Varicella zoster virus (VZV) vaccine

CN121488041APending Publication Date: 2026-02-06SHENZHEN SHENXIN BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202480044546.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2023-06-30
Filing Date
2024-06-28
Publication Date
2026-02-06

AI Technical Summary

Technical Problem

Current technologies are insufficient to effectively prevent and treat shingles and its complications caused by varicella-zoster virus (VZV), especially postherpetic neuralgia. Furthermore, the incidence rate increases with age and declining immune function.

Method used

Develop a non-natural nucleic acid that encodes a polynucleotide of the VZVgE protein or a fragment thereof, deliver it to host cells via a genetically engineered vector and a delivery vector, induce a significant immune response, and generate an immune response against VZV.

Benefits of technology

By inducing a strong Th1-biased cellular immune response and high levels of IgG antibodies, it effectively prevents and treats VZV infection and related diseases, especially postherpetic neuralgia.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a non-natural nucleic acid, a genetic engineering vector, a host cell, a delivery vector, a pharmaceutical composition and application thereof, and a VZV (varicella zoster virus) vaccine. The non-natural nucleic acid comprises polynucleotide encoding VZV gE protein or a fragment thereof.
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Description

Varicella-zoster virus (VZV) vaccine Technical Field

[0001] The invention belongs to the field of biotechnology and relates to a varicella-zoster virus (VZV) vaccine. Background Art

[0002] Herpes zoster (HZ) is caused by the reactivation of the varicella zoster virus (VZV) from a previous infection. VZV is highly contagious, with infected individuals being the primary source of infection. Transmission occurs primarily through direct contact and respiratory droplets. During the first two days of the rash, the virus is excreted through the tear glands or saliva. The virus in the blister fluid of patients with VZV is infectious and can be transmitted through contact with skin lesions or inhalation.

[0003] Shingles usually presents as a rash that appears on one side of the body and is accompanied by pain and itching. It can last for two to four weeks, and papules and blisters may also appear all over the body, accompanied by severe pain. A common complication of shingles is postherpetic neuralgia, which can last for months to years and seriously affect the patient's normal work and life. With age, the body's immune function declines, and the incidence of shingles increases sharply. The global incidence rate in people over 60 years old can reach 8 to 12 per 1,000 person-years, and at least half of the elderly over 85 years old have suffered from shingles at least once.

[0004] Summary of the Invention

[0005] The present disclosure provides a non-natural nucleic acid that can induce a significant immune response in an organism.

[0006] In addition, the present disclosure also provides a polypeptide or protein encoded by the non-natural nucleic acid, a genetic engineering vector comprising the above-mentioned non-natural nucleic acid, a delivery vector comprising the above-mentioned non-natural nucleic acid, the polypeptide or protein encoded therefrom or the above-mentioned genetic engineering vector, a pharmaceutical composition and a vaccine and their applications.

[0007] A non-natural nucleic acid comprises a polynucleotide encoding a VZVgE protein or a fragment thereof.

[0008] In some embodiments, the amino acid sequence of the VZVgE protein comprises or is an amino acid sequence that is at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the amino acid sequence shown in SEQ ID NO:1.

[0009] In some embodiments, the VZV gE protein is a full-length gE protein.

[0010] In some embodiments, the fragment of the VZVgE protein is one of the following:

[0011] (1) a truncated polypeptide of positions 23 to 623, 31 to 623, 1 to 561, 1 to 573, 1 to 543, 31 to 573, or 31 to 543 of the VZV gE protein; and

[0012] (2) A polypeptide having an amino acid sequence that is at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the truncated polypeptide of (1).

[0013] In one embodiment, the VZVgE protein or a fragment thereof further has a mutation; preferably, the mutation is one or two of the following: Y569A and Y582G mutations.

[0014] In one embodiment, the VZVgE protein or fragment thereof comprises or is one of the following polypeptides or proteins:

[0015] (1) a polypeptide or protein whose amino acid sequence is represented by one of SEQ ID NOs: 1 to 8; and

[0016] (2) A polypeptide or protein comprising an amino acid sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to one of the sequences of SEQ ID NOs: 1 to 8.

[0017] In some embodiments, the VZVgE protein or fragment thereof is further linked to a heterologous signal peptide and / or ferritin.

[0018] In some embodiments, the heterologous signal peptide includes one or more of the following: an IgE signal peptide and an IgGκ signal peptide;

[0019] In some embodiments, the amino acid sequence of the IgGκ signal peptide is shown in SEQ ID NO: 9;

[0020] In some embodiments, the amino acid sequence of the ferritin is as shown in SEQ ID NO:10.

[0021] In some embodiments, the nucleic acid is RNA;

[0022] In some embodiments, the polynucleotide encoding the VZVgE protein or fragment thereof is codon optimized;

[0023] In some embodiments, the polynucleotide encoding the VZVgE protein or fragment thereof comprises or is one of the following:

[0024] (1) RNA corresponding to a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 11 to 18; and

[0025] (2) RNA corresponding to a polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence of one of SEQ ID NOs: 11 to 18.

[0026] In some embodiments, the nucleic acid is RNA, and the nucleic acid comprises or is one of the following RNAs:

[0027] (1) RNA corresponding to a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 19 to 24; and

[0028] (2) RNA corresponding to a polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence of one of SEQ ID NOs: 19 to 24.

[0029] In some embodiments, the RNA is mRNA.

[0030] In some embodiments, the nucleic acid is mRNA; preferably, the mRNA comprises at least one of a 5'-cap structure, a 5'-UTR, a 3'-UTR, and a poly(A) tail.

[0031] In some embodiments, the DNA sequence corresponding to the 5'-UTR is shown in SEQ ID NO: 25;

[0032] In some embodiments, the DNA sequence corresponding to the 3'-UTR is shown in SEQ ID NO: 26;

[0033] In some embodiments, the nucleotides comprising the poly(A) tail comprise at least 20, at least 40, at least 80, at least 100, or at least 120 A nucleotides. In some embodiments, the nucleotides comprising the poly(A) tail comprise at least 20, at least 40, at least 80, at least 100, or at least 120 A nucleotides consecutively. In some embodiments, the nucleotides comprising the poly(A) tail comprise one or more nucleotides other than A nucleotides. In some embodiments, the DNA sequence corresponding to the poly(A) tail is shown in SEQ ID NO: 27.

[0034] In some embodiments, the nucleic acid is DNA. In some embodiments, the DNA is capable of being transcribed into RNA.

[0035] In some embodiments, the polynucleotide encoding the VZVgE protein or fragment thereof is codon optimized;

[0036] In some embodiments, the polynucleotide encoding the VZVgE protein or fragment thereof comprises or is one of the following:

[0037] (1) a polynucleotide whose nucleotide sequence is represented by one of SEQ ID NOs: 11 to 18; and

[0038] (2) A polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence of one of SEQ ID NOs: 11 to 18.

[0039] In some embodiments, the nucleic acid comprises or is one of the following polynucleotides:

[0040] (1) a polynucleotide whose nucleotide sequence is represented by one of SEQ ID NOs: 19 to 24; and

[0041] (2) A polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence of one of SEQ ID NOs: 19 to 24.

[0042] In some embodiments, the nucleic acid contains modified nucleotides;

[0043] In some embodiments, the nucleic acid contains modified nucleosides;

[0044] In some embodiments, the modified nucleoside comprises at least one of a modified uridine, a modified cytidine, a modified adenosine, and a modified guanosine.

[0045] A genetic engineering vector, comprising the aforementioned nucleic acid, or comprising a polynucleotide capable of being transcribed into the aforementioned nucleic acid.

[0046] A host cell comprising the above-mentioned genetic engineering vector.

[0047] The protein or polypeptide encoded by the above nucleic acid.

[0048] A delivery vector comprising the above-mentioned nucleic acid and the above-mentioned genetic engineering vector.

[0049] In some embodiments, the delivery vehicle is a lipid nanoparticle (LNP), a cationic liposome, a cationic protein, or a lipid polymer (LPP).

[0050] In some embodiments, the delivery vehicle is a lipid nanoparticle comprising a cationic lipid comprising the following compound (IV), or a pharmaceutically acceptable salt or stereoisomer thereof:

[0051] in:

[0052] L 3 and L 4 The same or different, each independently C1-C12 alkylene, C2-C12 alkenylene or C2-C12 alkynylene; preferably L 3 and L 4 are the same or different, and are each independently C3-C10 alkylene, C3-C10 alkenylene or C3-C10 alkynylene; further preferably, L 3 and L 4 The same or different, each independently a C3-C10 alkylene group; most preferably, L 3 and L 4 The same or different, each independently a C5-C8 alkylene group;

[0053] G 4 and G 5 are the same or different, and are each independently -O-(C=O)-, -(C=O)-O-, -C(=O)-, -O-, -C(=O)-S- or -SC(=O)-; preferably, G 4 and G 5 The same or different, each independently being -O-(C=O)-, -(C=O)-O-, -C(=O)- or -O-; most preferably, G4 and G 5 the same or different, each independently selected from -O-(C=O)- or -(C=O)-O-;

[0054] R 18 and R are the same or different and are each independently a C5-C27 alkyl group or a C5-C27 alkenyl group containing one or more double bonds; preferably, R 18 and R are the same or different and are each independently a C8-C20 alkyl group or a C8-C20 alkenyl group containing one or more double bonds; further preferably, R 18 and R are the same or different and are each independently a C9-C17 alkyl group or a C9-C18 alkenyl group containing one or two double bonds; most preferably, R 18 and R are the same or different and are independently

[0055] R 20 is halogen, hydroxy, cyano, C1-C6 alkyl, nitro, C1-C6 alkoxy, C1-C6 alkylcarbonyloxy, C1-C6 alkoxycarbonyl, C1-C6 alkylaminocarbonyl or C1-C6 alkylcarbonylamino; preferably, R 20 is halogen, hydroxy, cyano, C1-C6 alkoxy, C1-C6 alkylcarbonyloxy, C1-C6 alkoxycarbonyl, C1-C6 alkylaminocarbonyl or C1-C6 alkylcarbonylamino; further preferably, R 20 is halogen, hydroxy, cyano, C1-C4 alkoxy, C1-C4 alkylcarbonyloxy, C1-C4 alkoxycarbonyl, C1-C4 alkylaminocarbonyl or C1-C4 alkylcarbonylamino; most preferably, R 20 is fluorine, hydroxy, cyano, methoxy, acetoxy, methoxycarbonyl, butylaminocarbonyl or acetamido;

[0056] z is 1, 2 or 3.

[0057] In some embodiments, the cationic lipid is the following compound (IV-1), or a pharmaceutically acceptable salt or stereoisomer thereof:

[0058] Alternatively, the cationic lipid is the following compound, or a pharmaceutically acceptable salt thereof:

[0059] A pharmaceutical composition comprising the aforementioned nucleic acid, the aforementioned genetic engineering vector, the aforementioned host cell, the aforementioned protein or polypeptide, or the aforementioned delivery vector, and a pharmaceutically acceptable carrier.

[0060] A vaccine comprising the aforementioned nucleic acid, the aforementioned genetic engineering vector, the aforementioned protein or polypeptide, or the aforementioned delivery vector.

[0061] An mRNA vaccine comprising the above-mentioned nucleic acid or the above-mentioned delivery vector.

[0062] In some embodiments, the above-mentioned delivery vehicle is a lipid nanoparticle (LNP).

[0063] Use of the aforementioned nucleic acid, the aforementioned genetic engineering vector, the aforementioned host cell, the aforementioned protein or polypeptide, or the aforementioned delivery vector or the aforementioned pharmaceutical composition in the preparation of a drug;

[0064] In some embodiments, the medicament is used to prevent or treat VZV infection or a disease caused by VZV infection;

[0065] In some embodiments, the drug is used to prevent, treat or improve neuropathic pain caused by VZV infection;

[0066] In some embodiments, the medicament is used to prevent, treat or ameliorate postherpetic neuralgia;

[0067] In some embodiments, the drug is a vaccine; preferably, the drug is an mRNA vaccine;

[0068] In some embodiments, the medicament is for preventing or treating varicella or shingles. BRIEF DESCRIPTION OF THE DRAWINGS

[0069] Figures 1A to 1C show the results of cellular immune assays on day 6 after single immunization of mice with different mRNA vaccines. Figure 1A shows the Elispot assay results for IFN-γ, Figure 1B shows the Elispot assay results for IL-4, and Figure 1C shows the IFN-γ / IL-4 ratio, i.e., a comparison of the Th1 and Th2 typing of different mRNAs (Th1 bias: IFNγ / IL-4 > 1). 1087 refers to the mRNA vaccine encapsulating the mRNA numbered 1087, and the same applies to the others.

[0070] Figures 2A-2F are comparisons of the cellular immunity levels induced by mRNA vaccine (1087) and Shingrix on days 14 and 81 after two immunizations of mice. Figure 2A is the Elispot detection result of IFN-γ on day 14, Figure 2B is the Elispot detection result of IL-4 on day 14, Figure 2C is the comparison of IFN-γ / IL-4 on day 14, that is, the Th1 and Th2 typing of different mRNAs (Th1 bias: IFNγ / IL-4>1), Figure 2D is the Elispot detection result of IFN-γ on day 81, Figure 2E is the Elispot detection result of IL-4 on day 81, and Figure 2F is the IFN-γ / IL-4 on day 81.

[0071] Figure 3 is a comparison of IgG antibody titers induced after immunization of mice with mRNA vaccine (1087) and Shingrix.

[0072] Figures 4A-4B show the IgG antibody titers induced by three immunizations of rats with different doses of mRNA vaccine (1087), wherein Figure 4A shows the IgG antibody titer of male rats, and Figure 4B shows the IgG antibody titer of female rats.

[0073] Figure 5 shows the Elispot detection results of IFN-γ on the 58th day after rats were immunized with different doses of mRNA vaccine (1087).

[0074] Figure 6 is a cellular immunity test (ELISpot) of mRNA vaccine in pre-immunized mice.

[0075] Figure 7 is a cellular immunity assay (ICS) of mRNA vaccine in pre-immunized mice.

[0076] Figure 8 is the humoral immunity detection (gE-specific IgG antibody) of mRNA vaccine in the serum of pre-immunized mice.

[0077] Detailed Description of the Invention

[0078] 1. Definition

[0079] All patents, patent applications, scientific publications, manufacturer's instructions and guidelines, etc., cited herein, whether supra or infra, are hereby incorporated by reference in their entirety. Nothing herein should be construed as an admission that the present disclosure is not entitled to antedate such publication.

[0080] Unless otherwise indicated, scientific and technical terms used herein have the meanings commonly understood by those skilled in the art. Furthermore, terms related to protein and nucleic acid chemistry, molecular biology, cell and tissue culture, and microbiology used herein are terms widely used in the corresponding fields (see, for example, Molecular Cloning: A Laboratory Manual, 2nd Edition, J. Sambrook et al. eds., Cold Spring Harbor Laboratory Press, Cold Spring Harbor 1989). For a better understanding of the present invention, definitions and explanations of relevant terms are provided below.

[0081] As used herein, the expressions "comprise," "include," "contain," and "have" are open ended and mean the inclusion of the listed elements, steps, or components but not the exclusion of other unlisted elements, steps, or components. The expression "consisting of excludes any element, step, or component not specified. The expression "consisting essentially of means that the scope is limited to the specified elements, steps, or components, plus optional elements, steps, or components that do not significantly affect the basic and novel properties of the claimed subject matter. It should be understood that the expressions "consisting essentially of" and "consisting of are encompassed within the meaning of the expression "comprising."

[0082] As used herein, unless the context indicates otherwise, the singular expressions "a," "an," "the," and similar references used in the context of describing the invention (particularly in the context of the claims) should be interpreted to cover both the singular and the plural. The terms "one or more" or "at least one" encompass 1, 2, 3, 4, 5, 6, 7, 8, 9 or more. The terms "at least one" or "one or more" encompass 1, 2, 3, 4, 5, 6, 7, 8, 9 or more.

[0083] The numerical ranges described herein should be understood to encompass any and all subranges contained therein. For example, the range "1 to 10" should be understood to include not only the explicitly stated values ​​of 1 and 10, but also any individual value (e.g., 2, 3, 4, 5, 6, 7, 8, and 9) and subranges (e.g., 1 to 2, 1.5 to 2.5, 1 to 3, 1.5 to 3.5, 2.5 to 4, 3 to 4.5, etc.) within the range of 1 to 10. This principle also applies to ranges that use only one value as a minimum or maximum value.

[0084] As used herein, the terms "and / or," "any combination thereof," and their grammatical equivalents are used interchangeably. These terms may expressly refer to any combination. For example, the following phrases "A, B, and / or C" or "A, B, C, or any combination thereof" may refer to "A alone; B alone; C alone; A and B; B and C; A and C; and A, B, and C."

[0085] Unless otherwise stated, all methods described herein can be performed in any suitable order.

[0086] As used herein, the term "naturally occurring" or "naturally occurring" refers to the fact that a substance can be found in nature. For example, a peptide, amino acid, protein, or nucleic acid that is present in an organism (including viruses) and can be isolated from a source in nature and has not been experimentally modified by man is naturally occurring.

[0087] As used herein, the term "non-naturally occurring" when used to describe a nucleic acid herein is intended to mean that the nucleic acid is not found in nature. For example, a non-naturally occurring nucleic acid encoding a viral peptide or protein has at least one genetic alteration or chemical modification that is not normally found in wild-type strains of the virus in question. Such genetic alterations include, for example, the introduction of an expressible nucleic acid sequence encoding a peptide or polypeptide that is heterologous to the virus in question, other nucleic acid additions, nucleic acid deletions, nucleic acid substitutions, and / or other functional disruptions to the viral genetic material. Chemical modifications include, for example, one or more functional nucleotide analogs as described herein.

[0088] As used herein, the term "wild type" means that the sequence is naturally occurring and has not been artificially modified, including naturally occurring mutants. The term "fragment" or "fragment of a nucleic acid" in a nucleic acid refers to a portion of a nucleic acid. For example, a nucleic acid that is shortened at the 5' and / or 3' end. A fragment of a nucleic acid comprises at least 50%, 60%, 70% or 80% of the nucleic acid. Preferably, a fragment of a nucleic acid comprises at least 70% or 80% of the nucleotide residues from the nucleic acid. Preferably, at least 90%, 95%, 96%, 97%, 98% or 99% of the nucleotide residues. Typically, this can be a shorter portion of the full length of the nucleic acid.

[0089] The term "variant" in reference to nucleic acids refers to a nucleic acid variant, wherein at least one nucleotide of the nucleic acid variant is different from a reference nucleic acid (or "parent"). Compared to a reference nucleic acid, a variant nucleic acid includes single or multiple nucleotide deletions, additions, mutations and / or insertions, wherein: deletions include removing one or more nucleotides from a reference nucleic acid; additions include fusing one or more nucleotides (e.g., 1, 2, 3, 5, 10, 20, 30, 50 or more nucleotides) to the 5' and / or 3' end of the reference nucleic acid; mutations may include, but are not limited to, substitutions (e.g., at least one nucleotide is removed and another nucleotide is inserted in its place (e.g., transversions and conversions)); insertions include adding at least one nucleotide. The term "nucleic acid variant" as used herein includes naturally occurring variants and engineered variants. Therefore, "nucleic acid variants" as defined herein can be derived from, isolated from, related to, based on, or homologous to a reference nucleic acid sequence. "Nucleic acid variants" optionally have at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to a corresponding naturally occurring (wild-type) nucleic acid or a homolog, fragment or derivative thereof; preferably at least 70%, more preferably at least 80%, even more preferably at least 85%, even more preferably at least 90%, most preferably at least 95% or even 97% sequence identity. It will be understood that, with respect to nucleic acid molecules, the term "variant" includes degenerate nucleic acid sequences, wherein a degenerate nucleic acid sequence according to the present invention is a nucleic acid that differs from a reference nucleic acid in codon sequence due to the degeneracy of the genetic code.

[0090] The term "variant" in relation to a protein refers to a protein variant, wherein at least one amino acid of the protein variant is different from that of a reference protein (or "parent"). Compared to a reference protein, a protein variant includes single or multiple amino acid deletions, additions, mutations and / or insertions, wherein: deletions include removing one or more amino acids from a reference protein; additions include fusing one or more amino acids (e.g., 1, 2, 3, 5, 10, 20, 30, 50 or more nucleotides) to the N-terminus and / or C-terminus of a reference protein; mutations may include, but are not limited to, substitutions (e.g., at least one amino acid is removed and another amino acid is inserted in its place); insertions include adding at least one amino acid. Generally, a protein variant has the same or similar activity as a reference protein; alternatively, a protein variant has an altered activity (e.g., increased or decreased) relative to a reference protein. In some embodiments, a "protein variant" optionally has at least 5%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99%; preferably at least 70%, more preferably at least 80%, even more preferably at least 85%, even more preferably at least 90%, and most preferably at least 95% or even 97% sequence identity to the corresponding naturally occurring (wild-type) protein or a homolog, fragment or derivative thereof.

[0091] As used herein, the term "% identity" or "% identity" refers to the percentage of identical nucleotides or amino acids in an optimal alignment between the sequences to be compared. The differences between the two sequences can be distributed over local regions (segments) or over the entire length of the sequences to be compared. The identity between the two sequences is usually determined after optimal alignment of a segment or "comparison window." Optimal alignment can be performed manually or with the aid of algorithms known in the art. Algorithms known in the art include, but are not limited to, the local homology algorithm described by Smith and Waterman, 1981, Ads App. Math. 2, 482 and Neddleman and Wunsch, 1970, J. Mol. Biol. 48, 443, the similarity search method described by Pearson and Lipman, 1988, Proc. Natl Acad. Sci. USA 88, 2444, or the similarity search method described by computer programs such as GAP, BESTFIT, FASTA, BLAST P, BLAST N, and TFASTA in the Wisconsin Genetics Software Package, Genetics Computer Group, 575 Science Drive, Madison, Wis. For example, the percent identity of two sequences can be determined using the publicly available BLASTN or BLASTP algorithms available on the National Center for Biotechnology Information (NCBI) website.

[0092] "% identity" or "% homology" can be obtained by determining the number of identical positions corresponding to the sequences to be compared, dividing this number by the number of positions compared (e.g., the number of positions in the reference sequence), and multiplying this result by 100 to obtain % identity. In some embodiments, the degree of identity is given for a region of at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%. In some embodiments, the degree of identity is given for the entire length of the reference sequence. Alignment for determining sequence identity can be performed using tools known in the art, preferably utilizing optimal sequence alignment, e.g., utilizing Align, utilizing standard settings, preferably EMBOSS::needle, Matrix:Blosum62, Gap Open 10.0, Gap Extend 0.5.

[0093] Preferably, a fragment or variant of a specific nucleic acid or a nucleic acid having a specific degree of identity with a specific nucleic acid preferably has at least one functional property of the specific nucleic acid and is preferably functionally equivalent to the specific nucleic acid, e.g. a nucleic acid that exhibits properties that are the same or similar to those of the specific nucleic acid.

[0094] As used herein, "nucleotide" includes deoxyribonucleotides, ribonucleotides, deoxyribonucleotide derivatives, and ribonucleotide derivatives. As used herein, "ribonucleotide" is a constituent of ribonucleic acid (RNA), consisting of a base molecule, a pentose molecule, and a phosphate molecule. It refers to a nucleotide with a hydroxyl group at the 2' position of the β-D-ribofuranosyl group. "Deoxyribonucleotide" is a constituent of deoxyribonucleic acid (DNA), also consisting of a base molecule, a pentose molecule, and a phosphate molecule. It refers to a nucleotide in which the hydroxyl group at the 2' position of the β-D-ribofuranosyl group is replaced by hydrogen. It is the main chemical component of chromosomes.

[0095] "Nucleotide" is generally referred to by a single letter representing the base, "A" or "A nucleotide" refers to adenine deoxyribonucleotide or adenine ribonucleotide containing adenine, "C" or "C nucleotide" refers to cytosine deoxyribonucleotide or cytosine ribonucleotide containing cytosine, "G" or "G nucleotide" refers to guanine deoxyribonucleotide or guanine ribonucleotide containing guanine, "U" or "U nucleotide" refers to uracil ribonucleotide containing uracil, and "T" or "T nucleotide" refers to thymine deoxyribonucleotide containing thymine.

[0096] As used herein, the term "nucleic acid" generally refers to a polymer comprising deoxyribonucleotides (deoxyribonucleic acid, referred to as DNA) or a polymer comprising ribonucleotides (ribonucleic acid, referred to as RNA) or any compound of a combination thereof. In addition, nucleic acids herein also include derivatives of nucleic acids. The term "derivatives of nucleic acids" includes chemical derivatization of nucleic acids on the bases, sugars or phosphates of the nucleotides, as well as nucleic acids containing non-natural nucleotides and nucleotide analogs. In addition, herein, nucleic acids can be in the form of single-stranded or double-stranded linear or covalently closed circular molecules.

[0097] "Polynucleotide sequence," "nucleic acid sequence," and "nucleotide sequence" are used interchangeably to refer to the order of nucleotides in a polynucleotide. Those skilled in the art will understand that a DNA coding strand (sense strand) and the RNA it encodes can be considered to have the same nucleotide sequence, with deoxythymidylate in the DNA coding strand sequence corresponding to uridine in the RNA sequence it encodes. The RNA corresponding to a DNA is a polynucleotide in which all Ts in the DNA are replaced by Us.

[0098] The polynucleotide may comprise one or more segments (nucleic acid fragments) (e.g., 1, 2, 3, 4, 5, 6, 7, 8 segments). For example, the polynucleotide may comprise a segment encoding a polypeptide of interest (e.g., a polypeptide and polypeptide antigen described herein). In a specific embodiment, the polynucleotide may comprise a segment encoding a polypeptide of interest and a regulatory segment (including but not limited to a segment for transcriptional regulation and translational regulation). In one embodiment, the regulatory segment comprises a polynucleotide corresponding to one or more of the following regulatory elements: a promoter, a 5' untranslated region (5'-UTR), a 3' untranslated region (3'-UTR), and a poly(A) tail.

[0099] As used herein, the term "promoter" refers to a polynucleotide located upstream of the 5' end of the coding region of a gene, which contains a conserved sequence required for specific binding of RNA polymerase and transcription initiation, can activate RNA polymerase, enable RNA polymerase to accurately bind to template DNA and have the specificity of transcription initiation. Promoters can be derived from viruses, bacteria, fungi, plants, insects and animals. Representative examples of promoters include bacteriophage T7 promoter, bacteriophage T3 promoter, SP6 promoter, lac operator-promoter, tac promoter, SV40 late promoter, SV40 early promoter, RSV-LTR promoter, CMV IE promoter, SV40 early promoter or SV 40 late promoter and CMV IE promoter.

[0100] As used herein, the term "5' untranslated region" or "5'-UTR" can be an RNA sequence in an mRNA that is upstream of the coding sequence and is not translated into protein. The 5'-UTR in a gene generally begins at the transcription start site and ends at the nucleotides upstream of the translation start codon of the coding sequence. The 5'-UTR can contain elements that control gene expression, such as a ribosome binding site, a 5'-terminal oligopyrimidine tract, and a translation initiation signal such as a Kozak sequence. mRNA can be post-transcriptionally modified by the addition of a 5' cap. Therefore, the 5'-UTR in a mature mRNA can also refer to the RNA sequence between the 5' cap and the start codon.

[0101] As used herein, the term "3' untranslated region" or "3'-UTR" refers to a region of an mRNA that is downstream of a coding sequence and is not translated into protein. The 3'-UTR in an mRNA is located between the stop codon and the poly(A) sequence of the coding sequence, for example, starting from the nucleotides downstream of the stop codon and ending at the nucleotides upstream of the poly(A) sequence.

[0102] As used herein, the terms "poly(A) acid", "poly(A) sequence" and "poly(A) tail" are used interchangeably, and naturally occurring poly(A) sequences are typically composed of adenine ribonucleotides. According to the present invention, the term "modified poly(A) sequence" refers to a poly(A) sequence comprising nucleotides or nucleotide segments other than adenine ribonucleotides. The poly(A) sequence is typically located at the 3' end of the mRNA, such as the 3' end (downstream) of the 3'-UTR. As used herein, the term "5' cap structure": the 5' cap structure is typically located at the 5' end of the mature mRNA. In some embodiments, the 5' cap structure is connected to the 5'-end of the mRNA via a 5'-5'-triphosphate bond. The 5' cap structure is typically formed by modified (e.g., methylated) ribonucleotides (especially by guanine nucleotide derivatives). For example, m7GpppN (cap 0, or "cap0," is a cap structure formed by the 5'-phosphate group of the hnRNA reacting with the 5'-phosphate group of m7GTP under the action of guanylyltransferase to form a 5',5'-phosphodiester bond), where N is the terminal 5' nucleotide of the nucleic acid carrying the 5'-cap structure. In some embodiments, the 5'-cap structure includes, but is not limited to, cap 0, cap 1 (a cap structure formed by further methylating the 2'-OH group of the first nucleotide of the hnRNA based on cap 0, or "cap 1"), cap 2 (a cap structure formed by further methylating the 2'-OH group of the second nucleotide of the hnRNA based on cap 1, or "cap 2"), cap 4, cap 0 analogs, cap 1 analogs, cap 2 analogs, or cap 4 analogs.

[0103] As used herein, the term "expression" includes transcription and / or translation of a nucleotide sequence. Thus, expression can involve the production of transcripts and / or polypeptides. The term "transcription" refers to the process by which the genetic code in a DNA sequence is transcribed into RNA (transcript). The term "in vitro transcription" refers to the in vitro synthesis of RNA, particularly mRNA, in a cell-free system (e.g., in an appropriate cell extract) (see, e.g., Pardi N., Muramatsu H., Weissman D., Karikó K. (2013). In: Rabinovich P. (eds) Synthetic Messenger RNA and Cell Metabolism Modulation. Methods in Molecular Biology (Methods and Protocols), vol 969. Humana Press, Totowa, NJ.). A vector that can be used to produce a transcript is also referred to as a "transcription vector," which contains regulatory sequences required for transcription. The term "transcription" encompasses "in vitro transcription."

[0104] As used herein, the term "host cell" refers to a cell for receiving, maintaining, replicating, expressing a polynucleotide or a vector. The term "host cell" includes prokaryotic cells (e.g., Escherichia coli) or eukaryotic cells (e.g., yeast cells and insect cells). For example, cells from humans, mice, hamsters, pigs, goats, primates. The cell can be derived from a variety of tissue types and includes primary cells and cell lines. Some specific examples include keratinocytes, peripheral blood leukocytes, bone marrow stem cells, and embryonic stem cells. In other embodiments, the host cell is an antigen presenting cell, particularly a dendritic cell, a monocyte, or a macrophage. The nucleic acid can be present in a host cell in a single copy or in several copies. In some embodiments, the host cell can be a cell expressing a polypeptide of the present invention therein.

[0105] In the context of the present invention, the term "plasmid" generally refers to a circular DNA molecule, but the term can also encompass linearized DNA molecules. Specifically, the term "plasmid" also encompasses molecules obtained by, for example, digesting a circular plasmid with a restriction enzyme, thereby converting the circular plasmid molecule into a linear molecule and linearizing the circular plasmid. Plasmids can replicate, i.e., amplify the genetic information stored as chromosomal DNA in the cell, and can be used for cloning, i.e., for amplifying genetic information in bacterial cells. Preferably, the DNA plasmid is a medium copy or high copy plasmid, more preferably a high copy plasmid. Examples of such high copy plasmids include, for example, pUC and pTZ plasmids or any other plasmid (e.g., pMB1, pCoIE1) comprising a replication origin that supports high copies of the plasmid.

[0106] The term "vaccine" is typically understood as a prophylactic or therapeutic material that provides at least one antigen or antigenic function that can stimulate the body's adaptive immune system to provide an adaptive immune response.

[0107] The term "treatment" or the like is used herein to generally refer to obtaining a desired pharmacological and / or physiological effect. Therefore, the treatment of the present application may relate to the treatment of a certain disease state, but may also relate to a prophylactic treatment for preventing a disease or its symptoms in whole or in part. Preferably, in some embodiments, the term "treatment" is understood to be therapeutic in terms of partially or completely curing a disease and / or the adverse effects and / or symptoms owing to the disease. Treatment may also be prophylactic or preventive treatment, i.e., measures taken to prevent a disease, such as to prevent infection and / or the onset of a disease.

[0108] As used herein, the terms "subject," "subject," and "patient" can be used interchangeably. In certain embodiments, the subject is a mammal, such as a human, non-human primate (e.g., ape, chimpanzee, monkey, and orangutan), domesticated animal (including dog and cat and livestock (e.g., horse, cattle, pig, sheep, and goat)), or other mammals. Other mammals include, but are not limited to, mice, rats, guinea pigs, rabbits, hamsters, etc. In a specific embodiment, the subject is a human. In one embodiment, the subject is a mammal (e.g., a human) suffering from an infectious disease or a neoplastic disease. In another embodiment, the subject is a mammal (e.g., a human) at risk of developing an infectious disease or a neoplastic disease.

[0109] As used herein, the term "administer" refers to providing or administering a medicament to a subject by any effective route. Exemplary routes of administration include, but are not limited to, one or more of the following: injection (e.g., subcutaneous, intramuscular, intradermal, intraperitoneal, intrathecal, intracerebroventricular, or intravenous), oral, intracavitary, sublingual, rectal, transdermal, intranasal, vaginal, and inhalation. When used to treat a disease, disorder, condition, or its symptom, the administration of the substance is typically performed after the onset of the disease, disorder, condition, or its symptom. When used to prevent a disease, disorder, condition, or symptom, the administration of the substance is typically performed before the onset of the disease, disorder, condition, or its symptom. Herein, some elements of the present invention will be described. These elements are listed together with specific embodiments, but it should be understood that they can be combined in any manner and in any number to produce another embodiment. The examples and preferred embodiments of the different descriptions should not be construed as limiting the present invention to only the embodiments clearly described. This specification should be understood to support and include embodiments combining the embodiments clearly described with any number of disclosed and / or preferred elements. For example, in one embodiment, the fragment of the VZV gE protein is further linked to a heterologous signal peptide, and in another embodiment, the heterologous signal peptide is an IgGκ signal peptide. The following embodiment is also an embodiment claimed for protection in this application: the fragment of the VZV gE protein is further linked to a heterologous signal peptide, and the heterologous signal peptide is an IgGκ signal peptide. Furthermore, unless the context indicates otherwise, any permutation and combination of all described elements in the present invention should be deemed to be disclosed by the present specification.

[0110] 2. Nucleic Acids

[0111] One embodiment of the present disclosure provides a nucleic acid comprising a polynucleotide encoding a VZV gE protein or a fragment thereof. In this document, "VZV gE protein or a fragment thereof" is an abbreviation for VZV gE protein or a fragment of VZV gE protein.

[0112] As used herein, a fragment of a VZV gE protein is an immunogenic derivative (eg, an immunogenic fragment of a VZV gE protein) that retains the ability to induce an immune response to VZV following administration to a human.

[0113] In some embodiments, the amino acid sequence of the VZV gE protein comprises or is an amino acid sequence that is at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the amino acid sequence shown in SEQ ID NO:1.

[0114] In some embodiments, the VZV gE protein is a full-length gE protein. In some embodiments, the amino acid sequence of the VZV gE protein is shown in SEQ ID NO: 1.

[0115] In some embodiments, the fragment of the VZV gE protein is one of the following: (1) a truncated polypeptide of positions 1 to 623, positions 23 to 623, positions 31 to 623, positions 1 to 561, positions 1 to 573, positions 1 to 543, positions 31 to 573, or positions 31 to 543 of the VZV gE protein; and (2) a polypeptide having an amino acid sequence that is at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to the truncated polypeptide in (1). It should be noted that the amino acid position numbers in positions 1 to 623, 23 to 623, 31 to 623, etc. herein are referenced to the corresponding amino acid positions in the polypeptide set forth in SEQ ID NO:1. It should be noted, and those skilled in the art will appreciate, that different VZV gE proteins may have different numbering systems, e.g., by adding or removing additional amino acid residues compared to SEQ ID NO:1. Therefore, it should be understood that when a particular amino acid residue is referred to by number, the description is not limited to the amino acid at the exact position numbered when counting from the beginning of the given amino acid sequence, but also refers to the equivalent / corresponding amino acid residue in any and all VZV gE protein sequences, even if the residue is not at the same exact position numbered, e.g., if the VZV gE protein is shorter or longer than SEQ ID NO:1, or has insertions or deletions compared to SEQ ID NO:1. It is understood that polypeptides identical to the truncated polypeptides corresponding to the above position numbering descriptions in other VZV genotypes are also fragments of the VZV gE protein described herein. In some embodiments, the VZV gE protein or fragment thereof is derived from the Oka strain.

[0116] In some embodiments, the VZV gE protein or fragment thereof further comprises a mutation. In some embodiments, the VZV gE protein or fragment thereof comprises at least one mutation in at least one motif of the VZV gE protein associated with ER retention, endocytosis, and / or localization to the Golgi apparatus or the trans-Golgi network (TGN). In some embodiments, the VZV gE protein or fragment thereof comprises a mutation associated with localization to the Golgi apparatus or the trans-Golgi network, which mutation can result in a reduction in VZV gE polypeptide targeted or localized to the Golgi apparatus or the trans-Golgi network. In some embodiments, the VZV gE protein or fragment thereof comprises a mutation associated with endocytosis, which mutation can result in a reduction in endocytosis of the VZV gE polypeptide. In some embodiments, the VZV gE protein or fragment thereof comprises at least one mutation in at least one phosphorylated acidic motif. In some embodiments, the VZV gE protein or a fragment of the VZV gE protein comprises one or both of the following mutations: a Y569A mutation and a Y582G mutation.

[0117] In some embodiments, the VZV gE protein or fragment thereof comprises or is one of the following polypeptides or proteins:

[0118] (1) a polypeptide or protein whose amino acid sequence is represented by one of SEQ ID NOs: 1 to 8; and

[0119] (2) A polypeptide or protein comprising an amino acid sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to one of the sequences of SEQ ID NOs: 1 to 8.

[0120] In some embodiments, the VZV gE protein or fragment thereof is further linked to ferritin and / or a heterologous signal peptide.

[0121] In some embodiments, the VZV gE protein or fragment thereof is further linked to a heterologous signal peptide.

[0122] In some embodiments, the VZV gE protein or fragment thereof is linked to a heterologous signal peptide; the heterologous signal peptide is located at the N-terminus or the C-terminus of the VZV gE protein or fragment thereof.

[0123] In some embodiments, the heterologous signal peptide is selected from one or more of the following: an IgE signal peptide and an IgG kappa signal peptide. In some embodiments, the heterologous signal peptide is an IgE HC (Ig heavy chain epsilon-1) signal peptide. In some embodiments, the heterologous signal peptide has the sequence MDWTWILFLVAAATRVHS. In some embodiments, the heterologous signal peptide has the sequence METPAQLLFLLLLWLPDTTG. In some embodiments, the heterologous signal peptide is selected from one or more of the following: Japanese encephalitis PRM signal sequence (MLGSNSGQRVVFTILLLLVAPAYS), VSV g protein signal sequence (MKCLLYLAFLFIGVNCA), and Japanese encephalitis JEV signal sequence (MWLVSLAIVTACAGA).

[0124] In some embodiments, the IgGκ signal peptide comprises or is one of the following polypeptides: (1) a polypeptide having an amino acid sequence as shown in SEQ ID NO:9; and (2) a polypeptide having at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity to the amino acid sequence as shown in SEQ ID NO:9.

[0125] In some embodiments, one of the following VZV gE proteins or fragments thereof is further linked to a heterologous signal peptide: a truncated polypeptide of positions 1 to 623, positions 23 to 623, positions 31 to 623, positions 1 to 561, positions 1 to 573, positions 1 to 543, positions 31 to 573, or positions 31 to 543 of the VZV gE protein. In some embodiments, the VZV gE protein or fragment thereof comprises or is a polypeptide or protein with an amino acid sequence as set forth in SEQ ID NO: 1, 4, or 5, and the VZV gE protein or fragment thereof is not linked to a heterologous signal peptide. In other embodiments, the VZV gE protein or fragment thereof comprises or is a polypeptide or protein with an amino acid sequence as set forth in SEQ ID NO: 1, 4, or 5, and the VZV gE protein or fragment thereof is linked to a heterologous signal peptide.

[0126] In some embodiments, the VZV gE protein or fragment thereof comprises or is a polypeptide or protein having an amino acid sequence as shown in SEQ ID NO: 1, 2, 3, 6, 7 or 8, and the VZV gE protein or fragment thereof is linked to a heterologous signal peptide.

[0127] In some embodiments, the VZV gE protein or fragment thereof is further linked to ferritin.

[0128] In some embodiments, the ferritin comprises or is one of the following: (1) a polypeptide or protein having an amino acid sequence as shown in SEQ ID NO: 10; and a polypeptide or protein having at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity to the amino acid sequence as shown in SEQ ID NO: 10.

[0129] In some embodiments, the polypeptide or protein encoded by the nucleic acid comprises or is one of the following:

[0130] (1) a polypeptide or protein whose amino acid sequence is represented by one of SEQ ID NOs: 1, 4, 5, and 28 to 33; and

[0131] (2) A polypeptide or protein comprising an amino acid sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to an amino acid sequence such as one of SEQ ID NOs: 1, 4, 5 and 28-33.

[0132] In some embodiments, the nucleic acid further comprises a polynucleotide encoding other proteins or polypeptides other than the VZV gE protein or its fragment. It is understood that other proteins or polypeptides other than the VZV gE protein or its fragment refer to proteins or polypeptides with biological significance (e.g., immunogenicity), such as other VZV proteins (e.g., envelope proteins), fragments, variants, or fragment variants thereof, other VZV glycoproteins (e.g., one or more of gI, gB, gH, gK, gL, gC, gN, and gM of VZV), fragments, variants, or fragment variants thereof, proteins or polypeptides of other viruses (e.g., HA protein of influenza virus or S protein of SARS-CoV-2), fragments, variants, or fragment variants thereof, immunoglobulin Fc region, fragments, variants, or fragment variants thereof, ferritin, fragments, variants, or fragment variants thereof, or flagellin, fragments, variants, or fragment variants thereof. It should be noted that, herein, "A, a fragment, a variant or a variant of a fragment thereof" is an abbreviation for A, a fragment of A, a variant of A or a variant of a fragment of A.

[0133] In some embodiments, the other proteins or polypeptides encoded by the nucleic acid other than the VZV gE protein or its fragment may be one or more. For example, the other proteins or polypeptides encoded by the nucleic acid other than the VZV gE protein or its fragment are one or more of the following (1) to (5): (1) other proteins of VZV (e.g., envelope protein), fragments, variants, or variants of fragments thereof, (2) other glycoproteins of VZV (e.g., one or more of gI, gB, gH, gK, gL, gC, gN, and gM of VZV), fragments, variants, or variants of fragments thereof, (3) proteins or polypeptides of other viruses (e.g., HA protein of influenza virus or S protein of ARS-CoV-2), fragments, variants, or variants of fragments thereof, (4) immunoglobulin Fc region (e.g., human IgG, IgA, IgD, gE, or IgM), fragments, variants, or variants of fragments thereof, and (5) ferritin, fragments, variants, or variants of fragments thereof.

[0134] In some embodiments, the polynucleotide encoding the VZV gE protein or its fragment is codon optimized. Codon optimization methods are known in the art and can be used as provided herein. In some embodiments, codon optimization can be used to: match the codon frequency of the target and host organisms to ensure proper folding; bias GC content to increase mRNA stability or reduce secondary structure; minimize tandem repeat codons or base stretches that can impair gene structure or expression; customize transcription and translation control regions; insert or remove protein trafficking sequences; remove / add post-translational modification sites in the encoded protein (e.g., glycosylation sites); add, remove or reorganize protein domains; insert or delete restriction sites; modify ribosome binding sites and mRNA degradation sites; regulate translation rate so that the various domains of the protein can fold properly; or reduce or eliminate problematic secondary structures within the polynucleotide. Codon optimization tools, algorithms, and services are known in the art, and non-limiting examples include services from GeneArt (Life Technologies), DNA2.0 (Menlo Park CA), and / or patented methods. In some embodiments, an optimization algorithm is used to optimize the open reading frame (ORF) sequence. In some embodiments, the codon-optimized nucleic acid is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 99% identical to the nucleic acid before codon optimization.

[0135] In some embodiments, the polynucleotide encoding the VZV gE protein or a fragment thereof comprises or is one of the following:

[0136] (1) a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 11 to 18 or its corresponding RNA; and

[0137] (2) A polynucleotide comprising at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity to a nucleotide sequence as set forth in one of SEQ ID NOs: 11 to 18, or an RNA corresponding thereto.

[0138] In some embodiments, the polynucleotide encoding the heterologous signal peptide is codon optimized.

[0139] In some embodiments, the polynucleotide encoding the heterologous signal peptide comprises or is one of the following polynucleotides: (1) a polynucleotide having a nucleotide sequence as set forth in SEQ ID NO: 34 or its corresponding RNA; and (2) a polynucleotide having a nucleotide sequence as set forth in SEQ ID NO: 34 that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence as set forth in SEQ ID NO: 34 or its corresponding RNA.

[0140] In some embodiments, the polynucleotide encoding ferritin is codon optimized.

[0141] In some embodiments, the polynucleotide encoding ferritin comprises one of the following polynucleotides: (1) a polynucleotide having a nucleotide sequence as set forth in SEQ ID NO: 35, or its corresponding RNA; and (2) a polynucleotide having a nucleotide sequence as set forth in SEQ ID NO: 35 that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to the nucleotide sequence as set forth in SEQ ID NO: 35, or its corresponding RNA.

[0142] In some embodiments, the nucleic acid comprises or is one of the following polynucleotides:

[0143] (1) a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 11, 14, 15 and 19 to 24, or its corresponding RNA; and

[0144] (2) A polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence of one of SEQ ID NOs: 11, 14, 15 and 19 to 24, or an RNA corresponding thereto.

[0145] In some embodiments, the RNA is mRNA.

[0146] It is understood that in the above-mentioned nucleic acids, whether polynucleotides encoding the VZV gE protein or a fragment thereof, or polynucleotides encoding proteins or polypeptides other than the VZV gE protein or a fragment thereof, multiple (e.g., two or three) repeating units can be present on the same chain. For example, if a polynucleotide encoding the VZV gE protein is referred to as "fragment A," then the same nucleic acid may contain multiple A fragments. For another example, if a polynucleotide encoding the VZV gE protein and another VZV glycoprotein (e.g., VZV gl) is referred to as "fragment A," and a polynucleotide encoding the other VZV glycoprotein is referred to as "fragment B," then the same nucleic acid may contain multiple A fragments and multiple B fragments, one A fragment and multiple B fragments, or multiple A fragments and one B fragment. Polynucleotides encoding multiple proteins on the same nucleic acid chain may be linked directly or indirectly via a linker (e.g., a polynucleotide encoding a connecting peptide such as a 2A peptide, G, GG, GGG, GS, or SAIG). The GS linker peptide is composed of Gly and Ser residues, for example, (Gly-Gly-Gly-Gly-Ser)n. By adjusting the value of n (the number of repeats), the length of the GS linker peptide can be changed to optimally separate the two linked proteins or enable them to interact.

[0147] In some embodiments, the nucleic acid comprises multiple polynucleotides encoding VZV gE protein or fragments thereof. For example, a polynucleotide encoding the full-length VZV gE protein is referred to as "A1 fragment," and a polynucleotide encoding a fragment of the VZV gE protein is referred to as "A2 fragment." Thus, the same nucleic acid may contain one or more A1 fragments and one or more A2 fragments. In some embodiments, the nucleic acid is isolated.

[0148] In some embodiments, the nucleic acid is a non-naturally occurring nucleic acid. In some embodiments, the nucleic acid is RNA.

[0149] In some embodiments, the nucleic acid is RNA, and the RNA contains an open reading frame (ORF).

[0150] In some embodiments, the nucleic acid is RNA, and the RNA is mRNA.

[0151] In some embodiments, the nucleic acid is a non-self-replicating mRNA.

[0152] In some embodiments, the nucleic acid is an mRNA, and the mRNA comprises at least one of a 5'-cap structure, a 5'-UTR, a 3'-UTR, and a poly(A) tail. In an alternative specific example, the nucleic acid further comprises a 5'-cap structure, a 5'-UTR, a 3'-UTR, and a poly(A) tail.

[0153] In some embodiments, the 5'-cap structure is selected from m 7 GpppG、m2 7,3′-O GpppG、m 7 Gppp(5')N1 and m 7 Gppp(m 2′-O ) At least one of N1; wherein "m 7 "G" represents 7-methylguanosine cap nucleoside, "ppp" represents the triphosphate bond between the 5' carbon of the cap nucleoside and the first nucleotide of the primary RNA transcript, N1 is the 5' most nucleotide, "G" represents guanosine nucleoside, "7" represents the methyl group at the 7-position of guanine, and "m 2′-O " represents a methyl group at the 2'-O position of the nucleotide. In some embodiments, the 5'-cap structure is m 7 Gppp(5')N1 or m 7 Gppp(m 2′-O )N1. It will be appreciated that, in other embodiments, the 5'-cap structure is not limited to the above.

[0154] In some embodiments, the DNA sequence corresponding to the 5'-UTR is shown in SEQ ID NO: 25.

[0155] In some embodiments, the DNA sequence corresponding to the 3'-UTR is as shown in SEQ ID NO: 26. It should be noted that the "DNA sequence corresponding to the 5'-UTR" refers to the nucleotide sequence of the 5'-UTR in DNA form, and the same applies to the "DNA sequence corresponding to the 3'-UTR" and the "DNA sequence corresponding to the poly(A) tail" below. It is understood that in other embodiments, the 5'-UTR and 3'-UTR are not limited to the above, and can also be others, such as the 5'-UTR and 3'-UTR described in patents such as CN108291230A, CN104321432A, and CN107849574A.

[0156] In some embodiments, the nucleotides constituting the poly(A) tail comprise at least 20, at least 40, at least 80, at least 100, or at least 120 A nucleotides. In some embodiments, the nucleotides constituting the poly(A) tail comprise at least 20, at least 40, at least 80, at least 100, or at least 120 A nucleotides consecutively. In some embodiments, the nucleotides constituting the poly(A) tail comprise one or more nucleotides other than A nucleotides. In an optional specific example, the DNA sequence corresponding to the poly(A) tail is shown in SEQ ID NO: 27. It is understood that in other embodiments, the poly(A) tail is not limited to the above, and may also be other poly(A) tails, such as the poly(A) tails described in patents such as US20170166905A1 and WO2020074642A1.

[0157] In some embodiments, the nucleic acids described above do not contain modified nucleotides.

[0158] In some embodiments, the nucleic acids described above contain modified nucleotides.

[0159] In some embodiments, the nucleic acid comprises modified nucleosides. In some embodiments, the modified nucleosides include at least one of modified uridine, modified cytidine, modified adenosine, and modified guanosine.

[0160] In some embodiments, the modified nucleoside in the nucleic acid is a modified uridine. In some embodiments, 0.1% to 100% of the uridine in the nucleic acid is modified. In some embodiments, 80% to 100% of the uridine is modified. In some embodiments, 100% of the uridine is modified. Exemplary modified uridines are selected from, but are not limited to, one or more of the following: pseudouridine (ψ), N1-methyl pseudouridine, pyridin-4-one ribonucleoside, 5-aza-uridine, 6-aza-uridine, 2-thio-5-aza-uridine, 2-thio-uridine (s2U), 4-thio-uridine (s4U), 4-thio-pseudouridine, 2-thio-pseudouridine, 5-hydroxy-uridine (ho5U), 5-aminoallyl-uridine, 5-halo-uridine (e.g., 5-iodo-uridine or 5-bromo-uridine), 3-methyl-uridine (m3U), 5-methoxy-uridine (mo5U), ), uridine-5-oxyacetic acid (cmo5U), uridine-5-oxyacetic acid methyl ester (mcmo5U), 5-carboxymethyl-uridine (cm5U), 1-carboxymethyl-pseudouridine, 5-carboxyhydroxymethyl-uridine (chm5U), 5-carboxyhydroxymethyl-uridine methyl ester (mchm5U), 5-methoxycarbonylmethyl-uridine (mcm5U), 5-methoxycarbonylmethyl-2-thio-uridine (mcm5s2U), 5-aminomethyl-2-thio-uridine (nm5s2U), 5-methylaminomethyl-uridine (mnm5U), 5-methylamino Methyl-2-thio-uridine (mnm5s2U), 5-methylaminomethyl-2-seleno-uridine (mnm5se2U), 5-carbamoylmethyl-uridine (ncm5U), 5-carboxymethylaminomethyl-uridine (cmnm5U), 5-carboxymethylaminomethyl-2-thio-uridine (cmnm5s2U), 5-propynyl-uridine, 1-propynyl-pseudouridine, 5-taurinomethyl-uridine (τm5U), 1-taurinomethyl-pseudouridine, 5-taurinomethyl-2-thio 1-methyl-pseudouridine (τm5s2U), 1-taurine methyl-4-thio-pseudouridine, 5-methyl-uridine (m5U, i.e., with the nucleobase deoxythymine), 1-methyl-pseudouridine (m1ψ), 5-methyl-2-thio-uridine (m5s2U), 1-methyl-4-thio-pseudouridine (m1s4ψ), 4-thio-1-methyl-pseudouridine, 3-methyl-pseudouridine (m3ψ), 2-thio-1-methyl-pseudouridine, 1-methyl-1-deaza-pseudouridine, 2-thio-1-methyl-1-deaza-pseudouridine, dihydrouridine (D), dihydropseudouridine, 5,6-dihydrouridine, 5-methyl-dihydrouridine (m5D), 2-thio-dihydrouridine, 2-thio-dihydropseudouridine, 2-methoxy-uridine, 2-methoxy-4-thio-uridine, 4-methoxy-pseudouridine, 4-methoxy-2-thio-pseudouridine, N1-methyl-pseudouridine, 3-(3-amino-3-carboxypropyl)uridine (acp3U), 1-methyl-3-(3-amino-3 -carboxypropyl) pseudouridine (acp3ψ), 5-(isopentenylaminomethyl)uridine (inm5U), 5-(isopentenylaminomethyl)-2-thio-uridine (inm5s2U), α-thio-uridine, 2'-O-methyl-uridine (Um), 5,2'-O-dimethyl-uridine (m5Um), 2'-O-methyl-pseudouridine (ψm), 2-thio-2'-O-methyl -uridine (s2Um), 5-methoxycarbonylmethyl-2'-O-methyl-uridine (mcm5Um), 5-carbamoylmethyl-2'-O-methyl-uridine (ncm5Um), 5-carboxymethylaminomethyl-2'-O-methyl-uridine (cmnm5Um), 3,2'-O-dimethyl-uridine (m3Um), 5-(isopentenylaminomethyl)-2'-O-methyl-uridine (inm5Um), 1-thio-uridine, deoxythymidine, 2'-F-ara-uridine, 2'-F-uridine, 2'-OH-ara-uridine, 5-(2-methoxyformylvinyl)uridine (5-(2-carbomethoxyvinyl)uridine) and 5-[3-(1-E-propenylamino)uridine.

[0161] In some embodiments, the modified nucleosides in the nucleic acids are modified cytidines. In some embodiments, 0.1% to 100% of the cytidines in the nucleic acids are modified. In some embodiments, 80% to 100% of the cytidines are modified. In some embodiments, 100% of the cytidines are modified. Exemplary modified cytidines are selected from, but are not limited to, one or more of the following: 5-aza-cytidine, 6-aza-cytidine, pseudoisocytidine, 3-methyl-cytidine (m3C), N4-acetyl-cytidine (ac4C), 5-formyl-cytidine (f5C), N4-methyl-cytidine (m4C), 5-methyl-cytidine (m5C), 5-halo-cytidine (e.g., 5-iodo-cytidine), 5-hydroxymethyl-cytidine (hm5C), 1-methyl-pseudoisocytidine, pyrrolo-cytidine, pyrrolo-pseudoisocytidine, 2-thio-cytidine (s2C), 2-thio-5-methyl-cytidine, 4-Thio-pseudoisocytidine, 4-thio-1-methyl-pseudoisocytidine, 4-thio-1-methyl-1-deaza-pseudoisocytidine, 1-methyl-1-deaza-pseudoisocytidine, zebularine, 5-aza-zebularine, 5-methyl-zebularine, 5-aza-2-thio-zebularine, 2-thio-zebularine, 2-methoxy-cytidine, 2-methoxy-5-methyl-cytidine, 4-methoxy-pseudoisocytidine, 4-methoxy-1-methyl-pseudoisocytidine, lysidine (k2C), α-thio-cytidine, 2'-O-methyl-cytidine (Cm), 5,2'- O-dimethyl-cytidine (m5Cm), N4-acetyl-2'-O-methyl-cytidine (ac4Cm), N4,2'-O-dimethyl-cytidine (m4Cm), 5-formyl-2'-O-methyl-cytidine (f5Cm), N4,N4,2'-O-trimethyl-cytidine (m42Cm), 1-thio-cytidine, 2'-F-ara-cytidine, 2'-F-cytidine and 2'-OH-ara-cytidine.

[0162] In some embodiments, the modified nucleoside in the above nucleic acid is a modified adenosine. In some embodiments, 0.1% to 100% of the adenosine in the above nucleic acid is modified. In some embodiments, 80% to 100% of the adenosine is modified. In some embodiments, 100% of the adenosine is modified. Exemplary modified adenosines are selected from, but not limited to, one or more of the following: 2-amino-purine, 2,6-diaminopurine, 2-amino-6-halo-purine (e.g., 2-amino-6-chloro-purine), 6-halo-purine (e.g., 6-chloro-purine), 2-amino-6-methyl-purine, 8-azido-adenosine, 7-deaza-adenine, 7-deaza-8-aza-adenine, 7-deaza-2-amino-purine, 7-deaza-8-aza-2-amino-purine, 7-deaza-2,6-diaminopurine, 7-deaza-8-aza-2,6- Diaminopurine, 1-methyl-adenosine (m1A), 2-methyl-adenosine (m2A), N6-methyl-adenosine (m6A), 2-methylthio-N6-methyl-adenosine (ms2m6A), N6-isopentenyl-adenosine (i6A), 2-methylthio-N6-isopentenyl-adenosine (ms2i6A), N6-(cis-hydroxyisopentenyl)adenosine (io6A), 2-methylthio-N6-(cis-hydroxyisopentenyl)adenosine (ms2io6A), N6-glycylcarbamoyl-adenosine (g6A), N6-threonylamino N6-methyl-N6-threonylcarbamoyl-adenosine (t6A), N6-methyl-N6-threonylcarbamoyl-adenosine (m6t6A), 2-methylthio-N6-threonylcarbamoyl-adenosine (ms2g6A), N6,N6-dimethyl-adenosine (m62A), N6-hydroxynorvalylcarbamoyl-adenosine (hn6A), 2-methylthio-N6-hydroxynorvalylcarbamoyl-adenosine (ms2hn6A), N6-acetyl-adenosine (ac6A), 7-methyl-adenine, 2-methylthio-adenine, 2-methoxy-adenine, α-Thio-adenosine, 2'-O-methyl-adenosine (Am), N6,2'-O-dimethyl-adenosine (m6Am), N6,N6,2'-O-trimethyl-adenosine (m62Am), 1,2'-O-dimethyl-adenosine (m1Am), 2'-O-ribosyladenosine (phosphate) (Ar(p)), 2-amino-N6-methyl-purine, 1-thio-adenosine, 8-azido-adenosine, 2'-F-arabino-adenosine, 2'-F-adenosine, 2'-OH-arabino-adenosine, and N6-(19-amino-pentaoxahonadecyl)-adenosine.

[0163] In some embodiments, the modified nucleoside in the above nucleic acid is a modified guanosine. In some embodiments, 0.1% to 100% of the guanosine in the above nucleic acid is modified. In some embodiments, 80% to 100% of the guanosine is modified. In some embodiments, 100% of the guanosine is modified. Exemplary modified guanosines are selected from, but not limited to, one or more of the following: inosine (I), 1-methyl-inosine (m1I), wyosine (imG), methyl wyosine (mimG), 4-demethyl-wyosine (imG-14), iso-wyosine (imG2), yW, peroxyyW (o2yW), hydroxyyW (OHyW), undermodified hydroxyyW (OHyW*), 7-deaza-guanosine, queuosine ( Q), epoxy-braided glycoside (oQ), galactosyl-braided glycoside (galQ), mannosyl-braided glycoside (manQ), 7-cyano-7-deaza-guanosine (preQ0), 7-aminomethyl-7-deaza-guanosine (preQ1), archaeoside (G+), 7-deaza-8-aza-guanosine, 6-thio-guanosine, 6-thio-7-deaza-guanosine, 6-thio-7-deaza-8-aza-guanosine, 7-methyl-guanosine (m7G), 6-thio-7-methyl-guanosine, 7-methyl-inosine, 6-methoxy-guanosine, 1 -methyl-guanosine (m1G), N2-methyl-guanosine (m2G), N2,N2-dimethyl-guanosine (m22G), N2,7-dimethyl-guanosine (m2,7G), N2,N2,7-dimethyl-guanosine (m2,2,7G), 8-oxo-guanosine, 7-methyl-8-oxo-guanosine, 1-methyl-6-thio-guanosine, N2-methyl-6-thio-guanosine, N2,N2-dimethyl-6-thio-guanosine, α-thio-guanosine, 2'-O-methyl-guanosine (Gm), N2-methyl-2'- O-methyl-guanosine (m2Gm), N2,N2-dimethyl-2'-O-methyl-guanosine (m22Gm), 1-methyl-2'-O-methyl-guanosine (m1Gm), N2,7-dimethyl-2'-O-methyl-guanosine (M2,7Gm), 2'-O-methyl-inosine (Im), 1,2'-O-dimethyl-inosine (m1Im), 2'-O-ribosylguanosine (phosphate) (Gr(p)), 1-thio-guanosine, O6-methyl-guanosine, 2'-F-arabino-guanosine and 2'-F-guanosine.

[0164] In some embodiments, the modified nucleotides in the nucleic acids described above comprise nucleotides containing isotopes.

[0165] In some embodiments, the nucleic acid comprises nucleotides containing isotopes of hydrogen. Hydrogen isotopes are not limited to deuterium and tritium. In addition, in some embodiments, the nucleic acid further comprises or contains nucleotides containing isotopes of elements other than hydrogen, including but not limited to carbon, oxygen, nitrogen, and phosphorus.

[0166] In some embodiments, the uridine in the nucleic acid is completely replaced with N1-methylpseudouridine, and the nucleic acid comprises or is one of the following RNAs: (1) an RNA corresponding to a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 11, 14, 15, and 19-24; and (2) an RNA corresponding to a polynucleotide having a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to a nucleotide sequence as shown in one of SEQ ID NOs: 11, 14, 15, and 19-24.

[0167] In some embodiments, the nucleic acid is RNA, and the length of the nucleic acid is at least 1000nt, 1200nt, 1500nt, 1550nt, 1600nt, 1650nt, 1700nt, 1750nt, 1800nt, 1850nt, 1900nt, 1950nt, 2000nt, 2050nt, 2100nt, 2150nt, 2200nt, 2250nt, 2300nt, 2350nt, 2400nt, 2450nt, 2500nt, 2550nt, 3000nt, 3100nt, 3200nt, 3300nt, 3400nt, 3500nt, 3600nt, 3700nt, 3800nt, 3900nt, 4000nt, 4100nt, 4200nt, 4300nt, 4400nt, 4500nt, 4600nt, 4700nt, 4800nt, 4900nt, 5000nt, 5100nt, 5200nt, 5300nt, 5400nt or 5500nt.

[0168] In some embodiments, the nucleic acid is RNA, and the length of the nucleic acid is 1000nt to 8000nt, 1500nt to 7000nt, 1500nt to 6500nt, 1500nt to 6000nt, 1500nt to 5500nt, 1500nt to 5000nt, 1500nt to 4500nt, 1500nt to 4000nt, 1500nt to 3500nt, 1500nt to 3000nt, 1600nt to 2500nt, 1700nt to 2400nt, 1800nt to 2400nt, or 1900nt to 2400nt.

[0169] In other embodiments, the nucleic acid is DNA.

[0170] In some embodiments, the nucleic acid is DNA, which can be transcribed into RNA.

[0171] In some embodiments, the nucleic acid is DNA, and the DNA contains an ORF.

[0172] In some embodiments, the nucleic acid comprises or is one of the following nucleotides: (1) a polynucleotide having a nucleotide sequence as set forth in one of SEQ ID NOs: 11, 14, 15, and 19-24; and (2) a polynucleotide having a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to a nucleotide sequence as set forth in one of SEQ ID NOs: 11, 14, 15, and 19-24. In some embodiments, the nucleic acid does not comprise a start codon and / or a stop codon, which may be added when used.

[0173] In some embodiments, the nucleic acid comprises a stop codon. It is understood that the stop codon in the nucleic acid can be replaced with other stop codons, and of course, other stop codons can also be further added.

[0174] In some embodiments, the stop codon is one or more of the following: TAG, TAA, TGA, UAA, UAG, and UGA.

[0175] In some embodiments, the number of stop codons in the nucleic acid may be one or more, for example, two or three.

[0176] In some embodiments, the nucleic acid is an mRNA listed in Table 1. The mRNA listed in Table 1 encodes a VZV gE protein or a fragment thereof, comprising a Cap1-type cap structure, a 5'-UTR corresponding to the sequence set forth in SEQ ID NO: 25, a 3'-UTR corresponding to the sequence set forth in SEQ ID NO: 26, a poly(A) tail corresponding to the sequence set forth in SEQ ID NO: 27, and a protein coding region corresponding to one of SEQ ID NOs: 11 to 18. The coding region for the VZV gE protein or a fragment thereof is RNA, and all uridines in the mRNAs listed in Table 1 are replaced with N1-methylpseudouridine. For example, the mRNA numbered 1087 comprises a Cap1-type cap structure, a 5'-UTR corresponding to the sequence of SEQ ID NO: 25, a 3'-UTR corresponding to the sequence of SEQ ID NO: 26, a poly(A) tail corresponding to the sequence of SEQ ID NO: 27, and a gE protein coding region corresponding to the sequence of SEQ ID NO: 13. All uridine residues in the mRNA numbered 1087 are replaced with N1-methylpseudouridine. Furthermore, in Table 1, the mRNA numbersed 466, 1086, 1087, 1116, and 1117 further comprise a polynucleotide encoding an IgGκ signal peptide sequence as set forth in SEQ ID NO: 9 (i.e., SEQ ID NO: 34) at the N-terminus (5' end) of the coding region for the gE protein or fragment thereof. For example, the DNA sequence corresponding to the coding region of the mRNA indicated by number 466 is shown in SEQ ID NO: 19, which comprises a polynucleotide encoding an IgG kappa signal peptide (SEQ ID NO: 34) further added to the 5' end of the coding region of the gE protein or its fragment. The mRNAs indicated by numbers 1107 and 1117 further comprise a polynucleotide encoding a ferritin sequence as shown in SEQ ID NO: 10 (i.e., SEQ ID NO: 35) at the C-terminus (3' end) of the coding region of the gE protein fragment. The ferritin sequence as shown in SEQ ID NO: 10 is linked to the polynucleotide encoding the gE protein fragment via a linker (AGCGCCATCGGC). For example, the DNA sequence corresponding to the coding region of the mRNA indicated by number 1107 is shown in SEQ ID NO: 22, which comprises a polynucleotide encoding a ferritin sequence (SEQ ID NO: 35) further added to the 3' end of the coding region of the gE protein or its fragment.

[0177] Table 1

[0178] The nucleic acid disclosed herein can induce a significant immune response in the body, causing the body to produce high levels of IgG antibodies against VZV gE protein and induce a significant IFN-γ positive cellular immune response.

[0179] In some embodiments, the VZV gE protein or fragment thereof produced by the nucleic acid can induce an IFN-γ positive cellular immune response. In some embodiments, the VZV gE protein or fragment thereof produced by the nucleic acid can induce an IFN-γ positive cellular immune response that is Th1 biased.

[0180] 3. Genetically Engineered Vectors, Methods for Preparing Nucleic Acids, Host Cells, Proteins, or Peptides

[0181] The present disclosure also provides a genetic engineering vector, which comprises the nucleic acid of any of the above embodiments, or the genetic engineering vector comprises a polynucleotide that can be transcribed into the nucleic acid of any of the above embodiments.

[0182] In some embodiments, above-mentioned genetic engineering vector is plasmid, cosmid, virus, phage or another carrier conventionally used in genetic engineering. In a specific example alternatively, above-mentioned genetic engineering vector is plasmid. In some embodiments, above-mentioned genetic engineering vector also at least comprises following one or more replication origins (ORI), marker gene or its fragment, reporter gene or its fragment and the restriction site that allows to insert DNA element. In a specific example alternatively, the restriction site that allows to insert DNA element is multiple cloning site (MCS).

[0183] In some embodiments, the genetic engineering vector is an expression vector.

[0184] In some embodiments, the genetic engineering vector comprises a promoter, a 5'-UTR, a polynucleotide encoding a signal peptide according to any of the above embodiments, a polynucleotide encoding a VZV gE protein or a fragment thereof according to any of the above embodiments, a 3'-UTR, and a poly(A) tail, wherein the poly(A) tail, the promoter, the 5'-UTR, the polynucleotide encoding a signal peptide, the polynucleotide encoding a VZV gE protein or a fragment thereof, and the 3'-UTR are operably linked to each other.

[0185] In other embodiments, the genetic engineering vector is a cloning vector.

[0186] In some embodiments, the nucleic acid contained in the genetic engineering vector does not contain a 5'-cap structure.

[0187] The present disclosure also provides a method for preparing the nucleic acid of any of the above embodiments, which comprises the steps of introducing (for example, in the form of a plasmid) the genetic engineering vector of any of the above embodiments into a host cell (for example, Escherichia coli) and then culturing the host cell containing the nucleic acid.

[0188] In addition, the present disclosure also provides another method for preparing the above-mentioned nucleic acid, which comprises the step of preparing the nucleic acid by chemical synthesis according to the nucleotide sequence of the nucleic acid of any of the above-mentioned embodiments. It is understood that the specific method of the chemical synthesis method can be a method known in the art, such as the solid phase phosphoramidite method.

[0189] It is understood that the method for preparing the nucleic acid in any of the above embodiments is not limited to the above, and other methods may also be used.

[0190] In addition, the present disclosure also provides a host cell, which comprises the nucleic acid of any of the above embodiments or the genetic engineering vector of any of the above embodiments.

[0191] In some embodiments, the host cell is an isolated cell.

[0192] In some embodiments, the host cell is used to store and / or amplify the nucleic acid of any of the above embodiments.

[0193] In some embodiments, the host cell is a bacterial cell. Bacterial host cells include Escherichia coli (E. coli) cells well known to those skilled in the art.

[0194] Host cells of the present disclosure can be prepared by transforming competent host cells using the genetically engineered vectors of any of the above-mentioned embodiments. Competent host cells are cells with the ability of free extracellular genetic material (such as DNA plasmids) that does not rely on sequence uptake. Various bacterial cells well known to those skilled in the art are naturally able to take in exogenous DNA from the environment, and therefore can serve as bacterial host cells according to the present disclosure. In addition, it is known to those skilled in the art that competent bacterial host cells can be obtained from natural non-competent bacterial cells using, for example, electroporation or chemicals (such as, for example, calcium ion treatment and accompanying high temperature exposure). After uptake, exogenous DNA is preferably neither degraded nor integrated in the genome of the bacterial host cell.

[0195] In addition, the present disclosure also provides a protein or polypeptide encoded by a nucleic acid encoded by the nucleic acid of any of the above embodiments.

[0196] In some embodiments, the protein or polypeptide encoded by the nucleic acid comprises or is VZV gE protein or a fragment thereof.

[0197] In addition, the present disclosure also provides a VZV immunogen, which comprises the VZV gE protein or a fragment thereof encoded by the nucleic acid of any one of the above embodiments.

[0198] In addition, the present disclosure also provides a method for preparing a protein or polypeptide, which comprises: transcribing a polynucleotide encoding the protein or polypeptide (e.g., a nucleic acid in the form of DNA according to any of the above embodiments) into mRNA; and translating the transcribed mRNA into a polypeptide or protein.

[0199] In some embodiments, the method for preparing the above-mentioned protein or polypeptide is performed entirely or partially in vitro.

[0200] In some embodiments, the protein or polypeptide comprises or is VZV gE protein or a fragment thereof.

[0201] 4. RNA and RNA Preparation Methods

[0202] The present disclosure also provides a method for preparing RNA, which comprises the step of performing transcription using the genetic engineering vector according to any of the above embodiments of the present disclosure.

[0203] In some embodiments, the method for preparing the above-mentioned RNA is an in vitro method. In some embodiments, the method for preparing the above-mentioned RNA comprises contacting the genetic engineering vector (e.g., plasmid) of any of the above-mentioned embodiments with an RNA polymerase. In some embodiments, the method for preparing the above-mentioned RNA further comprises the step of linearizing the genetic engineering vector (e.g., plasmid). In some embodiments, before linearization, the supercoil rate of the genetic engineering vector (e.g., plasmid) is at least about 85% (e.g., 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, etc.). In some embodiments, the method for preparing RNA further comprises the step of purifying the linearized genetic engineering vector. In some embodiments, the method for preparing RNA further comprises the step of purifying RNA.

[0204] The present disclosure also provides another method for preparing RNA, comprising the step of preparing the RNA by chemical synthesis based on the nucleotide sequence of the RNA or DNA corresponding to any of the above embodiments. It is understood that the specific method of the chemical synthesis method can be a method known in the art, such as the solid-phase phosphoramidite method.

[0205] In some embodiments, the RNA is mRNA.

[0206] In some embodiments, the method for preparing any of the above RNAs further comprises the steps of capping and optionally purifying the capped product. In some embodiments, the cap is a Cap1 cap. The Cap1 cap structure is as follows:

[0207] cap G 1 G 2 =m 7 G-5'-ppp-5'-Gm2'-3'-p-[m7=7-CH3; m2'=2'-O-CH3; -ppp-=-PO2H-O-PO2H-O-PO2H)-; -p-=-PO2H-].

[0208] The capping reaction is as follows:

[0209] pppN1(p)Nx-OH(3')→ppN1(pN)x-OH(3')+Pi

[0210] ppN1(pN)x-OH(3')+GTP→G(5')ppp(5')N1(pN)x-OH(3')+PPi

[0211] G(5')ppp(5')N1(pN)x-OH(3')+AdoMet→m7G(5')ppp(5')N1(pN)x-OH(3')+AdoHyc

[0212] m7GpppN1(pN)x-OH(3')+AdoMet→m7Gppp[m2'-O]N1(pN)x-OH(3')+AdoHyc.

[0213] In other embodiments, the RNA preparation method described above is a partially in vitro method. In this case, the RNA preparation method includes the following steps: preparing a genetically engineered vector according to any of the above embodiments in vitro; and introducing the genetically engineered vector into the body (e.g., in the form of a plasmid). In some embodiments, the genetically engineered vector is encapsulated in a delivery vehicle. In this case, the genetically engineered vector can be delivered into the body via the delivery vehicle.

[0214] In some embodiments, the RNA prepared in the method for preparing RNA according to any of the above embodiments comprises modified nucleosides or modified nucleotides. Correspondingly, the raw materials for preparing the RNA include one or more modified nucleosides or nucleotides. It is understood that the amount and type of the modified nucleosides or nucleotides correspond to the RNA to be prepared.

[0215] In addition, the present disclosure also provides an RNA, which is prepared by the method for preparing RNA according to any of the above embodiments. In some embodiments, the RNA is mRNA.

[0216] 5. Nucleic Acid Composition

[0217] The present disclosure also provides a nucleic acid composition, which comprises a first nucleic acid or a first genetic engineering vector, wherein the first nucleic acid is the nucleic acid of any of the above embodiments, and the first genetic engineering vector is the genetic engineering vector of any of the above embodiments.

[0218] In some embodiments, the first nucleic acid is RNA.

[0219] In some embodiments, the first nucleic acid is mRNA.

[0220] In some embodiments, the nucleic acid composition comprises a first nucleic acid or a first genetic engineering vector, wherein the first nucleic acid is a nucleic acid comprising a polynucleotide encoding a VZV gE protein or a fragment thereof and a signal peptide according to any of the above embodiments, and the first genetic engineering vector is a genetic engineering vector comprising a polynucleotide encoding a VZV gE protein or a fragment thereof and a signal peptide according to any of the above embodiments.

[0221] In some embodiments, the nucleic acid composition is not limited to the first nucleic acid or the first genetic engineering vector, but also includes other nucleic acids (such as nucleic acids encoding other immunogens) and / or other substances (such as buffers or lyophilization protectants, etc.).

[0222] In some embodiments, the nucleic acid composition further comprises a second nucleic acid or a second vector, wherein the second nucleic acid comprises a polynucleotide encoding a protein or polypeptide other than the VZV gE protein or a fragment thereof, and the second vector comprises a polynucleotide encoding a protein or polypeptide other than the VZV gE protein or a fragment thereof. The other proteins or polypeptides other than the VZV gE protein or a fragment thereof are as described above and are not further described here.

[0223] In some embodiments, the second nucleic acid is RNA.

[0224] In some embodiments, the second nucleic acid is mRNA.

[0225] It is understood that the nucleic acid composition may include more than one second nucleic acid. For example, the nucleic acid composition may also include a second nucleic acid comprising a polynucleotide encoding a protein or polypeptide other than VZV gE protein or a fragment thereof. The nucleic acid composition may also include multiple second nucleic acids, each of which is independent of the other, and may include multiple nucleic acids encoding proteins or polypeptides other than VZV gE protein or a fragment thereof. For example, the nucleic acid composition may also include three independent second nucleic acids: a nucleic acid comprising a polynucleotide encoding VZV gI, a fragment, variant, or variant of a fragment thereof; a nucleic acid comprising a polynucleotide encoding influenza virus HA, a fragment, variant, or variant of a fragment thereof; and a nucleic acid comprising a polynucleotide encoding SARS-CoV-2 S protein, a fragment, variant, or variant of a fragment thereof. It should be noted that the term "independent of each other" here means that there are no linking elements connecting the multiple second nucleic acids. In this case, the polynucleotides encoding the multiple other proteins or polypeptides are not on the same nucleic acid chain. The second genetic engineering vector is also not limited to a single second nucleic acid; it may also be multiple, and the multiple second genetic engineering vectors are also independent of each other.

[0226] VI. Delivery Vectors, Pharmaceutical Compositions, and Their Applications

[0227] The present disclosure also provides a delivery vector comprising the nucleic acid of any of the above embodiments, the genetically engineered vector of any of the above embodiments, the host cell of any of the above embodiments, the protein or polypeptide encoded by the nucleic acid of any of the above embodiments, the immunogen of any of the above embodiments, the RNA of any of the above embodiments, or the nucleic acid composition of any of the above embodiments.

[0228] In some embodiments, the nucleic acid in the delivery vector is RNA. In some embodiments, the nucleic acid in the delivery vector is mRNA.

[0229] In some embodiments, the delivery vehicle is selected from a plurality of composites or one of the following: lipid nanoparticles (LNPs), liposomes, cationic proteins, vesicles, microparticles, polymers and micelles. In some embodiments, the delivery vehicle is selected from one of the following: lipid nanoparticles, liposomes, cationic proteins, vesicles, microparticles, polymers and micelles.

[0230] In some embodiments, the delivery vehicle is a lipid nanoparticle (LNP) comprising a nucleic acid according to any of the above embodiments, a genetically engineered vector according to any of the above embodiments, a host cell according to any of the above embodiments, a protein or polypeptide encoded by a nucleic acid according to any of the above embodiments, an immunogen according to any of the above embodiments, an RNA according to any of the above embodiments, or a nucleic acid composition according to any of the above embodiments.

[0231] In some embodiments, lipid nanoparticles refer to particles having a nanometer scale (eg, 1 nm to 1000 nm) that include one or more lipids.

[0232] In some embodiments, the average diameter of the lipid nanoparticles is 20 nm to 800 nm, 20 nm to 500 nm, 20 nm to 400 nm, 20 nm to 300 nm, 20 nm to 200 nm, 20 nm to 100 nm, 30 nm to 700 nm, 30 nm to 500 nm, 30 nm to 300 nm, 30 nm to 200 nm, 30 nm to 100 nm, 40 nm to 800 nm, 40 nm to 600 nm, 40 nm to 500 nm, 40 nm to 300 nm, 40 nm to 200 nm, 40nm~100nm, 50nm~800nm, 50nm~600nm, 50nm~500nm, 50nm~500nm, 50nm~400nm, 50nm~500nm, 50nm~400nm, 50nm~300nm, 50nm~200nm, 50nm~100nm, 60nm~800nm, 60nm~600nm, 60nm~500nm, 60nm~400nm, 60nm~300nm, 60nm~200nm or 60nm~100nm. In some optional specific examples, the average diameter of the lipid nanoparticles is 26 nm, 31 nm, 36 nm, 41 nm, 46 nm, 51 nm, 56 nm, 61 nm, 66 nm, 71 nm, 76 nm, 81 nm, 86 nm, 91 nm, 96 nm, 101 nm, 106 nm, 111 nm, 116 nm, 121 nm, 126 nm, 131 nm, 136 nm, 141 nm, 146 nm, 151 nm, 156 nm, 161 nm, 166 nm, 171 nm, 176 nm, 181 nm, 186 nm, 191 nm, 196 nm, 201 nm, 206 nm, 211 nm, 216 nm, 221 nm, 226 nm, 231 nm, 236 nm, 241 nm, 246 nm, or 249 nm. Herein, the average diameter of lipid nanoparticles can be expressed as the z-average value determined by dynamic light scattering.

[0233] In some embodiments, the lipid nanoparticles include one of the following: cationic lipid nanoparticles, solid lipid nanoparticles (SLN), nanostructured lipid carriers (NLC), nonlamellar lipid nanoparticles. In an optional specific example, the lipid nanoparticles are cationic lipid nanoparticles.

[0234] In some embodiments, the lipid nanoparticles contain one or more of the following: cationic lipids, helper lipids, structural lipids, and polymer-lipids.

[0235] The term "cationic lipid" refers to a lipid that becomes positively charged when the pH drops below the pKa of the ionizable group of the lipid, but gradually becomes neutral at higher pH values. At pH values ​​below the pKa, the positively charged lipid is able to bind to negatively charged nucleic acids. In certain embodiments, the cationic lipid comprises a zwitterionic lipid.

[0236] In some embodiments, the cationic lipid comprises the following compound (I), an N-oxide thereof, a salt thereof, or an isomer thereof:

[0237] in:

[0238] R1 is selected from the group consisting of: C5-C30 alkyl, C5-C20 alkenyl, -R*YR", -YR", and -R"M'R';

[0239] R2 and R3 are independently selected from the group consisting of H, C1-C14 alkyl, C2-C14 alkenyl, -R*YR", -YR", and -R*OR", or R2 and R3 together with the atoms to which they are attached form a heterocyclic or carbocyclic ring;

[0240] R4 is selected from the group consisting of hydrogen, C3-C6 carbocycle, -(CH2) n Q, -(CH2) n CHQR, -(CH2) o C(R 10 )2(CH2) n-o Q, -CHQR, -CQ(R)2 and unsubstituted C1-C6 alkyl, wherein Q is selected from carbocyclic, heterocyclic, -OR, -O(CH2) nN(R)2, -C(O)OR, -OC(O)R, -CX3, -CX2H, -CXH2, -CN, -N(R)2, -C(O)N(R)2, -N(R)C(O) R, -N(R)S(O)2R, -N(R)C(O)N(R)2, -N(R)C(S)N(R)2, N(R)R8, -N(R)S(O)2R8, -O(CH2) n OR, -N(R)C(=NR9)N(R)2, -N(R)C(=CHR9)N(R)2, -OC(O)N(R)2, -N(R)C(O)OR, - N(OR)C(O)R, -N(OR)S(O)2R, -N(OR)C(O)OR, -N(OR)C(O)N(R)2, -N(OR)C(S)N( R)2, -N(OR)C(=NR9)N(R)2, -N(OR)C(=CHR9)N(R)2, -C(=NR9)N(R)2, -C(=NR9) R, -C(O)N(R)OR and -C(R)N(R)2C(O)OR, each o is independently selected from 1, 2, 3 and 4, and each n is independently selected from 1, 2, 3, 4 and 5;

[0241] each R5 is independently selected from the group consisting of OH, C1-C3 alkyl, C2-C3 alkenyl, and H;

[0242] each R6 is independently selected from the group consisting of OH, C1-C3 alkyl, C2-C3 alkenyl, and H;

[0243] M and M' are independently selected from -C(O)O-, -OC(O)-, -OC(O)-M"-C(O)O-, -C(O)N(R')-, -N(R')C(O)-, -C(O)-, -C(S)-, -C(S)S-, -SC(S)-, -CH(OH)-, -P(O)(OR')O-, -S(O)2-, -SS-, an aryl group, and a heteroaryl group, wherein M" is a bond, a C1-C13 alkyl group, or a C2-C13 alkenyl group;

[0244] R7 is selected from the group consisting of C1-C3 alkyl, C2-C3 alkenyl and H;

[0245] R8 is selected from the group consisting of C3-C6 carbocycle and heterocycle;

[0246] R9 is selected from the group consisting of H, CN, NO2, C1-C6 alkyl, -OR, -S(O)2R, -S(O)2N(R)2, C2-C6 alkenyl, C3-C6 carbocycle and heterocycle;

[0247] R 10 selected from the group consisting of H, C1-C3 alkyl and C2-C3 alkenyl;

[0248] Each R is independently selected from the group consisting of: C1-C3 alkyl, C2-C3 alkenyl, (CH2) q OR* and H,

[0249] and each q is independently selected from 1, 2, and 3;

[0250] Each R' is independently selected from the group consisting of C1-C18 alkyl, C2-C18 alkenyl, -R*YR", -YR", H and And R 11 、R 12 and R 13 are independently selected from the group consisting of C1-C12 alkyl and C2-C12 alkenyl;

[0251] Each R" is independently selected from the group consisting of C3-C15 alkyl and C3-C15 alkenyl;

[0252] each R* is independently selected from the group consisting of absent, C1-C12 alkyl, and C2-C12 alkenyl;

[0253] Each Y is independently a C3-C6 carbocycle;

[0254] each X is independently selected from the group consisting of: F, Cl, Br, and I; and

[0255] m is selected from 5, 6, 7, 8, 9, 10, 11, 12 and 13; and wherein when R4 is -(CH2) n Q, -(CH2) n When CHQR, -CHQR or -CQ(R)2, then (i) when n is 1, 2, 3, 4 or 5, Q is not -N(R)2; or (ii) when n is 1 or 2, Q is not a 5-, 6- or 7-membered heterocycloalkyl.

[0256] In an optional specific example, the cationic lipid is the following compound (I), its N-oxide, its salt or its isomer:

[0257] wherein R1-R7, M and m are as defined above.

[0258] In some embodiments, the cationic lipid comprises the following compound (II), an N-oxide thereof, a salt thereof, or an isomer thereof:

[0259] in:

[0260] R1, R2, R3, R5, R6, M and R7 are as described above,

[0261] R Nis H or C1-C3 alkyl;

[0262] X a and X b each independently O or S;

[0263] R 14 Selected from H, halogen, -OH, R b 、-N(R b )2, -CN, -N3, -C(O)OH, -C(O)OR b 、-OC(O)R b 、-OR b 、-SR b 、-S(O)R b 、-S(O)OR b 、-S(O)2OR b 、-NO2、-S(O)2N(R b )2、-N(R b )S(O)2R b 、-NH(CH2) t1 N(R b )2、-NH(CH2) p1 O(CH2) q1 N(R b )2、-NH(CH2) s1 OR b 、-N((CH2) S OR b )2、-N(R b )-carbocyclic ring, -N(R b )-heterocyclic, N(R b )-aryl, -N(R b )-heteroaryl, -N(R b )(CH2) t1 -Carbocyclic ring, -N(R b )(CH2) t1 -heterocycle, -N(R b )(CH2) t1- Aryl, -N(R b )(CH2) t1 - the group consisting of heteroaryl, carbocycle, heterocycle, aryl and heteroaryl;

[0264] Each R b independently selected from the group consisting of C1-C3 alkyl, C2-C3 alkenyl, and H;

[0265] u is 5, 6, 7, 8, 9, 10, 11, 12, or 13;

[0266] w is 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10;

[0267] r is 0 or 1;

[0268] t 1 is 1, 2, 3, 4, or 5;

[0269] p 1 is 1, 2, 5, 4, or 5;

[0270] q 1 is 1, 2, 5, 4, or 5; and

[0271] s 1 1, 2, 3, 4, or 5.

[0272] In an optional specific example, the cationic lipid is the following compound (II), its N-oxide, its salt or its isomer:

[0273] Among them, R1-R3, R5-R7, R 14 、X a 、X b 、R N , M, u, w and r are as defined above.

[0274] In some embodiments, the cationic lipid comprises the following compound (III), an N-oxide thereof, a salt thereof, or an isomer thereof:

[0275] in:

[0276] L 1 or L 2 One of them is -O(C=O)-, -(C=O)O-, -C(=O)-, -O-, -S(O) x -, -SS-, -C(=O)S-, -SC(=O)-, -NR a C(=O)-, -C(=O)NR a -、NR a C(=O)NR a -、-OC(=O)NR a -or-NR a C(=O)O-, and L 1 or L 2 The other one is -O(C=O)-, -(C=O)O-, -C(=O)-, -O-, -S(O) x -, -SS-, -C(=O)S-, SC(=O)-, -NR a C(=O)-, -C(=O)NR a -、NR a C(=O)NR a-、-OC(=O)NR a -or-NR a C(=O)O- or bond;

[0277] G 1 and G 2 Each is independently an unsubstituted C1-C12 alkylene or C1-C12 alkenylene;

[0278] G 3 C1-C24 alkylene, C1-C24 alkenylene, C3-C8 cycloalkylene, C3-C8 cycloalkenylene;

[0279] R a is H or a C1-C12 hydrocarbon group;

[0280] R 15 and R 16 Each is independently a C6-C24 alkyl or a C6-C24 alkenyl;

[0281] R 17 H, OR 18 、CN、-C(=O)OR 19 、-OC(=O)R 19 or –NR 18 C(=O)R 19 ;

[0282] R 19 is a C1-C12 hydrocarbon group;

[0283] R 18 is H or a C1-C6 hydrocarbon group; and

[0284] x is 0, 1, or 2.

[0285] In an optional specific example, the cationic lipid is the following compound (III), its N-oxide, its salt or its isomer:

[0286] Where: R 15 -R 17 , G 1 -G 3 , L 1 -L 2 As defined above.

[0287] In some embodiments, the cationic lipid comprises the following compound (IV), or a pharmaceutically acceptable salt or stereoisomer thereof:

[0288] in:

[0289] L 3 and L4 are the same or different, and are each independently C1-C12 alkylene, C2-C12 alkenylene, or C2-C12 alkynylene; in some embodiments, L 3 and L 4 are the same or different, and are each independently C3-C10 alkylene, C3-C10 alkenylene, or C3-C10 alkynylene; in some embodiments, L 3 and L 4 are the same or different, and are each independently C3-C10 alkylene; in some embodiments, L 3 and L 4 The same or different, each independently a C5-C8 alkylene group;

[0290] G 4 and G 5 are the same or different and are each independently -O-(C=O)-, -(C=O)-O-, -C(=O)-, -O-, -C(=O)-S- or -SC(=O)-; in some embodiments, G 4 and G 5 are the same or different, and are each independently -O-(C=O)-, -(C=O)-O-, -C(=O)-, or -O-; in some embodiments, G 4 and G 5 the same or different, each independently selected from -O-(C=O)- or -(C=O)-O-;

[0291] R 18 and R 19 are the same or different, and are each independently a C5-C27 alkyl group, or a C5-C27 alkenyl group containing one or more double bonds; in some embodiments, R 18 and R 19 are the same or different and are each independently a C8-C20 alkyl group or a C8-C20 alkenyl group containing one or more double bonds; in some embodiments, R 18 and R 19 are the same or different and are each independently C9-C17 alkyl or C9-C18 alkenyl containing one or two double bonds; in some embodiments, R 18 and R 19 the same or different, each independently

[0292] R 20 is halogen, hydroxy, cyano, C1-C6 alkyl, nitro, C1-C6 alkoxy, C1-C6 alkylcarbonyloxy, C1-C6 alkoxycarbonyl, C1-C6 alkylaminocarbonyl or C1-C6 alkylcarbonylamino; in some embodiments, R 20is halogen, hydroxy, cyano, C1-C6 alkoxy, C1-C6 alkylcarbonyloxy, C1-C6 alkoxycarbonyl, C1-C6 alkylaminocarbonyl or C1-C6 alkylcarbonylamino; in some embodiments, R 20 is halogen, hydroxy, cyano, C1-C4 alkoxy, C1-C4 alkylcarbonyloxy, C1-C4 alkoxycarbonyl, C1-C4 alkylaminocarbonyl or C1-C4 alkylcarbonylamino; in some embodiments, R 20 is fluorine, hydroxy, cyano, methoxy, acetoxy, methoxycarbonyl, butylaminocarbonyl or acetamido;

[0293] z is 1, 2 or 3.

[0294] In some embodiments, the cationic lipid is the following compound (IV), or a pharmaceutically acceptable salt or stereoisomer thereof:

[0295] Where: R 18 -R 20 , G 4 -G 5 , L 3 -L 4 and z are as defined above.

[0296] In some embodiments, the cationic lipid includes or is the following compound (IV-1), or a pharmaceutically acceptable salt or stereoisomer thereof:

[0297] In some embodiments, the cationic lipid includes or is the following compound, or a pharmaceutically acceptable salt thereof:

[0298] In some embodiments, the cationic lipids include one or more of: ALC-0315 (CAS No. 2036272-55-4), SM-102 (CAS No. 2089251-47-6), and

[0299] In some embodiments, the helper lipids of the lipid nanoparticles include phospholipids. Phospholipids are typically semi-synthetic, but can also be naturally derived or chemically modified. In an alternative embodiment, the helper lipids of the lipid nanoparticles are phospholipids. In some embodiments, the phospholipids of the lipid nanoparticles include one or more of the following: DSPC (distearoylphosphatidylcholine), DOPE (dioleoylphosphatidylethanolamine), DOPC (dioleoylphosphatidylcholine), DOPS (dioleoylphosphatidylserine), DSPG (1,2-dioctadecanoyl-sn-glycero-3-phospho-(1'-rac-glycerol)), DPPG (dipalmitoylphosphatidylglycerol), DPPC (dipalmitoylphosphatidylcholine), DGTS (1,2-dipalmitoyl-sn-glycero-3-O-4'-(N,N,N-trimethyl)homoserine), and lysophospholipids. In some embodiments, the helper lipids of the lipid nanoparticles are selected from one or more of the following: DSPC, DOPE, DOPC, and DOPS. In some embodiments, the helper lipid of the lipid nanoparticle is DSPC and / or DOPE.

[0300] In some embodiments, the structural lipids of the lipid nanoparticles include sterols. In an alternative specific example, the structural lipids of the lipid nanoparticles are sterols. In some embodiments, the sterols of the lipid nanoparticles include one or more of the following: 20α-hydroxycholesterol, cholesterol, cholesterol esters, steroid hormones, steroid vitamins, bile acids, cholesterol, ergosterol, β-sitosterol, and oxidized cholesterol derivatives. In some embodiments, the structural lipids of the lipid nanoparticles include at least one of cholesterol, cholesterol esters, steroid hormones, steroid vitamins, and bile acids. In some embodiments, the structural lipid of the lipid nanoparticles is cholesterol. In an alternative specific example, the structural lipid of the lipid nanoparticles is high-purity cholesterol, particularly injection-grade high-purity cholesterol, such as CHO-HP (produced by AVT). In other embodiments, the structural lipid is 20α-hydroxycholesterol.

[0301] Polymer-lipid refers to a conjugate comprising a polymer and a lipid coupled to the polymer. Polymer-lipid (e.g., polyethylene glycol-lipid) in lipid nanoparticles can improve the stability of lipid nanoparticles in vivo.

[0302] In some embodiments, the lipids of the polymer-lipid used to form lipid nanoparticles include one or more of the following: 1,2-dimyristoyl-sn-glycerol (DMG), distearoyl-phosphatidyl-ethanolamine (DSPE), diacylglycerol (DAG), dialkyloxypropyl (DAA), phospholipids, ceramide (Cer), 1,2-distearoyl-rac-glycerol (DSG) and 1,2-dipalmitoyl-rac-glycero (DPG).

[0303] In some embodiments, the polymer of the polymer-lipid used to form the lipid nanoparticles includes one or both of the following: a hydrophilic polymer and an amphiphilic polymer.

[0304] In some embodiments, the polymer of the polymer-lipid used to form the lipid nanoparticles is a hydrophilic polymer. In other embodiments, the polymer of the polymer-lipid used to form the lipid nanoparticles is an amphoteric polymer.

[0305] In some embodiments, the hydrophilic polymer comprises one or more of the following: polyethylene glycol (PEG), polyoxazolines (POX), polyglycerols (PGs), poly(hydroxypropyl methacrylate) (PHPMA), poly(2-hydroxyethyl methacrylate) (PHEMA), poly(N-(2-hydroxypropyl)methacrylamide) (HPMA), poly(vinylpyrrolidone) (PVP), poly(N,N-dimethyl acrylamide) (PDMA), poly(N-acryloyl morpholine) (PAcM), polyaminoacids, glycosaminoglycans (GAGs), heparin, hyaluronic acid (HA), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond (PEG-60 peptide bond), PEG-60 peptide bond acid (HA), polysialic acid (PSA), elastin-like polypeptides (ELPs), serum albumin and CD47.

[0306] Correspondingly, polymer-lipid includes one or more of the following: polyethylene glycol-lipid (PEG-lipid), polyoxazoline-lipid, polyglycerol-lipid, polyhydroxypropyl methacrylate-lipid, polymethacrylate-2-hydroxyethyl ester-lipid, poly N-(2-hydroxypropyl) methacrylamide-lipid, polyvinyl pyrrolidone-lipid, poly N, N-dimethylacrylamide-lipid, poly N acryloylmorpholine-lipid, glycosaminoglycan-lipid, heparin-lipid, hyaluronic acid-lipid, polysialic acid-lipid, elastin-lipid, serum albumin-lipid and CD47-lipid. It should be noted that "PEG-lipid" is a conjugate of polyethylene glycol and lipid, "polyoxazoline-lipid" refers to a conjugate formed by coupling polyoxazoline with lipid, "polyglycerol-lipid" refers to a conjugate formed by coupling polyglycerol with lipid, and the same applies to other polymer-lipids. In an optional specific example, the hydrophilic polymer includes polyethylene glycol.

[0307] In some embodiments, the polymer-lipid includes a PEG-lipid. In an alternative specific example, the polymer-lipid is a PEG-lipid. In some embodiments, the PEG-lipid includes one or more of the following: PEG-myristoyl diglycerol (PEG-DMG or DMG-PEG), PEG-distearoylphosphatidylethanolamine (PEG-DSPE), PEG-diacylglycerol (PEG-DAG), PEG-dialkyloxypropyl (PEG-DAA), PEG-phospholipids, PEG-ceramide (PEG-ceramide, PEG-Cer), PEG-1,2-distearoyl-rac-glycerol (PEG-DSG) and PEG-1,2-dipalmitoyl-rac-glycerol (PEG-DPG). The PEG-lipid is preferably PEG-DMG, PEG-DSG, or PEG-DPG. PEG-DMG is a polyethylene glycol derivative of 1,2-dimyristoylglycerol. In some embodiments, the average molecular weight of the PEG in the PEG-lipid is about 2000 to 5000. In an alternative specific example, the average molecular weight of PEG in the PEG-lipid is about 2000. In some embodiments, the amphoteric polymer includes one or more of the following: polycarboxybetaine (pCB), polysulfobetaine (pSB), phosphobetaine-based polymers, and phosphorylcholine polymers.In some embodiments, the amphoteric polymer includes one or more of the following: poly(carboxybetaine acrylamide, pCBAA), poly(carboxybetaine methacrylate), poly(sulfobetaine methacrylate), poly(methacryloyloxyethyl phosphorylcholine), poly(vinyl-pyridinio propanesulfonate), poly(carboxybetaine) based on vinylimidazole, poly(sulfobetaine) based on vinylimidazole, poly(sulfobetaine) based on vinylpyridine.

[0308] Correspondingly, the polymer-lipid comprises one or more of the following: polyhydroxybetaine-lipid, polysulfobetaine-lipid, phosphobetaine-based polymer-lipid and phosphorylcholine polymer-lipid. In some embodiments, the polymer-lipid comprises one or more of the following: poly(carboxybetaine acrylamide)-lipid, poly(carboxybetaine methacrylate)-lipid, poly(sulfobetaine methacrylate)-lipid, poly(methacryloyloxyethylphosphorylcholine)-lipid, poly(vinylpyridylpropanesulfonate)-lipid, polyvinylimidazolylbetaine-lipid, polyvinylimidazolylsulfobetaine-lipid, polyvinylpyridylsulfobetaine-lipid.

[0309] Furthermore, in some embodiments, the polymers used in nanoparticles in “The Importance of Poly(ethylene glycol) Alternatives for Overcoming PEG Immunogenicity in Drug Delivery and Bioconjugation.” Polymers vol. 12, 2 298 by Hoang Thi, Thai Thanh et al. are also incorporated herein.

[0310] In some embodiments, the lipid nanoparticles contain cationic lipids, helper lipids, structural lipids and polymer-lipids. In some embodiments, the lipid nanoparticles include the following amount (molar percentage) of cationic lipids based on the total amount of cationic lipids, helper lipids, structural lipids and polymer-lipids: about 25.0% to 75.0%, such as about 25.0% to 28.0%, 28.0% to 32.0%, 32.0% to 35.0%, 35.0% to 40.0%, 40.0% to 42.0%, 42.0% to 45.0%, 45.0% to 46.3%, 46.3% to 48.0%, 48.0% to 49.5%, 49.5% to 50.0%, 50.0% to 55.0%, 55.0% to 60.0%, 60.0% to 65.0% or 65.0% to 75.0%.

[0311] In some embodiments, the lipid nanoparticles comprise cationic lipids, helper lipids, structural lipids and polymer-lipids, wherein the cationic lipids account for 25 mol% to 75 mol% of the total lipids present in the lipid nanoparticles, the helper lipids account for 0 mol% to 45 mol% of the total lipids present in the lipid nanoparticles, the structural lipids account for 0 mol% to 60 mol% of the total lipids present in the lipid nanoparticles, and the polymer-lipids account for 0.5 mol% to 5 mol% of the total lipids present in the lipid nanoparticles.

[0312] In some embodiments, the cationic lipid in the lipid nanoparticles comprises 25 mol% to 75 mol% of the total lipid present in the lipid nanoparticles, for example, 25 mol%, 28 mol%, 30 mol%, 31 mol%, 32 mol%, 33 mol%, 34 mol%, 35 mol%, 36 mol%, 37 mol%, 38 mol%, 39 mol%, 40 mol%, 41 mol%, 42 mol%, 43 mol%, 44 mol%, 45 mol%, 45.5 mol%, 46 mol%, 46.5 mol%, 47 mol%, 47.5 mol%, 48 mol%, 48.5 mol%, 49 mol%, 49.5 mol%, 50 mol%, 50.5 mol%, 51 mol%, 52 mol%, 53 mol%, 54 mol%, 55 mol%, 56 mol%, 57 mol%, 58 mol%, 59 mol%, 60 mol%, 61 mol%, 62 mol%, 63 mol%, 64 mol%, 65 mol%, 66 mol%, 67 mol%, 68 mol%, 69 mol%, 70 mol%, 71 mol%, 72 mol%, 73 mol%, 74 mol%, 75 mol%, 76 mol%, 77 mol%, 78 mol%, 79 mol%, 80 mol%, 81 mol%, 82 .5mol%, 53mol%, 53.5mol%, 54mol%, 54.5mol%, 55mol%, 55.5mol%, 56mol%, 56.5mol%, 57mol%, 57.5mol%, 58mol%, 58.5mol%, 59mol%, 59. 5 mol%, 60 mol%, 60.5 mol%, 61 mol%, 61.5 mol%, 62 mol%, 62.5 mol%, 63 mol%, 63.5 mol%, 64 mol%, 64.5 mol%, 65 mol%, 68 mol%, 70 mol% or 75 mol%. In some embodiments, the cationic lipid in the above-mentioned lipid nanoparticles accounts for 30 mol% to 65 mol%, 30 mol% to 60 mol%, 35 mol% to 60 mol%, 40 mol% to 60 mol%, 45 mol% to 55 mol% or 50 mol% to 55 mol% of the total lipids present in the lipid nanoparticles.

[0313] In some embodiments, the auxiliary lipid (e.g., DSPC) in the above-mentioned lipid nanoparticles accounts for 0 mol% to 45 mol% of the total lipid present in the lipid nanoparticles. For example, 0.5 mol%, 1 mol%, 3 mol%, 5 mol%, 7.5 mol%, 8 mol%, 8.5 mol%, 9 mol%, 9.5 mol%, 10 mol%, 10.5 mol%, 11 mol%, 11.5 mol%, 12 mol%, 12.5 mol%, 13 mol%, 13.5 mol%, 14 mol%, 14.5 mol%, 15 mol%, 15.5 mol%, 16 mol%, 16.5 mol%, 17 mol%, 17.5 mol%, 18 mol%, 18.5 mol%, 19 mol%, 19.5 mol%. %, 20 mol%, 20.5 mol%, 21 mol%, 21.5 mol%, 22 mol%, 22.5 mol%, 23 mol%, 23.5 mol%, 24 mol%, 24.5 mol%, 25 mol%, 25.5 mol%, 26 mol%, 26.5 mol%, 27 mol%, 27.5 mol%, 28 mol%, 28.5 mol%, 29 mol%, 29.5 mol%, 30 mol%, 34 mol%, 35 mol%, 36 mol%, 38 mol%, 40 mol%, 42 mol%, 44 mol% or 45 mol%. In some embodiments, the helper lipid (e.g., DSPC) in the above-mentioned lipid nanoparticles accounts for 1 mol% to 40 mol%, 5 mol% to 40 mol%, 5 mol% to 35 mol%, 5 mol% to 30 mol% or 5 mol% to 25 mol% of the total lipid present in the lipid nanoparticles.

[0314] In some embodiments, the structural lipid (e.g., cholesterol) in the lipid nanoparticles described above accounts for 0 mol% to 60 mol% of the total lipid present in the lipid nanoparticles. For example, 0 mol%, 1 mol%, 5 mol%, 8 mol%, 10 mol%, 12 mol%, 14 mol%, 15 mol%, 16 mol%, 18 mol%, 20 mol%, 22 mol%, 24 mol%, 25 mol%, 27 mol%, 27.5 mol%, 28 mol%, 28.5 mol%, 29 mol%, 29.5 mol%, 30 mol%, 30.5 mol%, 31 mol%, 31.5 mol%, 32 mol%, 32.5 mol%, 33 mol%, 33.5 mol%, 34 mol%, 34.5 mol%, 35 mol%, 35.5 mol%. , 36mol%, 36.5mol%, 37mol%, 37.5mol%, 38mol%, 38.5mol%, 39mol%, 39.5mol%, 40mol%, 40.5mol%, 41mol%, 41.5mol%, 42mol%, 42.5mol%, 43mol% , 44mol%, 45mol%, 46mol%, 47mol%, 48mol%, 49mol%, 50mol%, 51mol%, 52mol%, 53mol%, 54mol%, 55mol%, 56mol%, 57mol%, 58mol%, 59mol% or 60mol%. In some embodiments, the structural lipid (e.g., cholesterol) in the above-mentioned lipid nanoparticles accounts for 1 mol% to 60 mol%, 1 mol% to 55 mol%, 5 mol% to 55 mol%, 10 mol% to 50 mol%, 15 mol% to 50 mol%, 15 mol% to 45 mol%, 20 mol% to 45 mol%, or 25 mol% to 40 mol% of the total lipids present in the lipid nanoparticles.

[0315] In some embodiments, the polymer-lipid (e.g., PEG lipid) in the lipid nanoparticles accounts for 0.5 mol% to 5 mol% of the total lipid present in the lipid nanoparticles. For example, 0.5 mol%, 1 mol%, 1.5 mol%, 2 mol%, 2.5 mol%, 3 mol%, 3.5 mol%, 4 mol%, 4.5 mol% or 5 mol%. In some embodiments, the polymer-lipid (e.g., PEG lipid) in the lipid nanoparticles accounts for 0.5 mol% to 4.5 mol%, 1 mol% to 4.5 mol%, 1 mol% to 4 mol%, 1.5 mol% to 4 mol%, 1.5 mol% to 3.5 mol% or 1.5 mol% to 3 mol% of the total lipid present in the lipid nanoparticles.

[0316] In some embodiments, the non-lamellar lipid nanoparticles are selected from one of the following: ethosomes and echogenic liposomes.

[0317] In some embodiments, the delivery vector is a liposome comprising a nucleic acid according to any of the above embodiments, a genetically engineered vector according to any of the above embodiments, a host cell according to any of the above embodiments, a protein or polypeptide encoded by a nucleic acid according to any of the above embodiments, an immunogen according to any of the above embodiments, an RNA according to any of the above embodiments, or a nucleic acid composition according to any of the above embodiments. The liposome utilizes a vesicle formed by a phospholipid bilayer membrane to encapsulate the nucleic acid according to any of the above embodiments, the genetically engineered vector, the host cell, the protein or polypeptide encoded by the nucleic acid, the immunogen, the RNA, or the nucleic acid composition. In some embodiments, the components of the liposome include phospholipids and cholesterol.

[0318] In some embodiments, the delivery vector is a cationic protein loaded with a nucleic acid according to any of the above embodiments, a genetically engineered vector according to any of the above embodiments, a host cell according to any of the above embodiments, a protein or polypeptide encoded by a nucleic acid according to any of the above embodiments, an immunogen according to any of the above embodiments, an RNA according to any of the above embodiments, or a nucleic acid composition according to any of the above embodiments. In some embodiments, cationic proteins include but are not limited to protamine.

[0319] In some embodiments, the above-mentioned delivery vector is a polymer comprising the nucleic acid of any of the above-mentioned embodiments, the genetic engineering vector of any of the above-mentioned embodiments, the host cell of any of the above-mentioned embodiments, the nucleic acid encoding protein or polypeptide of any of the above-mentioned embodiments, the immunogen of any of the above-mentioned embodiments, the RNA of any of the above-mentioned embodiments or the nucleic acid composition of any of the above-mentioned embodiments. In some embodiments, the polymer is a lipid polymer (lipopolyplex, LPP) and / or a hyaluronic acid polymer (such as hyaluronic acid gel) comprising the nucleic acid of any of the above-mentioned embodiments, the genetic engineering vector, the protein or polypeptide, the immunogen, the RNA or the nucleic acid composition of any of the above-mentioned embodiments. In an alternative specific example, the polymer is a lipid polymer or a hyaluronic acid gel. Lipopolymer is a double-layer structure with a polymer-encapsulated nucleic acid (such as mRNA) as a core and a lipid (such as phospholipid) wrapped as an outer shell.

[0320] It is understood that the delivery vectors applicable to the present disclosure are not limited to the above, and may also be other substances capable of delivering the nucleic acid of any of the above embodiments, the genetically engineered vector of any of the above embodiments, the host cell of any of the above embodiments, the protein or polypeptide encoded by the nucleic acid of any of the above embodiments, the immunogen of any of the above embodiments, the RNA of any of the above embodiments, or the nucleic acid composition of any of the above embodiments into the body, such as vesicles (e.g., exosomes).

[0321] In addition, the present disclosure also provides a method for preparing the above-mentioned compound (IV), and the reaction of the preparation method is as follows:

[0322] Among them, R 18 ~R 20 , G 4 -G 5 , L 3 -L 4 and z are as defined above, and X is halogen, preferably bromine.

[0323] The above preparation method includes step S11 and step S12.

[0324] Step S11: Intermediate compound (V) and intermediate compound (VI) are reacted at room temperature (16°C to 30°C, the same below) in an organic solvent in the presence of an acid-binding agent to obtain intermediate compound (VII). The organic solvent in step S1 is selected from one or more of nitrile organic solvents, alcohol organic solvents, halogenated hydrocarbon organic solvents, amide organic solvents, and aromatic hydrocarbon organic solvents. For example, the organic solvent in step S1 is selected from one or more of acetonitrile, methanol, ethanol, dichloromethane, and dichloroethane (DCE). The acid-binding agent in step S1 is selected from one or more of organic bases and inorganic bases. For example, the acid-binding agent in step S1 is selected from one or more of sodium hydroxide, potassium hydroxide, sodium carbonate, potassium carbonate, triethylamine, and DIPEA.

[0325] Step S12: by making intermediate compound (VII) and intermediate compound (VIII) carry out substitution reaction in an organic solvent at room temperature in the presence or absence of an acid binding agent and an iodide to obtain a compound of formula (IV). The organic solvent of step S2 is selected from one or more of nitrile organic solvents, alcohol organic solvents, halogenated hydrocarbon organic solvents, amide organic solvents and aromatic hydrocarbon organic solvents. For example, the organic solvent of step S2 is selected from one or more of acetonitrile, methanol, ethanol, dichloromethane and dichloroethane. The acid binding agent is selected from one or more of organic bases and inorganic bases. For example, the acid binding agent is selected from one or more of sodium hydroxide, potassium hydroxide, sodium carbonate, potassium carbonate, triethylamine and DIPEA. The iodide is a common iodide, such as potassium iodide.

[0326] In addition, the present disclosure also provides a method for preparing an optical isomer (IV-1-i) of the above compound (IV-1), and the reaction of the preparation method is as follows:

[0327] Wherein, X is a halogen, preferably bromine.

[0328] Specifically, the preparation step of the optical isomer (IV-1-i) of the compound (IV-1) of the present disclosure includes step S21 and step S22.

[0329] Step S21: Compound (1-X) and compound (1-1) are subjected to an N-alkylation reaction at 30°C to 50°C in a solvent (e.g., a nitrile, alcohol, halogenated hydrocarbon, amide, or aromatic hydrocarbon solvent, specifically acetonitrile, methanol, ethanol, dichloromethane, or dichloroethane (DCE)) to obtain compound (1-2);

[0330] Step S22: In a solvent (e.g., nitriles, alcohols, halogenated hydrocarbons, amides, aromatic hydrocarbons, or ether solvents, specifically acetonitrile, methanol, ethanol, dichloromethane, dichloroethane (DCE), cyclopentane methyl ether, or methyl tert-butyl ether), in the presence or absence of an acid-binding agent and a catalyst, compound (1-2) is subjected to an N-alkylation reaction with 8-halogenated octanoic acid nonyl ester at 60° C. to 110° C. to prepare compound (IV-1-i), wherein the acid-binding agent is selected from one or more of the following: an organic base and an inorganic base. For example, one or more of the following: sodium hydroxide, potassium hydroxide, sodium carbonate, potassium carbonate, triethylamine, and DIPEA; the catalyst is an iodide, preferably KI.

[0331] In some embodiments, according to the above method, when the compound (1-X) used is (1S, 3R)-3-aminocyclohexanol and the compound (1-2) is represented by the structural formula (1-2-1):

[0332] Obtain the optical isomer compound (IV-1-1) of compound (IV-1):

[0333] When the compound (1-X) used is (1S,3S)-3-aminocyclohexanol and the compound (1-2) is as shown in the structural formula (1-2-2):

[0334] Obtain the optical isomer compound (IV-1-2) of compound (IV-1):

[0335] When the compound (1-X) used is (1R, 3R)-3-aminocyclohexanol and the compound (1-2) is represented by the structural formula (1-2-3):

[0336] Obtain the optical isomer compound (IV-1-3) of compound (IV-1):

[0337] When the compound (1-X) used is (1R, 3S)-3-aminocyclohexanol and the compound (1-2) is as shown in the structural formula (1-2-4):

[0338] Obtain the optical isomer compound (IV-1-4) of compound (IV-1):

[0339] In addition, the present disclosure also provides a pharmaceutical composition, which comprises the nucleic acid of any of the above embodiments, the genetically engineered vector of any of the above embodiments, the host cell of any of the above embodiments, the nucleic acid composition of any of the above embodiments, the immunogen of any of the above embodiments, the protein or polypeptide encoded by the nucleic acid of any of the above embodiments, the RNA of any of the above embodiments, or the delivery vector of any of the above embodiments, and a pharmaceutically acceptable carrier.

[0340] In some embodiments, the pharmaceutical composition comprises multiple delivery vectors, wherein the nucleic acids contained in the multiple delivery vectors encode different proteins or polypeptides. For example, the multiple delivery vectors are two delivery vectors, wherein the first delivery vector is a delivery vector comprising a nucleic acid encoding a polynucleotide of a VZV gE protein or a fragment thereof and a signal peptide, and the second delivery vector is a delivery vector comprising a nucleic acid encoding a signal peptide and a polynucleotide of a VZV gI. For another example, the multiple delivery vectors are three delivery vectors, wherein the first delivery vector is a delivery vector comprising a nucleic acid encoding a polynucleotide of a VZV gE protein or a fragment thereof and a signal peptide, the second delivery vector is a delivery vector comprising a nucleic acid encoding a signal peptide and a polynucleotide of a VZV gI, and the third delivery vector is a delivery vector comprising a nucleic acid encoding a signal peptide and a polynucleotide of an influenza virus HA protein.

[0341] In some embodiments, the pharmaceutical composition comprises multiple nucleic acids according to any of the above embodiments, multiple genetically engineered vectors according to any of the above embodiments, multiple proteins or polypeptides according to any of the above embodiments, multiple immunogens according to any of the above embodiments, multiple RNAs according to any of the above embodiments, or multiple host cells according to any of the above embodiments.

[0342] The term "pharmaceutically acceptable" as used herein means approved for use in animals and / or humans by a regulatory agency (e.g., the State Food and Drug Administration (CFDA), the U.S. Food and Drug Administration (FDA)) or a recognized pharmacopoeia (e.g., the Chinese Pharmacopoeia, the European Pharmacopeia). The term "pharmaceutically acceptable carrier" refers to a substance that can be administered together with the nucleic acid, genetically engineered vector, nucleic acid composition, host cell, protein or polypeptide, or delivery vector of the present disclosure, including but not limited to diluents, sweeteners, flavoring agents, wetting agents, adjuvants, glidants, preservatives, dyes / colorants, surfactants, dispersants, suspending agents, stabilizers, isotonic agents, solvents, or emulsifiers.

[0343] In some embodiments, the above pharmaceutical compositions do not include an adjuvant.

[0344] In some embodiments, the above pharmaceutical composition further comprises an adjuvant.

[0345] In some embodiments, the adjuvant comprises a flagellin adjuvant. In some embodiments, the flagellin adjuvant is an mRNA encoding flagellin.

[0346] In addition, the present disclosure also provides a use of a nucleic acid according to any of the above embodiments, a genetically engineered vector according to any of the above embodiments, a host cell according to any of the above embodiments, a nucleic acid composition according to any of the above embodiments, a protein or polypeptide encoded by a nucleic acid according to any of the above embodiments, an RNA according to any of the above embodiments, an immunogen according to any of the above embodiments, a delivery vector according to any of the above embodiments, or a pharmaceutical composition according to any of the above embodiments in the preparation of a drug.

[0347] In some embodiments, the medicament is for preventing or treating VZV infection or a disease caused by VZV infection.

[0348] In some embodiments, the medicament is used to prevent, treat, or ameliorate neuropathic pain caused by VZV infection.

[0349] In some embodiments, the medicament is for preventing, treating, or ameliorating postherpetic neuralgia.

[0350] In some embodiments, the drug is a vaccine.

[0351] 7. Vaccines

[0352] The present disclosure also provides a vaccine, which comprises the nucleic acid of any of the above embodiments, the genetically engineered vector of any of the above embodiments, the host cell of any of the above embodiments, the protein or polypeptide encoded by the nucleic acid of any of the above embodiments, the immunogen of any of the above embodiments, the RNA of any of the above embodiments, the nucleic acid composition of any of the above embodiments, or the delivery vector of any of the above embodiments.

[0353] In some embodiments, the above-mentioned vaccine is a VZV vaccine.

[0354] In some embodiments, the above-mentioned vaccine is a multivalent vaccine.

[0355] In some embodiments, the above-mentioned vaccine comprises RNA (e.g., mRNA) comprising a polynucleotide derived from a VZV E1 strain, including, for example, any one or more of the genotypes E1_32_5, E1_Kel, E1_Dumas, E1_Russia 1999, E1_SD, E1_MSP, E1_36, E1_49, E1_BC, and E1_NH29. In some embodiments, the above-mentioned vaccine comprises RNA (e.g., mRNA) comprising a polynucleotide derived from a VZV E2 strain, including, for example, any one or more of the genotypes E2_03-500, E2_2, E2_11, and E2_HJO. In some embodiments, the above-mentioned vaccine comprises RNA (e.g., mRNA) comprising a polynucleotide sequence derived from a VZV J strain, including, for example, the genotype pOka. In some embodiments, the RNA (e.g., mRNA) polynucleotide comprises a polynucleotide derived from a VZV M1 strain, including, for example, the genotype M1_CA123. In some embodiments, the vaccine comprises RNA (e.g., mRNA) comprising polynucleotides derived from VZV M2 strains, including, for example, genotypes M2_8 and M2_DR. In some embodiments, the vaccine comprises RNA (e.g., mRNA) comprising polynucleotides derived from VZV M4 strains, including, for example, any one or more of Spanish genotype 4242, French genotype 4415, and Italian genotype 4053.

[0356] In some embodiments, the vaccine is a concatenated nucleic acid vaccine. In some embodiments, in addition to the nucleic acid encoding the VZV gE protein or fragment thereof, the vaccine further comprises nucleic acids encoding proteins or polypeptides from other viruses or VZV other than the VZV gE protein or fragment thereof that can serve as immunogens. Of course, the other viruses can be a single subtype, multiple viruses, or multiple subtypes. For example, the other viruses can be influenza A, influenza A and SARS-CoV-2, or influenza A and influenza B.

[0357] In some embodiments, the vaccine is a polyvalent protein vaccine. In some embodiments, in addition to any of the aforementioned VZV gE proteins or fragments thereof, the vaccine further comprises a protein or polypeptide other than the VZV gE protein or fragment thereof that can serve as an immunogen, or further comprises a protein or polypeptide from another virus that can serve as an immunogen. Of course, the other viruses can be one or more.

[0358] In some embodiments, the vaccine is a quadruple nucleic acid vaccine comprising active ingredients for preventing measles, mumps, rubella, and varicella or shingles, wherein the active ingredient for preventing varicella or shingles comprises the nucleic acid of any of the above embodiments.

[0359] In some embodiments, the above vaccines do not include an adjuvant.

[0360] In some embodiments, the above-mentioned vaccine further comprises an adjuvant.

[0361] In some embodiments, the adjuvant includes a flagellin adjuvant. In some embodiments, the flagellin adjuvant is an mRNA encoding flagellin. When combined with a flagellin adjuvant, particularly when an mRNA encoding an antigen is combined with an mRNA encoding flagellin, the efficacy of the RNA (e.g., mRNA) in the vaccine can be significantly enhanced.

[0362] In some embodiments, the above-mentioned vaccine is an mRNA vaccine.

[0363] In some embodiments, the vaccine is an mRNA vaccine, and the vaccine is administered nasally, intratracheally, or injectably (e.g., intravenously, intraocularly, intravitreally, intramuscularly, intradermally, intracardially, intraperitoneally, and subcutaneously).

[0364] It is understood that the dosage form of the above-mentioned vaccine is not particularly limited.

[0365] The mRNA vaccine disclosed herein can induce a significant immune response in the body, causing the body to produce high levels of IgG antibodies against VZV gE protein and induce a significant IFN-γ-positive cellular immune response.

[0366] 8. Prevention or Treatment Methods

[0367] The present disclosure also provides a method for preventing or treating VZV virus infection, which comprises administering to a subject a nucleic acid according to any of the foregoing embodiments, a genetically engineered vector according to any of the foregoing embodiments, a host cell according to any of the foregoing embodiments, a protein or polypeptide encoded by the nucleic acid according to any of the foregoing embodiments, an immunogen according to any of the foregoing embodiments, an RNA according to any of the foregoing embodiments, a nucleic acid composition according to any of the foregoing embodiments, a delivery vector according to any of the foregoing embodiments, a pharmaceutical composition according to any of the foregoing embodiments, or a vaccine according to any of the foregoing embodiments.

[0368] In some embodiments, the subject is a mammal (e.g., a human, a non-human primate (e.g., apes, chimpanzees, monkeys, and orangutans)), a domestic animal (e.g., a dog, a cat, and livestock (e.g., a horse, a cow, a pig, a sheep, and a goat)), or other mammal. Other mammals include, but are not limited to, mice, rats, guinea pigs, rabbits, hamsters, and the like. In an alternative specific example, the subject is a human.

[0369] In some embodiments, the number of administrations is one, two, three, four, or more times.

[0370] The present disclosure also provides a method for preventing, treating or ameliorating neuropathic pain caused by VZV infection, comprising administering to a subject a nucleic acid according to any of the foregoing embodiments, a genetically engineered vector according to any of the foregoing embodiments, a host cell according to any of the foregoing embodiments, a protein or polypeptide encoded by the nucleic acid according to any of the foregoing embodiments, an immunogen according to any of the foregoing embodiments, an RNA according to any of the foregoing embodiments, a nucleic acid composition according to any of the foregoing embodiments, a delivery vector according to any of the foregoing embodiments, a pharmaceutical composition according to any of the foregoing embodiments, or a vaccine according to any of the foregoing embodiments.

[0371] The present disclosure also provides a method for preventing, treating or ameliorating postherpetic neuralgia, comprising administering to a subject a nucleic acid according to any of the foregoing embodiments, a genetically engineered vector according to any of the foregoing embodiments, a host cell according to any of the foregoing embodiments, a protein or polypeptide encoded by the nucleic acid according to any of the foregoing embodiments, an immunogen according to any of the foregoing embodiments, an RNA according to any of the foregoing embodiments, a nucleic acid composition according to any of the foregoing embodiments, a delivery vector according to any of the foregoing embodiments, a pharmaceutical composition according to any of the foregoing embodiments, or a vaccine according to any of the foregoing embodiments.

[0372] In some embodiments, the subject is as described above.

[0373] In addition, the present disclosure also provides a method for eliciting an immune response against VZV in a subject. In some embodiments, the method comprises administering to the subject a nucleic acid of any of the above embodiments, a genetically engineered vector of any of the above embodiments, a host cell of any of the above embodiments, a protein or polypeptide encoded by a nucleic acid of any of the above embodiments, an immunogen of any of the above embodiments, an RNA of any of the above embodiments, a nucleic acid composition of any of the above embodiments, a delivery vector of any of the above embodiments, a pharmaceutical composition of any of the above embodiments, or a vaccine of any of the above embodiments. Relative to the anti-antigen antibody titer in a subject vaccinated with a prophylactically effective dose of a conventional vaccine against VZV, the anti-antigen antibody titer in the subject after vaccination with the present disclosure is increased. "Anti-antigen antibodies" are serum antibodies that specifically bind to an antigen.

[0374] In some embodiments, the method of any of the above embodiments comprises administering to the subject one or two (or more) doses of a nucleic acid, genetically engineered vector, nucleic acid composition, VZV gE protein or fragment thereof, RNA, immunogen, delivery vehicle, pharmaceutical composition, or vaccine (e.g., mRNA vaccine) of any of the above embodiments at a dose level sufficient to deliver 0.025 mg / kg to 0.250 mg / kg, 0.025 mg / kg to 0.500 mg / kg, 0.025 mg / kg to 0.750 mg / kg, or 0.025 mg / kg to 1.0 mg / kg, based on the subject's body weight.

[0375] In some embodiments, the method of any of the above embodiments comprises administering to a subject once or twice (or more than twice) a total dose of 0.0100 mg to 1.0 mg or at a dose level sufficient to deliver the total dose, the nucleic acid, genetically engineered vector, nucleic acid composition, VZV gE protein or fragment thereof, RNA, immunogen, delivery vehicle, pharmaceutical composition or vaccine (e.g., mRNA vaccine) of any of the above embodiments.

[0376] In some embodiments, the method of any of the above embodiments comprises the nucleic acid, genetic engineering vector, nucleic acid composition, VZV The gE protein or fragment thereof, RNA, immunogen, delivery vehicle, pharmaceutical composition or vaccine (e.g., mRNA vaccine) is administered at 0.0100 mg, 0.025 mg, 0.050 mg, 0.075 mg, 0.100 mg, 0.125 mg, 0.150 mg, 0.175 mg, 0.200 mg, 0.225 mg, 0.250 mg, 0.275 mg, 0.300 mg, 0.325 mg, 0.350 mg, 0.375 mg, 0.400 mg, 0.425 mg, 0.450 mg, 0.475 mg, 0.500 mg, 0.525 mg, 0.550 mg, 0.575 mg, 0.600 mg, 0.625 mg, 0.650 mg, 0.675 mg, 0.700 mg, 0.750 mg. In some embodiments, the present invention provides an agent that is administered to a subject twice (e.g., day 0 and day 7, day 0 and day 14, day 0 and day 21, day 0 and day 28, day 0 and day 60, day 0 and day 90, day 0 and day 120, day 0 and day 150, day 0 and day 180, day 0 and 3 months later, day 0 and 6 months later, day 0 and 9 months later, day 0 and 12 months later, day 0 and 18 months later, day 0 and 2 years later, day 0 and 5 years later, or day 0 and 10 years later) at a dose level sufficient to deliver the total dose. The present disclosure encompasses higher and lower dosages and frequencies of administration. For example, the above-mentioned vaccine (e.g., mRNA vaccine) can be administered three or four times.

[0377] 9. Detection Reagents or Kits

[0378] The present disclosure also provides a use of a nucleic acid according to any of the above embodiments, a genetically engineered vector according to any of the above embodiments, a host cell according to any of the above embodiments, a polypeptide or protein encoded by the nucleic acid according to any of the above embodiments, an immunogen according to any of the above embodiments, an RNA according to any of the above embodiments, a nucleic acid composition according to any of the above embodiments, a delivery vector according to any of the above embodiments, or a pharmaceutical composition according to any of the above embodiments in preparing a detection reagent or kit for VZV gE protein-binding antibodies.

[0379] In addition, the present disclosure also provides a detection reagent or kit for VZV gE protein-binding antibodies, which comprises the nucleic acid of any of the above embodiments, the genetically engineered vector of any of the above embodiments, the host cell of any of the above embodiments, the protein or polypeptide encoded by the nucleic acid of any of the above embodiments, the immunogen of any of the above embodiments, the RNA of any of the above embodiments, the nucleic acid composition of any of the above embodiments, the delivery vector of any of the above embodiments, or the composition of the drug of any of the above embodiments.

[0380] In addition, the present disclosure also provides a method for detecting or isolating VZV gE protein-binding antibodies in a subject, the method comprising: providing an effective amount of the nucleic acid according to any of the above embodiments, the genetically engineered vector according to any of the above embodiments, the host cell according to any of the above embodiments, the protein or polypeptide encoded by the nucleic acid according to any of the above embodiments, the immunogen according to any of the above embodiments, the RNA according to any of the above embodiments, the nucleic acid composition according to any of the above embodiments, or a delivery vector, pharmaceutical composition, or vaccine containing the VZV gE protein; contacting a biological sample from the subject with the VZV gE protein under conditions sufficient to form an immune complex of the VZV gE protein and the VZV gE protein-binding antibodies; and detecting the immune complex, thereby detecting or isolating the VZV gE protein-binding antibodies in the subject. Example

[0381] In order to make the purpose and technical solutions of the present disclosure clearer, the following is a detailed description with reference to specific examples. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments in the present invention, all other implementation methods obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention. Unless otherwise specified, the reagents and instruments used in the examples are conventionally selected in the art. The experimental methods for which specific conditions are not specified in the examples are implemented according to conventional conditions, such as the conditions described in the literature, books, or the methods recommended by the manufacturer.

[0382] Example 1

[0383] 1. Synthesis of Compound (IV-1)

[0384] Step 1): Synthesis of 8-((3-hydroxycyclohexyl)amino)nonyl octanoate (Compound (IV-1-p1))

[0385] In a 100 mL reaction flask, 8-bromooctanoic acid nonyl ester (3.50 g, 10 mmol), 3-aminocyclohexanol (11.5 g, 100 mmol), and 30 mL of ethanol were added in sequence. After stirring to dissolve, N,N-diisopropylethylamine (2.58 g, 20 mmol) was added and reacted at room temperature for 24 h. 100 mL of dichloromethane was added, and the mixture was washed with water three times, dried over anhydrous sodium sulfate, concentrated, and purified using a flash column chromatography system (dichloromethane: methanol = 20:1 to 5:1) to obtain 8-((3-hydroxycyclohexyl)amino)octanoic acid nonyl ester.

[0386] 1 H NMR (600MHz, CDCl3) δ4.20-4.13(m,0.5H),4.05(t,2H),3.83(m,0.5H),3.09(m,0.5H),2.87(m,0.5H),2.76-2.59(m,2H), 2.29(t,2H),2.00(m,0.5H),1.93-1.78(m,1.5H),1.78-1.65(m,2H),1.65-1.46(m,8H),1.40-1.18(m,20H),0.88(t,3H).

[0387] LCMS: 384.3 [M+H] + .

[0388] Step 2): Synthesis of compound (IV-1)

[0389] In a 100 mL reaction flask, 8-((3-hydroxycyclohexyl)amino)octanoic acid nonyl ester (383 mg, 1 mmol), 8-bromooctanoic acid 1-octyl nonyl ester (554 mg, 1.2 mmol), and 20 mL of acetonitrile were added in sequence. After stirring and dissolving, potassium carbonate (276 mg, 2 mmol) and potassium iodide (166 mg, 1 mmol) were added. The mixture was reacted at room temperature for 24 h. 100 mL of dichloromethane was added, and the mixture was washed with water three times. It was then dried over anhydrous sodium sulfate and concentrated, and purified using a flash column chromatography system (dichloromethane: methanol = 20:1 to 5:1) to obtain compound (IV-1).

[0390] 1H NMR (600MHz, CDCl3) δ4.95-4.81(m,1H),4.30-4.12(m,0.5H),4.07(t,2H),3.72-3.61(m,0.5H),2.97(m,0.5H),2.64-2.52(m ,0.5H),2.48-2.37(m,4H),2.30(q,4H),1.93-1.81(m,2H),1.72-1.57(m,8H),1.51(t,4H),1.43-1.18(m,56H),0.89(m,9H).

[0391] LCMS: 765.3 [M+H] + .

[0392] 2. Preparation of Compound (IV-1-1)

[0393] To a 250 mL single-necked flask, 8 g (17.3 mmol) of 9-heptadecyl-8-bromooctanoate, 10 g (76.5 mmol) of (1S,3R)-3-aminocyclohexanol, and 100 mL of ethanol were added and reacted at 50°C for 15 h. The 9-heptadecyl-8-bromooctanoate reacted completely. After removing the solvent by rotary evaporation, the crude product was added to 200 mL of ethyl acetate (EA) and washed twice with 100 mL of water to thoroughly remove the (1S,3R)-3-aminocyclohexanol. The EA phase was then dried to afford crude compound (IV-1-1-p) (i.e., 9-heptadecyl-8-(((1R,3S)-3-hydroxycyclohexyl)amino)octanoate). The crude product was purified by column chromatography (dichloromethane:methanol = 20:1 to 5:1) to afford compound (IV-1-1-p).

[0394] NMR data:

[0395] 1 H NMR (600MHz, CDCl3): δ4.91-4.81(m,1H),3.86-3.82(m,1H),2.84-2.81(m,1H),2.69-2.54(qt,J=11.2,7.3Hz,2H),2.29-2.26(t,J=7.5Hz,2H),1. 93-1.86(m,1H),1.77-1.74(d,J=12.0Hz,1H),1.72-1.57(m,6H),1.54-1 .45(m,6H),1.37-1.30(m,8H),1.30-1.22(m,24H),0.88(t,J=7.0Hz,6H).

[0396] LCMS: 496.7 [M+H] + .

[0397] Take 6 g (12.1 mmol) of the above compound (IV-1-1-p) in a 250 mL single-necked bottle, add 90 mL of acetonitrile and 60 mL of cyclopentane methyl ether, then add 6.7 g of potassium carbonate powder (48.4 mmol), 2 g of potassium iodide (12.1 mmol) and 5 g of 8-bromooctanoic acid nonyl ester (17.5 mmol), and place at 90 ° C to react for 24 hours. The raw material compound ((IV-1-1-p) is completely reacted. Remove the oil bath and wait for the reaction to cool to room temperature. After the solid is removed by filtration, the filtrate is spin-dried to obtain a crude product, and finally purified by column chromatography (dichloromethane: methanol = 20: 1 to 5: 1) to obtain compound (IV-1-1).

[0398] NMR data:

[0399] 1 H NMR (600MHz, CDCl3): δ4.93-4.84(m,1H),4.09(t,J=6.8Hz,2H),3.68-3.61(m,1H),2.62-2.54(m,1H),2.53-2.41(m,4H),2.31-2.26(q,J= 7.4Hz,4H),1.97(m,1H),1.91-1.78(m,2H),1.71-1.61(m,7H),1.54(d,J=6.0Hz,4H),1.43-1.37(m,4H),1.39-1.23(m,52H),0.91(m,9H).

[0400] Specific rotation: +4.3°

[0401] LCMS: 765.2 [M+H] + .

[0402] 3. Preparation of Compound (IV-1-2)

[0403] To a 100 mL single-necked flask, 2 g of 9-heptadecyl-8-bromooctanoate (4.3 mmol), 2.5 g of (1S,3S)-3-aminocyclohexanol (20.2 mmol), and 20 mL of ethanol were added and reacted at 50°C for 15 h. The 9-heptadecyl-8-bromooctanoate reacted completely. After removing the solvent by rotary evaporation, the crude product was added with 50 mL of EA and washed twice with 25 mL of water to thoroughly remove the (1S,3S)-3-aminocyclohexanol. The EA phase was then dried to afford crude compound (IV-1-2-p) (i.e., 9-heptadecyl-8-(((1S,3S)-3-hydroxycyclohexyl)amino)octanoate). The crude product was purified by column chromatography (dichloromethane:methanol = 20:1 to 5:1) to afford compound (IV-1-2-p).

[0404] NMR data:

[0405] 1 H NMR (600MHz, CDCl3): δ4.91-4.82(m,1H),4.16-4.10(m,1H),2.96-2.87(m,1H),2.65-2.55(qt,J=11.2,7.3Hz,2H),2.28-2.26(t,J =7.5Hz,2H),1.93-1.77(m,4H),1.67-1.55(m,6H),1.54-1.45(m,6H),1.33-1.31(m,6H),1.30-1.22(m,24H),0.88(t,J=7.0Hz,6H).

[0406] LCMS: 496.7 [M+H] + .

[0407] Take 1.5 g (3.0 mmol) of the above compound (IV-1-2-p) in a 100 mL single-necked bottle, add 25 mL of acetonitrile and 15 mL of cyclopentane methyl ether, then add 1.67 g of potassium carbonate powder (12 mmol), 0.5 g of potassium iodide (3 mmol) and 1.26 g of 8-bromooctanoic acid nonyl ester (3.6 mmol), and place at 90 ° C to react for 24 hours. The raw material compound (IV-1-2-p) is completely reacted. Remove the oil bath and wait for the reaction to cool to room temperature. After the solid is removed by filtration, the filtrate is spin-dried to obtain a crude product, and finally purified by column chromatography (dichloromethane: methanol = 20:1 to 5:1) to obtain compound (IV-1-2).

[0408] NMR data:

[0409] 1 H NMR (600MHz, CDCl3): δ4.91-4.80(m,1H),4.28-4.22(m,1H),4.06-4.04(t,J=6.8Hz,2H ),3.03-2.97(m,1H),2.47-2.41(m,4H),2.33-2.25(q,J=7.5Hz,4H),1.89-1.85(d,J=12 .1Hz,1H),1.80-1.77(t,J=12.2Hz,1H),1.73-1.65(m,2H),1.64-1.59(m,6H),1.54-1.4 8(m,4H),1.48-1.39(m,4H),1.34-1.29(m,14H),1.29-1.23(m,38H),0.89-0.87(m,9H).

[0410] Specific rotation: -12.9°

[0411] LCMS: 765.2[M+H] + .

[0412] 4. Preparation of Compound (IV-1-3)

[0413] To a 100 mL single-necked flask, 2 g of 9-heptadecyl-8-bromooctanoate (4.3 mmol), 2.5 g of (1R,3R)-3-aminocyclohexanol (20.2 mmol), and 20 mL of ethanol were added and reacted at 50°C for 15 h. The 9-heptadecyl-8-bromooctanoate reacted completely. After removing the solvent by rotary evaporation, the crude product was added with 50 mL of EA and washed twice with 25 mL of water to thoroughly remove the (1R,3R)-3-aminocyclohexanol. The EA phase was then dried to afford crude compound (IV-1-3-p) (i.e., 9-heptadecyl-8-(((1R,3R)-3-hydroxycyclohexyl)amino)octanoate). The crude product was purified by column chromatography (dichloromethane:methanol = 20:1 to 5:1) to afford compound (IV-1-3-p).

[0414] NMR data:

[0415] 1 H NMR (600MHz, CDCl3): δ4.91-4.81(m,1H),4.17-4.08(m,1H),2.94-2.84(m,1H),2.64-2.5(qt,J=11.2,7.3Hz,2H),2.28-2.26(t,J =7.5Hz,2H),1.88-1.76(m,2H),1.75-1.54(m,8H),1.54-1.40(m,6H),1.33-1.3(m,6H),1.30-1.23(m,24H),0.88(t,J=7.0Hz,6H).

[0416] LCMS: 496.7 [M+H] + .

[0417] Take 1.5 g (3.0 mmol) of the above compound (IV-1-3-p) in a 100 mL single-necked bottle, add 25 mL of acetonitrile and 15 mL of cyclopentane methyl ether, then add 1.67 g of potassium carbonate powder (12 mmol), 0.5 g of potassium iodide (3 mmol) and 1.26 g of 8-bromooctanoic acid nonyl ester (3.6 mmol), and place at 90 ° C to react for 24 hours. The raw material compound (IV-1-3-p) is completely reacted. Remove the oil bath and wait for the reaction to cool to room temperature. After the solid is removed by filtration, the filtrate is spin-dried to obtain a crude product, and finally purified by column chromatography (dichloromethane: methanol = 20: 1 to 5: 1) to obtain compound (IV-1-3).

[0418] NMR data:

[0419] 1 H NMR (600MHz, CDCl3): δ4.89-4.82(m,1H),4.24-4.22(m,1H),4.06-4.04(t,J=6.8Hz,2H ),3.00-2.95(m,1H),2.47-2.36(m,4H),2.30-2.26(q,J=7.5Hz,4H),1.86-1.84(d,J=12 .1Hz,1H),1.79-1.77(t,J=12.2Hz,1H),1.70-1.66(m,2H),1.65-1.57(m,6H),1.53-1.4 8(m,4H),1.45-1.38(m,4H),1.35-1.30(m,14H),1.29-1.22(m,38H),0.89-0.87(m,9H).

[0420] Specific rotation: +12.6°

[0421] LCMS: 765.2[M+H] + .

[0422] V. Preparation of Compound (IV-1-4)

[0423] To a 250 mL single-necked flask, 8 g of 9-heptadecyl-8-bromooctanoate (17.3 mmol), 10 g of (1R,3S)-3-aminocyclohexanol (76.5 mmol), and 100 mL of ethanol were added and reacted at 50°C for 15 h. The 9-heptadecyl-8-bromooctanoate reacted completely. The solvent was removed by rotary evaporation, and the crude product was added to 200 mL of EA and washed twice with 100 mL of water to thoroughly remove the (1R,3S)-3-aminocyclohexanol. The EA phase was then dried to afford crude compound (IV-1-4-p) (i.e., 9-heptadecyl-8-(((1S,3R)-3-hydroxycyclohexyl)amino)octanoate). The crude product was purified by column chromatography (dichloromethane:methanol = 20:1 to 5:1) to afford compound (IV-1-4-p).

[0424] NMR data:

[0425] 1H NMR (600MHz, CDCl3): δ4.90-4.83(m,1H),3.86-3.82(m,1H),2.86-2.82(m,1H) ),2.69-2.58(qt,J=11.2,7.3Hz,2H),2.29-2.26(t,J=7.5Hz,2H),1.94-1.86( m,1H),1.79-1.77(d,J=12.0Hz,1H),1.74-1.64(m,3H),1.64-1.59(m,3H),1. 51-1.46(m,6H),1.36-1.30(m,8H),1.30-1.22(m,24H),0.88(t,J=7.0Hz,6H).

[0426] LCMS: 496.7 [M+H] + .

[0427] Take 6 g (12.1 mmol) of the above compound (IV-1-4-p) in a 250 mL single-necked bottle, add 90 mL of acetonitrile and 60 mL of cyclopentane methyl ether, then add 6.7 g of potassium carbonate powder (48.4 mmol), 2 g of potassium iodide (12.1 mmol) and 5 g of 8-bromooctanoic acid nonyl ester (17.4), and place at 90 ° C to react for 24 h. The raw material compound (IV-1-4-p) is completely reacted. Remove the oil bath and wait for the reaction to cool to room temperature. After that, filter out the solid and spin dry the filtrate to obtain a crude product. Finally, purify by column chromatography (dichloromethane: methanol = 20:1 to 5:1) to obtain compound (IV-1-4).

[0428] NMR data:

[0429] 1 H NMR (600MHz, CDCl3): δ4.90-4.82(m,1H),4.05(t,J=6.8Hz,2H),3.70-3.60(m,1H),2.64-2.54(m,1H),2.51-2.41(m,4H),2.30-2.26(q,J= 7.5Hz,4H),1.95(m,1H),1.91-1.77(m,2H),1.69-1.56(m,7H),1.50(d,J=6.0Hz,4H),1.41-1.37(m,4H),1.34-1.18(m,52H),0.88(m,9H).

[0430] Specific rotation: -4.5°

[0431] LCMS: 765.2[M+H] + .

[0432] Example 2 Design of VZV gE protein and its coding sequence

[0433] The VZV gE protein shown in Table 1 was designed. Based on the amino acid sequence of the VZV gE protein, a codon-optimized DNA sequence (DNA sequence corresponding to the coding region of the VZV gE protein or its fragment in Table 1) was further designed and commissioned to Nanjing GenScript Biotechnology Co., Ltd. for synthesis. The test results showed that all DNA sequences were correct.

[0434] Example 3 Construction of engineering plasmid

[0435] The construction method is as follows:

[0436] 1. Construction of plasmid B: Suzhou GENEWIZ Biotechnology Co., Ltd. (GENEWIZ) was commissioned to replace the Amp resistance gene of pcDNA3.1 with the Kana resistance gene. New restriction sites HindIII, BamHI, KpnI, and ApaI were added after the T7 promoter, and the NeoR / KanR sequence from 2136 bp to 2930 bp was deleted to obtain plasmid B.

[0437] 2. Construction of plasmid C: Plasmid B was linearized with ApaI and homologously recombined with a nucleic acid fragment (poly(A) tail) with a nucleotide sequence as shown in SEQ ID NO: 27 synthesized by IDT (Integrated DNA Technologies) to obtain plasmid C.

[0438] 3. Construction of plasmid D: Plasmid C was double-digested with KpnI and ApaI, and a large fragment of about 4.7 kb was recovered by agarose gel electrophoresis. The fragment was ligated with the nucleic acid fragment (3'-UTR) synthesized by IDT and the nucleotide sequence shown in SEQ ID NO: 26 using T4 enzyme to obtain plasmid D.

[0439] 4. Construction of plasmid F: Plasmid D was double-digested with BamHI and HindIII, and a large fragment of approximately 4.8 kb was recovered by agarose gel electrophoresis. The fragment was then ligated with the nucleic acid fragment (5'-UTR) synthesized by IDT, such as the nucleotide sequence shown in SEQ ID NO: 25, using T4 enzyme to obtain plasmid F.

[0440] 5. Construction of engineering plasmids: By PCR, homology arm sequences were introduced at both ends of the DNA sequences corresponding to the mRNAs numbered 466, 468, 1086, 1087, 1104, 1106, 1107, 1116 and 1117 that do not contain a Cap1-type cap structure. Then, these PCR products were homologously recombined with the approximately 4.8 kb fragment obtained by double digestion of plasmid F with BamHI and KpnI and recovery by agarose gel electrophoresis. Finally, multiple engineering plasmids with completely correct sequencing were obtained.

[0441] Example 4 Preparation of mRNA encoding VZV gE protein

[0442] 1. Extract the engineering plasmid and ensure that the supercoil rate of the plasmid is above 85%.

[0443] 2. Plasmid linearization

[0444] (1) Enzyme linearization: 20 μg of the engineered plasmid containing the VZV gE protein coding sequence prepared in Example 3 was taken to prepare the reaction system according to Table 2, mixed well, and placed in a 37° C. incubator for 16 h for enzyme digestion reaction.

[0445] Table 2

[0446] (2) Purification of linearized plasmid: After ensuring that the enzyme digestion is complete, use a DNA fragment purification and recovery kit (Takara, catalog number: 9761) to recover the linearized plasmid.

[0447] (3) Identification: 100 ng of the purified linearized plasmid and the original circular plasmid were subjected to 1% agarose gel electrophoresis to confirm whether the plasmid linearization was complete.

[0448] 3. In vitro transcription of mRNA

[0449] (1) Prepare the IVT reaction system according to Table 3.

[0450] Table 3

[0451] (2) The reaction was carried out at 37°C for 2 h. After the reaction, 5 μL of DNase was added to the reaction system and incubated at 37°C for 15 min (DNase was used to remove the linearized plasmid template).

[0452] (3) Refer to the purification magnetic beads (Hieff The IVT product was purified by magnetic beads according to the instructions of RNA Cleaner (YEASEN, catalog number: 12602ES56).

[0453] (4) Capping:

[0454] mRNACap1 capping reaction:

[0455] The Cap1 type cap structure and reaction principle are as follows:

[0456] pppN1(p)Nx-OH(3')→ppN1(pN)x-OH(3')+Pi

[0457] ppN1(pN)x-OH(3')+GTP→G(5')ppp(5')N1(pN)x-OH(3')+PPi

[0458] G(5')ppp(5')N1(pN)x-OH(3')+AdoMet→m7G(5')ppp(5')N1(pN)x-OH(3')+AdoHyc

[0459] m7GpppN1(pN)x-OH(3')+AdoMet→m7Gppp[m2'-O]N1(pN)x-OH(3')+AdoHyc

[0460] 5'-Cap1 type cap structure:

[0461] cap G 1 G 2 =m 7 G-5'-ppp-5'-Gm 2' -3'-p-[m 7 =7-CH3;m 2' =2'-O-CH3; -ppp-=-PO2H-O-PO2H-O-PO2H)-; -p-=-PO2H-].

[0462] A 67 μL mRNA solution (25 pmol uncapped mRNA was made up to 67 μL with water) was preheated at 65°C for 5 min and then mixed with a mixture containing 10 μL 10× ScriptCap Capping Buffer, 10 μL 10 mM GTP, 2.5 μL 20 mM SAM, 2.5 μL ScriptGuard RNase Inhibitor, 4 μL ScriptCap 2'-O-Methyltransferase (100 U / μL), and 4 μL ScriptCap Capping Enzyme (10 U / μL) and incubated at 37°C for 1 h. The above reagents used for the capping reaction were purchased from Cellscript.

[0463] (5) Purification of capped products

[0464] Reference purification magnetic beads (Hieff The IVT product was purified using magnetic beads using RNA Cleaner (YEASEN, Cat. No. 12602ES56) according to the instructions. Characterization Data: Concentration was determined using onedrop or Qubit.

[0465] Experimental results: A variety of mRNAs encoding VZV gE protein or fragments thereof were obtained, which contained a Cap1-type cap structure, a 5'-UTR, a 3'-UTR, a poly(A) tail, and all uridines were replaced by N1-methylpseudouridine.

[0466] Example 5 Preparation of LNP Formulation Encapsulating mRNA Encoding VZV gE Protein

[0467] (1) Encapsulation: A microsyringe and a microfluidic chip (SN.000038) were used to encapsulate mRNA at a rate of 9 mL / min in the aqueous phase and 3 mL / min in the alcohol phase to prepare a crude LNP preparation containing mRNA encoding VZV gE protein or a fragment thereof. The difference between the LNP preparations was only the different encapsulated mRNA. Among them, the mRNA used in this example was prepared according to the method described in Example 4. The aqueous phase was an acetic acid-sodium acetate solution (pH 5.0) containing mRNA encoding VZV gE protein, and the alcohol phase contained the cationic lipid compound (IV-1-1), DSPC, CHO-HP and DMG-PEG provided by the present disclosure. The molar ratio of the cationic lipid compound (IV-1-1), DSPC, CHO-HP and DMG-PEG was 49.5:10:39:1.5.

[0468] (2) Dialysis fluid exchange:

[0469] a. Dialysate preparation: 1×PBS + 8% (m / v) sucrose solution: Take 2 packets of 1×PBS pre-made powder into a beaker, dissolve and mix with 2L of DEPC water, then add 160g of sucrose and mix to obtain 1×PBS + 8% sucrose solution.

[0470] b. Dialysis: The crude encapsulated product was transferred into a 100KD dialysis bag and immersed in a beaker containing 1L of dialysis solution. The beaker was wrapped with aluminum foil and dialyzed at 100 rpm for 1 hour at room temperature. The dialysate was then replaced and dialysis continued for another hour. The dialyzed formulation samples were sterile filtered through a 0.22μm disposable filter membrane to prepare LNP formulations encapsulating different mRNAs encoding VZV gE proteins. The mRNA concentration in the LNP formulations was 0.4μg / μL, the mRNA:Lipid mass ratio was 1:10, the particle size was 80-130nm, and the encapsulation efficiency was greater than 85%.

[0471] Example 6 In vivo immunization of mice

[0472] 1. Preliminary Screening: 7- to 9-week-old Balb / c female mice (17-22 g, housed in an SPF environment) were divided into two groups: a blank LNP group and an mRNA vaccine test group (10 μg / mouse). The mRNA vaccine test group contained LNP formulations encapsulating different mRNAs encoding VZV gE proteins (as shown in Table 1). Mice received a single intramuscular injection, with the first injection date designated as day 0. Spleens were harvested on days 6 and 26 post-immunization, and splenic lymphocytes were isolated for subsequent ELIspot assays.

[0473] 2. Further screening: 7- to 9-week-old Balb / c female mice (17g-22g, housed in an SPF environment) were divided into three groups: a blank LNP group, a Shingrix positive control group (8μg / mouse, GSK herpes recombinant protein vaccine), and an mRNA vaccine test group (8μg / mouse). The mRNA vaccine test group was an LNP formulation encapsulating mRNA (1087) encoding the VZV gE protein. The mice received two intramuscular injections, with the first injection date marked as day 0 and the second injection date marked as day 21. On the 14th, 35th, 42nd, 49th, 56th, 63rd, 70th, 77th and 81st days after immunization (after the first injection), blood was collected from the eye sockets and collected in non-anticoagulant tubes. After being placed on ice for 30 minutes, the blood was centrifuged at 3500 rpm at 4°C for 10 minutes. After stratification, the upper layer of light yellow liquid was carefully aspirated with a pipette to prepare the immune serum.

[0474] The spleens of some mice were collected on the 7th and 81st days after immunization, and spleen lymphocytes were isolated and used in subsequent ELIspot experiments.

[0475] 3. The specific steps for preparing spleen lymphocytes include:

[0476] (1) The mice were killed by cervical dislocation and immersed in 75% ethanol. The spleens of the mice were removed in a clean bench.

[0477] (2) In a 6-well cell culture plate, add 7 mL of mouse lymphocyte separation solution to each well (return to room temperature and shake well before use). Grind with a syringe piston, using the upward rebound force of the cell screen to control the grinding force and minimize possible mechanical damage to the cells.

[0478] (3) Immediately transfer the separation solution containing suspended spleen cells into a 15 mL centrifuge tube and slowly add 10 mL of RPMI 1640 culture medium, keeping a clear liquid boundary.

[0479] (4) Centrifuge at 800 g in a swing-out rotor for 30 min at room temperature.

[0480] (5) Aspirate the lymphocyte layer, add 10 mL of RPMI 1640 medium, and wash by inversion. Centrifuge at 250 g for 10 min at room temperature to collect the cells.

[0481] (6) Perform erythrocyte lysis according to the instructions of the erythrocyte lysis buffer. Add 2 mL of erythrocyte lysis buffer to each tube and resuspend. Incubate at 4°C for 2 minutes, then add 10 mL of DPBS to terminate the erythrocyte lysis reaction. Centrifuge at 250 g for 10 minutes at 4°C to collect the cells.

[0482] (7) Add 10 mL of RPMI 1640 medium to the cells collected in the previous step and wash by inversion. Centrifuge at 250 g for 10 min at room temperature to collect the cells, then resuspend the cells in culture medium and count them.

[0483] Example 7 Mouse spleen lymphocyte ELISpot experiment

[0484] The mouse spleen lymphocytes required for the ELISpot experiment were provided by the experiment in Example 6.

[0485] Reagents: RPMI Medium 1640 basic (1×), mouse lymphocyte separation medium, positive reference PMA + Ionomycin, ELISpot Plus Mouse IFN-gamma (HRP), VZV gE protein peptide library (see Table 4), ELISpot Plus Mouse IL-4 (HRP), and red blood cell lysis buffer.

[0486] Table 4

[0487] The steps include:

[0488] (1) Adjust the concentration of mouse spleen lymphocytes with culture medium to 1×10 5 100 μL of cells / well were added to each experimental well.

[0489] (2) Add stimulators (PMA+Ionomycin working solution and VZVgE protein peptide library (1 μg / mL)), 10 μL / well.

[0490] (3) After all samples and stimulants have been added, cover the plate and place in a 37°C, 5% CO2 incubator for 21 hours.

[0491] (4) Shake out the liquid in the wells and add PBS buffer at 200 μL / well. Repeat five times, and blot dry on absorbent paper each time.

[0492] (5) Dilute the detection antibody to 1 μg / mL with sample diluent, 100 μL / well. Incubate at room temperature for 2 hours.

[0493] (6) Repeat the above plate washing operation.

[0494] (7) Dilute the enzyme-labeled avidin (Streptavidin-HRP) with sample diluent 1000-fold, 100 μL / well. Incubate at room temperature for 1 hour.

[0495] (8) Repeat the above plate washing operation.

[0496] (9) Equilibrate the TMB Substrate colorimetric solution to room temperature in advance, add 100 μL to each well, and incubate at room temperature in the dark for 10 min.

[0497] (10) Pour out the liquid in the wells, remove the base of the plate, and wash the front and back surfaces and the base with deionized water 3 to 5 times to stop the color development. Place the plate in a cool, dark place at room temperature and allow it to dry naturally before closing the base.

[0498] (11) The enzyme-linked immunosorbent assay (ELISA) analyzer reads the plate and records various parameters of the spots for statistical analysis.

[0499] The ELIspot test results of the preliminary screened mRNA vaccines are shown in Figures 1A-1C. Different mRNA vaccines showed different levels of IFN-γ positive cellular immune responses. Among them, the Th1 bias of the mRNA vaccine (1087) was stronger than that of the mRNA vaccine (468).

[0500] The ELIspot test results of the further screened mRNA vaccines are shown in Figures 2A-2F. Both mRNA vaccine (1087) and Shingrix can induce the body to produce obvious IFN-γ positive cellular immune responses, and reveal that the immune response is Th1 biased rather than Th2 biased. The Th1 bias of mRNA vaccine (1087) is stronger.

[0501] Example 8 IgG antibody titer experiment

[0502] The immune serum used in this example was provided by the experiment in Example 6.

[0503] Reagents: Varicella zoster virus (strain Oka vaccine) Envelope Glycoprotein E (gE), His Tag (acrobiosystems, Cat. No. GLE-V52H3), Goat anti-Mouse IgG (H+L) HRP Conjugate, PBS, FBS, one-component TMB colorimetric solution, and stop solution.

[0504] The steps include:

[0505] (1) Dilute gE protein to 0.5 μg / mL with coating solution, mix well and set aside; add 100 μL per well to a 96-well ELISA plate, seal with sealing film, and place at 2-8°C overnight (16-20 hours).

[0506] (2) After incubation, wash the wells three times with 300 μL of washing solution and pat dry on clean paper.

[0507] (3) Add 250 μL / well of blocking solution to the ELISA plate, seal the plate with a sealing film, and incubate at 37°C for 60 min.

[0508] (4) After blocking, wash the wells three times with 300 μL / well washing solution and pat dry on clean paper.

[0509] (5) Take out the serum that has been separated in advance, vortex mix it, and use it for IgG titer detection.

[0510] (6) Take the separated serum and determine its first dilution factor according to different immunization times. Use this dilution factor as the first dilution factor and make a gradient dilution. Add the diluted serum to the ELISA plate at 100 μL / well and incubate at 37°C for 2 hours.

[0511] (7) After incubation, wash the wells three times with 300 μL / well washing solution and pat dry on clean paper.

[0512] (8) Dilute the enzyme-labeled secondary antibody 10,000-fold with sample diluent, add 100 μL / well, and incubate at 37°C for 60 min.

[0513] (9) After incubation, wash the wells three times with 300 μL / well washing solution and pat dry on clean paper.

[0514] (10) Equilibrate the TMB single-component colorimetric solution to room temperature in advance, add 100 μL to each well, and incubate at room temperature in the dark for 15 min.

[0515] (11) After color development, add 50 μL / well of stop solution.

[0516] (12) Select a detection wavelength of 450 nm and a reference wavelength of 630 nm, and read the results in an enzyme-labeled instrument.

[0517] The results of IgG antibody titer detection are shown in Figure 3. Both mRNA vaccine (1087) and Shingrix induced high levels of IgG antibodies against VZV gE protein. The IgG titer on day 35 was approximately 3×10 6 .

[0518] Example 9 Immunogenicity Detection in Rats

[0519] In vivo immunization and sampling: Sprague Dawley rats (180 g to 200 g, housed in an SPF environment) aged 6-8 weeks were divided into 5 groups of male and female rats, respectively: blank LNP group, mRNA vaccine group 1 (10 μg / mouse), mRNA vaccine group 2 (50 μg / mouse), mRNA vaccine group 3 (100 μg / mouse), and mRNA vaccine group 4 (200 μg / mouse). Among them, mRNA vaccine groups 1 to 4 were LNP preparations encapsulating mRNA numbered 1087. The rats were injected intramuscularly three times, with the first injection time being marked as day 0, the second injection time being day 21, and the third injection time being day 36. On the 7th, 14th, 28th, 35th, 42nd, 49th, and 56th days after immunization, blood was collected from the eye sockets, and rat immune serum was obtained according to Example 6. The IgG antibody titer in the rat immune serum was determined according to Example 7. On the 58th day after immunization, spleens of all rats were collected, and rat spleen lymphocytes were obtained according to Example 6, and then rat spleen lymphocyte ELIspot assay was performed according to Example 8.

[0520] The results of IgG antibody titer detection are shown in Figures 4A and 4B. In rats of different genders, the mRNA vaccine (1087) can produce a high level of IgG antibody titer. When the injection dose is 10 μg, the antibody titer produced by the mRNA vaccine (1807) is lower than that of other dose groups. When the injection dose is above 50 μg, further increase in the dose fails to make the mRNA vaccine (1087) produce a stronger dose-dependent effect.

[0521] The ELIspot test results are shown in Figure 5. 10 μg of mRNA vaccine (1087) can induce a significant IFN-γ positive cellular immune response in rats. As the dose increases, there is no obvious dose-dependent effect.

[0522] Example 10 Immunogenicity of Herpes Zoster mRNA Vaccine (1087) in Pre-immunized Mice

[0523] Sixty-four C57BL / 6 mice (half male and half female, 7-8 weeks old) were randomly divided into three groups. Each group was designated control (C1), low-dose (L1), and high-dose (H1). C1 consisted of 16 mice, and L1 and H1 groups each had 24 mice. All mice were injected with 600 PFU / mouse of live attenuated varicella vaccine (LAV, Shanghai Institute of Biological Products Co., Ltd.) on day 0. Spleens were harvested on day 7 for intracellular cytokine staining (ICS). The first immunization was performed on day 35. The control group received blank LNPs without herpes zoster mRNA. Each mouse received 5 μg of herpes zoster mRNA vaccine (1087) in the low-dose (L1) group and 10 μg of herpes zoster mRNA vaccine (1087) in the high-dose (H1) group. Spleens were harvested on days 42 and 91 for ELISpot and ICS analysis. The remaining mice underwent a second immunization on Day 91. The control, low-dose, and high-dose groups received the same immunization doses as the initial immunization. Spleens were harvested on Day 98 for ELISpot and ICS analysis. Serum was collected on Days 28, 35, 42, 63, 91, and 98 for IgG antibody titers.

[0524] The results are shown in Figures 6 to 8.

[0525] As shown in Figure 6, after immunization with the mRNA vaccine (1087), the average number of IFN-γ SFCs was significantly higher than that of IL-4, suggesting that the immune response induced by the mRNA vaccine (1087) was Th1-biased. A single immunization with the mRNA vaccine (1087) in both the high-dose and low-dose groups induced the production of high levels of gE-specific T cells secreting IFN-γ and IL-2 in mouse spleen cells, and the second immunization in the high-dose group significantly enhanced the above response.

[0526] As shown in Figure 7, the low-dose and high-dose groups induced significant CD4 T cell responses 7 days after the first mRNA vaccine immunization (D42), and the immune response was significantly enhanced 7 days after the second immunization (D98) (P<0.01). + The cell ratio was significantly higher than that of IL-4 + This indicates that after the second immunization, the Th cells in the animals tend to differentiate into Th1 cells rather than Th2 cells.

[0527] As shown in Figure 8, a certain level of baseline gE-specific antibody titer was induced 4 weeks after LAV vaccination (D28). One week after the first dose of mRNA vaccine (1087) (D42), the gE-specific antibody IgG titer increased significantly compared with the baseline.

[0528] sequence

Claims

1. A non-natural nucleic acid comprising a polynucleotide encoding a VZV gE protein or a fragment thereof.

2. The nucleic acid of claim 1, wherein the amino acid sequence of the VZV gE protein comprises or is an amino acid sequence that is at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the amino acid sequence shown in SEQ ID NO:

1.

3. The nucleic acid of claim 1, wherein the VZV gE protein is a full-length gE protein.

4. The nucleic acid according to claim 1, wherein the fragment of the VZV gE protein is one of the following: (1) a truncated polypeptide of positions 23 to 623, 31 to 623, 1 to 561, 1 to 573, 1 to 543, 31 to 573, or 31 to 543 of the VZV gE protein; and (2) A polypeptide having at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity with the amino acid sequence of the truncated polypeptide described in (1).

5. The nucleic acid according to any one of claims 1 to 4, wherein the VZV gE protein or a fragment thereof further has a mutation; preferably, the mutation is one or two of the following: Y569A and Y582G mutations.

6. The nucleic acid according to any one of claims 1 to 5, wherein the VZV gE protein or a fragment thereof comprises or is one of the following polypeptides or proteins: (1) a polypeptide or protein with an amino acid sequence as shown in one of SEQ ID NOs: 1 to 8; and (2) A polypeptide or protein comprising an amino acid sequence that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to one of the sequences of SEQ ID NOs: 1 to 8.

7. The nucleic acid according to any one of claims 1 to 6, wherein the VZV gE protein or a fragment thereof is further linked to a heterologous signal peptide and / or ferritin.

8. The nucleic acid of claim 7, wherein the heterologous signal peptide comprises one or more of the following: an IgE signal peptide and an IgGκ signal peptide; Preferably, the amino acid sequence of the IgGκ signal peptide is shown in SEQ ID NO: 9; And / or, the amino acid sequence of the ferritin is as shown in SEQ ID NO:

10.

9. The nucleic acid according to any one of claims 1 to 6, wherein the nucleic acid is RNA; Preferably, the polynucleotide encoding the VZV gE protein or a fragment thereof is codon optimized; Preferably, the polynucleotide encoding the VZV gE protein or a fragment thereof comprises or is one of the following: (1) RNA corresponding to a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 11 to 18; and (2) An RNA corresponding to a polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence as shown in one of SEQ ID NOs: 11 to 18.

10. The nucleic acid according to any one of claims 1 to 9, wherein the nucleic acid is RNA, and the nucleic acid comprises or is one of the following RNAs: (1) RNA corresponding to a polynucleotide having a nucleotide sequence as shown in one of SEQ ID NOs: 19 to 24; and (2) An RNA corresponding to a polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence as shown in any of SEQ ID NOs: 19 to 24. 11 . The nucleic acid according to claim 8 to 10 , wherein the nucleic acid is mRNA; preferably, the mRNA comprises at least one of a 5′-cap structure, a 5′-UTR, a 3′-UTR and a poly(A) tail.

12. The nucleic acid according to claim 11, wherein the DNA sequence corresponding to the 5'-UTR is shown in SEQ ID NO: 25; and / or, the DNA sequence corresponding to the 3'-UTR is shown in SEQ ID NO: 26; And / or, the nucleotides constituting the poly(A) tail comprise at least 20, at least 40, at least 80, at least 100 or at least 120 A nucleotides; preferably, the nucleotides constituting the poly(A) tail comprise at least 20, at least 40, at least 80, at least 100 or at least 120 A nucleotides in succession; preferably, the nucleotides constituting the poly(A) tail comprise one or more Other nucleotides except A nucleotide; More preferably, the DNA sequence corresponding to the poly (A) tail is as shown in SEQ ID NO:

27.

13. The nucleic acid according to any one of claims 1 to 8, wherein the nucleic acid is DNA; preferably, the DNA can be transcribed into RNA. Preferably, the polynucleotide encoding the VZV gE protein or a fragment thereof is codon optimized; Preferably, the polynucleotide encoding the VZV gE protein or a fragment thereof comprises or is one of the following: (1) a polynucleotide whose nucleotide sequence is shown in one of SEQ ID NOs: 11 to 18; and (2) A polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence shown in one of SEQ ID NOs: 11 to 18.

14. The nucleic acid according to claim 13, wherein the nucleic acid comprises or is one of the following polynucleotides: (1) a polynucleotide whose nucleotide sequence is shown in one of SEQ ID NOs: 19 to 24; and (2) A polynucleotide comprising a nucleotide sequence that is at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to the nucleotide sequence as shown in one of SEQ ID NOs: 19 to 24.

15. The nucleic acid according to any one of claims 1 to 14, comprising modified nucleotides; Preferably, the nucleic acid contains modified nucleosides; Preferably, the modified nucleoside comprises at least one of modified uridine, modified cytidine, modified adenosine and modified guanosine.

16. A genetic engineering vector, comprising the nucleic acid according to any one of claims 1 to 15, or comprising a polynucleotide capable of being transcribed into the nucleic acid according to any one of claims 1 to 15.

17. A host cell comprising the genetic engineering vector according to claim 16.

18. A protein or polypeptide encoded by the nucleic acid of any one of claims 1 to 15.

19. A delivery vector, comprising the nucleic acid according to any one of claims 1 to 15 and the genetic engineering vector according to claim 16.

20. The delivery vector of claim 19, wherein the delivery vector is a lipid nanoparticle (LNP), a cationic liposome, a cationic protein or a lipid polymer (LPP); Preferably, the delivery vehicle is a lipid nanoparticle, wherein the lipid nanoparticle comprises a cationic lipid, wherein the cationic lipid comprises the following compound (IV), or a pharmaceutically acceptable salt or stereoisomer thereof: in: L 3 and L 4 are the same or different, and are each independently C1-C12 alkylene, C2-C12 alkenylene or C2-C12 alkynylene; preferably L 3 and L 4 are the same or different, and are each independently C3-C10 alkylene, C3-C10 alkenylene or C3-C10 alkynylene; further preferably, L 3 and L 4 The same or different, each independently is C3-C10 alkylene; most preferably, L 3 and L 4 The same or different, each independently a C5-C8 alkylene group; G 4 and G 5 are the same or different, and are each independently -O-(C=O)-, -(C=O)-O-, -C(=O)-, -O-, -C(=O)-S- or -SC(=O)-; preferably, G 4 and G 5 are the same or different, and are each independently -O-(C=O)-, -(C=O)-O-, -C(=O)- or -O-; most preferably, G 4 and G 5 are the same or different, each independently selected from -O-(C=O)- or -(C=O)-O-; R 18 and R 19 The same or different, each independently a C5-C27 alkyl group, or a C5-C27 alkenyl group containing one or more double bonds; Preferably, R 18 and R 19 are the same or different, and are each independently a C8-C20 alkyl group or a C8-C20 alkenyl group containing one or more double bonds; further preferably, R 18 and R 19 are the same or different and are each independently a C9-C17 alkyl group or a C9-C18 alkenyl group containing one or two double bonds; most preferably, R 18 and R 19 the same or different, each independently R 20 is halogen, hydroxyl, cyano, C1-C6 alkyl, nitro, C1-C6 alkoxy, C1-C6 alkylcarbonyloxy, C1-C6 alkoxycarbonyl, C1-C6 alkylaminocarbonyl or C1-C6 alkylcarbonylamino; preferably, R 20 is halogen, hydroxyl, cyano, C1-C6 alkoxy, C1-C6 alkylcarbonyloxy, C1-C6 alkoxycarbonyl, C1-C6 alkylaminocarbonyl or C1-C6 alkylcarbonylamino; further preferably, R 20 is halogen, hydroxy, cyano, C1-C4 alkoxy, C1-C4 alkylcarbonyloxy, C1-C4 alkoxycarbonyl, C1-C4 alkylaminocarbonyl or C1-C4 alkylcarbonylamino; most preferably, R 20 is fluorine, hydroxy, cyano, methoxy, acetoxy, methoxycarbonyl, butylaminocarbonyl or acetamido; z is 1, 2 or 3.

21. The delivery vector according to claim 20, wherein the cationic lipid is the following compound (IV-1), or a pharmaceutically acceptable salt or stereoisomer thereof: Alternatively, the cationic lipid is the following compound, or a pharmaceutically acceptable salt thereof:

22. A pharmaceutical composition comprising the nucleic acid of any one of claims 1 to 15, the genetic engineering vector of claim 16, the host cell of claim 17, the protein or polypeptide of claim 18, or the delivery vector of any one of claims 19 to 21, and a pharmaceutically acceptable carrier.

23. Use of the nucleic acid according to any one of claims 1 to 15, the genetic engineering vector according to claim 16, the host cell according to claim 17, the protein or polypeptide according to claim 18, or the delivery vector according to any one of claims 19 to 21, or the pharmaceutical composition according to claim 22 in the preparation of a drug; Preferably, the drug is used to prevent or treat VZV infection or a disease caused by VZV infection; Preferably, the drug is used to prevent, treat or improve neuropathic pain caused by VZV infection; Preferably, the drug is used to prevent, treat or improve post-herpetic neuralgia; Preferably, the drug is a vaccine; preferably, the drug is an mRNA vaccine; Preferably, the medicament is used for preventing or treating chickenpox or herpes zoster.

24. A vaccine, comprising the nucleic acid of any one of claims 1 to 15, the genetic engineering vector of claim 16, the protein or polypeptide of claim 18, or the delivery vector of any one of claims 19 to 21.