, Panel A shows the serum HBcAb IgG levels in each group of mice. Panel B shows the serum HBcAb IgG1 levels in each group of mice. Panel C shows the serum HBcAb IgG2a levels in each group of mice. Panel D shows the ratio of serum HBcAb IgG2a to IgG1 in each group of mice. [Figure 13] 1 shows the effect of immunostimulatory compositions containing different saponins on the secretion level of HBsAg antigen-specific IFN-γ. [Figure 14] 1 shows the effect of immunostimulatory compositions containing different saponins on the secretion level of HBcAg antigen-specific IFN-γ.
[0031] "Definition" Unless otherwise defined, all technical terms used herein have the same meaning as understood by those skilled in the art. For definitions and terms in the art, those skilled in the art can refer to Current Protocols in Molecular Biology (Ausubel). Abbreviations for amino acid residues are standard three-letter and / or one-letter codes that refer to one of the 20 L-amino acids commonly used in the art.
[0032] Although broad ranges and approximations of parameters are given in the present invention, specific examples are provided with as much precision as possible. However, all numerical values necessarily contain errors, to varying degrees, due to the standard deviation of their measurement. Furthermore, any range disclosed herein is understood to encompass any and all subranges contained therein. For example, a range described as "1.1 to 42" is considered to encompass any and all subranges between the minimum value of 1.1 and the maximum value of 42 (including the endpoints), i.e., all subranges beginning with a minimum value of 1.1 or greater (e.g., 1.1 to 6.1) and all subranges ending with a maximum value of 42 or less (e.g., 5.5 to 42). Furthermore, when a reference is "incorporated herein," it is understood to be incorporated in its entirety.
[0033] As used herein, the singular forms "a," "an," and "the" include the plural of the referent unless expressly limited to one referent. The term "or" is used interchangeably with the term "and / or" unless the context clearly indicates otherwise.
[0034] As used herein, the terms "pharmaceutical composition," "drug combination," and "drug combination" are used interchangeably to refer to a combination of at least one drug and optional pharmaceutically acceptable excipients or additives that combine to achieve a particular purpose. In some embodiments, the pharmaceutical composition includes a combination of drugs that are separated in time and / or space, so long as they function together to achieve the objectives of the invention. For example, the components included in the pharmaceutical composition (e.g., HBsAg, HBcAg, QS-21, CpG oligodeoxynucleotide) may be administered to a subject as a whole or separately. When the components included in the pharmaceutical composition are administered to a subject separately, the components may be administered to a subject simultaneously or sequentially.
[0035] As used herein, the term "CpG oligodeoxynucleotide" or "CpG-ODN" refers to a short, single-stranded synthetic DNA molecule containing one or more "CpG" units, where C represents cytosine, G represents guanine, and p represents a phosphodiester bond. In particular, the CpG oligodeoxynucleotide is unmethylated. In some embodiments, the CpG-ODN contains phosphorothioate bonds or a phosphorothioate backbone. That is, in some embodiments, the CpG-ODN is a phosphorothioate oligodeoxynucleotide (i.e., a perthio oligodeoxynucleotide). Preferably, all bonds between nucleotides in the CpG-ODN are phosphorothioate bonds, that is, the CpG-ODN is a perthio oligodeoxynucleotide. In other embodiments, the CpG-ODN contains two or more copies of the 5'-TTCGTT-3' motif or the 5'-TCGTCGTCG-3' motif. In particular, the CpG-ODN has a sequence selected from TCG TTC GTT CGT TCG TTC GTT (SEQ ID NO: 6), TCG TTC GTT CGT TCG TTC GTT CGT T (SEQ ID NO: 7), TCG TCG TCG TCG TCG TCG TCG (SEQ ID NO: 8), preferably TCG TTC GTT CGT TCG TTC GTT (SEQ ID NO: 6).
[0036] As used herein, "ginsenoside, platycodin, astragaloside, notoginsenoside, glycyrrhizin, julibroside, ophiopogonin, saikoside, or chikusetsusaponin" refers to the active ingredients present in the corresponding plants. For example, ginsenoside is a sterol compound mainly present in Ginseng herbal medicines and is the active ingredient in Ginseng. In some embodiments, the ginsenoside is preferably a monomer such as ginsenoside Rg1, ginsenoside Rg3, ginsenoside Rb1, ginsenoside Re, or a mixture of two or more saponin monomers thereof; the platycodin is preferably platycodin D, platycodin D2, or a mixture of both; and the astragaloside is preferably a monomer such as astragaloside A (astragaloside IV), astragaloside I, astragaloside II, or a mixture of two or more saponin monomers thereof. It is preferable that the saponin monomers are a mixture of the above, notoginsenoside is preferably notoginsenoside R1, etc., ophiopogonin is preferably ophiopogonin D, etc., saikoside is preferably saikoside a, saikoside d or a mixture of both, julibroside is preferably the total saponin of Gokanhi, etc., glycyrrhizin is preferably the total saponin of Glycyrrhiza glabra, etc., and chikusetsusaponin is preferably the total saponin of Chikusetsuginseng, etc.
[0037] As used herein, "Iscom adjuvant" refers to an immunostimulating complex adjuvant, specifically, an antigen-free Iscom matrix, which is a cage-like adjuvant composed of phospholipids, saponin, and cholesterol.
[0038] As used herein, a "therapeutically effective amount" or "effective amount" refers to a dose sufficient to provide benefit to the subject to which it is administered. The actual dose, rate, and duration of administration will be determined by the individual condition and severity of the disease being treated. The treatment prescription (e.g., dosage determination) is ultimately the sole responsibility of a general practitioner or other physician, and will generally take into account the disease being treated, the individual condition of the patient, the site of delivery, the method of administration, and other factors known to physicians.
[0039] As used herein, the term "mammal" refers to humans, and may also refer to other animals, such as wild animals (e.g., herons, storks, cranes, etc.), domestic animals (e.g., ducks, geese, etc.), or laboratory animals (e.g., orangutans, monkeys, rats, mice, rabbits, guinea pigs, marmots, ground squirrels, etc.).
[0040] In some other embodiments, the compositions of the present invention may include other additives, such as pharmaceutically acceptable carriers or excipients, particularly when present as a drug formulation.
[0041] Particularly preferred pharmaceutical carriers are water and aqueous buffer solutions, including isotonic salt solutions such as PBS (phosphate buffer), glucose, mannitol, dextrose, lactose, starch, magnesium stearate, cellulose, magnesium carbonate, 0.3% glycerin, hyaluronic acid, ethanol, or polyalkylene glycols (e.g., polypropylene glycol), triglycerides, etc. The type of pharmaceutical carrier used will depend, inter alia, on whether the composition of the present invention is formulated for oral, nasal, intradermal, subcutaneous, intramuscular, or intravenous administration. The composition of the present invention may also contain wetting agents, emulsifiers, or liquid buffer substances as additives.
[0042] The pharmaceutical composition, vaccine or drug formulation according to the invention may be administered by any suitable route of administration, for example orally, nasally, intradermally, subcutaneously, intramuscularly or intravenously.
[0043] The present invention will be further described below in specific embodiments with reference to the drawings, but these are not intended to limit the present invention. Those skilled in the art can make various modifications or improvements based on the spirit of the present invention, and as long as they do not deviate from the spirit of the present invention, they will fall within the scope of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0044] The present invention will now be described with reference to specific examples, which will be understood by those skilled in the art as being merely illustrative of the present invention and are not intended to limit the scope of the present invention in any way.
[0045] Unless otherwise specified, the experimental methods used in the following examples are conventional methods. Unless otherwise specified, the raw materials, reagents, etc. used in the following examples are all commercially available products.
[0046] Example 1: Preparation of a screening experiment for immunostimulatory compositions 1. HBsAg stock solution: The amino acid sequence of HBsAg protein is as shown in SEQ ID NO:1.
[0047] HBsAg protein was prepared from HBsAg gene-recombinant yeast cells, including Hansenula polymorpha, Saccharomyces cerevisiae, and Pichia pastoris, with Hansenula polymorpha being preferred. For details of the preparation process, see Chinese Patent Application No. CN108330145A. HBsAg gene-recombinant Hansenula polymorpha cells were fermented and cultured to obtain bacterial cells. The cells were then disrupted and purified using silica gel adsorption, column chromatography, and TFF.
[0048] 2. HBcAg stock solution: The amino acid sequence of the HBcAg protein is as shown in SEQ ID NO:2.
[0049] HBcAg protein is prepared from HBcAg gene-recombinant yeast cells, including H. polymorpha, S. cerevisiae, and Pichia pastoris, preferably H. polymorpha. For details of the preparation process, see Chinese Patent Application No. CN108047316A. HBcAg gene-recombinant H. polymorpha cells are fermented and cultured to obtain bacterial cells. After cell disruption and purification steps using ammonium sulfate, column chromatography, and TFF, an HBcAg stock solution is obtained.
[0050] 3. QS-21: Purchased from BRENNTAG, CAS number A010-023.
[0051] 4. Preparation method of CPG oligodeoxynucleotide raw material: The oligodeoxynucleotide is a synthetically prepared oligodeoxynucleotide sequence fragment containing one or more CpG motifs, and the CPG sequences used in this example are shown in Table 1.
[0052] [Table 1]
[0053] The details of the preparation method are as follows. They were prepared using a conventional chemical synthesis method known as the solid-phase phosphoramidite triester method. Starting from the 3' end, 1) deprotection involves first removing the protecting group DMT (dimethoxytrityl group) of the nucleotide linked to CpG with trichloroacetic acid to yield a free 5' hydroxyl group for use in the condensation reaction in the next step. 2) activation involves mixing the phosphoramidite-protected nucleotide monomer with a tetrazolium activator and placing it in a synthesis column to generate a phosphoramidite tetrazole activated intermediate, which then condenses with the deprotected nucleotide in the CpG. 3) connection involves connecting the phosphoramidite tetrazole activated intermediate to the deprotected nucleotide in the CpG, where it undergoes a nucleophilic reaction with the 5' hydroxyl group, condensing to remove the tetrazole, and extending the oligonucleotide chain forward by one base. 4) Oxidation: During the condensation reaction, the nucleotide monomer is connected to the CpG-linked oligonucleotide via a phosphite ester bond. However, because the phosphite ester bond is unstable and easily hydrolyzed by acid or base, a thio reagent is used to oxidize the phosphoramidite to form a sulfur-phosphorus double bond phosphate triester, resulting in a stable oligonucleotide. 5) Blocking: After the condensation reaction, the unreacted 5' hydroxyl group attached to the CpG is typically blocked by acetylation to prevent elongation in the next cycling reaction. Through these five steps, one deoxynucleotide is connected to the CpG nucleotide. Repeating the above deprotection, activation, connection, oxidation, and blocking processes yields a crude DNA fragment. Finally, post-synthesis processing, such as cleavage, deprotection, purification, and quantification, is performed to complete the process.
[0054] 5. HBsAg stock solution and HBcAg stock solution were diluted to 200 μg / ml and 100 μg / ml, respectively, using PBS solution (purchased from Hyclone). Each CPG raw material was dissolved and diluted to 100 μg / ml using PBS solution in preparation for use in the next step.
[0055] Example 2: Screening experiments for CPG oligodeoxynucleotides 1. Experimental animals: C57BL / 6(N) mice, male, 4 weeks old, 135 mice, provided by Shanghai Lingcheng Experimental Animal Technology Co., Ltd.
[0056] 2. Experimental group design: See Table 2. The injection volume was 100 μL per mouse. Group A was the negative control, and received 100 μL of PBS solution per mouse.
[0057] [Table 2]
[0058] 3. Experimental steps are as follows. Seven days after immunization, spleens were removed from mice, and splenic lymphocytes were prepared using conventional methods. The spleens were removed using sterile forceps and scissors under aseptic conditions. They were placed on a plate containing 2 ml of pre-chilled 2% FBS (purchased from GIBCO)-PBS. The spleens were then ground with a pestle to allow the spleen cells to pass through the mesh and onto the plate, yielding a cell suspension. The suspension was then filtered through a 40 μm cell strainer (purchased from BD) using a Pasteur pipette and placed in a 50 ml sterile centrifuge tube. The tube was centrifuged at 500 × g for 5 minutes at 4°C. The supernatant was discarded, and the cells were resuspended in 2 ml of 1x erythrocyte disruption reagent (purchased from BD). The tube was then left to stand in the dark at 4°C for 5 minutes to disrupt the red blood cells. The red blood cell disruption reaction was stopped by adding 10 ml of 2% FBS-PBS. The cells were centrifuged at 500 × g for 5 minutes at 4°C. The supernatant was discarded, and 5 ml of 2% FBS-PBS was added to resuspend the cells. Splenocytes were stimulated using the HBsAg-specific peptide pool PS4 and the HBcAg-specific peptide pool PCP as stimulators. HBsAg and HBcAg antigen-specific IFN-γ secretion levels were detected using an ELISPOT kit (BD) according to the kit's instructions. The number of spots measured by the ELISPOT kit was read using an ImmunoSPOT Series 3 ELISPOT analyzer (see Example 7 of Chinese Patent CN104043120B for detailed operating procedures).
[0059] The HBsAg-specific peptide pool sequence is shown in Example 7 of Chinese Patent CN104043120B, and the HBcAg-specific peptide pool sequence is shown in SEQ ID NOs: 16 to 30.
[0060] 4. Experimental Results: The ELISPOT spotting results are shown in Figures 1 and 2. As shown in the results, type B CpG adjuvants with different sequences had different immune effects. CpG T1-T3, CpG1018, CpG7909, CpG 1826, and CpG 684 were generally superior to type A and type C CpG adjuvants, while CpG1618 and CPG D2 had poorer immune effects, and the levels of HBsAg and HBcAg-specific IFN-γ induced by these adjuvants were both lower than those of type A and type C CpG adjuvants.
[0061] Example 3: Screening experiments for immunostimulatory compositions 1. Experimental animals: C57BL / 6(N) mice: male, 4 weeks old, 81 mice, provided by Shanghai Lingcheng Experimental Animal Technology Co., Ltd. 2. Experimental group design: See Table 3. The injection volume was 100 μL per mouse. Group A was the negative control, and each mouse received 100 μL of PBS solution.
[0062] [Table 3]
[0063] 3. Experimental steps: same as in Example 2.
[0064] 4. Experimental results: The ELISPOT spot results are shown in Figures 3 and 4. As shown in the results, when CpG T1-T3 were combined with QS21, an efficient synergistic effect was achieved, and the induced levels of HBsAg and HBcAg-specific IFN-γ were significantly higher than those of some other CpG adjuvants such as CpG1018 and CpG7909, demonstrating an unexpected immune effect.
[0065] Example 4: Effect of different adjuvant contents on the immune effect of pharmaceutical compositions 1. Experimental animals: C57BL / 6(N) mice, male, 4 weeks old, 60 mice, provided by Shanghai Lingcheng Experimental Animal Technology Co., Ltd.
[0066] 2. Reagent materials: 1) HBsAg protein, HBcAg protein, and CpG T1 were all prepared as described in Example 1. 2) QS-21 (CAS number A010-023, purchased from BRENNTAG) 3) To prepare for use in the next step, HBsAg stock solution and HBcAg stock solution were diluted to 200 μg / ml and 100 μg / ml using PBS solution (purchased from Hyclone), QS21 was diluted to 5 μg / ml, 50 μg / ml, and 100 μg / ml, CpG T1 was dissolved and diluted to 50 μg / ml, 100 μg / ml, and 2 mg / ml using PBS solution, and CPG7909 was dissolved and diluted to 100 μg / ml using PBS solution.
[0067] 3. Experimental group design: See Table 4. The injection volume was 100 μL per mouse. Group A was the negative control, and received 100 μL of PBS solution per mouse.
[0068] 4. Experimental steps: same as in Example 2.
[0069] 5. Experimental results: See Figures 5 and 6 for the ELISPOT spot results. As shown in the results, changes in the dose of CpG T1 and QS21 both had significant effects on the vaccine composition, which were higher than those of the immunostimulatory composition at dose 5, and the induced HBsAg and HBcAg-specific IFN-γ levels were significantly higher than those of the CPG7909 group. However, due to differences between species, no significant increase in the induction effect was observed when the adjuvant dose was further increased, which is thought to be because the immune strength of the adjuvant is not accurately reflected in mice.
[0070] Although doses 1, 2, and 4 have the same immune stimulating effect as the CPG7909 group, the amount of adjuvant used is lower than that of the comparable CPG7909 group, which is advantageous.
[0071] [Table 4]
[0072] Example 5: Experimental group design and immunization process of Hepatitis B vaccine 1. Experimental animals and model establishment: C57BL / 6(N) mice: 81 males, 4 weeks old, provided by Shanghai Lingcheng Laboratory Animal Technology Co., Ltd. rAAV8-HBV adenovirus: purchased from Beijing Wujiahe Molecular Medicine Research Institute Co., Ltd. A mouse model in which rAAV8-HBV persistently infects C57BL / 6(N) mice was established by tail vein injection of rAAV8-HBV adenovirus.
[0073] 2. Reagent materials: 1) HBsAg protein: prepared according to Example 1.
[0074] 2) HBcAg protein: prepared according to Example 1.
[0075] 3) To prepare for the next step, HBsAg stock solution, HBcAg stock solution, and QS-21 were diluted to 200 μg / ml, 100 μg / ml, and 50 μg / ml, respectively, using PBS solution (purchased from Hyclone). CpG was dissolved in PBS solution and diluted to 100 μg / ml.
[0076] 3. Experimental group design: Referring to Table 5, the injection volume for each mouse was 100 μL per mouse. Group A was the negative control, and 100 μL of PBS solution was injected per mouse.
[0077] [Table 5]
[0078] 4. Animal immunization: All groups received intramuscular injections once every two weeks into the right hind thigh, for a total of six doses. These were administered at weeks 4, 6, 8, 10, 12, and 14 after tail vein injection of rAAV8-HBV virus. Blood samples were collected every two weeks after the start of administration, at weeks 4, 6, 8, 10, 12, 14, 16, 18, 20, and 22. All mice were sacrificed at week 22.
[0079] Example 6: Effect of Hepatitis B Vaccine on Serum HBsAg Levels 1. Serum HBsAg detection steps: The detection was carried out at Nanjing Drum Tower Hospital.
[0080] A two-step immunoassay was used. First, the detection sample was bound to paramagnetic microparticles coated with hepatitis B surface antibody, washed, and then acridinium ester-labeled hepatitis B surface antibody conjugate was added. After washing, pre-excitation solution and excitation solution were added to the reaction mixture. The relative light units (RLU) of the detection sample were measured, and the HBsAg content in the sample was positively correlated with the RLU. The ARCHTITECT HBsAg standard curve was generated to determine the HBsAg concentration in the mouse serum sample. The final HBsAg concentration in the mouse serum sample was 50-200 times higher than the measured value.
[0081] 2. Results Analysis (Figure 7): The Group H vaccine containing the immunostimulant of the present invention showed a clear tendency for the corresponding HBsAg levels to decrease, and a stable and long-term immune effect was maintained after the immunization process (from week 14), demonstrating a clear advantage over the CpG-only group (Group F) and the QS-21 group (Group G). In Group H, the HBsAg level initially exceeded 6350 IU / ml and decreased to approximately 50 IU / ml. After the second immunization (week 6), the HBsAg level in this group decreased by more than 30% and by the third immunization (week 8), the HBsAg level decreased by more than 70%, and the average decrease rate remained at approximately 92% after the end of immunization at week 14. This demonstrated excellent immune efficacy. Compared with the double-adjuvant control (Group I), Group H still maintained a stable immune effect after the end of immunization at week 14, demonstrating a significantly superior immune level compared to Group I.
[0082] Example 7: Evaluation of humoral immune effect of hepatitis B vaccine 1. Serum HBsAb detection steps: The detection was carried out at Nanjing Drum Tower Hospital.
[0083] A two-step immunoassay was used. First, the detection sample was mixed with paramagnetic microparticles coated with recombinant HBsAg (rHBsAg), washed, and then an acridinium ester-labeled rHBsAg conjugate was added. After washing, pre-excitation solution and excitation solution were added to the reaction mixture. The relative light units (RLU) of the detection sample were measured, and the HBsAb content in the sample was positively correlated with the RLU. The ARCHTITECT HBsAb standard curve was then generated to determine the HBsAb concentration in the mouse serum samples. The final HBsAb concentration in the mouse serum samples was 50-200 times higher than the measured value.
[0084] 2. Results analysis (Figure 8): The Group H vaccine containing the immunostimulant began to produce HBsAb (over 10mIU / ml) after the second immunization (week 6), and the HBsAb level continued to increase with increasing immunizations, demonstrating a clear superiority over the CpG group (Group F) and the QS-21 group (Group G). Two weeks after the end of immunization (week 16), the HBsAb level nearly saturated, reaching a logarithm of 4.0, or approximately 10,000mIU / ml, demonstrating a clear advantage in antibody production compared to the double-adjuvant control (Group I).
[0085] Example 8: Evaluation of cellular immune effect of hepatitis B vaccine 1. Detection step: Same as in Example 2. See Table 6 for experimental group settings.
[0086] 2. Evaluation index: A positive result is when the number of spots in the control well is 5 SFC or less and the number of spots in the sample well is 10 SFC or more. A positive result is when the number of spots in the control well is more than 5 SFC but less than 10 SFC, and the number of spots in the sample well / the number of spots in the control well is 2 or more. A positive result is when the number of spots in the control well is more than 10 SFC, and the number of spots in the sample well / the number of spots in the control well is 3 or more.
[0087] [Table 6]
[0088] 3. Experimental results: Cellular immunity level detection results: See Figures 9 and 10 for ELISPOT spot results. As shown in the analysis results, the HBsAg-specific IFN-γ seroconversion rate was 100% in groups F to I, and the HBcAg-specific IFN-γ seroconversion rate was 100% in groups F to I. The H group vaccine containing the immunostimulant was able to induce relatively high levels of HBsAg and HBcAg-specific IFN-γ, each at 2350 SFC / 10 6 Larger than splenocytes, 1250SFC / 106 The level of HBsAg and HBcAg-specific IFN-γ induced by the double adjuvant control (Group I) was approximately 1630 SFC / 10 6 Splenocytes, approximately 750SFC / 10 6 In splenocytes, it was clearly lower than in group H.
[0089] Example 9: Detection of HBsAg and HBcAg specific antibodies in serum using pharmaceutical compositions 1. Detection step: A 96-well microplate was coated with purified HBsAg and HBcAg to form solid-phase antigens. After blocking, the test serum was diluted several times from a certain starting dilution to set multiple dilutions. The diluted serum samples were added to the 96-well microplate and then bound to HRP-labeled anti-IgG / IgG1 / IgG2a antibodies to form antigen-antibody (serum)-enzyme-labeled antibody complexes. Finally, the substrate TMB was added to develop color, and the absorbance (OD value) at a wavelength of 450 nm was measured using a microplate reader. The intensity of the color development was positively correlated with the levels of HBsAg and HBcAg-specific antibody IgG / IgG1 / IgG2a in the test sample. The antibody titer was determined by fitting the relationship curve of "absorbance OD value - serum sample dilution factor (Log)".
[0090] 2.Result analysis: 1) Serum HBsAb IgG antibody and subtype detection results: The HBsAg IgG antibody and subtype levels detected in mouse serum by ELISA at different times in each group are shown in Figure 11. The group H vaccine containing the immunostimulant produced relatively high titers of anti-HBsAg-specific IgG / IgG1 / IgG2a antibodies. Furthermore, antibody levels continued to increase with increasing immunization cycles, reaching near saturation by the sixth immunization (week 14), with specific antibody titers reaching more than 5.4 logarithms. No specific antibodies were detected in groups A to D. Although groups E to G produced HBsAg-specific IgG / IgG1 / IgG2a antibody levels, these antibody levels were significantly lower than those in group H. The double adjuvant control (group I) produced significantly lower anti-HBsAg-specific IgG and IgG2a antibody levels than group H.
[0091] 2) Serum HBcAb IgG antibody and subtype detection results: The HBcAb IgG antibody and subtype levels detected in mouse serum by ELISA at different times in each group are shown in Figure 12. The group H vaccine containing the immunostimulant produced relatively high titers of anti-HBcAg-specific IgG / IgG1 / IgG2a antibodies. Furthermore, antibody levels continued to increase with increasing immunizations, reaching near saturation by the sixth immunization (week 14), with specific antibody titers reaching 4.8 logarithms or more. No specific antibodies were detected in groups A through D. Although groups E through G produced HBcAg-specific IgG / IgG1 / IgG2a antibody levels, the antibody levels were significantly lower than those in group H. Furthermore, group H showed a high tendency toward the Th1 pathway, and panel D showed a clear trend toward an increase in specific IgG2a antibody, indicating that the group H vaccine can promote subtype conversion of anti-HBcAg antibodies, with a significantly higher conversion efficiency than the dual-adjuvant control (group I).
[0092] Example 10: Effect of different saponin pharmaceutical compositions on immune efficacy 1. Experimental animals: C57BL / 6(N) mice, male, 4 weeks old, 40 mice, provided by Shanghai Lingcheng Experimental Animal Technology Co., Ltd.
[0093] 2. Reagent materials: 1) HBsAg protein, HBcAg protein, and CpG T1 were all prepared as described in Example 1. 2) QS-21 (CAS number A010-023, purchased from BRENNTAG), ginsenoside Rg1 (CAS: 22427-39-0, purchased from Nanjing Spring and Autumn Bio-Engineering Co., Ltd.), astragaloside A (CAS: 84687-43-4, purchased from Nanjing Spring and Autumn Bio-Engineering Co., Ltd.), platycodin D (CAS: 58479-68-8, purchased from Hubei Yunbi Technology Co., Ltd.), Iscom adjuvant (purchased from Shanghai Xiyuan Bio-Technology Co., Ltd.).
[0094] 3) To prepare for the next step, HBsAg stock solution and HBcAg stock solution were diluted to 200 μg / ml and 100 μg / ml, respectively, using PBS solution (purchased from Hyclone). Each saponin was diluted to 50 μg / ml. CpG T1 was dissolved in PBS solution and diluted to 100 μg / ml.
[0095] 3. Experimental group design: See Table 7. The injection volume was 100 μL per mouse. Group A was the negative control, and received 100 μL of PBS solution per mouse.
[0096] 4. Experimental steps: same as in Example 2.
[0097] 5. Experimental results: The ELISPOT spot results are shown in Figures 13 and 14. As shown in the results, when CpG T1 was combined with each saponin, an effective synergistic effect was achieved, and the induced levels of HBsAg and HBcAg-specific IFN-γ were significantly higher than those of other CpG and saponin compositions, with QS21 showing the most excellent effect.
[0098] [Table 7]
[0099] As can be seen from the above, the pharmaceutical composition of the present invention uses a combination of two adjuvants, and compared with a single adjuvant or the combination of other CPG adjuvants and QS21, the CpG T1-T3 of the present invention exhibits efficient synergistic effects with various adjuvants, particularly QS-21, and can mediate a stronger immune response. Pharmaceutical compositions containing this immunostimulatory composition have obvious advantages and exhibit efficient immunotherapeutic effects, and are expected to have high clinical value and a wide market.
[0100] Although the present invention has been described in detail above, those skilled in the art should understand that various modifications and variations can be made to the present invention without departing from the spirit and scope of the present invention. The scope of protection of the present invention is not limited to the above detailed description, and such modifications and variations also fall within the scope of the claims. Although specific embodiments of the present invention have been described above as examples, it is clear to those skilled in the art that these are given by way of example and that the scope of protection of the present invention is limited by the claims. Those skilled in the art can make various changes and variations to these embodiments without departing from the spirit of the present invention, and all such changes and variations fall within the scope of protection of the present invention.
Claims
1. i) a hepatitis B surface antigen comprising or consisting of the sequence set forth in SEQ ID NO: 1; ii) a hepatitis B core antigen comprising or consisting of the sequence set forth in SEQ ID NO: 2; iii) An immunostimulatory composition comprising a saponin and a CpG oligodeoxynucleotide, or consisting of an adjuvant containing a saponin and a CpG oligodeoxynucleotide, wherein the CpG oligodeoxynucleotide sequence is any one selected from CpG T1: TCG TTC GTT CGT TCG TCG TTC GTT (SEQ ID NO: 6), CpG T2: TCG TTC GTT CGT TCG TTC GTT CGT T (SEQ ID NO: 7), and CpG T3: TCG TCG TCG TCG TCG TCG TCG TCG (SEQ ID NO: 8), and the saponin is QS-21.
2. 2. The pharmaceutical composition of claim 1, wherein the sequence of the CpG oligodeoxynucleotide is CpG T1: TCG TTC GTT CGT TCG TTC GTT (SEQ ID NO: 6).
3. The pharmaceutical composition of claim 1 or 2, wherein the CpG oligodeoxynucleotide comprises a phosphorothioate bond.
4. The pharmaceutical composition according to any one of claims 1 to 3, wherein the CpG oligodeoxynucleotide is a thio oligodeoxynucleotide.
5. The pharmaceutical composition according to any one of claims 1 to 4, wherein the CpG oligodeoxynucleotide is a perthio oligodeoxynucleotide.
6. The pharmaceutical composition according to any one of claims 1 to 5, wherein the weight ratio of the CpG oligodeoxynucleotide to the saponin is 1-40:0.1-2.
7. The pharmaceutical composition according to any one of claims 1 to 6, wherein the weight ratio of the CpG oligodeoxynucleotide to the saponin is 2-40:0.1-2.
8. The pharmaceutical composition according to any one of claims 1 to 7, wherein the weight ratio of the CpG oligodeoxynucleotide to the saponin is 2:
1.
9. 9. The pharmaceutical composition according to any one of claims 1 to 8, wherein the active fragment of Hepatitis B core antigen comprises or consists of consecutive amino acids from position 1 to position X in SEQ ID NO: 2, where X is an integer between 149 and 183.
10. 10. The pharmaceutical composition of claim 9, wherein the active fragment of Hepatitis B core antigen comprises or consists of consecutive amino acids from position 1 to position X in SEQ ID NO:2, where X is an integer between 152 and 183.
11. The pharmaceutical composition according to any one of claims 1 to 10, wherein the weight ratio of components i), ii) and iii) of the pharmaceutical composition is 4:2:1.1-42.
12. The pharmaceutical composition according to any one of claims 1 to 11, wherein the weight ratio of components i), ii) and iii) of the pharmaceutical composition is 4:2:2.1-42.
13. 13. The pharmaceutical composition according to any one of claims 1 to 12, wherein the weight ratio of components i), ii) and iii) of said pharmaceutical composition is 4:2:
3.
14. The pharmaceutical composition according to any one of claims 1 to 13, further comprising iv) a pharmaceutically acceptable carrier.
15. A vaccine for preventing or treating hepatitis B, comprising the pharmaceutical composition according to any one of claims 1 to 14.
16. A method for producing a medicament for preventing and / or treating hepatitis B virus infection and / or hepatitis B virus-mediated diseases, using the pharmaceutical composition according to any one of claims 1 to 14.
17. 17. The method of claim 16, wherein the hepatitis B virus infection and / or hepatitis B virus-mediated disease is selected from hepatitis B, liver cirrhosis, and liver cancer.
18. A method for producing a drug for producing a humoral immune and / or cellular immune response against hepatitis B virus in a subject, using the pharmaceutical composition according to any one of claims 1 to 14.
19. A method for producing a drug for converting the subtype of hepatitis B core antibody in a subject, using the pharmaceutical composition according to any one of claims 1 to 14.
20. A method for producing a medicament for breaking through immune tolerance of hepatitis B virus in a subject, using the pharmaceutical composition according to any one of claims 1 to 14.
Citation Information
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